1 // SPDX-License-Identifier: GPL-2.0-only 2 /* Copyright (c) 2011-2014 PLUMgrid, http://plumgrid.com 3 * Copyright (c) 2016 Facebook 4 * Copyright (c) 2018 Covalent IO, Inc. http://covalent.io 5 */ 6 #include <uapi/linux/btf.h> 7 #include <linux/bpf-cgroup.h> 8 #include <linux/kernel.h> 9 #include <linux/types.h> 10 #include <linux/slab.h> 11 #include <linux/bpf.h> 12 #include <linux/btf.h> 13 #include <linux/bpf_verifier.h> 14 #include <linux/filter.h> 15 #include <net/netlink.h> 16 #include <linux/file.h> 17 #include <linux/vmalloc.h> 18 #include <linux/stringify.h> 19 #include <linux/bsearch.h> 20 #include <linux/sort.h> 21 #include <linux/perf_event.h> 22 #include <linux/ctype.h> 23 #include <linux/error-injection.h> 24 #include <linux/bpf_lsm.h> 25 #include <linux/btf_ids.h> 26 #include <linux/poison.h> 27 #include <linux/module.h> 28 #include <linux/cpumask.h> 29 #include <linux/bpf_mem_alloc.h> 30 #include <net/xdp.h> 31 #include <linux/trace_events.h> 32 #include <linux/kallsyms.h> 33 34 #include "disasm.h" 35 36 static const struct bpf_verifier_ops * const bpf_verifier_ops[] = { 37 #define BPF_PROG_TYPE(_id, _name, prog_ctx_type, kern_ctx_type) \ 38 [_id] = & _name ## _verifier_ops, 39 #define BPF_MAP_TYPE(_id, _ops) 40 #define BPF_LINK_TYPE(_id, _name) 41 #include <linux/bpf_types.h> 42 #undef BPF_PROG_TYPE 43 #undef BPF_MAP_TYPE 44 #undef BPF_LINK_TYPE 45 }; 46 47 enum bpf_features { 48 BPF_FEAT_RDONLY_CAST_TO_VOID = 0, 49 BPF_FEAT_STREAMS = 1, 50 __MAX_BPF_FEAT, 51 }; 52 53 struct bpf_mem_alloc bpf_global_percpu_ma; 54 static bool bpf_global_percpu_ma_set; 55 56 /* bpf_check() is a static code analyzer that walks eBPF program 57 * instruction by instruction and updates register/stack state. 58 * All paths of conditional branches are analyzed until 'bpf_exit' insn. 59 * 60 * The first pass is depth-first-search to check that the program is a DAG. 61 * It rejects the following programs: 62 * - larger than BPF_MAXINSNS insns 63 * - if loop is present (detected via back-edge) 64 * - unreachable insns exist (shouldn't be a forest. program = one function) 65 * - out of bounds or malformed jumps 66 * The second pass is all possible path descent from the 1st insn. 67 * Since it's analyzing all paths through the program, the length of the 68 * analysis is limited to 64k insn, which may be hit even if total number of 69 * insn is less then 4K, but there are too many branches that change stack/regs. 70 * Number of 'branches to be analyzed' is limited to 1k 71 * 72 * On entry to each instruction, each register has a type, and the instruction 73 * changes the types of the registers depending on instruction semantics. 74 * If instruction is BPF_MOV64_REG(BPF_REG_1, BPF_REG_5), then type of R5 is 75 * copied to R1. 76 * 77 * All registers are 64-bit. 78 * R0 - return register 79 * R1-R5 argument passing registers 80 * R6-R9 callee saved registers 81 * R10 - frame pointer read-only 82 * 83 * At the start of BPF program the register R1 contains a pointer to bpf_context 84 * and has type PTR_TO_CTX. 85 * 86 * Verifier tracks arithmetic operations on pointers in case: 87 * BPF_MOV64_REG(BPF_REG_1, BPF_REG_10), 88 * BPF_ALU64_IMM(BPF_ADD, BPF_REG_1, -20), 89 * 1st insn copies R10 (which has FRAME_PTR) type into R1 90 * and 2nd arithmetic instruction is pattern matched to recognize 91 * that it wants to construct a pointer to some element within stack. 92 * So after 2nd insn, the register R1 has type PTR_TO_STACK 93 * (and -20 constant is saved for further stack bounds checking). 94 * Meaning that this reg is a pointer to stack plus known immediate constant. 95 * 96 * Most of the time the registers have SCALAR_VALUE type, which 97 * means the register has some value, but it's not a valid pointer. 98 * (like pointer plus pointer becomes SCALAR_VALUE type) 99 * 100 * When verifier sees load or store instructions the type of base register 101 * can be: PTR_TO_MAP_VALUE, PTR_TO_CTX, PTR_TO_STACK, PTR_TO_SOCKET. These are 102 * four pointer types recognized by check_mem_access() function. 103 * 104 * PTR_TO_MAP_VALUE means that this register is pointing to 'map element value' 105 * and the range of [ptr, ptr + map's value_size) is accessible. 106 * 107 * registers used to pass values to function calls are checked against 108 * function argument constraints. 109 * 110 * ARG_PTR_TO_MAP_KEY is one of such argument constraints. 111 * It means that the register type passed to this function must be 112 * PTR_TO_STACK and it will be used inside the function as 113 * 'pointer to map element key' 114 * 115 * For example the argument constraints for bpf_map_lookup_elem(): 116 * .ret_type = RET_PTR_TO_MAP_VALUE_OR_NULL, 117 * .arg1_type = ARG_CONST_MAP_PTR, 118 * .arg2_type = ARG_PTR_TO_MAP_KEY, 119 * 120 * ret_type says that this function returns 'pointer to map elem value or null' 121 * function expects 1st argument to be a const pointer to 'struct bpf_map' and 122 * 2nd argument should be a pointer to stack, which will be used inside 123 * the helper function as a pointer to map element key. 124 * 125 * On the kernel side the helper function looks like: 126 * u64 bpf_map_lookup_elem(u64 r1, u64 r2, u64 r3, u64 r4, u64 r5) 127 * { 128 * struct bpf_map *map = (struct bpf_map *) (unsigned long) r1; 129 * void *key = (void *) (unsigned long) r2; 130 * void *value; 131 * 132 * here kernel can access 'key' and 'map' pointers safely, knowing that 133 * [key, key + map->key_size) bytes are valid and were initialized on 134 * the stack of eBPF program. 135 * } 136 * 137 * Corresponding eBPF program may look like: 138 * BPF_MOV64_REG(BPF_REG_2, BPF_REG_10), // after this insn R2 type is FRAME_PTR 139 * BPF_ALU64_IMM(BPF_ADD, BPF_REG_2, -4), // after this insn R2 type is PTR_TO_STACK 140 * BPF_LD_MAP_FD(BPF_REG_1, map_fd), // after this insn R1 type is CONST_PTR_TO_MAP 141 * BPF_RAW_INSN(BPF_JMP | BPF_CALL, 0, 0, 0, BPF_FUNC_map_lookup_elem), 142 * here verifier looks at prototype of map_lookup_elem() and sees: 143 * .arg1_type == ARG_CONST_MAP_PTR and R1->type == CONST_PTR_TO_MAP, which is ok, 144 * Now verifier knows that this map has key of R1->map_ptr->key_size bytes 145 * 146 * Then .arg2_type == ARG_PTR_TO_MAP_KEY and R2->type == PTR_TO_STACK, ok so far, 147 * Now verifier checks that [R2, R2 + map's key_size) are within stack limits 148 * and were initialized prior to this call. 149 * If it's ok, then verifier allows this BPF_CALL insn and looks at 150 * .ret_type which is RET_PTR_TO_MAP_VALUE_OR_NULL, so it sets 151 * R0->type = PTR_TO_MAP_VALUE_OR_NULL which means bpf_map_lookup_elem() function 152 * returns either pointer to map value or NULL. 153 * 154 * When type PTR_TO_MAP_VALUE_OR_NULL passes through 'if (reg != 0) goto +off' 155 * insn, the register holding that pointer in the true branch changes state to 156 * PTR_TO_MAP_VALUE and the same register changes state to CONST_IMM in the false 157 * branch. See check_cond_jmp_op(). 158 * 159 * After the call R0 is set to return type of the function and registers R1-R5 160 * are set to NOT_INIT to indicate that they are no longer readable. 161 * 162 * The following reference types represent a potential reference to a kernel 163 * resource which, after first being allocated, must be checked and freed by 164 * the BPF program: 165 * - PTR_TO_SOCKET_OR_NULL, PTR_TO_SOCKET 166 * 167 * When the verifier sees a helper call return a reference type, it allocates a 168 * pointer id for the reference and stores it in the current function state. 169 * Similar to the way that PTR_TO_MAP_VALUE_OR_NULL is converted into 170 * PTR_TO_MAP_VALUE, PTR_TO_SOCKET_OR_NULL becomes PTR_TO_SOCKET when the type 171 * passes through a NULL-check conditional. For the branch wherein the state is 172 * changed to CONST_IMM, the verifier releases the reference. 173 * 174 * For each helper function that allocates a reference, such as 175 * bpf_sk_lookup_tcp(), there is a corresponding release function, such as 176 * bpf_sk_release(). When a reference type passes into the release function, 177 * the verifier also releases the reference. If any unchecked or unreleased 178 * reference remains at the end of the program, the verifier rejects it. 179 */ 180 181 /* verifier_state + insn_idx are pushed to stack when branch is encountered */ 182 struct bpf_verifier_stack_elem { 183 /* verifier state is 'st' 184 * before processing instruction 'insn_idx' 185 * and after processing instruction 'prev_insn_idx' 186 */ 187 struct bpf_verifier_state st; 188 int insn_idx; 189 int prev_insn_idx; 190 struct bpf_verifier_stack_elem *next; 191 /* length of verifier log at the time this state was pushed on stack */ 192 u32 log_pos; 193 }; 194 195 #define BPF_COMPLEXITY_LIMIT_JMP_SEQ 8192 196 #define BPF_COMPLEXITY_LIMIT_STATES 64 197 198 #define BPF_GLOBAL_PERCPU_MA_MAX_SIZE 512 199 200 #define BPF_PRIV_STACK_MIN_SIZE 64 201 202 static int acquire_reference(struct bpf_verifier_env *env, int insn_idx); 203 static int release_reference_nomark(struct bpf_verifier_state *state, int ref_obj_id); 204 static int release_reference(struct bpf_verifier_env *env, int ref_obj_id); 205 static void invalidate_non_owning_refs(struct bpf_verifier_env *env); 206 static bool in_rbtree_lock_required_cb(struct bpf_verifier_env *env); 207 static int ref_set_non_owning(struct bpf_verifier_env *env, 208 struct bpf_reg_state *reg); 209 static bool is_trusted_reg(const struct bpf_reg_state *reg); 210 static inline bool in_sleepable_context(struct bpf_verifier_env *env); 211 static const char *non_sleepable_context_description(struct bpf_verifier_env *env); 212 static void scalar32_min_max_add(struct bpf_reg_state *dst_reg, struct bpf_reg_state *src_reg); 213 static void scalar_min_max_add(struct bpf_reg_state *dst_reg, struct bpf_reg_state *src_reg); 214 215 static void bpf_map_ptr_store(struct bpf_insn_aux_data *aux, 216 struct bpf_map *map, 217 bool unpriv, bool poison) 218 { 219 unpriv |= bpf_map_ptr_unpriv(aux); 220 aux->map_ptr_state.unpriv = unpriv; 221 aux->map_ptr_state.poison = poison; 222 aux->map_ptr_state.map_ptr = map; 223 } 224 225 static void bpf_map_key_store(struct bpf_insn_aux_data *aux, u64 state) 226 { 227 bool poisoned = bpf_map_key_poisoned(aux); 228 229 aux->map_key_state = state | BPF_MAP_KEY_SEEN | 230 (poisoned ? BPF_MAP_KEY_POISON : 0ULL); 231 } 232 233 struct bpf_call_arg_meta { 234 struct bpf_map_desc map; 235 bool raw_mode; 236 bool pkt_access; 237 u8 release_regno; 238 int regno; 239 int access_size; 240 int mem_size; 241 u64 msize_max_value; 242 int ref_obj_id; 243 int dynptr_id; 244 int func_id; 245 struct btf *btf; 246 u32 btf_id; 247 struct btf *ret_btf; 248 u32 ret_btf_id; 249 u32 subprogno; 250 struct btf_field *kptr_field; 251 s64 const_map_key; 252 }; 253 254 struct bpf_kfunc_meta { 255 struct btf *btf; 256 const struct btf_type *proto; 257 const char *name; 258 const u32 *flags; 259 s32 id; 260 }; 261 262 struct btf *btf_vmlinux; 263 264 static const char *btf_type_name(const struct btf *btf, u32 id) 265 { 266 return btf_name_by_offset(btf, btf_type_by_id(btf, id)->name_off); 267 } 268 269 static DEFINE_MUTEX(bpf_verifier_lock); 270 static DEFINE_MUTEX(bpf_percpu_ma_lock); 271 272 __printf(2, 3) static void verbose(void *private_data, const char *fmt, ...) 273 { 274 struct bpf_verifier_env *env = private_data; 275 va_list args; 276 277 if (!bpf_verifier_log_needed(&env->log)) 278 return; 279 280 va_start(args, fmt); 281 bpf_verifier_vlog(&env->log, fmt, args); 282 va_end(args); 283 } 284 285 static void verbose_invalid_scalar(struct bpf_verifier_env *env, 286 struct bpf_reg_state *reg, 287 struct bpf_retval_range range, const char *ctx, 288 const char *reg_name) 289 { 290 bool unknown = true; 291 292 verbose(env, "%s the register %s has", ctx, reg_name); 293 if (reg->smin_value > S64_MIN) { 294 verbose(env, " smin=%lld", reg->smin_value); 295 unknown = false; 296 } 297 if (reg->smax_value < S64_MAX) { 298 verbose(env, " smax=%lld", reg->smax_value); 299 unknown = false; 300 } 301 if (unknown) 302 verbose(env, " unknown scalar value"); 303 verbose(env, " should have been in [%d, %d]\n", range.minval, range.maxval); 304 } 305 306 static bool reg_not_null(const struct bpf_reg_state *reg) 307 { 308 enum bpf_reg_type type; 309 310 type = reg->type; 311 if (type_may_be_null(type)) 312 return false; 313 314 type = base_type(type); 315 return type == PTR_TO_SOCKET || 316 type == PTR_TO_TCP_SOCK || 317 type == PTR_TO_MAP_VALUE || 318 type == PTR_TO_MAP_KEY || 319 type == PTR_TO_SOCK_COMMON || 320 (type == PTR_TO_BTF_ID && is_trusted_reg(reg)) || 321 (type == PTR_TO_MEM && !(reg->type & PTR_UNTRUSTED)) || 322 type == CONST_PTR_TO_MAP; 323 } 324 325 static struct btf_record *reg_btf_record(const struct bpf_reg_state *reg) 326 { 327 struct btf_record *rec = NULL; 328 struct btf_struct_meta *meta; 329 330 if (reg->type == PTR_TO_MAP_VALUE) { 331 rec = reg->map_ptr->record; 332 } else if (type_is_ptr_alloc_obj(reg->type)) { 333 meta = btf_find_struct_meta(reg->btf, reg->btf_id); 334 if (meta) 335 rec = meta->record; 336 } 337 return rec; 338 } 339 340 bool bpf_subprog_is_global(const struct bpf_verifier_env *env, int subprog) 341 { 342 struct bpf_func_info_aux *aux = env->prog->aux->func_info_aux; 343 344 return aux && aux[subprog].linkage == BTF_FUNC_GLOBAL; 345 } 346 347 static bool subprog_returns_void(struct bpf_verifier_env *env, int subprog) 348 { 349 const struct btf_type *type, *func, *func_proto; 350 const struct btf *btf = env->prog->aux->btf; 351 u32 btf_id; 352 353 btf_id = env->prog->aux->func_info[subprog].type_id; 354 355 func = btf_type_by_id(btf, btf_id); 356 if (verifier_bug_if(!func, env, "btf_id %u not found", btf_id)) 357 return false; 358 359 func_proto = btf_type_by_id(btf, func->type); 360 if (!func_proto) 361 return false; 362 363 type = btf_type_skip_modifiers(btf, func_proto->type, NULL); 364 if (!type) 365 return false; 366 367 return btf_type_is_void(type); 368 } 369 370 static const char *subprog_name(const struct bpf_verifier_env *env, int subprog) 371 { 372 struct bpf_func_info *info; 373 374 if (!env->prog->aux->func_info) 375 return ""; 376 377 info = &env->prog->aux->func_info[subprog]; 378 return btf_type_name(env->prog->aux->btf, info->type_id); 379 } 380 381 void bpf_mark_subprog_exc_cb(struct bpf_verifier_env *env, int subprog) 382 { 383 struct bpf_subprog_info *info = subprog_info(env, subprog); 384 385 info->is_cb = true; 386 info->is_async_cb = true; 387 info->is_exception_cb = true; 388 } 389 390 static bool subprog_is_exc_cb(struct bpf_verifier_env *env, int subprog) 391 { 392 return subprog_info(env, subprog)->is_exception_cb; 393 } 394 395 static bool reg_may_point_to_spin_lock(const struct bpf_reg_state *reg) 396 { 397 return btf_record_has_field(reg_btf_record(reg), BPF_SPIN_LOCK | BPF_RES_SPIN_LOCK); 398 } 399 400 static bool type_is_rdonly_mem(u32 type) 401 { 402 return type & MEM_RDONLY; 403 } 404 405 static bool is_acquire_function(enum bpf_func_id func_id, 406 const struct bpf_map *map) 407 { 408 enum bpf_map_type map_type = map ? map->map_type : BPF_MAP_TYPE_UNSPEC; 409 410 if (func_id == BPF_FUNC_sk_lookup_tcp || 411 func_id == BPF_FUNC_sk_lookup_udp || 412 func_id == BPF_FUNC_skc_lookup_tcp || 413 func_id == BPF_FUNC_ringbuf_reserve || 414 func_id == BPF_FUNC_kptr_xchg) 415 return true; 416 417 if (func_id == BPF_FUNC_map_lookup_elem && 418 (map_type == BPF_MAP_TYPE_SOCKMAP || 419 map_type == BPF_MAP_TYPE_SOCKHASH)) 420 return true; 421 422 return false; 423 } 424 425 static bool is_ptr_cast_function(enum bpf_func_id func_id) 426 { 427 return func_id == BPF_FUNC_tcp_sock || 428 func_id == BPF_FUNC_sk_fullsock || 429 func_id == BPF_FUNC_skc_to_tcp_sock || 430 func_id == BPF_FUNC_skc_to_tcp6_sock || 431 func_id == BPF_FUNC_skc_to_udp6_sock || 432 func_id == BPF_FUNC_skc_to_mptcp_sock || 433 func_id == BPF_FUNC_skc_to_tcp_timewait_sock || 434 func_id == BPF_FUNC_skc_to_tcp_request_sock; 435 } 436 437 static bool is_dynptr_ref_function(enum bpf_func_id func_id) 438 { 439 return func_id == BPF_FUNC_dynptr_data; 440 } 441 442 static bool is_sync_callback_calling_kfunc(u32 btf_id); 443 static bool is_async_callback_calling_kfunc(u32 btf_id); 444 static bool is_callback_calling_kfunc(u32 btf_id); 445 static bool is_bpf_throw_kfunc(struct bpf_insn *insn); 446 447 static bool is_bpf_wq_set_callback_kfunc(u32 btf_id); 448 static bool is_task_work_add_kfunc(u32 func_id); 449 450 static bool is_sync_callback_calling_function(enum bpf_func_id func_id) 451 { 452 return func_id == BPF_FUNC_for_each_map_elem || 453 func_id == BPF_FUNC_find_vma || 454 func_id == BPF_FUNC_loop || 455 func_id == BPF_FUNC_user_ringbuf_drain; 456 } 457 458 static bool is_async_callback_calling_function(enum bpf_func_id func_id) 459 { 460 return func_id == BPF_FUNC_timer_set_callback; 461 } 462 463 static bool is_callback_calling_function(enum bpf_func_id func_id) 464 { 465 return is_sync_callback_calling_function(func_id) || 466 is_async_callback_calling_function(func_id); 467 } 468 469 bool bpf_is_sync_callback_calling_insn(struct bpf_insn *insn) 470 { 471 return (bpf_helper_call(insn) && is_sync_callback_calling_function(insn->imm)) || 472 (bpf_pseudo_kfunc_call(insn) && is_sync_callback_calling_kfunc(insn->imm)); 473 } 474 475 bool bpf_is_async_callback_calling_insn(struct bpf_insn *insn) 476 { 477 return (bpf_helper_call(insn) && is_async_callback_calling_function(insn->imm)) || 478 (bpf_pseudo_kfunc_call(insn) && is_async_callback_calling_kfunc(insn->imm)); 479 } 480 481 static bool is_async_cb_sleepable(struct bpf_verifier_env *env, struct bpf_insn *insn) 482 { 483 /* bpf_timer callbacks are never sleepable. */ 484 if (bpf_helper_call(insn) && insn->imm == BPF_FUNC_timer_set_callback) 485 return false; 486 487 /* bpf_wq and bpf_task_work callbacks are always sleepable. */ 488 if (bpf_pseudo_kfunc_call(insn) && insn->off == 0 && 489 (is_bpf_wq_set_callback_kfunc(insn->imm) || is_task_work_add_kfunc(insn->imm))) 490 return true; 491 492 verifier_bug(env, "unhandled async callback in is_async_cb_sleepable"); 493 return false; 494 } 495 496 bool bpf_is_may_goto_insn(struct bpf_insn *insn) 497 { 498 return insn->code == (BPF_JMP | BPF_JCOND) && insn->src_reg == BPF_MAY_GOTO; 499 } 500 501 static bool helper_multiple_ref_obj_use(enum bpf_func_id func_id, 502 const struct bpf_map *map) 503 { 504 int ref_obj_uses = 0; 505 506 if (is_ptr_cast_function(func_id)) 507 ref_obj_uses++; 508 if (is_acquire_function(func_id, map)) 509 ref_obj_uses++; 510 if (is_dynptr_ref_function(func_id)) 511 ref_obj_uses++; 512 513 return ref_obj_uses > 1; 514 } 515 516 517 static bool is_spi_bounds_valid(struct bpf_func_state *state, int spi, int nr_slots) 518 { 519 int allocated_slots = state->allocated_stack / BPF_REG_SIZE; 520 521 /* We need to check that slots between [spi - nr_slots + 1, spi] are 522 * within [0, allocated_stack). 523 * 524 * Please note that the spi grows downwards. For example, a dynptr 525 * takes the size of two stack slots; the first slot will be at 526 * spi and the second slot will be at spi - 1. 527 */ 528 return spi - nr_slots + 1 >= 0 && spi < allocated_slots; 529 } 530 531 static int stack_slot_obj_get_spi(struct bpf_verifier_env *env, struct bpf_reg_state *reg, 532 const char *obj_kind, int nr_slots) 533 { 534 int off, spi; 535 536 if (!tnum_is_const(reg->var_off)) { 537 verbose(env, "%s has to be at a constant offset\n", obj_kind); 538 return -EINVAL; 539 } 540 541 off = reg->var_off.value; 542 if (off % BPF_REG_SIZE) { 543 verbose(env, "cannot pass in %s at an offset=%d\n", obj_kind, off); 544 return -EINVAL; 545 } 546 547 spi = bpf_get_spi(off); 548 if (spi + 1 < nr_slots) { 549 verbose(env, "cannot pass in %s at an offset=%d\n", obj_kind, off); 550 return -EINVAL; 551 } 552 553 if (!is_spi_bounds_valid(bpf_func(env, reg), spi, nr_slots)) 554 return -ERANGE; 555 return spi; 556 } 557 558 static int dynptr_get_spi(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 559 { 560 return stack_slot_obj_get_spi(env, reg, "dynptr", BPF_DYNPTR_NR_SLOTS); 561 } 562 563 static int iter_get_spi(struct bpf_verifier_env *env, struct bpf_reg_state *reg, int nr_slots) 564 { 565 return stack_slot_obj_get_spi(env, reg, "iter", nr_slots); 566 } 567 568 static int irq_flag_get_spi(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 569 { 570 return stack_slot_obj_get_spi(env, reg, "irq_flag", 1); 571 } 572 573 static enum bpf_dynptr_type arg_to_dynptr_type(enum bpf_arg_type arg_type) 574 { 575 switch (arg_type & DYNPTR_TYPE_FLAG_MASK) { 576 case DYNPTR_TYPE_LOCAL: 577 return BPF_DYNPTR_TYPE_LOCAL; 578 case DYNPTR_TYPE_RINGBUF: 579 return BPF_DYNPTR_TYPE_RINGBUF; 580 case DYNPTR_TYPE_SKB: 581 return BPF_DYNPTR_TYPE_SKB; 582 case DYNPTR_TYPE_XDP: 583 return BPF_DYNPTR_TYPE_XDP; 584 case DYNPTR_TYPE_SKB_META: 585 return BPF_DYNPTR_TYPE_SKB_META; 586 case DYNPTR_TYPE_FILE: 587 return BPF_DYNPTR_TYPE_FILE; 588 default: 589 return BPF_DYNPTR_TYPE_INVALID; 590 } 591 } 592 593 static enum bpf_type_flag get_dynptr_type_flag(enum bpf_dynptr_type type) 594 { 595 switch (type) { 596 case BPF_DYNPTR_TYPE_LOCAL: 597 return DYNPTR_TYPE_LOCAL; 598 case BPF_DYNPTR_TYPE_RINGBUF: 599 return DYNPTR_TYPE_RINGBUF; 600 case BPF_DYNPTR_TYPE_SKB: 601 return DYNPTR_TYPE_SKB; 602 case BPF_DYNPTR_TYPE_XDP: 603 return DYNPTR_TYPE_XDP; 604 case BPF_DYNPTR_TYPE_SKB_META: 605 return DYNPTR_TYPE_SKB_META; 606 case BPF_DYNPTR_TYPE_FILE: 607 return DYNPTR_TYPE_FILE; 608 default: 609 return 0; 610 } 611 } 612 613 static bool dynptr_type_refcounted(enum bpf_dynptr_type type) 614 { 615 return type == BPF_DYNPTR_TYPE_RINGBUF || type == BPF_DYNPTR_TYPE_FILE; 616 } 617 618 static void __mark_dynptr_reg(struct bpf_reg_state *reg, 619 enum bpf_dynptr_type type, 620 bool first_slot, int dynptr_id); 621 622 623 static void mark_dynptr_stack_regs(struct bpf_verifier_env *env, 624 struct bpf_reg_state *sreg1, 625 struct bpf_reg_state *sreg2, 626 enum bpf_dynptr_type type) 627 { 628 int id = ++env->id_gen; 629 630 __mark_dynptr_reg(sreg1, type, true, id); 631 __mark_dynptr_reg(sreg2, type, false, id); 632 } 633 634 static void mark_dynptr_cb_reg(struct bpf_verifier_env *env, 635 struct bpf_reg_state *reg, 636 enum bpf_dynptr_type type) 637 { 638 __mark_dynptr_reg(reg, type, true, ++env->id_gen); 639 } 640 641 static int destroy_if_dynptr_stack_slot(struct bpf_verifier_env *env, 642 struct bpf_func_state *state, int spi); 643 644 static int mark_stack_slots_dynptr(struct bpf_verifier_env *env, struct bpf_reg_state *reg, 645 enum bpf_arg_type arg_type, int insn_idx, int clone_ref_obj_id) 646 { 647 struct bpf_func_state *state = bpf_func(env, reg); 648 enum bpf_dynptr_type type; 649 int spi, i, err; 650 651 spi = dynptr_get_spi(env, reg); 652 if (spi < 0) 653 return spi; 654 655 /* We cannot assume both spi and spi - 1 belong to the same dynptr, 656 * hence we need to call destroy_if_dynptr_stack_slot twice for both, 657 * to ensure that for the following example: 658 * [d1][d1][d2][d2] 659 * spi 3 2 1 0 660 * So marking spi = 2 should lead to destruction of both d1 and d2. In 661 * case they do belong to same dynptr, second call won't see slot_type 662 * as STACK_DYNPTR and will simply skip destruction. 663 */ 664 err = destroy_if_dynptr_stack_slot(env, state, spi); 665 if (err) 666 return err; 667 err = destroy_if_dynptr_stack_slot(env, state, spi - 1); 668 if (err) 669 return err; 670 671 for (i = 0; i < BPF_REG_SIZE; i++) { 672 state->stack[spi].slot_type[i] = STACK_DYNPTR; 673 state->stack[spi - 1].slot_type[i] = STACK_DYNPTR; 674 } 675 676 type = arg_to_dynptr_type(arg_type); 677 if (type == BPF_DYNPTR_TYPE_INVALID) 678 return -EINVAL; 679 680 mark_dynptr_stack_regs(env, &state->stack[spi].spilled_ptr, 681 &state->stack[spi - 1].spilled_ptr, type); 682 683 if (dynptr_type_refcounted(type)) { 684 /* The id is used to track proper releasing */ 685 int id; 686 687 if (clone_ref_obj_id) 688 id = clone_ref_obj_id; 689 else 690 id = acquire_reference(env, insn_idx); 691 692 if (id < 0) 693 return id; 694 695 state->stack[spi].spilled_ptr.ref_obj_id = id; 696 state->stack[spi - 1].spilled_ptr.ref_obj_id = id; 697 } 698 699 return 0; 700 } 701 702 static void invalidate_dynptr(struct bpf_verifier_env *env, struct bpf_func_state *state, int spi) 703 { 704 int i; 705 706 for (i = 0; i < BPF_REG_SIZE; i++) { 707 state->stack[spi].slot_type[i] = STACK_INVALID; 708 state->stack[spi - 1].slot_type[i] = STACK_INVALID; 709 } 710 711 bpf_mark_reg_not_init(env, &state->stack[spi].spilled_ptr); 712 bpf_mark_reg_not_init(env, &state->stack[spi - 1].spilled_ptr); 713 } 714 715 static int unmark_stack_slots_dynptr(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 716 { 717 struct bpf_func_state *state = bpf_func(env, reg); 718 int spi, ref_obj_id, i; 719 720 /* 721 * This can only be set for PTR_TO_STACK, as CONST_PTR_TO_DYNPTR cannot 722 * be released by any dynptr helper. Hence, unmark_stack_slots_dynptr 723 * is safe to do directly. 724 */ 725 if (reg->type == CONST_PTR_TO_DYNPTR) { 726 verifier_bug(env, "CONST_PTR_TO_DYNPTR cannot be released"); 727 return -EFAULT; 728 } 729 spi = dynptr_get_spi(env, reg); 730 if (spi < 0) 731 return spi; 732 733 if (!dynptr_type_refcounted(state->stack[spi].spilled_ptr.dynptr.type)) { 734 invalidate_dynptr(env, state, spi); 735 return 0; 736 } 737 738 ref_obj_id = state->stack[spi].spilled_ptr.ref_obj_id; 739 740 /* If the dynptr has a ref_obj_id, then we need to invalidate 741 * two things: 742 * 743 * 1) Any dynptrs with a matching ref_obj_id (clones) 744 * 2) Any slices derived from this dynptr. 745 */ 746 747 /* Invalidate any slices associated with this dynptr */ 748 WARN_ON_ONCE(release_reference(env, ref_obj_id)); 749 750 /* Invalidate any dynptr clones */ 751 for (i = 1; i < state->allocated_stack / BPF_REG_SIZE; i++) { 752 if (state->stack[i].spilled_ptr.ref_obj_id != ref_obj_id) 753 continue; 754 755 /* it should always be the case that if the ref obj id 756 * matches then the stack slot also belongs to a 757 * dynptr 758 */ 759 if (state->stack[i].slot_type[0] != STACK_DYNPTR) { 760 verifier_bug(env, "misconfigured ref_obj_id"); 761 return -EFAULT; 762 } 763 if (state->stack[i].spilled_ptr.dynptr.first_slot) 764 invalidate_dynptr(env, state, i); 765 } 766 767 return 0; 768 } 769 770 static void __mark_reg_unknown(const struct bpf_verifier_env *env, 771 struct bpf_reg_state *reg); 772 773 static void mark_reg_invalid(const struct bpf_verifier_env *env, struct bpf_reg_state *reg) 774 { 775 if (!env->allow_ptr_leaks) 776 bpf_mark_reg_not_init(env, reg); 777 else 778 __mark_reg_unknown(env, reg); 779 } 780 781 static int destroy_if_dynptr_stack_slot(struct bpf_verifier_env *env, 782 struct bpf_func_state *state, int spi) 783 { 784 struct bpf_func_state *fstate; 785 struct bpf_reg_state *dreg; 786 int i, dynptr_id; 787 788 /* We always ensure that STACK_DYNPTR is never set partially, 789 * hence just checking for slot_type[0] is enough. This is 790 * different for STACK_SPILL, where it may be only set for 791 * 1 byte, so code has to use is_spilled_reg. 792 */ 793 if (state->stack[spi].slot_type[0] != STACK_DYNPTR) 794 return 0; 795 796 /* Reposition spi to first slot */ 797 if (!state->stack[spi].spilled_ptr.dynptr.first_slot) 798 spi = spi + 1; 799 800 if (dynptr_type_refcounted(state->stack[spi].spilled_ptr.dynptr.type)) { 801 int ref_obj_id = state->stack[spi].spilled_ptr.ref_obj_id; 802 int ref_cnt = 0; 803 804 /* 805 * A referenced dynptr can be overwritten only if there is at 806 * least one other dynptr sharing the same ref_obj_id, 807 * ensuring the reference can still be properly released. 808 */ 809 for (i = 0; i < state->allocated_stack / BPF_REG_SIZE; i++) { 810 if (state->stack[i].slot_type[0] != STACK_DYNPTR) 811 continue; 812 if (!state->stack[i].spilled_ptr.dynptr.first_slot) 813 continue; 814 if (state->stack[i].spilled_ptr.ref_obj_id == ref_obj_id) 815 ref_cnt++; 816 } 817 818 if (ref_cnt <= 1) { 819 verbose(env, "cannot overwrite referenced dynptr\n"); 820 return -EINVAL; 821 } 822 } 823 824 mark_stack_slot_scratched(env, spi); 825 mark_stack_slot_scratched(env, spi - 1); 826 827 /* Writing partially to one dynptr stack slot destroys both. */ 828 for (i = 0; i < BPF_REG_SIZE; i++) { 829 state->stack[spi].slot_type[i] = STACK_INVALID; 830 state->stack[spi - 1].slot_type[i] = STACK_INVALID; 831 } 832 833 dynptr_id = state->stack[spi].spilled_ptr.id; 834 /* Invalidate any slices associated with this dynptr */ 835 bpf_for_each_reg_in_vstate(env->cur_state, fstate, dreg, ({ 836 /* Dynptr slices are only PTR_TO_MEM_OR_NULL and PTR_TO_MEM */ 837 if (dreg->type != (PTR_TO_MEM | PTR_MAYBE_NULL) && dreg->type != PTR_TO_MEM) 838 continue; 839 if (dreg->dynptr_id == dynptr_id) 840 mark_reg_invalid(env, dreg); 841 })); 842 843 /* Do not release reference state, we are destroying dynptr on stack, 844 * not using some helper to release it. Just reset register. 845 */ 846 bpf_mark_reg_not_init(env, &state->stack[spi].spilled_ptr); 847 bpf_mark_reg_not_init(env, &state->stack[spi - 1].spilled_ptr); 848 849 return 0; 850 } 851 852 static bool is_dynptr_reg_valid_uninit(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 853 { 854 int spi; 855 856 if (reg->type == CONST_PTR_TO_DYNPTR) 857 return false; 858 859 spi = dynptr_get_spi(env, reg); 860 861 /* -ERANGE (i.e. spi not falling into allocated stack slots) isn't an 862 * error because this just means the stack state hasn't been updated yet. 863 * We will do check_mem_access to check and update stack bounds later. 864 */ 865 if (spi < 0 && spi != -ERANGE) 866 return false; 867 868 /* We don't need to check if the stack slots are marked by previous 869 * dynptr initializations because we allow overwriting existing unreferenced 870 * STACK_DYNPTR slots, see mark_stack_slots_dynptr which calls 871 * destroy_if_dynptr_stack_slot to ensure dynptr objects at the slots we are 872 * touching are completely destructed before we reinitialize them for a new 873 * one. For referenced ones, destroy_if_dynptr_stack_slot returns an error early 874 * instead of delaying it until the end where the user will get "Unreleased 875 * reference" error. 876 */ 877 return true; 878 } 879 880 static bool is_dynptr_reg_valid_init(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 881 { 882 struct bpf_func_state *state = bpf_func(env, reg); 883 int i, spi; 884 885 /* This already represents first slot of initialized bpf_dynptr. 886 * 887 * CONST_PTR_TO_DYNPTR already has fixed and var_off as 0 due to 888 * check_func_arg_reg_off's logic, so we don't need to check its 889 * offset and alignment. 890 */ 891 if (reg->type == CONST_PTR_TO_DYNPTR) 892 return true; 893 894 spi = dynptr_get_spi(env, reg); 895 if (spi < 0) 896 return false; 897 if (!state->stack[spi].spilled_ptr.dynptr.first_slot) 898 return false; 899 900 for (i = 0; i < BPF_REG_SIZE; i++) { 901 if (state->stack[spi].slot_type[i] != STACK_DYNPTR || 902 state->stack[spi - 1].slot_type[i] != STACK_DYNPTR) 903 return false; 904 } 905 906 return true; 907 } 908 909 static bool is_dynptr_type_expected(struct bpf_verifier_env *env, struct bpf_reg_state *reg, 910 enum bpf_arg_type arg_type) 911 { 912 struct bpf_func_state *state = bpf_func(env, reg); 913 enum bpf_dynptr_type dynptr_type; 914 int spi; 915 916 /* ARG_PTR_TO_DYNPTR takes any type of dynptr */ 917 if (arg_type == ARG_PTR_TO_DYNPTR) 918 return true; 919 920 dynptr_type = arg_to_dynptr_type(arg_type); 921 if (reg->type == CONST_PTR_TO_DYNPTR) { 922 return reg->dynptr.type == dynptr_type; 923 } else { 924 spi = dynptr_get_spi(env, reg); 925 if (spi < 0) 926 return false; 927 return state->stack[spi].spilled_ptr.dynptr.type == dynptr_type; 928 } 929 } 930 931 static void __mark_reg_known_zero(struct bpf_reg_state *reg); 932 933 static bool in_rcu_cs(struct bpf_verifier_env *env); 934 935 static bool is_kfunc_rcu_protected(struct bpf_kfunc_call_arg_meta *meta); 936 937 static int mark_stack_slots_iter(struct bpf_verifier_env *env, 938 struct bpf_kfunc_call_arg_meta *meta, 939 struct bpf_reg_state *reg, int insn_idx, 940 struct btf *btf, u32 btf_id, int nr_slots) 941 { 942 struct bpf_func_state *state = bpf_func(env, reg); 943 int spi, i, j, id; 944 945 spi = iter_get_spi(env, reg, nr_slots); 946 if (spi < 0) 947 return spi; 948 949 id = acquire_reference(env, insn_idx); 950 if (id < 0) 951 return id; 952 953 for (i = 0; i < nr_slots; i++) { 954 struct bpf_stack_state *slot = &state->stack[spi - i]; 955 struct bpf_reg_state *st = &slot->spilled_ptr; 956 957 __mark_reg_known_zero(st); 958 st->type = PTR_TO_STACK; /* we don't have dedicated reg type */ 959 if (is_kfunc_rcu_protected(meta)) { 960 if (in_rcu_cs(env)) 961 st->type |= MEM_RCU; 962 else 963 st->type |= PTR_UNTRUSTED; 964 } 965 st->ref_obj_id = i == 0 ? id : 0; 966 st->iter.btf = btf; 967 st->iter.btf_id = btf_id; 968 st->iter.state = BPF_ITER_STATE_ACTIVE; 969 st->iter.depth = 0; 970 971 for (j = 0; j < BPF_REG_SIZE; j++) 972 slot->slot_type[j] = STACK_ITER; 973 974 mark_stack_slot_scratched(env, spi - i); 975 } 976 977 return 0; 978 } 979 980 static int unmark_stack_slots_iter(struct bpf_verifier_env *env, 981 struct bpf_reg_state *reg, int nr_slots) 982 { 983 struct bpf_func_state *state = bpf_func(env, reg); 984 int spi, i, j; 985 986 spi = iter_get_spi(env, reg, nr_slots); 987 if (spi < 0) 988 return spi; 989 990 for (i = 0; i < nr_slots; i++) { 991 struct bpf_stack_state *slot = &state->stack[spi - i]; 992 struct bpf_reg_state *st = &slot->spilled_ptr; 993 994 if (i == 0) 995 WARN_ON_ONCE(release_reference(env, st->ref_obj_id)); 996 997 bpf_mark_reg_not_init(env, st); 998 999 for (j = 0; j < BPF_REG_SIZE; j++) 1000 slot->slot_type[j] = STACK_INVALID; 1001 1002 mark_stack_slot_scratched(env, spi - i); 1003 } 1004 1005 return 0; 1006 } 1007 1008 static bool is_iter_reg_valid_uninit(struct bpf_verifier_env *env, 1009 struct bpf_reg_state *reg, int nr_slots) 1010 { 1011 struct bpf_func_state *state = bpf_func(env, reg); 1012 int spi, i, j; 1013 1014 /* For -ERANGE (i.e. spi not falling into allocated stack slots), we 1015 * will do check_mem_access to check and update stack bounds later, so 1016 * return true for that case. 1017 */ 1018 spi = iter_get_spi(env, reg, nr_slots); 1019 if (spi == -ERANGE) 1020 return true; 1021 if (spi < 0) 1022 return false; 1023 1024 for (i = 0; i < nr_slots; i++) { 1025 struct bpf_stack_state *slot = &state->stack[spi - i]; 1026 1027 for (j = 0; j < BPF_REG_SIZE; j++) 1028 if (slot->slot_type[j] == STACK_ITER) 1029 return false; 1030 } 1031 1032 return true; 1033 } 1034 1035 static int is_iter_reg_valid_init(struct bpf_verifier_env *env, struct bpf_reg_state *reg, 1036 struct btf *btf, u32 btf_id, int nr_slots) 1037 { 1038 struct bpf_func_state *state = bpf_func(env, reg); 1039 int spi, i, j; 1040 1041 spi = iter_get_spi(env, reg, nr_slots); 1042 if (spi < 0) 1043 return -EINVAL; 1044 1045 for (i = 0; i < nr_slots; i++) { 1046 struct bpf_stack_state *slot = &state->stack[spi - i]; 1047 struct bpf_reg_state *st = &slot->spilled_ptr; 1048 1049 if (st->type & PTR_UNTRUSTED) 1050 return -EPROTO; 1051 /* only main (first) slot has ref_obj_id set */ 1052 if (i == 0 && !st->ref_obj_id) 1053 return -EINVAL; 1054 if (i != 0 && st->ref_obj_id) 1055 return -EINVAL; 1056 if (st->iter.btf != btf || st->iter.btf_id != btf_id) 1057 return -EINVAL; 1058 1059 for (j = 0; j < BPF_REG_SIZE; j++) 1060 if (slot->slot_type[j] != STACK_ITER) 1061 return -EINVAL; 1062 } 1063 1064 return 0; 1065 } 1066 1067 static int acquire_irq_state(struct bpf_verifier_env *env, int insn_idx); 1068 static int release_irq_state(struct bpf_verifier_state *state, int id); 1069 1070 static int mark_stack_slot_irq_flag(struct bpf_verifier_env *env, 1071 struct bpf_kfunc_call_arg_meta *meta, 1072 struct bpf_reg_state *reg, int insn_idx, 1073 int kfunc_class) 1074 { 1075 struct bpf_func_state *state = bpf_func(env, reg); 1076 struct bpf_stack_state *slot; 1077 struct bpf_reg_state *st; 1078 int spi, i, id; 1079 1080 spi = irq_flag_get_spi(env, reg); 1081 if (spi < 0) 1082 return spi; 1083 1084 id = acquire_irq_state(env, insn_idx); 1085 if (id < 0) 1086 return id; 1087 1088 slot = &state->stack[spi]; 1089 st = &slot->spilled_ptr; 1090 1091 __mark_reg_known_zero(st); 1092 st->type = PTR_TO_STACK; /* we don't have dedicated reg type */ 1093 st->ref_obj_id = id; 1094 st->irq.kfunc_class = kfunc_class; 1095 1096 for (i = 0; i < BPF_REG_SIZE; i++) 1097 slot->slot_type[i] = STACK_IRQ_FLAG; 1098 1099 mark_stack_slot_scratched(env, spi); 1100 return 0; 1101 } 1102 1103 static int unmark_stack_slot_irq_flag(struct bpf_verifier_env *env, struct bpf_reg_state *reg, 1104 int kfunc_class) 1105 { 1106 struct bpf_func_state *state = bpf_func(env, reg); 1107 struct bpf_stack_state *slot; 1108 struct bpf_reg_state *st; 1109 int spi, i, err; 1110 1111 spi = irq_flag_get_spi(env, reg); 1112 if (spi < 0) 1113 return spi; 1114 1115 slot = &state->stack[spi]; 1116 st = &slot->spilled_ptr; 1117 1118 if (st->irq.kfunc_class != kfunc_class) { 1119 const char *flag_kfunc = st->irq.kfunc_class == IRQ_NATIVE_KFUNC ? "native" : "lock"; 1120 const char *used_kfunc = kfunc_class == IRQ_NATIVE_KFUNC ? "native" : "lock"; 1121 1122 verbose(env, "irq flag acquired by %s kfuncs cannot be restored with %s kfuncs\n", 1123 flag_kfunc, used_kfunc); 1124 return -EINVAL; 1125 } 1126 1127 err = release_irq_state(env->cur_state, st->ref_obj_id); 1128 WARN_ON_ONCE(err && err != -EACCES); 1129 if (err) { 1130 int insn_idx = 0; 1131 1132 for (int i = 0; i < env->cur_state->acquired_refs; i++) { 1133 if (env->cur_state->refs[i].id == env->cur_state->active_irq_id) { 1134 insn_idx = env->cur_state->refs[i].insn_idx; 1135 break; 1136 } 1137 } 1138 1139 verbose(env, "cannot restore irq state out of order, expected id=%d acquired at insn_idx=%d\n", 1140 env->cur_state->active_irq_id, insn_idx); 1141 return err; 1142 } 1143 1144 bpf_mark_reg_not_init(env, st); 1145 1146 for (i = 0; i < BPF_REG_SIZE; i++) 1147 slot->slot_type[i] = STACK_INVALID; 1148 1149 mark_stack_slot_scratched(env, spi); 1150 return 0; 1151 } 1152 1153 static bool is_irq_flag_reg_valid_uninit(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 1154 { 1155 struct bpf_func_state *state = bpf_func(env, reg); 1156 struct bpf_stack_state *slot; 1157 int spi, i; 1158 1159 /* For -ERANGE (i.e. spi not falling into allocated stack slots), we 1160 * will do check_mem_access to check and update stack bounds later, so 1161 * return true for that case. 1162 */ 1163 spi = irq_flag_get_spi(env, reg); 1164 if (spi == -ERANGE) 1165 return true; 1166 if (spi < 0) 1167 return false; 1168 1169 slot = &state->stack[spi]; 1170 1171 for (i = 0; i < BPF_REG_SIZE; i++) 1172 if (slot->slot_type[i] == STACK_IRQ_FLAG) 1173 return false; 1174 return true; 1175 } 1176 1177 static int is_irq_flag_reg_valid_init(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 1178 { 1179 struct bpf_func_state *state = bpf_func(env, reg); 1180 struct bpf_stack_state *slot; 1181 struct bpf_reg_state *st; 1182 int spi, i; 1183 1184 spi = irq_flag_get_spi(env, reg); 1185 if (spi < 0) 1186 return -EINVAL; 1187 1188 slot = &state->stack[spi]; 1189 st = &slot->spilled_ptr; 1190 1191 if (!st->ref_obj_id) 1192 return -EINVAL; 1193 1194 for (i = 0; i < BPF_REG_SIZE; i++) 1195 if (slot->slot_type[i] != STACK_IRQ_FLAG) 1196 return -EINVAL; 1197 return 0; 1198 } 1199 1200 /* Check if given stack slot is "special": 1201 * - spilled register state (STACK_SPILL); 1202 * - dynptr state (STACK_DYNPTR); 1203 * - iter state (STACK_ITER). 1204 * - irq flag state (STACK_IRQ_FLAG) 1205 */ 1206 static bool is_stack_slot_special(const struct bpf_stack_state *stack) 1207 { 1208 enum bpf_stack_slot_type type = stack->slot_type[BPF_REG_SIZE - 1]; 1209 1210 switch (type) { 1211 case STACK_SPILL: 1212 case STACK_DYNPTR: 1213 case STACK_ITER: 1214 case STACK_IRQ_FLAG: 1215 return true; 1216 case STACK_INVALID: 1217 case STACK_POISON: 1218 case STACK_MISC: 1219 case STACK_ZERO: 1220 return false; 1221 default: 1222 WARN_ONCE(1, "unknown stack slot type %d\n", type); 1223 return true; 1224 } 1225 } 1226 1227 /* The reg state of a pointer or a bounded scalar was saved when 1228 * it was spilled to the stack. 1229 */ 1230 1231 /* 1232 * Mark stack slot as STACK_MISC, unless it is already: 1233 * - STACK_INVALID, in which case they are equivalent. 1234 * - STACK_ZERO, in which case we preserve more precise STACK_ZERO. 1235 * - STACK_POISON, which truly forbids access to the slot. 1236 * Regardless of allow_ptr_leaks setting (i.e., privileged or unprivileged 1237 * mode), we won't promote STACK_INVALID to STACK_MISC. In privileged case it is 1238 * unnecessary as both are considered equivalent when loading data and pruning, 1239 * in case of unprivileged mode it will be incorrect to allow reads of invalid 1240 * slots. 1241 */ 1242 static void mark_stack_slot_misc(struct bpf_verifier_env *env, u8 *stype) 1243 { 1244 if (*stype == STACK_ZERO) 1245 return; 1246 if (*stype == STACK_INVALID || *stype == STACK_POISON) 1247 return; 1248 *stype = STACK_MISC; 1249 } 1250 1251 static void scrub_spilled_slot(u8 *stype) 1252 { 1253 if (*stype != STACK_INVALID && *stype != STACK_POISON) 1254 *stype = STACK_MISC; 1255 } 1256 1257 /* copy array src of length n * size bytes to dst. dst is reallocated if it's too 1258 * small to hold src. This is different from krealloc since we don't want to preserve 1259 * the contents of dst. 1260 * 1261 * Leaves dst untouched if src is NULL or length is zero. Returns NULL if memory could 1262 * not be allocated. 1263 */ 1264 static void *copy_array(void *dst, const void *src, size_t n, size_t size, gfp_t flags) 1265 { 1266 size_t alloc_bytes; 1267 void *orig = dst; 1268 size_t bytes; 1269 1270 if (ZERO_OR_NULL_PTR(src)) 1271 goto out; 1272 1273 if (unlikely(check_mul_overflow(n, size, &bytes))) 1274 return NULL; 1275 1276 alloc_bytes = max(ksize(orig), kmalloc_size_roundup(bytes)); 1277 dst = krealloc(orig, alloc_bytes, flags); 1278 if (!dst) { 1279 kfree(orig); 1280 return NULL; 1281 } 1282 1283 memcpy(dst, src, bytes); 1284 out: 1285 return dst ? dst : ZERO_SIZE_PTR; 1286 } 1287 1288 /* resize an array from old_n items to new_n items. the array is reallocated if it's too 1289 * small to hold new_n items. new items are zeroed out if the array grows. 1290 * 1291 * Contrary to krealloc_array, does not free arr if new_n is zero. 1292 */ 1293 static void *realloc_array(void *arr, size_t old_n, size_t new_n, size_t size) 1294 { 1295 size_t alloc_size; 1296 void *new_arr; 1297 1298 if (!new_n || old_n == new_n) 1299 goto out; 1300 1301 alloc_size = kmalloc_size_roundup(size_mul(new_n, size)); 1302 new_arr = krealloc(arr, alloc_size, GFP_KERNEL_ACCOUNT); 1303 if (!new_arr) { 1304 kfree(arr); 1305 return NULL; 1306 } 1307 arr = new_arr; 1308 1309 if (new_n > old_n) 1310 memset(arr + old_n * size, 0, (new_n - old_n) * size); 1311 1312 out: 1313 return arr ? arr : ZERO_SIZE_PTR; 1314 } 1315 1316 static int copy_reference_state(struct bpf_verifier_state *dst, const struct bpf_verifier_state *src) 1317 { 1318 dst->refs = copy_array(dst->refs, src->refs, src->acquired_refs, 1319 sizeof(struct bpf_reference_state), GFP_KERNEL_ACCOUNT); 1320 if (!dst->refs) 1321 return -ENOMEM; 1322 1323 dst->acquired_refs = src->acquired_refs; 1324 dst->active_locks = src->active_locks; 1325 dst->active_preempt_locks = src->active_preempt_locks; 1326 dst->active_rcu_locks = src->active_rcu_locks; 1327 dst->active_irq_id = src->active_irq_id; 1328 dst->active_lock_id = src->active_lock_id; 1329 dst->active_lock_ptr = src->active_lock_ptr; 1330 return 0; 1331 } 1332 1333 static int copy_stack_state(struct bpf_func_state *dst, const struct bpf_func_state *src) 1334 { 1335 size_t n = src->allocated_stack / BPF_REG_SIZE; 1336 1337 dst->stack = copy_array(dst->stack, src->stack, n, sizeof(struct bpf_stack_state), 1338 GFP_KERNEL_ACCOUNT); 1339 if (!dst->stack) 1340 return -ENOMEM; 1341 1342 dst->allocated_stack = src->allocated_stack; 1343 return 0; 1344 } 1345 1346 static int resize_reference_state(struct bpf_verifier_state *state, size_t n) 1347 { 1348 state->refs = realloc_array(state->refs, state->acquired_refs, n, 1349 sizeof(struct bpf_reference_state)); 1350 if (!state->refs) 1351 return -ENOMEM; 1352 1353 state->acquired_refs = n; 1354 return 0; 1355 } 1356 1357 /* Possibly update state->allocated_stack to be at least size bytes. Also 1358 * possibly update the function's high-water mark in its bpf_subprog_info. 1359 */ 1360 static int grow_stack_state(struct bpf_verifier_env *env, struct bpf_func_state *state, int size) 1361 { 1362 size_t old_n = state->allocated_stack / BPF_REG_SIZE, n; 1363 1364 /* The stack size is always a multiple of BPF_REG_SIZE. */ 1365 size = round_up(size, BPF_REG_SIZE); 1366 n = size / BPF_REG_SIZE; 1367 1368 if (old_n >= n) 1369 return 0; 1370 1371 state->stack = realloc_array(state->stack, old_n, n, sizeof(struct bpf_stack_state)); 1372 if (!state->stack) 1373 return -ENOMEM; 1374 1375 state->allocated_stack = size; 1376 1377 /* update known max for given subprogram */ 1378 if (env->subprog_info[state->subprogno].stack_depth < size) 1379 env->subprog_info[state->subprogno].stack_depth = size; 1380 1381 return 0; 1382 } 1383 1384 /* Acquire a pointer id from the env and update the state->refs to include 1385 * this new pointer reference. 1386 * On success, returns a valid pointer id to associate with the register 1387 * On failure, returns a negative errno. 1388 */ 1389 static struct bpf_reference_state *acquire_reference_state(struct bpf_verifier_env *env, int insn_idx) 1390 { 1391 struct bpf_verifier_state *state = env->cur_state; 1392 int new_ofs = state->acquired_refs; 1393 int err; 1394 1395 err = resize_reference_state(state, state->acquired_refs + 1); 1396 if (err) 1397 return NULL; 1398 state->refs[new_ofs].insn_idx = insn_idx; 1399 1400 return &state->refs[new_ofs]; 1401 } 1402 1403 static int acquire_reference(struct bpf_verifier_env *env, int insn_idx) 1404 { 1405 struct bpf_reference_state *s; 1406 1407 s = acquire_reference_state(env, insn_idx); 1408 if (!s) 1409 return -ENOMEM; 1410 s->type = REF_TYPE_PTR; 1411 s->id = ++env->id_gen; 1412 return s->id; 1413 } 1414 1415 static int acquire_lock_state(struct bpf_verifier_env *env, int insn_idx, enum ref_state_type type, 1416 int id, void *ptr) 1417 { 1418 struct bpf_verifier_state *state = env->cur_state; 1419 struct bpf_reference_state *s; 1420 1421 s = acquire_reference_state(env, insn_idx); 1422 if (!s) 1423 return -ENOMEM; 1424 s->type = type; 1425 s->id = id; 1426 s->ptr = ptr; 1427 1428 state->active_locks++; 1429 state->active_lock_id = id; 1430 state->active_lock_ptr = ptr; 1431 return 0; 1432 } 1433 1434 static int acquire_irq_state(struct bpf_verifier_env *env, int insn_idx) 1435 { 1436 struct bpf_verifier_state *state = env->cur_state; 1437 struct bpf_reference_state *s; 1438 1439 s = acquire_reference_state(env, insn_idx); 1440 if (!s) 1441 return -ENOMEM; 1442 s->type = REF_TYPE_IRQ; 1443 s->id = ++env->id_gen; 1444 1445 state->active_irq_id = s->id; 1446 return s->id; 1447 } 1448 1449 static void release_reference_state(struct bpf_verifier_state *state, int idx) 1450 { 1451 int last_idx; 1452 size_t rem; 1453 1454 /* IRQ state requires the relative ordering of elements remaining the 1455 * same, since it relies on the refs array to behave as a stack, so that 1456 * it can detect out-of-order IRQ restore. Hence use memmove to shift 1457 * the array instead of swapping the final element into the deleted idx. 1458 */ 1459 last_idx = state->acquired_refs - 1; 1460 rem = state->acquired_refs - idx - 1; 1461 if (last_idx && idx != last_idx) 1462 memmove(&state->refs[idx], &state->refs[idx + 1], sizeof(*state->refs) * rem); 1463 memset(&state->refs[last_idx], 0, sizeof(*state->refs)); 1464 state->acquired_refs--; 1465 return; 1466 } 1467 1468 static bool find_reference_state(struct bpf_verifier_state *state, int ptr_id) 1469 { 1470 int i; 1471 1472 for (i = 0; i < state->acquired_refs; i++) 1473 if (state->refs[i].id == ptr_id) 1474 return true; 1475 1476 return false; 1477 } 1478 1479 static int release_lock_state(struct bpf_verifier_state *state, int type, int id, void *ptr) 1480 { 1481 void *prev_ptr = NULL; 1482 u32 prev_id = 0; 1483 int i; 1484 1485 for (i = 0; i < state->acquired_refs; i++) { 1486 if (state->refs[i].type == type && state->refs[i].id == id && 1487 state->refs[i].ptr == ptr) { 1488 release_reference_state(state, i); 1489 state->active_locks--; 1490 /* Reassign active lock (id, ptr). */ 1491 state->active_lock_id = prev_id; 1492 state->active_lock_ptr = prev_ptr; 1493 return 0; 1494 } 1495 if (state->refs[i].type & REF_TYPE_LOCK_MASK) { 1496 prev_id = state->refs[i].id; 1497 prev_ptr = state->refs[i].ptr; 1498 } 1499 } 1500 return -EINVAL; 1501 } 1502 1503 static int release_irq_state(struct bpf_verifier_state *state, int id) 1504 { 1505 u32 prev_id = 0; 1506 int i; 1507 1508 if (id != state->active_irq_id) 1509 return -EACCES; 1510 1511 for (i = 0; i < state->acquired_refs; i++) { 1512 if (state->refs[i].type != REF_TYPE_IRQ) 1513 continue; 1514 if (state->refs[i].id == id) { 1515 release_reference_state(state, i); 1516 state->active_irq_id = prev_id; 1517 return 0; 1518 } else { 1519 prev_id = state->refs[i].id; 1520 } 1521 } 1522 return -EINVAL; 1523 } 1524 1525 static struct bpf_reference_state *find_lock_state(struct bpf_verifier_state *state, enum ref_state_type type, 1526 int id, void *ptr) 1527 { 1528 int i; 1529 1530 for (i = 0; i < state->acquired_refs; i++) { 1531 struct bpf_reference_state *s = &state->refs[i]; 1532 1533 if (!(s->type & type)) 1534 continue; 1535 1536 if (s->id == id && s->ptr == ptr) 1537 return s; 1538 } 1539 return NULL; 1540 } 1541 1542 static void free_func_state(struct bpf_func_state *state) 1543 { 1544 if (!state) 1545 return; 1546 kfree(state->stack); 1547 kfree(state); 1548 } 1549 1550 void bpf_clear_jmp_history(struct bpf_verifier_state *state) 1551 { 1552 kfree(state->jmp_history); 1553 state->jmp_history = NULL; 1554 state->jmp_history_cnt = 0; 1555 } 1556 1557 void bpf_free_verifier_state(struct bpf_verifier_state *state, 1558 bool free_self) 1559 { 1560 int i; 1561 1562 for (i = 0; i <= state->curframe; i++) { 1563 free_func_state(state->frame[i]); 1564 state->frame[i] = NULL; 1565 } 1566 kfree(state->refs); 1567 bpf_clear_jmp_history(state); 1568 if (free_self) 1569 kfree(state); 1570 } 1571 1572 /* copy verifier state from src to dst growing dst stack space 1573 * when necessary to accommodate larger src stack 1574 */ 1575 static int copy_func_state(struct bpf_func_state *dst, 1576 const struct bpf_func_state *src) 1577 { 1578 memcpy(dst, src, offsetof(struct bpf_func_state, stack)); 1579 return copy_stack_state(dst, src); 1580 } 1581 1582 int bpf_copy_verifier_state(struct bpf_verifier_state *dst_state, 1583 const struct bpf_verifier_state *src) 1584 { 1585 struct bpf_func_state *dst; 1586 int i, err; 1587 1588 dst_state->jmp_history = copy_array(dst_state->jmp_history, src->jmp_history, 1589 src->jmp_history_cnt, sizeof(*dst_state->jmp_history), 1590 GFP_KERNEL_ACCOUNT); 1591 if (!dst_state->jmp_history) 1592 return -ENOMEM; 1593 dst_state->jmp_history_cnt = src->jmp_history_cnt; 1594 1595 /* if dst has more stack frames then src frame, free them, this is also 1596 * necessary in case of exceptional exits using bpf_throw. 1597 */ 1598 for (i = src->curframe + 1; i <= dst_state->curframe; i++) { 1599 free_func_state(dst_state->frame[i]); 1600 dst_state->frame[i] = NULL; 1601 } 1602 err = copy_reference_state(dst_state, src); 1603 if (err) 1604 return err; 1605 dst_state->speculative = src->speculative; 1606 dst_state->in_sleepable = src->in_sleepable; 1607 dst_state->curframe = src->curframe; 1608 dst_state->branches = src->branches; 1609 dst_state->parent = src->parent; 1610 dst_state->first_insn_idx = src->first_insn_idx; 1611 dst_state->last_insn_idx = src->last_insn_idx; 1612 dst_state->dfs_depth = src->dfs_depth; 1613 dst_state->callback_unroll_depth = src->callback_unroll_depth; 1614 dst_state->may_goto_depth = src->may_goto_depth; 1615 dst_state->equal_state = src->equal_state; 1616 for (i = 0; i <= src->curframe; i++) { 1617 dst = dst_state->frame[i]; 1618 if (!dst) { 1619 dst = kzalloc_obj(*dst, GFP_KERNEL_ACCOUNT); 1620 if (!dst) 1621 return -ENOMEM; 1622 dst_state->frame[i] = dst; 1623 } 1624 err = copy_func_state(dst, src->frame[i]); 1625 if (err) 1626 return err; 1627 } 1628 return 0; 1629 } 1630 1631 static u32 state_htab_size(struct bpf_verifier_env *env) 1632 { 1633 return env->prog->len; 1634 } 1635 1636 struct list_head *bpf_explored_state(struct bpf_verifier_env *env, int idx) 1637 { 1638 struct bpf_verifier_state *cur = env->cur_state; 1639 struct bpf_func_state *state = cur->frame[cur->curframe]; 1640 1641 return &env->explored_states[(idx ^ state->callsite) % state_htab_size(env)]; 1642 } 1643 1644 static bool same_callsites(struct bpf_verifier_state *a, struct bpf_verifier_state *b) 1645 { 1646 int fr; 1647 1648 if (a->curframe != b->curframe) 1649 return false; 1650 1651 for (fr = a->curframe; fr >= 0; fr--) 1652 if (a->frame[fr]->callsite != b->frame[fr]->callsite) 1653 return false; 1654 1655 return true; 1656 } 1657 1658 1659 void bpf_free_backedges(struct bpf_scc_visit *visit) 1660 { 1661 struct bpf_scc_backedge *backedge, *next; 1662 1663 for (backedge = visit->backedges; backedge; backedge = next) { 1664 bpf_free_verifier_state(&backedge->state, false); 1665 next = backedge->next; 1666 kfree(backedge); 1667 } 1668 visit->backedges = NULL; 1669 } 1670 1671 static int pop_stack(struct bpf_verifier_env *env, int *prev_insn_idx, 1672 int *insn_idx, bool pop_log) 1673 { 1674 struct bpf_verifier_state *cur = env->cur_state; 1675 struct bpf_verifier_stack_elem *elem, *head = env->head; 1676 int err; 1677 1678 if (env->head == NULL) 1679 return -ENOENT; 1680 1681 if (cur) { 1682 err = bpf_copy_verifier_state(cur, &head->st); 1683 if (err) 1684 return err; 1685 } 1686 if (pop_log) 1687 bpf_vlog_reset(&env->log, head->log_pos); 1688 if (insn_idx) 1689 *insn_idx = head->insn_idx; 1690 if (prev_insn_idx) 1691 *prev_insn_idx = head->prev_insn_idx; 1692 elem = head->next; 1693 bpf_free_verifier_state(&head->st, false); 1694 kfree(head); 1695 env->head = elem; 1696 env->stack_size--; 1697 return 0; 1698 } 1699 1700 static bool error_recoverable_with_nospec(int err) 1701 { 1702 /* Should only return true for non-fatal errors that are allowed to 1703 * occur during speculative verification. For these we can insert a 1704 * nospec and the program might still be accepted. Do not include 1705 * something like ENOMEM because it is likely to re-occur for the next 1706 * architectural path once it has been recovered-from in all speculative 1707 * paths. 1708 */ 1709 return err == -EPERM || err == -EACCES || err == -EINVAL; 1710 } 1711 1712 static struct bpf_verifier_state *push_stack(struct bpf_verifier_env *env, 1713 int insn_idx, int prev_insn_idx, 1714 bool speculative) 1715 { 1716 struct bpf_verifier_state *cur = env->cur_state; 1717 struct bpf_verifier_stack_elem *elem; 1718 int err; 1719 1720 elem = kzalloc_obj(struct bpf_verifier_stack_elem, GFP_KERNEL_ACCOUNT); 1721 if (!elem) 1722 return ERR_PTR(-ENOMEM); 1723 1724 elem->insn_idx = insn_idx; 1725 elem->prev_insn_idx = prev_insn_idx; 1726 elem->next = env->head; 1727 elem->log_pos = env->log.end_pos; 1728 env->head = elem; 1729 env->stack_size++; 1730 err = bpf_copy_verifier_state(&elem->st, cur); 1731 if (err) 1732 return ERR_PTR(-ENOMEM); 1733 elem->st.speculative |= speculative; 1734 if (env->stack_size > BPF_COMPLEXITY_LIMIT_JMP_SEQ) { 1735 verbose(env, "The sequence of %d jumps is too complex.\n", 1736 env->stack_size); 1737 return ERR_PTR(-E2BIG); 1738 } 1739 if (elem->st.parent) { 1740 ++elem->st.parent->branches; 1741 /* WARN_ON(branches > 2) technically makes sense here, 1742 * but 1743 * 1. speculative states will bump 'branches' for non-branch 1744 * instructions 1745 * 2. is_state_visited() heuristics may decide not to create 1746 * a new state for a sequence of branches and all such current 1747 * and cloned states will be pointing to a single parent state 1748 * which might have large 'branches' count. 1749 */ 1750 } 1751 return &elem->st; 1752 } 1753 1754 static const int caller_saved[CALLER_SAVED_REGS] = { 1755 BPF_REG_0, BPF_REG_1, BPF_REG_2, BPF_REG_3, BPF_REG_4, BPF_REG_5 1756 }; 1757 1758 /* This helper doesn't clear reg->id */ 1759 static void ___mark_reg_known(struct bpf_reg_state *reg, u64 imm) 1760 { 1761 reg->var_off = tnum_const(imm); 1762 reg->smin_value = (s64)imm; 1763 reg->smax_value = (s64)imm; 1764 reg->umin_value = imm; 1765 reg->umax_value = imm; 1766 1767 reg->s32_min_value = (s32)imm; 1768 reg->s32_max_value = (s32)imm; 1769 reg->u32_min_value = (u32)imm; 1770 reg->u32_max_value = (u32)imm; 1771 } 1772 1773 /* Mark the unknown part of a register (variable offset or scalar value) as 1774 * known to have the value @imm. 1775 */ 1776 static void __mark_reg_known(struct bpf_reg_state *reg, u64 imm) 1777 { 1778 /* Clear off and union(map_ptr, range) */ 1779 memset(((u8 *)reg) + sizeof(reg->type), 0, 1780 offsetof(struct bpf_reg_state, var_off) - sizeof(reg->type)); 1781 reg->id = 0; 1782 reg->ref_obj_id = 0; 1783 ___mark_reg_known(reg, imm); 1784 } 1785 1786 static void __mark_reg32_known(struct bpf_reg_state *reg, u64 imm) 1787 { 1788 reg->var_off = tnum_const_subreg(reg->var_off, imm); 1789 reg->s32_min_value = (s32)imm; 1790 reg->s32_max_value = (s32)imm; 1791 reg->u32_min_value = (u32)imm; 1792 reg->u32_max_value = (u32)imm; 1793 } 1794 1795 /* Mark the 'variable offset' part of a register as zero. This should be 1796 * used only on registers holding a pointer type. 1797 */ 1798 static void __mark_reg_known_zero(struct bpf_reg_state *reg) 1799 { 1800 __mark_reg_known(reg, 0); 1801 } 1802 1803 static void __mark_reg_const_zero(const struct bpf_verifier_env *env, struct bpf_reg_state *reg) 1804 { 1805 __mark_reg_known(reg, 0); 1806 reg->type = SCALAR_VALUE; 1807 /* all scalars are assumed imprecise initially (unless unprivileged, 1808 * in which case everything is forced to be precise) 1809 */ 1810 reg->precise = !env->bpf_capable; 1811 } 1812 1813 static void mark_reg_known_zero(struct bpf_verifier_env *env, 1814 struct bpf_reg_state *regs, u32 regno) 1815 { 1816 __mark_reg_known_zero(regs + regno); 1817 } 1818 1819 static void __mark_dynptr_reg(struct bpf_reg_state *reg, enum bpf_dynptr_type type, 1820 bool first_slot, int dynptr_id) 1821 { 1822 /* reg->type has no meaning for STACK_DYNPTR, but when we set reg for 1823 * callback arguments, it does need to be CONST_PTR_TO_DYNPTR, so simply 1824 * set it unconditionally as it is ignored for STACK_DYNPTR anyway. 1825 */ 1826 __mark_reg_known_zero(reg); 1827 reg->type = CONST_PTR_TO_DYNPTR; 1828 /* Give each dynptr a unique id to uniquely associate slices to it. */ 1829 reg->id = dynptr_id; 1830 reg->dynptr.type = type; 1831 reg->dynptr.first_slot = first_slot; 1832 } 1833 1834 static void mark_ptr_not_null_reg(struct bpf_reg_state *reg) 1835 { 1836 if (base_type(reg->type) == PTR_TO_MAP_VALUE) { 1837 const struct bpf_map *map = reg->map_ptr; 1838 1839 if (map->inner_map_meta) { 1840 reg->type = CONST_PTR_TO_MAP; 1841 reg->map_ptr = map->inner_map_meta; 1842 /* transfer reg's id which is unique for every map_lookup_elem 1843 * as UID of the inner map. 1844 */ 1845 if (btf_record_has_field(map->inner_map_meta->record, 1846 BPF_TIMER | BPF_WORKQUEUE | BPF_TASK_WORK)) { 1847 reg->map_uid = reg->id; 1848 } 1849 } else if (map->map_type == BPF_MAP_TYPE_XSKMAP) { 1850 reg->type = PTR_TO_XDP_SOCK; 1851 } else if (map->map_type == BPF_MAP_TYPE_SOCKMAP || 1852 map->map_type == BPF_MAP_TYPE_SOCKHASH) { 1853 reg->type = PTR_TO_SOCKET; 1854 } else { 1855 reg->type = PTR_TO_MAP_VALUE; 1856 } 1857 return; 1858 } 1859 1860 reg->type &= ~PTR_MAYBE_NULL; 1861 } 1862 1863 static void mark_reg_graph_node(struct bpf_reg_state *regs, u32 regno, 1864 struct btf_field_graph_root *ds_head) 1865 { 1866 __mark_reg_known(®s[regno], ds_head->node_offset); 1867 regs[regno].type = PTR_TO_BTF_ID | MEM_ALLOC; 1868 regs[regno].btf = ds_head->btf; 1869 regs[regno].btf_id = ds_head->value_btf_id; 1870 } 1871 1872 static bool reg_is_pkt_pointer(const struct bpf_reg_state *reg) 1873 { 1874 return type_is_pkt_pointer(reg->type); 1875 } 1876 1877 static bool reg_is_pkt_pointer_any(const struct bpf_reg_state *reg) 1878 { 1879 return reg_is_pkt_pointer(reg) || 1880 reg->type == PTR_TO_PACKET_END; 1881 } 1882 1883 static bool reg_is_dynptr_slice_pkt(const struct bpf_reg_state *reg) 1884 { 1885 return base_type(reg->type) == PTR_TO_MEM && 1886 (reg->type & 1887 (DYNPTR_TYPE_SKB | DYNPTR_TYPE_XDP | DYNPTR_TYPE_SKB_META)); 1888 } 1889 1890 /* Unmodified PTR_TO_PACKET[_META,_END] register from ctx access. */ 1891 static bool reg_is_init_pkt_pointer(const struct bpf_reg_state *reg, 1892 enum bpf_reg_type which) 1893 { 1894 /* The register can already have a range from prior markings. 1895 * This is fine as long as it hasn't been advanced from its 1896 * origin. 1897 */ 1898 return reg->type == which && 1899 reg->id == 0 && 1900 tnum_equals_const(reg->var_off, 0); 1901 } 1902 1903 /* Reset the min/max bounds of a register */ 1904 static void __mark_reg_unbounded(struct bpf_reg_state *reg) 1905 { 1906 reg->smin_value = S64_MIN; 1907 reg->smax_value = S64_MAX; 1908 reg->umin_value = 0; 1909 reg->umax_value = U64_MAX; 1910 1911 reg->s32_min_value = S32_MIN; 1912 reg->s32_max_value = S32_MAX; 1913 reg->u32_min_value = 0; 1914 reg->u32_max_value = U32_MAX; 1915 } 1916 1917 static void __mark_reg64_unbounded(struct bpf_reg_state *reg) 1918 { 1919 reg->smin_value = S64_MIN; 1920 reg->smax_value = S64_MAX; 1921 reg->umin_value = 0; 1922 reg->umax_value = U64_MAX; 1923 } 1924 1925 static void __mark_reg32_unbounded(struct bpf_reg_state *reg) 1926 { 1927 reg->s32_min_value = S32_MIN; 1928 reg->s32_max_value = S32_MAX; 1929 reg->u32_min_value = 0; 1930 reg->u32_max_value = U32_MAX; 1931 } 1932 1933 static void reset_reg64_and_tnum(struct bpf_reg_state *reg) 1934 { 1935 __mark_reg64_unbounded(reg); 1936 reg->var_off = tnum_unknown; 1937 } 1938 1939 static void reset_reg32_and_tnum(struct bpf_reg_state *reg) 1940 { 1941 __mark_reg32_unbounded(reg); 1942 reg->var_off = tnum_unknown; 1943 } 1944 1945 static void __update_reg32_bounds(struct bpf_reg_state *reg) 1946 { 1947 struct tnum var32_off = tnum_subreg(reg->var_off); 1948 1949 /* min signed is max(sign bit) | min(other bits) */ 1950 reg->s32_min_value = max_t(s32, reg->s32_min_value, 1951 var32_off.value | (var32_off.mask & S32_MIN)); 1952 /* max signed is min(sign bit) | max(other bits) */ 1953 reg->s32_max_value = min_t(s32, reg->s32_max_value, 1954 var32_off.value | (var32_off.mask & S32_MAX)); 1955 reg->u32_min_value = max_t(u32, reg->u32_min_value, (u32)var32_off.value); 1956 reg->u32_max_value = min(reg->u32_max_value, 1957 (u32)(var32_off.value | var32_off.mask)); 1958 } 1959 1960 static void __update_reg64_bounds(struct bpf_reg_state *reg) 1961 { 1962 u64 tnum_next, tmax; 1963 bool umin_in_tnum; 1964 1965 /* min signed is max(sign bit) | min(other bits) */ 1966 reg->smin_value = max_t(s64, reg->smin_value, 1967 reg->var_off.value | (reg->var_off.mask & S64_MIN)); 1968 /* max signed is min(sign bit) | max(other bits) */ 1969 reg->smax_value = min_t(s64, reg->smax_value, 1970 reg->var_off.value | (reg->var_off.mask & S64_MAX)); 1971 reg->umin_value = max(reg->umin_value, reg->var_off.value); 1972 reg->umax_value = min(reg->umax_value, 1973 reg->var_off.value | reg->var_off.mask); 1974 1975 /* Check if u64 and tnum overlap in a single value */ 1976 tnum_next = tnum_step(reg->var_off, reg->umin_value); 1977 umin_in_tnum = (reg->umin_value & ~reg->var_off.mask) == reg->var_off.value; 1978 tmax = reg->var_off.value | reg->var_off.mask; 1979 if (umin_in_tnum && tnum_next > reg->umax_value) { 1980 /* The u64 range and the tnum only overlap in umin. 1981 * u64: ---[xxxxxx]----- 1982 * tnum: --xx----------x- 1983 */ 1984 ___mark_reg_known(reg, reg->umin_value); 1985 } else if (!umin_in_tnum && tnum_next == tmax) { 1986 /* The u64 range and the tnum only overlap in the maximum value 1987 * represented by the tnum, called tmax. 1988 * u64: ---[xxxxxx]----- 1989 * tnum: xx-----x-------- 1990 */ 1991 ___mark_reg_known(reg, tmax); 1992 } else if (!umin_in_tnum && tnum_next <= reg->umax_value && 1993 tnum_step(reg->var_off, tnum_next) > reg->umax_value) { 1994 /* The u64 range and the tnum only overlap in between umin 1995 * (excluded) and umax. 1996 * u64: ---[xxxxxx]----- 1997 * tnum: xx----x-------x- 1998 */ 1999 ___mark_reg_known(reg, tnum_next); 2000 } 2001 } 2002 2003 static void __update_reg_bounds(struct bpf_reg_state *reg) 2004 { 2005 __update_reg32_bounds(reg); 2006 __update_reg64_bounds(reg); 2007 } 2008 2009 /* Uses signed min/max values to inform unsigned, and vice-versa */ 2010 static void deduce_bounds_32_from_64(struct bpf_reg_state *reg) 2011 { 2012 /* If upper 32 bits of u64/s64 range don't change, we can use lower 32 2013 * bits to improve our u32/s32 boundaries. 2014 * 2015 * E.g., the case where we have upper 32 bits as zero ([10, 20] in 2016 * u64) is pretty trivial, it's obvious that in u32 we'll also have 2017 * [10, 20] range. But this property holds for any 64-bit range as 2018 * long as upper 32 bits in that entire range of values stay the same. 2019 * 2020 * E.g., u64 range [0x10000000A, 0x10000000F] ([4294967306, 4294967311] 2021 * in decimal) has the same upper 32 bits throughout all the values in 2022 * that range. As such, lower 32 bits form a valid [0xA, 0xF] ([10, 15]) 2023 * range. 2024 * 2025 * Note also, that [0xA, 0xF] is a valid range both in u32 and in s32, 2026 * following the rules outlined below about u64/s64 correspondence 2027 * (which equally applies to u32 vs s32 correspondence). In general it 2028 * depends on actual hexadecimal values of 32-bit range. They can form 2029 * only valid u32, or only valid s32 ranges in some cases. 2030 * 2031 * So we use all these insights to derive bounds for subregisters here. 2032 */ 2033 if ((reg->umin_value >> 32) == (reg->umax_value >> 32)) { 2034 /* u64 to u32 casting preserves validity of low 32 bits as 2035 * a range, if upper 32 bits are the same 2036 */ 2037 reg->u32_min_value = max_t(u32, reg->u32_min_value, (u32)reg->umin_value); 2038 reg->u32_max_value = min_t(u32, reg->u32_max_value, (u32)reg->umax_value); 2039 2040 if ((s32)reg->umin_value <= (s32)reg->umax_value) { 2041 reg->s32_min_value = max_t(s32, reg->s32_min_value, (s32)reg->umin_value); 2042 reg->s32_max_value = min_t(s32, reg->s32_max_value, (s32)reg->umax_value); 2043 } 2044 } 2045 if ((reg->smin_value >> 32) == (reg->smax_value >> 32)) { 2046 /* low 32 bits should form a proper u32 range */ 2047 if ((u32)reg->smin_value <= (u32)reg->smax_value) { 2048 reg->u32_min_value = max_t(u32, reg->u32_min_value, (u32)reg->smin_value); 2049 reg->u32_max_value = min_t(u32, reg->u32_max_value, (u32)reg->smax_value); 2050 } 2051 /* low 32 bits should form a proper s32 range */ 2052 if ((s32)reg->smin_value <= (s32)reg->smax_value) { 2053 reg->s32_min_value = max_t(s32, reg->s32_min_value, (s32)reg->smin_value); 2054 reg->s32_max_value = min_t(s32, reg->s32_max_value, (s32)reg->smax_value); 2055 } 2056 } 2057 /* Special case where upper bits form a small sequence of two 2058 * sequential numbers (in 32-bit unsigned space, so 0xffffffff to 2059 * 0x00000000 is also valid), while lower bits form a proper s32 range 2060 * going from negative numbers to positive numbers. E.g., let's say we 2061 * have s64 range [-1, 1] ([0xffffffffffffffff, 0x0000000000000001]). 2062 * Possible s64 values are {-1, 0, 1} ({0xffffffffffffffff, 2063 * 0x0000000000000000, 0x00000000000001}). Ignoring upper 32 bits, 2064 * we still get a valid s32 range [-1, 1] ([0xffffffff, 0x00000001]). 2065 * Note that it doesn't have to be 0xffffffff going to 0x00000000 in 2066 * upper 32 bits. As a random example, s64 range 2067 * [0xfffffff0fffffff0; 0xfffffff100000010], forms a valid s32 range 2068 * [-16, 16] ([0xfffffff0; 0x00000010]) in its 32 bit subregister. 2069 */ 2070 if ((u32)(reg->umin_value >> 32) + 1 == (u32)(reg->umax_value >> 32) && 2071 (s32)reg->umin_value < 0 && (s32)reg->umax_value >= 0) { 2072 reg->s32_min_value = max_t(s32, reg->s32_min_value, (s32)reg->umin_value); 2073 reg->s32_max_value = min_t(s32, reg->s32_max_value, (s32)reg->umax_value); 2074 } 2075 if ((u32)(reg->smin_value >> 32) + 1 == (u32)(reg->smax_value >> 32) && 2076 (s32)reg->smin_value < 0 && (s32)reg->smax_value >= 0) { 2077 reg->s32_min_value = max_t(s32, reg->s32_min_value, (s32)reg->smin_value); 2078 reg->s32_max_value = min_t(s32, reg->s32_max_value, (s32)reg->smax_value); 2079 } 2080 } 2081 2082 static void deduce_bounds_32_from_32(struct bpf_reg_state *reg) 2083 { 2084 /* if u32 range forms a valid s32 range (due to matching sign bit), 2085 * try to learn from that 2086 */ 2087 if ((s32)reg->u32_min_value <= (s32)reg->u32_max_value) { 2088 reg->s32_min_value = max_t(s32, reg->s32_min_value, reg->u32_min_value); 2089 reg->s32_max_value = min_t(s32, reg->s32_max_value, reg->u32_max_value); 2090 } 2091 /* If we cannot cross the sign boundary, then signed and unsigned bounds 2092 * are the same, so combine. This works even in the negative case, e.g. 2093 * -3 s<= x s<= -1 implies 0xf...fd u<= x u<= 0xf...ff. 2094 */ 2095 if ((u32)reg->s32_min_value <= (u32)reg->s32_max_value) { 2096 reg->u32_min_value = max_t(u32, reg->s32_min_value, reg->u32_min_value); 2097 reg->u32_max_value = min_t(u32, reg->s32_max_value, reg->u32_max_value); 2098 } else { 2099 if (reg->u32_max_value < (u32)reg->s32_min_value) { 2100 /* See __reg64_deduce_bounds() for detailed explanation. 2101 * Refine ranges in the following situation: 2102 * 2103 * 0 U32_MAX 2104 * | [xxxxxxxxxxxxxx u32 range xxxxxxxxxxxxxx] | 2105 * |----------------------------|----------------------------| 2106 * |xxxxx s32 range xxxxxxxxx] [xxxxxxx| 2107 * 0 S32_MAX S32_MIN -1 2108 */ 2109 reg->s32_min_value = (s32)reg->u32_min_value; 2110 reg->u32_max_value = min_t(u32, reg->u32_max_value, reg->s32_max_value); 2111 } else if ((u32)reg->s32_max_value < reg->u32_min_value) { 2112 /* 2113 * 0 U32_MAX 2114 * | [xxxxxxxxxxxxxx u32 range xxxxxxxxxxxxxx] | 2115 * |----------------------------|----------------------------| 2116 * |xxxxxxxxx] [xxxxxxxxxxxx s32 range | 2117 * 0 S32_MAX S32_MIN -1 2118 */ 2119 reg->s32_max_value = (s32)reg->u32_max_value; 2120 reg->u32_min_value = max_t(u32, reg->u32_min_value, reg->s32_min_value); 2121 } 2122 } 2123 } 2124 2125 static void deduce_bounds_64_from_64(struct bpf_reg_state *reg) 2126 { 2127 /* If u64 range forms a valid s64 range (due to matching sign bit), 2128 * try to learn from that. Let's do a bit of ASCII art to see when 2129 * this is happening. Let's take u64 range first: 2130 * 2131 * 0 0x7fffffffffffffff 0x8000000000000000 U64_MAX 2132 * |-------------------------------|--------------------------------| 2133 * 2134 * Valid u64 range is formed when umin and umax are anywhere in the 2135 * range [0, U64_MAX], and umin <= umax. u64 case is simple and 2136 * straightforward. Let's see how s64 range maps onto the same range 2137 * of values, annotated below the line for comparison: 2138 * 2139 * 0 0x7fffffffffffffff 0x8000000000000000 U64_MAX 2140 * |-------------------------------|--------------------------------| 2141 * 0 S64_MAX S64_MIN -1 2142 * 2143 * So s64 values basically start in the middle and they are logically 2144 * contiguous to the right of it, wrapping around from -1 to 0, and 2145 * then finishing as S64_MAX (0x7fffffffffffffff) right before 2146 * S64_MIN. We can try drawing the continuity of u64 vs s64 values 2147 * more visually as mapped to sign-agnostic range of hex values. 2148 * 2149 * u64 start u64 end 2150 * _______________________________________________________________ 2151 * / \ 2152 * 0 0x7fffffffffffffff 0x8000000000000000 U64_MAX 2153 * |-------------------------------|--------------------------------| 2154 * 0 S64_MAX S64_MIN -1 2155 * / \ 2156 * >------------------------------ -------------------------------> 2157 * s64 continues... s64 end s64 start s64 "midpoint" 2158 * 2159 * What this means is that, in general, we can't always derive 2160 * something new about u64 from any random s64 range, and vice versa. 2161 * 2162 * But we can do that in two particular cases. One is when entire 2163 * u64/s64 range is *entirely* contained within left half of the above 2164 * diagram or when it is *entirely* contained in the right half. I.e.: 2165 * 2166 * |-------------------------------|--------------------------------| 2167 * ^ ^ ^ ^ 2168 * A B C D 2169 * 2170 * [A, B] and [C, D] are contained entirely in their respective halves 2171 * and form valid contiguous ranges as both u64 and s64 values. [A, B] 2172 * will be non-negative both as u64 and s64 (and in fact it will be 2173 * identical ranges no matter the signedness). [C, D] treated as s64 2174 * will be a range of negative values, while in u64 it will be 2175 * non-negative range of values larger than 0x8000000000000000. 2176 * 2177 * Now, any other range here can't be represented in both u64 and s64 2178 * simultaneously. E.g., [A, C], [A, D], [B, C], [B, D] are valid 2179 * contiguous u64 ranges, but they are discontinuous in s64. [B, C] 2180 * in s64 would be properly presented as [S64_MIN, C] and [B, S64_MAX], 2181 * for example. Similarly, valid s64 range [D, A] (going from negative 2182 * to positive values), would be two separate [D, U64_MAX] and [0, A] 2183 * ranges as u64. Currently reg_state can't represent two segments per 2184 * numeric domain, so in such situations we can only derive maximal 2185 * possible range ([0, U64_MAX] for u64, and [S64_MIN, S64_MAX] for s64). 2186 * 2187 * So we use these facts to derive umin/umax from smin/smax and vice 2188 * versa only if they stay within the same "half". This is equivalent 2189 * to checking sign bit: lower half will have sign bit as zero, upper 2190 * half have sign bit 1. Below in code we simplify this by just 2191 * casting umin/umax as smin/smax and checking if they form valid 2192 * range, and vice versa. Those are equivalent checks. 2193 */ 2194 if ((s64)reg->umin_value <= (s64)reg->umax_value) { 2195 reg->smin_value = max_t(s64, reg->smin_value, reg->umin_value); 2196 reg->smax_value = min_t(s64, reg->smax_value, reg->umax_value); 2197 } 2198 /* If we cannot cross the sign boundary, then signed and unsigned bounds 2199 * are the same, so combine. This works even in the negative case, e.g. 2200 * -3 s<= x s<= -1 implies 0xf...fd u<= x u<= 0xf...ff. 2201 */ 2202 if ((u64)reg->smin_value <= (u64)reg->smax_value) { 2203 reg->umin_value = max_t(u64, reg->smin_value, reg->umin_value); 2204 reg->umax_value = min_t(u64, reg->smax_value, reg->umax_value); 2205 } else { 2206 /* If the s64 range crosses the sign boundary, then it's split 2207 * between the beginning and end of the U64 domain. In that 2208 * case, we can derive new bounds if the u64 range overlaps 2209 * with only one end of the s64 range. 2210 * 2211 * In the following example, the u64 range overlaps only with 2212 * positive portion of the s64 range. 2213 * 2214 * 0 U64_MAX 2215 * | [xxxxxxxxxxxxxx u64 range xxxxxxxxxxxxxx] | 2216 * |----------------------------|----------------------------| 2217 * |xxxxx s64 range xxxxxxxxx] [xxxxxxx| 2218 * 0 S64_MAX S64_MIN -1 2219 * 2220 * We can thus derive the following new s64 and u64 ranges. 2221 * 2222 * 0 U64_MAX 2223 * | [xxxxxx u64 range xxxxx] | 2224 * |----------------------------|----------------------------| 2225 * | [xxxxxx s64 range xxxxx] | 2226 * 0 S64_MAX S64_MIN -1 2227 * 2228 * If they overlap in two places, we can't derive anything 2229 * because reg_state can't represent two ranges per numeric 2230 * domain. 2231 * 2232 * 0 U64_MAX 2233 * | [xxxxxxxxxxxxxxxxx u64 range xxxxxxxxxxxxxxxxx] | 2234 * |----------------------------|----------------------------| 2235 * |xxxxx s64 range xxxxxxxxx] [xxxxxxxxxx| 2236 * 0 S64_MAX S64_MIN -1 2237 * 2238 * The first condition below corresponds to the first diagram 2239 * above. 2240 */ 2241 if (reg->umax_value < (u64)reg->smin_value) { 2242 reg->smin_value = (s64)reg->umin_value; 2243 reg->umax_value = min_t(u64, reg->umax_value, reg->smax_value); 2244 } else if ((u64)reg->smax_value < reg->umin_value) { 2245 /* This second condition considers the case where the u64 range 2246 * overlaps with the negative portion of the s64 range: 2247 * 2248 * 0 U64_MAX 2249 * | [xxxxxxxxxxxxxx u64 range xxxxxxxxxxxxxx] | 2250 * |----------------------------|----------------------------| 2251 * |xxxxxxxxx] [xxxxxxxxxxxx s64 range | 2252 * 0 S64_MAX S64_MIN -1 2253 */ 2254 reg->smax_value = (s64)reg->umax_value; 2255 reg->umin_value = max_t(u64, reg->umin_value, reg->smin_value); 2256 } 2257 } 2258 } 2259 2260 static void deduce_bounds_64_from_32(struct bpf_reg_state *reg) 2261 { 2262 /* Try to tighten 64-bit bounds from 32-bit knowledge, using 32-bit 2263 * values on both sides of 64-bit range in hope to have tighter range. 2264 * E.g., if r1 is [0x1'00000000, 0x3'80000000], and we learn from 2265 * 32-bit signed > 0 operation that s32 bounds are now [1; 0x7fffffff]. 2266 * With this, we can substitute 1 as low 32-bits of _low_ 64-bit bound 2267 * (0x100000000 -> 0x100000001) and 0x7fffffff as low 32-bits of 2268 * _high_ 64-bit bound (0x380000000 -> 0x37fffffff) and arrive at a 2269 * better overall bounds for r1 as [0x1'000000001; 0x3'7fffffff]. 2270 * We just need to make sure that derived bounds we are intersecting 2271 * with are well-formed ranges in respective s64 or u64 domain, just 2272 * like we do with similar kinds of 32-to-64 or 64-to-32 adjustments. 2273 */ 2274 __u64 new_umin, new_umax; 2275 __s64 new_smin, new_smax; 2276 2277 /* u32 -> u64 tightening, it's always well-formed */ 2278 new_umin = (reg->umin_value & ~0xffffffffULL) | reg->u32_min_value; 2279 new_umax = (reg->umax_value & ~0xffffffffULL) | reg->u32_max_value; 2280 reg->umin_value = max_t(u64, reg->umin_value, new_umin); 2281 reg->umax_value = min_t(u64, reg->umax_value, new_umax); 2282 /* u32 -> s64 tightening, u32 range embedded into s64 preserves range validity */ 2283 new_smin = (reg->smin_value & ~0xffffffffULL) | reg->u32_min_value; 2284 new_smax = (reg->smax_value & ~0xffffffffULL) | reg->u32_max_value; 2285 reg->smin_value = max_t(s64, reg->smin_value, new_smin); 2286 reg->smax_value = min_t(s64, reg->smax_value, new_smax); 2287 2288 /* Here we would like to handle a special case after sign extending load, 2289 * when upper bits for a 64-bit range are all 1s or all 0s. 2290 * 2291 * Upper bits are all 1s when register is in a range: 2292 * [0xffff_ffff_0000_0000, 0xffff_ffff_ffff_ffff] 2293 * Upper bits are all 0s when register is in a range: 2294 * [0x0000_0000_0000_0000, 0x0000_0000_ffff_ffff] 2295 * Together this forms are continuous range: 2296 * [0xffff_ffff_0000_0000, 0x0000_0000_ffff_ffff] 2297 * 2298 * Now, suppose that register range is in fact tighter: 2299 * [0xffff_ffff_8000_0000, 0x0000_0000_ffff_ffff] (R) 2300 * Also suppose that it's 32-bit range is positive, 2301 * meaning that lower 32-bits of the full 64-bit register 2302 * are in the range: 2303 * [0x0000_0000, 0x7fff_ffff] (W) 2304 * 2305 * If this happens, then any value in a range: 2306 * [0xffff_ffff_0000_0000, 0xffff_ffff_7fff_ffff] 2307 * is smaller than a lowest bound of the range (R): 2308 * 0xffff_ffff_8000_0000 2309 * which means that upper bits of the full 64-bit register 2310 * can't be all 1s, when lower bits are in range (W). 2311 * 2312 * Note that: 2313 * - 0xffff_ffff_8000_0000 == (s64)S32_MIN 2314 * - 0x0000_0000_7fff_ffff == (s64)S32_MAX 2315 * These relations are used in the conditions below. 2316 */ 2317 if (reg->s32_min_value >= 0 && reg->smin_value >= S32_MIN && reg->smax_value <= S32_MAX) { 2318 reg->smin_value = reg->s32_min_value; 2319 reg->smax_value = reg->s32_max_value; 2320 reg->umin_value = reg->s32_min_value; 2321 reg->umax_value = reg->s32_max_value; 2322 reg->var_off = tnum_intersect(reg->var_off, 2323 tnum_range(reg->smin_value, reg->smax_value)); 2324 } 2325 } 2326 2327 static void __reg_deduce_bounds(struct bpf_reg_state *reg) 2328 { 2329 deduce_bounds_64_from_64(reg); 2330 deduce_bounds_32_from_64(reg); 2331 deduce_bounds_32_from_32(reg); 2332 deduce_bounds_64_from_32(reg); 2333 } 2334 2335 /* Attempts to improve var_off based on unsigned min/max information */ 2336 static void __reg_bound_offset(struct bpf_reg_state *reg) 2337 { 2338 struct tnum var64_off = tnum_intersect(reg->var_off, 2339 tnum_range(reg->umin_value, 2340 reg->umax_value)); 2341 struct tnum var32_off = tnum_intersect(tnum_subreg(var64_off), 2342 tnum_range(reg->u32_min_value, 2343 reg->u32_max_value)); 2344 2345 reg->var_off = tnum_or(tnum_clear_subreg(var64_off), var32_off); 2346 } 2347 2348 static bool range_bounds_violation(struct bpf_reg_state *reg); 2349 2350 static void reg_bounds_sync(struct bpf_reg_state *reg) 2351 { 2352 /* If the input reg_state is invalid, we can exit early */ 2353 if (range_bounds_violation(reg)) 2354 return; 2355 /* We might have learned new bounds from the var_off. */ 2356 __update_reg_bounds(reg); 2357 /* We might have learned something about the sign bit. */ 2358 __reg_deduce_bounds(reg); 2359 __reg_deduce_bounds(reg); 2360 /* We might have learned some bits from the bounds. */ 2361 __reg_bound_offset(reg); 2362 /* Intersecting with the old var_off might have improved our bounds 2363 * slightly, e.g. if umax was 0x7f...f and var_off was (0; 0xf...fc), 2364 * then new var_off is (0; 0x7f...fc) which improves our umax. 2365 */ 2366 __update_reg_bounds(reg); 2367 } 2368 2369 static bool range_bounds_violation(struct bpf_reg_state *reg) 2370 { 2371 return (reg->umin_value > reg->umax_value || reg->smin_value > reg->smax_value || 2372 reg->u32_min_value > reg->u32_max_value || 2373 reg->s32_min_value > reg->s32_max_value); 2374 } 2375 2376 static bool const_tnum_range_mismatch(struct bpf_reg_state *reg) 2377 { 2378 u64 uval = reg->var_off.value; 2379 s64 sval = (s64)uval; 2380 2381 if (!tnum_is_const(reg->var_off)) 2382 return false; 2383 2384 return reg->umin_value != uval || reg->umax_value != uval || 2385 reg->smin_value != sval || reg->smax_value != sval; 2386 } 2387 2388 static bool const_tnum_range_mismatch_32(struct bpf_reg_state *reg) 2389 { 2390 u32 uval32 = tnum_subreg(reg->var_off).value; 2391 s32 sval32 = (s32)uval32; 2392 2393 if (!tnum_subreg_is_const(reg->var_off)) 2394 return false; 2395 2396 return reg->u32_min_value != uval32 || reg->u32_max_value != uval32 || 2397 reg->s32_min_value != sval32 || reg->s32_max_value != sval32; 2398 } 2399 2400 static int reg_bounds_sanity_check(struct bpf_verifier_env *env, 2401 struct bpf_reg_state *reg, const char *ctx) 2402 { 2403 const char *msg; 2404 2405 if (range_bounds_violation(reg)) { 2406 msg = "range bounds violation"; 2407 goto out; 2408 } 2409 2410 if (const_tnum_range_mismatch(reg)) { 2411 msg = "const tnum out of sync with range bounds"; 2412 goto out; 2413 } 2414 2415 if (const_tnum_range_mismatch_32(reg)) { 2416 msg = "const subreg tnum out of sync with range bounds"; 2417 goto out; 2418 } 2419 2420 return 0; 2421 out: 2422 verifier_bug(env, "REG INVARIANTS VIOLATION (%s): %s u64=[%#llx, %#llx] " 2423 "s64=[%#llx, %#llx] u32=[%#x, %#x] s32=[%#x, %#x] var_off=(%#llx, %#llx)", 2424 ctx, msg, reg->umin_value, reg->umax_value, 2425 reg->smin_value, reg->smax_value, 2426 reg->u32_min_value, reg->u32_max_value, 2427 reg->s32_min_value, reg->s32_max_value, 2428 reg->var_off.value, reg->var_off.mask); 2429 if (env->test_reg_invariants) 2430 return -EFAULT; 2431 __mark_reg_unbounded(reg); 2432 return 0; 2433 } 2434 2435 static bool __reg32_bound_s64(s32 a) 2436 { 2437 return a >= 0 && a <= S32_MAX; 2438 } 2439 2440 static void __reg_assign_32_into_64(struct bpf_reg_state *reg) 2441 { 2442 reg->umin_value = reg->u32_min_value; 2443 reg->umax_value = reg->u32_max_value; 2444 2445 /* Attempt to pull 32-bit signed bounds into 64-bit bounds but must 2446 * be positive otherwise set to worse case bounds and refine later 2447 * from tnum. 2448 */ 2449 if (__reg32_bound_s64(reg->s32_min_value) && 2450 __reg32_bound_s64(reg->s32_max_value)) { 2451 reg->smin_value = reg->s32_min_value; 2452 reg->smax_value = reg->s32_max_value; 2453 } else { 2454 reg->smin_value = 0; 2455 reg->smax_value = U32_MAX; 2456 } 2457 } 2458 2459 /* Mark a register as having a completely unknown (scalar) value. */ 2460 void bpf_mark_reg_unknown_imprecise(struct bpf_reg_state *reg) 2461 { 2462 /* 2463 * Clear type, off, and union(map_ptr, range) and 2464 * padding between 'type' and union 2465 */ 2466 memset(reg, 0, offsetof(struct bpf_reg_state, var_off)); 2467 reg->type = SCALAR_VALUE; 2468 reg->id = 0; 2469 reg->ref_obj_id = 0; 2470 reg->var_off = tnum_unknown; 2471 reg->frameno = 0; 2472 reg->precise = false; 2473 __mark_reg_unbounded(reg); 2474 } 2475 2476 /* Mark a register as having a completely unknown (scalar) value, 2477 * initialize .precise as true when not bpf capable. 2478 */ 2479 static void __mark_reg_unknown(const struct bpf_verifier_env *env, 2480 struct bpf_reg_state *reg) 2481 { 2482 bpf_mark_reg_unknown_imprecise(reg); 2483 reg->precise = !env->bpf_capable; 2484 } 2485 2486 static void mark_reg_unknown(struct bpf_verifier_env *env, 2487 struct bpf_reg_state *regs, u32 regno) 2488 { 2489 __mark_reg_unknown(env, regs + regno); 2490 } 2491 2492 static int __mark_reg_s32_range(struct bpf_verifier_env *env, 2493 struct bpf_reg_state *regs, 2494 u32 regno, 2495 s32 s32_min, 2496 s32 s32_max) 2497 { 2498 struct bpf_reg_state *reg = regs + regno; 2499 2500 reg->s32_min_value = max_t(s32, reg->s32_min_value, s32_min); 2501 reg->s32_max_value = min_t(s32, reg->s32_max_value, s32_max); 2502 2503 reg->smin_value = max_t(s64, reg->smin_value, s32_min); 2504 reg->smax_value = min_t(s64, reg->smax_value, s32_max); 2505 2506 reg_bounds_sync(reg); 2507 2508 return reg_bounds_sanity_check(env, reg, "s32_range"); 2509 } 2510 2511 void bpf_mark_reg_not_init(const struct bpf_verifier_env *env, 2512 struct bpf_reg_state *reg) 2513 { 2514 __mark_reg_unknown(env, reg); 2515 reg->type = NOT_INIT; 2516 } 2517 2518 static int mark_btf_ld_reg(struct bpf_verifier_env *env, 2519 struct bpf_reg_state *regs, u32 regno, 2520 enum bpf_reg_type reg_type, 2521 struct btf *btf, u32 btf_id, 2522 enum bpf_type_flag flag) 2523 { 2524 switch (reg_type) { 2525 case SCALAR_VALUE: 2526 mark_reg_unknown(env, regs, regno); 2527 return 0; 2528 case PTR_TO_BTF_ID: 2529 mark_reg_known_zero(env, regs, regno); 2530 regs[regno].type = PTR_TO_BTF_ID | flag; 2531 regs[regno].btf = btf; 2532 regs[regno].btf_id = btf_id; 2533 if (type_may_be_null(flag)) 2534 regs[regno].id = ++env->id_gen; 2535 return 0; 2536 case PTR_TO_MEM: 2537 mark_reg_known_zero(env, regs, regno); 2538 regs[regno].type = PTR_TO_MEM | flag; 2539 regs[regno].mem_size = 0; 2540 return 0; 2541 default: 2542 verifier_bug(env, "unexpected reg_type %d in %s\n", reg_type, __func__); 2543 return -EFAULT; 2544 } 2545 } 2546 2547 #define DEF_NOT_SUBREG (0) 2548 static void init_reg_state(struct bpf_verifier_env *env, 2549 struct bpf_func_state *state) 2550 { 2551 struct bpf_reg_state *regs = state->regs; 2552 int i; 2553 2554 for (i = 0; i < MAX_BPF_REG; i++) { 2555 bpf_mark_reg_not_init(env, ®s[i]); 2556 regs[i].subreg_def = DEF_NOT_SUBREG; 2557 } 2558 2559 /* frame pointer */ 2560 regs[BPF_REG_FP].type = PTR_TO_STACK; 2561 mark_reg_known_zero(env, regs, BPF_REG_FP); 2562 regs[BPF_REG_FP].frameno = state->frameno; 2563 } 2564 2565 static struct bpf_retval_range retval_range(s32 minval, s32 maxval) 2566 { 2567 /* 2568 * return_32bit is set to false by default and set explicitly 2569 * by the caller when necessary. 2570 */ 2571 return (struct bpf_retval_range){ minval, maxval, false }; 2572 } 2573 2574 static void init_func_state(struct bpf_verifier_env *env, 2575 struct bpf_func_state *state, 2576 int callsite, int frameno, int subprogno) 2577 { 2578 state->callsite = callsite; 2579 state->frameno = frameno; 2580 state->subprogno = subprogno; 2581 state->callback_ret_range = retval_range(0, 0); 2582 init_reg_state(env, state); 2583 mark_verifier_state_scratched(env); 2584 } 2585 2586 /* Similar to push_stack(), but for async callbacks */ 2587 static struct bpf_verifier_state *push_async_cb(struct bpf_verifier_env *env, 2588 int insn_idx, int prev_insn_idx, 2589 int subprog, bool is_sleepable) 2590 { 2591 struct bpf_verifier_stack_elem *elem; 2592 struct bpf_func_state *frame; 2593 2594 elem = kzalloc_obj(struct bpf_verifier_stack_elem, GFP_KERNEL_ACCOUNT); 2595 if (!elem) 2596 return ERR_PTR(-ENOMEM); 2597 2598 elem->insn_idx = insn_idx; 2599 elem->prev_insn_idx = prev_insn_idx; 2600 elem->next = env->head; 2601 elem->log_pos = env->log.end_pos; 2602 env->head = elem; 2603 env->stack_size++; 2604 if (env->stack_size > BPF_COMPLEXITY_LIMIT_JMP_SEQ) { 2605 verbose(env, 2606 "The sequence of %d jumps is too complex for async cb.\n", 2607 env->stack_size); 2608 return ERR_PTR(-E2BIG); 2609 } 2610 /* Unlike push_stack() do not bpf_copy_verifier_state(). 2611 * The caller state doesn't matter. 2612 * This is async callback. It starts in a fresh stack. 2613 * Initialize it similar to do_check_common(). 2614 */ 2615 elem->st.branches = 1; 2616 elem->st.in_sleepable = is_sleepable; 2617 frame = kzalloc_obj(*frame, GFP_KERNEL_ACCOUNT); 2618 if (!frame) 2619 return ERR_PTR(-ENOMEM); 2620 init_func_state(env, frame, 2621 BPF_MAIN_FUNC /* callsite */, 2622 0 /* frameno within this callchain */, 2623 subprog /* subprog number within this prog */); 2624 elem->st.frame[0] = frame; 2625 return &elem->st; 2626 } 2627 2628 2629 static int cmp_subprogs(const void *a, const void *b) 2630 { 2631 return ((struct bpf_subprog_info *)a)->start - 2632 ((struct bpf_subprog_info *)b)->start; 2633 } 2634 2635 /* Find subprogram that contains instruction at 'off' */ 2636 struct bpf_subprog_info *bpf_find_containing_subprog(struct bpf_verifier_env *env, int off) 2637 { 2638 struct bpf_subprog_info *vals = env->subprog_info; 2639 int l, r, m; 2640 2641 if (off >= env->prog->len || off < 0 || env->subprog_cnt == 0) 2642 return NULL; 2643 2644 l = 0; 2645 r = env->subprog_cnt - 1; 2646 while (l < r) { 2647 m = l + (r - l + 1) / 2; 2648 if (vals[m].start <= off) 2649 l = m; 2650 else 2651 r = m - 1; 2652 } 2653 return &vals[l]; 2654 } 2655 2656 /* Find subprogram that starts exactly at 'off' */ 2657 int bpf_find_subprog(struct bpf_verifier_env *env, int off) 2658 { 2659 struct bpf_subprog_info *p; 2660 2661 p = bpf_find_containing_subprog(env, off); 2662 if (!p || p->start != off) 2663 return -ENOENT; 2664 return p - env->subprog_info; 2665 } 2666 2667 static int add_subprog(struct bpf_verifier_env *env, int off) 2668 { 2669 int insn_cnt = env->prog->len; 2670 int ret; 2671 2672 if (off >= insn_cnt || off < 0) { 2673 verbose(env, "call to invalid destination\n"); 2674 return -EINVAL; 2675 } 2676 ret = bpf_find_subprog(env, off); 2677 if (ret >= 0) 2678 return ret; 2679 if (env->subprog_cnt >= BPF_MAX_SUBPROGS) { 2680 verbose(env, "too many subprograms\n"); 2681 return -E2BIG; 2682 } 2683 /* determine subprog starts. The end is one before the next starts */ 2684 env->subprog_info[env->subprog_cnt++].start = off; 2685 sort(env->subprog_info, env->subprog_cnt, 2686 sizeof(env->subprog_info[0]), cmp_subprogs, NULL); 2687 return env->subprog_cnt - 1; 2688 } 2689 2690 static int bpf_find_exception_callback_insn_off(struct bpf_verifier_env *env) 2691 { 2692 struct bpf_prog_aux *aux = env->prog->aux; 2693 struct btf *btf = aux->btf; 2694 const struct btf_type *t; 2695 u32 main_btf_id, id; 2696 const char *name; 2697 int ret, i; 2698 2699 /* Non-zero func_info_cnt implies valid btf */ 2700 if (!aux->func_info_cnt) 2701 return 0; 2702 main_btf_id = aux->func_info[0].type_id; 2703 2704 t = btf_type_by_id(btf, main_btf_id); 2705 if (!t) { 2706 verbose(env, "invalid btf id for main subprog in func_info\n"); 2707 return -EINVAL; 2708 } 2709 2710 name = btf_find_decl_tag_value(btf, t, -1, "exception_callback:"); 2711 if (IS_ERR(name)) { 2712 ret = PTR_ERR(name); 2713 /* If there is no tag present, there is no exception callback */ 2714 if (ret == -ENOENT) 2715 ret = 0; 2716 else if (ret == -EEXIST) 2717 verbose(env, "multiple exception callback tags for main subprog\n"); 2718 return ret; 2719 } 2720 2721 ret = btf_find_by_name_kind(btf, name, BTF_KIND_FUNC); 2722 if (ret < 0) { 2723 verbose(env, "exception callback '%s' could not be found in BTF\n", name); 2724 return ret; 2725 } 2726 id = ret; 2727 t = btf_type_by_id(btf, id); 2728 if (btf_func_linkage(t) != BTF_FUNC_GLOBAL) { 2729 verbose(env, "exception callback '%s' must have global linkage\n", name); 2730 return -EINVAL; 2731 } 2732 ret = 0; 2733 for (i = 0; i < aux->func_info_cnt; i++) { 2734 if (aux->func_info[i].type_id != id) 2735 continue; 2736 ret = aux->func_info[i].insn_off; 2737 /* Further func_info and subprog checks will also happen 2738 * later, so assume this is the right insn_off for now. 2739 */ 2740 if (!ret) { 2741 verbose(env, "invalid exception callback insn_off in func_info: 0\n"); 2742 ret = -EINVAL; 2743 } 2744 } 2745 if (!ret) { 2746 verbose(env, "exception callback type id not found in func_info\n"); 2747 ret = -EINVAL; 2748 } 2749 return ret; 2750 } 2751 2752 #define MAX_KFUNC_BTFS 256 2753 2754 struct bpf_kfunc_btf { 2755 struct btf *btf; 2756 struct module *module; 2757 u16 offset; 2758 }; 2759 2760 struct bpf_kfunc_btf_tab { 2761 struct bpf_kfunc_btf descs[MAX_KFUNC_BTFS]; 2762 u32 nr_descs; 2763 }; 2764 2765 static int kfunc_desc_cmp_by_id_off(const void *a, const void *b) 2766 { 2767 const struct bpf_kfunc_desc *d0 = a; 2768 const struct bpf_kfunc_desc *d1 = b; 2769 2770 /* func_id is not greater than BTF_MAX_TYPE */ 2771 return d0->func_id - d1->func_id ?: d0->offset - d1->offset; 2772 } 2773 2774 static int kfunc_btf_cmp_by_off(const void *a, const void *b) 2775 { 2776 const struct bpf_kfunc_btf *d0 = a; 2777 const struct bpf_kfunc_btf *d1 = b; 2778 2779 return d0->offset - d1->offset; 2780 } 2781 2782 static struct bpf_kfunc_desc * 2783 find_kfunc_desc(const struct bpf_prog *prog, u32 func_id, u16 offset) 2784 { 2785 struct bpf_kfunc_desc desc = { 2786 .func_id = func_id, 2787 .offset = offset, 2788 }; 2789 struct bpf_kfunc_desc_tab *tab; 2790 2791 tab = prog->aux->kfunc_tab; 2792 return bsearch(&desc, tab->descs, tab->nr_descs, 2793 sizeof(tab->descs[0]), kfunc_desc_cmp_by_id_off); 2794 } 2795 2796 int bpf_get_kfunc_addr(const struct bpf_prog *prog, u32 func_id, 2797 u16 btf_fd_idx, u8 **func_addr) 2798 { 2799 const struct bpf_kfunc_desc *desc; 2800 2801 desc = find_kfunc_desc(prog, func_id, btf_fd_idx); 2802 if (!desc) 2803 return -EFAULT; 2804 2805 *func_addr = (u8 *)desc->addr; 2806 return 0; 2807 } 2808 2809 static struct btf *__find_kfunc_desc_btf(struct bpf_verifier_env *env, 2810 s16 offset) 2811 { 2812 struct bpf_kfunc_btf kf_btf = { .offset = offset }; 2813 struct bpf_kfunc_btf_tab *tab; 2814 struct bpf_kfunc_btf *b; 2815 struct module *mod; 2816 struct btf *btf; 2817 int btf_fd; 2818 2819 tab = env->prog->aux->kfunc_btf_tab; 2820 b = bsearch(&kf_btf, tab->descs, tab->nr_descs, 2821 sizeof(tab->descs[0]), kfunc_btf_cmp_by_off); 2822 if (!b) { 2823 if (tab->nr_descs == MAX_KFUNC_BTFS) { 2824 verbose(env, "too many different module BTFs\n"); 2825 return ERR_PTR(-E2BIG); 2826 } 2827 2828 if (bpfptr_is_null(env->fd_array)) { 2829 verbose(env, "kfunc offset > 0 without fd_array is invalid\n"); 2830 return ERR_PTR(-EPROTO); 2831 } 2832 2833 if (copy_from_bpfptr_offset(&btf_fd, env->fd_array, 2834 offset * sizeof(btf_fd), 2835 sizeof(btf_fd))) 2836 return ERR_PTR(-EFAULT); 2837 2838 btf = btf_get_by_fd(btf_fd); 2839 if (IS_ERR(btf)) { 2840 verbose(env, "invalid module BTF fd specified\n"); 2841 return btf; 2842 } 2843 2844 if (!btf_is_module(btf)) { 2845 verbose(env, "BTF fd for kfunc is not a module BTF\n"); 2846 btf_put(btf); 2847 return ERR_PTR(-EINVAL); 2848 } 2849 2850 mod = btf_try_get_module(btf); 2851 if (!mod) { 2852 btf_put(btf); 2853 return ERR_PTR(-ENXIO); 2854 } 2855 2856 b = &tab->descs[tab->nr_descs++]; 2857 b->btf = btf; 2858 b->module = mod; 2859 b->offset = offset; 2860 2861 /* sort() reorders entries by value, so b may no longer point 2862 * to the right entry after this 2863 */ 2864 sort(tab->descs, tab->nr_descs, sizeof(tab->descs[0]), 2865 kfunc_btf_cmp_by_off, NULL); 2866 } else { 2867 btf = b->btf; 2868 } 2869 2870 return btf; 2871 } 2872 2873 void bpf_free_kfunc_btf_tab(struct bpf_kfunc_btf_tab *tab) 2874 { 2875 if (!tab) 2876 return; 2877 2878 while (tab->nr_descs--) { 2879 module_put(tab->descs[tab->nr_descs].module); 2880 btf_put(tab->descs[tab->nr_descs].btf); 2881 } 2882 kfree(tab); 2883 } 2884 2885 static struct btf *find_kfunc_desc_btf(struct bpf_verifier_env *env, s16 offset) 2886 { 2887 if (offset) { 2888 if (offset < 0) { 2889 /* In the future, this can be allowed to increase limit 2890 * of fd index into fd_array, interpreted as u16. 2891 */ 2892 verbose(env, "negative offset disallowed for kernel module function call\n"); 2893 return ERR_PTR(-EINVAL); 2894 } 2895 2896 return __find_kfunc_desc_btf(env, offset); 2897 } 2898 return btf_vmlinux ?: ERR_PTR(-ENOENT); 2899 } 2900 2901 #define KF_IMPL_SUFFIX "_impl" 2902 2903 static const struct btf_type *find_kfunc_impl_proto(struct bpf_verifier_env *env, 2904 struct btf *btf, 2905 const char *func_name) 2906 { 2907 char *buf = env->tmp_str_buf; 2908 const struct btf_type *func; 2909 s32 impl_id; 2910 int len; 2911 2912 len = snprintf(buf, TMP_STR_BUF_LEN, "%s%s", func_name, KF_IMPL_SUFFIX); 2913 if (len < 0 || len >= TMP_STR_BUF_LEN) { 2914 verbose(env, "function name %s%s is too long\n", func_name, KF_IMPL_SUFFIX); 2915 return NULL; 2916 } 2917 2918 impl_id = btf_find_by_name_kind(btf, buf, BTF_KIND_FUNC); 2919 if (impl_id <= 0) { 2920 verbose(env, "cannot find function %s in BTF\n", buf); 2921 return NULL; 2922 } 2923 2924 func = btf_type_by_id(btf, impl_id); 2925 2926 return btf_type_by_id(btf, func->type); 2927 } 2928 2929 static int fetch_kfunc_meta(struct bpf_verifier_env *env, 2930 s32 func_id, 2931 s16 offset, 2932 struct bpf_kfunc_meta *kfunc) 2933 { 2934 const struct btf_type *func, *func_proto; 2935 const char *func_name; 2936 u32 *kfunc_flags; 2937 struct btf *btf; 2938 2939 if (func_id <= 0) { 2940 verbose(env, "invalid kernel function btf_id %d\n", func_id); 2941 return -EINVAL; 2942 } 2943 2944 btf = find_kfunc_desc_btf(env, offset); 2945 if (IS_ERR(btf)) { 2946 verbose(env, "failed to find BTF for kernel function\n"); 2947 return PTR_ERR(btf); 2948 } 2949 2950 /* 2951 * Note that kfunc_flags may be NULL at this point, which 2952 * means that we couldn't find func_id in any relevant 2953 * kfunc_id_set. This most likely indicates an invalid kfunc 2954 * call. However we don't fail with an error here, 2955 * and let the caller decide what to do with NULL kfunc->flags. 2956 */ 2957 kfunc_flags = btf_kfunc_flags(btf, func_id, env->prog); 2958 2959 func = btf_type_by_id(btf, func_id); 2960 if (!func || !btf_type_is_func(func)) { 2961 verbose(env, "kernel btf_id %d is not a function\n", func_id); 2962 return -EINVAL; 2963 } 2964 2965 func_name = btf_name_by_offset(btf, func->name_off); 2966 2967 /* 2968 * An actual prototype of a kfunc with KF_IMPLICIT_ARGS flag 2969 * can be found through the counterpart _impl kfunc. 2970 */ 2971 if (kfunc_flags && (*kfunc_flags & KF_IMPLICIT_ARGS)) 2972 func_proto = find_kfunc_impl_proto(env, btf, func_name); 2973 else 2974 func_proto = btf_type_by_id(btf, func->type); 2975 2976 if (!func_proto || !btf_type_is_func_proto(func_proto)) { 2977 verbose(env, "kernel function btf_id %d does not have a valid func_proto\n", 2978 func_id); 2979 return -EINVAL; 2980 } 2981 2982 memset(kfunc, 0, sizeof(*kfunc)); 2983 kfunc->btf = btf; 2984 kfunc->id = func_id; 2985 kfunc->name = func_name; 2986 kfunc->proto = func_proto; 2987 kfunc->flags = kfunc_flags; 2988 2989 return 0; 2990 } 2991 2992 int bpf_add_kfunc_call(struct bpf_verifier_env *env, u32 func_id, u16 offset) 2993 { 2994 struct bpf_kfunc_btf_tab *btf_tab; 2995 struct btf_func_model func_model; 2996 struct bpf_kfunc_desc_tab *tab; 2997 struct bpf_prog_aux *prog_aux; 2998 struct bpf_kfunc_meta kfunc; 2999 struct bpf_kfunc_desc *desc; 3000 unsigned long addr; 3001 int err; 3002 3003 prog_aux = env->prog->aux; 3004 tab = prog_aux->kfunc_tab; 3005 btf_tab = prog_aux->kfunc_btf_tab; 3006 if (!tab) { 3007 if (!btf_vmlinux) { 3008 verbose(env, "calling kernel function is not supported without CONFIG_DEBUG_INFO_BTF\n"); 3009 return -ENOTSUPP; 3010 } 3011 3012 if (!env->prog->jit_requested) { 3013 verbose(env, "JIT is required for calling kernel function\n"); 3014 return -ENOTSUPP; 3015 } 3016 3017 if (!bpf_jit_supports_kfunc_call()) { 3018 verbose(env, "JIT does not support calling kernel function\n"); 3019 return -ENOTSUPP; 3020 } 3021 3022 if (!env->prog->gpl_compatible) { 3023 verbose(env, "cannot call kernel function from non-GPL compatible program\n"); 3024 return -EINVAL; 3025 } 3026 3027 tab = kzalloc_obj(*tab, GFP_KERNEL_ACCOUNT); 3028 if (!tab) 3029 return -ENOMEM; 3030 prog_aux->kfunc_tab = tab; 3031 } 3032 3033 /* func_id == 0 is always invalid, but instead of returning an error, be 3034 * conservative and wait until the code elimination pass before returning 3035 * error, so that invalid calls that get pruned out can be in BPF programs 3036 * loaded from userspace. It is also required that offset be untouched 3037 * for such calls. 3038 */ 3039 if (!func_id && !offset) 3040 return 0; 3041 3042 if (!btf_tab && offset) { 3043 btf_tab = kzalloc_obj(*btf_tab, GFP_KERNEL_ACCOUNT); 3044 if (!btf_tab) 3045 return -ENOMEM; 3046 prog_aux->kfunc_btf_tab = btf_tab; 3047 } 3048 3049 if (find_kfunc_desc(env->prog, func_id, offset)) 3050 return 0; 3051 3052 if (tab->nr_descs == MAX_KFUNC_DESCS) { 3053 verbose(env, "too many different kernel function calls\n"); 3054 return -E2BIG; 3055 } 3056 3057 err = fetch_kfunc_meta(env, func_id, offset, &kfunc); 3058 if (err) 3059 return err; 3060 3061 addr = kallsyms_lookup_name(kfunc.name); 3062 if (!addr) { 3063 verbose(env, "cannot find address for kernel function %s\n", kfunc.name); 3064 return -EINVAL; 3065 } 3066 3067 if (bpf_dev_bound_kfunc_id(func_id)) { 3068 err = bpf_dev_bound_kfunc_check(&env->log, prog_aux); 3069 if (err) 3070 return err; 3071 } 3072 3073 err = btf_distill_func_proto(&env->log, kfunc.btf, kfunc.proto, kfunc.name, &func_model); 3074 if (err) 3075 return err; 3076 3077 desc = &tab->descs[tab->nr_descs++]; 3078 desc->func_id = func_id; 3079 desc->offset = offset; 3080 desc->addr = addr; 3081 desc->func_model = func_model; 3082 sort(tab->descs, tab->nr_descs, sizeof(tab->descs[0]), 3083 kfunc_desc_cmp_by_id_off, NULL); 3084 return 0; 3085 } 3086 3087 bool bpf_prog_has_kfunc_call(const struct bpf_prog *prog) 3088 { 3089 return !!prog->aux->kfunc_tab; 3090 } 3091 3092 static int add_subprog_and_kfunc(struct bpf_verifier_env *env) 3093 { 3094 struct bpf_subprog_info *subprog = env->subprog_info; 3095 int i, ret, insn_cnt = env->prog->len, ex_cb_insn; 3096 struct bpf_insn *insn = env->prog->insnsi; 3097 3098 /* Add entry function. */ 3099 ret = add_subprog(env, 0); 3100 if (ret) 3101 return ret; 3102 3103 for (i = 0; i < insn_cnt; i++, insn++) { 3104 if (!bpf_pseudo_func(insn) && !bpf_pseudo_call(insn) && 3105 !bpf_pseudo_kfunc_call(insn)) 3106 continue; 3107 3108 if (!env->bpf_capable) { 3109 verbose(env, "loading/calling other bpf or kernel functions are allowed for CAP_BPF and CAP_SYS_ADMIN\n"); 3110 return -EPERM; 3111 } 3112 3113 if (bpf_pseudo_func(insn) || bpf_pseudo_call(insn)) 3114 ret = add_subprog(env, i + insn->imm + 1); 3115 else 3116 ret = bpf_add_kfunc_call(env, insn->imm, insn->off); 3117 3118 if (ret < 0) 3119 return ret; 3120 } 3121 3122 ret = bpf_find_exception_callback_insn_off(env); 3123 if (ret < 0) 3124 return ret; 3125 ex_cb_insn = ret; 3126 3127 /* If ex_cb_insn > 0, this means that the main program has a subprog 3128 * marked using BTF decl tag to serve as the exception callback. 3129 */ 3130 if (ex_cb_insn) { 3131 ret = add_subprog(env, ex_cb_insn); 3132 if (ret < 0) 3133 return ret; 3134 for (i = 1; i < env->subprog_cnt; i++) { 3135 if (env->subprog_info[i].start != ex_cb_insn) 3136 continue; 3137 env->exception_callback_subprog = i; 3138 bpf_mark_subprog_exc_cb(env, i); 3139 break; 3140 } 3141 } 3142 3143 /* Add a fake 'exit' subprog which could simplify subprog iteration 3144 * logic. 'subprog_cnt' should not be increased. 3145 */ 3146 subprog[env->subprog_cnt].start = insn_cnt; 3147 3148 if (env->log.level & BPF_LOG_LEVEL2) 3149 for (i = 0; i < env->subprog_cnt; i++) 3150 verbose(env, "func#%d @%d\n", i, subprog[i].start); 3151 3152 return 0; 3153 } 3154 3155 static int check_subprogs(struct bpf_verifier_env *env) 3156 { 3157 int i, subprog_start, subprog_end, off, cur_subprog = 0; 3158 struct bpf_subprog_info *subprog = env->subprog_info; 3159 struct bpf_insn *insn = env->prog->insnsi; 3160 int insn_cnt = env->prog->len; 3161 3162 /* now check that all jumps are within the same subprog */ 3163 subprog_start = subprog[cur_subprog].start; 3164 subprog_end = subprog[cur_subprog + 1].start; 3165 for (i = 0; i < insn_cnt; i++) { 3166 u8 code = insn[i].code; 3167 3168 if (code == (BPF_JMP | BPF_CALL) && 3169 insn[i].src_reg == 0 && 3170 insn[i].imm == BPF_FUNC_tail_call) { 3171 subprog[cur_subprog].has_tail_call = true; 3172 subprog[cur_subprog].tail_call_reachable = true; 3173 } 3174 if (BPF_CLASS(code) == BPF_LD && 3175 (BPF_MODE(code) == BPF_ABS || BPF_MODE(code) == BPF_IND)) 3176 subprog[cur_subprog].has_ld_abs = true; 3177 if (BPF_CLASS(code) != BPF_JMP && BPF_CLASS(code) != BPF_JMP32) 3178 goto next; 3179 if (BPF_OP(code) == BPF_CALL) 3180 goto next; 3181 if (BPF_OP(code) == BPF_EXIT) { 3182 subprog[cur_subprog].exit_idx = i; 3183 goto next; 3184 } 3185 off = i + bpf_jmp_offset(&insn[i]) + 1; 3186 if (off < subprog_start || off >= subprog_end) { 3187 verbose(env, "jump out of range from insn %d to %d\n", i, off); 3188 return -EINVAL; 3189 } 3190 next: 3191 if (i == subprog_end - 1) { 3192 /* to avoid fall-through from one subprog into another 3193 * the last insn of the subprog should be either exit 3194 * or unconditional jump back or bpf_throw call 3195 */ 3196 if (code != (BPF_JMP | BPF_EXIT) && 3197 code != (BPF_JMP32 | BPF_JA) && 3198 code != (BPF_JMP | BPF_JA)) { 3199 verbose(env, "last insn is not an exit or jmp\n"); 3200 return -EINVAL; 3201 } 3202 subprog_start = subprog_end; 3203 cur_subprog++; 3204 if (cur_subprog < env->subprog_cnt) 3205 subprog_end = subprog[cur_subprog + 1].start; 3206 } 3207 } 3208 return 0; 3209 } 3210 3211 /* 3212 * Sort subprogs in topological order so that leaf subprogs come first and 3213 * their callers come later. This is a DFS post-order traversal of the call 3214 * graph. Scan only reachable instructions (those in the computed postorder) of 3215 * the current subprog to discover callees (direct subprogs and sync 3216 * callbacks). 3217 */ 3218 static int sort_subprogs_topo(struct bpf_verifier_env *env) 3219 { 3220 struct bpf_subprog_info *si = env->subprog_info; 3221 int *insn_postorder = env->cfg.insn_postorder; 3222 struct bpf_insn *insn = env->prog->insnsi; 3223 int cnt = env->subprog_cnt; 3224 int *dfs_stack = NULL; 3225 int top = 0, order = 0; 3226 int i, ret = 0; 3227 u8 *color = NULL; 3228 3229 color = kvzalloc_objs(*color, cnt, GFP_KERNEL_ACCOUNT); 3230 dfs_stack = kvmalloc_objs(*dfs_stack, cnt, GFP_KERNEL_ACCOUNT); 3231 if (!color || !dfs_stack) { 3232 ret = -ENOMEM; 3233 goto out; 3234 } 3235 3236 /* 3237 * DFS post-order traversal. 3238 * Color values: 0 = unvisited, 1 = on stack, 2 = done. 3239 */ 3240 for (i = 0; i < cnt; i++) { 3241 if (color[i]) 3242 continue; 3243 color[i] = 1; 3244 dfs_stack[top++] = i; 3245 3246 while (top > 0) { 3247 int cur = dfs_stack[top - 1]; 3248 int po_start = si[cur].postorder_start; 3249 int po_end = si[cur + 1].postorder_start; 3250 bool pushed = false; 3251 int j; 3252 3253 for (j = po_start; j < po_end; j++) { 3254 int idx = insn_postorder[j]; 3255 int callee; 3256 3257 if (!bpf_pseudo_call(&insn[idx]) && !bpf_pseudo_func(&insn[idx])) 3258 continue; 3259 callee = bpf_find_subprog(env, idx + insn[idx].imm + 1); 3260 if (callee < 0) { 3261 ret = -EFAULT; 3262 goto out; 3263 } 3264 if (color[callee] == 2) 3265 continue; 3266 if (color[callee] == 1) { 3267 if (bpf_pseudo_func(&insn[idx])) 3268 continue; 3269 verbose(env, "recursive call from %s() to %s()\n", 3270 subprog_name(env, cur), 3271 subprog_name(env, callee)); 3272 ret = -EINVAL; 3273 goto out; 3274 } 3275 color[callee] = 1; 3276 dfs_stack[top++] = callee; 3277 pushed = true; 3278 break; 3279 } 3280 3281 if (!pushed) { 3282 color[cur] = 2; 3283 env->subprog_topo_order[order++] = cur; 3284 top--; 3285 } 3286 } 3287 } 3288 3289 if (env->log.level & BPF_LOG_LEVEL2) 3290 for (i = 0; i < cnt; i++) 3291 verbose(env, "topo_order[%d] = %s\n", 3292 i, subprog_name(env, env->subprog_topo_order[i])); 3293 out: 3294 kvfree(dfs_stack); 3295 kvfree(color); 3296 return ret; 3297 } 3298 3299 static int mark_stack_slot_obj_read(struct bpf_verifier_env *env, struct bpf_reg_state *reg, 3300 int spi, int nr_slots) 3301 { 3302 int i; 3303 3304 for (i = 0; i < nr_slots; i++) 3305 mark_stack_slot_scratched(env, spi - i); 3306 return 0; 3307 } 3308 3309 static int mark_dynptr_read(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 3310 { 3311 int spi; 3312 3313 /* For CONST_PTR_TO_DYNPTR, it must have already been done by 3314 * check_reg_arg in check_helper_call and mark_btf_func_reg_size in 3315 * check_kfunc_call. 3316 */ 3317 if (reg->type == CONST_PTR_TO_DYNPTR) 3318 return 0; 3319 spi = dynptr_get_spi(env, reg); 3320 if (spi < 0) 3321 return spi; 3322 /* Caller ensures dynptr is valid and initialized, which means spi is in 3323 * bounds and spi is the first dynptr slot. Simply mark stack slot as 3324 * read. 3325 */ 3326 return mark_stack_slot_obj_read(env, reg, spi, BPF_DYNPTR_NR_SLOTS); 3327 } 3328 3329 static int mark_iter_read(struct bpf_verifier_env *env, struct bpf_reg_state *reg, 3330 int spi, int nr_slots) 3331 { 3332 return mark_stack_slot_obj_read(env, reg, spi, nr_slots); 3333 } 3334 3335 static int mark_irq_flag_read(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 3336 { 3337 int spi; 3338 3339 spi = irq_flag_get_spi(env, reg); 3340 if (spi < 0) 3341 return spi; 3342 return mark_stack_slot_obj_read(env, reg, spi, 1); 3343 } 3344 3345 /* This function is supposed to be used by the following 32-bit optimization 3346 * code only. It returns TRUE if the source or destination register operates 3347 * on 64-bit, otherwise return FALSE. 3348 */ 3349 bool bpf_is_reg64(struct bpf_insn *insn, 3350 u32 regno, struct bpf_reg_state *reg, enum bpf_reg_arg_type t) 3351 { 3352 u8 code, class, op; 3353 3354 code = insn->code; 3355 class = BPF_CLASS(code); 3356 op = BPF_OP(code); 3357 if (class == BPF_JMP) { 3358 /* BPF_EXIT for "main" will reach here. Return TRUE 3359 * conservatively. 3360 */ 3361 if (op == BPF_EXIT) 3362 return true; 3363 if (op == BPF_CALL) { 3364 /* BPF to BPF call will reach here because of marking 3365 * caller saved clobber with DST_OP_NO_MARK for which we 3366 * don't care the register def because they are anyway 3367 * marked as NOT_INIT already. 3368 */ 3369 if (insn->src_reg == BPF_PSEUDO_CALL) 3370 return false; 3371 /* Helper call will reach here because of arg type 3372 * check, conservatively return TRUE. 3373 */ 3374 if (t == SRC_OP) 3375 return true; 3376 3377 return false; 3378 } 3379 } 3380 3381 if (class == BPF_ALU64 && op == BPF_END && (insn->imm == 16 || insn->imm == 32)) 3382 return false; 3383 3384 if (class == BPF_ALU64 || class == BPF_JMP || 3385 (class == BPF_ALU && op == BPF_END && insn->imm == 64)) 3386 return true; 3387 3388 if (class == BPF_ALU || class == BPF_JMP32) 3389 return false; 3390 3391 if (class == BPF_LDX) { 3392 if (t != SRC_OP) 3393 return BPF_SIZE(code) == BPF_DW || BPF_MODE(code) == BPF_MEMSX; 3394 /* LDX source must be ptr. */ 3395 return true; 3396 } 3397 3398 if (class == BPF_STX) { 3399 /* BPF_STX (including atomic variants) has one or more source 3400 * operands, one of which is a ptr. Check whether the caller is 3401 * asking about it. 3402 */ 3403 if (t == SRC_OP && reg->type != SCALAR_VALUE) 3404 return true; 3405 return BPF_SIZE(code) == BPF_DW; 3406 } 3407 3408 if (class == BPF_LD) { 3409 u8 mode = BPF_MODE(code); 3410 3411 /* LD_IMM64 */ 3412 if (mode == BPF_IMM) 3413 return true; 3414 3415 /* Both LD_IND and LD_ABS return 32-bit data. */ 3416 if (t != SRC_OP) 3417 return false; 3418 3419 /* Implicit ctx ptr. */ 3420 if (regno == BPF_REG_6) 3421 return true; 3422 3423 /* Explicit source could be any width. */ 3424 return true; 3425 } 3426 3427 if (class == BPF_ST) 3428 /* The only source register for BPF_ST is a ptr. */ 3429 return true; 3430 3431 /* Conservatively return true at default. */ 3432 return true; 3433 } 3434 3435 static void mark_insn_zext(struct bpf_verifier_env *env, 3436 struct bpf_reg_state *reg) 3437 { 3438 s32 def_idx = reg->subreg_def; 3439 3440 if (def_idx == DEF_NOT_SUBREG) 3441 return; 3442 3443 env->insn_aux_data[def_idx - 1].zext_dst = true; 3444 /* The dst will be zero extended, so won't be sub-register anymore. */ 3445 reg->subreg_def = DEF_NOT_SUBREG; 3446 } 3447 3448 static int __check_reg_arg(struct bpf_verifier_env *env, struct bpf_reg_state *regs, u32 regno, 3449 enum bpf_reg_arg_type t) 3450 { 3451 struct bpf_insn *insn = env->prog->insnsi + env->insn_idx; 3452 struct bpf_reg_state *reg; 3453 bool rw64; 3454 3455 mark_reg_scratched(env, regno); 3456 3457 reg = ®s[regno]; 3458 rw64 = bpf_is_reg64(insn, regno, reg, t); 3459 if (t == SRC_OP) { 3460 /* check whether register used as source operand can be read */ 3461 if (reg->type == NOT_INIT) { 3462 verbose(env, "R%d !read_ok\n", regno); 3463 return -EACCES; 3464 } 3465 /* We don't need to worry about FP liveness because it's read-only */ 3466 if (regno == BPF_REG_FP) 3467 return 0; 3468 3469 if (rw64) 3470 mark_insn_zext(env, reg); 3471 3472 return 0; 3473 } else { 3474 /* check whether register used as dest operand can be written to */ 3475 if (regno == BPF_REG_FP) { 3476 verbose(env, "frame pointer is read only\n"); 3477 return -EACCES; 3478 } 3479 reg->subreg_def = rw64 ? DEF_NOT_SUBREG : env->insn_idx + 1; 3480 if (t == DST_OP) 3481 mark_reg_unknown(env, regs, regno); 3482 } 3483 return 0; 3484 } 3485 3486 static int check_reg_arg(struct bpf_verifier_env *env, u32 regno, 3487 enum bpf_reg_arg_type t) 3488 { 3489 struct bpf_verifier_state *vstate = env->cur_state; 3490 struct bpf_func_state *state = vstate->frame[vstate->curframe]; 3491 3492 return __check_reg_arg(env, state->regs, regno, t); 3493 } 3494 3495 static int insn_stack_access_flags(int frameno, int spi) 3496 { 3497 return INSN_F_STACK_ACCESS | (spi << INSN_F_SPI_SHIFT) | frameno; 3498 } 3499 3500 #define LR_FRAMENO_BITS 3 3501 #define LR_SPI_BITS 6 3502 #define LR_ENTRY_BITS (LR_SPI_BITS + LR_FRAMENO_BITS + 1) 3503 #define LR_SIZE_BITS 4 3504 #define LR_FRAMENO_MASK ((1ull << LR_FRAMENO_BITS) - 1) 3505 #define LR_SPI_MASK ((1ull << LR_SPI_BITS) - 1) 3506 #define LR_SIZE_MASK ((1ull << LR_SIZE_BITS) - 1) 3507 #define LR_SPI_OFF LR_FRAMENO_BITS 3508 #define LR_IS_REG_OFF (LR_SPI_BITS + LR_FRAMENO_BITS) 3509 #define LINKED_REGS_MAX 6 3510 3511 struct linked_reg { 3512 u8 frameno; 3513 union { 3514 u8 spi; 3515 u8 regno; 3516 }; 3517 bool is_reg; 3518 }; 3519 3520 struct linked_regs { 3521 int cnt; 3522 struct linked_reg entries[LINKED_REGS_MAX]; 3523 }; 3524 3525 static struct linked_reg *linked_regs_push(struct linked_regs *s) 3526 { 3527 if (s->cnt < LINKED_REGS_MAX) 3528 return &s->entries[s->cnt++]; 3529 3530 return NULL; 3531 } 3532 3533 /* Use u64 as a vector of 6 10-bit values, use first 4-bits to track 3534 * number of elements currently in stack. 3535 * Pack one history entry for linked registers as 10 bits in the following format: 3536 * - 3-bits frameno 3537 * - 6-bits spi_or_reg 3538 * - 1-bit is_reg 3539 */ 3540 static u64 linked_regs_pack(struct linked_regs *s) 3541 { 3542 u64 val = 0; 3543 int i; 3544 3545 for (i = 0; i < s->cnt; ++i) { 3546 struct linked_reg *e = &s->entries[i]; 3547 u64 tmp = 0; 3548 3549 tmp |= e->frameno; 3550 tmp |= e->spi << LR_SPI_OFF; 3551 tmp |= (e->is_reg ? 1 : 0) << LR_IS_REG_OFF; 3552 3553 val <<= LR_ENTRY_BITS; 3554 val |= tmp; 3555 } 3556 val <<= LR_SIZE_BITS; 3557 val |= s->cnt; 3558 return val; 3559 } 3560 3561 static void linked_regs_unpack(u64 val, struct linked_regs *s) 3562 { 3563 int i; 3564 3565 s->cnt = val & LR_SIZE_MASK; 3566 val >>= LR_SIZE_BITS; 3567 3568 for (i = 0; i < s->cnt; ++i) { 3569 struct linked_reg *e = &s->entries[i]; 3570 3571 e->frameno = val & LR_FRAMENO_MASK; 3572 e->spi = (val >> LR_SPI_OFF) & LR_SPI_MASK; 3573 e->is_reg = (val >> LR_IS_REG_OFF) & 0x1; 3574 val >>= LR_ENTRY_BITS; 3575 } 3576 } 3577 3578 static const char *disasm_kfunc_name(void *data, const struct bpf_insn *insn) 3579 { 3580 const struct btf_type *func; 3581 struct btf *desc_btf; 3582 3583 if (insn->src_reg != BPF_PSEUDO_KFUNC_CALL) 3584 return NULL; 3585 3586 desc_btf = find_kfunc_desc_btf(data, insn->off); 3587 if (IS_ERR(desc_btf)) 3588 return "<error>"; 3589 3590 func = btf_type_by_id(desc_btf, insn->imm); 3591 return btf_name_by_offset(desc_btf, func->name_off); 3592 } 3593 3594 void bpf_verbose_insn(struct bpf_verifier_env *env, struct bpf_insn *insn) 3595 { 3596 const struct bpf_insn_cbs cbs = { 3597 .cb_call = disasm_kfunc_name, 3598 .cb_print = verbose, 3599 .private_data = env, 3600 }; 3601 3602 print_bpf_insn(&cbs, insn, env->allow_ptr_leaks); 3603 } 3604 3605 /* If any register R in hist->linked_regs is marked as precise in bt, 3606 * do bt_set_frame_{reg,slot}(bt, R) for all registers in hist->linked_regs. 3607 */ 3608 void bpf_bt_sync_linked_regs(struct backtrack_state *bt, struct bpf_jmp_history_entry *hist) 3609 { 3610 struct linked_regs linked_regs; 3611 bool some_precise = false; 3612 int i; 3613 3614 if (!hist || hist->linked_regs == 0) 3615 return; 3616 3617 linked_regs_unpack(hist->linked_regs, &linked_regs); 3618 for (i = 0; i < linked_regs.cnt; ++i) { 3619 struct linked_reg *e = &linked_regs.entries[i]; 3620 3621 if ((e->is_reg && bt_is_frame_reg_set(bt, e->frameno, e->regno)) || 3622 (!e->is_reg && bt_is_frame_slot_set(bt, e->frameno, e->spi))) { 3623 some_precise = true; 3624 break; 3625 } 3626 } 3627 3628 if (!some_precise) 3629 return; 3630 3631 for (i = 0; i < linked_regs.cnt; ++i) { 3632 struct linked_reg *e = &linked_regs.entries[i]; 3633 3634 if (e->is_reg) 3635 bpf_bt_set_frame_reg(bt, e->frameno, e->regno); 3636 else 3637 bpf_bt_set_frame_slot(bt, e->frameno, e->spi); 3638 } 3639 } 3640 3641 int mark_chain_precision(struct bpf_verifier_env *env, int regno) 3642 { 3643 return bpf_mark_chain_precision(env, env->cur_state, regno, NULL); 3644 } 3645 3646 /* mark_chain_precision_batch() assumes that env->bt is set in the caller to 3647 * desired reg and stack masks across all relevant frames 3648 */ 3649 static int mark_chain_precision_batch(struct bpf_verifier_env *env, 3650 struct bpf_verifier_state *starting_state) 3651 { 3652 return bpf_mark_chain_precision(env, starting_state, -1, NULL); 3653 } 3654 3655 static bool is_spillable_regtype(enum bpf_reg_type type) 3656 { 3657 switch (base_type(type)) { 3658 case PTR_TO_MAP_VALUE: 3659 case PTR_TO_STACK: 3660 case PTR_TO_CTX: 3661 case PTR_TO_PACKET: 3662 case PTR_TO_PACKET_META: 3663 case PTR_TO_PACKET_END: 3664 case PTR_TO_FLOW_KEYS: 3665 case CONST_PTR_TO_MAP: 3666 case PTR_TO_SOCKET: 3667 case PTR_TO_SOCK_COMMON: 3668 case PTR_TO_TCP_SOCK: 3669 case PTR_TO_XDP_SOCK: 3670 case PTR_TO_BTF_ID: 3671 case PTR_TO_BUF: 3672 case PTR_TO_MEM: 3673 case PTR_TO_FUNC: 3674 case PTR_TO_MAP_KEY: 3675 case PTR_TO_ARENA: 3676 return true; 3677 default: 3678 return false; 3679 } 3680 } 3681 3682 3683 /* check if register is a constant scalar value */ 3684 static bool is_reg_const(struct bpf_reg_state *reg, bool subreg32) 3685 { 3686 return reg->type == SCALAR_VALUE && 3687 tnum_is_const(subreg32 ? tnum_subreg(reg->var_off) : reg->var_off); 3688 } 3689 3690 /* assuming is_reg_const() is true, return constant value of a register */ 3691 static u64 reg_const_value(struct bpf_reg_state *reg, bool subreg32) 3692 { 3693 return subreg32 ? tnum_subreg(reg->var_off).value : reg->var_off.value; 3694 } 3695 3696 static bool __is_pointer_value(bool allow_ptr_leaks, 3697 const struct bpf_reg_state *reg) 3698 { 3699 if (allow_ptr_leaks) 3700 return false; 3701 3702 return reg->type != SCALAR_VALUE; 3703 } 3704 3705 static void clear_scalar_id(struct bpf_reg_state *reg) 3706 { 3707 reg->id = 0; 3708 reg->delta = 0; 3709 } 3710 3711 static void assign_scalar_id_before_mov(struct bpf_verifier_env *env, 3712 struct bpf_reg_state *src_reg) 3713 { 3714 if (src_reg->type != SCALAR_VALUE) 3715 return; 3716 /* 3717 * The verifier is processing rX = rY insn and 3718 * rY->id has special linked register already. 3719 * Cleared it, since multiple rX += const are not supported. 3720 */ 3721 if (src_reg->id & BPF_ADD_CONST) 3722 clear_scalar_id(src_reg); 3723 /* 3724 * Ensure that src_reg has a valid ID that will be copied to 3725 * dst_reg and then will be used by sync_linked_regs() to 3726 * propagate min/max range. 3727 */ 3728 if (!src_reg->id && !tnum_is_const(src_reg->var_off)) 3729 src_reg->id = ++env->id_gen; 3730 } 3731 3732 /* Copy src state preserving dst->parent and dst->live fields */ 3733 static void copy_register_state(struct bpf_reg_state *dst, const struct bpf_reg_state *src) 3734 { 3735 *dst = *src; 3736 } 3737 3738 static void save_register_state(struct bpf_verifier_env *env, 3739 struct bpf_func_state *state, 3740 int spi, struct bpf_reg_state *reg, 3741 int size) 3742 { 3743 int i; 3744 3745 copy_register_state(&state->stack[spi].spilled_ptr, reg); 3746 3747 for (i = BPF_REG_SIZE; i > BPF_REG_SIZE - size; i--) 3748 state->stack[spi].slot_type[i - 1] = STACK_SPILL; 3749 3750 /* size < 8 bytes spill */ 3751 for (; i; i--) 3752 mark_stack_slot_misc(env, &state->stack[spi].slot_type[i - 1]); 3753 } 3754 3755 static bool is_bpf_st_mem(struct bpf_insn *insn) 3756 { 3757 return BPF_CLASS(insn->code) == BPF_ST && BPF_MODE(insn->code) == BPF_MEM; 3758 } 3759 3760 static int get_reg_width(struct bpf_reg_state *reg) 3761 { 3762 return fls64(reg->umax_value); 3763 } 3764 3765 /* See comment for mark_fastcall_pattern_for_call() */ 3766 static void check_fastcall_stack_contract(struct bpf_verifier_env *env, 3767 struct bpf_func_state *state, int insn_idx, int off) 3768 { 3769 struct bpf_subprog_info *subprog = &env->subprog_info[state->subprogno]; 3770 struct bpf_insn_aux_data *aux = env->insn_aux_data; 3771 int i; 3772 3773 if (subprog->fastcall_stack_off <= off || aux[insn_idx].fastcall_pattern) 3774 return; 3775 /* access to the region [max_stack_depth .. fastcall_stack_off) 3776 * from something that is not a part of the fastcall pattern, 3777 * disable fastcall rewrites for current subprogram by setting 3778 * fastcall_stack_off to a value smaller than any possible offset. 3779 */ 3780 subprog->fastcall_stack_off = S16_MIN; 3781 /* reset fastcall aux flags within subprogram, 3782 * happens at most once per subprogram 3783 */ 3784 for (i = subprog->start; i < (subprog + 1)->start; ++i) { 3785 aux[i].fastcall_spills_num = 0; 3786 aux[i].fastcall_pattern = 0; 3787 } 3788 } 3789 3790 static void scrub_special_slot(struct bpf_func_state *state, int spi) 3791 { 3792 int i; 3793 3794 /* regular write of data into stack destroys any spilled ptr */ 3795 state->stack[spi].spilled_ptr.type = NOT_INIT; 3796 /* Mark slots as STACK_MISC if they belonged to spilled ptr/dynptr/iter. */ 3797 if (is_stack_slot_special(&state->stack[spi])) 3798 for (i = 0; i < BPF_REG_SIZE; i++) 3799 scrub_spilled_slot(&state->stack[spi].slot_type[i]); 3800 } 3801 3802 /* check_stack_{read,write}_fixed_off functions track spill/fill of registers, 3803 * stack boundary and alignment are checked in check_mem_access() 3804 */ 3805 static int check_stack_write_fixed_off(struct bpf_verifier_env *env, 3806 /* stack frame we're writing to */ 3807 struct bpf_func_state *state, 3808 int off, int size, int value_regno, 3809 int insn_idx) 3810 { 3811 struct bpf_func_state *cur; /* state of the current function */ 3812 int i, slot = -off - 1, spi = slot / BPF_REG_SIZE, err; 3813 struct bpf_insn *insn = &env->prog->insnsi[insn_idx]; 3814 struct bpf_reg_state *reg = NULL; 3815 int insn_flags = insn_stack_access_flags(state->frameno, spi); 3816 3817 /* caller checked that off % size == 0 and -MAX_BPF_STACK <= off < 0, 3818 * so it's aligned access and [off, off + size) are within stack limits 3819 */ 3820 if (!env->allow_ptr_leaks && 3821 bpf_is_spilled_reg(&state->stack[spi]) && 3822 !bpf_is_spilled_scalar_reg(&state->stack[spi]) && 3823 size != BPF_REG_SIZE) { 3824 verbose(env, "attempt to corrupt spilled pointer on stack\n"); 3825 return -EACCES; 3826 } 3827 3828 cur = env->cur_state->frame[env->cur_state->curframe]; 3829 if (value_regno >= 0) 3830 reg = &cur->regs[value_regno]; 3831 if (!env->bypass_spec_v4) { 3832 bool sanitize = reg && is_spillable_regtype(reg->type); 3833 3834 for (i = 0; i < size; i++) { 3835 u8 type = state->stack[spi].slot_type[i]; 3836 3837 if (type != STACK_MISC && type != STACK_ZERO) { 3838 sanitize = true; 3839 break; 3840 } 3841 } 3842 3843 if (sanitize) 3844 env->insn_aux_data[insn_idx].nospec_result = true; 3845 } 3846 3847 err = destroy_if_dynptr_stack_slot(env, state, spi); 3848 if (err) 3849 return err; 3850 3851 check_fastcall_stack_contract(env, state, insn_idx, off); 3852 mark_stack_slot_scratched(env, spi); 3853 if (reg && !(off % BPF_REG_SIZE) && reg->type == SCALAR_VALUE && env->bpf_capable) { 3854 bool reg_value_fits; 3855 3856 reg_value_fits = get_reg_width(reg) <= BITS_PER_BYTE * size; 3857 /* Make sure that reg had an ID to build a relation on spill. */ 3858 if (reg_value_fits) 3859 assign_scalar_id_before_mov(env, reg); 3860 save_register_state(env, state, spi, reg, size); 3861 /* Break the relation on a narrowing spill. */ 3862 if (!reg_value_fits) 3863 state->stack[spi].spilled_ptr.id = 0; 3864 } else if (!reg && !(off % BPF_REG_SIZE) && is_bpf_st_mem(insn) && 3865 env->bpf_capable) { 3866 struct bpf_reg_state *tmp_reg = &env->fake_reg[0]; 3867 3868 memset(tmp_reg, 0, sizeof(*tmp_reg)); 3869 __mark_reg_known(tmp_reg, insn->imm); 3870 tmp_reg->type = SCALAR_VALUE; 3871 save_register_state(env, state, spi, tmp_reg, size); 3872 } else if (reg && is_spillable_regtype(reg->type)) { 3873 /* register containing pointer is being spilled into stack */ 3874 if (size != BPF_REG_SIZE) { 3875 verbose_linfo(env, insn_idx, "; "); 3876 verbose(env, "invalid size of register spill\n"); 3877 return -EACCES; 3878 } 3879 if (state != cur && reg->type == PTR_TO_STACK) { 3880 verbose(env, "cannot spill pointers to stack into stack frame of the caller\n"); 3881 return -EINVAL; 3882 } 3883 save_register_state(env, state, spi, reg, size); 3884 } else { 3885 u8 type = STACK_MISC; 3886 3887 scrub_special_slot(state, spi); 3888 3889 /* when we zero initialize stack slots mark them as such */ 3890 if ((reg && bpf_register_is_null(reg)) || 3891 (!reg && is_bpf_st_mem(insn) && insn->imm == 0)) { 3892 /* STACK_ZERO case happened because register spill 3893 * wasn't properly aligned at the stack slot boundary, 3894 * so it's not a register spill anymore; force 3895 * originating register to be precise to make 3896 * STACK_ZERO correct for subsequent states 3897 */ 3898 err = mark_chain_precision(env, value_regno); 3899 if (err) 3900 return err; 3901 type = STACK_ZERO; 3902 } 3903 3904 /* Mark slots affected by this stack write. */ 3905 for (i = 0; i < size; i++) 3906 state->stack[spi].slot_type[(slot - i) % BPF_REG_SIZE] = type; 3907 insn_flags = 0; /* not a register spill */ 3908 } 3909 3910 if (insn_flags) 3911 return bpf_push_jmp_history(env, env->cur_state, insn_flags, 0); 3912 return 0; 3913 } 3914 3915 /* Write the stack: 'stack[ptr_regno + off] = value_regno'. 'ptr_regno' is 3916 * known to contain a variable offset. 3917 * This function checks whether the write is permitted and conservatively 3918 * tracks the effects of the write, considering that each stack slot in the 3919 * dynamic range is potentially written to. 3920 * 3921 * 'value_regno' can be -1, meaning that an unknown value is being written to 3922 * the stack. 3923 * 3924 * Spilled pointers in range are not marked as written because we don't know 3925 * what's going to be actually written. This means that read propagation for 3926 * future reads cannot be terminated by this write. 3927 * 3928 * For privileged programs, uninitialized stack slots are considered 3929 * initialized by this write (even though we don't know exactly what offsets 3930 * are going to be written to). The idea is that we don't want the verifier to 3931 * reject future reads that access slots written to through variable offsets. 3932 */ 3933 static int check_stack_write_var_off(struct bpf_verifier_env *env, 3934 /* func where register points to */ 3935 struct bpf_func_state *state, 3936 int ptr_regno, int off, int size, 3937 int value_regno, int insn_idx) 3938 { 3939 struct bpf_func_state *cur; /* state of the current function */ 3940 int min_off, max_off; 3941 int i, err; 3942 struct bpf_reg_state *ptr_reg = NULL, *value_reg = NULL; 3943 struct bpf_insn *insn = &env->prog->insnsi[insn_idx]; 3944 bool writing_zero = false; 3945 /* set if the fact that we're writing a zero is used to let any 3946 * stack slots remain STACK_ZERO 3947 */ 3948 bool zero_used = false; 3949 3950 cur = env->cur_state->frame[env->cur_state->curframe]; 3951 ptr_reg = &cur->regs[ptr_regno]; 3952 min_off = ptr_reg->smin_value + off; 3953 max_off = ptr_reg->smax_value + off + size; 3954 if (value_regno >= 0) 3955 value_reg = &cur->regs[value_regno]; 3956 if ((value_reg && bpf_register_is_null(value_reg)) || 3957 (!value_reg && is_bpf_st_mem(insn) && insn->imm == 0)) 3958 writing_zero = true; 3959 3960 for (i = min_off; i < max_off; i++) { 3961 int spi; 3962 3963 spi = bpf_get_spi(i); 3964 err = destroy_if_dynptr_stack_slot(env, state, spi); 3965 if (err) 3966 return err; 3967 } 3968 3969 check_fastcall_stack_contract(env, state, insn_idx, min_off); 3970 /* Variable offset writes destroy any spilled pointers in range. */ 3971 for (i = min_off; i < max_off; i++) { 3972 u8 new_type, *stype; 3973 int slot, spi; 3974 3975 slot = -i - 1; 3976 spi = slot / BPF_REG_SIZE; 3977 stype = &state->stack[spi].slot_type[slot % BPF_REG_SIZE]; 3978 mark_stack_slot_scratched(env, spi); 3979 3980 if (!env->allow_ptr_leaks && *stype != STACK_MISC && *stype != STACK_ZERO) { 3981 /* Reject the write if range we may write to has not 3982 * been initialized beforehand. If we didn't reject 3983 * here, the ptr status would be erased below (even 3984 * though not all slots are actually overwritten), 3985 * possibly opening the door to leaks. 3986 * 3987 * We do however catch STACK_INVALID case below, and 3988 * only allow reading possibly uninitialized memory 3989 * later for CAP_PERFMON, as the write may not happen to 3990 * that slot. 3991 */ 3992 verbose(env, "spilled ptr in range of var-offset stack write; insn %d, ptr off: %d", 3993 insn_idx, i); 3994 return -EINVAL; 3995 } 3996 3997 /* If writing_zero and the spi slot contains a spill of value 0, 3998 * maintain the spill type. 3999 */ 4000 if (writing_zero && *stype == STACK_SPILL && 4001 bpf_is_spilled_scalar_reg(&state->stack[spi])) { 4002 struct bpf_reg_state *spill_reg = &state->stack[spi].spilled_ptr; 4003 4004 if (tnum_is_const(spill_reg->var_off) && spill_reg->var_off.value == 0) { 4005 zero_used = true; 4006 continue; 4007 } 4008 } 4009 4010 /* 4011 * Scrub slots if variable-offset stack write goes over spilled pointers. 4012 * Otherwise bpf_is_spilled_reg() may == true && spilled_ptr.type == NOT_INIT 4013 * and valid program is rejected by check_stack_read_fixed_off() 4014 * with obscure "invalid size of register fill" message. 4015 */ 4016 scrub_special_slot(state, spi); 4017 4018 /* Update the slot type. */ 4019 new_type = STACK_MISC; 4020 if (writing_zero && *stype == STACK_ZERO) { 4021 new_type = STACK_ZERO; 4022 zero_used = true; 4023 } 4024 /* If the slot is STACK_INVALID, we check whether it's OK to 4025 * pretend that it will be initialized by this write. The slot 4026 * might not actually be written to, and so if we mark it as 4027 * initialized future reads might leak uninitialized memory. 4028 * For privileged programs, we will accept such reads to slots 4029 * that may or may not be written because, if we're reject 4030 * them, the error would be too confusing. 4031 * Conservatively, treat STACK_POISON in a similar way. 4032 */ 4033 if ((*stype == STACK_INVALID || *stype == STACK_POISON) && 4034 !env->allow_uninit_stack) { 4035 verbose(env, "uninit stack in range of var-offset write prohibited for !root; insn %d, off: %d", 4036 insn_idx, i); 4037 return -EINVAL; 4038 } 4039 *stype = new_type; 4040 } 4041 if (zero_used) { 4042 /* backtracking doesn't work for STACK_ZERO yet. */ 4043 err = mark_chain_precision(env, value_regno); 4044 if (err) 4045 return err; 4046 } 4047 return 0; 4048 } 4049 4050 /* When register 'dst_regno' is assigned some values from stack[min_off, 4051 * max_off), we set the register's type according to the types of the 4052 * respective stack slots. If all the stack values are known to be zeros, then 4053 * so is the destination reg. Otherwise, the register is considered to be 4054 * SCALAR. This function does not deal with register filling; the caller must 4055 * ensure that all spilled registers in the stack range have been marked as 4056 * read. 4057 */ 4058 static void mark_reg_stack_read(struct bpf_verifier_env *env, 4059 /* func where src register points to */ 4060 struct bpf_func_state *ptr_state, 4061 int min_off, int max_off, int dst_regno) 4062 { 4063 struct bpf_verifier_state *vstate = env->cur_state; 4064 struct bpf_func_state *state = vstate->frame[vstate->curframe]; 4065 int i, slot, spi; 4066 u8 *stype; 4067 int zeros = 0; 4068 4069 for (i = min_off; i < max_off; i++) { 4070 slot = -i - 1; 4071 spi = slot / BPF_REG_SIZE; 4072 mark_stack_slot_scratched(env, spi); 4073 stype = ptr_state->stack[spi].slot_type; 4074 if (stype[slot % BPF_REG_SIZE] != STACK_ZERO) 4075 break; 4076 zeros++; 4077 } 4078 if (zeros == max_off - min_off) { 4079 /* Any access_size read into register is zero extended, 4080 * so the whole register == const_zero. 4081 */ 4082 __mark_reg_const_zero(env, &state->regs[dst_regno]); 4083 } else { 4084 /* have read misc data from the stack */ 4085 mark_reg_unknown(env, state->regs, dst_regno); 4086 } 4087 } 4088 4089 /* Read the stack at 'off' and put the results into the register indicated by 4090 * 'dst_regno'. It handles reg filling if the addressed stack slot is a 4091 * spilled reg. 4092 * 4093 * 'dst_regno' can be -1, meaning that the read value is not going to a 4094 * register. 4095 * 4096 * The access is assumed to be within the current stack bounds. 4097 */ 4098 static int check_stack_read_fixed_off(struct bpf_verifier_env *env, 4099 /* func where src register points to */ 4100 struct bpf_func_state *reg_state, 4101 int off, int size, int dst_regno) 4102 { 4103 struct bpf_verifier_state *vstate = env->cur_state; 4104 struct bpf_func_state *state = vstate->frame[vstate->curframe]; 4105 int i, slot = -off - 1, spi = slot / BPF_REG_SIZE; 4106 struct bpf_reg_state *reg; 4107 u8 *stype, type; 4108 int insn_flags = insn_stack_access_flags(reg_state->frameno, spi); 4109 4110 stype = reg_state->stack[spi].slot_type; 4111 reg = ®_state->stack[spi].spilled_ptr; 4112 4113 mark_stack_slot_scratched(env, spi); 4114 check_fastcall_stack_contract(env, state, env->insn_idx, off); 4115 4116 if (bpf_is_spilled_reg(®_state->stack[spi])) { 4117 u8 spill_size = 1; 4118 4119 for (i = BPF_REG_SIZE - 1; i > 0 && stype[i - 1] == STACK_SPILL; i--) 4120 spill_size++; 4121 4122 if (size != BPF_REG_SIZE || spill_size != BPF_REG_SIZE) { 4123 if (reg->type != SCALAR_VALUE) { 4124 verbose_linfo(env, env->insn_idx, "; "); 4125 verbose(env, "invalid size of register fill\n"); 4126 return -EACCES; 4127 } 4128 4129 if (dst_regno < 0) 4130 return 0; 4131 4132 if (size <= spill_size && 4133 bpf_stack_narrow_access_ok(off, size, spill_size)) { 4134 /* The earlier check_reg_arg() has decided the 4135 * subreg_def for this insn. Save it first. 4136 */ 4137 s32 subreg_def = state->regs[dst_regno].subreg_def; 4138 4139 if (env->bpf_capable && size == 4 && spill_size == 4 && 4140 get_reg_width(reg) <= 32) 4141 /* Ensure stack slot has an ID to build a relation 4142 * with the destination register on fill. 4143 */ 4144 assign_scalar_id_before_mov(env, reg); 4145 copy_register_state(&state->regs[dst_regno], reg); 4146 state->regs[dst_regno].subreg_def = subreg_def; 4147 4148 /* Break the relation on a narrowing fill. 4149 * coerce_reg_to_size will adjust the boundaries. 4150 */ 4151 if (get_reg_width(reg) > size * BITS_PER_BYTE) 4152 clear_scalar_id(&state->regs[dst_regno]); 4153 } else { 4154 int spill_cnt = 0, zero_cnt = 0; 4155 4156 for (i = 0; i < size; i++) { 4157 type = stype[(slot - i) % BPF_REG_SIZE]; 4158 if (type == STACK_SPILL) { 4159 spill_cnt++; 4160 continue; 4161 } 4162 if (type == STACK_MISC) 4163 continue; 4164 if (type == STACK_ZERO) { 4165 zero_cnt++; 4166 continue; 4167 } 4168 if (type == STACK_INVALID && env->allow_uninit_stack) 4169 continue; 4170 if (type == STACK_POISON) { 4171 verbose(env, "reading from stack off %d+%d size %d, slot poisoned by dead code elimination\n", 4172 off, i, size); 4173 } else { 4174 verbose(env, "invalid read from stack off %d+%d size %d\n", 4175 off, i, size); 4176 } 4177 return -EACCES; 4178 } 4179 4180 if (spill_cnt == size && 4181 tnum_is_const(reg->var_off) && reg->var_off.value == 0) { 4182 __mark_reg_const_zero(env, &state->regs[dst_regno]); 4183 /* this IS register fill, so keep insn_flags */ 4184 } else if (zero_cnt == size) { 4185 /* similarly to mark_reg_stack_read(), preserve zeroes */ 4186 __mark_reg_const_zero(env, &state->regs[dst_regno]); 4187 insn_flags = 0; /* not restoring original register state */ 4188 } else { 4189 mark_reg_unknown(env, state->regs, dst_regno); 4190 insn_flags = 0; /* not restoring original register state */ 4191 } 4192 } 4193 } else if (dst_regno >= 0) { 4194 /* restore register state from stack */ 4195 if (env->bpf_capable) 4196 /* Ensure stack slot has an ID to build a relation 4197 * with the destination register on fill. 4198 */ 4199 assign_scalar_id_before_mov(env, reg); 4200 copy_register_state(&state->regs[dst_regno], reg); 4201 /* mark reg as written since spilled pointer state likely 4202 * has its liveness marks cleared by is_state_visited() 4203 * which resets stack/reg liveness for state transitions 4204 */ 4205 } else if (__is_pointer_value(env->allow_ptr_leaks, reg)) { 4206 /* If dst_regno==-1, the caller is asking us whether 4207 * it is acceptable to use this value as a SCALAR_VALUE 4208 * (e.g. for XADD). 4209 * We must not allow unprivileged callers to do that 4210 * with spilled pointers. 4211 */ 4212 verbose(env, "leaking pointer from stack off %d\n", 4213 off); 4214 return -EACCES; 4215 } 4216 } else { 4217 for (i = 0; i < size; i++) { 4218 type = stype[(slot - i) % BPF_REG_SIZE]; 4219 if (type == STACK_MISC) 4220 continue; 4221 if (type == STACK_ZERO) 4222 continue; 4223 if (type == STACK_INVALID && env->allow_uninit_stack) 4224 continue; 4225 if (type == STACK_POISON) { 4226 verbose(env, "reading from stack off %d+%d size %d, slot poisoned by dead code elimination\n", 4227 off, i, size); 4228 } else { 4229 verbose(env, "invalid read from stack off %d+%d size %d\n", 4230 off, i, size); 4231 } 4232 return -EACCES; 4233 } 4234 if (dst_regno >= 0) 4235 mark_reg_stack_read(env, reg_state, off, off + size, dst_regno); 4236 insn_flags = 0; /* we are not restoring spilled register */ 4237 } 4238 if (insn_flags) 4239 return bpf_push_jmp_history(env, env->cur_state, insn_flags, 0); 4240 return 0; 4241 } 4242 4243 enum bpf_access_src { 4244 ACCESS_DIRECT = 1, /* the access is performed by an instruction */ 4245 ACCESS_HELPER = 2, /* the access is performed by a helper */ 4246 }; 4247 4248 static int check_stack_range_initialized(struct bpf_verifier_env *env, 4249 int regno, int off, int access_size, 4250 bool zero_size_allowed, 4251 enum bpf_access_type type, 4252 struct bpf_call_arg_meta *meta); 4253 4254 static struct bpf_reg_state *reg_state(struct bpf_verifier_env *env, int regno) 4255 { 4256 return cur_regs(env) + regno; 4257 } 4258 4259 /* Read the stack at 'ptr_regno + off' and put the result into the register 4260 * 'dst_regno'. 4261 * 'off' includes the pointer register's fixed offset(i.e. 'ptr_regno.off'), 4262 * but not its variable offset. 4263 * 'size' is assumed to be <= reg size and the access is assumed to be aligned. 4264 * 4265 * As opposed to check_stack_read_fixed_off, this function doesn't deal with 4266 * filling registers (i.e. reads of spilled register cannot be detected when 4267 * the offset is not fixed). We conservatively mark 'dst_regno' as containing 4268 * SCALAR_VALUE. That's why we assert that the 'ptr_regno' has a variable 4269 * offset; for a fixed offset check_stack_read_fixed_off should be used 4270 * instead. 4271 */ 4272 static int check_stack_read_var_off(struct bpf_verifier_env *env, 4273 int ptr_regno, int off, int size, int dst_regno) 4274 { 4275 /* The state of the source register. */ 4276 struct bpf_reg_state *reg = reg_state(env, ptr_regno); 4277 struct bpf_func_state *ptr_state = bpf_func(env, reg); 4278 int err; 4279 int min_off, max_off; 4280 4281 /* Note that we pass a NULL meta, so raw access will not be permitted. 4282 */ 4283 err = check_stack_range_initialized(env, ptr_regno, off, size, 4284 false, BPF_READ, NULL); 4285 if (err) 4286 return err; 4287 4288 min_off = reg->smin_value + off; 4289 max_off = reg->smax_value + off; 4290 mark_reg_stack_read(env, ptr_state, min_off, max_off + size, dst_regno); 4291 check_fastcall_stack_contract(env, ptr_state, env->insn_idx, min_off); 4292 return 0; 4293 } 4294 4295 /* check_stack_read dispatches to check_stack_read_fixed_off or 4296 * check_stack_read_var_off. 4297 * 4298 * The caller must ensure that the offset falls within the allocated stack 4299 * bounds. 4300 * 4301 * 'dst_regno' is a register which will receive the value from the stack. It 4302 * can be -1, meaning that the read value is not going to a register. 4303 */ 4304 static int check_stack_read(struct bpf_verifier_env *env, 4305 int ptr_regno, int off, int size, 4306 int dst_regno) 4307 { 4308 struct bpf_reg_state *reg = reg_state(env, ptr_regno); 4309 struct bpf_func_state *state = bpf_func(env, reg); 4310 int err; 4311 /* Some accesses are only permitted with a static offset. */ 4312 bool var_off = !tnum_is_const(reg->var_off); 4313 4314 /* The offset is required to be static when reads don't go to a 4315 * register, in order to not leak pointers (see 4316 * check_stack_read_fixed_off). 4317 */ 4318 if (dst_regno < 0 && var_off) { 4319 char tn_buf[48]; 4320 4321 tnum_strn(tn_buf, sizeof(tn_buf), reg->var_off); 4322 verbose(env, "variable offset stack pointer cannot be passed into helper function; var_off=%s off=%d size=%d\n", 4323 tn_buf, off, size); 4324 return -EACCES; 4325 } 4326 /* Variable offset is prohibited for unprivileged mode for simplicity 4327 * since it requires corresponding support in Spectre masking for stack 4328 * ALU. See also retrieve_ptr_limit(). The check in 4329 * check_stack_access_for_ptr_arithmetic() called by 4330 * adjust_ptr_min_max_vals() prevents users from creating stack pointers 4331 * with variable offsets, therefore no check is required here. Further, 4332 * just checking it here would be insufficient as speculative stack 4333 * writes could still lead to unsafe speculative behaviour. 4334 */ 4335 if (!var_off) { 4336 off += reg->var_off.value; 4337 err = check_stack_read_fixed_off(env, state, off, size, 4338 dst_regno); 4339 } else { 4340 /* Variable offset stack reads need more conservative handling 4341 * than fixed offset ones. Note that dst_regno >= 0 on this 4342 * branch. 4343 */ 4344 err = check_stack_read_var_off(env, ptr_regno, off, size, 4345 dst_regno); 4346 } 4347 return err; 4348 } 4349 4350 4351 /* check_stack_write dispatches to check_stack_write_fixed_off or 4352 * check_stack_write_var_off. 4353 * 4354 * 'ptr_regno' is the register used as a pointer into the stack. 4355 * 'value_regno' is the register whose value we're writing to the stack. It can 4356 * be -1, meaning that we're not writing from a register. 4357 * 4358 * The caller must ensure that the offset falls within the maximum stack size. 4359 */ 4360 static int check_stack_write(struct bpf_verifier_env *env, 4361 int ptr_regno, int off, int size, 4362 int value_regno, int insn_idx) 4363 { 4364 struct bpf_reg_state *reg = reg_state(env, ptr_regno); 4365 struct bpf_func_state *state = bpf_func(env, reg); 4366 int err; 4367 4368 if (tnum_is_const(reg->var_off)) { 4369 off += reg->var_off.value; 4370 err = check_stack_write_fixed_off(env, state, off, size, 4371 value_regno, insn_idx); 4372 } else { 4373 /* Variable offset stack reads need more conservative handling 4374 * than fixed offset ones. 4375 */ 4376 err = check_stack_write_var_off(env, state, 4377 ptr_regno, off, size, 4378 value_regno, insn_idx); 4379 } 4380 return err; 4381 } 4382 4383 static int check_map_access_type(struct bpf_verifier_env *env, u32 regno, 4384 int off, int size, enum bpf_access_type type) 4385 { 4386 struct bpf_reg_state *reg = reg_state(env, regno); 4387 struct bpf_map *map = reg->map_ptr; 4388 u32 cap = bpf_map_flags_to_cap(map); 4389 4390 if (type == BPF_WRITE && !(cap & BPF_MAP_CAN_WRITE)) { 4391 verbose(env, "write into map forbidden, value_size=%d off=%lld size=%d\n", 4392 map->value_size, reg->smin_value + off, size); 4393 return -EACCES; 4394 } 4395 4396 if (type == BPF_READ && !(cap & BPF_MAP_CAN_READ)) { 4397 verbose(env, "read from map forbidden, value_size=%d off=%lld size=%d\n", 4398 map->value_size, reg->smin_value + off, size); 4399 return -EACCES; 4400 } 4401 4402 return 0; 4403 } 4404 4405 /* check read/write into memory region (e.g., map value, ringbuf sample, etc) */ 4406 static int __check_mem_access(struct bpf_verifier_env *env, int regno, 4407 int off, int size, u32 mem_size, 4408 bool zero_size_allowed) 4409 { 4410 bool size_ok = size > 0 || (size == 0 && zero_size_allowed); 4411 struct bpf_reg_state *reg; 4412 4413 if (off >= 0 && size_ok && (u64)off + size <= mem_size) 4414 return 0; 4415 4416 reg = &cur_regs(env)[regno]; 4417 switch (reg->type) { 4418 case PTR_TO_MAP_KEY: 4419 verbose(env, "invalid access to map key, key_size=%d off=%d size=%d\n", 4420 mem_size, off, size); 4421 break; 4422 case PTR_TO_MAP_VALUE: 4423 verbose(env, "invalid access to map value, value_size=%d off=%d size=%d\n", 4424 mem_size, off, size); 4425 break; 4426 case PTR_TO_PACKET: 4427 case PTR_TO_PACKET_META: 4428 case PTR_TO_PACKET_END: 4429 verbose(env, "invalid access to packet, off=%d size=%d, R%d(id=%d,off=%d,r=%d)\n", 4430 off, size, regno, reg->id, off, mem_size); 4431 break; 4432 case PTR_TO_CTX: 4433 verbose(env, "invalid access to context, ctx_size=%d off=%d size=%d\n", 4434 mem_size, off, size); 4435 break; 4436 case PTR_TO_MEM: 4437 default: 4438 verbose(env, "invalid access to memory, mem_size=%u off=%d size=%d\n", 4439 mem_size, off, size); 4440 } 4441 4442 return -EACCES; 4443 } 4444 4445 /* check read/write into a memory region with possible variable offset */ 4446 static int check_mem_region_access(struct bpf_verifier_env *env, u32 regno, 4447 int off, int size, u32 mem_size, 4448 bool zero_size_allowed) 4449 { 4450 struct bpf_verifier_state *vstate = env->cur_state; 4451 struct bpf_func_state *state = vstate->frame[vstate->curframe]; 4452 struct bpf_reg_state *reg = &state->regs[regno]; 4453 int err; 4454 4455 /* We may have adjusted the register pointing to memory region, so we 4456 * need to try adding each of min_value and max_value to off 4457 * to make sure our theoretical access will be safe. 4458 * 4459 * The minimum value is only important with signed 4460 * comparisons where we can't assume the floor of a 4461 * value is 0. If we are using signed variables for our 4462 * index'es we need to make sure that whatever we use 4463 * will have a set floor within our range. 4464 */ 4465 if (reg->smin_value < 0 && 4466 (reg->smin_value == S64_MIN || 4467 (off + reg->smin_value != (s64)(s32)(off + reg->smin_value)) || 4468 reg->smin_value + off < 0)) { 4469 verbose(env, "R%d min value is negative, either use unsigned index or do a if (index >=0) check.\n", 4470 regno); 4471 return -EACCES; 4472 } 4473 err = __check_mem_access(env, regno, reg->smin_value + off, size, 4474 mem_size, zero_size_allowed); 4475 if (err) { 4476 verbose(env, "R%d min value is outside of the allowed memory range\n", 4477 regno); 4478 return err; 4479 } 4480 4481 /* If we haven't set a max value then we need to bail since we can't be 4482 * sure we won't do bad things. 4483 * If reg->umax_value + off could overflow, treat that as unbounded too. 4484 */ 4485 if (reg->umax_value >= BPF_MAX_VAR_OFF) { 4486 verbose(env, "R%d unbounded memory access, make sure to bounds check any such access\n", 4487 regno); 4488 return -EACCES; 4489 } 4490 err = __check_mem_access(env, regno, reg->umax_value + off, size, 4491 mem_size, zero_size_allowed); 4492 if (err) { 4493 verbose(env, "R%d max value is outside of the allowed memory range\n", 4494 regno); 4495 return err; 4496 } 4497 4498 return 0; 4499 } 4500 4501 static int __check_ptr_off_reg(struct bpf_verifier_env *env, 4502 const struct bpf_reg_state *reg, int regno, 4503 bool fixed_off_ok) 4504 { 4505 /* Access to this pointer-typed register or passing it to a helper 4506 * is only allowed in its original, unmodified form. 4507 */ 4508 4509 if (!tnum_is_const(reg->var_off)) { 4510 char tn_buf[48]; 4511 4512 tnum_strn(tn_buf, sizeof(tn_buf), reg->var_off); 4513 verbose(env, "variable %s access var_off=%s disallowed\n", 4514 reg_type_str(env, reg->type), tn_buf); 4515 return -EACCES; 4516 } 4517 4518 if (reg->smin_value < 0) { 4519 verbose(env, "negative offset %s ptr R%d off=%lld disallowed\n", 4520 reg_type_str(env, reg->type), regno, reg->var_off.value); 4521 return -EACCES; 4522 } 4523 4524 if (!fixed_off_ok && reg->var_off.value != 0) { 4525 verbose(env, "dereference of modified %s ptr R%d off=%lld disallowed\n", 4526 reg_type_str(env, reg->type), regno, reg->var_off.value); 4527 return -EACCES; 4528 } 4529 4530 return 0; 4531 } 4532 4533 static int check_ptr_off_reg(struct bpf_verifier_env *env, 4534 const struct bpf_reg_state *reg, int regno) 4535 { 4536 return __check_ptr_off_reg(env, reg, regno, false); 4537 } 4538 4539 static int map_kptr_match_type(struct bpf_verifier_env *env, 4540 struct btf_field *kptr_field, 4541 struct bpf_reg_state *reg, u32 regno) 4542 { 4543 const char *targ_name = btf_type_name(kptr_field->kptr.btf, kptr_field->kptr.btf_id); 4544 int perm_flags; 4545 const char *reg_name = ""; 4546 4547 if (btf_is_kernel(reg->btf)) { 4548 perm_flags = PTR_MAYBE_NULL | PTR_TRUSTED | MEM_RCU; 4549 4550 /* Only unreferenced case accepts untrusted pointers */ 4551 if (kptr_field->type == BPF_KPTR_UNREF) 4552 perm_flags |= PTR_UNTRUSTED; 4553 } else { 4554 perm_flags = PTR_MAYBE_NULL | MEM_ALLOC; 4555 if (kptr_field->type == BPF_KPTR_PERCPU) 4556 perm_flags |= MEM_PERCPU; 4557 } 4558 4559 if (base_type(reg->type) != PTR_TO_BTF_ID || (type_flag(reg->type) & ~perm_flags)) 4560 goto bad_type; 4561 4562 /* We need to verify reg->type and reg->btf, before accessing reg->btf */ 4563 reg_name = btf_type_name(reg->btf, reg->btf_id); 4564 4565 /* For ref_ptr case, release function check should ensure we get one 4566 * referenced PTR_TO_BTF_ID, and that its fixed offset is 0. For the 4567 * normal store of unreferenced kptr, we must ensure var_off is zero. 4568 * Since ref_ptr cannot be accessed directly by BPF insns, check for 4569 * reg->ref_obj_id is not needed here. 4570 */ 4571 if (__check_ptr_off_reg(env, reg, regno, true)) 4572 return -EACCES; 4573 4574 /* A full type match is needed, as BTF can be vmlinux, module or prog BTF, and 4575 * we also need to take into account the reg->var_off. 4576 * 4577 * We want to support cases like: 4578 * 4579 * struct foo { 4580 * struct bar br; 4581 * struct baz bz; 4582 * }; 4583 * 4584 * struct foo *v; 4585 * v = func(); // PTR_TO_BTF_ID 4586 * val->foo = v; // reg->var_off is zero, btf and btf_id match type 4587 * val->bar = &v->br; // reg->var_off is still zero, but we need to retry with 4588 * // first member type of struct after comparison fails 4589 * val->baz = &v->bz; // reg->var_off is non-zero, so struct needs to be walked 4590 * // to match type 4591 * 4592 * In the kptr_ref case, check_func_arg_reg_off already ensures reg->var_off 4593 * is zero. We must also ensure that btf_struct_ids_match does not walk 4594 * the struct to match type against first member of struct, i.e. reject 4595 * second case from above. Hence, when type is BPF_KPTR_REF, we set 4596 * strict mode to true for type match. 4597 */ 4598 if (!btf_struct_ids_match(&env->log, reg->btf, reg->btf_id, reg->var_off.value, 4599 kptr_field->kptr.btf, kptr_field->kptr.btf_id, 4600 kptr_field->type != BPF_KPTR_UNREF)) 4601 goto bad_type; 4602 return 0; 4603 bad_type: 4604 verbose(env, "invalid kptr access, R%d type=%s%s ", regno, 4605 reg_type_str(env, reg->type), reg_name); 4606 verbose(env, "expected=%s%s", reg_type_str(env, PTR_TO_BTF_ID), targ_name); 4607 if (kptr_field->type == BPF_KPTR_UNREF) 4608 verbose(env, " or %s%s\n", reg_type_str(env, PTR_TO_BTF_ID | PTR_UNTRUSTED), 4609 targ_name); 4610 else 4611 verbose(env, "\n"); 4612 return -EINVAL; 4613 } 4614 4615 static bool in_sleepable(struct bpf_verifier_env *env) 4616 { 4617 return env->cur_state->in_sleepable; 4618 } 4619 4620 /* The non-sleepable programs and sleepable programs with explicit bpf_rcu_read_lock() 4621 * can dereference RCU protected pointers and result is PTR_TRUSTED. 4622 */ 4623 static bool in_rcu_cs(struct bpf_verifier_env *env) 4624 { 4625 return env->cur_state->active_rcu_locks || 4626 env->cur_state->active_locks || 4627 !in_sleepable(env); 4628 } 4629 4630 /* Once GCC supports btf_type_tag the following mechanism will be replaced with tag check */ 4631 BTF_SET_START(rcu_protected_types) 4632 #ifdef CONFIG_NET 4633 BTF_ID(struct, prog_test_ref_kfunc) 4634 #endif 4635 #ifdef CONFIG_CGROUPS 4636 BTF_ID(struct, cgroup) 4637 #endif 4638 #ifdef CONFIG_BPF_JIT 4639 BTF_ID(struct, bpf_cpumask) 4640 #endif 4641 BTF_ID(struct, task_struct) 4642 #ifdef CONFIG_CRYPTO 4643 BTF_ID(struct, bpf_crypto_ctx) 4644 #endif 4645 BTF_SET_END(rcu_protected_types) 4646 4647 static bool rcu_protected_object(const struct btf *btf, u32 btf_id) 4648 { 4649 if (!btf_is_kernel(btf)) 4650 return true; 4651 return btf_id_set_contains(&rcu_protected_types, btf_id); 4652 } 4653 4654 static struct btf_record *kptr_pointee_btf_record(struct btf_field *kptr_field) 4655 { 4656 struct btf_struct_meta *meta; 4657 4658 if (btf_is_kernel(kptr_field->kptr.btf)) 4659 return NULL; 4660 4661 meta = btf_find_struct_meta(kptr_field->kptr.btf, 4662 kptr_field->kptr.btf_id); 4663 4664 return meta ? meta->record : NULL; 4665 } 4666 4667 static bool rcu_safe_kptr(const struct btf_field *field) 4668 { 4669 const struct btf_field_kptr *kptr = &field->kptr; 4670 4671 return field->type == BPF_KPTR_PERCPU || 4672 (field->type == BPF_KPTR_REF && rcu_protected_object(kptr->btf, kptr->btf_id)); 4673 } 4674 4675 static u32 btf_ld_kptr_type(struct bpf_verifier_env *env, struct btf_field *kptr_field) 4676 { 4677 struct btf_record *rec; 4678 u32 ret; 4679 4680 ret = PTR_MAYBE_NULL; 4681 if (rcu_safe_kptr(kptr_field) && in_rcu_cs(env)) { 4682 ret |= MEM_RCU; 4683 if (kptr_field->type == BPF_KPTR_PERCPU) 4684 ret |= MEM_PERCPU; 4685 else if (!btf_is_kernel(kptr_field->kptr.btf)) 4686 ret |= MEM_ALLOC; 4687 4688 rec = kptr_pointee_btf_record(kptr_field); 4689 if (rec && btf_record_has_field(rec, BPF_GRAPH_NODE)) 4690 ret |= NON_OWN_REF; 4691 } else { 4692 ret |= PTR_UNTRUSTED; 4693 } 4694 4695 return ret; 4696 } 4697 4698 static int mark_uptr_ld_reg(struct bpf_verifier_env *env, u32 regno, 4699 struct btf_field *field) 4700 { 4701 struct bpf_reg_state *reg; 4702 const struct btf_type *t; 4703 4704 t = btf_type_by_id(field->kptr.btf, field->kptr.btf_id); 4705 mark_reg_known_zero(env, cur_regs(env), regno); 4706 reg = reg_state(env, regno); 4707 reg->type = PTR_TO_MEM | PTR_MAYBE_NULL; 4708 reg->mem_size = t->size; 4709 reg->id = ++env->id_gen; 4710 4711 return 0; 4712 } 4713 4714 static int check_map_kptr_access(struct bpf_verifier_env *env, u32 regno, 4715 int value_regno, int insn_idx, 4716 struct btf_field *kptr_field) 4717 { 4718 struct bpf_insn *insn = &env->prog->insnsi[insn_idx]; 4719 int class = BPF_CLASS(insn->code); 4720 struct bpf_reg_state *val_reg; 4721 int ret; 4722 4723 /* Things we already checked for in check_map_access and caller: 4724 * - Reject cases where variable offset may touch kptr 4725 * - size of access (must be BPF_DW) 4726 * - tnum_is_const(reg->var_off) 4727 * - kptr_field->offset == off + reg->var_off.value 4728 */ 4729 /* Only BPF_[LDX,STX,ST] | BPF_MEM | BPF_DW is supported */ 4730 if (BPF_MODE(insn->code) != BPF_MEM) { 4731 verbose(env, "kptr in map can only be accessed using BPF_MEM instruction mode\n"); 4732 return -EACCES; 4733 } 4734 4735 /* We only allow loading referenced kptr, since it will be marked as 4736 * untrusted, similar to unreferenced kptr. 4737 */ 4738 if (class != BPF_LDX && 4739 (kptr_field->type == BPF_KPTR_REF || kptr_field->type == BPF_KPTR_PERCPU)) { 4740 verbose(env, "store to referenced kptr disallowed\n"); 4741 return -EACCES; 4742 } 4743 if (class != BPF_LDX && kptr_field->type == BPF_UPTR) { 4744 verbose(env, "store to uptr disallowed\n"); 4745 return -EACCES; 4746 } 4747 4748 if (class == BPF_LDX) { 4749 if (kptr_field->type == BPF_UPTR) 4750 return mark_uptr_ld_reg(env, value_regno, kptr_field); 4751 4752 /* We can simply mark the value_regno receiving the pointer 4753 * value from map as PTR_TO_BTF_ID, with the correct type. 4754 */ 4755 ret = mark_btf_ld_reg(env, cur_regs(env), value_regno, PTR_TO_BTF_ID, 4756 kptr_field->kptr.btf, kptr_field->kptr.btf_id, 4757 btf_ld_kptr_type(env, kptr_field)); 4758 if (ret < 0) 4759 return ret; 4760 } else if (class == BPF_STX) { 4761 val_reg = reg_state(env, value_regno); 4762 if (!bpf_register_is_null(val_reg) && 4763 map_kptr_match_type(env, kptr_field, val_reg, value_regno)) 4764 return -EACCES; 4765 } else if (class == BPF_ST) { 4766 if (insn->imm) { 4767 verbose(env, "BPF_ST imm must be 0 when storing to kptr at off=%u\n", 4768 kptr_field->offset); 4769 return -EACCES; 4770 } 4771 } else { 4772 verbose(env, "kptr in map can only be accessed using BPF_LDX/BPF_STX/BPF_ST\n"); 4773 return -EACCES; 4774 } 4775 return 0; 4776 } 4777 4778 /* 4779 * Return the size of the memory region accessible from a pointer to map value. 4780 * For INSN_ARRAY maps whole bpf_insn_array->ips array is accessible. 4781 */ 4782 static u32 map_mem_size(const struct bpf_map *map) 4783 { 4784 if (map->map_type == BPF_MAP_TYPE_INSN_ARRAY) 4785 return map->max_entries * sizeof(long); 4786 4787 return map->value_size; 4788 } 4789 4790 /* check read/write into a map element with possible variable offset */ 4791 static int check_map_access(struct bpf_verifier_env *env, u32 regno, 4792 int off, int size, bool zero_size_allowed, 4793 enum bpf_access_src src) 4794 { 4795 struct bpf_verifier_state *vstate = env->cur_state; 4796 struct bpf_func_state *state = vstate->frame[vstate->curframe]; 4797 struct bpf_reg_state *reg = &state->regs[regno]; 4798 struct bpf_map *map = reg->map_ptr; 4799 u32 mem_size = map_mem_size(map); 4800 struct btf_record *rec; 4801 int err, i; 4802 4803 err = check_mem_region_access(env, regno, off, size, mem_size, zero_size_allowed); 4804 if (err) 4805 return err; 4806 4807 if (IS_ERR_OR_NULL(map->record)) 4808 return 0; 4809 rec = map->record; 4810 for (i = 0; i < rec->cnt; i++) { 4811 struct btf_field *field = &rec->fields[i]; 4812 u32 p = field->offset; 4813 4814 /* If any part of a field can be touched by load/store, reject 4815 * this program. To check that [x1, x2) overlaps with [y1, y2), 4816 * it is sufficient to check x1 < y2 && y1 < x2. 4817 */ 4818 if (reg->smin_value + off < p + field->size && 4819 p < reg->umax_value + off + size) { 4820 switch (field->type) { 4821 case BPF_KPTR_UNREF: 4822 case BPF_KPTR_REF: 4823 case BPF_KPTR_PERCPU: 4824 case BPF_UPTR: 4825 if (src != ACCESS_DIRECT) { 4826 verbose(env, "%s cannot be accessed indirectly by helper\n", 4827 btf_field_type_name(field->type)); 4828 return -EACCES; 4829 } 4830 if (!tnum_is_const(reg->var_off)) { 4831 verbose(env, "%s access cannot have variable offset\n", 4832 btf_field_type_name(field->type)); 4833 return -EACCES; 4834 } 4835 if (p != off + reg->var_off.value) { 4836 verbose(env, "%s access misaligned expected=%u off=%llu\n", 4837 btf_field_type_name(field->type), 4838 p, off + reg->var_off.value); 4839 return -EACCES; 4840 } 4841 if (size != bpf_size_to_bytes(BPF_DW)) { 4842 verbose(env, "%s access size must be BPF_DW\n", 4843 btf_field_type_name(field->type)); 4844 return -EACCES; 4845 } 4846 break; 4847 default: 4848 verbose(env, "%s cannot be accessed directly by load/store\n", 4849 btf_field_type_name(field->type)); 4850 return -EACCES; 4851 } 4852 } 4853 } 4854 return 0; 4855 } 4856 4857 static bool may_access_direct_pkt_data(struct bpf_verifier_env *env, 4858 const struct bpf_call_arg_meta *meta, 4859 enum bpf_access_type t) 4860 { 4861 enum bpf_prog_type prog_type = resolve_prog_type(env->prog); 4862 4863 switch (prog_type) { 4864 /* Program types only with direct read access go here! */ 4865 case BPF_PROG_TYPE_LWT_IN: 4866 case BPF_PROG_TYPE_LWT_OUT: 4867 case BPF_PROG_TYPE_LWT_SEG6LOCAL: 4868 case BPF_PROG_TYPE_SK_REUSEPORT: 4869 case BPF_PROG_TYPE_FLOW_DISSECTOR: 4870 case BPF_PROG_TYPE_CGROUP_SKB: 4871 if (t == BPF_WRITE) 4872 return false; 4873 fallthrough; 4874 4875 /* Program types with direct read + write access go here! */ 4876 case BPF_PROG_TYPE_SCHED_CLS: 4877 case BPF_PROG_TYPE_SCHED_ACT: 4878 case BPF_PROG_TYPE_XDP: 4879 case BPF_PROG_TYPE_LWT_XMIT: 4880 case BPF_PROG_TYPE_SK_SKB: 4881 case BPF_PROG_TYPE_SK_MSG: 4882 if (meta) 4883 return meta->pkt_access; 4884 4885 env->seen_direct_write = true; 4886 return true; 4887 4888 case BPF_PROG_TYPE_CGROUP_SOCKOPT: 4889 if (t == BPF_WRITE) 4890 env->seen_direct_write = true; 4891 4892 return true; 4893 4894 default: 4895 return false; 4896 } 4897 } 4898 4899 static int check_packet_access(struct bpf_verifier_env *env, u32 regno, int off, 4900 int size, bool zero_size_allowed) 4901 { 4902 struct bpf_reg_state *reg = reg_state(env, regno); 4903 int err; 4904 4905 if (reg->range < 0) { 4906 verbose(env, "R%d offset is outside of the packet\n", regno); 4907 return -EINVAL; 4908 } 4909 4910 err = check_mem_region_access(env, regno, off, size, reg->range, zero_size_allowed); 4911 if (err) 4912 return err; 4913 4914 /* __check_mem_access has made sure "off + size - 1" is within u16. 4915 * reg->umax_value can't be bigger than MAX_PACKET_OFF which is 0xffff, 4916 * otherwise find_good_pkt_pointers would have refused to set range info 4917 * that __check_mem_access would have rejected this pkt access. 4918 * Therefore, "off + reg->umax_value + size - 1" won't overflow u32. 4919 */ 4920 env->prog->aux->max_pkt_offset = 4921 max_t(u32, env->prog->aux->max_pkt_offset, 4922 off + reg->umax_value + size - 1); 4923 4924 return 0; 4925 } 4926 4927 static bool is_var_ctx_off_allowed(struct bpf_prog *prog) 4928 { 4929 return resolve_prog_type(prog) == BPF_PROG_TYPE_SYSCALL; 4930 } 4931 4932 /* check access to 'struct bpf_context' fields. Supports fixed offsets only */ 4933 static int __check_ctx_access(struct bpf_verifier_env *env, int insn_idx, int off, int size, 4934 enum bpf_access_type t, struct bpf_insn_access_aux *info) 4935 { 4936 if (env->ops->is_valid_access && 4937 env->ops->is_valid_access(off, size, t, env->prog, info)) { 4938 /* A non zero info.ctx_field_size indicates that this field is a 4939 * candidate for later verifier transformation to load the whole 4940 * field and then apply a mask when accessed with a narrower 4941 * access than actual ctx access size. A zero info.ctx_field_size 4942 * will only allow for whole field access and rejects any other 4943 * type of narrower access. 4944 */ 4945 if (base_type(info->reg_type) == PTR_TO_BTF_ID) { 4946 if (info->ref_obj_id && 4947 !find_reference_state(env->cur_state, info->ref_obj_id)) { 4948 verbose(env, "invalid bpf_context access off=%d. Reference may already be released\n", 4949 off); 4950 return -EACCES; 4951 } 4952 } else { 4953 env->insn_aux_data[insn_idx].ctx_field_size = info->ctx_field_size; 4954 } 4955 /* remember the offset of last byte accessed in ctx */ 4956 if (env->prog->aux->max_ctx_offset < off + size) 4957 env->prog->aux->max_ctx_offset = off + size; 4958 return 0; 4959 } 4960 4961 verbose(env, "invalid bpf_context access off=%d size=%d\n", off, size); 4962 return -EACCES; 4963 } 4964 4965 static int check_ctx_access(struct bpf_verifier_env *env, int insn_idx, u32 regno, 4966 int off, int access_size, enum bpf_access_type t, 4967 struct bpf_insn_access_aux *info) 4968 { 4969 /* 4970 * Program types that don't rewrite ctx accesses can safely 4971 * dereference ctx pointers with fixed offsets. 4972 */ 4973 bool var_off_ok = is_var_ctx_off_allowed(env->prog); 4974 bool fixed_off_ok = !env->ops->convert_ctx_access; 4975 struct bpf_reg_state *regs = cur_regs(env); 4976 struct bpf_reg_state *reg = regs + regno; 4977 int err; 4978 4979 if (var_off_ok) 4980 err = check_mem_region_access(env, regno, off, access_size, U16_MAX, false); 4981 else 4982 err = __check_ptr_off_reg(env, reg, regno, fixed_off_ok); 4983 if (err) 4984 return err; 4985 off += reg->umax_value; 4986 4987 err = __check_ctx_access(env, insn_idx, off, access_size, t, info); 4988 if (err) 4989 verbose_linfo(env, insn_idx, "; "); 4990 return err; 4991 } 4992 4993 static int check_flow_keys_access(struct bpf_verifier_env *env, int off, 4994 int size) 4995 { 4996 if (size < 0 || off < 0 || 4997 (u64)off + size > sizeof(struct bpf_flow_keys)) { 4998 verbose(env, "invalid access to flow keys off=%d size=%d\n", 4999 off, size); 5000 return -EACCES; 5001 } 5002 return 0; 5003 } 5004 5005 static int check_sock_access(struct bpf_verifier_env *env, int insn_idx, 5006 u32 regno, int off, int size, 5007 enum bpf_access_type t) 5008 { 5009 struct bpf_reg_state *reg = reg_state(env, regno); 5010 struct bpf_insn_access_aux info = {}; 5011 bool valid; 5012 5013 if (reg->smin_value < 0) { 5014 verbose(env, "R%d min value is negative, either use unsigned index or do a if (index >=0) check.\n", 5015 regno); 5016 return -EACCES; 5017 } 5018 5019 switch (reg->type) { 5020 case PTR_TO_SOCK_COMMON: 5021 valid = bpf_sock_common_is_valid_access(off, size, t, &info); 5022 break; 5023 case PTR_TO_SOCKET: 5024 valid = bpf_sock_is_valid_access(off, size, t, &info); 5025 break; 5026 case PTR_TO_TCP_SOCK: 5027 valid = bpf_tcp_sock_is_valid_access(off, size, t, &info); 5028 break; 5029 case PTR_TO_XDP_SOCK: 5030 valid = bpf_xdp_sock_is_valid_access(off, size, t, &info); 5031 break; 5032 default: 5033 valid = false; 5034 } 5035 5036 5037 if (valid) { 5038 env->insn_aux_data[insn_idx].ctx_field_size = 5039 info.ctx_field_size; 5040 return 0; 5041 } 5042 5043 verbose(env, "R%d invalid %s access off=%d size=%d\n", 5044 regno, reg_type_str(env, reg->type), off, size); 5045 5046 return -EACCES; 5047 } 5048 5049 static bool is_pointer_value(struct bpf_verifier_env *env, int regno) 5050 { 5051 return __is_pointer_value(env->allow_ptr_leaks, reg_state(env, regno)); 5052 } 5053 5054 static bool is_ctx_reg(struct bpf_verifier_env *env, int regno) 5055 { 5056 const struct bpf_reg_state *reg = reg_state(env, regno); 5057 5058 return reg->type == PTR_TO_CTX; 5059 } 5060 5061 static bool is_sk_reg(struct bpf_verifier_env *env, int regno) 5062 { 5063 const struct bpf_reg_state *reg = reg_state(env, regno); 5064 5065 return type_is_sk_pointer(reg->type); 5066 } 5067 5068 static bool is_pkt_reg(struct bpf_verifier_env *env, int regno) 5069 { 5070 const struct bpf_reg_state *reg = reg_state(env, regno); 5071 5072 return type_is_pkt_pointer(reg->type); 5073 } 5074 5075 static bool is_flow_key_reg(struct bpf_verifier_env *env, int regno) 5076 { 5077 const struct bpf_reg_state *reg = reg_state(env, regno); 5078 5079 /* Separate to is_ctx_reg() since we still want to allow BPF_ST here. */ 5080 return reg->type == PTR_TO_FLOW_KEYS; 5081 } 5082 5083 static bool is_arena_reg(struct bpf_verifier_env *env, int regno) 5084 { 5085 const struct bpf_reg_state *reg = reg_state(env, regno); 5086 5087 return reg->type == PTR_TO_ARENA; 5088 } 5089 5090 /* Return false if @regno contains a pointer whose type isn't supported for 5091 * atomic instruction @insn. 5092 */ 5093 static bool atomic_ptr_type_ok(struct bpf_verifier_env *env, int regno, 5094 struct bpf_insn *insn) 5095 { 5096 if (is_ctx_reg(env, regno)) 5097 return false; 5098 if (is_pkt_reg(env, regno)) 5099 return false; 5100 if (is_flow_key_reg(env, regno)) 5101 return false; 5102 if (is_sk_reg(env, regno)) 5103 return false; 5104 if (is_arena_reg(env, regno)) 5105 return bpf_jit_supports_insn(insn, true); 5106 5107 return true; 5108 } 5109 5110 static u32 *reg2btf_ids[__BPF_REG_TYPE_MAX] = { 5111 #ifdef CONFIG_NET 5112 [PTR_TO_SOCKET] = &btf_sock_ids[BTF_SOCK_TYPE_SOCK], 5113 [PTR_TO_SOCK_COMMON] = &btf_sock_ids[BTF_SOCK_TYPE_SOCK_COMMON], 5114 [PTR_TO_TCP_SOCK] = &btf_sock_ids[BTF_SOCK_TYPE_TCP], 5115 #endif 5116 [CONST_PTR_TO_MAP] = btf_bpf_map_id, 5117 }; 5118 5119 static bool is_trusted_reg(const struct bpf_reg_state *reg) 5120 { 5121 /* A referenced register is always trusted. */ 5122 if (reg->ref_obj_id) 5123 return true; 5124 5125 /* Types listed in the reg2btf_ids are always trusted */ 5126 if (reg2btf_ids[base_type(reg->type)] && 5127 !bpf_type_has_unsafe_modifiers(reg->type)) 5128 return true; 5129 5130 /* If a register is not referenced, it is trusted if it has the 5131 * MEM_ALLOC or PTR_TRUSTED type modifiers, and no others. Some of the 5132 * other type modifiers may be safe, but we elect to take an opt-in 5133 * approach here as some (e.g. PTR_UNTRUSTED and PTR_MAYBE_NULL) are 5134 * not. 5135 * 5136 * Eventually, we should make PTR_TRUSTED the single source of truth 5137 * for whether a register is trusted. 5138 */ 5139 return type_flag(reg->type) & BPF_REG_TRUSTED_MODIFIERS && 5140 !bpf_type_has_unsafe_modifiers(reg->type); 5141 } 5142 5143 static bool is_rcu_reg(const struct bpf_reg_state *reg) 5144 { 5145 return reg->type & MEM_RCU; 5146 } 5147 5148 static void clear_trusted_flags(enum bpf_type_flag *flag) 5149 { 5150 *flag &= ~(BPF_REG_TRUSTED_MODIFIERS | MEM_RCU); 5151 } 5152 5153 static int check_pkt_ptr_alignment(struct bpf_verifier_env *env, 5154 const struct bpf_reg_state *reg, 5155 int off, int size, bool strict) 5156 { 5157 struct tnum reg_off; 5158 int ip_align; 5159 5160 /* Byte size accesses are always allowed. */ 5161 if (!strict || size == 1) 5162 return 0; 5163 5164 /* For platforms that do not have a Kconfig enabling 5165 * CONFIG_HAVE_EFFICIENT_UNALIGNED_ACCESS the value of 5166 * NET_IP_ALIGN is universally set to '2'. And on platforms 5167 * that do set CONFIG_HAVE_EFFICIENT_UNALIGNED_ACCESS, we get 5168 * to this code only in strict mode where we want to emulate 5169 * the NET_IP_ALIGN==2 checking. Therefore use an 5170 * unconditional IP align value of '2'. 5171 */ 5172 ip_align = 2; 5173 5174 reg_off = tnum_add(reg->var_off, tnum_const(ip_align + off)); 5175 if (!tnum_is_aligned(reg_off, size)) { 5176 char tn_buf[48]; 5177 5178 tnum_strn(tn_buf, sizeof(tn_buf), reg->var_off); 5179 verbose(env, 5180 "misaligned packet access off %d+%s+%d size %d\n", 5181 ip_align, tn_buf, off, size); 5182 return -EACCES; 5183 } 5184 5185 return 0; 5186 } 5187 5188 static int check_generic_ptr_alignment(struct bpf_verifier_env *env, 5189 const struct bpf_reg_state *reg, 5190 const char *pointer_desc, 5191 int off, int size, bool strict) 5192 { 5193 struct tnum reg_off; 5194 5195 /* Byte size accesses are always allowed. */ 5196 if (!strict || size == 1) 5197 return 0; 5198 5199 reg_off = tnum_add(reg->var_off, tnum_const(off)); 5200 if (!tnum_is_aligned(reg_off, size)) { 5201 char tn_buf[48]; 5202 5203 tnum_strn(tn_buf, sizeof(tn_buf), reg->var_off); 5204 verbose(env, "misaligned %saccess off %s+%d size %d\n", 5205 pointer_desc, tn_buf, off, size); 5206 return -EACCES; 5207 } 5208 5209 return 0; 5210 } 5211 5212 static int check_ptr_alignment(struct bpf_verifier_env *env, 5213 const struct bpf_reg_state *reg, int off, 5214 int size, bool strict_alignment_once) 5215 { 5216 bool strict = env->strict_alignment || strict_alignment_once; 5217 const char *pointer_desc = ""; 5218 5219 switch (reg->type) { 5220 case PTR_TO_PACKET: 5221 case PTR_TO_PACKET_META: 5222 /* Special case, because of NET_IP_ALIGN. Given metadata sits 5223 * right in front, treat it the very same way. 5224 */ 5225 return check_pkt_ptr_alignment(env, reg, off, size, strict); 5226 case PTR_TO_FLOW_KEYS: 5227 pointer_desc = "flow keys "; 5228 break; 5229 case PTR_TO_MAP_KEY: 5230 pointer_desc = "key "; 5231 break; 5232 case PTR_TO_MAP_VALUE: 5233 pointer_desc = "value "; 5234 if (reg->map_ptr->map_type == BPF_MAP_TYPE_INSN_ARRAY) 5235 strict = true; 5236 break; 5237 case PTR_TO_CTX: 5238 pointer_desc = "context "; 5239 break; 5240 case PTR_TO_STACK: 5241 pointer_desc = "stack "; 5242 /* The stack spill tracking logic in check_stack_write_fixed_off() 5243 * and check_stack_read_fixed_off() relies on stack accesses being 5244 * aligned. 5245 */ 5246 strict = true; 5247 break; 5248 case PTR_TO_SOCKET: 5249 pointer_desc = "sock "; 5250 break; 5251 case PTR_TO_SOCK_COMMON: 5252 pointer_desc = "sock_common "; 5253 break; 5254 case PTR_TO_TCP_SOCK: 5255 pointer_desc = "tcp_sock "; 5256 break; 5257 case PTR_TO_XDP_SOCK: 5258 pointer_desc = "xdp_sock "; 5259 break; 5260 case PTR_TO_ARENA: 5261 return 0; 5262 default: 5263 break; 5264 } 5265 return check_generic_ptr_alignment(env, reg, pointer_desc, off, size, 5266 strict); 5267 } 5268 5269 static enum priv_stack_mode bpf_enable_priv_stack(struct bpf_prog *prog) 5270 { 5271 if (!bpf_jit_supports_private_stack()) 5272 return NO_PRIV_STACK; 5273 5274 /* bpf_prog_check_recur() checks all prog types that use bpf trampoline 5275 * while kprobe/tp/perf_event/raw_tp don't use trampoline hence checked 5276 * explicitly. 5277 */ 5278 switch (prog->type) { 5279 case BPF_PROG_TYPE_KPROBE: 5280 case BPF_PROG_TYPE_TRACEPOINT: 5281 case BPF_PROG_TYPE_PERF_EVENT: 5282 case BPF_PROG_TYPE_RAW_TRACEPOINT: 5283 return PRIV_STACK_ADAPTIVE; 5284 case BPF_PROG_TYPE_TRACING: 5285 case BPF_PROG_TYPE_LSM: 5286 case BPF_PROG_TYPE_STRUCT_OPS: 5287 if (prog->aux->priv_stack_requested || bpf_prog_check_recur(prog)) 5288 return PRIV_STACK_ADAPTIVE; 5289 fallthrough; 5290 default: 5291 break; 5292 } 5293 5294 return NO_PRIV_STACK; 5295 } 5296 5297 static int round_up_stack_depth(struct bpf_verifier_env *env, int stack_depth) 5298 { 5299 if (env->prog->jit_requested) 5300 return round_up(stack_depth, 16); 5301 5302 /* round up to 32-bytes, since this is granularity 5303 * of interpreter stack size 5304 */ 5305 return round_up(max_t(u32, stack_depth, 1), 32); 5306 } 5307 5308 /* temporary state used for call frame depth calculation */ 5309 struct bpf_subprog_call_depth_info { 5310 int ret_insn; /* caller instruction where we return to. */ 5311 int caller; /* caller subprogram idx */ 5312 int frame; /* # of consecutive static call stack frames on top of stack */ 5313 }; 5314 5315 /* starting from main bpf function walk all instructions of the function 5316 * and recursively walk all callees that given function can call. 5317 * Ignore jump and exit insns. 5318 */ 5319 static int check_max_stack_depth_subprog(struct bpf_verifier_env *env, int idx, 5320 struct bpf_subprog_call_depth_info *dinfo, 5321 bool priv_stack_supported) 5322 { 5323 struct bpf_subprog_info *subprog = env->subprog_info; 5324 struct bpf_insn *insn = env->prog->insnsi; 5325 int depth = 0, frame = 0, i, subprog_end, subprog_depth; 5326 bool tail_call_reachable = false; 5327 int total; 5328 int tmp; 5329 5330 /* no caller idx */ 5331 dinfo[idx].caller = -1; 5332 5333 i = subprog[idx].start; 5334 if (!priv_stack_supported) 5335 subprog[idx].priv_stack_mode = NO_PRIV_STACK; 5336 process_func: 5337 /* protect against potential stack overflow that might happen when 5338 * bpf2bpf calls get combined with tailcalls. Limit the caller's stack 5339 * depth for such case down to 256 so that the worst case scenario 5340 * would result in 8k stack size (32 which is tailcall limit * 256 = 5341 * 8k). 5342 * 5343 * To get the idea what might happen, see an example: 5344 * func1 -> sub rsp, 128 5345 * subfunc1 -> sub rsp, 256 5346 * tailcall1 -> add rsp, 256 5347 * func2 -> sub rsp, 192 (total stack size = 128 + 192 = 320) 5348 * subfunc2 -> sub rsp, 64 5349 * subfunc22 -> sub rsp, 128 5350 * tailcall2 -> add rsp, 128 5351 * func3 -> sub rsp, 32 (total stack size 128 + 192 + 64 + 32 = 416) 5352 * 5353 * tailcall will unwind the current stack frame but it will not get rid 5354 * of caller's stack as shown on the example above. 5355 */ 5356 if (idx && subprog[idx].has_tail_call && depth >= 256) { 5357 verbose(env, 5358 "tail_calls are not allowed when call stack of previous frames is %d bytes. Too large\n", 5359 depth); 5360 return -EACCES; 5361 } 5362 5363 subprog_depth = round_up_stack_depth(env, subprog[idx].stack_depth); 5364 if (priv_stack_supported) { 5365 /* Request private stack support only if the subprog stack 5366 * depth is no less than BPF_PRIV_STACK_MIN_SIZE. This is to 5367 * avoid jit penalty if the stack usage is small. 5368 */ 5369 if (subprog[idx].priv_stack_mode == PRIV_STACK_UNKNOWN && 5370 subprog_depth >= BPF_PRIV_STACK_MIN_SIZE) 5371 subprog[idx].priv_stack_mode = PRIV_STACK_ADAPTIVE; 5372 } 5373 5374 if (subprog[idx].priv_stack_mode == PRIV_STACK_ADAPTIVE) { 5375 if (subprog_depth > MAX_BPF_STACK) { 5376 verbose(env, "stack size of subprog %d is %d. Too large\n", 5377 idx, subprog_depth); 5378 return -EACCES; 5379 } 5380 } else { 5381 depth += subprog_depth; 5382 if (depth > MAX_BPF_STACK) { 5383 total = 0; 5384 for (tmp = idx; tmp >= 0; tmp = dinfo[tmp].caller) 5385 total++; 5386 5387 verbose(env, "combined stack size of %d calls is %d. Too large\n", 5388 total, depth); 5389 return -EACCES; 5390 } 5391 } 5392 continue_func: 5393 subprog_end = subprog[idx + 1].start; 5394 for (; i < subprog_end; i++) { 5395 int next_insn, sidx; 5396 5397 if (bpf_pseudo_kfunc_call(insn + i) && !insn[i].off) { 5398 bool err = false; 5399 5400 if (!is_bpf_throw_kfunc(insn + i)) 5401 continue; 5402 for (tmp = idx; tmp >= 0 && !err; tmp = dinfo[tmp].caller) { 5403 if (subprog[tmp].is_cb) { 5404 err = true; 5405 break; 5406 } 5407 } 5408 if (!err) 5409 continue; 5410 verbose(env, 5411 "bpf_throw kfunc (insn %d) cannot be called from callback subprog %d\n", 5412 i, idx); 5413 return -EINVAL; 5414 } 5415 5416 if (!bpf_pseudo_call(insn + i) && !bpf_pseudo_func(insn + i)) 5417 continue; 5418 /* remember insn and function to return to */ 5419 5420 /* find the callee */ 5421 next_insn = i + insn[i].imm + 1; 5422 sidx = bpf_find_subprog(env, next_insn); 5423 if (verifier_bug_if(sidx < 0, env, "callee not found at insn %d", next_insn)) 5424 return -EFAULT; 5425 if (subprog[sidx].is_async_cb) { 5426 if (subprog[sidx].has_tail_call) { 5427 verifier_bug(env, "subprog has tail_call and async cb"); 5428 return -EFAULT; 5429 } 5430 /* async callbacks don't increase bpf prog stack size unless called directly */ 5431 if (!bpf_pseudo_call(insn + i)) 5432 continue; 5433 if (subprog[sidx].is_exception_cb) { 5434 verbose(env, "insn %d cannot call exception cb directly", i); 5435 return -EINVAL; 5436 } 5437 } 5438 5439 /* store caller info for after we return from callee */ 5440 dinfo[idx].frame = frame; 5441 dinfo[idx].ret_insn = i + 1; 5442 5443 /* push caller idx into callee's dinfo */ 5444 dinfo[sidx].caller = idx; 5445 5446 i = next_insn; 5447 5448 idx = sidx; 5449 if (!priv_stack_supported) 5450 subprog[idx].priv_stack_mode = NO_PRIV_STACK; 5451 5452 if (subprog[idx].has_tail_call) 5453 tail_call_reachable = true; 5454 5455 frame = bpf_subprog_is_global(env, idx) ? 0 : frame + 1; 5456 if (frame >= MAX_CALL_FRAMES) { 5457 verbose(env, "the call stack of %d frames is too deep !\n", 5458 frame); 5459 return -E2BIG; 5460 } 5461 goto process_func; 5462 } 5463 /* if tail call got detected across bpf2bpf calls then mark each of the 5464 * currently present subprog frames as tail call reachable subprogs; 5465 * this info will be utilized by JIT so that we will be preserving the 5466 * tail call counter throughout bpf2bpf calls combined with tailcalls 5467 */ 5468 if (tail_call_reachable) 5469 for (tmp = idx; tmp >= 0; tmp = dinfo[tmp].caller) { 5470 if (subprog[tmp].is_exception_cb) { 5471 verbose(env, "cannot tail call within exception cb\n"); 5472 return -EINVAL; 5473 } 5474 subprog[tmp].tail_call_reachable = true; 5475 } 5476 if (subprog[0].tail_call_reachable) 5477 env->prog->aux->tail_call_reachable = true; 5478 5479 /* end of for() loop means the last insn of the 'subprog' 5480 * was reached. Doesn't matter whether it was JA or EXIT 5481 */ 5482 if (frame == 0 && dinfo[idx].caller < 0) 5483 return 0; 5484 if (subprog[idx].priv_stack_mode != PRIV_STACK_ADAPTIVE) 5485 depth -= round_up_stack_depth(env, subprog[idx].stack_depth); 5486 5487 /* pop caller idx from callee */ 5488 idx = dinfo[idx].caller; 5489 5490 /* retrieve caller state from its frame */ 5491 frame = dinfo[idx].frame; 5492 i = dinfo[idx].ret_insn; 5493 5494 goto continue_func; 5495 } 5496 5497 static int check_max_stack_depth(struct bpf_verifier_env *env) 5498 { 5499 enum priv_stack_mode priv_stack_mode = PRIV_STACK_UNKNOWN; 5500 struct bpf_subprog_call_depth_info *dinfo; 5501 struct bpf_subprog_info *si = env->subprog_info; 5502 bool priv_stack_supported; 5503 int ret; 5504 5505 dinfo = kvcalloc(env->subprog_cnt, sizeof(*dinfo), GFP_KERNEL_ACCOUNT); 5506 if (!dinfo) 5507 return -ENOMEM; 5508 5509 for (int i = 0; i < env->subprog_cnt; i++) { 5510 if (si[i].has_tail_call) { 5511 priv_stack_mode = NO_PRIV_STACK; 5512 break; 5513 } 5514 } 5515 5516 if (priv_stack_mode == PRIV_STACK_UNKNOWN) 5517 priv_stack_mode = bpf_enable_priv_stack(env->prog); 5518 5519 /* All async_cb subprogs use normal kernel stack. If a particular 5520 * subprog appears in both main prog and async_cb subtree, that 5521 * subprog will use normal kernel stack to avoid potential nesting. 5522 * The reverse subprog traversal ensures when main prog subtree is 5523 * checked, the subprogs appearing in async_cb subtrees are already 5524 * marked as using normal kernel stack, so stack size checking can 5525 * be done properly. 5526 */ 5527 for (int i = env->subprog_cnt - 1; i >= 0; i--) { 5528 if (!i || si[i].is_async_cb) { 5529 priv_stack_supported = !i && priv_stack_mode == PRIV_STACK_ADAPTIVE; 5530 ret = check_max_stack_depth_subprog(env, i, dinfo, 5531 priv_stack_supported); 5532 if (ret < 0) { 5533 kvfree(dinfo); 5534 return ret; 5535 } 5536 } 5537 } 5538 5539 for (int i = 0; i < env->subprog_cnt; i++) { 5540 if (si[i].priv_stack_mode == PRIV_STACK_ADAPTIVE) { 5541 env->prog->aux->jits_use_priv_stack = true; 5542 break; 5543 } 5544 } 5545 5546 kvfree(dinfo); 5547 5548 return 0; 5549 } 5550 5551 static int __check_buffer_access(struct bpf_verifier_env *env, 5552 const char *buf_info, 5553 const struct bpf_reg_state *reg, 5554 int regno, int off, int size) 5555 { 5556 if (off < 0) { 5557 verbose(env, 5558 "R%d invalid %s buffer access: off=%d, size=%d\n", 5559 regno, buf_info, off, size); 5560 return -EACCES; 5561 } 5562 if (!tnum_is_const(reg->var_off)) { 5563 char tn_buf[48]; 5564 5565 tnum_strn(tn_buf, sizeof(tn_buf), reg->var_off); 5566 verbose(env, 5567 "R%d invalid variable buffer offset: off=%d, var_off=%s\n", 5568 regno, off, tn_buf); 5569 return -EACCES; 5570 } 5571 5572 return 0; 5573 } 5574 5575 static int check_tp_buffer_access(struct bpf_verifier_env *env, 5576 const struct bpf_reg_state *reg, 5577 int regno, int off, int size) 5578 { 5579 int err; 5580 5581 err = __check_buffer_access(env, "tracepoint", reg, regno, off, size); 5582 if (err) 5583 return err; 5584 5585 env->prog->aux->max_tp_access = max(reg->var_off.value + off + size, 5586 env->prog->aux->max_tp_access); 5587 5588 return 0; 5589 } 5590 5591 static int check_buffer_access(struct bpf_verifier_env *env, 5592 const struct bpf_reg_state *reg, 5593 int regno, int off, int size, 5594 bool zero_size_allowed, 5595 u32 *max_access) 5596 { 5597 const char *buf_info = type_is_rdonly_mem(reg->type) ? "rdonly" : "rdwr"; 5598 int err; 5599 5600 err = __check_buffer_access(env, buf_info, reg, regno, off, size); 5601 if (err) 5602 return err; 5603 5604 *max_access = max(reg->var_off.value + off + size, *max_access); 5605 5606 return 0; 5607 } 5608 5609 /* BPF architecture zero extends alu32 ops into 64-bit registesr */ 5610 static void zext_32_to_64(struct bpf_reg_state *reg) 5611 { 5612 reg->var_off = tnum_subreg(reg->var_off); 5613 __reg_assign_32_into_64(reg); 5614 } 5615 5616 /* truncate register to smaller size (in bytes) 5617 * must be called with size < BPF_REG_SIZE 5618 */ 5619 static void coerce_reg_to_size(struct bpf_reg_state *reg, int size) 5620 { 5621 u64 mask; 5622 5623 /* clear high bits in bit representation */ 5624 reg->var_off = tnum_cast(reg->var_off, size); 5625 5626 /* fix arithmetic bounds */ 5627 mask = ((u64)1 << (size * 8)) - 1; 5628 if ((reg->umin_value & ~mask) == (reg->umax_value & ~mask)) { 5629 reg->umin_value &= mask; 5630 reg->umax_value &= mask; 5631 } else { 5632 reg->umin_value = 0; 5633 reg->umax_value = mask; 5634 } 5635 reg->smin_value = reg->umin_value; 5636 reg->smax_value = reg->umax_value; 5637 5638 /* If size is smaller than 32bit register the 32bit register 5639 * values are also truncated so we push 64-bit bounds into 5640 * 32-bit bounds. Above were truncated < 32-bits already. 5641 */ 5642 if (size < 4) 5643 __mark_reg32_unbounded(reg); 5644 5645 reg_bounds_sync(reg); 5646 } 5647 5648 static void set_sext64_default_val(struct bpf_reg_state *reg, int size) 5649 { 5650 if (size == 1) { 5651 reg->smin_value = reg->s32_min_value = S8_MIN; 5652 reg->smax_value = reg->s32_max_value = S8_MAX; 5653 } else if (size == 2) { 5654 reg->smin_value = reg->s32_min_value = S16_MIN; 5655 reg->smax_value = reg->s32_max_value = S16_MAX; 5656 } else { 5657 /* size == 4 */ 5658 reg->smin_value = reg->s32_min_value = S32_MIN; 5659 reg->smax_value = reg->s32_max_value = S32_MAX; 5660 } 5661 reg->umin_value = reg->u32_min_value = 0; 5662 reg->umax_value = U64_MAX; 5663 reg->u32_max_value = U32_MAX; 5664 reg->var_off = tnum_unknown; 5665 } 5666 5667 static void coerce_reg_to_size_sx(struct bpf_reg_state *reg, int size) 5668 { 5669 s64 init_s64_max, init_s64_min, s64_max, s64_min, u64_cval; 5670 u64 top_smax_value, top_smin_value; 5671 u64 num_bits = size * 8; 5672 5673 if (tnum_is_const(reg->var_off)) { 5674 u64_cval = reg->var_off.value; 5675 if (size == 1) 5676 reg->var_off = tnum_const((s8)u64_cval); 5677 else if (size == 2) 5678 reg->var_off = tnum_const((s16)u64_cval); 5679 else 5680 /* size == 4 */ 5681 reg->var_off = tnum_const((s32)u64_cval); 5682 5683 u64_cval = reg->var_off.value; 5684 reg->smax_value = reg->smin_value = u64_cval; 5685 reg->umax_value = reg->umin_value = u64_cval; 5686 reg->s32_max_value = reg->s32_min_value = u64_cval; 5687 reg->u32_max_value = reg->u32_min_value = u64_cval; 5688 return; 5689 } 5690 5691 top_smax_value = ((u64)reg->smax_value >> num_bits) << num_bits; 5692 top_smin_value = ((u64)reg->smin_value >> num_bits) << num_bits; 5693 5694 if (top_smax_value != top_smin_value) 5695 goto out; 5696 5697 /* find the s64_min and s64_min after sign extension */ 5698 if (size == 1) { 5699 init_s64_max = (s8)reg->smax_value; 5700 init_s64_min = (s8)reg->smin_value; 5701 } else if (size == 2) { 5702 init_s64_max = (s16)reg->smax_value; 5703 init_s64_min = (s16)reg->smin_value; 5704 } else { 5705 init_s64_max = (s32)reg->smax_value; 5706 init_s64_min = (s32)reg->smin_value; 5707 } 5708 5709 s64_max = max(init_s64_max, init_s64_min); 5710 s64_min = min(init_s64_max, init_s64_min); 5711 5712 /* both of s64_max/s64_min positive or negative */ 5713 if ((s64_max >= 0) == (s64_min >= 0)) { 5714 reg->s32_min_value = reg->smin_value = s64_min; 5715 reg->s32_max_value = reg->smax_value = s64_max; 5716 reg->u32_min_value = reg->umin_value = s64_min; 5717 reg->u32_max_value = reg->umax_value = s64_max; 5718 reg->var_off = tnum_range(s64_min, s64_max); 5719 return; 5720 } 5721 5722 out: 5723 set_sext64_default_val(reg, size); 5724 } 5725 5726 static void set_sext32_default_val(struct bpf_reg_state *reg, int size) 5727 { 5728 if (size == 1) { 5729 reg->s32_min_value = S8_MIN; 5730 reg->s32_max_value = S8_MAX; 5731 } else { 5732 /* size == 2 */ 5733 reg->s32_min_value = S16_MIN; 5734 reg->s32_max_value = S16_MAX; 5735 } 5736 reg->u32_min_value = 0; 5737 reg->u32_max_value = U32_MAX; 5738 reg->var_off = tnum_subreg(tnum_unknown); 5739 } 5740 5741 static void coerce_subreg_to_size_sx(struct bpf_reg_state *reg, int size) 5742 { 5743 s32 init_s32_max, init_s32_min, s32_max, s32_min, u32_val; 5744 u32 top_smax_value, top_smin_value; 5745 u32 num_bits = size * 8; 5746 5747 if (tnum_is_const(reg->var_off)) { 5748 u32_val = reg->var_off.value; 5749 if (size == 1) 5750 reg->var_off = tnum_const((s8)u32_val); 5751 else 5752 reg->var_off = tnum_const((s16)u32_val); 5753 5754 u32_val = reg->var_off.value; 5755 reg->s32_min_value = reg->s32_max_value = u32_val; 5756 reg->u32_min_value = reg->u32_max_value = u32_val; 5757 return; 5758 } 5759 5760 top_smax_value = ((u32)reg->s32_max_value >> num_bits) << num_bits; 5761 top_smin_value = ((u32)reg->s32_min_value >> num_bits) << num_bits; 5762 5763 if (top_smax_value != top_smin_value) 5764 goto out; 5765 5766 /* find the s32_min and s32_min after sign extension */ 5767 if (size == 1) { 5768 init_s32_max = (s8)reg->s32_max_value; 5769 init_s32_min = (s8)reg->s32_min_value; 5770 } else { 5771 /* size == 2 */ 5772 init_s32_max = (s16)reg->s32_max_value; 5773 init_s32_min = (s16)reg->s32_min_value; 5774 } 5775 s32_max = max(init_s32_max, init_s32_min); 5776 s32_min = min(init_s32_max, init_s32_min); 5777 5778 if ((s32_min >= 0) == (s32_max >= 0)) { 5779 reg->s32_min_value = s32_min; 5780 reg->s32_max_value = s32_max; 5781 reg->u32_min_value = (u32)s32_min; 5782 reg->u32_max_value = (u32)s32_max; 5783 reg->var_off = tnum_subreg(tnum_range(s32_min, s32_max)); 5784 return; 5785 } 5786 5787 out: 5788 set_sext32_default_val(reg, size); 5789 } 5790 5791 bool bpf_map_is_rdonly(const struct bpf_map *map) 5792 { 5793 /* A map is considered read-only if the following condition are true: 5794 * 5795 * 1) BPF program side cannot change any of the map content. The 5796 * BPF_F_RDONLY_PROG flag is throughout the lifetime of a map 5797 * and was set at map creation time. 5798 * 2) The map value(s) have been initialized from user space by a 5799 * loader and then "frozen", such that no new map update/delete 5800 * operations from syscall side are possible for the rest of 5801 * the map's lifetime from that point onwards. 5802 * 3) Any parallel/pending map update/delete operations from syscall 5803 * side have been completed. Only after that point, it's safe to 5804 * assume that map value(s) are immutable. 5805 */ 5806 return (map->map_flags & BPF_F_RDONLY_PROG) && 5807 READ_ONCE(map->frozen) && 5808 !bpf_map_write_active(map); 5809 } 5810 5811 int bpf_map_direct_read(struct bpf_map *map, int off, int size, u64 *val, 5812 bool is_ldsx) 5813 { 5814 void *ptr; 5815 u64 addr; 5816 int err; 5817 5818 err = map->ops->map_direct_value_addr(map, &addr, off); 5819 if (err) 5820 return err; 5821 ptr = (void *)(long)addr + off; 5822 5823 switch (size) { 5824 case sizeof(u8): 5825 *val = is_ldsx ? (s64)*(s8 *)ptr : (u64)*(u8 *)ptr; 5826 break; 5827 case sizeof(u16): 5828 *val = is_ldsx ? (s64)*(s16 *)ptr : (u64)*(u16 *)ptr; 5829 break; 5830 case sizeof(u32): 5831 *val = is_ldsx ? (s64)*(s32 *)ptr : (u64)*(u32 *)ptr; 5832 break; 5833 case sizeof(u64): 5834 *val = *(u64 *)ptr; 5835 break; 5836 default: 5837 return -EINVAL; 5838 } 5839 return 0; 5840 } 5841 5842 #define BTF_TYPE_SAFE_RCU(__type) __PASTE(__type, __safe_rcu) 5843 #define BTF_TYPE_SAFE_RCU_OR_NULL(__type) __PASTE(__type, __safe_rcu_or_null) 5844 #define BTF_TYPE_SAFE_TRUSTED(__type) __PASTE(__type, __safe_trusted) 5845 #define BTF_TYPE_SAFE_TRUSTED_OR_NULL(__type) __PASTE(__type, __safe_trusted_or_null) 5846 5847 /* 5848 * Allow list few fields as RCU trusted or full trusted. 5849 * This logic doesn't allow mix tagging and will be removed once GCC supports 5850 * btf_type_tag. 5851 */ 5852 5853 /* RCU trusted: these fields are trusted in RCU CS and never NULL */ 5854 BTF_TYPE_SAFE_RCU(struct task_struct) { 5855 const cpumask_t *cpus_ptr; 5856 struct css_set __rcu *cgroups; 5857 struct task_struct __rcu *real_parent; 5858 struct task_struct *group_leader; 5859 }; 5860 5861 BTF_TYPE_SAFE_RCU(struct cgroup) { 5862 /* cgrp->kn is always accessible as documented in kernel/cgroup/cgroup.c */ 5863 struct kernfs_node *kn; 5864 }; 5865 5866 BTF_TYPE_SAFE_RCU(struct css_set) { 5867 struct cgroup *dfl_cgrp; 5868 }; 5869 5870 BTF_TYPE_SAFE_RCU(struct cgroup_subsys_state) { 5871 struct cgroup *cgroup; 5872 }; 5873 5874 /* RCU trusted: these fields are trusted in RCU CS and can be NULL */ 5875 BTF_TYPE_SAFE_RCU_OR_NULL(struct mm_struct) { 5876 struct file __rcu *exe_file; 5877 #ifdef CONFIG_MEMCG 5878 struct task_struct __rcu *owner; 5879 #endif 5880 }; 5881 5882 /* skb->sk, req->sk are not RCU protected, but we mark them as such 5883 * because bpf prog accessible sockets are SOCK_RCU_FREE. 5884 */ 5885 BTF_TYPE_SAFE_RCU_OR_NULL(struct sk_buff) { 5886 struct sock *sk; 5887 }; 5888 5889 BTF_TYPE_SAFE_RCU_OR_NULL(struct request_sock) { 5890 struct sock *sk; 5891 }; 5892 5893 /* full trusted: these fields are trusted even outside of RCU CS and never NULL */ 5894 BTF_TYPE_SAFE_TRUSTED(struct bpf_iter_meta) { 5895 struct seq_file *seq; 5896 }; 5897 5898 BTF_TYPE_SAFE_TRUSTED(struct bpf_iter__task) { 5899 struct bpf_iter_meta *meta; 5900 struct task_struct *task; 5901 }; 5902 5903 BTF_TYPE_SAFE_TRUSTED(struct linux_binprm) { 5904 struct file *file; 5905 }; 5906 5907 BTF_TYPE_SAFE_TRUSTED(struct file) { 5908 struct inode *f_inode; 5909 }; 5910 5911 BTF_TYPE_SAFE_TRUSTED_OR_NULL(struct dentry) { 5912 struct inode *d_inode; 5913 }; 5914 5915 BTF_TYPE_SAFE_TRUSTED_OR_NULL(struct socket) { 5916 struct sock *sk; 5917 }; 5918 5919 BTF_TYPE_SAFE_TRUSTED_OR_NULL(struct vm_area_struct) { 5920 struct mm_struct *vm_mm; 5921 struct file *vm_file; 5922 }; 5923 5924 static bool type_is_rcu(struct bpf_verifier_env *env, 5925 struct bpf_reg_state *reg, 5926 const char *field_name, u32 btf_id) 5927 { 5928 BTF_TYPE_EMIT(BTF_TYPE_SAFE_RCU(struct task_struct)); 5929 BTF_TYPE_EMIT(BTF_TYPE_SAFE_RCU(struct cgroup)); 5930 BTF_TYPE_EMIT(BTF_TYPE_SAFE_RCU(struct css_set)); 5931 BTF_TYPE_EMIT(BTF_TYPE_SAFE_RCU(struct cgroup_subsys_state)); 5932 5933 return btf_nested_type_is_trusted(&env->log, reg, field_name, btf_id, "__safe_rcu"); 5934 } 5935 5936 static bool type_is_rcu_or_null(struct bpf_verifier_env *env, 5937 struct bpf_reg_state *reg, 5938 const char *field_name, u32 btf_id) 5939 { 5940 BTF_TYPE_EMIT(BTF_TYPE_SAFE_RCU_OR_NULL(struct mm_struct)); 5941 BTF_TYPE_EMIT(BTF_TYPE_SAFE_RCU_OR_NULL(struct sk_buff)); 5942 BTF_TYPE_EMIT(BTF_TYPE_SAFE_RCU_OR_NULL(struct request_sock)); 5943 5944 return btf_nested_type_is_trusted(&env->log, reg, field_name, btf_id, "__safe_rcu_or_null"); 5945 } 5946 5947 static bool type_is_trusted(struct bpf_verifier_env *env, 5948 struct bpf_reg_state *reg, 5949 const char *field_name, u32 btf_id) 5950 { 5951 BTF_TYPE_EMIT(BTF_TYPE_SAFE_TRUSTED(struct bpf_iter_meta)); 5952 BTF_TYPE_EMIT(BTF_TYPE_SAFE_TRUSTED(struct bpf_iter__task)); 5953 BTF_TYPE_EMIT(BTF_TYPE_SAFE_TRUSTED(struct linux_binprm)); 5954 BTF_TYPE_EMIT(BTF_TYPE_SAFE_TRUSTED(struct file)); 5955 5956 return btf_nested_type_is_trusted(&env->log, reg, field_name, btf_id, "__safe_trusted"); 5957 } 5958 5959 static bool type_is_trusted_or_null(struct bpf_verifier_env *env, 5960 struct bpf_reg_state *reg, 5961 const char *field_name, u32 btf_id) 5962 { 5963 BTF_TYPE_EMIT(BTF_TYPE_SAFE_TRUSTED_OR_NULL(struct socket)); 5964 BTF_TYPE_EMIT(BTF_TYPE_SAFE_TRUSTED_OR_NULL(struct dentry)); 5965 BTF_TYPE_EMIT(BTF_TYPE_SAFE_TRUSTED_OR_NULL(struct vm_area_struct)); 5966 5967 return btf_nested_type_is_trusted(&env->log, reg, field_name, btf_id, 5968 "__safe_trusted_or_null"); 5969 } 5970 5971 static int check_ptr_to_btf_access(struct bpf_verifier_env *env, 5972 struct bpf_reg_state *regs, 5973 int regno, int off, int size, 5974 enum bpf_access_type atype, 5975 int value_regno) 5976 { 5977 struct bpf_reg_state *reg = regs + regno; 5978 const struct btf_type *t = btf_type_by_id(reg->btf, reg->btf_id); 5979 const char *tname = btf_name_by_offset(reg->btf, t->name_off); 5980 const char *field_name = NULL; 5981 enum bpf_type_flag flag = 0; 5982 u32 btf_id = 0; 5983 int ret; 5984 5985 if (!env->allow_ptr_leaks) { 5986 verbose(env, 5987 "'struct %s' access is allowed only to CAP_PERFMON and CAP_SYS_ADMIN\n", 5988 tname); 5989 return -EPERM; 5990 } 5991 if (!env->prog->gpl_compatible && btf_is_kernel(reg->btf)) { 5992 verbose(env, 5993 "Cannot access kernel 'struct %s' from non-GPL compatible program\n", 5994 tname); 5995 return -EINVAL; 5996 } 5997 5998 if (!tnum_is_const(reg->var_off)) { 5999 char tn_buf[48]; 6000 6001 tnum_strn(tn_buf, sizeof(tn_buf), reg->var_off); 6002 verbose(env, 6003 "R%d is ptr_%s invalid variable offset: off=%d, var_off=%s\n", 6004 regno, tname, off, tn_buf); 6005 return -EACCES; 6006 } 6007 6008 off += reg->var_off.value; 6009 6010 if (off < 0) { 6011 verbose(env, 6012 "R%d is ptr_%s invalid negative access: off=%d\n", 6013 regno, tname, off); 6014 return -EACCES; 6015 } 6016 6017 if (reg->type & MEM_USER) { 6018 verbose(env, 6019 "R%d is ptr_%s access user memory: off=%d\n", 6020 regno, tname, off); 6021 return -EACCES; 6022 } 6023 6024 if (reg->type & MEM_PERCPU) { 6025 verbose(env, 6026 "R%d is ptr_%s access percpu memory: off=%d\n", 6027 regno, tname, off); 6028 return -EACCES; 6029 } 6030 6031 if (env->ops->btf_struct_access && !type_is_alloc(reg->type) && atype == BPF_WRITE) { 6032 if (!btf_is_kernel(reg->btf)) { 6033 verifier_bug(env, "reg->btf must be kernel btf"); 6034 return -EFAULT; 6035 } 6036 ret = env->ops->btf_struct_access(&env->log, reg, off, size); 6037 } else { 6038 /* Writes are permitted with default btf_struct_access for 6039 * program allocated objects (which always have ref_obj_id > 0), 6040 * but not for untrusted PTR_TO_BTF_ID | MEM_ALLOC. 6041 */ 6042 if (atype != BPF_READ && !type_is_ptr_alloc_obj(reg->type)) { 6043 verbose(env, "only read is supported\n"); 6044 return -EACCES; 6045 } 6046 6047 if (type_is_alloc(reg->type) && !type_is_non_owning_ref(reg->type) && 6048 !(reg->type & MEM_RCU) && !reg->ref_obj_id) { 6049 verifier_bug(env, "ref_obj_id for allocated object must be non-zero"); 6050 return -EFAULT; 6051 } 6052 6053 ret = btf_struct_access(&env->log, reg, off, size, atype, &btf_id, &flag, &field_name); 6054 } 6055 6056 if (ret < 0) 6057 return ret; 6058 6059 if (ret != PTR_TO_BTF_ID) { 6060 /* just mark; */ 6061 6062 } else if (type_flag(reg->type) & PTR_UNTRUSTED) { 6063 /* If this is an untrusted pointer, all pointers formed by walking it 6064 * also inherit the untrusted flag. 6065 */ 6066 flag = PTR_UNTRUSTED; 6067 6068 } else if (is_trusted_reg(reg) || is_rcu_reg(reg)) { 6069 /* By default any pointer obtained from walking a trusted pointer is no 6070 * longer trusted, unless the field being accessed has explicitly been 6071 * marked as inheriting its parent's state of trust (either full or RCU). 6072 * For example: 6073 * 'cgroups' pointer is untrusted if task->cgroups dereference 6074 * happened in a sleepable program outside of bpf_rcu_read_lock() 6075 * section. In a non-sleepable program it's trusted while in RCU CS (aka MEM_RCU). 6076 * Note bpf_rcu_read_unlock() converts MEM_RCU pointers to PTR_UNTRUSTED. 6077 * 6078 * A regular RCU-protected pointer with __rcu tag can also be deemed 6079 * trusted if we are in an RCU CS. Such pointer can be NULL. 6080 */ 6081 if (type_is_trusted(env, reg, field_name, btf_id)) { 6082 flag |= PTR_TRUSTED; 6083 } else if (type_is_trusted_or_null(env, reg, field_name, btf_id)) { 6084 flag |= PTR_TRUSTED | PTR_MAYBE_NULL; 6085 } else if (in_rcu_cs(env) && !type_may_be_null(reg->type)) { 6086 if (type_is_rcu(env, reg, field_name, btf_id)) { 6087 /* ignore __rcu tag and mark it MEM_RCU */ 6088 flag |= MEM_RCU; 6089 } else if (flag & MEM_RCU || 6090 type_is_rcu_or_null(env, reg, field_name, btf_id)) { 6091 /* __rcu tagged pointers can be NULL */ 6092 flag |= MEM_RCU | PTR_MAYBE_NULL; 6093 6094 /* We always trust them */ 6095 if (type_is_rcu_or_null(env, reg, field_name, btf_id) && 6096 flag & PTR_UNTRUSTED) 6097 flag &= ~PTR_UNTRUSTED; 6098 } else if (flag & (MEM_PERCPU | MEM_USER)) { 6099 /* keep as-is */ 6100 } else { 6101 /* walking unknown pointers yields old deprecated PTR_TO_BTF_ID */ 6102 clear_trusted_flags(&flag); 6103 } 6104 } else { 6105 /* 6106 * If not in RCU CS or MEM_RCU pointer can be NULL then 6107 * aggressively mark as untrusted otherwise such 6108 * pointers will be plain PTR_TO_BTF_ID without flags 6109 * and will be allowed to be passed into helpers for 6110 * compat reasons. 6111 */ 6112 flag = PTR_UNTRUSTED; 6113 } 6114 } else { 6115 /* Old compat. Deprecated */ 6116 clear_trusted_flags(&flag); 6117 } 6118 6119 if (atype == BPF_READ && value_regno >= 0) { 6120 ret = mark_btf_ld_reg(env, regs, value_regno, ret, reg->btf, btf_id, flag); 6121 if (ret < 0) 6122 return ret; 6123 } 6124 6125 return 0; 6126 } 6127 6128 static int check_ptr_to_map_access(struct bpf_verifier_env *env, 6129 struct bpf_reg_state *regs, 6130 int regno, int off, int size, 6131 enum bpf_access_type atype, 6132 int value_regno) 6133 { 6134 struct bpf_reg_state *reg = regs + regno; 6135 struct bpf_map *map = reg->map_ptr; 6136 struct bpf_reg_state map_reg; 6137 enum bpf_type_flag flag = 0; 6138 const struct btf_type *t; 6139 const char *tname; 6140 u32 btf_id; 6141 int ret; 6142 6143 if (!btf_vmlinux) { 6144 verbose(env, "map_ptr access not supported without CONFIG_DEBUG_INFO_BTF\n"); 6145 return -ENOTSUPP; 6146 } 6147 6148 if (!map->ops->map_btf_id || !*map->ops->map_btf_id) { 6149 verbose(env, "map_ptr access not supported for map type %d\n", 6150 map->map_type); 6151 return -ENOTSUPP; 6152 } 6153 6154 t = btf_type_by_id(btf_vmlinux, *map->ops->map_btf_id); 6155 tname = btf_name_by_offset(btf_vmlinux, t->name_off); 6156 6157 if (!env->allow_ptr_leaks) { 6158 verbose(env, 6159 "'struct %s' access is allowed only to CAP_PERFMON and CAP_SYS_ADMIN\n", 6160 tname); 6161 return -EPERM; 6162 } 6163 6164 if (off < 0) { 6165 verbose(env, "R%d is %s invalid negative access: off=%d\n", 6166 regno, tname, off); 6167 return -EACCES; 6168 } 6169 6170 if (atype != BPF_READ) { 6171 verbose(env, "only read from %s is supported\n", tname); 6172 return -EACCES; 6173 } 6174 6175 /* Simulate access to a PTR_TO_BTF_ID */ 6176 memset(&map_reg, 0, sizeof(map_reg)); 6177 ret = mark_btf_ld_reg(env, &map_reg, 0, PTR_TO_BTF_ID, 6178 btf_vmlinux, *map->ops->map_btf_id, 0); 6179 if (ret < 0) 6180 return ret; 6181 ret = btf_struct_access(&env->log, &map_reg, off, size, atype, &btf_id, &flag, NULL); 6182 if (ret < 0) 6183 return ret; 6184 6185 if (value_regno >= 0) { 6186 ret = mark_btf_ld_reg(env, regs, value_regno, ret, btf_vmlinux, btf_id, flag); 6187 if (ret < 0) 6188 return ret; 6189 } 6190 6191 return 0; 6192 } 6193 6194 /* Check that the stack access at the given offset is within bounds. The 6195 * maximum valid offset is -1. 6196 * 6197 * The minimum valid offset is -MAX_BPF_STACK for writes, and 6198 * -state->allocated_stack for reads. 6199 */ 6200 static int check_stack_slot_within_bounds(struct bpf_verifier_env *env, 6201 s64 off, 6202 struct bpf_func_state *state, 6203 enum bpf_access_type t) 6204 { 6205 int min_valid_off; 6206 6207 if (t == BPF_WRITE || env->allow_uninit_stack) 6208 min_valid_off = -MAX_BPF_STACK; 6209 else 6210 min_valid_off = -state->allocated_stack; 6211 6212 if (off < min_valid_off || off > -1) 6213 return -EACCES; 6214 return 0; 6215 } 6216 6217 /* Check that the stack access at 'regno + off' falls within the maximum stack 6218 * bounds. 6219 * 6220 * 'off' includes `regno->offset`, but not its dynamic part (if any). 6221 */ 6222 static int check_stack_access_within_bounds( 6223 struct bpf_verifier_env *env, 6224 int regno, int off, int access_size, 6225 enum bpf_access_type type) 6226 { 6227 struct bpf_reg_state *reg = reg_state(env, regno); 6228 struct bpf_func_state *state = bpf_func(env, reg); 6229 s64 min_off, max_off; 6230 int err; 6231 char *err_extra; 6232 6233 if (type == BPF_READ) 6234 err_extra = " read from"; 6235 else 6236 err_extra = " write to"; 6237 6238 if (tnum_is_const(reg->var_off)) { 6239 min_off = (s64)reg->var_off.value + off; 6240 max_off = min_off + access_size; 6241 } else { 6242 if (reg->smax_value >= BPF_MAX_VAR_OFF || 6243 reg->smin_value <= -BPF_MAX_VAR_OFF) { 6244 verbose(env, "invalid unbounded variable-offset%s stack R%d\n", 6245 err_extra, regno); 6246 return -EACCES; 6247 } 6248 min_off = reg->smin_value + off; 6249 max_off = reg->smax_value + off + access_size; 6250 } 6251 6252 err = check_stack_slot_within_bounds(env, min_off, state, type); 6253 if (!err && max_off > 0) 6254 err = -EINVAL; /* out of stack access into non-negative offsets */ 6255 if (!err && access_size < 0) 6256 /* access_size should not be negative (or overflow an int); others checks 6257 * along the way should have prevented such an access. 6258 */ 6259 err = -EFAULT; /* invalid negative access size; integer overflow? */ 6260 6261 if (err) { 6262 if (tnum_is_const(reg->var_off)) { 6263 verbose(env, "invalid%s stack R%d off=%lld size=%d\n", 6264 err_extra, regno, min_off, access_size); 6265 } else { 6266 char tn_buf[48]; 6267 6268 tnum_strn(tn_buf, sizeof(tn_buf), reg->var_off); 6269 verbose(env, "invalid variable-offset%s stack R%d var_off=%s off=%d size=%d\n", 6270 err_extra, regno, tn_buf, off, access_size); 6271 } 6272 return err; 6273 } 6274 6275 /* Note that there is no stack access with offset zero, so the needed stack 6276 * size is -min_off, not -min_off+1. 6277 */ 6278 return grow_stack_state(env, state, -min_off /* size */); 6279 } 6280 6281 static bool get_func_retval_range(struct bpf_prog *prog, 6282 struct bpf_retval_range *range) 6283 { 6284 if (prog->type == BPF_PROG_TYPE_LSM && 6285 prog->expected_attach_type == BPF_LSM_MAC && 6286 !bpf_lsm_get_retval_range(prog, range)) { 6287 return true; 6288 } 6289 return false; 6290 } 6291 6292 static void add_scalar_to_reg(struct bpf_reg_state *dst_reg, s64 val) 6293 { 6294 struct bpf_reg_state fake_reg; 6295 6296 if (!val) 6297 return; 6298 6299 fake_reg.type = SCALAR_VALUE; 6300 __mark_reg_known(&fake_reg, val); 6301 6302 scalar32_min_max_add(dst_reg, &fake_reg); 6303 scalar_min_max_add(dst_reg, &fake_reg); 6304 dst_reg->var_off = tnum_add(dst_reg->var_off, fake_reg.var_off); 6305 6306 reg_bounds_sync(dst_reg); 6307 } 6308 6309 /* check whether memory at (regno + off) is accessible for t = (read | write) 6310 * if t==write, value_regno is a register which value is stored into memory 6311 * if t==read, value_regno is a register which will receive the value from memory 6312 * if t==write && value_regno==-1, some unknown value is stored into memory 6313 * if t==read && value_regno==-1, don't care what we read from memory 6314 */ 6315 static int check_mem_access(struct bpf_verifier_env *env, int insn_idx, u32 regno, 6316 int off, int bpf_size, enum bpf_access_type t, 6317 int value_regno, bool strict_alignment_once, bool is_ldsx) 6318 { 6319 struct bpf_reg_state *regs = cur_regs(env); 6320 struct bpf_reg_state *reg = regs + regno; 6321 int size, err = 0; 6322 6323 size = bpf_size_to_bytes(bpf_size); 6324 if (size < 0) 6325 return size; 6326 6327 err = check_ptr_alignment(env, reg, off, size, strict_alignment_once); 6328 if (err) 6329 return err; 6330 6331 if (reg->type == PTR_TO_MAP_KEY) { 6332 if (t == BPF_WRITE) { 6333 verbose(env, "write to change key R%d not allowed\n", regno); 6334 return -EACCES; 6335 } 6336 6337 err = check_mem_region_access(env, regno, off, size, 6338 reg->map_ptr->key_size, false); 6339 if (err) 6340 return err; 6341 if (value_regno >= 0) 6342 mark_reg_unknown(env, regs, value_regno); 6343 } else if (reg->type == PTR_TO_MAP_VALUE) { 6344 struct btf_field *kptr_field = NULL; 6345 6346 if (t == BPF_WRITE && value_regno >= 0 && 6347 is_pointer_value(env, value_regno)) { 6348 verbose(env, "R%d leaks addr into map\n", value_regno); 6349 return -EACCES; 6350 } 6351 err = check_map_access_type(env, regno, off, size, t); 6352 if (err) 6353 return err; 6354 err = check_map_access(env, regno, off, size, false, ACCESS_DIRECT); 6355 if (err) 6356 return err; 6357 if (tnum_is_const(reg->var_off)) 6358 kptr_field = btf_record_find(reg->map_ptr->record, 6359 off + reg->var_off.value, BPF_KPTR | BPF_UPTR); 6360 if (kptr_field) { 6361 err = check_map_kptr_access(env, regno, value_regno, insn_idx, kptr_field); 6362 } else if (t == BPF_READ && value_regno >= 0) { 6363 struct bpf_map *map = reg->map_ptr; 6364 6365 /* 6366 * If map is read-only, track its contents as scalars, 6367 * unless it is an insn array (see the special case below) 6368 */ 6369 if (tnum_is_const(reg->var_off) && 6370 bpf_map_is_rdonly(map) && 6371 map->ops->map_direct_value_addr && 6372 map->map_type != BPF_MAP_TYPE_INSN_ARRAY) { 6373 int map_off = off + reg->var_off.value; 6374 u64 val = 0; 6375 6376 err = bpf_map_direct_read(map, map_off, size, 6377 &val, is_ldsx); 6378 if (err) 6379 return err; 6380 6381 regs[value_regno].type = SCALAR_VALUE; 6382 __mark_reg_known(®s[value_regno], val); 6383 } else if (map->map_type == BPF_MAP_TYPE_INSN_ARRAY) { 6384 if (bpf_size != BPF_DW) { 6385 verbose(env, "Invalid read of %d bytes from insn_array\n", 6386 size); 6387 return -EACCES; 6388 } 6389 copy_register_state(®s[value_regno], reg); 6390 add_scalar_to_reg(®s[value_regno], off); 6391 regs[value_regno].type = PTR_TO_INSN; 6392 } else { 6393 mark_reg_unknown(env, regs, value_regno); 6394 } 6395 } 6396 } else if (base_type(reg->type) == PTR_TO_MEM) { 6397 bool rdonly_mem = type_is_rdonly_mem(reg->type); 6398 bool rdonly_untrusted = rdonly_mem && (reg->type & PTR_UNTRUSTED); 6399 6400 if (type_may_be_null(reg->type)) { 6401 verbose(env, "R%d invalid mem access '%s'\n", regno, 6402 reg_type_str(env, reg->type)); 6403 return -EACCES; 6404 } 6405 6406 if (t == BPF_WRITE && rdonly_mem) { 6407 verbose(env, "R%d cannot write into %s\n", 6408 regno, reg_type_str(env, reg->type)); 6409 return -EACCES; 6410 } 6411 6412 if (t == BPF_WRITE && value_regno >= 0 && 6413 is_pointer_value(env, value_regno)) { 6414 verbose(env, "R%d leaks addr into mem\n", value_regno); 6415 return -EACCES; 6416 } 6417 6418 /* 6419 * Accesses to untrusted PTR_TO_MEM are done through probe 6420 * instructions, hence no need to check bounds in that case. 6421 */ 6422 if (!rdonly_untrusted) 6423 err = check_mem_region_access(env, regno, off, size, 6424 reg->mem_size, false); 6425 if (!err && value_regno >= 0 && (t == BPF_READ || rdonly_mem)) 6426 mark_reg_unknown(env, regs, value_regno); 6427 } else if (reg->type == PTR_TO_CTX) { 6428 struct bpf_insn_access_aux info = { 6429 .reg_type = SCALAR_VALUE, 6430 .is_ldsx = is_ldsx, 6431 .log = &env->log, 6432 }; 6433 struct bpf_retval_range range; 6434 6435 if (t == BPF_WRITE && value_regno >= 0 && 6436 is_pointer_value(env, value_regno)) { 6437 verbose(env, "R%d leaks addr into ctx\n", value_regno); 6438 return -EACCES; 6439 } 6440 6441 err = check_ctx_access(env, insn_idx, regno, off, size, t, &info); 6442 if (!err && t == BPF_READ && value_regno >= 0) { 6443 /* ctx access returns either a scalar, or a 6444 * PTR_TO_PACKET[_META,_END]. In the latter 6445 * case, we know the offset is zero. 6446 */ 6447 if (info.reg_type == SCALAR_VALUE) { 6448 if (info.is_retval && get_func_retval_range(env->prog, &range)) { 6449 err = __mark_reg_s32_range(env, regs, value_regno, 6450 range.minval, range.maxval); 6451 if (err) 6452 return err; 6453 } else { 6454 mark_reg_unknown(env, regs, value_regno); 6455 } 6456 } else { 6457 mark_reg_known_zero(env, regs, 6458 value_regno); 6459 if (type_may_be_null(info.reg_type)) 6460 regs[value_regno].id = ++env->id_gen; 6461 /* A load of ctx field could have different 6462 * actual load size with the one encoded in the 6463 * insn. When the dst is PTR, it is for sure not 6464 * a sub-register. 6465 */ 6466 regs[value_regno].subreg_def = DEF_NOT_SUBREG; 6467 if (base_type(info.reg_type) == PTR_TO_BTF_ID) { 6468 regs[value_regno].btf = info.btf; 6469 regs[value_regno].btf_id = info.btf_id; 6470 regs[value_regno].ref_obj_id = info.ref_obj_id; 6471 } 6472 } 6473 regs[value_regno].type = info.reg_type; 6474 } 6475 6476 } else if (reg->type == PTR_TO_STACK) { 6477 /* Basic bounds checks. */ 6478 err = check_stack_access_within_bounds(env, regno, off, size, t); 6479 if (err) 6480 return err; 6481 6482 if (t == BPF_READ) 6483 err = check_stack_read(env, regno, off, size, 6484 value_regno); 6485 else 6486 err = check_stack_write(env, regno, off, size, 6487 value_regno, insn_idx); 6488 } else if (reg_is_pkt_pointer(reg)) { 6489 if (t == BPF_WRITE && !may_access_direct_pkt_data(env, NULL, t)) { 6490 verbose(env, "cannot write into packet\n"); 6491 return -EACCES; 6492 } 6493 if (t == BPF_WRITE && value_regno >= 0 && 6494 is_pointer_value(env, value_regno)) { 6495 verbose(env, "R%d leaks addr into packet\n", 6496 value_regno); 6497 return -EACCES; 6498 } 6499 err = check_packet_access(env, regno, off, size, false); 6500 if (!err && t == BPF_READ && value_regno >= 0) 6501 mark_reg_unknown(env, regs, value_regno); 6502 } else if (reg->type == PTR_TO_FLOW_KEYS) { 6503 if (t == BPF_WRITE && value_regno >= 0 && 6504 is_pointer_value(env, value_regno)) { 6505 verbose(env, "R%d leaks addr into flow keys\n", 6506 value_regno); 6507 return -EACCES; 6508 } 6509 6510 err = check_flow_keys_access(env, off, size); 6511 if (!err && t == BPF_READ && value_regno >= 0) 6512 mark_reg_unknown(env, regs, value_regno); 6513 } else if (type_is_sk_pointer(reg->type)) { 6514 if (t == BPF_WRITE) { 6515 verbose(env, "R%d cannot write into %s\n", 6516 regno, reg_type_str(env, reg->type)); 6517 return -EACCES; 6518 } 6519 err = check_sock_access(env, insn_idx, regno, off, size, t); 6520 if (!err && value_regno >= 0) 6521 mark_reg_unknown(env, regs, value_regno); 6522 } else if (reg->type == PTR_TO_TP_BUFFER) { 6523 err = check_tp_buffer_access(env, reg, regno, off, size); 6524 if (!err && t == BPF_READ && value_regno >= 0) 6525 mark_reg_unknown(env, regs, value_regno); 6526 } else if (base_type(reg->type) == PTR_TO_BTF_ID && 6527 !type_may_be_null(reg->type)) { 6528 err = check_ptr_to_btf_access(env, regs, regno, off, size, t, 6529 value_regno); 6530 } else if (reg->type == CONST_PTR_TO_MAP) { 6531 err = check_ptr_to_map_access(env, regs, regno, off, size, t, 6532 value_regno); 6533 } else if (base_type(reg->type) == PTR_TO_BUF && 6534 !type_may_be_null(reg->type)) { 6535 bool rdonly_mem = type_is_rdonly_mem(reg->type); 6536 u32 *max_access; 6537 6538 if (rdonly_mem) { 6539 if (t == BPF_WRITE) { 6540 verbose(env, "R%d cannot write into %s\n", 6541 regno, reg_type_str(env, reg->type)); 6542 return -EACCES; 6543 } 6544 max_access = &env->prog->aux->max_rdonly_access; 6545 } else { 6546 max_access = &env->prog->aux->max_rdwr_access; 6547 } 6548 6549 err = check_buffer_access(env, reg, regno, off, size, false, 6550 max_access); 6551 6552 if (!err && value_regno >= 0 && (rdonly_mem || t == BPF_READ)) 6553 mark_reg_unknown(env, regs, value_regno); 6554 } else if (reg->type == PTR_TO_ARENA) { 6555 if (t == BPF_READ && value_regno >= 0) 6556 mark_reg_unknown(env, regs, value_regno); 6557 } else { 6558 verbose(env, "R%d invalid mem access '%s'\n", regno, 6559 reg_type_str(env, reg->type)); 6560 return -EACCES; 6561 } 6562 6563 if (!err && size < BPF_REG_SIZE && value_regno >= 0 && t == BPF_READ && 6564 regs[value_regno].type == SCALAR_VALUE) { 6565 if (!is_ldsx) 6566 /* b/h/w load zero-extends, mark upper bits as known 0 */ 6567 coerce_reg_to_size(®s[value_regno], size); 6568 else 6569 coerce_reg_to_size_sx(®s[value_regno], size); 6570 } 6571 return err; 6572 } 6573 6574 static int save_aux_ptr_type(struct bpf_verifier_env *env, enum bpf_reg_type type, 6575 bool allow_trust_mismatch); 6576 6577 static int check_load_mem(struct bpf_verifier_env *env, struct bpf_insn *insn, 6578 bool strict_alignment_once, bool is_ldsx, 6579 bool allow_trust_mismatch, const char *ctx) 6580 { 6581 struct bpf_reg_state *regs = cur_regs(env); 6582 enum bpf_reg_type src_reg_type; 6583 int err; 6584 6585 /* check src operand */ 6586 err = check_reg_arg(env, insn->src_reg, SRC_OP); 6587 if (err) 6588 return err; 6589 6590 /* check dst operand */ 6591 err = check_reg_arg(env, insn->dst_reg, DST_OP_NO_MARK); 6592 if (err) 6593 return err; 6594 6595 src_reg_type = regs[insn->src_reg].type; 6596 6597 /* Check if (src_reg + off) is readable. The state of dst_reg will be 6598 * updated by this call. 6599 */ 6600 err = check_mem_access(env, env->insn_idx, insn->src_reg, insn->off, 6601 BPF_SIZE(insn->code), BPF_READ, insn->dst_reg, 6602 strict_alignment_once, is_ldsx); 6603 err = err ?: save_aux_ptr_type(env, src_reg_type, 6604 allow_trust_mismatch); 6605 err = err ?: reg_bounds_sanity_check(env, ®s[insn->dst_reg], ctx); 6606 6607 return err; 6608 } 6609 6610 static int check_store_reg(struct bpf_verifier_env *env, struct bpf_insn *insn, 6611 bool strict_alignment_once) 6612 { 6613 struct bpf_reg_state *regs = cur_regs(env); 6614 enum bpf_reg_type dst_reg_type; 6615 int err; 6616 6617 /* check src1 operand */ 6618 err = check_reg_arg(env, insn->src_reg, SRC_OP); 6619 if (err) 6620 return err; 6621 6622 /* check src2 operand */ 6623 err = check_reg_arg(env, insn->dst_reg, SRC_OP); 6624 if (err) 6625 return err; 6626 6627 dst_reg_type = regs[insn->dst_reg].type; 6628 6629 /* Check if (dst_reg + off) is writeable. */ 6630 err = check_mem_access(env, env->insn_idx, insn->dst_reg, insn->off, 6631 BPF_SIZE(insn->code), BPF_WRITE, insn->src_reg, 6632 strict_alignment_once, false); 6633 err = err ?: save_aux_ptr_type(env, dst_reg_type, false); 6634 6635 return err; 6636 } 6637 6638 static int check_atomic_rmw(struct bpf_verifier_env *env, 6639 struct bpf_insn *insn) 6640 { 6641 int load_reg; 6642 int err; 6643 6644 if (BPF_SIZE(insn->code) != BPF_W && BPF_SIZE(insn->code) != BPF_DW) { 6645 verbose(env, "invalid atomic operand size\n"); 6646 return -EINVAL; 6647 } 6648 6649 /* check src1 operand */ 6650 err = check_reg_arg(env, insn->src_reg, SRC_OP); 6651 if (err) 6652 return err; 6653 6654 /* check src2 operand */ 6655 err = check_reg_arg(env, insn->dst_reg, SRC_OP); 6656 if (err) 6657 return err; 6658 6659 if (insn->imm == BPF_CMPXCHG) { 6660 /* Check comparison of R0 with memory location */ 6661 const u32 aux_reg = BPF_REG_0; 6662 6663 err = check_reg_arg(env, aux_reg, SRC_OP); 6664 if (err) 6665 return err; 6666 6667 if (is_pointer_value(env, aux_reg)) { 6668 verbose(env, "R%d leaks addr into mem\n", aux_reg); 6669 return -EACCES; 6670 } 6671 } 6672 6673 if (is_pointer_value(env, insn->src_reg)) { 6674 verbose(env, "R%d leaks addr into mem\n", insn->src_reg); 6675 return -EACCES; 6676 } 6677 6678 if (!atomic_ptr_type_ok(env, insn->dst_reg, insn)) { 6679 verbose(env, "BPF_ATOMIC stores into R%d %s is not allowed\n", 6680 insn->dst_reg, 6681 reg_type_str(env, reg_state(env, insn->dst_reg)->type)); 6682 return -EACCES; 6683 } 6684 6685 if (insn->imm & BPF_FETCH) { 6686 if (insn->imm == BPF_CMPXCHG) 6687 load_reg = BPF_REG_0; 6688 else 6689 load_reg = insn->src_reg; 6690 6691 /* check and record load of old value */ 6692 err = check_reg_arg(env, load_reg, DST_OP); 6693 if (err) 6694 return err; 6695 } else { 6696 /* This instruction accesses a memory location but doesn't 6697 * actually load it into a register. 6698 */ 6699 load_reg = -1; 6700 } 6701 6702 /* Check whether we can read the memory, with second call for fetch 6703 * case to simulate the register fill. 6704 */ 6705 err = check_mem_access(env, env->insn_idx, insn->dst_reg, insn->off, 6706 BPF_SIZE(insn->code), BPF_READ, -1, true, false); 6707 if (!err && load_reg >= 0) 6708 err = check_mem_access(env, env->insn_idx, insn->dst_reg, 6709 insn->off, BPF_SIZE(insn->code), 6710 BPF_READ, load_reg, true, false); 6711 if (err) 6712 return err; 6713 6714 if (is_arena_reg(env, insn->dst_reg)) { 6715 err = save_aux_ptr_type(env, PTR_TO_ARENA, false); 6716 if (err) 6717 return err; 6718 } 6719 /* Check whether we can write into the same memory. */ 6720 err = check_mem_access(env, env->insn_idx, insn->dst_reg, insn->off, 6721 BPF_SIZE(insn->code), BPF_WRITE, -1, true, false); 6722 if (err) 6723 return err; 6724 return 0; 6725 } 6726 6727 static int check_atomic_load(struct bpf_verifier_env *env, 6728 struct bpf_insn *insn) 6729 { 6730 int err; 6731 6732 err = check_load_mem(env, insn, true, false, false, "atomic_load"); 6733 if (err) 6734 return err; 6735 6736 if (!atomic_ptr_type_ok(env, insn->src_reg, insn)) { 6737 verbose(env, "BPF_ATOMIC loads from R%d %s is not allowed\n", 6738 insn->src_reg, 6739 reg_type_str(env, reg_state(env, insn->src_reg)->type)); 6740 return -EACCES; 6741 } 6742 6743 return 0; 6744 } 6745 6746 static int check_atomic_store(struct bpf_verifier_env *env, 6747 struct bpf_insn *insn) 6748 { 6749 int err; 6750 6751 err = check_store_reg(env, insn, true); 6752 if (err) 6753 return err; 6754 6755 if (!atomic_ptr_type_ok(env, insn->dst_reg, insn)) { 6756 verbose(env, "BPF_ATOMIC stores into R%d %s is not allowed\n", 6757 insn->dst_reg, 6758 reg_type_str(env, reg_state(env, insn->dst_reg)->type)); 6759 return -EACCES; 6760 } 6761 6762 return 0; 6763 } 6764 6765 static int check_atomic(struct bpf_verifier_env *env, struct bpf_insn *insn) 6766 { 6767 switch (insn->imm) { 6768 case BPF_ADD: 6769 case BPF_ADD | BPF_FETCH: 6770 case BPF_AND: 6771 case BPF_AND | BPF_FETCH: 6772 case BPF_OR: 6773 case BPF_OR | BPF_FETCH: 6774 case BPF_XOR: 6775 case BPF_XOR | BPF_FETCH: 6776 case BPF_XCHG: 6777 case BPF_CMPXCHG: 6778 return check_atomic_rmw(env, insn); 6779 case BPF_LOAD_ACQ: 6780 if (BPF_SIZE(insn->code) == BPF_DW && BITS_PER_LONG != 64) { 6781 verbose(env, 6782 "64-bit load-acquires are only supported on 64-bit arches\n"); 6783 return -EOPNOTSUPP; 6784 } 6785 return check_atomic_load(env, insn); 6786 case BPF_STORE_REL: 6787 if (BPF_SIZE(insn->code) == BPF_DW && BITS_PER_LONG != 64) { 6788 verbose(env, 6789 "64-bit store-releases are only supported on 64-bit arches\n"); 6790 return -EOPNOTSUPP; 6791 } 6792 return check_atomic_store(env, insn); 6793 default: 6794 verbose(env, "BPF_ATOMIC uses invalid atomic opcode %02x\n", 6795 insn->imm); 6796 return -EINVAL; 6797 } 6798 } 6799 6800 /* When register 'regno' is used to read the stack (either directly or through 6801 * a helper function) make sure that it's within stack boundary and, depending 6802 * on the access type and privileges, that all elements of the stack are 6803 * initialized. 6804 * 6805 * All registers that have been spilled on the stack in the slots within the 6806 * read offsets are marked as read. 6807 */ 6808 static int check_stack_range_initialized( 6809 struct bpf_verifier_env *env, int regno, int off, 6810 int access_size, bool zero_size_allowed, 6811 enum bpf_access_type type, struct bpf_call_arg_meta *meta) 6812 { 6813 struct bpf_reg_state *reg = reg_state(env, regno); 6814 struct bpf_func_state *state = bpf_func(env, reg); 6815 int err, min_off, max_off, i, j, slot, spi; 6816 /* Some accesses can write anything into the stack, others are 6817 * read-only. 6818 */ 6819 bool clobber = type == BPF_WRITE; 6820 /* 6821 * Negative access_size signals global subprog/kfunc arg check where 6822 * STACK_POISON slots are acceptable. static stack liveness 6823 * might have determined that subprog doesn't read them, 6824 * but BTF based global subprog validation isn't accurate enough. 6825 */ 6826 bool allow_poison = access_size < 0 || clobber; 6827 6828 access_size = abs(access_size); 6829 6830 if (access_size == 0 && !zero_size_allowed) { 6831 verbose(env, "invalid zero-sized read\n"); 6832 return -EACCES; 6833 } 6834 6835 err = check_stack_access_within_bounds(env, regno, off, access_size, type); 6836 if (err) 6837 return err; 6838 6839 6840 if (tnum_is_const(reg->var_off)) { 6841 min_off = max_off = reg->var_off.value + off; 6842 } else { 6843 /* Variable offset is prohibited for unprivileged mode for 6844 * simplicity since it requires corresponding support in 6845 * Spectre masking for stack ALU. 6846 * See also retrieve_ptr_limit(). 6847 */ 6848 if (!env->bypass_spec_v1) { 6849 char tn_buf[48]; 6850 6851 tnum_strn(tn_buf, sizeof(tn_buf), reg->var_off); 6852 verbose(env, "R%d variable offset stack access prohibited for !root, var_off=%s\n", 6853 regno, tn_buf); 6854 return -EACCES; 6855 } 6856 /* Only initialized buffer on stack is allowed to be accessed 6857 * with variable offset. With uninitialized buffer it's hard to 6858 * guarantee that whole memory is marked as initialized on 6859 * helper return since specific bounds are unknown what may 6860 * cause uninitialized stack leaking. 6861 */ 6862 if (meta && meta->raw_mode) 6863 meta = NULL; 6864 6865 min_off = reg->smin_value + off; 6866 max_off = reg->smax_value + off; 6867 } 6868 6869 if (meta && meta->raw_mode) { 6870 /* Ensure we won't be overwriting dynptrs when simulating byte 6871 * by byte access in check_helper_call using meta.access_size. 6872 * This would be a problem if we have a helper in the future 6873 * which takes: 6874 * 6875 * helper(uninit_mem, len, dynptr) 6876 * 6877 * Now, uninint_mem may overlap with dynptr pointer. Hence, it 6878 * may end up writing to dynptr itself when touching memory from 6879 * arg 1. This can be relaxed on a case by case basis for known 6880 * safe cases, but reject due to the possibilitiy of aliasing by 6881 * default. 6882 */ 6883 for (i = min_off; i < max_off + access_size; i++) { 6884 int stack_off = -i - 1; 6885 6886 spi = bpf_get_spi(i); 6887 /* raw_mode may write past allocated_stack */ 6888 if (state->allocated_stack <= stack_off) 6889 continue; 6890 if (state->stack[spi].slot_type[stack_off % BPF_REG_SIZE] == STACK_DYNPTR) { 6891 verbose(env, "potential write to dynptr at off=%d disallowed\n", i); 6892 return -EACCES; 6893 } 6894 } 6895 meta->access_size = access_size; 6896 meta->regno = regno; 6897 return 0; 6898 } 6899 6900 for (i = min_off; i < max_off + access_size; i++) { 6901 u8 *stype; 6902 6903 slot = -i - 1; 6904 spi = slot / BPF_REG_SIZE; 6905 if (state->allocated_stack <= slot) { 6906 verbose(env, "allocated_stack too small\n"); 6907 return -EFAULT; 6908 } 6909 6910 stype = &state->stack[spi].slot_type[slot % BPF_REG_SIZE]; 6911 if (*stype == STACK_MISC) 6912 goto mark; 6913 if ((*stype == STACK_ZERO) || 6914 (*stype == STACK_INVALID && env->allow_uninit_stack)) { 6915 if (clobber) { 6916 /* helper can write anything into the stack */ 6917 *stype = STACK_MISC; 6918 } 6919 goto mark; 6920 } 6921 6922 if (bpf_is_spilled_reg(&state->stack[spi]) && 6923 (state->stack[spi].spilled_ptr.type == SCALAR_VALUE || 6924 env->allow_ptr_leaks)) { 6925 if (clobber) { 6926 __mark_reg_unknown(env, &state->stack[spi].spilled_ptr); 6927 for (j = 0; j < BPF_REG_SIZE; j++) 6928 scrub_spilled_slot(&state->stack[spi].slot_type[j]); 6929 } 6930 goto mark; 6931 } 6932 6933 if (*stype == STACK_POISON) { 6934 if (allow_poison) 6935 goto mark; 6936 verbose(env, "reading from stack R%d off %d+%d size %d, slot poisoned by dead code elimination\n", 6937 regno, min_off, i - min_off, access_size); 6938 } else if (tnum_is_const(reg->var_off)) { 6939 verbose(env, "invalid read from stack R%d off %d+%d size %d\n", 6940 regno, min_off, i - min_off, access_size); 6941 } else { 6942 char tn_buf[48]; 6943 6944 tnum_strn(tn_buf, sizeof(tn_buf), reg->var_off); 6945 verbose(env, "invalid read from stack R%d var_off %s+%d size %d\n", 6946 regno, tn_buf, i - min_off, access_size); 6947 } 6948 return -EACCES; 6949 mark: 6950 ; 6951 } 6952 return 0; 6953 } 6954 6955 static int check_helper_mem_access(struct bpf_verifier_env *env, int regno, 6956 int access_size, enum bpf_access_type access_type, 6957 bool zero_size_allowed, 6958 struct bpf_call_arg_meta *meta) 6959 { 6960 struct bpf_reg_state *regs = cur_regs(env), *reg = ®s[regno]; 6961 u32 *max_access; 6962 6963 switch (base_type(reg->type)) { 6964 case PTR_TO_PACKET: 6965 case PTR_TO_PACKET_META: 6966 return check_packet_access(env, regno, 0, access_size, 6967 zero_size_allowed); 6968 case PTR_TO_MAP_KEY: 6969 if (access_type == BPF_WRITE) { 6970 verbose(env, "R%d cannot write into %s\n", regno, 6971 reg_type_str(env, reg->type)); 6972 return -EACCES; 6973 } 6974 return check_mem_region_access(env, regno, 0, access_size, 6975 reg->map_ptr->key_size, false); 6976 case PTR_TO_MAP_VALUE: 6977 if (check_map_access_type(env, regno, 0, access_size, access_type)) 6978 return -EACCES; 6979 return check_map_access(env, regno, 0, access_size, 6980 zero_size_allowed, ACCESS_HELPER); 6981 case PTR_TO_MEM: 6982 if (type_is_rdonly_mem(reg->type)) { 6983 if (access_type == BPF_WRITE) { 6984 verbose(env, "R%d cannot write into %s\n", regno, 6985 reg_type_str(env, reg->type)); 6986 return -EACCES; 6987 } 6988 } 6989 return check_mem_region_access(env, regno, 0, 6990 access_size, reg->mem_size, 6991 zero_size_allowed); 6992 case PTR_TO_BUF: 6993 if (type_is_rdonly_mem(reg->type)) { 6994 if (access_type == BPF_WRITE) { 6995 verbose(env, "R%d cannot write into %s\n", regno, 6996 reg_type_str(env, reg->type)); 6997 return -EACCES; 6998 } 6999 7000 max_access = &env->prog->aux->max_rdonly_access; 7001 } else { 7002 max_access = &env->prog->aux->max_rdwr_access; 7003 } 7004 return check_buffer_access(env, reg, regno, 0, 7005 access_size, zero_size_allowed, 7006 max_access); 7007 case PTR_TO_STACK: 7008 return check_stack_range_initialized( 7009 env, 7010 regno, 0, access_size, 7011 zero_size_allowed, access_type, meta); 7012 case PTR_TO_BTF_ID: 7013 return check_ptr_to_btf_access(env, regs, regno, 0, 7014 access_size, BPF_READ, -1); 7015 case PTR_TO_CTX: 7016 /* Only permit reading or writing syscall context using helper calls. */ 7017 if (is_var_ctx_off_allowed(env->prog)) { 7018 int err = check_mem_region_access(env, regno, 0, access_size, U16_MAX, 7019 zero_size_allowed); 7020 if (err) 7021 return err; 7022 if (env->prog->aux->max_ctx_offset < reg->umax_value + access_size) 7023 env->prog->aux->max_ctx_offset = reg->umax_value + access_size; 7024 return 0; 7025 } 7026 fallthrough; 7027 default: /* scalar_value or invalid ptr */ 7028 /* Allow zero-byte read from NULL, regardless of pointer type */ 7029 if (zero_size_allowed && access_size == 0 && 7030 bpf_register_is_null(reg)) 7031 return 0; 7032 7033 verbose(env, "R%d type=%s ", regno, 7034 reg_type_str(env, reg->type)); 7035 verbose(env, "expected=%s\n", reg_type_str(env, PTR_TO_STACK)); 7036 return -EACCES; 7037 } 7038 } 7039 7040 /* verify arguments to helpers or kfuncs consisting of a pointer and an access 7041 * size. 7042 * 7043 * @regno is the register containing the access size. regno-1 is the register 7044 * containing the pointer. 7045 */ 7046 static int check_mem_size_reg(struct bpf_verifier_env *env, 7047 struct bpf_reg_state *reg, u32 regno, 7048 enum bpf_access_type access_type, 7049 bool zero_size_allowed, 7050 struct bpf_call_arg_meta *meta) 7051 { 7052 int err; 7053 7054 /* This is used to refine r0 return value bounds for helpers 7055 * that enforce this value as an upper bound on return values. 7056 * See do_refine_retval_range() for helpers that can refine 7057 * the return value. C type of helper is u32 so we pull register 7058 * bound from umax_value however, if negative verifier errors 7059 * out. Only upper bounds can be learned because retval is an 7060 * int type and negative retvals are allowed. 7061 */ 7062 meta->msize_max_value = reg->umax_value; 7063 7064 /* The register is SCALAR_VALUE; the access check happens using 7065 * its boundaries. For unprivileged variable accesses, disable 7066 * raw mode so that the program is required to initialize all 7067 * the memory that the helper could just partially fill up. 7068 */ 7069 if (!tnum_is_const(reg->var_off)) 7070 meta = NULL; 7071 7072 if (reg->smin_value < 0) { 7073 verbose(env, "R%d min value is negative, either use unsigned or 'var &= const'\n", 7074 regno); 7075 return -EACCES; 7076 } 7077 7078 if (reg->umin_value == 0 && !zero_size_allowed) { 7079 verbose(env, "R%d invalid zero-sized read: u64=[%lld,%lld]\n", 7080 regno, reg->umin_value, reg->umax_value); 7081 return -EACCES; 7082 } 7083 7084 if (reg->umax_value >= BPF_MAX_VAR_SIZ) { 7085 verbose(env, "R%d unbounded memory access, use 'var &= const' or 'if (var < const)'\n", 7086 regno); 7087 return -EACCES; 7088 } 7089 err = check_helper_mem_access(env, regno - 1, reg->umax_value, 7090 access_type, zero_size_allowed, meta); 7091 if (!err) 7092 err = mark_chain_precision(env, regno); 7093 return err; 7094 } 7095 7096 static int check_mem_reg(struct bpf_verifier_env *env, struct bpf_reg_state *reg, 7097 u32 regno, u32 mem_size) 7098 { 7099 bool may_be_null = type_may_be_null(reg->type); 7100 struct bpf_reg_state saved_reg; 7101 int err; 7102 7103 if (bpf_register_is_null(reg)) 7104 return 0; 7105 7106 /* Assuming that the register contains a value check if the memory 7107 * access is safe. Temporarily save and restore the register's state as 7108 * the conversion shouldn't be visible to a caller. 7109 */ 7110 if (may_be_null) { 7111 saved_reg = *reg; 7112 mark_ptr_not_null_reg(reg); 7113 } 7114 7115 int size = base_type(reg->type) == PTR_TO_STACK ? -(int)mem_size : mem_size; 7116 7117 err = check_helper_mem_access(env, regno, size, BPF_READ, true, NULL); 7118 err = err ?: check_helper_mem_access(env, regno, size, BPF_WRITE, true, NULL); 7119 7120 if (may_be_null) 7121 *reg = saved_reg; 7122 7123 return err; 7124 } 7125 7126 static int check_kfunc_mem_size_reg(struct bpf_verifier_env *env, struct bpf_reg_state *reg, 7127 u32 regno) 7128 { 7129 struct bpf_reg_state *mem_reg = &cur_regs(env)[regno - 1]; 7130 bool may_be_null = type_may_be_null(mem_reg->type); 7131 struct bpf_reg_state saved_reg; 7132 struct bpf_call_arg_meta meta; 7133 int err; 7134 7135 WARN_ON_ONCE(regno < BPF_REG_2 || regno > BPF_REG_5); 7136 7137 memset(&meta, 0, sizeof(meta)); 7138 7139 if (may_be_null) { 7140 saved_reg = *mem_reg; 7141 mark_ptr_not_null_reg(mem_reg); 7142 } 7143 7144 err = check_mem_size_reg(env, reg, regno, BPF_READ, true, &meta); 7145 err = err ?: check_mem_size_reg(env, reg, regno, BPF_WRITE, true, &meta); 7146 7147 if (may_be_null) 7148 *mem_reg = saved_reg; 7149 7150 return err; 7151 } 7152 7153 enum { 7154 PROCESS_SPIN_LOCK = (1 << 0), 7155 PROCESS_RES_LOCK = (1 << 1), 7156 PROCESS_LOCK_IRQ = (1 << 2), 7157 }; 7158 7159 /* Implementation details: 7160 * bpf_map_lookup returns PTR_TO_MAP_VALUE_OR_NULL. 7161 * bpf_obj_new returns PTR_TO_BTF_ID | MEM_ALLOC | PTR_MAYBE_NULL. 7162 * Two bpf_map_lookups (even with the same key) will have different reg->id. 7163 * Two separate bpf_obj_new will also have different reg->id. 7164 * For traditional PTR_TO_MAP_VALUE or PTR_TO_BTF_ID | MEM_ALLOC, the verifier 7165 * clears reg->id after value_or_null->value transition, since the verifier only 7166 * cares about the range of access to valid map value pointer and doesn't care 7167 * about actual address of the map element. 7168 * For maps with 'struct bpf_spin_lock' inside map value the verifier keeps 7169 * reg->id > 0 after value_or_null->value transition. By doing so 7170 * two bpf_map_lookups will be considered two different pointers that 7171 * point to different bpf_spin_locks. Likewise for pointers to allocated objects 7172 * returned from bpf_obj_new. 7173 * The verifier allows taking only one bpf_spin_lock at a time to avoid 7174 * dead-locks. 7175 * Since only one bpf_spin_lock is allowed the checks are simpler than 7176 * reg_is_refcounted() logic. The verifier needs to remember only 7177 * one spin_lock instead of array of acquired_refs. 7178 * env->cur_state->active_locks remembers which map value element or allocated 7179 * object got locked and clears it after bpf_spin_unlock. 7180 */ 7181 static int process_spin_lock(struct bpf_verifier_env *env, int regno, int flags) 7182 { 7183 bool is_lock = flags & PROCESS_SPIN_LOCK, is_res_lock = flags & PROCESS_RES_LOCK; 7184 const char *lock_str = is_res_lock ? "bpf_res_spin" : "bpf_spin"; 7185 struct bpf_reg_state *reg = reg_state(env, regno); 7186 struct bpf_verifier_state *cur = env->cur_state; 7187 bool is_const = tnum_is_const(reg->var_off); 7188 bool is_irq = flags & PROCESS_LOCK_IRQ; 7189 u64 val = reg->var_off.value; 7190 struct bpf_map *map = NULL; 7191 struct btf *btf = NULL; 7192 struct btf_record *rec; 7193 u32 spin_lock_off; 7194 int err; 7195 7196 if (!is_const) { 7197 verbose(env, 7198 "R%d doesn't have constant offset. %s_lock has to be at the constant offset\n", 7199 regno, lock_str); 7200 return -EINVAL; 7201 } 7202 if (reg->type == PTR_TO_MAP_VALUE) { 7203 map = reg->map_ptr; 7204 if (!map->btf) { 7205 verbose(env, 7206 "map '%s' has to have BTF in order to use %s_lock\n", 7207 map->name, lock_str); 7208 return -EINVAL; 7209 } 7210 } else { 7211 btf = reg->btf; 7212 } 7213 7214 rec = reg_btf_record(reg); 7215 if (!btf_record_has_field(rec, is_res_lock ? BPF_RES_SPIN_LOCK : BPF_SPIN_LOCK)) { 7216 verbose(env, "%s '%s' has no valid %s_lock\n", map ? "map" : "local", 7217 map ? map->name : "kptr", lock_str); 7218 return -EINVAL; 7219 } 7220 spin_lock_off = is_res_lock ? rec->res_spin_lock_off : rec->spin_lock_off; 7221 if (spin_lock_off != val) { 7222 verbose(env, "off %lld doesn't point to 'struct %s_lock' that is at %d\n", 7223 val, lock_str, spin_lock_off); 7224 return -EINVAL; 7225 } 7226 if (is_lock) { 7227 void *ptr; 7228 int type; 7229 7230 if (map) 7231 ptr = map; 7232 else 7233 ptr = btf; 7234 7235 if (!is_res_lock && cur->active_locks) { 7236 if (find_lock_state(env->cur_state, REF_TYPE_LOCK, 0, NULL)) { 7237 verbose(env, 7238 "Locking two bpf_spin_locks are not allowed\n"); 7239 return -EINVAL; 7240 } 7241 } else if (is_res_lock && cur->active_locks) { 7242 if (find_lock_state(env->cur_state, REF_TYPE_RES_LOCK | REF_TYPE_RES_LOCK_IRQ, reg->id, ptr)) { 7243 verbose(env, "Acquiring the same lock again, AA deadlock detected\n"); 7244 return -EINVAL; 7245 } 7246 } 7247 7248 if (is_res_lock && is_irq) 7249 type = REF_TYPE_RES_LOCK_IRQ; 7250 else if (is_res_lock) 7251 type = REF_TYPE_RES_LOCK; 7252 else 7253 type = REF_TYPE_LOCK; 7254 err = acquire_lock_state(env, env->insn_idx, type, reg->id, ptr); 7255 if (err < 0) { 7256 verbose(env, "Failed to acquire lock state\n"); 7257 return err; 7258 } 7259 } else { 7260 void *ptr; 7261 int type; 7262 7263 if (map) 7264 ptr = map; 7265 else 7266 ptr = btf; 7267 7268 if (!cur->active_locks) { 7269 verbose(env, "%s_unlock without taking a lock\n", lock_str); 7270 return -EINVAL; 7271 } 7272 7273 if (is_res_lock && is_irq) 7274 type = REF_TYPE_RES_LOCK_IRQ; 7275 else if (is_res_lock) 7276 type = REF_TYPE_RES_LOCK; 7277 else 7278 type = REF_TYPE_LOCK; 7279 if (!find_lock_state(cur, type, reg->id, ptr)) { 7280 verbose(env, "%s_unlock of different lock\n", lock_str); 7281 return -EINVAL; 7282 } 7283 if (reg->id != cur->active_lock_id || ptr != cur->active_lock_ptr) { 7284 verbose(env, "%s_unlock cannot be out of order\n", lock_str); 7285 return -EINVAL; 7286 } 7287 if (release_lock_state(cur, type, reg->id, ptr)) { 7288 verbose(env, "%s_unlock of different lock\n", lock_str); 7289 return -EINVAL; 7290 } 7291 7292 invalidate_non_owning_refs(env); 7293 } 7294 return 0; 7295 } 7296 7297 /* Check if @regno is a pointer to a specific field in a map value */ 7298 static int check_map_field_pointer(struct bpf_verifier_env *env, u32 regno, 7299 enum btf_field_type field_type, 7300 struct bpf_map_desc *map_desc) 7301 { 7302 struct bpf_reg_state *reg = reg_state(env, regno); 7303 bool is_const = tnum_is_const(reg->var_off); 7304 struct bpf_map *map = reg->map_ptr; 7305 u64 val = reg->var_off.value; 7306 const char *struct_name = btf_field_type_name(field_type); 7307 int field_off = -1; 7308 7309 if (!is_const) { 7310 verbose(env, 7311 "R%d doesn't have constant offset. %s has to be at the constant offset\n", 7312 regno, struct_name); 7313 return -EINVAL; 7314 } 7315 if (!map->btf) { 7316 verbose(env, "map '%s' has to have BTF in order to use %s\n", map->name, 7317 struct_name); 7318 return -EINVAL; 7319 } 7320 if (!btf_record_has_field(map->record, field_type)) { 7321 verbose(env, "map '%s' has no valid %s\n", map->name, struct_name); 7322 return -EINVAL; 7323 } 7324 switch (field_type) { 7325 case BPF_TIMER: 7326 field_off = map->record->timer_off; 7327 break; 7328 case BPF_TASK_WORK: 7329 field_off = map->record->task_work_off; 7330 break; 7331 case BPF_WORKQUEUE: 7332 field_off = map->record->wq_off; 7333 break; 7334 default: 7335 verifier_bug(env, "unsupported BTF field type: %s\n", struct_name); 7336 return -EINVAL; 7337 } 7338 if (field_off != val) { 7339 verbose(env, "off %lld doesn't point to 'struct %s' that is at %d\n", 7340 val, struct_name, field_off); 7341 return -EINVAL; 7342 } 7343 if (map_desc->ptr) { 7344 verifier_bug(env, "Two map pointers in a %s helper", struct_name); 7345 return -EFAULT; 7346 } 7347 map_desc->uid = reg->map_uid; 7348 map_desc->ptr = map; 7349 return 0; 7350 } 7351 7352 static int process_timer_func(struct bpf_verifier_env *env, int regno, 7353 struct bpf_map_desc *map) 7354 { 7355 if (IS_ENABLED(CONFIG_PREEMPT_RT)) { 7356 verbose(env, "bpf_timer cannot be used for PREEMPT_RT.\n"); 7357 return -EOPNOTSUPP; 7358 } 7359 return check_map_field_pointer(env, regno, BPF_TIMER, map); 7360 } 7361 7362 static int process_timer_helper(struct bpf_verifier_env *env, int regno, 7363 struct bpf_call_arg_meta *meta) 7364 { 7365 return process_timer_func(env, regno, &meta->map); 7366 } 7367 7368 static int process_timer_kfunc(struct bpf_verifier_env *env, int regno, 7369 struct bpf_kfunc_call_arg_meta *meta) 7370 { 7371 return process_timer_func(env, regno, &meta->map); 7372 } 7373 7374 static int process_kptr_func(struct bpf_verifier_env *env, int regno, 7375 struct bpf_call_arg_meta *meta) 7376 { 7377 struct bpf_reg_state *reg = reg_state(env, regno); 7378 struct btf_field *kptr_field; 7379 struct bpf_map *map_ptr; 7380 struct btf_record *rec; 7381 u32 kptr_off; 7382 7383 if (type_is_ptr_alloc_obj(reg->type)) { 7384 rec = reg_btf_record(reg); 7385 } else { /* PTR_TO_MAP_VALUE */ 7386 map_ptr = reg->map_ptr; 7387 if (!map_ptr->btf) { 7388 verbose(env, "map '%s' has to have BTF in order to use bpf_kptr_xchg\n", 7389 map_ptr->name); 7390 return -EINVAL; 7391 } 7392 rec = map_ptr->record; 7393 meta->map.ptr = map_ptr; 7394 } 7395 7396 if (!tnum_is_const(reg->var_off)) { 7397 verbose(env, 7398 "R%d doesn't have constant offset. kptr has to be at the constant offset\n", 7399 regno); 7400 return -EINVAL; 7401 } 7402 7403 if (!btf_record_has_field(rec, BPF_KPTR)) { 7404 verbose(env, "R%d has no valid kptr\n", regno); 7405 return -EINVAL; 7406 } 7407 7408 kptr_off = reg->var_off.value; 7409 kptr_field = btf_record_find(rec, kptr_off, BPF_KPTR); 7410 if (!kptr_field) { 7411 verbose(env, "off=%d doesn't point to kptr\n", kptr_off); 7412 return -EACCES; 7413 } 7414 if (kptr_field->type != BPF_KPTR_REF && kptr_field->type != BPF_KPTR_PERCPU) { 7415 verbose(env, "off=%d kptr isn't referenced kptr\n", kptr_off); 7416 return -EACCES; 7417 } 7418 meta->kptr_field = kptr_field; 7419 return 0; 7420 } 7421 7422 /* There are two register types representing a bpf_dynptr, one is PTR_TO_STACK 7423 * which points to a stack slot, and the other is CONST_PTR_TO_DYNPTR. 7424 * 7425 * In both cases we deal with the first 8 bytes, but need to mark the next 8 7426 * bytes as STACK_DYNPTR in case of PTR_TO_STACK. In case of 7427 * CONST_PTR_TO_DYNPTR, we are guaranteed to get the beginning of the object. 7428 * 7429 * Mutability of bpf_dynptr is at two levels, one is at the level of struct 7430 * bpf_dynptr itself, i.e. whether the helper is receiving a pointer to struct 7431 * bpf_dynptr or pointer to const struct bpf_dynptr. In the former case, it can 7432 * mutate the view of the dynptr and also possibly destroy it. In the latter 7433 * case, it cannot mutate the bpf_dynptr itself but it can still mutate the 7434 * memory that dynptr points to. 7435 * 7436 * The verifier will keep track both levels of mutation (bpf_dynptr's in 7437 * reg->type and the memory's in reg->dynptr.type), but there is no support for 7438 * readonly dynptr view yet, hence only the first case is tracked and checked. 7439 * 7440 * This is consistent with how C applies the const modifier to a struct object, 7441 * where the pointer itself inside bpf_dynptr becomes const but not what it 7442 * points to. 7443 * 7444 * Helpers which do not mutate the bpf_dynptr set MEM_RDONLY in their argument 7445 * type, and declare it as 'const struct bpf_dynptr *' in their prototype. 7446 */ 7447 static int process_dynptr_func(struct bpf_verifier_env *env, int regno, int insn_idx, 7448 enum bpf_arg_type arg_type, int clone_ref_obj_id) 7449 { 7450 struct bpf_reg_state *reg = reg_state(env, regno); 7451 int err; 7452 7453 if (reg->type != PTR_TO_STACK && reg->type != CONST_PTR_TO_DYNPTR) { 7454 verbose(env, 7455 "arg#%d expected pointer to stack or const struct bpf_dynptr\n", 7456 regno - 1); 7457 return -EINVAL; 7458 } 7459 7460 /* MEM_UNINIT and MEM_RDONLY are exclusive, when applied to an 7461 * ARG_PTR_TO_DYNPTR (or ARG_PTR_TO_DYNPTR | DYNPTR_TYPE_*): 7462 */ 7463 if ((arg_type & (MEM_UNINIT | MEM_RDONLY)) == (MEM_UNINIT | MEM_RDONLY)) { 7464 verifier_bug(env, "misconfigured dynptr helper type flags"); 7465 return -EFAULT; 7466 } 7467 7468 /* MEM_UNINIT - Points to memory that is an appropriate candidate for 7469 * constructing a mutable bpf_dynptr object. 7470 * 7471 * Currently, this is only possible with PTR_TO_STACK 7472 * pointing to a region of at least 16 bytes which doesn't 7473 * contain an existing bpf_dynptr. 7474 * 7475 * MEM_RDONLY - Points to a initialized bpf_dynptr that will not be 7476 * mutated or destroyed. However, the memory it points to 7477 * may be mutated. 7478 * 7479 * None - Points to a initialized dynptr that can be mutated and 7480 * destroyed, including mutation of the memory it points 7481 * to. 7482 */ 7483 if (arg_type & MEM_UNINIT) { 7484 int i; 7485 7486 if (!is_dynptr_reg_valid_uninit(env, reg)) { 7487 verbose(env, "Dynptr has to be an uninitialized dynptr\n"); 7488 return -EINVAL; 7489 } 7490 7491 /* we write BPF_DW bits (8 bytes) at a time */ 7492 for (i = 0; i < BPF_DYNPTR_SIZE; i += 8) { 7493 err = check_mem_access(env, insn_idx, regno, 7494 i, BPF_DW, BPF_WRITE, -1, false, false); 7495 if (err) 7496 return err; 7497 } 7498 7499 err = mark_stack_slots_dynptr(env, reg, arg_type, insn_idx, clone_ref_obj_id); 7500 } else /* MEM_RDONLY and None case from above */ { 7501 /* For the reg->type == PTR_TO_STACK case, bpf_dynptr is never const */ 7502 if (reg->type == CONST_PTR_TO_DYNPTR && !(arg_type & MEM_RDONLY)) { 7503 verbose(env, "cannot pass pointer to const bpf_dynptr, the helper mutates it\n"); 7504 return -EINVAL; 7505 } 7506 7507 if (!is_dynptr_reg_valid_init(env, reg)) { 7508 verbose(env, 7509 "Expected an initialized dynptr as arg #%d\n", 7510 regno - 1); 7511 return -EINVAL; 7512 } 7513 7514 /* Fold modifiers (in this case, MEM_RDONLY) when checking expected type */ 7515 if (!is_dynptr_type_expected(env, reg, arg_type & ~MEM_RDONLY)) { 7516 verbose(env, 7517 "Expected a dynptr of type %s as arg #%d\n", 7518 dynptr_type_str(arg_to_dynptr_type(arg_type)), regno - 1); 7519 return -EINVAL; 7520 } 7521 7522 err = mark_dynptr_read(env, reg); 7523 } 7524 return err; 7525 } 7526 7527 static u32 iter_ref_obj_id(struct bpf_verifier_env *env, struct bpf_reg_state *reg, int spi) 7528 { 7529 struct bpf_func_state *state = bpf_func(env, reg); 7530 7531 return state->stack[spi].spilled_ptr.ref_obj_id; 7532 } 7533 7534 static bool is_iter_kfunc(struct bpf_kfunc_call_arg_meta *meta) 7535 { 7536 return meta->kfunc_flags & (KF_ITER_NEW | KF_ITER_NEXT | KF_ITER_DESTROY); 7537 } 7538 7539 static bool is_iter_new_kfunc(struct bpf_kfunc_call_arg_meta *meta) 7540 { 7541 return meta->kfunc_flags & KF_ITER_NEW; 7542 } 7543 7544 7545 static bool is_iter_destroy_kfunc(struct bpf_kfunc_call_arg_meta *meta) 7546 { 7547 return meta->kfunc_flags & KF_ITER_DESTROY; 7548 } 7549 7550 static bool is_kfunc_arg_iter(struct bpf_kfunc_call_arg_meta *meta, int arg_idx, 7551 const struct btf_param *arg) 7552 { 7553 /* btf_check_iter_kfuncs() guarantees that first argument of any iter 7554 * kfunc is iter state pointer 7555 */ 7556 if (is_iter_kfunc(meta)) 7557 return arg_idx == 0; 7558 7559 /* iter passed as an argument to a generic kfunc */ 7560 return btf_param_match_suffix(meta->btf, arg, "__iter"); 7561 } 7562 7563 static int process_iter_arg(struct bpf_verifier_env *env, int regno, int insn_idx, 7564 struct bpf_kfunc_call_arg_meta *meta) 7565 { 7566 struct bpf_reg_state *reg = reg_state(env, regno); 7567 const struct btf_type *t; 7568 int spi, err, i, nr_slots, btf_id; 7569 7570 if (reg->type != PTR_TO_STACK) { 7571 verbose(env, "arg#%d expected pointer to an iterator on stack\n", regno - 1); 7572 return -EINVAL; 7573 } 7574 7575 /* For iter_{new,next,destroy} functions, btf_check_iter_kfuncs() 7576 * ensures struct convention, so we wouldn't need to do any BTF 7577 * validation here. But given iter state can be passed as a parameter 7578 * to any kfunc, if arg has "__iter" suffix, we need to be a bit more 7579 * conservative here. 7580 */ 7581 btf_id = btf_check_iter_arg(meta->btf, meta->func_proto, regno - 1); 7582 if (btf_id < 0) { 7583 verbose(env, "expected valid iter pointer as arg #%d\n", regno - 1); 7584 return -EINVAL; 7585 } 7586 t = btf_type_by_id(meta->btf, btf_id); 7587 nr_slots = t->size / BPF_REG_SIZE; 7588 7589 if (is_iter_new_kfunc(meta)) { 7590 /* bpf_iter_<type>_new() expects pointer to uninit iter state */ 7591 if (!is_iter_reg_valid_uninit(env, reg, nr_slots)) { 7592 verbose(env, "expected uninitialized iter_%s as arg #%d\n", 7593 iter_type_str(meta->btf, btf_id), regno - 1); 7594 return -EINVAL; 7595 } 7596 7597 for (i = 0; i < nr_slots * 8; i += BPF_REG_SIZE) { 7598 err = check_mem_access(env, insn_idx, regno, 7599 i, BPF_DW, BPF_WRITE, -1, false, false); 7600 if (err) 7601 return err; 7602 } 7603 7604 err = mark_stack_slots_iter(env, meta, reg, insn_idx, meta->btf, btf_id, nr_slots); 7605 if (err) 7606 return err; 7607 } else { 7608 /* iter_next() or iter_destroy(), as well as any kfunc 7609 * accepting iter argument, expect initialized iter state 7610 */ 7611 err = is_iter_reg_valid_init(env, reg, meta->btf, btf_id, nr_slots); 7612 switch (err) { 7613 case 0: 7614 break; 7615 case -EINVAL: 7616 verbose(env, "expected an initialized iter_%s as arg #%d\n", 7617 iter_type_str(meta->btf, btf_id), regno - 1); 7618 return err; 7619 case -EPROTO: 7620 verbose(env, "expected an RCU CS when using %s\n", meta->func_name); 7621 return err; 7622 default: 7623 return err; 7624 } 7625 7626 spi = iter_get_spi(env, reg, nr_slots); 7627 if (spi < 0) 7628 return spi; 7629 7630 err = mark_iter_read(env, reg, spi, nr_slots); 7631 if (err) 7632 return err; 7633 7634 /* remember meta->iter info for process_iter_next_call() */ 7635 meta->iter.spi = spi; 7636 meta->iter.frameno = reg->frameno; 7637 meta->ref_obj_id = iter_ref_obj_id(env, reg, spi); 7638 7639 if (is_iter_destroy_kfunc(meta)) { 7640 err = unmark_stack_slots_iter(env, reg, nr_slots); 7641 if (err) 7642 return err; 7643 } 7644 } 7645 7646 return 0; 7647 } 7648 7649 /* Look for a previous loop entry at insn_idx: nearest parent state 7650 * stopped at insn_idx with callsites matching those in cur->frame. 7651 */ 7652 static struct bpf_verifier_state *find_prev_entry(struct bpf_verifier_env *env, 7653 struct bpf_verifier_state *cur, 7654 int insn_idx) 7655 { 7656 struct bpf_verifier_state_list *sl; 7657 struct bpf_verifier_state *st; 7658 struct list_head *pos, *head; 7659 7660 /* Explored states are pushed in stack order, most recent states come first */ 7661 head = bpf_explored_state(env, insn_idx); 7662 list_for_each(pos, head) { 7663 sl = container_of(pos, struct bpf_verifier_state_list, node); 7664 /* If st->branches != 0 state is a part of current DFS verification path, 7665 * hence cur & st for a loop. 7666 */ 7667 st = &sl->state; 7668 if (st->insn_idx == insn_idx && st->branches && same_callsites(st, cur) && 7669 st->dfs_depth < cur->dfs_depth) 7670 return st; 7671 } 7672 7673 return NULL; 7674 } 7675 7676 /* 7677 * Check if scalar registers are exact for the purpose of not widening. 7678 * More lenient than regs_exact() 7679 */ 7680 static bool scalars_exact_for_widen(const struct bpf_reg_state *rold, 7681 const struct bpf_reg_state *rcur) 7682 { 7683 return !memcmp(rold, rcur, offsetof(struct bpf_reg_state, id)); 7684 } 7685 7686 static void maybe_widen_reg(struct bpf_verifier_env *env, 7687 struct bpf_reg_state *rold, struct bpf_reg_state *rcur) 7688 { 7689 if (rold->type != SCALAR_VALUE) 7690 return; 7691 if (rold->type != rcur->type) 7692 return; 7693 if (rold->precise || rcur->precise || scalars_exact_for_widen(rold, rcur)) 7694 return; 7695 __mark_reg_unknown(env, rcur); 7696 } 7697 7698 static int widen_imprecise_scalars(struct bpf_verifier_env *env, 7699 struct bpf_verifier_state *old, 7700 struct bpf_verifier_state *cur) 7701 { 7702 struct bpf_func_state *fold, *fcur; 7703 int i, fr, num_slots; 7704 7705 for (fr = old->curframe; fr >= 0; fr--) { 7706 fold = old->frame[fr]; 7707 fcur = cur->frame[fr]; 7708 7709 for (i = 0; i < MAX_BPF_REG; i++) 7710 maybe_widen_reg(env, 7711 &fold->regs[i], 7712 &fcur->regs[i]); 7713 7714 num_slots = min(fold->allocated_stack / BPF_REG_SIZE, 7715 fcur->allocated_stack / BPF_REG_SIZE); 7716 for (i = 0; i < num_slots; i++) { 7717 if (!bpf_is_spilled_reg(&fold->stack[i]) || 7718 !bpf_is_spilled_reg(&fcur->stack[i])) 7719 continue; 7720 7721 maybe_widen_reg(env, 7722 &fold->stack[i].spilled_ptr, 7723 &fcur->stack[i].spilled_ptr); 7724 } 7725 } 7726 return 0; 7727 } 7728 7729 static struct bpf_reg_state *get_iter_from_state(struct bpf_verifier_state *cur_st, 7730 struct bpf_kfunc_call_arg_meta *meta) 7731 { 7732 int iter_frameno = meta->iter.frameno; 7733 int iter_spi = meta->iter.spi; 7734 7735 return &cur_st->frame[iter_frameno]->stack[iter_spi].spilled_ptr; 7736 } 7737 7738 /* process_iter_next_call() is called when verifier gets to iterator's next 7739 * "method" (e.g., bpf_iter_num_next() for numbers iterator) call. We'll refer 7740 * to it as just "iter_next()" in comments below. 7741 * 7742 * BPF verifier relies on a crucial contract for any iter_next() 7743 * implementation: it should *eventually* return NULL, and once that happens 7744 * it should keep returning NULL. That is, once iterator exhausts elements to 7745 * iterate, it should never reset or spuriously return new elements. 7746 * 7747 * With the assumption of such contract, process_iter_next_call() simulates 7748 * a fork in the verifier state to validate loop logic correctness and safety 7749 * without having to simulate infinite amount of iterations. 7750 * 7751 * In current state, we first assume that iter_next() returned NULL and 7752 * iterator state is set to DRAINED (BPF_ITER_STATE_DRAINED). In such 7753 * conditions we should not form an infinite loop and should eventually reach 7754 * exit. 7755 * 7756 * Besides that, we also fork current state and enqueue it for later 7757 * verification. In a forked state we keep iterator state as ACTIVE 7758 * (BPF_ITER_STATE_ACTIVE) and assume non-NULL return from iter_next(). We 7759 * also bump iteration depth to prevent erroneous infinite loop detection 7760 * later on (see iter_active_depths_differ() comment for details). In this 7761 * state we assume that we'll eventually loop back to another iter_next() 7762 * calls (it could be in exactly same location or in some other instruction, 7763 * it doesn't matter, we don't make any unnecessary assumptions about this, 7764 * everything revolves around iterator state in a stack slot, not which 7765 * instruction is calling iter_next()). When that happens, we either will come 7766 * to iter_next() with equivalent state and can conclude that next iteration 7767 * will proceed in exactly the same way as we just verified, so it's safe to 7768 * assume that loop converges. If not, we'll go on another iteration 7769 * simulation with a different input state, until all possible starting states 7770 * are validated or we reach maximum number of instructions limit. 7771 * 7772 * This way, we will either exhaustively discover all possible input states 7773 * that iterator loop can start with and eventually will converge, or we'll 7774 * effectively regress into bounded loop simulation logic and either reach 7775 * maximum number of instructions if loop is not provably convergent, or there 7776 * is some statically known limit on number of iterations (e.g., if there is 7777 * an explicit `if n > 100 then break;` statement somewhere in the loop). 7778 * 7779 * Iteration convergence logic in is_state_visited() relies on exact 7780 * states comparison, which ignores read and precision marks. 7781 * This is necessary because read and precision marks are not finalized 7782 * while in the loop. Exact comparison might preclude convergence for 7783 * simple programs like below: 7784 * 7785 * i = 0; 7786 * while(iter_next(&it)) 7787 * i++; 7788 * 7789 * At each iteration step i++ would produce a new distinct state and 7790 * eventually instruction processing limit would be reached. 7791 * 7792 * To avoid such behavior speculatively forget (widen) range for 7793 * imprecise scalar registers, if those registers were not precise at the 7794 * end of the previous iteration and do not match exactly. 7795 * 7796 * This is a conservative heuristic that allows to verify wide range of programs, 7797 * however it precludes verification of programs that conjure an 7798 * imprecise value on the first loop iteration and use it as precise on a second. 7799 * For example, the following safe program would fail to verify: 7800 * 7801 * struct bpf_num_iter it; 7802 * int arr[10]; 7803 * int i = 0, a = 0; 7804 * bpf_iter_num_new(&it, 0, 10); 7805 * while (bpf_iter_num_next(&it)) { 7806 * if (a == 0) { 7807 * a = 1; 7808 * i = 7; // Because i changed verifier would forget 7809 * // it's range on second loop entry. 7810 * } else { 7811 * arr[i] = 42; // This would fail to verify. 7812 * } 7813 * } 7814 * bpf_iter_num_destroy(&it); 7815 */ 7816 static int process_iter_next_call(struct bpf_verifier_env *env, int insn_idx, 7817 struct bpf_kfunc_call_arg_meta *meta) 7818 { 7819 struct bpf_verifier_state *cur_st = env->cur_state, *queued_st, *prev_st; 7820 struct bpf_func_state *cur_fr = cur_st->frame[cur_st->curframe], *queued_fr; 7821 struct bpf_reg_state *cur_iter, *queued_iter; 7822 7823 BTF_TYPE_EMIT(struct bpf_iter); 7824 7825 cur_iter = get_iter_from_state(cur_st, meta); 7826 7827 if (cur_iter->iter.state != BPF_ITER_STATE_ACTIVE && 7828 cur_iter->iter.state != BPF_ITER_STATE_DRAINED) { 7829 verifier_bug(env, "unexpected iterator state %d (%s)", 7830 cur_iter->iter.state, iter_state_str(cur_iter->iter.state)); 7831 return -EFAULT; 7832 } 7833 7834 if (cur_iter->iter.state == BPF_ITER_STATE_ACTIVE) { 7835 /* Because iter_next() call is a checkpoint is_state_visitied() 7836 * should guarantee parent state with same call sites and insn_idx. 7837 */ 7838 if (!cur_st->parent || cur_st->parent->insn_idx != insn_idx || 7839 !same_callsites(cur_st->parent, cur_st)) { 7840 verifier_bug(env, "bad parent state for iter next call"); 7841 return -EFAULT; 7842 } 7843 /* Note cur_st->parent in the call below, it is necessary to skip 7844 * checkpoint created for cur_st by is_state_visited() 7845 * right at this instruction. 7846 */ 7847 prev_st = find_prev_entry(env, cur_st->parent, insn_idx); 7848 /* branch out active iter state */ 7849 queued_st = push_stack(env, insn_idx + 1, insn_idx, false); 7850 if (IS_ERR(queued_st)) 7851 return PTR_ERR(queued_st); 7852 7853 queued_iter = get_iter_from_state(queued_st, meta); 7854 queued_iter->iter.state = BPF_ITER_STATE_ACTIVE; 7855 queued_iter->iter.depth++; 7856 if (prev_st) 7857 widen_imprecise_scalars(env, prev_st, queued_st); 7858 7859 queued_fr = queued_st->frame[queued_st->curframe]; 7860 mark_ptr_not_null_reg(&queued_fr->regs[BPF_REG_0]); 7861 } 7862 7863 /* switch to DRAINED state, but keep the depth unchanged */ 7864 /* mark current iter state as drained and assume returned NULL */ 7865 cur_iter->iter.state = BPF_ITER_STATE_DRAINED; 7866 __mark_reg_const_zero(env, &cur_fr->regs[BPF_REG_0]); 7867 7868 return 0; 7869 } 7870 7871 static bool arg_type_is_mem_size(enum bpf_arg_type type) 7872 { 7873 return type == ARG_CONST_SIZE || 7874 type == ARG_CONST_SIZE_OR_ZERO; 7875 } 7876 7877 static bool arg_type_is_raw_mem(enum bpf_arg_type type) 7878 { 7879 return base_type(type) == ARG_PTR_TO_MEM && 7880 type & MEM_UNINIT; 7881 } 7882 7883 static bool arg_type_is_release(enum bpf_arg_type type) 7884 { 7885 return type & OBJ_RELEASE; 7886 } 7887 7888 static bool arg_type_is_dynptr(enum bpf_arg_type type) 7889 { 7890 return base_type(type) == ARG_PTR_TO_DYNPTR; 7891 } 7892 7893 static int resolve_map_arg_type(struct bpf_verifier_env *env, 7894 const struct bpf_call_arg_meta *meta, 7895 enum bpf_arg_type *arg_type) 7896 { 7897 if (!meta->map.ptr) { 7898 /* kernel subsystem misconfigured verifier */ 7899 verifier_bug(env, "invalid map_ptr to access map->type"); 7900 return -EFAULT; 7901 } 7902 7903 switch (meta->map.ptr->map_type) { 7904 case BPF_MAP_TYPE_SOCKMAP: 7905 case BPF_MAP_TYPE_SOCKHASH: 7906 if (*arg_type == ARG_PTR_TO_MAP_VALUE) { 7907 *arg_type = ARG_PTR_TO_BTF_ID_SOCK_COMMON; 7908 } else { 7909 verbose(env, "invalid arg_type for sockmap/sockhash\n"); 7910 return -EINVAL; 7911 } 7912 break; 7913 case BPF_MAP_TYPE_BLOOM_FILTER: 7914 if (meta->func_id == BPF_FUNC_map_peek_elem) 7915 *arg_type = ARG_PTR_TO_MAP_VALUE; 7916 break; 7917 default: 7918 break; 7919 } 7920 return 0; 7921 } 7922 7923 struct bpf_reg_types { 7924 const enum bpf_reg_type types[10]; 7925 u32 *btf_id; 7926 }; 7927 7928 static const struct bpf_reg_types sock_types = { 7929 .types = { 7930 PTR_TO_SOCK_COMMON, 7931 PTR_TO_SOCKET, 7932 PTR_TO_TCP_SOCK, 7933 PTR_TO_XDP_SOCK, 7934 }, 7935 }; 7936 7937 #ifdef CONFIG_NET 7938 static const struct bpf_reg_types btf_id_sock_common_types = { 7939 .types = { 7940 PTR_TO_SOCK_COMMON, 7941 PTR_TO_SOCKET, 7942 PTR_TO_TCP_SOCK, 7943 PTR_TO_XDP_SOCK, 7944 PTR_TO_BTF_ID, 7945 PTR_TO_BTF_ID | PTR_TRUSTED, 7946 }, 7947 .btf_id = &btf_sock_ids[BTF_SOCK_TYPE_SOCK_COMMON], 7948 }; 7949 #endif 7950 7951 static const struct bpf_reg_types mem_types = { 7952 .types = { 7953 PTR_TO_STACK, 7954 PTR_TO_PACKET, 7955 PTR_TO_PACKET_META, 7956 PTR_TO_MAP_KEY, 7957 PTR_TO_MAP_VALUE, 7958 PTR_TO_MEM, 7959 PTR_TO_MEM | MEM_RINGBUF, 7960 PTR_TO_BUF, 7961 PTR_TO_BTF_ID | PTR_TRUSTED, 7962 PTR_TO_CTX, 7963 }, 7964 }; 7965 7966 static const struct bpf_reg_types spin_lock_types = { 7967 .types = { 7968 PTR_TO_MAP_VALUE, 7969 PTR_TO_BTF_ID | MEM_ALLOC, 7970 } 7971 }; 7972 7973 static const struct bpf_reg_types fullsock_types = { .types = { PTR_TO_SOCKET } }; 7974 static const struct bpf_reg_types scalar_types = { .types = { SCALAR_VALUE } }; 7975 static const struct bpf_reg_types context_types = { .types = { PTR_TO_CTX } }; 7976 static const struct bpf_reg_types ringbuf_mem_types = { .types = { PTR_TO_MEM | MEM_RINGBUF } }; 7977 static const struct bpf_reg_types const_map_ptr_types = { .types = { CONST_PTR_TO_MAP } }; 7978 static const struct bpf_reg_types btf_ptr_types = { 7979 .types = { 7980 PTR_TO_BTF_ID, 7981 PTR_TO_BTF_ID | PTR_TRUSTED, 7982 PTR_TO_BTF_ID | MEM_RCU, 7983 }, 7984 }; 7985 static const struct bpf_reg_types percpu_btf_ptr_types = { 7986 .types = { 7987 PTR_TO_BTF_ID | MEM_PERCPU, 7988 PTR_TO_BTF_ID | MEM_PERCPU | MEM_RCU, 7989 PTR_TO_BTF_ID | MEM_PERCPU | PTR_TRUSTED, 7990 } 7991 }; 7992 static const struct bpf_reg_types func_ptr_types = { .types = { PTR_TO_FUNC } }; 7993 static const struct bpf_reg_types stack_ptr_types = { .types = { PTR_TO_STACK } }; 7994 static const struct bpf_reg_types const_str_ptr_types = { .types = { PTR_TO_MAP_VALUE } }; 7995 static const struct bpf_reg_types timer_types = { .types = { PTR_TO_MAP_VALUE } }; 7996 static const struct bpf_reg_types kptr_xchg_dest_types = { 7997 .types = { 7998 PTR_TO_MAP_VALUE, 7999 PTR_TO_BTF_ID | MEM_ALLOC, 8000 PTR_TO_BTF_ID | MEM_ALLOC | NON_OWN_REF, 8001 PTR_TO_BTF_ID | MEM_ALLOC | NON_OWN_REF | MEM_RCU, 8002 } 8003 }; 8004 static const struct bpf_reg_types dynptr_types = { 8005 .types = { 8006 PTR_TO_STACK, 8007 CONST_PTR_TO_DYNPTR, 8008 } 8009 }; 8010 8011 static const struct bpf_reg_types *compatible_reg_types[__BPF_ARG_TYPE_MAX] = { 8012 [ARG_PTR_TO_MAP_KEY] = &mem_types, 8013 [ARG_PTR_TO_MAP_VALUE] = &mem_types, 8014 [ARG_CONST_SIZE] = &scalar_types, 8015 [ARG_CONST_SIZE_OR_ZERO] = &scalar_types, 8016 [ARG_CONST_ALLOC_SIZE_OR_ZERO] = &scalar_types, 8017 [ARG_CONST_MAP_PTR] = &const_map_ptr_types, 8018 [ARG_PTR_TO_CTX] = &context_types, 8019 [ARG_PTR_TO_SOCK_COMMON] = &sock_types, 8020 #ifdef CONFIG_NET 8021 [ARG_PTR_TO_BTF_ID_SOCK_COMMON] = &btf_id_sock_common_types, 8022 #endif 8023 [ARG_PTR_TO_SOCKET] = &fullsock_types, 8024 [ARG_PTR_TO_BTF_ID] = &btf_ptr_types, 8025 [ARG_PTR_TO_SPIN_LOCK] = &spin_lock_types, 8026 [ARG_PTR_TO_MEM] = &mem_types, 8027 [ARG_PTR_TO_RINGBUF_MEM] = &ringbuf_mem_types, 8028 [ARG_PTR_TO_PERCPU_BTF_ID] = &percpu_btf_ptr_types, 8029 [ARG_PTR_TO_FUNC] = &func_ptr_types, 8030 [ARG_PTR_TO_STACK] = &stack_ptr_types, 8031 [ARG_PTR_TO_CONST_STR] = &const_str_ptr_types, 8032 [ARG_PTR_TO_TIMER] = &timer_types, 8033 [ARG_KPTR_XCHG_DEST] = &kptr_xchg_dest_types, 8034 [ARG_PTR_TO_DYNPTR] = &dynptr_types, 8035 }; 8036 8037 static int check_reg_type(struct bpf_verifier_env *env, u32 regno, 8038 enum bpf_arg_type arg_type, 8039 const u32 *arg_btf_id, 8040 struct bpf_call_arg_meta *meta) 8041 { 8042 struct bpf_reg_state *reg = reg_state(env, regno); 8043 enum bpf_reg_type expected, type = reg->type; 8044 const struct bpf_reg_types *compatible; 8045 int i, j, err; 8046 8047 compatible = compatible_reg_types[base_type(arg_type)]; 8048 if (!compatible) { 8049 verifier_bug(env, "unsupported arg type %d", arg_type); 8050 return -EFAULT; 8051 } 8052 8053 /* ARG_PTR_TO_MEM + RDONLY is compatible with PTR_TO_MEM and PTR_TO_MEM + RDONLY, 8054 * but ARG_PTR_TO_MEM is compatible only with PTR_TO_MEM and NOT with PTR_TO_MEM + RDONLY 8055 * 8056 * Same for MAYBE_NULL: 8057 * 8058 * ARG_PTR_TO_MEM + MAYBE_NULL is compatible with PTR_TO_MEM and PTR_TO_MEM + MAYBE_NULL, 8059 * but ARG_PTR_TO_MEM is compatible only with PTR_TO_MEM but NOT with PTR_TO_MEM + MAYBE_NULL 8060 * 8061 * ARG_PTR_TO_MEM is compatible with PTR_TO_MEM that is tagged with a dynptr type. 8062 * 8063 * Therefore we fold these flags depending on the arg_type before comparison. 8064 */ 8065 if (arg_type & MEM_RDONLY) 8066 type &= ~MEM_RDONLY; 8067 if (arg_type & PTR_MAYBE_NULL) 8068 type &= ~PTR_MAYBE_NULL; 8069 if (base_type(arg_type) == ARG_PTR_TO_MEM) 8070 type &= ~DYNPTR_TYPE_FLAG_MASK; 8071 8072 /* Local kptr types are allowed as the source argument of bpf_kptr_xchg */ 8073 if (meta->func_id == BPF_FUNC_kptr_xchg && type_is_alloc(type) && regno == BPF_REG_2) { 8074 type &= ~MEM_ALLOC; 8075 type &= ~MEM_PERCPU; 8076 } 8077 8078 for (i = 0; i < ARRAY_SIZE(compatible->types); i++) { 8079 expected = compatible->types[i]; 8080 if (expected == NOT_INIT) 8081 break; 8082 8083 if (type == expected) 8084 goto found; 8085 } 8086 8087 verbose(env, "R%d type=%s expected=", regno, reg_type_str(env, reg->type)); 8088 for (j = 0; j + 1 < i; j++) 8089 verbose(env, "%s, ", reg_type_str(env, compatible->types[j])); 8090 verbose(env, "%s\n", reg_type_str(env, compatible->types[j])); 8091 return -EACCES; 8092 8093 found: 8094 if (base_type(reg->type) != PTR_TO_BTF_ID) 8095 return 0; 8096 8097 if (compatible == &mem_types) { 8098 if (!(arg_type & MEM_RDONLY)) { 8099 verbose(env, 8100 "%s() may write into memory pointed by R%d type=%s\n", 8101 func_id_name(meta->func_id), 8102 regno, reg_type_str(env, reg->type)); 8103 return -EACCES; 8104 } 8105 return 0; 8106 } 8107 8108 switch ((int)reg->type) { 8109 case PTR_TO_BTF_ID: 8110 case PTR_TO_BTF_ID | PTR_TRUSTED: 8111 case PTR_TO_BTF_ID | PTR_TRUSTED | PTR_MAYBE_NULL: 8112 case PTR_TO_BTF_ID | MEM_RCU: 8113 case PTR_TO_BTF_ID | PTR_MAYBE_NULL: 8114 case PTR_TO_BTF_ID | PTR_MAYBE_NULL | MEM_RCU: 8115 { 8116 /* For bpf_sk_release, it needs to match against first member 8117 * 'struct sock_common', hence make an exception for it. This 8118 * allows bpf_sk_release to work for multiple socket types. 8119 */ 8120 bool strict_type_match = arg_type_is_release(arg_type) && 8121 meta->func_id != BPF_FUNC_sk_release; 8122 8123 if (type_may_be_null(reg->type) && 8124 (!type_may_be_null(arg_type) || arg_type_is_release(arg_type))) { 8125 verbose(env, "Possibly NULL pointer passed to helper arg%d\n", regno); 8126 return -EACCES; 8127 } 8128 8129 if (!arg_btf_id) { 8130 if (!compatible->btf_id) { 8131 verifier_bug(env, "missing arg compatible BTF ID"); 8132 return -EFAULT; 8133 } 8134 arg_btf_id = compatible->btf_id; 8135 } 8136 8137 if (meta->func_id == BPF_FUNC_kptr_xchg) { 8138 if (map_kptr_match_type(env, meta->kptr_field, reg, regno)) 8139 return -EACCES; 8140 } else { 8141 if (arg_btf_id == BPF_PTR_POISON) { 8142 verbose(env, "verifier internal error:"); 8143 verbose(env, "R%d has non-overwritten BPF_PTR_POISON type\n", 8144 regno); 8145 return -EACCES; 8146 } 8147 8148 err = __check_ptr_off_reg(env, reg, regno, true); 8149 if (err) 8150 return err; 8151 8152 if (!btf_struct_ids_match(&env->log, reg->btf, reg->btf_id, 8153 reg->var_off.value, btf_vmlinux, *arg_btf_id, 8154 strict_type_match)) { 8155 verbose(env, "R%d is of type %s but %s is expected\n", 8156 regno, btf_type_name(reg->btf, reg->btf_id), 8157 btf_type_name(btf_vmlinux, *arg_btf_id)); 8158 return -EACCES; 8159 } 8160 } 8161 break; 8162 } 8163 case PTR_TO_BTF_ID | MEM_ALLOC: 8164 case PTR_TO_BTF_ID | MEM_PERCPU | MEM_ALLOC: 8165 case PTR_TO_BTF_ID | MEM_ALLOC | NON_OWN_REF: 8166 case PTR_TO_BTF_ID | MEM_ALLOC | NON_OWN_REF | MEM_RCU: 8167 if (meta->func_id != BPF_FUNC_spin_lock && meta->func_id != BPF_FUNC_spin_unlock && 8168 meta->func_id != BPF_FUNC_kptr_xchg) { 8169 verifier_bug(env, "unimplemented handling of MEM_ALLOC"); 8170 return -EFAULT; 8171 } 8172 /* Check if local kptr in src arg matches kptr in dst arg */ 8173 if (meta->func_id == BPF_FUNC_kptr_xchg && regno == BPF_REG_2) { 8174 if (map_kptr_match_type(env, meta->kptr_field, reg, regno)) 8175 return -EACCES; 8176 } 8177 break; 8178 case PTR_TO_BTF_ID | MEM_PERCPU: 8179 case PTR_TO_BTF_ID | MEM_PERCPU | MEM_RCU: 8180 case PTR_TO_BTF_ID | MEM_PERCPU | PTR_TRUSTED: 8181 /* Handled by helper specific checks */ 8182 break; 8183 default: 8184 verifier_bug(env, "invalid PTR_TO_BTF_ID register for type match"); 8185 return -EFAULT; 8186 } 8187 return 0; 8188 } 8189 8190 static struct btf_field * 8191 reg_find_field_offset(const struct bpf_reg_state *reg, s32 off, u32 fields) 8192 { 8193 struct btf_field *field; 8194 struct btf_record *rec; 8195 8196 rec = reg_btf_record(reg); 8197 if (!rec) 8198 return NULL; 8199 8200 field = btf_record_find(rec, off, fields); 8201 if (!field) 8202 return NULL; 8203 8204 return field; 8205 } 8206 8207 static int check_func_arg_reg_off(struct bpf_verifier_env *env, 8208 const struct bpf_reg_state *reg, int regno, 8209 enum bpf_arg_type arg_type) 8210 { 8211 u32 type = reg->type; 8212 8213 /* When referenced register is passed to release function, its fixed 8214 * offset must be 0. 8215 * 8216 * We will check arg_type_is_release reg has ref_obj_id when storing 8217 * meta->release_regno. 8218 */ 8219 if (arg_type_is_release(arg_type)) { 8220 /* ARG_PTR_TO_DYNPTR with OBJ_RELEASE is a bit special, as it 8221 * may not directly point to the object being released, but to 8222 * dynptr pointing to such object, which might be at some offset 8223 * on the stack. In that case, we simply to fallback to the 8224 * default handling. 8225 */ 8226 if (arg_type_is_dynptr(arg_type) && type == PTR_TO_STACK) 8227 return 0; 8228 8229 /* Doing check_ptr_off_reg check for the offset will catch this 8230 * because fixed_off_ok is false, but checking here allows us 8231 * to give the user a better error message. 8232 */ 8233 if (!tnum_is_const(reg->var_off) || reg->var_off.value != 0) { 8234 verbose(env, "R%d must have zero offset when passed to release func or trusted arg to kfunc\n", 8235 regno); 8236 return -EINVAL; 8237 } 8238 } 8239 8240 switch (type) { 8241 /* Pointer types where both fixed and variable offset is explicitly allowed: */ 8242 case PTR_TO_STACK: 8243 case PTR_TO_PACKET: 8244 case PTR_TO_PACKET_META: 8245 case PTR_TO_MAP_KEY: 8246 case PTR_TO_MAP_VALUE: 8247 case PTR_TO_MEM: 8248 case PTR_TO_MEM | MEM_RDONLY: 8249 case PTR_TO_MEM | MEM_RINGBUF: 8250 case PTR_TO_BUF: 8251 case PTR_TO_BUF | MEM_RDONLY: 8252 case PTR_TO_ARENA: 8253 case SCALAR_VALUE: 8254 return 0; 8255 /* All the rest must be rejected, except PTR_TO_BTF_ID which allows 8256 * fixed offset. 8257 */ 8258 case PTR_TO_BTF_ID: 8259 case PTR_TO_BTF_ID | MEM_ALLOC: 8260 case PTR_TO_BTF_ID | PTR_TRUSTED: 8261 case PTR_TO_BTF_ID | MEM_RCU: 8262 case PTR_TO_BTF_ID | MEM_ALLOC | NON_OWN_REF: 8263 case PTR_TO_BTF_ID | MEM_ALLOC | NON_OWN_REF | MEM_RCU: 8264 /* When referenced PTR_TO_BTF_ID is passed to release function, 8265 * its fixed offset must be 0. In the other cases, fixed offset 8266 * can be non-zero. This was already checked above. So pass 8267 * fixed_off_ok as true to allow fixed offset for all other 8268 * cases. var_off always must be 0 for PTR_TO_BTF_ID, hence we 8269 * still need to do checks instead of returning. 8270 */ 8271 return __check_ptr_off_reg(env, reg, regno, true); 8272 case PTR_TO_CTX: 8273 /* 8274 * Allow fixed and variable offsets for syscall context, but 8275 * only when the argument is passed as memory, not ctx, 8276 * otherwise we may get modified ctx in tail called programs and 8277 * global subprogs (that may act as extension prog hooks). 8278 */ 8279 if (arg_type != ARG_PTR_TO_CTX && is_var_ctx_off_allowed(env->prog)) 8280 return 0; 8281 fallthrough; 8282 default: 8283 return __check_ptr_off_reg(env, reg, regno, false); 8284 } 8285 } 8286 8287 static struct bpf_reg_state *get_dynptr_arg_reg(struct bpf_verifier_env *env, 8288 const struct bpf_func_proto *fn, 8289 struct bpf_reg_state *regs) 8290 { 8291 struct bpf_reg_state *state = NULL; 8292 int i; 8293 8294 for (i = 0; i < MAX_BPF_FUNC_REG_ARGS; i++) 8295 if (arg_type_is_dynptr(fn->arg_type[i])) { 8296 if (state) { 8297 verbose(env, "verifier internal error: multiple dynptr args\n"); 8298 return NULL; 8299 } 8300 state = ®s[BPF_REG_1 + i]; 8301 } 8302 8303 if (!state) 8304 verbose(env, "verifier internal error: no dynptr arg found\n"); 8305 8306 return state; 8307 } 8308 8309 static int dynptr_id(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 8310 { 8311 struct bpf_func_state *state = bpf_func(env, reg); 8312 int spi; 8313 8314 if (reg->type == CONST_PTR_TO_DYNPTR) 8315 return reg->id; 8316 spi = dynptr_get_spi(env, reg); 8317 if (spi < 0) 8318 return spi; 8319 return state->stack[spi].spilled_ptr.id; 8320 } 8321 8322 static int dynptr_ref_obj_id(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 8323 { 8324 struct bpf_func_state *state = bpf_func(env, reg); 8325 int spi; 8326 8327 if (reg->type == CONST_PTR_TO_DYNPTR) 8328 return reg->ref_obj_id; 8329 spi = dynptr_get_spi(env, reg); 8330 if (spi < 0) 8331 return spi; 8332 return state->stack[spi].spilled_ptr.ref_obj_id; 8333 } 8334 8335 static enum bpf_dynptr_type dynptr_get_type(struct bpf_verifier_env *env, 8336 struct bpf_reg_state *reg) 8337 { 8338 struct bpf_func_state *state = bpf_func(env, reg); 8339 int spi; 8340 8341 if (reg->type == CONST_PTR_TO_DYNPTR) 8342 return reg->dynptr.type; 8343 8344 spi = bpf_get_spi(reg->var_off.value); 8345 if (spi < 0) { 8346 verbose(env, "verifier internal error: invalid spi when querying dynptr type\n"); 8347 return BPF_DYNPTR_TYPE_INVALID; 8348 } 8349 8350 return state->stack[spi].spilled_ptr.dynptr.type; 8351 } 8352 8353 static int check_reg_const_str(struct bpf_verifier_env *env, 8354 struct bpf_reg_state *reg, u32 regno) 8355 { 8356 struct bpf_map *map = reg->map_ptr; 8357 int err; 8358 int map_off; 8359 u64 map_addr; 8360 char *str_ptr; 8361 8362 if (reg->type != PTR_TO_MAP_VALUE) 8363 return -EINVAL; 8364 8365 if (map->map_type == BPF_MAP_TYPE_INSN_ARRAY) { 8366 verbose(env, "R%d points to insn_array map which cannot be used as const string\n", regno); 8367 return -EACCES; 8368 } 8369 8370 if (!bpf_map_is_rdonly(map)) { 8371 verbose(env, "R%d does not point to a readonly map'\n", regno); 8372 return -EACCES; 8373 } 8374 8375 if (!tnum_is_const(reg->var_off)) { 8376 verbose(env, "R%d is not a constant address'\n", regno); 8377 return -EACCES; 8378 } 8379 8380 if (!map->ops->map_direct_value_addr) { 8381 verbose(env, "no direct value access support for this map type\n"); 8382 return -EACCES; 8383 } 8384 8385 err = check_map_access(env, regno, 0, 8386 map->value_size - reg->var_off.value, false, 8387 ACCESS_HELPER); 8388 if (err) 8389 return err; 8390 8391 map_off = reg->var_off.value; 8392 err = map->ops->map_direct_value_addr(map, &map_addr, map_off); 8393 if (err) { 8394 verbose(env, "direct value access on string failed\n"); 8395 return err; 8396 } 8397 8398 str_ptr = (char *)(long)(map_addr); 8399 if (!strnchr(str_ptr + map_off, map->value_size - map_off, 0)) { 8400 verbose(env, "string is not zero-terminated\n"); 8401 return -EINVAL; 8402 } 8403 return 0; 8404 } 8405 8406 /* Returns constant key value in `value` if possible, else negative error */ 8407 static int get_constant_map_key(struct bpf_verifier_env *env, 8408 struct bpf_reg_state *key, 8409 u32 key_size, 8410 s64 *value) 8411 { 8412 struct bpf_func_state *state = bpf_func(env, key); 8413 struct bpf_reg_state *reg; 8414 int slot, spi, off; 8415 int spill_size = 0; 8416 int zero_size = 0; 8417 int stack_off; 8418 int i, err; 8419 u8 *stype; 8420 8421 if (!env->bpf_capable) 8422 return -EOPNOTSUPP; 8423 if (key->type != PTR_TO_STACK) 8424 return -EOPNOTSUPP; 8425 if (!tnum_is_const(key->var_off)) 8426 return -EOPNOTSUPP; 8427 8428 stack_off = key->var_off.value; 8429 slot = -stack_off - 1; 8430 spi = slot / BPF_REG_SIZE; 8431 off = slot % BPF_REG_SIZE; 8432 stype = state->stack[spi].slot_type; 8433 8434 /* First handle precisely tracked STACK_ZERO */ 8435 for (i = off; i >= 0 && stype[i] == STACK_ZERO; i--) 8436 zero_size++; 8437 if (zero_size >= key_size) { 8438 *value = 0; 8439 return 0; 8440 } 8441 8442 /* Check that stack contains a scalar spill of expected size */ 8443 if (!bpf_is_spilled_scalar_reg(&state->stack[spi])) 8444 return -EOPNOTSUPP; 8445 for (i = off; i >= 0 && stype[i] == STACK_SPILL; i--) 8446 spill_size++; 8447 if (spill_size != key_size) 8448 return -EOPNOTSUPP; 8449 8450 reg = &state->stack[spi].spilled_ptr; 8451 if (!tnum_is_const(reg->var_off)) 8452 /* Stack value not statically known */ 8453 return -EOPNOTSUPP; 8454 8455 /* We are relying on a constant value. So mark as precise 8456 * to prevent pruning on it. 8457 */ 8458 bpf_bt_set_frame_slot(&env->bt, key->frameno, spi); 8459 err = mark_chain_precision_batch(env, env->cur_state); 8460 if (err < 0) 8461 return err; 8462 8463 *value = reg->var_off.value; 8464 return 0; 8465 } 8466 8467 static bool can_elide_value_nullness(enum bpf_map_type type); 8468 8469 static int check_func_arg(struct bpf_verifier_env *env, u32 arg, 8470 struct bpf_call_arg_meta *meta, 8471 const struct bpf_func_proto *fn, 8472 int insn_idx) 8473 { 8474 u32 regno = BPF_REG_1 + arg; 8475 struct bpf_reg_state *reg = reg_state(env, regno); 8476 enum bpf_arg_type arg_type = fn->arg_type[arg]; 8477 enum bpf_reg_type type = reg->type; 8478 u32 *arg_btf_id = NULL; 8479 u32 key_size; 8480 int err = 0; 8481 8482 if (arg_type == ARG_DONTCARE) 8483 return 0; 8484 8485 err = check_reg_arg(env, regno, SRC_OP); 8486 if (err) 8487 return err; 8488 8489 if (arg_type == ARG_ANYTHING) { 8490 if (is_pointer_value(env, regno)) { 8491 verbose(env, "R%d leaks addr into helper function\n", 8492 regno); 8493 return -EACCES; 8494 } 8495 return 0; 8496 } 8497 8498 if (type_is_pkt_pointer(type) && 8499 !may_access_direct_pkt_data(env, meta, BPF_READ)) { 8500 verbose(env, "helper access to the packet is not allowed\n"); 8501 return -EACCES; 8502 } 8503 8504 if (base_type(arg_type) == ARG_PTR_TO_MAP_VALUE) { 8505 err = resolve_map_arg_type(env, meta, &arg_type); 8506 if (err) 8507 return err; 8508 } 8509 8510 if (bpf_register_is_null(reg) && type_may_be_null(arg_type)) 8511 /* A NULL register has a SCALAR_VALUE type, so skip 8512 * type checking. 8513 */ 8514 goto skip_type_check; 8515 8516 /* arg_btf_id and arg_size are in a union. */ 8517 if (base_type(arg_type) == ARG_PTR_TO_BTF_ID || 8518 base_type(arg_type) == ARG_PTR_TO_SPIN_LOCK) 8519 arg_btf_id = fn->arg_btf_id[arg]; 8520 8521 err = check_reg_type(env, regno, arg_type, arg_btf_id, meta); 8522 if (err) 8523 return err; 8524 8525 err = check_func_arg_reg_off(env, reg, regno, arg_type); 8526 if (err) 8527 return err; 8528 8529 skip_type_check: 8530 if (arg_type_is_release(arg_type)) { 8531 if (arg_type_is_dynptr(arg_type)) { 8532 struct bpf_func_state *state = bpf_func(env, reg); 8533 int spi; 8534 8535 /* Only dynptr created on stack can be released, thus 8536 * the get_spi and stack state checks for spilled_ptr 8537 * should only be done before process_dynptr_func for 8538 * PTR_TO_STACK. 8539 */ 8540 if (reg->type == PTR_TO_STACK) { 8541 spi = dynptr_get_spi(env, reg); 8542 if (spi < 0 || !state->stack[spi].spilled_ptr.ref_obj_id) { 8543 verbose(env, "arg %d is an unacquired reference\n", regno); 8544 return -EINVAL; 8545 } 8546 } else { 8547 verbose(env, "cannot release unowned const bpf_dynptr\n"); 8548 return -EINVAL; 8549 } 8550 } else if (!reg->ref_obj_id && !bpf_register_is_null(reg)) { 8551 verbose(env, "R%d must be referenced when passed to release function\n", 8552 regno); 8553 return -EINVAL; 8554 } 8555 if (meta->release_regno) { 8556 verifier_bug(env, "more than one release argument"); 8557 return -EFAULT; 8558 } 8559 meta->release_regno = regno; 8560 } 8561 8562 if (reg->ref_obj_id && base_type(arg_type) != ARG_KPTR_XCHG_DEST) { 8563 if (meta->ref_obj_id) { 8564 verbose(env, "more than one arg with ref_obj_id R%d %u %u", 8565 regno, reg->ref_obj_id, 8566 meta->ref_obj_id); 8567 return -EACCES; 8568 } 8569 meta->ref_obj_id = reg->ref_obj_id; 8570 } 8571 8572 switch (base_type(arg_type)) { 8573 case ARG_CONST_MAP_PTR: 8574 /* bpf_map_xxx(map_ptr) call: remember that map_ptr */ 8575 if (meta->map.ptr) { 8576 /* Use map_uid (which is unique id of inner map) to reject: 8577 * inner_map1 = bpf_map_lookup_elem(outer_map, key1) 8578 * inner_map2 = bpf_map_lookup_elem(outer_map, key2) 8579 * if (inner_map1 && inner_map2) { 8580 * timer = bpf_map_lookup_elem(inner_map1); 8581 * if (timer) 8582 * // mismatch would have been allowed 8583 * bpf_timer_init(timer, inner_map2); 8584 * } 8585 * 8586 * Comparing map_ptr is enough to distinguish normal and outer maps. 8587 */ 8588 if (meta->map.ptr != reg->map_ptr || 8589 meta->map.uid != reg->map_uid) { 8590 verbose(env, 8591 "timer pointer in R1 map_uid=%d doesn't match map pointer in R2 map_uid=%d\n", 8592 meta->map.uid, reg->map_uid); 8593 return -EINVAL; 8594 } 8595 } 8596 meta->map.ptr = reg->map_ptr; 8597 meta->map.uid = reg->map_uid; 8598 break; 8599 case ARG_PTR_TO_MAP_KEY: 8600 /* bpf_map_xxx(..., map_ptr, ..., key) call: 8601 * check that [key, key + map->key_size) are within 8602 * stack limits and initialized 8603 */ 8604 if (!meta->map.ptr) { 8605 /* in function declaration map_ptr must come before 8606 * map_key, so that it's verified and known before 8607 * we have to check map_key here. Otherwise it means 8608 * that kernel subsystem misconfigured verifier 8609 */ 8610 verifier_bug(env, "invalid map_ptr to access map->key"); 8611 return -EFAULT; 8612 } 8613 key_size = meta->map.ptr->key_size; 8614 err = check_helper_mem_access(env, regno, key_size, BPF_READ, false, NULL); 8615 if (err) 8616 return err; 8617 if (can_elide_value_nullness(meta->map.ptr->map_type)) { 8618 err = get_constant_map_key(env, reg, key_size, &meta->const_map_key); 8619 if (err < 0) { 8620 meta->const_map_key = -1; 8621 if (err == -EOPNOTSUPP) 8622 err = 0; 8623 else 8624 return err; 8625 } 8626 } 8627 break; 8628 case ARG_PTR_TO_MAP_VALUE: 8629 if (type_may_be_null(arg_type) && bpf_register_is_null(reg)) 8630 return 0; 8631 8632 /* bpf_map_xxx(..., map_ptr, ..., value) call: 8633 * check [value, value + map->value_size) validity 8634 */ 8635 if (!meta->map.ptr) { 8636 /* kernel subsystem misconfigured verifier */ 8637 verifier_bug(env, "invalid map_ptr to access map->value"); 8638 return -EFAULT; 8639 } 8640 meta->raw_mode = arg_type & MEM_UNINIT; 8641 err = check_helper_mem_access(env, regno, meta->map.ptr->value_size, 8642 arg_type & MEM_WRITE ? BPF_WRITE : BPF_READ, 8643 false, meta); 8644 break; 8645 case ARG_PTR_TO_PERCPU_BTF_ID: 8646 if (!reg->btf_id) { 8647 verbose(env, "Helper has invalid btf_id in R%d\n", regno); 8648 return -EACCES; 8649 } 8650 meta->ret_btf = reg->btf; 8651 meta->ret_btf_id = reg->btf_id; 8652 break; 8653 case ARG_PTR_TO_SPIN_LOCK: 8654 if (in_rbtree_lock_required_cb(env)) { 8655 verbose(env, "can't spin_{lock,unlock} in rbtree cb\n"); 8656 return -EACCES; 8657 } 8658 if (meta->func_id == BPF_FUNC_spin_lock) { 8659 err = process_spin_lock(env, regno, PROCESS_SPIN_LOCK); 8660 if (err) 8661 return err; 8662 } else if (meta->func_id == BPF_FUNC_spin_unlock) { 8663 err = process_spin_lock(env, regno, 0); 8664 if (err) 8665 return err; 8666 } else { 8667 verifier_bug(env, "spin lock arg on unexpected helper"); 8668 return -EFAULT; 8669 } 8670 break; 8671 case ARG_PTR_TO_TIMER: 8672 err = process_timer_helper(env, regno, meta); 8673 if (err) 8674 return err; 8675 break; 8676 case ARG_PTR_TO_FUNC: 8677 meta->subprogno = reg->subprogno; 8678 break; 8679 case ARG_PTR_TO_MEM: 8680 /* The access to this pointer is only checked when we hit the 8681 * next is_mem_size argument below. 8682 */ 8683 meta->raw_mode = arg_type & MEM_UNINIT; 8684 if (arg_type & MEM_FIXED_SIZE) { 8685 err = check_helper_mem_access(env, regno, fn->arg_size[arg], 8686 arg_type & MEM_WRITE ? BPF_WRITE : BPF_READ, 8687 false, meta); 8688 if (err) 8689 return err; 8690 if (arg_type & MEM_ALIGNED) 8691 err = check_ptr_alignment(env, reg, 0, fn->arg_size[arg], true); 8692 } 8693 break; 8694 case ARG_CONST_SIZE: 8695 err = check_mem_size_reg(env, reg, regno, 8696 fn->arg_type[arg - 1] & MEM_WRITE ? 8697 BPF_WRITE : BPF_READ, 8698 false, meta); 8699 break; 8700 case ARG_CONST_SIZE_OR_ZERO: 8701 err = check_mem_size_reg(env, reg, regno, 8702 fn->arg_type[arg - 1] & MEM_WRITE ? 8703 BPF_WRITE : BPF_READ, 8704 true, meta); 8705 break; 8706 case ARG_PTR_TO_DYNPTR: 8707 err = process_dynptr_func(env, regno, insn_idx, arg_type, 0); 8708 if (err) 8709 return err; 8710 break; 8711 case ARG_CONST_ALLOC_SIZE_OR_ZERO: 8712 if (!tnum_is_const(reg->var_off)) { 8713 verbose(env, "R%d is not a known constant'\n", 8714 regno); 8715 return -EACCES; 8716 } 8717 meta->mem_size = reg->var_off.value; 8718 err = mark_chain_precision(env, regno); 8719 if (err) 8720 return err; 8721 break; 8722 case ARG_PTR_TO_CONST_STR: 8723 { 8724 err = check_reg_const_str(env, reg, regno); 8725 if (err) 8726 return err; 8727 break; 8728 } 8729 case ARG_KPTR_XCHG_DEST: 8730 err = process_kptr_func(env, regno, meta); 8731 if (err) 8732 return err; 8733 break; 8734 } 8735 8736 return err; 8737 } 8738 8739 static bool may_update_sockmap(struct bpf_verifier_env *env, int func_id) 8740 { 8741 enum bpf_attach_type eatype = env->prog->expected_attach_type; 8742 enum bpf_prog_type type = resolve_prog_type(env->prog); 8743 8744 if (func_id != BPF_FUNC_map_update_elem && 8745 func_id != BPF_FUNC_map_delete_elem) 8746 return false; 8747 8748 /* It's not possible to get access to a locked struct sock in these 8749 * contexts, so updating is safe. 8750 */ 8751 switch (type) { 8752 case BPF_PROG_TYPE_TRACING: 8753 if (eatype == BPF_TRACE_ITER) 8754 return true; 8755 break; 8756 case BPF_PROG_TYPE_SOCK_OPS: 8757 /* map_update allowed only via dedicated helpers with event type checks */ 8758 if (func_id == BPF_FUNC_map_delete_elem) 8759 return true; 8760 break; 8761 case BPF_PROG_TYPE_SOCKET_FILTER: 8762 case BPF_PROG_TYPE_SCHED_CLS: 8763 case BPF_PROG_TYPE_SCHED_ACT: 8764 case BPF_PROG_TYPE_XDP: 8765 case BPF_PROG_TYPE_SK_REUSEPORT: 8766 case BPF_PROG_TYPE_FLOW_DISSECTOR: 8767 case BPF_PROG_TYPE_SK_LOOKUP: 8768 return true; 8769 default: 8770 break; 8771 } 8772 8773 verbose(env, "cannot update sockmap in this context\n"); 8774 return false; 8775 } 8776 8777 bool bpf_allow_tail_call_in_subprogs(struct bpf_verifier_env *env) 8778 { 8779 return env->prog->jit_requested && 8780 bpf_jit_supports_subprog_tailcalls(); 8781 } 8782 8783 static int check_map_func_compatibility(struct bpf_verifier_env *env, 8784 struct bpf_map *map, int func_id) 8785 { 8786 if (!map) 8787 return 0; 8788 8789 /* We need a two way check, first is from map perspective ... */ 8790 switch (map->map_type) { 8791 case BPF_MAP_TYPE_PROG_ARRAY: 8792 if (func_id != BPF_FUNC_tail_call) 8793 goto error; 8794 break; 8795 case BPF_MAP_TYPE_PERF_EVENT_ARRAY: 8796 if (func_id != BPF_FUNC_perf_event_read && 8797 func_id != BPF_FUNC_perf_event_output && 8798 func_id != BPF_FUNC_skb_output && 8799 func_id != BPF_FUNC_perf_event_read_value && 8800 func_id != BPF_FUNC_xdp_output) 8801 goto error; 8802 break; 8803 case BPF_MAP_TYPE_RINGBUF: 8804 if (func_id != BPF_FUNC_ringbuf_output && 8805 func_id != BPF_FUNC_ringbuf_reserve && 8806 func_id != BPF_FUNC_ringbuf_query && 8807 func_id != BPF_FUNC_ringbuf_reserve_dynptr && 8808 func_id != BPF_FUNC_ringbuf_submit_dynptr && 8809 func_id != BPF_FUNC_ringbuf_discard_dynptr) 8810 goto error; 8811 break; 8812 case BPF_MAP_TYPE_USER_RINGBUF: 8813 if (func_id != BPF_FUNC_user_ringbuf_drain) 8814 goto error; 8815 break; 8816 case BPF_MAP_TYPE_STACK_TRACE: 8817 if (func_id != BPF_FUNC_get_stackid) 8818 goto error; 8819 break; 8820 case BPF_MAP_TYPE_CGROUP_ARRAY: 8821 if (func_id != BPF_FUNC_skb_under_cgroup && 8822 func_id != BPF_FUNC_current_task_under_cgroup) 8823 goto error; 8824 break; 8825 case BPF_MAP_TYPE_CGROUP_STORAGE: 8826 case BPF_MAP_TYPE_PERCPU_CGROUP_STORAGE: 8827 if (func_id != BPF_FUNC_get_local_storage) 8828 goto error; 8829 break; 8830 case BPF_MAP_TYPE_DEVMAP: 8831 case BPF_MAP_TYPE_DEVMAP_HASH: 8832 if (func_id != BPF_FUNC_redirect_map && 8833 func_id != BPF_FUNC_map_lookup_elem) 8834 goto error; 8835 break; 8836 /* Restrict bpf side of cpumap and xskmap, open when use-cases 8837 * appear. 8838 */ 8839 case BPF_MAP_TYPE_CPUMAP: 8840 if (func_id != BPF_FUNC_redirect_map) 8841 goto error; 8842 break; 8843 case BPF_MAP_TYPE_XSKMAP: 8844 if (func_id != BPF_FUNC_redirect_map && 8845 func_id != BPF_FUNC_map_lookup_elem) 8846 goto error; 8847 break; 8848 case BPF_MAP_TYPE_ARRAY_OF_MAPS: 8849 case BPF_MAP_TYPE_HASH_OF_MAPS: 8850 if (func_id != BPF_FUNC_map_lookup_elem) 8851 goto error; 8852 break; 8853 case BPF_MAP_TYPE_SOCKMAP: 8854 if (func_id != BPF_FUNC_sk_redirect_map && 8855 func_id != BPF_FUNC_sock_map_update && 8856 func_id != BPF_FUNC_msg_redirect_map && 8857 func_id != BPF_FUNC_sk_select_reuseport && 8858 func_id != BPF_FUNC_map_lookup_elem && 8859 !may_update_sockmap(env, func_id)) 8860 goto error; 8861 break; 8862 case BPF_MAP_TYPE_SOCKHASH: 8863 if (func_id != BPF_FUNC_sk_redirect_hash && 8864 func_id != BPF_FUNC_sock_hash_update && 8865 func_id != BPF_FUNC_msg_redirect_hash && 8866 func_id != BPF_FUNC_sk_select_reuseport && 8867 func_id != BPF_FUNC_map_lookup_elem && 8868 !may_update_sockmap(env, func_id)) 8869 goto error; 8870 break; 8871 case BPF_MAP_TYPE_REUSEPORT_SOCKARRAY: 8872 if (func_id != BPF_FUNC_sk_select_reuseport) 8873 goto error; 8874 break; 8875 case BPF_MAP_TYPE_QUEUE: 8876 case BPF_MAP_TYPE_STACK: 8877 if (func_id != BPF_FUNC_map_peek_elem && 8878 func_id != BPF_FUNC_map_pop_elem && 8879 func_id != BPF_FUNC_map_push_elem) 8880 goto error; 8881 break; 8882 case BPF_MAP_TYPE_SK_STORAGE: 8883 if (func_id != BPF_FUNC_sk_storage_get && 8884 func_id != BPF_FUNC_sk_storage_delete && 8885 func_id != BPF_FUNC_kptr_xchg) 8886 goto error; 8887 break; 8888 case BPF_MAP_TYPE_INODE_STORAGE: 8889 if (func_id != BPF_FUNC_inode_storage_get && 8890 func_id != BPF_FUNC_inode_storage_delete && 8891 func_id != BPF_FUNC_kptr_xchg) 8892 goto error; 8893 break; 8894 case BPF_MAP_TYPE_TASK_STORAGE: 8895 if (func_id != BPF_FUNC_task_storage_get && 8896 func_id != BPF_FUNC_task_storage_delete && 8897 func_id != BPF_FUNC_kptr_xchg) 8898 goto error; 8899 break; 8900 case BPF_MAP_TYPE_CGRP_STORAGE: 8901 if (func_id != BPF_FUNC_cgrp_storage_get && 8902 func_id != BPF_FUNC_cgrp_storage_delete && 8903 func_id != BPF_FUNC_kptr_xchg) 8904 goto error; 8905 break; 8906 case BPF_MAP_TYPE_BLOOM_FILTER: 8907 if (func_id != BPF_FUNC_map_peek_elem && 8908 func_id != BPF_FUNC_map_push_elem) 8909 goto error; 8910 break; 8911 case BPF_MAP_TYPE_INSN_ARRAY: 8912 goto error; 8913 default: 8914 break; 8915 } 8916 8917 /* ... and second from the function itself. */ 8918 switch (func_id) { 8919 case BPF_FUNC_tail_call: 8920 if (map->map_type != BPF_MAP_TYPE_PROG_ARRAY) 8921 goto error; 8922 if (env->subprog_cnt > 1 && !bpf_allow_tail_call_in_subprogs(env)) { 8923 verbose(env, "mixing of tail_calls and bpf-to-bpf calls is not supported\n"); 8924 return -EINVAL; 8925 } 8926 break; 8927 case BPF_FUNC_perf_event_read: 8928 case BPF_FUNC_perf_event_output: 8929 case BPF_FUNC_perf_event_read_value: 8930 case BPF_FUNC_skb_output: 8931 case BPF_FUNC_xdp_output: 8932 if (map->map_type != BPF_MAP_TYPE_PERF_EVENT_ARRAY) 8933 goto error; 8934 break; 8935 case BPF_FUNC_ringbuf_output: 8936 case BPF_FUNC_ringbuf_reserve: 8937 case BPF_FUNC_ringbuf_query: 8938 case BPF_FUNC_ringbuf_reserve_dynptr: 8939 case BPF_FUNC_ringbuf_submit_dynptr: 8940 case BPF_FUNC_ringbuf_discard_dynptr: 8941 if (map->map_type != BPF_MAP_TYPE_RINGBUF) 8942 goto error; 8943 break; 8944 case BPF_FUNC_user_ringbuf_drain: 8945 if (map->map_type != BPF_MAP_TYPE_USER_RINGBUF) 8946 goto error; 8947 break; 8948 case BPF_FUNC_get_stackid: 8949 if (map->map_type != BPF_MAP_TYPE_STACK_TRACE) 8950 goto error; 8951 break; 8952 case BPF_FUNC_current_task_under_cgroup: 8953 case BPF_FUNC_skb_under_cgroup: 8954 if (map->map_type != BPF_MAP_TYPE_CGROUP_ARRAY) 8955 goto error; 8956 break; 8957 case BPF_FUNC_redirect_map: 8958 if (map->map_type != BPF_MAP_TYPE_DEVMAP && 8959 map->map_type != BPF_MAP_TYPE_DEVMAP_HASH && 8960 map->map_type != BPF_MAP_TYPE_CPUMAP && 8961 map->map_type != BPF_MAP_TYPE_XSKMAP) 8962 goto error; 8963 break; 8964 case BPF_FUNC_sk_redirect_map: 8965 case BPF_FUNC_msg_redirect_map: 8966 case BPF_FUNC_sock_map_update: 8967 if (map->map_type != BPF_MAP_TYPE_SOCKMAP) 8968 goto error; 8969 break; 8970 case BPF_FUNC_sk_redirect_hash: 8971 case BPF_FUNC_msg_redirect_hash: 8972 case BPF_FUNC_sock_hash_update: 8973 if (map->map_type != BPF_MAP_TYPE_SOCKHASH) 8974 goto error; 8975 break; 8976 case BPF_FUNC_get_local_storage: 8977 if (map->map_type != BPF_MAP_TYPE_CGROUP_STORAGE && 8978 map->map_type != BPF_MAP_TYPE_PERCPU_CGROUP_STORAGE) 8979 goto error; 8980 break; 8981 case BPF_FUNC_sk_select_reuseport: 8982 if (map->map_type != BPF_MAP_TYPE_REUSEPORT_SOCKARRAY && 8983 map->map_type != BPF_MAP_TYPE_SOCKMAP && 8984 map->map_type != BPF_MAP_TYPE_SOCKHASH) 8985 goto error; 8986 break; 8987 case BPF_FUNC_map_pop_elem: 8988 if (map->map_type != BPF_MAP_TYPE_QUEUE && 8989 map->map_type != BPF_MAP_TYPE_STACK) 8990 goto error; 8991 break; 8992 case BPF_FUNC_map_peek_elem: 8993 case BPF_FUNC_map_push_elem: 8994 if (map->map_type != BPF_MAP_TYPE_QUEUE && 8995 map->map_type != BPF_MAP_TYPE_STACK && 8996 map->map_type != BPF_MAP_TYPE_BLOOM_FILTER) 8997 goto error; 8998 break; 8999 case BPF_FUNC_map_lookup_percpu_elem: 9000 if (map->map_type != BPF_MAP_TYPE_PERCPU_ARRAY && 9001 map->map_type != BPF_MAP_TYPE_PERCPU_HASH && 9002 map->map_type != BPF_MAP_TYPE_LRU_PERCPU_HASH) 9003 goto error; 9004 break; 9005 case BPF_FUNC_sk_storage_get: 9006 case BPF_FUNC_sk_storage_delete: 9007 if (map->map_type != BPF_MAP_TYPE_SK_STORAGE) 9008 goto error; 9009 break; 9010 case BPF_FUNC_inode_storage_get: 9011 case BPF_FUNC_inode_storage_delete: 9012 if (map->map_type != BPF_MAP_TYPE_INODE_STORAGE) 9013 goto error; 9014 break; 9015 case BPF_FUNC_task_storage_get: 9016 case BPF_FUNC_task_storage_delete: 9017 if (map->map_type != BPF_MAP_TYPE_TASK_STORAGE) 9018 goto error; 9019 break; 9020 case BPF_FUNC_cgrp_storage_get: 9021 case BPF_FUNC_cgrp_storage_delete: 9022 if (map->map_type != BPF_MAP_TYPE_CGRP_STORAGE) 9023 goto error; 9024 break; 9025 default: 9026 break; 9027 } 9028 9029 return 0; 9030 error: 9031 verbose(env, "cannot pass map_type %d into func %s#%d\n", 9032 map->map_type, func_id_name(func_id), func_id); 9033 return -EINVAL; 9034 } 9035 9036 static bool check_raw_mode_ok(const struct bpf_func_proto *fn) 9037 { 9038 int count = 0; 9039 9040 if (arg_type_is_raw_mem(fn->arg1_type)) 9041 count++; 9042 if (arg_type_is_raw_mem(fn->arg2_type)) 9043 count++; 9044 if (arg_type_is_raw_mem(fn->arg3_type)) 9045 count++; 9046 if (arg_type_is_raw_mem(fn->arg4_type)) 9047 count++; 9048 if (arg_type_is_raw_mem(fn->arg5_type)) 9049 count++; 9050 9051 /* We only support one arg being in raw mode at the moment, 9052 * which is sufficient for the helper functions we have 9053 * right now. 9054 */ 9055 return count <= 1; 9056 } 9057 9058 static bool check_args_pair_invalid(const struct bpf_func_proto *fn, int arg) 9059 { 9060 bool is_fixed = fn->arg_type[arg] & MEM_FIXED_SIZE; 9061 bool has_size = fn->arg_size[arg] != 0; 9062 bool is_next_size = false; 9063 9064 if (arg + 1 < ARRAY_SIZE(fn->arg_type)) 9065 is_next_size = arg_type_is_mem_size(fn->arg_type[arg + 1]); 9066 9067 if (base_type(fn->arg_type[arg]) != ARG_PTR_TO_MEM) 9068 return is_next_size; 9069 9070 return has_size == is_next_size || is_next_size == is_fixed; 9071 } 9072 9073 static bool check_arg_pair_ok(const struct bpf_func_proto *fn) 9074 { 9075 /* bpf_xxx(..., buf, len) call will access 'len' 9076 * bytes from memory 'buf'. Both arg types need 9077 * to be paired, so make sure there's no buggy 9078 * helper function specification. 9079 */ 9080 if (arg_type_is_mem_size(fn->arg1_type) || 9081 check_args_pair_invalid(fn, 0) || 9082 check_args_pair_invalid(fn, 1) || 9083 check_args_pair_invalid(fn, 2) || 9084 check_args_pair_invalid(fn, 3) || 9085 check_args_pair_invalid(fn, 4)) 9086 return false; 9087 9088 return true; 9089 } 9090 9091 static bool check_btf_id_ok(const struct bpf_func_proto *fn) 9092 { 9093 int i; 9094 9095 for (i = 0; i < ARRAY_SIZE(fn->arg_type); i++) { 9096 if (base_type(fn->arg_type[i]) == ARG_PTR_TO_BTF_ID) 9097 return !!fn->arg_btf_id[i]; 9098 if (base_type(fn->arg_type[i]) == ARG_PTR_TO_SPIN_LOCK) 9099 return fn->arg_btf_id[i] == BPF_PTR_POISON; 9100 if (base_type(fn->arg_type[i]) != ARG_PTR_TO_BTF_ID && fn->arg_btf_id[i] && 9101 /* arg_btf_id and arg_size are in a union. */ 9102 (base_type(fn->arg_type[i]) != ARG_PTR_TO_MEM || 9103 !(fn->arg_type[i] & MEM_FIXED_SIZE))) 9104 return false; 9105 } 9106 9107 return true; 9108 } 9109 9110 static bool check_mem_arg_rw_flag_ok(const struct bpf_func_proto *fn) 9111 { 9112 int i; 9113 9114 for (i = 0; i < ARRAY_SIZE(fn->arg_type); i++) { 9115 enum bpf_arg_type arg_type = fn->arg_type[i]; 9116 9117 if (base_type(arg_type) != ARG_PTR_TO_MEM) 9118 continue; 9119 if (!(arg_type & (MEM_WRITE | MEM_RDONLY))) 9120 return false; 9121 } 9122 9123 return true; 9124 } 9125 9126 static int check_func_proto(const struct bpf_func_proto *fn) 9127 { 9128 return check_raw_mode_ok(fn) && 9129 check_arg_pair_ok(fn) && 9130 check_mem_arg_rw_flag_ok(fn) && 9131 check_btf_id_ok(fn) ? 0 : -EINVAL; 9132 } 9133 9134 /* Packet data might have moved, any old PTR_TO_PACKET[_META,_END] 9135 * are now invalid, so turn them into unknown SCALAR_VALUE. 9136 * 9137 * This also applies to dynptr slices belonging to skb and xdp dynptrs, 9138 * since these slices point to packet data. 9139 */ 9140 static void clear_all_pkt_pointers(struct bpf_verifier_env *env) 9141 { 9142 struct bpf_func_state *state; 9143 struct bpf_reg_state *reg; 9144 9145 bpf_for_each_reg_in_vstate(env->cur_state, state, reg, ({ 9146 if (reg_is_pkt_pointer_any(reg) || reg_is_dynptr_slice_pkt(reg)) 9147 mark_reg_invalid(env, reg); 9148 })); 9149 } 9150 9151 enum { 9152 AT_PKT_END = -1, 9153 BEYOND_PKT_END = -2, 9154 }; 9155 9156 static void mark_pkt_end(struct bpf_verifier_state *vstate, int regn, bool range_open) 9157 { 9158 struct bpf_func_state *state = vstate->frame[vstate->curframe]; 9159 struct bpf_reg_state *reg = &state->regs[regn]; 9160 9161 if (reg->type != PTR_TO_PACKET) 9162 /* PTR_TO_PACKET_META is not supported yet */ 9163 return; 9164 9165 /* The 'reg' is pkt > pkt_end or pkt >= pkt_end. 9166 * How far beyond pkt_end it goes is unknown. 9167 * if (!range_open) it's the case of pkt >= pkt_end 9168 * if (range_open) it's the case of pkt > pkt_end 9169 * hence this pointer is at least 1 byte bigger than pkt_end 9170 */ 9171 if (range_open) 9172 reg->range = BEYOND_PKT_END; 9173 else 9174 reg->range = AT_PKT_END; 9175 } 9176 9177 static int release_reference_nomark(struct bpf_verifier_state *state, int ref_obj_id) 9178 { 9179 int i; 9180 9181 for (i = 0; i < state->acquired_refs; i++) { 9182 if (state->refs[i].type != REF_TYPE_PTR) 9183 continue; 9184 if (state->refs[i].id == ref_obj_id) { 9185 release_reference_state(state, i); 9186 return 0; 9187 } 9188 } 9189 return -EINVAL; 9190 } 9191 9192 /* The pointer with the specified id has released its reference to kernel 9193 * resources. Identify all copies of the same pointer and clear the reference. 9194 * 9195 * This is the release function corresponding to acquire_reference(). Idempotent. 9196 */ 9197 static int release_reference(struct bpf_verifier_env *env, int ref_obj_id) 9198 { 9199 struct bpf_verifier_state *vstate = env->cur_state; 9200 struct bpf_func_state *state; 9201 struct bpf_reg_state *reg; 9202 int err; 9203 9204 err = release_reference_nomark(vstate, ref_obj_id); 9205 if (err) 9206 return err; 9207 9208 bpf_for_each_reg_in_vstate(vstate, state, reg, ({ 9209 if (reg->ref_obj_id == ref_obj_id) 9210 mark_reg_invalid(env, reg); 9211 })); 9212 9213 return 0; 9214 } 9215 9216 static void invalidate_non_owning_refs(struct bpf_verifier_env *env) 9217 { 9218 struct bpf_func_state *unused; 9219 struct bpf_reg_state *reg; 9220 9221 bpf_for_each_reg_in_vstate(env->cur_state, unused, reg, ({ 9222 if (type_is_non_owning_ref(reg->type)) 9223 mark_reg_invalid(env, reg); 9224 })); 9225 } 9226 9227 static void clear_caller_saved_regs(struct bpf_verifier_env *env, 9228 struct bpf_reg_state *regs) 9229 { 9230 int i; 9231 9232 /* after the call registers r0 - r5 were scratched */ 9233 for (i = 0; i < CALLER_SAVED_REGS; i++) { 9234 bpf_mark_reg_not_init(env, ®s[caller_saved[i]]); 9235 __check_reg_arg(env, regs, caller_saved[i], DST_OP_NO_MARK); 9236 } 9237 } 9238 9239 typedef int (*set_callee_state_fn)(struct bpf_verifier_env *env, 9240 struct bpf_func_state *caller, 9241 struct bpf_func_state *callee, 9242 int insn_idx); 9243 9244 static int set_callee_state(struct bpf_verifier_env *env, 9245 struct bpf_func_state *caller, 9246 struct bpf_func_state *callee, int insn_idx); 9247 9248 static int setup_func_entry(struct bpf_verifier_env *env, int subprog, int callsite, 9249 set_callee_state_fn set_callee_state_cb, 9250 struct bpf_verifier_state *state) 9251 { 9252 struct bpf_func_state *caller, *callee; 9253 int err; 9254 9255 if (state->curframe + 1 >= MAX_CALL_FRAMES) { 9256 verbose(env, "the call stack of %d frames is too deep\n", 9257 state->curframe + 2); 9258 return -E2BIG; 9259 } 9260 9261 if (state->frame[state->curframe + 1]) { 9262 verifier_bug(env, "Frame %d already allocated", state->curframe + 1); 9263 return -EFAULT; 9264 } 9265 9266 caller = state->frame[state->curframe]; 9267 callee = kzalloc_obj(*callee, GFP_KERNEL_ACCOUNT); 9268 if (!callee) 9269 return -ENOMEM; 9270 state->frame[state->curframe + 1] = callee; 9271 9272 /* callee cannot access r0, r6 - r9 for reading and has to write 9273 * into its own stack before reading from it. 9274 * callee can read/write into caller's stack 9275 */ 9276 init_func_state(env, callee, 9277 /* remember the callsite, it will be used by bpf_exit */ 9278 callsite, 9279 state->curframe + 1 /* frameno within this callchain */, 9280 subprog /* subprog number within this prog */); 9281 err = set_callee_state_cb(env, caller, callee, callsite); 9282 if (err) 9283 goto err_out; 9284 9285 /* only increment it after check_reg_arg() finished */ 9286 state->curframe++; 9287 9288 return 0; 9289 9290 err_out: 9291 free_func_state(callee); 9292 state->frame[state->curframe + 1] = NULL; 9293 return err; 9294 } 9295 9296 static int btf_check_func_arg_match(struct bpf_verifier_env *env, int subprog, 9297 const struct btf *btf, 9298 struct bpf_reg_state *regs) 9299 { 9300 struct bpf_subprog_info *sub = subprog_info(env, subprog); 9301 struct bpf_verifier_log *log = &env->log; 9302 u32 i; 9303 int ret; 9304 9305 ret = btf_prepare_func_args(env, subprog); 9306 if (ret) 9307 return ret; 9308 9309 /* check that BTF function arguments match actual types that the 9310 * verifier sees. 9311 */ 9312 for (i = 0; i < sub->arg_cnt; i++) { 9313 u32 regno = i + 1; 9314 struct bpf_reg_state *reg = ®s[regno]; 9315 struct bpf_subprog_arg_info *arg = &sub->args[i]; 9316 9317 if (arg->arg_type == ARG_ANYTHING) { 9318 if (reg->type != SCALAR_VALUE) { 9319 bpf_log(log, "R%d is not a scalar\n", regno); 9320 return -EINVAL; 9321 } 9322 } else if (arg->arg_type & PTR_UNTRUSTED) { 9323 /* 9324 * Anything is allowed for untrusted arguments, as these are 9325 * read-only and probe read instructions would protect against 9326 * invalid memory access. 9327 */ 9328 } else if (arg->arg_type == ARG_PTR_TO_CTX) { 9329 ret = check_func_arg_reg_off(env, reg, regno, ARG_PTR_TO_CTX); 9330 if (ret < 0) 9331 return ret; 9332 /* If function expects ctx type in BTF check that caller 9333 * is passing PTR_TO_CTX. 9334 */ 9335 if (reg->type != PTR_TO_CTX) { 9336 bpf_log(log, "arg#%d expects pointer to ctx\n", i); 9337 return -EINVAL; 9338 } 9339 } else if (base_type(arg->arg_type) == ARG_PTR_TO_MEM) { 9340 ret = check_func_arg_reg_off(env, reg, regno, ARG_DONTCARE); 9341 if (ret < 0) 9342 return ret; 9343 if (check_mem_reg(env, reg, regno, arg->mem_size)) 9344 return -EINVAL; 9345 if (!(arg->arg_type & PTR_MAYBE_NULL) && (reg->type & PTR_MAYBE_NULL)) { 9346 bpf_log(log, "arg#%d is expected to be non-NULL\n", i); 9347 return -EINVAL; 9348 } 9349 } else if (base_type(arg->arg_type) == ARG_PTR_TO_ARENA) { 9350 /* 9351 * Can pass any value and the kernel won't crash, but 9352 * only PTR_TO_ARENA or SCALAR make sense. Everything 9353 * else is a bug in the bpf program. Point it out to 9354 * the user at the verification time instead of 9355 * run-time debug nightmare. 9356 */ 9357 if (reg->type != PTR_TO_ARENA && reg->type != SCALAR_VALUE) { 9358 bpf_log(log, "R%d is not a pointer to arena or scalar.\n", regno); 9359 return -EINVAL; 9360 } 9361 } else if (arg->arg_type == (ARG_PTR_TO_DYNPTR | MEM_RDONLY)) { 9362 ret = check_func_arg_reg_off(env, reg, regno, ARG_PTR_TO_DYNPTR); 9363 if (ret) 9364 return ret; 9365 9366 ret = process_dynptr_func(env, regno, -1, arg->arg_type, 0); 9367 if (ret) 9368 return ret; 9369 } else if (base_type(arg->arg_type) == ARG_PTR_TO_BTF_ID) { 9370 struct bpf_call_arg_meta meta; 9371 int err; 9372 9373 if (bpf_register_is_null(reg) && type_may_be_null(arg->arg_type)) 9374 continue; 9375 9376 memset(&meta, 0, sizeof(meta)); /* leave func_id as zero */ 9377 err = check_reg_type(env, regno, arg->arg_type, &arg->btf_id, &meta); 9378 err = err ?: check_func_arg_reg_off(env, reg, regno, arg->arg_type); 9379 if (err) 9380 return err; 9381 } else { 9382 verifier_bug(env, "unrecognized arg#%d type %d", i, arg->arg_type); 9383 return -EFAULT; 9384 } 9385 } 9386 9387 return 0; 9388 } 9389 9390 /* Compare BTF of a function call with given bpf_reg_state. 9391 * Returns: 9392 * EFAULT - there is a verifier bug. Abort verification. 9393 * EINVAL - there is a type mismatch or BTF is not available. 9394 * 0 - BTF matches with what bpf_reg_state expects. 9395 * Only PTR_TO_CTX and SCALAR_VALUE states are recognized. 9396 */ 9397 static int btf_check_subprog_call(struct bpf_verifier_env *env, int subprog, 9398 struct bpf_reg_state *regs) 9399 { 9400 struct bpf_prog *prog = env->prog; 9401 struct btf *btf = prog->aux->btf; 9402 u32 btf_id; 9403 int err; 9404 9405 if (!prog->aux->func_info) 9406 return -EINVAL; 9407 9408 btf_id = prog->aux->func_info[subprog].type_id; 9409 if (!btf_id) 9410 return -EFAULT; 9411 9412 if (prog->aux->func_info_aux[subprog].unreliable) 9413 return -EINVAL; 9414 9415 err = btf_check_func_arg_match(env, subprog, btf, regs); 9416 /* Compiler optimizations can remove arguments from static functions 9417 * or mismatched type can be passed into a global function. 9418 * In such cases mark the function as unreliable from BTF point of view. 9419 */ 9420 if (err) 9421 prog->aux->func_info_aux[subprog].unreliable = true; 9422 return err; 9423 } 9424 9425 static int push_callback_call(struct bpf_verifier_env *env, struct bpf_insn *insn, 9426 int insn_idx, int subprog, 9427 set_callee_state_fn set_callee_state_cb) 9428 { 9429 struct bpf_verifier_state *state = env->cur_state, *callback_state; 9430 struct bpf_func_state *caller, *callee; 9431 int err; 9432 9433 caller = state->frame[state->curframe]; 9434 err = btf_check_subprog_call(env, subprog, caller->regs); 9435 if (err == -EFAULT) 9436 return err; 9437 9438 /* set_callee_state is used for direct subprog calls, but we are 9439 * interested in validating only BPF helpers that can call subprogs as 9440 * callbacks 9441 */ 9442 env->subprog_info[subprog].is_cb = true; 9443 if (bpf_pseudo_kfunc_call(insn) && 9444 !is_callback_calling_kfunc(insn->imm)) { 9445 verifier_bug(env, "kfunc %s#%d not marked as callback-calling", 9446 func_id_name(insn->imm), insn->imm); 9447 return -EFAULT; 9448 } else if (!bpf_pseudo_kfunc_call(insn) && 9449 !is_callback_calling_function(insn->imm)) { /* helper */ 9450 verifier_bug(env, "helper %s#%d not marked as callback-calling", 9451 func_id_name(insn->imm), insn->imm); 9452 return -EFAULT; 9453 } 9454 9455 if (bpf_is_async_callback_calling_insn(insn)) { 9456 struct bpf_verifier_state *async_cb; 9457 9458 /* there is no real recursion here. timer and workqueue callbacks are async */ 9459 env->subprog_info[subprog].is_async_cb = true; 9460 async_cb = push_async_cb(env, env->subprog_info[subprog].start, 9461 insn_idx, subprog, 9462 is_async_cb_sleepable(env, insn)); 9463 if (IS_ERR(async_cb)) 9464 return PTR_ERR(async_cb); 9465 callee = async_cb->frame[0]; 9466 callee->async_entry_cnt = caller->async_entry_cnt + 1; 9467 9468 /* Convert bpf_timer_set_callback() args into timer callback args */ 9469 err = set_callee_state_cb(env, caller, callee, insn_idx); 9470 if (err) 9471 return err; 9472 9473 return 0; 9474 } 9475 9476 /* for callback functions enqueue entry to callback and 9477 * proceed with next instruction within current frame. 9478 */ 9479 callback_state = push_stack(env, env->subprog_info[subprog].start, insn_idx, false); 9480 if (IS_ERR(callback_state)) 9481 return PTR_ERR(callback_state); 9482 9483 err = setup_func_entry(env, subprog, insn_idx, set_callee_state_cb, 9484 callback_state); 9485 if (err) 9486 return err; 9487 9488 callback_state->callback_unroll_depth++; 9489 callback_state->frame[callback_state->curframe - 1]->callback_depth++; 9490 caller->callback_depth = 0; 9491 return 0; 9492 } 9493 9494 static int check_func_call(struct bpf_verifier_env *env, struct bpf_insn *insn, 9495 int *insn_idx) 9496 { 9497 struct bpf_verifier_state *state = env->cur_state; 9498 struct bpf_func_state *caller; 9499 int err, subprog, target_insn; 9500 9501 target_insn = *insn_idx + insn->imm + 1; 9502 subprog = bpf_find_subprog(env, target_insn); 9503 if (verifier_bug_if(subprog < 0, env, "target of func call at insn %d is not a program", 9504 target_insn)) 9505 return -EFAULT; 9506 9507 caller = state->frame[state->curframe]; 9508 err = btf_check_subprog_call(env, subprog, caller->regs); 9509 if (err == -EFAULT) 9510 return err; 9511 if (bpf_subprog_is_global(env, subprog)) { 9512 const char *sub_name = subprog_name(env, subprog); 9513 9514 if (env->cur_state->active_locks) { 9515 verbose(env, "global function calls are not allowed while holding a lock,\n" 9516 "use static function instead\n"); 9517 return -EINVAL; 9518 } 9519 9520 if (env->subprog_info[subprog].might_sleep && !in_sleepable_context(env)) { 9521 verbose(env, "sleepable global function %s() called in %s\n", 9522 sub_name, non_sleepable_context_description(env)); 9523 return -EINVAL; 9524 } 9525 9526 if (err) { 9527 verbose(env, "Caller passes invalid args into func#%d ('%s')\n", 9528 subprog, sub_name); 9529 return err; 9530 } 9531 9532 if (env->log.level & BPF_LOG_LEVEL) 9533 verbose(env, "Func#%d ('%s') is global and assumed valid.\n", 9534 subprog, sub_name); 9535 if (env->subprog_info[subprog].changes_pkt_data) 9536 clear_all_pkt_pointers(env); 9537 /* mark global subprog for verifying after main prog */ 9538 subprog_aux(env, subprog)->called = true; 9539 clear_caller_saved_regs(env, caller->regs); 9540 9541 /* All non-void global functions return a 64-bit SCALAR_VALUE. */ 9542 if (!subprog_returns_void(env, subprog)) { 9543 mark_reg_unknown(env, caller->regs, BPF_REG_0); 9544 caller->regs[BPF_REG_0].subreg_def = DEF_NOT_SUBREG; 9545 } 9546 9547 /* continue with next insn after call */ 9548 return 0; 9549 } 9550 9551 /* for regular function entry setup new frame and continue 9552 * from that frame. 9553 */ 9554 err = setup_func_entry(env, subprog, *insn_idx, set_callee_state, state); 9555 if (err) 9556 return err; 9557 9558 clear_caller_saved_regs(env, caller->regs); 9559 9560 /* and go analyze first insn of the callee */ 9561 *insn_idx = env->subprog_info[subprog].start - 1; 9562 9563 if (env->log.level & BPF_LOG_LEVEL) { 9564 verbose(env, "caller:\n"); 9565 print_verifier_state(env, state, caller->frameno, true); 9566 verbose(env, "callee:\n"); 9567 print_verifier_state(env, state, state->curframe, true); 9568 } 9569 9570 return 0; 9571 } 9572 9573 int map_set_for_each_callback_args(struct bpf_verifier_env *env, 9574 struct bpf_func_state *caller, 9575 struct bpf_func_state *callee) 9576 { 9577 /* bpf_for_each_map_elem(struct bpf_map *map, void *callback_fn, 9578 * void *callback_ctx, u64 flags); 9579 * callback_fn(struct bpf_map *map, void *key, void *value, 9580 * void *callback_ctx); 9581 */ 9582 callee->regs[BPF_REG_1] = caller->regs[BPF_REG_1]; 9583 9584 callee->regs[BPF_REG_2].type = PTR_TO_MAP_KEY; 9585 __mark_reg_known_zero(&callee->regs[BPF_REG_2]); 9586 callee->regs[BPF_REG_2].map_ptr = caller->regs[BPF_REG_1].map_ptr; 9587 9588 callee->regs[BPF_REG_3].type = PTR_TO_MAP_VALUE; 9589 __mark_reg_known_zero(&callee->regs[BPF_REG_3]); 9590 callee->regs[BPF_REG_3].map_ptr = caller->regs[BPF_REG_1].map_ptr; 9591 9592 /* pointer to stack or null */ 9593 callee->regs[BPF_REG_4] = caller->regs[BPF_REG_3]; 9594 9595 /* unused */ 9596 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_5]); 9597 return 0; 9598 } 9599 9600 static int set_callee_state(struct bpf_verifier_env *env, 9601 struct bpf_func_state *caller, 9602 struct bpf_func_state *callee, int insn_idx) 9603 { 9604 int i; 9605 9606 /* copy r1 - r5 args that callee can access. The copy includes parent 9607 * pointers, which connects us up to the liveness chain 9608 */ 9609 for (i = BPF_REG_1; i <= BPF_REG_5; i++) 9610 callee->regs[i] = caller->regs[i]; 9611 return 0; 9612 } 9613 9614 static int set_map_elem_callback_state(struct bpf_verifier_env *env, 9615 struct bpf_func_state *caller, 9616 struct bpf_func_state *callee, 9617 int insn_idx) 9618 { 9619 struct bpf_insn_aux_data *insn_aux = &env->insn_aux_data[insn_idx]; 9620 struct bpf_map *map; 9621 int err; 9622 9623 /* valid map_ptr and poison value does not matter */ 9624 map = insn_aux->map_ptr_state.map_ptr; 9625 if (!map->ops->map_set_for_each_callback_args || 9626 !map->ops->map_for_each_callback) { 9627 verbose(env, "callback function not allowed for map\n"); 9628 return -ENOTSUPP; 9629 } 9630 9631 err = map->ops->map_set_for_each_callback_args(env, caller, callee); 9632 if (err) 9633 return err; 9634 9635 callee->in_callback_fn = true; 9636 callee->callback_ret_range = retval_range(0, 1); 9637 return 0; 9638 } 9639 9640 static int set_loop_callback_state(struct bpf_verifier_env *env, 9641 struct bpf_func_state *caller, 9642 struct bpf_func_state *callee, 9643 int insn_idx) 9644 { 9645 /* bpf_loop(u32 nr_loops, void *callback_fn, void *callback_ctx, 9646 * u64 flags); 9647 * callback_fn(u64 index, void *callback_ctx); 9648 */ 9649 callee->regs[BPF_REG_1].type = SCALAR_VALUE; 9650 callee->regs[BPF_REG_2] = caller->regs[BPF_REG_3]; 9651 9652 /* unused */ 9653 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_3]); 9654 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_4]); 9655 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_5]); 9656 9657 callee->in_callback_fn = true; 9658 callee->callback_ret_range = retval_range(0, 1); 9659 return 0; 9660 } 9661 9662 static int set_timer_callback_state(struct bpf_verifier_env *env, 9663 struct bpf_func_state *caller, 9664 struct bpf_func_state *callee, 9665 int insn_idx) 9666 { 9667 struct bpf_map *map_ptr = caller->regs[BPF_REG_1].map_ptr; 9668 9669 /* bpf_timer_set_callback(struct bpf_timer *timer, void *callback_fn); 9670 * callback_fn(struct bpf_map *map, void *key, void *value); 9671 */ 9672 callee->regs[BPF_REG_1].type = CONST_PTR_TO_MAP; 9673 __mark_reg_known_zero(&callee->regs[BPF_REG_1]); 9674 callee->regs[BPF_REG_1].map_ptr = map_ptr; 9675 9676 callee->regs[BPF_REG_2].type = PTR_TO_MAP_KEY; 9677 __mark_reg_known_zero(&callee->regs[BPF_REG_2]); 9678 callee->regs[BPF_REG_2].map_ptr = map_ptr; 9679 9680 callee->regs[BPF_REG_3].type = PTR_TO_MAP_VALUE; 9681 __mark_reg_known_zero(&callee->regs[BPF_REG_3]); 9682 callee->regs[BPF_REG_3].map_ptr = map_ptr; 9683 9684 /* unused */ 9685 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_4]); 9686 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_5]); 9687 callee->in_async_callback_fn = true; 9688 callee->callback_ret_range = retval_range(0, 0); 9689 return 0; 9690 } 9691 9692 static int set_find_vma_callback_state(struct bpf_verifier_env *env, 9693 struct bpf_func_state *caller, 9694 struct bpf_func_state *callee, 9695 int insn_idx) 9696 { 9697 /* bpf_find_vma(struct task_struct *task, u64 addr, 9698 * void *callback_fn, void *callback_ctx, u64 flags) 9699 * (callback_fn)(struct task_struct *task, 9700 * struct vm_area_struct *vma, void *callback_ctx); 9701 */ 9702 callee->regs[BPF_REG_1] = caller->regs[BPF_REG_1]; 9703 9704 callee->regs[BPF_REG_2].type = PTR_TO_BTF_ID; 9705 __mark_reg_known_zero(&callee->regs[BPF_REG_2]); 9706 callee->regs[BPF_REG_2].btf = btf_vmlinux; 9707 callee->regs[BPF_REG_2].btf_id = btf_tracing_ids[BTF_TRACING_TYPE_VMA]; 9708 9709 /* pointer to stack or null */ 9710 callee->regs[BPF_REG_3] = caller->regs[BPF_REG_4]; 9711 9712 /* unused */ 9713 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_4]); 9714 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_5]); 9715 callee->in_callback_fn = true; 9716 callee->callback_ret_range = retval_range(0, 1); 9717 return 0; 9718 } 9719 9720 static int set_user_ringbuf_callback_state(struct bpf_verifier_env *env, 9721 struct bpf_func_state *caller, 9722 struct bpf_func_state *callee, 9723 int insn_idx) 9724 { 9725 /* bpf_user_ringbuf_drain(struct bpf_map *map, void *callback_fn, void 9726 * callback_ctx, u64 flags); 9727 * callback_fn(const struct bpf_dynptr_t* dynptr, void *callback_ctx); 9728 */ 9729 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_0]); 9730 mark_dynptr_cb_reg(env, &callee->regs[BPF_REG_1], BPF_DYNPTR_TYPE_LOCAL); 9731 callee->regs[BPF_REG_2] = caller->regs[BPF_REG_3]; 9732 9733 /* unused */ 9734 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_3]); 9735 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_4]); 9736 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_5]); 9737 9738 callee->in_callback_fn = true; 9739 callee->callback_ret_range = retval_range(0, 1); 9740 return 0; 9741 } 9742 9743 static int set_rbtree_add_callback_state(struct bpf_verifier_env *env, 9744 struct bpf_func_state *caller, 9745 struct bpf_func_state *callee, 9746 int insn_idx) 9747 { 9748 /* void bpf_rbtree_add_impl(struct bpf_rb_root *root, struct bpf_rb_node *node, 9749 * bool (less)(struct bpf_rb_node *a, const struct bpf_rb_node *b)); 9750 * 9751 * 'struct bpf_rb_node *node' arg to bpf_rbtree_add_impl is the same PTR_TO_BTF_ID w/ offset 9752 * that 'less' callback args will be receiving. However, 'node' arg was release_reference'd 9753 * by this point, so look at 'root' 9754 */ 9755 struct btf_field *field; 9756 9757 field = reg_find_field_offset(&caller->regs[BPF_REG_1], 9758 caller->regs[BPF_REG_1].var_off.value, 9759 BPF_RB_ROOT); 9760 if (!field || !field->graph_root.value_btf_id) 9761 return -EFAULT; 9762 9763 mark_reg_graph_node(callee->regs, BPF_REG_1, &field->graph_root); 9764 ref_set_non_owning(env, &callee->regs[BPF_REG_1]); 9765 mark_reg_graph_node(callee->regs, BPF_REG_2, &field->graph_root); 9766 ref_set_non_owning(env, &callee->regs[BPF_REG_2]); 9767 9768 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_3]); 9769 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_4]); 9770 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_5]); 9771 callee->in_callback_fn = true; 9772 callee->callback_ret_range = retval_range(0, 1); 9773 return 0; 9774 } 9775 9776 static int set_task_work_schedule_callback_state(struct bpf_verifier_env *env, 9777 struct bpf_func_state *caller, 9778 struct bpf_func_state *callee, 9779 int insn_idx) 9780 { 9781 struct bpf_map *map_ptr = caller->regs[BPF_REG_3].map_ptr; 9782 9783 /* 9784 * callback_fn(struct bpf_map *map, void *key, void *value); 9785 */ 9786 callee->regs[BPF_REG_1].type = CONST_PTR_TO_MAP; 9787 __mark_reg_known_zero(&callee->regs[BPF_REG_1]); 9788 callee->regs[BPF_REG_1].map_ptr = map_ptr; 9789 9790 callee->regs[BPF_REG_2].type = PTR_TO_MAP_KEY; 9791 __mark_reg_known_zero(&callee->regs[BPF_REG_2]); 9792 callee->regs[BPF_REG_2].map_ptr = map_ptr; 9793 9794 callee->regs[BPF_REG_3].type = PTR_TO_MAP_VALUE; 9795 __mark_reg_known_zero(&callee->regs[BPF_REG_3]); 9796 callee->regs[BPF_REG_3].map_ptr = map_ptr; 9797 9798 /* unused */ 9799 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_4]); 9800 bpf_mark_reg_not_init(env, &callee->regs[BPF_REG_5]); 9801 callee->in_async_callback_fn = true; 9802 callee->callback_ret_range = retval_range(S32_MIN, S32_MAX); 9803 return 0; 9804 } 9805 9806 static bool is_rbtree_lock_required_kfunc(u32 btf_id); 9807 9808 /* Are we currently verifying the callback for a rbtree helper that must 9809 * be called with lock held? If so, no need to complain about unreleased 9810 * lock 9811 */ 9812 static bool in_rbtree_lock_required_cb(struct bpf_verifier_env *env) 9813 { 9814 struct bpf_verifier_state *state = env->cur_state; 9815 struct bpf_insn *insn = env->prog->insnsi; 9816 struct bpf_func_state *callee; 9817 int kfunc_btf_id; 9818 9819 if (!state->curframe) 9820 return false; 9821 9822 callee = state->frame[state->curframe]; 9823 9824 if (!callee->in_callback_fn) 9825 return false; 9826 9827 kfunc_btf_id = insn[callee->callsite].imm; 9828 return is_rbtree_lock_required_kfunc(kfunc_btf_id); 9829 } 9830 9831 static bool retval_range_within(struct bpf_retval_range range, const struct bpf_reg_state *reg) 9832 { 9833 if (range.return_32bit) 9834 return range.minval <= reg->s32_min_value && reg->s32_max_value <= range.maxval; 9835 else 9836 return range.minval <= reg->smin_value && reg->smax_value <= range.maxval; 9837 } 9838 9839 static int prepare_func_exit(struct bpf_verifier_env *env, int *insn_idx) 9840 { 9841 struct bpf_verifier_state *state = env->cur_state, *prev_st; 9842 struct bpf_func_state *caller, *callee; 9843 struct bpf_reg_state *r0; 9844 bool in_callback_fn; 9845 int err; 9846 9847 callee = state->frame[state->curframe]; 9848 r0 = &callee->regs[BPF_REG_0]; 9849 if (r0->type == PTR_TO_STACK) { 9850 /* technically it's ok to return caller's stack pointer 9851 * (or caller's caller's pointer) back to the caller, 9852 * since these pointers are valid. Only current stack 9853 * pointer will be invalid as soon as function exits, 9854 * but let's be conservative 9855 */ 9856 verbose(env, "cannot return stack pointer to the caller\n"); 9857 return -EINVAL; 9858 } 9859 9860 caller = state->frame[state->curframe - 1]; 9861 if (callee->in_callback_fn) { 9862 if (r0->type != SCALAR_VALUE) { 9863 verbose(env, "R0 not a scalar value\n"); 9864 return -EACCES; 9865 } 9866 9867 /* we are going to rely on register's precise value */ 9868 err = mark_chain_precision(env, BPF_REG_0); 9869 if (err) 9870 return err; 9871 9872 /* enforce R0 return value range, and bpf_callback_t returns 64bit */ 9873 if (!retval_range_within(callee->callback_ret_range, r0)) { 9874 verbose_invalid_scalar(env, r0, callee->callback_ret_range, 9875 "At callback return", "R0"); 9876 return -EINVAL; 9877 } 9878 if (!bpf_calls_callback(env, callee->callsite)) { 9879 verifier_bug(env, "in callback at %d, callsite %d !calls_callback", 9880 *insn_idx, callee->callsite); 9881 return -EFAULT; 9882 } 9883 } else { 9884 /* return to the caller whatever r0 had in the callee */ 9885 caller->regs[BPF_REG_0] = *r0; 9886 } 9887 9888 /* for callbacks like bpf_loop or bpf_for_each_map_elem go back to callsite, 9889 * there function call logic would reschedule callback visit. If iteration 9890 * converges is_state_visited() would prune that visit eventually. 9891 */ 9892 in_callback_fn = callee->in_callback_fn; 9893 if (in_callback_fn) 9894 *insn_idx = callee->callsite; 9895 else 9896 *insn_idx = callee->callsite + 1; 9897 9898 if (env->log.level & BPF_LOG_LEVEL) { 9899 verbose(env, "returning from callee:\n"); 9900 print_verifier_state(env, state, callee->frameno, true); 9901 verbose(env, "to caller at %d:\n", *insn_idx); 9902 print_verifier_state(env, state, caller->frameno, true); 9903 } 9904 /* clear everything in the callee. In case of exceptional exits using 9905 * bpf_throw, this will be done by copy_verifier_state for extra frames. */ 9906 free_func_state(callee); 9907 state->frame[state->curframe--] = NULL; 9908 9909 /* for callbacks widen imprecise scalars to make programs like below verify: 9910 * 9911 * struct ctx { int i; } 9912 * void cb(int idx, struct ctx *ctx) { ctx->i++; ... } 9913 * ... 9914 * struct ctx = { .i = 0; } 9915 * bpf_loop(100, cb, &ctx, 0); 9916 * 9917 * This is similar to what is done in process_iter_next_call() for open 9918 * coded iterators. 9919 */ 9920 prev_st = in_callback_fn ? find_prev_entry(env, state, *insn_idx) : NULL; 9921 if (prev_st) { 9922 err = widen_imprecise_scalars(env, prev_st, state); 9923 if (err) 9924 return err; 9925 } 9926 return 0; 9927 } 9928 9929 static int do_refine_retval_range(struct bpf_verifier_env *env, 9930 struct bpf_reg_state *regs, int ret_type, 9931 int func_id, 9932 struct bpf_call_arg_meta *meta) 9933 { 9934 struct bpf_reg_state *ret_reg = ®s[BPF_REG_0]; 9935 9936 if (ret_type != RET_INTEGER) 9937 return 0; 9938 9939 switch (func_id) { 9940 case BPF_FUNC_get_stack: 9941 case BPF_FUNC_get_task_stack: 9942 case BPF_FUNC_probe_read_str: 9943 case BPF_FUNC_probe_read_kernel_str: 9944 case BPF_FUNC_probe_read_user_str: 9945 ret_reg->smax_value = meta->msize_max_value; 9946 ret_reg->s32_max_value = meta->msize_max_value; 9947 ret_reg->smin_value = -MAX_ERRNO; 9948 ret_reg->s32_min_value = -MAX_ERRNO; 9949 reg_bounds_sync(ret_reg); 9950 break; 9951 case BPF_FUNC_get_smp_processor_id: 9952 ret_reg->umax_value = nr_cpu_ids - 1; 9953 ret_reg->u32_max_value = nr_cpu_ids - 1; 9954 ret_reg->smax_value = nr_cpu_ids - 1; 9955 ret_reg->s32_max_value = nr_cpu_ids - 1; 9956 ret_reg->umin_value = 0; 9957 ret_reg->u32_min_value = 0; 9958 ret_reg->smin_value = 0; 9959 ret_reg->s32_min_value = 0; 9960 reg_bounds_sync(ret_reg); 9961 break; 9962 } 9963 9964 return reg_bounds_sanity_check(env, ret_reg, "retval"); 9965 } 9966 9967 static int 9968 record_func_map(struct bpf_verifier_env *env, struct bpf_call_arg_meta *meta, 9969 int func_id, int insn_idx) 9970 { 9971 struct bpf_insn_aux_data *aux = &env->insn_aux_data[insn_idx]; 9972 struct bpf_map *map = meta->map.ptr; 9973 9974 if (func_id != BPF_FUNC_tail_call && 9975 func_id != BPF_FUNC_map_lookup_elem && 9976 func_id != BPF_FUNC_map_update_elem && 9977 func_id != BPF_FUNC_map_delete_elem && 9978 func_id != BPF_FUNC_map_push_elem && 9979 func_id != BPF_FUNC_map_pop_elem && 9980 func_id != BPF_FUNC_map_peek_elem && 9981 func_id != BPF_FUNC_for_each_map_elem && 9982 func_id != BPF_FUNC_redirect_map && 9983 func_id != BPF_FUNC_map_lookup_percpu_elem) 9984 return 0; 9985 9986 if (map == NULL) { 9987 verifier_bug(env, "expected map for helper call"); 9988 return -EFAULT; 9989 } 9990 9991 /* In case of read-only, some additional restrictions 9992 * need to be applied in order to prevent altering the 9993 * state of the map from program side. 9994 */ 9995 if ((map->map_flags & BPF_F_RDONLY_PROG) && 9996 (func_id == BPF_FUNC_map_delete_elem || 9997 func_id == BPF_FUNC_map_update_elem || 9998 func_id == BPF_FUNC_map_push_elem || 9999 func_id == BPF_FUNC_map_pop_elem)) { 10000 verbose(env, "write into map forbidden\n"); 10001 return -EACCES; 10002 } 10003 10004 if (!aux->map_ptr_state.map_ptr) 10005 bpf_map_ptr_store(aux, meta->map.ptr, 10006 !meta->map.ptr->bypass_spec_v1, false); 10007 else if (aux->map_ptr_state.map_ptr != meta->map.ptr) 10008 bpf_map_ptr_store(aux, meta->map.ptr, 10009 !meta->map.ptr->bypass_spec_v1, true); 10010 return 0; 10011 } 10012 10013 static int 10014 record_func_key(struct bpf_verifier_env *env, struct bpf_call_arg_meta *meta, 10015 int func_id, int insn_idx) 10016 { 10017 struct bpf_insn_aux_data *aux = &env->insn_aux_data[insn_idx]; 10018 struct bpf_reg_state *reg; 10019 struct bpf_map *map = meta->map.ptr; 10020 u64 val, max; 10021 int err; 10022 10023 if (func_id != BPF_FUNC_tail_call) 10024 return 0; 10025 if (!map || map->map_type != BPF_MAP_TYPE_PROG_ARRAY) { 10026 verbose(env, "expected prog array map for tail call"); 10027 return -EINVAL; 10028 } 10029 10030 reg = reg_state(env, BPF_REG_3); 10031 val = reg->var_off.value; 10032 max = map->max_entries; 10033 10034 if (!(is_reg_const(reg, false) && val < max)) { 10035 bpf_map_key_store(aux, BPF_MAP_KEY_POISON); 10036 return 0; 10037 } 10038 10039 err = mark_chain_precision(env, BPF_REG_3); 10040 if (err) 10041 return err; 10042 if (bpf_map_key_unseen(aux)) 10043 bpf_map_key_store(aux, val); 10044 else if (!bpf_map_key_poisoned(aux) && 10045 bpf_map_key_immediate(aux) != val) 10046 bpf_map_key_store(aux, BPF_MAP_KEY_POISON); 10047 return 0; 10048 } 10049 10050 static int check_reference_leak(struct bpf_verifier_env *env, bool exception_exit) 10051 { 10052 struct bpf_verifier_state *state = env->cur_state; 10053 enum bpf_prog_type type = resolve_prog_type(env->prog); 10054 struct bpf_reg_state *reg = reg_state(env, BPF_REG_0); 10055 bool refs_lingering = false; 10056 int i; 10057 10058 if (!exception_exit && cur_func(env)->frameno) 10059 return 0; 10060 10061 for (i = 0; i < state->acquired_refs; i++) { 10062 if (state->refs[i].type != REF_TYPE_PTR) 10063 continue; 10064 /* Allow struct_ops programs to return a referenced kptr back to 10065 * kernel. Type checks are performed later in check_return_code. 10066 */ 10067 if (type == BPF_PROG_TYPE_STRUCT_OPS && !exception_exit && 10068 reg->ref_obj_id == state->refs[i].id) 10069 continue; 10070 verbose(env, "Unreleased reference id=%d alloc_insn=%d\n", 10071 state->refs[i].id, state->refs[i].insn_idx); 10072 refs_lingering = true; 10073 } 10074 return refs_lingering ? -EINVAL : 0; 10075 } 10076 10077 static int check_resource_leak(struct bpf_verifier_env *env, bool exception_exit, bool check_lock, const char *prefix) 10078 { 10079 int err; 10080 10081 if (check_lock && env->cur_state->active_locks) { 10082 verbose(env, "%s cannot be used inside bpf_spin_lock-ed region\n", prefix); 10083 return -EINVAL; 10084 } 10085 10086 err = check_reference_leak(env, exception_exit); 10087 if (err) { 10088 verbose(env, "%s would lead to reference leak\n", prefix); 10089 return err; 10090 } 10091 10092 if (check_lock && env->cur_state->active_irq_id) { 10093 verbose(env, "%s cannot be used inside bpf_local_irq_save-ed region\n", prefix); 10094 return -EINVAL; 10095 } 10096 10097 if (check_lock && env->cur_state->active_rcu_locks) { 10098 verbose(env, "%s cannot be used inside bpf_rcu_read_lock-ed region\n", prefix); 10099 return -EINVAL; 10100 } 10101 10102 if (check_lock && env->cur_state->active_preempt_locks) { 10103 verbose(env, "%s cannot be used inside bpf_preempt_disable-ed region\n", prefix); 10104 return -EINVAL; 10105 } 10106 10107 return 0; 10108 } 10109 10110 static int check_bpf_snprintf_call(struct bpf_verifier_env *env, 10111 struct bpf_reg_state *regs) 10112 { 10113 struct bpf_reg_state *fmt_reg = ®s[BPF_REG_3]; 10114 struct bpf_reg_state *data_len_reg = ®s[BPF_REG_5]; 10115 struct bpf_map *fmt_map = fmt_reg->map_ptr; 10116 struct bpf_bprintf_data data = {}; 10117 int err, fmt_map_off, num_args; 10118 u64 fmt_addr; 10119 char *fmt; 10120 10121 /* data must be an array of u64 */ 10122 if (data_len_reg->var_off.value % 8) 10123 return -EINVAL; 10124 num_args = data_len_reg->var_off.value / 8; 10125 10126 /* fmt being ARG_PTR_TO_CONST_STR guarantees that var_off is const 10127 * and map_direct_value_addr is set. 10128 */ 10129 fmt_map_off = fmt_reg->var_off.value; 10130 err = fmt_map->ops->map_direct_value_addr(fmt_map, &fmt_addr, 10131 fmt_map_off); 10132 if (err) { 10133 verbose(env, "failed to retrieve map value address\n"); 10134 return -EFAULT; 10135 } 10136 fmt = (char *)(long)fmt_addr + fmt_map_off; 10137 10138 /* We are also guaranteed that fmt+fmt_map_off is NULL terminated, we 10139 * can focus on validating the format specifiers. 10140 */ 10141 err = bpf_bprintf_prepare(fmt, UINT_MAX, NULL, num_args, &data); 10142 if (err < 0) 10143 verbose(env, "Invalid format string\n"); 10144 10145 return err; 10146 } 10147 10148 static int check_get_func_ip(struct bpf_verifier_env *env) 10149 { 10150 enum bpf_prog_type type = resolve_prog_type(env->prog); 10151 int func_id = BPF_FUNC_get_func_ip; 10152 10153 if (type == BPF_PROG_TYPE_TRACING) { 10154 if (!bpf_prog_has_trampoline(env->prog)) { 10155 verbose(env, "func %s#%d supported only for fentry/fexit/fsession/fmod_ret programs\n", 10156 func_id_name(func_id), func_id); 10157 return -ENOTSUPP; 10158 } 10159 return 0; 10160 } else if (type == BPF_PROG_TYPE_KPROBE) { 10161 return 0; 10162 } 10163 10164 verbose(env, "func %s#%d not supported for program type %d\n", 10165 func_id_name(func_id), func_id, type); 10166 return -ENOTSUPP; 10167 } 10168 10169 static struct bpf_insn_aux_data *cur_aux(const struct bpf_verifier_env *env) 10170 { 10171 return &env->insn_aux_data[env->insn_idx]; 10172 } 10173 10174 static bool loop_flag_is_zero(struct bpf_verifier_env *env) 10175 { 10176 struct bpf_reg_state *reg = reg_state(env, BPF_REG_4); 10177 bool reg_is_null = bpf_register_is_null(reg); 10178 10179 if (reg_is_null) 10180 mark_chain_precision(env, BPF_REG_4); 10181 10182 return reg_is_null; 10183 } 10184 10185 static void update_loop_inline_state(struct bpf_verifier_env *env, u32 subprogno) 10186 { 10187 struct bpf_loop_inline_state *state = &cur_aux(env)->loop_inline_state; 10188 10189 if (!state->initialized) { 10190 state->initialized = 1; 10191 state->fit_for_inline = loop_flag_is_zero(env); 10192 state->callback_subprogno = subprogno; 10193 return; 10194 } 10195 10196 if (!state->fit_for_inline) 10197 return; 10198 10199 state->fit_for_inline = (loop_flag_is_zero(env) && 10200 state->callback_subprogno == subprogno); 10201 } 10202 10203 /* Returns whether or not the given map type can potentially elide 10204 * lookup return value nullness check. This is possible if the key 10205 * is statically known. 10206 */ 10207 static bool can_elide_value_nullness(enum bpf_map_type type) 10208 { 10209 switch (type) { 10210 case BPF_MAP_TYPE_ARRAY: 10211 case BPF_MAP_TYPE_PERCPU_ARRAY: 10212 return true; 10213 default: 10214 return false; 10215 } 10216 } 10217 10218 int bpf_get_helper_proto(struct bpf_verifier_env *env, int func_id, 10219 const struct bpf_func_proto **ptr) 10220 { 10221 if (func_id < 0 || func_id >= __BPF_FUNC_MAX_ID) 10222 return -ERANGE; 10223 10224 if (!env->ops->get_func_proto) 10225 return -EINVAL; 10226 10227 *ptr = env->ops->get_func_proto(func_id, env->prog); 10228 return *ptr && (*ptr)->func ? 0 : -EINVAL; 10229 } 10230 10231 /* Check if we're in a sleepable context. */ 10232 static inline bool in_sleepable_context(struct bpf_verifier_env *env) 10233 { 10234 return !env->cur_state->active_rcu_locks && 10235 !env->cur_state->active_preempt_locks && 10236 !env->cur_state->active_locks && 10237 !env->cur_state->active_irq_id && 10238 in_sleepable(env); 10239 } 10240 10241 static const char *non_sleepable_context_description(struct bpf_verifier_env *env) 10242 { 10243 if (env->cur_state->active_rcu_locks) 10244 return "rcu_read_lock region"; 10245 if (env->cur_state->active_preempt_locks) 10246 return "non-preemptible region"; 10247 if (env->cur_state->active_irq_id) 10248 return "IRQ-disabled region"; 10249 if (env->cur_state->active_locks) 10250 return "lock region"; 10251 return "non-sleepable prog"; 10252 } 10253 10254 static int check_helper_call(struct bpf_verifier_env *env, struct bpf_insn *insn, 10255 int *insn_idx_p) 10256 { 10257 enum bpf_prog_type prog_type = resolve_prog_type(env->prog); 10258 bool returns_cpu_specific_alloc_ptr = false; 10259 const struct bpf_func_proto *fn = NULL; 10260 enum bpf_return_type ret_type; 10261 enum bpf_type_flag ret_flag; 10262 struct bpf_reg_state *regs; 10263 struct bpf_call_arg_meta meta; 10264 int insn_idx = *insn_idx_p; 10265 bool changes_data; 10266 int i, err, func_id; 10267 10268 /* find function prototype */ 10269 func_id = insn->imm; 10270 err = bpf_get_helper_proto(env, insn->imm, &fn); 10271 if (err == -ERANGE) { 10272 verbose(env, "invalid func %s#%d\n", func_id_name(func_id), func_id); 10273 return -EINVAL; 10274 } 10275 10276 if (err) { 10277 verbose(env, "program of this type cannot use helper %s#%d\n", 10278 func_id_name(func_id), func_id); 10279 return err; 10280 } 10281 10282 /* eBPF programs must be GPL compatible to use GPL-ed functions */ 10283 if (!env->prog->gpl_compatible && fn->gpl_only) { 10284 verbose(env, "cannot call GPL-restricted function from non-GPL compatible program\n"); 10285 return -EINVAL; 10286 } 10287 10288 if (fn->allowed && !fn->allowed(env->prog)) { 10289 verbose(env, "helper call is not allowed in probe\n"); 10290 return -EINVAL; 10291 } 10292 10293 /* With LD_ABS/IND some JITs save/restore skb from r1. */ 10294 changes_data = bpf_helper_changes_pkt_data(func_id); 10295 if (changes_data && fn->arg1_type != ARG_PTR_TO_CTX) { 10296 verifier_bug(env, "func %s#%d: r1 != ctx", func_id_name(func_id), func_id); 10297 return -EFAULT; 10298 } 10299 10300 memset(&meta, 0, sizeof(meta)); 10301 meta.pkt_access = fn->pkt_access; 10302 10303 err = check_func_proto(fn); 10304 if (err) { 10305 verifier_bug(env, "incorrect func proto %s#%d", func_id_name(func_id), func_id); 10306 return err; 10307 } 10308 10309 if (fn->might_sleep && !in_sleepable_context(env)) { 10310 verbose(env, "sleepable helper %s#%d in %s\n", func_id_name(func_id), func_id, 10311 non_sleepable_context_description(env)); 10312 return -EINVAL; 10313 } 10314 10315 /* Track non-sleepable context for helpers. */ 10316 if (!in_sleepable_context(env)) 10317 env->insn_aux_data[insn_idx].non_sleepable = true; 10318 10319 meta.func_id = func_id; 10320 /* check args */ 10321 for (i = 0; i < MAX_BPF_FUNC_REG_ARGS; i++) { 10322 err = check_func_arg(env, i, &meta, fn, insn_idx); 10323 if (err) 10324 return err; 10325 } 10326 10327 err = record_func_map(env, &meta, func_id, insn_idx); 10328 if (err) 10329 return err; 10330 10331 err = record_func_key(env, &meta, func_id, insn_idx); 10332 if (err) 10333 return err; 10334 10335 /* Mark slots with STACK_MISC in case of raw mode, stack offset 10336 * is inferred from register state. 10337 */ 10338 for (i = 0; i < meta.access_size; i++) { 10339 err = check_mem_access(env, insn_idx, meta.regno, i, BPF_B, 10340 BPF_WRITE, -1, false, false); 10341 if (err) 10342 return err; 10343 } 10344 10345 regs = cur_regs(env); 10346 10347 if (meta.release_regno) { 10348 err = -EINVAL; 10349 if (arg_type_is_dynptr(fn->arg_type[meta.release_regno - BPF_REG_1])) { 10350 err = unmark_stack_slots_dynptr(env, ®s[meta.release_regno]); 10351 } else if (func_id == BPF_FUNC_kptr_xchg && meta.ref_obj_id) { 10352 u32 ref_obj_id = meta.ref_obj_id; 10353 bool in_rcu = in_rcu_cs(env); 10354 struct bpf_func_state *state; 10355 struct bpf_reg_state *reg; 10356 10357 err = release_reference_nomark(env->cur_state, ref_obj_id); 10358 if (!err) { 10359 bpf_for_each_reg_in_vstate(env->cur_state, state, reg, ({ 10360 if (reg->ref_obj_id == ref_obj_id) { 10361 if (in_rcu && (reg->type & MEM_ALLOC) && (reg->type & MEM_PERCPU)) { 10362 reg->ref_obj_id = 0; 10363 reg->type &= ~MEM_ALLOC; 10364 reg->type |= MEM_RCU; 10365 } else { 10366 mark_reg_invalid(env, reg); 10367 } 10368 } 10369 })); 10370 } 10371 } else if (meta.ref_obj_id) { 10372 err = release_reference(env, meta.ref_obj_id); 10373 } else if (bpf_register_is_null(®s[meta.release_regno])) { 10374 /* meta.ref_obj_id can only be 0 if register that is meant to be 10375 * released is NULL, which must be > R0. 10376 */ 10377 err = 0; 10378 } 10379 if (err) { 10380 verbose(env, "func %s#%d reference has not been acquired before\n", 10381 func_id_name(func_id), func_id); 10382 return err; 10383 } 10384 } 10385 10386 switch (func_id) { 10387 case BPF_FUNC_tail_call: 10388 err = check_resource_leak(env, false, true, "tail_call"); 10389 if (err) 10390 return err; 10391 break; 10392 case BPF_FUNC_get_local_storage: 10393 /* check that flags argument in get_local_storage(map, flags) is 0, 10394 * this is required because get_local_storage() can't return an error. 10395 */ 10396 if (!bpf_register_is_null(®s[BPF_REG_2])) { 10397 verbose(env, "get_local_storage() doesn't support non-zero flags\n"); 10398 return -EINVAL; 10399 } 10400 break; 10401 case BPF_FUNC_for_each_map_elem: 10402 err = push_callback_call(env, insn, insn_idx, meta.subprogno, 10403 set_map_elem_callback_state); 10404 break; 10405 case BPF_FUNC_timer_set_callback: 10406 err = push_callback_call(env, insn, insn_idx, meta.subprogno, 10407 set_timer_callback_state); 10408 break; 10409 case BPF_FUNC_find_vma: 10410 err = push_callback_call(env, insn, insn_idx, meta.subprogno, 10411 set_find_vma_callback_state); 10412 break; 10413 case BPF_FUNC_snprintf: 10414 err = check_bpf_snprintf_call(env, regs); 10415 break; 10416 case BPF_FUNC_loop: 10417 update_loop_inline_state(env, meta.subprogno); 10418 /* Verifier relies on R1 value to determine if bpf_loop() iteration 10419 * is finished, thus mark it precise. 10420 */ 10421 err = mark_chain_precision(env, BPF_REG_1); 10422 if (err) 10423 return err; 10424 if (cur_func(env)->callback_depth < regs[BPF_REG_1].umax_value) { 10425 err = push_callback_call(env, insn, insn_idx, meta.subprogno, 10426 set_loop_callback_state); 10427 } else { 10428 cur_func(env)->callback_depth = 0; 10429 if (env->log.level & BPF_LOG_LEVEL2) 10430 verbose(env, "frame%d bpf_loop iteration limit reached\n", 10431 env->cur_state->curframe); 10432 } 10433 break; 10434 case BPF_FUNC_dynptr_from_mem: 10435 if (regs[BPF_REG_1].type != PTR_TO_MAP_VALUE) { 10436 verbose(env, "Unsupported reg type %s for bpf_dynptr_from_mem data\n", 10437 reg_type_str(env, regs[BPF_REG_1].type)); 10438 return -EACCES; 10439 } 10440 break; 10441 case BPF_FUNC_set_retval: 10442 if (prog_type == BPF_PROG_TYPE_LSM && 10443 env->prog->expected_attach_type == BPF_LSM_CGROUP) { 10444 if (!env->prog->aux->attach_func_proto->type) { 10445 /* Make sure programs that attach to void 10446 * hooks don't try to modify return value. 10447 */ 10448 verbose(env, "BPF_LSM_CGROUP that attach to void LSM hooks can't modify return value!\n"); 10449 return -EINVAL; 10450 } 10451 } 10452 break; 10453 case BPF_FUNC_dynptr_data: 10454 { 10455 struct bpf_reg_state *reg; 10456 int id, ref_obj_id; 10457 10458 reg = get_dynptr_arg_reg(env, fn, regs); 10459 if (!reg) 10460 return -EFAULT; 10461 10462 10463 if (meta.dynptr_id) { 10464 verifier_bug(env, "meta.dynptr_id already set"); 10465 return -EFAULT; 10466 } 10467 if (meta.ref_obj_id) { 10468 verifier_bug(env, "meta.ref_obj_id already set"); 10469 return -EFAULT; 10470 } 10471 10472 id = dynptr_id(env, reg); 10473 if (id < 0) { 10474 verifier_bug(env, "failed to obtain dynptr id"); 10475 return id; 10476 } 10477 10478 ref_obj_id = dynptr_ref_obj_id(env, reg); 10479 if (ref_obj_id < 0) { 10480 verifier_bug(env, "failed to obtain dynptr ref_obj_id"); 10481 return ref_obj_id; 10482 } 10483 10484 meta.dynptr_id = id; 10485 meta.ref_obj_id = ref_obj_id; 10486 10487 break; 10488 } 10489 case BPF_FUNC_dynptr_write: 10490 { 10491 enum bpf_dynptr_type dynptr_type; 10492 struct bpf_reg_state *reg; 10493 10494 reg = get_dynptr_arg_reg(env, fn, regs); 10495 if (!reg) 10496 return -EFAULT; 10497 10498 dynptr_type = dynptr_get_type(env, reg); 10499 if (dynptr_type == BPF_DYNPTR_TYPE_INVALID) 10500 return -EFAULT; 10501 10502 if (dynptr_type == BPF_DYNPTR_TYPE_SKB || 10503 dynptr_type == BPF_DYNPTR_TYPE_SKB_META) 10504 /* this will trigger clear_all_pkt_pointers(), which will 10505 * invalidate all dynptr slices associated with the skb 10506 */ 10507 changes_data = true; 10508 10509 break; 10510 } 10511 case BPF_FUNC_per_cpu_ptr: 10512 case BPF_FUNC_this_cpu_ptr: 10513 { 10514 struct bpf_reg_state *reg = ®s[BPF_REG_1]; 10515 const struct btf_type *type; 10516 10517 if (reg->type & MEM_RCU) { 10518 type = btf_type_by_id(reg->btf, reg->btf_id); 10519 if (!type || !btf_type_is_struct(type)) { 10520 verbose(env, "Helper has invalid btf/btf_id in R1\n"); 10521 return -EFAULT; 10522 } 10523 returns_cpu_specific_alloc_ptr = true; 10524 env->insn_aux_data[insn_idx].call_with_percpu_alloc_ptr = true; 10525 } 10526 break; 10527 } 10528 case BPF_FUNC_user_ringbuf_drain: 10529 err = push_callback_call(env, insn, insn_idx, meta.subprogno, 10530 set_user_ringbuf_callback_state); 10531 break; 10532 } 10533 10534 if (err) 10535 return err; 10536 10537 /* reset caller saved regs */ 10538 for (i = 0; i < CALLER_SAVED_REGS; i++) { 10539 bpf_mark_reg_not_init(env, ®s[caller_saved[i]]); 10540 check_reg_arg(env, caller_saved[i], DST_OP_NO_MARK); 10541 } 10542 10543 /* helper call returns 64-bit value. */ 10544 regs[BPF_REG_0].subreg_def = DEF_NOT_SUBREG; 10545 10546 /* update return register (already marked as written above) */ 10547 ret_type = fn->ret_type; 10548 ret_flag = type_flag(ret_type); 10549 10550 switch (base_type(ret_type)) { 10551 case RET_INTEGER: 10552 /* sets type to SCALAR_VALUE */ 10553 mark_reg_unknown(env, regs, BPF_REG_0); 10554 break; 10555 case RET_VOID: 10556 regs[BPF_REG_0].type = NOT_INIT; 10557 break; 10558 case RET_PTR_TO_MAP_VALUE: 10559 /* There is no offset yet applied, variable or fixed */ 10560 mark_reg_known_zero(env, regs, BPF_REG_0); 10561 /* remember map_ptr, so that check_map_access() 10562 * can check 'value_size' boundary of memory access 10563 * to map element returned from bpf_map_lookup_elem() 10564 */ 10565 if (meta.map.ptr == NULL) { 10566 verifier_bug(env, "unexpected null map_ptr"); 10567 return -EFAULT; 10568 } 10569 10570 if (func_id == BPF_FUNC_map_lookup_elem && 10571 can_elide_value_nullness(meta.map.ptr->map_type) && 10572 meta.const_map_key >= 0 && 10573 meta.const_map_key < meta.map.ptr->max_entries) 10574 ret_flag &= ~PTR_MAYBE_NULL; 10575 10576 regs[BPF_REG_0].map_ptr = meta.map.ptr; 10577 regs[BPF_REG_0].map_uid = meta.map.uid; 10578 regs[BPF_REG_0].type = PTR_TO_MAP_VALUE | ret_flag; 10579 if (!type_may_be_null(ret_flag) && 10580 btf_record_has_field(meta.map.ptr->record, BPF_SPIN_LOCK | BPF_RES_SPIN_LOCK)) { 10581 regs[BPF_REG_0].id = ++env->id_gen; 10582 } 10583 break; 10584 case RET_PTR_TO_SOCKET: 10585 mark_reg_known_zero(env, regs, BPF_REG_0); 10586 regs[BPF_REG_0].type = PTR_TO_SOCKET | ret_flag; 10587 break; 10588 case RET_PTR_TO_SOCK_COMMON: 10589 mark_reg_known_zero(env, regs, BPF_REG_0); 10590 regs[BPF_REG_0].type = PTR_TO_SOCK_COMMON | ret_flag; 10591 break; 10592 case RET_PTR_TO_TCP_SOCK: 10593 mark_reg_known_zero(env, regs, BPF_REG_0); 10594 regs[BPF_REG_0].type = PTR_TO_TCP_SOCK | ret_flag; 10595 break; 10596 case RET_PTR_TO_MEM: 10597 mark_reg_known_zero(env, regs, BPF_REG_0); 10598 regs[BPF_REG_0].type = PTR_TO_MEM | ret_flag; 10599 regs[BPF_REG_0].mem_size = meta.mem_size; 10600 break; 10601 case RET_PTR_TO_MEM_OR_BTF_ID: 10602 { 10603 const struct btf_type *t; 10604 10605 mark_reg_known_zero(env, regs, BPF_REG_0); 10606 t = btf_type_skip_modifiers(meta.ret_btf, meta.ret_btf_id, NULL); 10607 if (!btf_type_is_struct(t)) { 10608 u32 tsize; 10609 const struct btf_type *ret; 10610 const char *tname; 10611 10612 /* resolve the type size of ksym. */ 10613 ret = btf_resolve_size(meta.ret_btf, t, &tsize); 10614 if (IS_ERR(ret)) { 10615 tname = btf_name_by_offset(meta.ret_btf, t->name_off); 10616 verbose(env, "unable to resolve the size of type '%s': %ld\n", 10617 tname, PTR_ERR(ret)); 10618 return -EINVAL; 10619 } 10620 regs[BPF_REG_0].type = PTR_TO_MEM | ret_flag; 10621 regs[BPF_REG_0].mem_size = tsize; 10622 } else { 10623 if (returns_cpu_specific_alloc_ptr) { 10624 regs[BPF_REG_0].type = PTR_TO_BTF_ID | MEM_ALLOC | MEM_RCU; 10625 } else { 10626 /* MEM_RDONLY may be carried from ret_flag, but it 10627 * doesn't apply on PTR_TO_BTF_ID. Fold it, otherwise 10628 * it will confuse the check of PTR_TO_BTF_ID in 10629 * check_mem_access(). 10630 */ 10631 ret_flag &= ~MEM_RDONLY; 10632 regs[BPF_REG_0].type = PTR_TO_BTF_ID | ret_flag; 10633 } 10634 10635 regs[BPF_REG_0].btf = meta.ret_btf; 10636 regs[BPF_REG_0].btf_id = meta.ret_btf_id; 10637 } 10638 break; 10639 } 10640 case RET_PTR_TO_BTF_ID: 10641 { 10642 struct btf *ret_btf; 10643 int ret_btf_id; 10644 10645 mark_reg_known_zero(env, regs, BPF_REG_0); 10646 regs[BPF_REG_0].type = PTR_TO_BTF_ID | ret_flag; 10647 if (func_id == BPF_FUNC_kptr_xchg) { 10648 ret_btf = meta.kptr_field->kptr.btf; 10649 ret_btf_id = meta.kptr_field->kptr.btf_id; 10650 if (!btf_is_kernel(ret_btf)) { 10651 regs[BPF_REG_0].type |= MEM_ALLOC; 10652 if (meta.kptr_field->type == BPF_KPTR_PERCPU) 10653 regs[BPF_REG_0].type |= MEM_PERCPU; 10654 } 10655 } else { 10656 if (fn->ret_btf_id == BPF_PTR_POISON) { 10657 verifier_bug(env, "func %s has non-overwritten BPF_PTR_POISON return type", 10658 func_id_name(func_id)); 10659 return -EFAULT; 10660 } 10661 ret_btf = btf_vmlinux; 10662 ret_btf_id = *fn->ret_btf_id; 10663 } 10664 if (ret_btf_id == 0) { 10665 verbose(env, "invalid return type %u of func %s#%d\n", 10666 base_type(ret_type), func_id_name(func_id), 10667 func_id); 10668 return -EINVAL; 10669 } 10670 regs[BPF_REG_0].btf = ret_btf; 10671 regs[BPF_REG_0].btf_id = ret_btf_id; 10672 break; 10673 } 10674 default: 10675 verbose(env, "unknown return type %u of func %s#%d\n", 10676 base_type(ret_type), func_id_name(func_id), func_id); 10677 return -EINVAL; 10678 } 10679 10680 if (type_may_be_null(regs[BPF_REG_0].type)) 10681 regs[BPF_REG_0].id = ++env->id_gen; 10682 10683 if (helper_multiple_ref_obj_use(func_id, meta.map.ptr)) { 10684 verifier_bug(env, "func %s#%d sets ref_obj_id more than once", 10685 func_id_name(func_id), func_id); 10686 return -EFAULT; 10687 } 10688 10689 if (is_dynptr_ref_function(func_id)) 10690 regs[BPF_REG_0].dynptr_id = meta.dynptr_id; 10691 10692 if (is_ptr_cast_function(func_id) || is_dynptr_ref_function(func_id)) { 10693 /* For release_reference() */ 10694 regs[BPF_REG_0].ref_obj_id = meta.ref_obj_id; 10695 } else if (is_acquire_function(func_id, meta.map.ptr)) { 10696 int id = acquire_reference(env, insn_idx); 10697 10698 if (id < 0) 10699 return id; 10700 /* For mark_ptr_or_null_reg() */ 10701 regs[BPF_REG_0].id = id; 10702 /* For release_reference() */ 10703 regs[BPF_REG_0].ref_obj_id = id; 10704 } 10705 10706 err = do_refine_retval_range(env, regs, fn->ret_type, func_id, &meta); 10707 if (err) 10708 return err; 10709 10710 err = check_map_func_compatibility(env, meta.map.ptr, func_id); 10711 if (err) 10712 return err; 10713 10714 if ((func_id == BPF_FUNC_get_stack || 10715 func_id == BPF_FUNC_get_task_stack) && 10716 !env->prog->has_callchain_buf) { 10717 const char *err_str; 10718 10719 #ifdef CONFIG_PERF_EVENTS 10720 err = get_callchain_buffers(sysctl_perf_event_max_stack); 10721 err_str = "cannot get callchain buffer for func %s#%d\n"; 10722 #else 10723 err = -ENOTSUPP; 10724 err_str = "func %s#%d not supported without CONFIG_PERF_EVENTS\n"; 10725 #endif 10726 if (err) { 10727 verbose(env, err_str, func_id_name(func_id), func_id); 10728 return err; 10729 } 10730 10731 env->prog->has_callchain_buf = true; 10732 } 10733 10734 if (func_id == BPF_FUNC_get_stackid || func_id == BPF_FUNC_get_stack) 10735 env->prog->call_get_stack = true; 10736 10737 if (func_id == BPF_FUNC_get_func_ip) { 10738 if (check_get_func_ip(env)) 10739 return -ENOTSUPP; 10740 env->prog->call_get_func_ip = true; 10741 } 10742 10743 if (func_id == BPF_FUNC_tail_call) { 10744 if (env->cur_state->curframe) { 10745 struct bpf_verifier_state *branch; 10746 10747 mark_reg_scratched(env, BPF_REG_0); 10748 branch = push_stack(env, env->insn_idx + 1, env->insn_idx, false); 10749 if (IS_ERR(branch)) 10750 return PTR_ERR(branch); 10751 clear_all_pkt_pointers(env); 10752 mark_reg_unknown(env, regs, BPF_REG_0); 10753 err = prepare_func_exit(env, &env->insn_idx); 10754 if (err) 10755 return err; 10756 env->insn_idx--; 10757 } else { 10758 changes_data = false; 10759 } 10760 } 10761 10762 if (changes_data) 10763 clear_all_pkt_pointers(env); 10764 return 0; 10765 } 10766 10767 /* mark_btf_func_reg_size() is used when the reg size is determined by 10768 * the BTF func_proto's return value size and argument. 10769 */ 10770 static void __mark_btf_func_reg_size(struct bpf_verifier_env *env, struct bpf_reg_state *regs, 10771 u32 regno, size_t reg_size) 10772 { 10773 struct bpf_reg_state *reg = ®s[regno]; 10774 10775 if (regno == BPF_REG_0) { 10776 /* Function return value */ 10777 reg->subreg_def = reg_size == sizeof(u64) ? 10778 DEF_NOT_SUBREG : env->insn_idx + 1; 10779 } else if (reg_size == sizeof(u64)) { 10780 /* Function argument */ 10781 mark_insn_zext(env, reg); 10782 } 10783 } 10784 10785 static void mark_btf_func_reg_size(struct bpf_verifier_env *env, u32 regno, 10786 size_t reg_size) 10787 { 10788 return __mark_btf_func_reg_size(env, cur_regs(env), regno, reg_size); 10789 } 10790 10791 static bool is_kfunc_acquire(struct bpf_kfunc_call_arg_meta *meta) 10792 { 10793 return meta->kfunc_flags & KF_ACQUIRE; 10794 } 10795 10796 static bool is_kfunc_release(struct bpf_kfunc_call_arg_meta *meta) 10797 { 10798 return meta->kfunc_flags & KF_RELEASE; 10799 } 10800 10801 10802 static bool is_kfunc_destructive(struct bpf_kfunc_call_arg_meta *meta) 10803 { 10804 return meta->kfunc_flags & KF_DESTRUCTIVE; 10805 } 10806 10807 static bool is_kfunc_rcu(struct bpf_kfunc_call_arg_meta *meta) 10808 { 10809 return meta->kfunc_flags & KF_RCU; 10810 } 10811 10812 static bool is_kfunc_rcu_protected(struct bpf_kfunc_call_arg_meta *meta) 10813 { 10814 return meta->kfunc_flags & KF_RCU_PROTECTED; 10815 } 10816 10817 static bool is_kfunc_arg_mem_size(const struct btf *btf, 10818 const struct btf_param *arg, 10819 const struct bpf_reg_state *reg) 10820 { 10821 const struct btf_type *t; 10822 10823 t = btf_type_skip_modifiers(btf, arg->type, NULL); 10824 if (!btf_type_is_scalar(t) || reg->type != SCALAR_VALUE) 10825 return false; 10826 10827 return btf_param_match_suffix(btf, arg, "__sz"); 10828 } 10829 10830 static bool is_kfunc_arg_const_mem_size(const struct btf *btf, 10831 const struct btf_param *arg, 10832 const struct bpf_reg_state *reg) 10833 { 10834 const struct btf_type *t; 10835 10836 t = btf_type_skip_modifiers(btf, arg->type, NULL); 10837 if (!btf_type_is_scalar(t) || reg->type != SCALAR_VALUE) 10838 return false; 10839 10840 return btf_param_match_suffix(btf, arg, "__szk"); 10841 } 10842 10843 static bool is_kfunc_arg_constant(const struct btf *btf, const struct btf_param *arg) 10844 { 10845 return btf_param_match_suffix(btf, arg, "__k"); 10846 } 10847 10848 static bool is_kfunc_arg_ignore(const struct btf *btf, const struct btf_param *arg) 10849 { 10850 return btf_param_match_suffix(btf, arg, "__ign"); 10851 } 10852 10853 static bool is_kfunc_arg_map(const struct btf *btf, const struct btf_param *arg) 10854 { 10855 return btf_param_match_suffix(btf, arg, "__map"); 10856 } 10857 10858 static bool is_kfunc_arg_alloc_obj(const struct btf *btf, const struct btf_param *arg) 10859 { 10860 return btf_param_match_suffix(btf, arg, "__alloc"); 10861 } 10862 10863 static bool is_kfunc_arg_uninit(const struct btf *btf, const struct btf_param *arg) 10864 { 10865 return btf_param_match_suffix(btf, arg, "__uninit"); 10866 } 10867 10868 static bool is_kfunc_arg_refcounted_kptr(const struct btf *btf, const struct btf_param *arg) 10869 { 10870 return btf_param_match_suffix(btf, arg, "__refcounted_kptr"); 10871 } 10872 10873 static bool is_kfunc_arg_nullable(const struct btf *btf, const struct btf_param *arg) 10874 { 10875 return btf_param_match_suffix(btf, arg, "__nullable"); 10876 } 10877 10878 static bool is_kfunc_arg_const_str(const struct btf *btf, const struct btf_param *arg) 10879 { 10880 return btf_param_match_suffix(btf, arg, "__str"); 10881 } 10882 10883 static bool is_kfunc_arg_irq_flag(const struct btf *btf, const struct btf_param *arg) 10884 { 10885 return btf_param_match_suffix(btf, arg, "__irq_flag"); 10886 } 10887 10888 static bool is_kfunc_arg_scalar_with_name(const struct btf *btf, 10889 const struct btf_param *arg, 10890 const char *name) 10891 { 10892 int len, target_len = strlen(name); 10893 const char *param_name; 10894 10895 param_name = btf_name_by_offset(btf, arg->name_off); 10896 if (str_is_empty(param_name)) 10897 return false; 10898 len = strlen(param_name); 10899 if (len != target_len) 10900 return false; 10901 if (strcmp(param_name, name)) 10902 return false; 10903 10904 return true; 10905 } 10906 10907 enum { 10908 KF_ARG_DYNPTR_ID, 10909 KF_ARG_LIST_HEAD_ID, 10910 KF_ARG_LIST_NODE_ID, 10911 KF_ARG_RB_ROOT_ID, 10912 KF_ARG_RB_NODE_ID, 10913 KF_ARG_WORKQUEUE_ID, 10914 KF_ARG_RES_SPIN_LOCK_ID, 10915 KF_ARG_TASK_WORK_ID, 10916 KF_ARG_PROG_AUX_ID, 10917 KF_ARG_TIMER_ID 10918 }; 10919 10920 BTF_ID_LIST(kf_arg_btf_ids) 10921 BTF_ID(struct, bpf_dynptr) 10922 BTF_ID(struct, bpf_list_head) 10923 BTF_ID(struct, bpf_list_node) 10924 BTF_ID(struct, bpf_rb_root) 10925 BTF_ID(struct, bpf_rb_node) 10926 BTF_ID(struct, bpf_wq) 10927 BTF_ID(struct, bpf_res_spin_lock) 10928 BTF_ID(struct, bpf_task_work) 10929 BTF_ID(struct, bpf_prog_aux) 10930 BTF_ID(struct, bpf_timer) 10931 10932 static bool __is_kfunc_ptr_arg_type(const struct btf *btf, 10933 const struct btf_param *arg, int type) 10934 { 10935 const struct btf_type *t; 10936 u32 res_id; 10937 10938 t = btf_type_skip_modifiers(btf, arg->type, NULL); 10939 if (!t) 10940 return false; 10941 if (!btf_type_is_ptr(t)) 10942 return false; 10943 t = btf_type_skip_modifiers(btf, t->type, &res_id); 10944 if (!t) 10945 return false; 10946 return btf_types_are_same(btf, res_id, btf_vmlinux, kf_arg_btf_ids[type]); 10947 } 10948 10949 static bool is_kfunc_arg_dynptr(const struct btf *btf, const struct btf_param *arg) 10950 { 10951 return __is_kfunc_ptr_arg_type(btf, arg, KF_ARG_DYNPTR_ID); 10952 } 10953 10954 static bool is_kfunc_arg_list_head(const struct btf *btf, const struct btf_param *arg) 10955 { 10956 return __is_kfunc_ptr_arg_type(btf, arg, KF_ARG_LIST_HEAD_ID); 10957 } 10958 10959 static bool is_kfunc_arg_list_node(const struct btf *btf, const struct btf_param *arg) 10960 { 10961 return __is_kfunc_ptr_arg_type(btf, arg, KF_ARG_LIST_NODE_ID); 10962 } 10963 10964 static bool is_kfunc_arg_rbtree_root(const struct btf *btf, const struct btf_param *arg) 10965 { 10966 return __is_kfunc_ptr_arg_type(btf, arg, KF_ARG_RB_ROOT_ID); 10967 } 10968 10969 static bool is_kfunc_arg_rbtree_node(const struct btf *btf, const struct btf_param *arg) 10970 { 10971 return __is_kfunc_ptr_arg_type(btf, arg, KF_ARG_RB_NODE_ID); 10972 } 10973 10974 static bool is_kfunc_arg_timer(const struct btf *btf, const struct btf_param *arg) 10975 { 10976 return __is_kfunc_ptr_arg_type(btf, arg, KF_ARG_TIMER_ID); 10977 } 10978 10979 static bool is_kfunc_arg_wq(const struct btf *btf, const struct btf_param *arg) 10980 { 10981 return __is_kfunc_ptr_arg_type(btf, arg, KF_ARG_WORKQUEUE_ID); 10982 } 10983 10984 static bool is_kfunc_arg_task_work(const struct btf *btf, const struct btf_param *arg) 10985 { 10986 return __is_kfunc_ptr_arg_type(btf, arg, KF_ARG_TASK_WORK_ID); 10987 } 10988 10989 static bool is_kfunc_arg_res_spin_lock(const struct btf *btf, const struct btf_param *arg) 10990 { 10991 return __is_kfunc_ptr_arg_type(btf, arg, KF_ARG_RES_SPIN_LOCK_ID); 10992 } 10993 10994 static bool is_rbtree_node_type(const struct btf_type *t) 10995 { 10996 return t == btf_type_by_id(btf_vmlinux, kf_arg_btf_ids[KF_ARG_RB_NODE_ID]); 10997 } 10998 10999 static bool is_list_node_type(const struct btf_type *t) 11000 { 11001 return t == btf_type_by_id(btf_vmlinux, kf_arg_btf_ids[KF_ARG_LIST_NODE_ID]); 11002 } 11003 11004 static bool is_kfunc_arg_callback(struct bpf_verifier_env *env, const struct btf *btf, 11005 const struct btf_param *arg) 11006 { 11007 const struct btf_type *t; 11008 11009 t = btf_type_resolve_func_ptr(btf, arg->type, NULL); 11010 if (!t) 11011 return false; 11012 11013 return true; 11014 } 11015 11016 static bool is_kfunc_arg_prog_aux(const struct btf *btf, const struct btf_param *arg) 11017 { 11018 return __is_kfunc_ptr_arg_type(btf, arg, KF_ARG_PROG_AUX_ID); 11019 } 11020 11021 /* 11022 * A kfunc with KF_IMPLICIT_ARGS has two prototypes in BTF: 11023 * - the _impl prototype with full arg list (meta->func_proto) 11024 * - the BPF API prototype w/o implicit args (func->type in BTF) 11025 * To determine whether an argument is implicit, we compare its position 11026 * against the number of arguments in the prototype w/o implicit args. 11027 */ 11028 static bool is_kfunc_arg_implicit(const struct bpf_kfunc_call_arg_meta *meta, u32 arg_idx) 11029 { 11030 const struct btf_type *func, *func_proto; 11031 u32 argn; 11032 11033 if (!(meta->kfunc_flags & KF_IMPLICIT_ARGS)) 11034 return false; 11035 11036 func = btf_type_by_id(meta->btf, meta->func_id); 11037 func_proto = btf_type_by_id(meta->btf, func->type); 11038 argn = btf_type_vlen(func_proto); 11039 11040 return argn <= arg_idx; 11041 } 11042 11043 /* Returns true if struct is composed of scalars, 4 levels of nesting allowed */ 11044 static bool __btf_type_is_scalar_struct(struct bpf_verifier_env *env, 11045 const struct btf *btf, 11046 const struct btf_type *t, int rec) 11047 { 11048 const struct btf_type *member_type; 11049 const struct btf_member *member; 11050 u32 i; 11051 11052 if (!btf_type_is_struct(t)) 11053 return false; 11054 11055 for_each_member(i, t, member) { 11056 const struct btf_array *array; 11057 11058 member_type = btf_type_skip_modifiers(btf, member->type, NULL); 11059 if (btf_type_is_struct(member_type)) { 11060 if (rec >= 3) { 11061 verbose(env, "max struct nesting depth exceeded\n"); 11062 return false; 11063 } 11064 if (!__btf_type_is_scalar_struct(env, btf, member_type, rec + 1)) 11065 return false; 11066 continue; 11067 } 11068 if (btf_type_is_array(member_type)) { 11069 array = btf_array(member_type); 11070 if (!array->nelems) 11071 return false; 11072 member_type = btf_type_skip_modifiers(btf, array->type, NULL); 11073 if (!btf_type_is_scalar(member_type)) 11074 return false; 11075 continue; 11076 } 11077 if (!btf_type_is_scalar(member_type)) 11078 return false; 11079 } 11080 return true; 11081 } 11082 11083 enum kfunc_ptr_arg_type { 11084 KF_ARG_PTR_TO_CTX, 11085 KF_ARG_PTR_TO_ALLOC_BTF_ID, /* Allocated object */ 11086 KF_ARG_PTR_TO_REFCOUNTED_KPTR, /* Refcounted local kptr */ 11087 KF_ARG_PTR_TO_DYNPTR, 11088 KF_ARG_PTR_TO_ITER, 11089 KF_ARG_PTR_TO_LIST_HEAD, 11090 KF_ARG_PTR_TO_LIST_NODE, 11091 KF_ARG_PTR_TO_BTF_ID, /* Also covers reg2btf_ids conversions */ 11092 KF_ARG_PTR_TO_MEM, 11093 KF_ARG_PTR_TO_MEM_SIZE, /* Size derived from next argument, skip it */ 11094 KF_ARG_PTR_TO_CALLBACK, 11095 KF_ARG_PTR_TO_RB_ROOT, 11096 KF_ARG_PTR_TO_RB_NODE, 11097 KF_ARG_PTR_TO_NULL, 11098 KF_ARG_PTR_TO_CONST_STR, 11099 KF_ARG_PTR_TO_MAP, 11100 KF_ARG_PTR_TO_TIMER, 11101 KF_ARG_PTR_TO_WORKQUEUE, 11102 KF_ARG_PTR_TO_IRQ_FLAG, 11103 KF_ARG_PTR_TO_RES_SPIN_LOCK, 11104 KF_ARG_PTR_TO_TASK_WORK, 11105 }; 11106 11107 enum special_kfunc_type { 11108 KF_bpf_obj_new_impl, 11109 KF_bpf_obj_new, 11110 KF_bpf_obj_drop_impl, 11111 KF_bpf_obj_drop, 11112 KF_bpf_refcount_acquire_impl, 11113 KF_bpf_refcount_acquire, 11114 KF_bpf_list_push_front_impl, 11115 KF_bpf_list_push_front, 11116 KF_bpf_list_push_back_impl, 11117 KF_bpf_list_push_back, 11118 KF_bpf_list_pop_front, 11119 KF_bpf_list_pop_back, 11120 KF_bpf_list_front, 11121 KF_bpf_list_back, 11122 KF_bpf_cast_to_kern_ctx, 11123 KF_bpf_rdonly_cast, 11124 KF_bpf_rcu_read_lock, 11125 KF_bpf_rcu_read_unlock, 11126 KF_bpf_rbtree_remove, 11127 KF_bpf_rbtree_add_impl, 11128 KF_bpf_rbtree_add, 11129 KF_bpf_rbtree_first, 11130 KF_bpf_rbtree_root, 11131 KF_bpf_rbtree_left, 11132 KF_bpf_rbtree_right, 11133 KF_bpf_dynptr_from_skb, 11134 KF_bpf_dynptr_from_xdp, 11135 KF_bpf_dynptr_from_skb_meta, 11136 KF_bpf_xdp_pull_data, 11137 KF_bpf_dynptr_slice, 11138 KF_bpf_dynptr_slice_rdwr, 11139 KF_bpf_dynptr_clone, 11140 KF_bpf_percpu_obj_new_impl, 11141 KF_bpf_percpu_obj_new, 11142 KF_bpf_percpu_obj_drop_impl, 11143 KF_bpf_percpu_obj_drop, 11144 KF_bpf_throw, 11145 KF_bpf_wq_set_callback, 11146 KF_bpf_preempt_disable, 11147 KF_bpf_preempt_enable, 11148 KF_bpf_iter_css_task_new, 11149 KF_bpf_session_cookie, 11150 KF_bpf_get_kmem_cache, 11151 KF_bpf_local_irq_save, 11152 KF_bpf_local_irq_restore, 11153 KF_bpf_iter_num_new, 11154 KF_bpf_iter_num_next, 11155 KF_bpf_iter_num_destroy, 11156 KF_bpf_set_dentry_xattr, 11157 KF_bpf_remove_dentry_xattr, 11158 KF_bpf_res_spin_lock, 11159 KF_bpf_res_spin_unlock, 11160 KF_bpf_res_spin_lock_irqsave, 11161 KF_bpf_res_spin_unlock_irqrestore, 11162 KF_bpf_dynptr_from_file, 11163 KF_bpf_dynptr_file_discard, 11164 KF___bpf_trap, 11165 KF_bpf_task_work_schedule_signal, 11166 KF_bpf_task_work_schedule_resume, 11167 KF_bpf_arena_alloc_pages, 11168 KF_bpf_arena_free_pages, 11169 KF_bpf_arena_reserve_pages, 11170 KF_bpf_session_is_return, 11171 KF_bpf_stream_vprintk, 11172 KF_bpf_stream_print_stack, 11173 }; 11174 11175 BTF_ID_LIST(special_kfunc_list) 11176 BTF_ID(func, bpf_obj_new_impl) 11177 BTF_ID(func, bpf_obj_new) 11178 BTF_ID(func, bpf_obj_drop_impl) 11179 BTF_ID(func, bpf_obj_drop) 11180 BTF_ID(func, bpf_refcount_acquire_impl) 11181 BTF_ID(func, bpf_refcount_acquire) 11182 BTF_ID(func, bpf_list_push_front_impl) 11183 BTF_ID(func, bpf_list_push_front) 11184 BTF_ID(func, bpf_list_push_back_impl) 11185 BTF_ID(func, bpf_list_push_back) 11186 BTF_ID(func, bpf_list_pop_front) 11187 BTF_ID(func, bpf_list_pop_back) 11188 BTF_ID(func, bpf_list_front) 11189 BTF_ID(func, bpf_list_back) 11190 BTF_ID(func, bpf_cast_to_kern_ctx) 11191 BTF_ID(func, bpf_rdonly_cast) 11192 BTF_ID(func, bpf_rcu_read_lock) 11193 BTF_ID(func, bpf_rcu_read_unlock) 11194 BTF_ID(func, bpf_rbtree_remove) 11195 BTF_ID(func, bpf_rbtree_add_impl) 11196 BTF_ID(func, bpf_rbtree_add) 11197 BTF_ID(func, bpf_rbtree_first) 11198 BTF_ID(func, bpf_rbtree_root) 11199 BTF_ID(func, bpf_rbtree_left) 11200 BTF_ID(func, bpf_rbtree_right) 11201 #ifdef CONFIG_NET 11202 BTF_ID(func, bpf_dynptr_from_skb) 11203 BTF_ID(func, bpf_dynptr_from_xdp) 11204 BTF_ID(func, bpf_dynptr_from_skb_meta) 11205 BTF_ID(func, bpf_xdp_pull_data) 11206 #else 11207 BTF_ID_UNUSED 11208 BTF_ID_UNUSED 11209 BTF_ID_UNUSED 11210 BTF_ID_UNUSED 11211 #endif 11212 BTF_ID(func, bpf_dynptr_slice) 11213 BTF_ID(func, bpf_dynptr_slice_rdwr) 11214 BTF_ID(func, bpf_dynptr_clone) 11215 BTF_ID(func, bpf_percpu_obj_new_impl) 11216 BTF_ID(func, bpf_percpu_obj_new) 11217 BTF_ID(func, bpf_percpu_obj_drop_impl) 11218 BTF_ID(func, bpf_percpu_obj_drop) 11219 BTF_ID(func, bpf_throw) 11220 BTF_ID(func, bpf_wq_set_callback) 11221 BTF_ID(func, bpf_preempt_disable) 11222 BTF_ID(func, bpf_preempt_enable) 11223 #ifdef CONFIG_CGROUPS 11224 BTF_ID(func, bpf_iter_css_task_new) 11225 #else 11226 BTF_ID_UNUSED 11227 #endif 11228 #ifdef CONFIG_BPF_EVENTS 11229 BTF_ID(func, bpf_session_cookie) 11230 #else 11231 BTF_ID_UNUSED 11232 #endif 11233 BTF_ID(func, bpf_get_kmem_cache) 11234 BTF_ID(func, bpf_local_irq_save) 11235 BTF_ID(func, bpf_local_irq_restore) 11236 BTF_ID(func, bpf_iter_num_new) 11237 BTF_ID(func, bpf_iter_num_next) 11238 BTF_ID(func, bpf_iter_num_destroy) 11239 #ifdef CONFIG_BPF_LSM 11240 BTF_ID(func, bpf_set_dentry_xattr) 11241 BTF_ID(func, bpf_remove_dentry_xattr) 11242 #else 11243 BTF_ID_UNUSED 11244 BTF_ID_UNUSED 11245 #endif 11246 BTF_ID(func, bpf_res_spin_lock) 11247 BTF_ID(func, bpf_res_spin_unlock) 11248 BTF_ID(func, bpf_res_spin_lock_irqsave) 11249 BTF_ID(func, bpf_res_spin_unlock_irqrestore) 11250 BTF_ID(func, bpf_dynptr_from_file) 11251 BTF_ID(func, bpf_dynptr_file_discard) 11252 BTF_ID(func, __bpf_trap) 11253 BTF_ID(func, bpf_task_work_schedule_signal) 11254 BTF_ID(func, bpf_task_work_schedule_resume) 11255 BTF_ID(func, bpf_arena_alloc_pages) 11256 BTF_ID(func, bpf_arena_free_pages) 11257 BTF_ID(func, bpf_arena_reserve_pages) 11258 BTF_ID(func, bpf_session_is_return) 11259 BTF_ID(func, bpf_stream_vprintk) 11260 BTF_ID(func, bpf_stream_print_stack) 11261 11262 static bool is_bpf_obj_new_kfunc(u32 func_id) 11263 { 11264 return func_id == special_kfunc_list[KF_bpf_obj_new] || 11265 func_id == special_kfunc_list[KF_bpf_obj_new_impl]; 11266 } 11267 11268 static bool is_bpf_percpu_obj_new_kfunc(u32 func_id) 11269 { 11270 return func_id == special_kfunc_list[KF_bpf_percpu_obj_new] || 11271 func_id == special_kfunc_list[KF_bpf_percpu_obj_new_impl]; 11272 } 11273 11274 static bool is_bpf_obj_drop_kfunc(u32 func_id) 11275 { 11276 return func_id == special_kfunc_list[KF_bpf_obj_drop] || 11277 func_id == special_kfunc_list[KF_bpf_obj_drop_impl]; 11278 } 11279 11280 static bool is_bpf_percpu_obj_drop_kfunc(u32 func_id) 11281 { 11282 return func_id == special_kfunc_list[KF_bpf_percpu_obj_drop] || 11283 func_id == special_kfunc_list[KF_bpf_percpu_obj_drop_impl]; 11284 } 11285 11286 static bool is_bpf_refcount_acquire_kfunc(u32 func_id) 11287 { 11288 return func_id == special_kfunc_list[KF_bpf_refcount_acquire] || 11289 func_id == special_kfunc_list[KF_bpf_refcount_acquire_impl]; 11290 } 11291 11292 static bool is_bpf_list_push_kfunc(u32 func_id) 11293 { 11294 return func_id == special_kfunc_list[KF_bpf_list_push_front] || 11295 func_id == special_kfunc_list[KF_bpf_list_push_front_impl] || 11296 func_id == special_kfunc_list[KF_bpf_list_push_back] || 11297 func_id == special_kfunc_list[KF_bpf_list_push_back_impl]; 11298 } 11299 11300 static bool is_bpf_rbtree_add_kfunc(u32 func_id) 11301 { 11302 return func_id == special_kfunc_list[KF_bpf_rbtree_add] || 11303 func_id == special_kfunc_list[KF_bpf_rbtree_add_impl]; 11304 } 11305 11306 static bool is_task_work_add_kfunc(u32 func_id) 11307 { 11308 return func_id == special_kfunc_list[KF_bpf_task_work_schedule_signal] || 11309 func_id == special_kfunc_list[KF_bpf_task_work_schedule_resume]; 11310 } 11311 11312 static bool is_kfunc_ret_null(struct bpf_kfunc_call_arg_meta *meta) 11313 { 11314 if (is_bpf_refcount_acquire_kfunc(meta->func_id) && meta->arg_owning_ref) 11315 return false; 11316 11317 return meta->kfunc_flags & KF_RET_NULL; 11318 } 11319 11320 static bool is_kfunc_bpf_rcu_read_lock(struct bpf_kfunc_call_arg_meta *meta) 11321 { 11322 return meta->func_id == special_kfunc_list[KF_bpf_rcu_read_lock]; 11323 } 11324 11325 static bool is_kfunc_bpf_rcu_read_unlock(struct bpf_kfunc_call_arg_meta *meta) 11326 { 11327 return meta->func_id == special_kfunc_list[KF_bpf_rcu_read_unlock]; 11328 } 11329 11330 static bool is_kfunc_bpf_preempt_disable(struct bpf_kfunc_call_arg_meta *meta) 11331 { 11332 return meta->func_id == special_kfunc_list[KF_bpf_preempt_disable]; 11333 } 11334 11335 static bool is_kfunc_bpf_preempt_enable(struct bpf_kfunc_call_arg_meta *meta) 11336 { 11337 return meta->func_id == special_kfunc_list[KF_bpf_preempt_enable]; 11338 } 11339 11340 bool bpf_is_kfunc_pkt_changing(struct bpf_kfunc_call_arg_meta *meta) 11341 { 11342 return meta->func_id == special_kfunc_list[KF_bpf_xdp_pull_data]; 11343 } 11344 11345 static enum kfunc_ptr_arg_type 11346 get_kfunc_ptr_arg_type(struct bpf_verifier_env *env, 11347 struct bpf_kfunc_call_arg_meta *meta, 11348 const struct btf_type *t, const struct btf_type *ref_t, 11349 const char *ref_tname, const struct btf_param *args, 11350 int argno, int nargs) 11351 { 11352 u32 regno = argno + 1; 11353 struct bpf_reg_state *regs = cur_regs(env); 11354 struct bpf_reg_state *reg = ®s[regno]; 11355 bool arg_mem_size = false; 11356 11357 if (meta->func_id == special_kfunc_list[KF_bpf_cast_to_kern_ctx] || 11358 meta->func_id == special_kfunc_list[KF_bpf_session_is_return] || 11359 meta->func_id == special_kfunc_list[KF_bpf_session_cookie]) 11360 return KF_ARG_PTR_TO_CTX; 11361 11362 if (argno + 1 < nargs && 11363 (is_kfunc_arg_mem_size(meta->btf, &args[argno + 1], ®s[regno + 1]) || 11364 is_kfunc_arg_const_mem_size(meta->btf, &args[argno + 1], ®s[regno + 1]))) 11365 arg_mem_size = true; 11366 11367 /* In this function, we verify the kfunc's BTF as per the argument type, 11368 * leaving the rest of the verification with respect to the register 11369 * type to our caller. When a set of conditions hold in the BTF type of 11370 * arguments, we resolve it to a known kfunc_ptr_arg_type. 11371 */ 11372 if (btf_is_prog_ctx_type(&env->log, meta->btf, t, resolve_prog_type(env->prog), argno)) 11373 return KF_ARG_PTR_TO_CTX; 11374 11375 if (is_kfunc_arg_nullable(meta->btf, &args[argno]) && bpf_register_is_null(reg) && 11376 !arg_mem_size) 11377 return KF_ARG_PTR_TO_NULL; 11378 11379 if (is_kfunc_arg_alloc_obj(meta->btf, &args[argno])) 11380 return KF_ARG_PTR_TO_ALLOC_BTF_ID; 11381 11382 if (is_kfunc_arg_refcounted_kptr(meta->btf, &args[argno])) 11383 return KF_ARG_PTR_TO_REFCOUNTED_KPTR; 11384 11385 if (is_kfunc_arg_dynptr(meta->btf, &args[argno])) 11386 return KF_ARG_PTR_TO_DYNPTR; 11387 11388 if (is_kfunc_arg_iter(meta, argno, &args[argno])) 11389 return KF_ARG_PTR_TO_ITER; 11390 11391 if (is_kfunc_arg_list_head(meta->btf, &args[argno])) 11392 return KF_ARG_PTR_TO_LIST_HEAD; 11393 11394 if (is_kfunc_arg_list_node(meta->btf, &args[argno])) 11395 return KF_ARG_PTR_TO_LIST_NODE; 11396 11397 if (is_kfunc_arg_rbtree_root(meta->btf, &args[argno])) 11398 return KF_ARG_PTR_TO_RB_ROOT; 11399 11400 if (is_kfunc_arg_rbtree_node(meta->btf, &args[argno])) 11401 return KF_ARG_PTR_TO_RB_NODE; 11402 11403 if (is_kfunc_arg_const_str(meta->btf, &args[argno])) 11404 return KF_ARG_PTR_TO_CONST_STR; 11405 11406 if (is_kfunc_arg_map(meta->btf, &args[argno])) 11407 return KF_ARG_PTR_TO_MAP; 11408 11409 if (is_kfunc_arg_wq(meta->btf, &args[argno])) 11410 return KF_ARG_PTR_TO_WORKQUEUE; 11411 11412 if (is_kfunc_arg_timer(meta->btf, &args[argno])) 11413 return KF_ARG_PTR_TO_TIMER; 11414 11415 if (is_kfunc_arg_task_work(meta->btf, &args[argno])) 11416 return KF_ARG_PTR_TO_TASK_WORK; 11417 11418 if (is_kfunc_arg_irq_flag(meta->btf, &args[argno])) 11419 return KF_ARG_PTR_TO_IRQ_FLAG; 11420 11421 if (is_kfunc_arg_res_spin_lock(meta->btf, &args[argno])) 11422 return KF_ARG_PTR_TO_RES_SPIN_LOCK; 11423 11424 if ((base_type(reg->type) == PTR_TO_BTF_ID || reg2btf_ids[base_type(reg->type)])) { 11425 if (!btf_type_is_struct(ref_t)) { 11426 verbose(env, "kernel function %s args#%d pointer type %s %s is not supported\n", 11427 meta->func_name, argno, btf_type_str(ref_t), ref_tname); 11428 return -EINVAL; 11429 } 11430 return KF_ARG_PTR_TO_BTF_ID; 11431 } 11432 11433 if (is_kfunc_arg_callback(env, meta->btf, &args[argno])) 11434 return KF_ARG_PTR_TO_CALLBACK; 11435 11436 /* This is the catch all argument type of register types supported by 11437 * check_helper_mem_access. However, we only allow when argument type is 11438 * pointer to scalar, or struct composed (recursively) of scalars. When 11439 * arg_mem_size is true, the pointer can be void *. 11440 */ 11441 if (!btf_type_is_scalar(ref_t) && !__btf_type_is_scalar_struct(env, meta->btf, ref_t, 0) && 11442 (arg_mem_size ? !btf_type_is_void(ref_t) : 1)) { 11443 verbose(env, "arg#%d pointer type %s %s must point to %sscalar, or struct with scalar\n", 11444 argno, btf_type_str(ref_t), ref_tname, arg_mem_size ? "void, " : ""); 11445 return -EINVAL; 11446 } 11447 return arg_mem_size ? KF_ARG_PTR_TO_MEM_SIZE : KF_ARG_PTR_TO_MEM; 11448 } 11449 11450 static int process_kf_arg_ptr_to_btf_id(struct bpf_verifier_env *env, 11451 struct bpf_reg_state *reg, 11452 const struct btf_type *ref_t, 11453 const char *ref_tname, u32 ref_id, 11454 struct bpf_kfunc_call_arg_meta *meta, 11455 int argno) 11456 { 11457 const struct btf_type *reg_ref_t; 11458 bool strict_type_match = false; 11459 const struct btf *reg_btf; 11460 const char *reg_ref_tname; 11461 bool taking_projection; 11462 bool struct_same; 11463 u32 reg_ref_id; 11464 11465 if (base_type(reg->type) == PTR_TO_BTF_ID) { 11466 reg_btf = reg->btf; 11467 reg_ref_id = reg->btf_id; 11468 } else { 11469 reg_btf = btf_vmlinux; 11470 reg_ref_id = *reg2btf_ids[base_type(reg->type)]; 11471 } 11472 11473 /* Enforce strict type matching for calls to kfuncs that are acquiring 11474 * or releasing a reference, or are no-cast aliases. We do _not_ 11475 * enforce strict matching for kfuncs by default, 11476 * as we want to enable BPF programs to pass types that are bitwise 11477 * equivalent without forcing them to explicitly cast with something 11478 * like bpf_cast_to_kern_ctx(). 11479 * 11480 * For example, say we had a type like the following: 11481 * 11482 * struct bpf_cpumask { 11483 * cpumask_t cpumask; 11484 * refcount_t usage; 11485 * }; 11486 * 11487 * Note that as specified in <linux/cpumask.h>, cpumask_t is typedef'ed 11488 * to a struct cpumask, so it would be safe to pass a struct 11489 * bpf_cpumask * to a kfunc expecting a struct cpumask *. 11490 * 11491 * The philosophy here is similar to how we allow scalars of different 11492 * types to be passed to kfuncs as long as the size is the same. The 11493 * only difference here is that we're simply allowing 11494 * btf_struct_ids_match() to walk the struct at the 0th offset, and 11495 * resolve types. 11496 */ 11497 if ((is_kfunc_release(meta) && reg->ref_obj_id) || 11498 btf_type_ids_nocast_alias(&env->log, reg_btf, reg_ref_id, meta->btf, ref_id)) 11499 strict_type_match = true; 11500 11501 WARN_ON_ONCE(is_kfunc_release(meta) && !tnum_is_const(reg->var_off)); 11502 11503 reg_ref_t = btf_type_skip_modifiers(reg_btf, reg_ref_id, ®_ref_id); 11504 reg_ref_tname = btf_name_by_offset(reg_btf, reg_ref_t->name_off); 11505 struct_same = btf_struct_ids_match(&env->log, reg_btf, reg_ref_id, reg->var_off.value, 11506 meta->btf, ref_id, strict_type_match); 11507 /* If kfunc is accepting a projection type (ie. __sk_buff), it cannot 11508 * actually use it -- it must cast to the underlying type. So we allow 11509 * caller to pass in the underlying type. 11510 */ 11511 taking_projection = btf_is_projection_of(ref_tname, reg_ref_tname); 11512 if (!taking_projection && !struct_same) { 11513 verbose(env, "kernel function %s args#%d expected pointer to %s %s but R%d has a pointer to %s %s\n", 11514 meta->func_name, argno, btf_type_str(ref_t), ref_tname, argno + 1, 11515 btf_type_str(reg_ref_t), reg_ref_tname); 11516 return -EINVAL; 11517 } 11518 return 0; 11519 } 11520 11521 static int process_irq_flag(struct bpf_verifier_env *env, int regno, 11522 struct bpf_kfunc_call_arg_meta *meta) 11523 { 11524 struct bpf_reg_state *reg = reg_state(env, regno); 11525 int err, kfunc_class = IRQ_NATIVE_KFUNC; 11526 bool irq_save; 11527 11528 if (meta->func_id == special_kfunc_list[KF_bpf_local_irq_save] || 11529 meta->func_id == special_kfunc_list[KF_bpf_res_spin_lock_irqsave]) { 11530 irq_save = true; 11531 if (meta->func_id == special_kfunc_list[KF_bpf_res_spin_lock_irqsave]) 11532 kfunc_class = IRQ_LOCK_KFUNC; 11533 } else if (meta->func_id == special_kfunc_list[KF_bpf_local_irq_restore] || 11534 meta->func_id == special_kfunc_list[KF_bpf_res_spin_unlock_irqrestore]) { 11535 irq_save = false; 11536 if (meta->func_id == special_kfunc_list[KF_bpf_res_spin_unlock_irqrestore]) 11537 kfunc_class = IRQ_LOCK_KFUNC; 11538 } else { 11539 verifier_bug(env, "unknown irq flags kfunc"); 11540 return -EFAULT; 11541 } 11542 11543 if (irq_save) { 11544 if (!is_irq_flag_reg_valid_uninit(env, reg)) { 11545 verbose(env, "expected uninitialized irq flag as arg#%d\n", regno - 1); 11546 return -EINVAL; 11547 } 11548 11549 err = check_mem_access(env, env->insn_idx, regno, 0, BPF_DW, BPF_WRITE, -1, false, false); 11550 if (err) 11551 return err; 11552 11553 err = mark_stack_slot_irq_flag(env, meta, reg, env->insn_idx, kfunc_class); 11554 if (err) 11555 return err; 11556 } else { 11557 err = is_irq_flag_reg_valid_init(env, reg); 11558 if (err) { 11559 verbose(env, "expected an initialized irq flag as arg#%d\n", regno - 1); 11560 return err; 11561 } 11562 11563 err = mark_irq_flag_read(env, reg); 11564 if (err) 11565 return err; 11566 11567 err = unmark_stack_slot_irq_flag(env, reg, kfunc_class); 11568 if (err) 11569 return err; 11570 } 11571 return 0; 11572 } 11573 11574 11575 static int ref_set_non_owning(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 11576 { 11577 struct btf_record *rec = reg_btf_record(reg); 11578 11579 if (!env->cur_state->active_locks) { 11580 verifier_bug(env, "%s w/o active lock", __func__); 11581 return -EFAULT; 11582 } 11583 11584 if (type_flag(reg->type) & NON_OWN_REF) { 11585 verifier_bug(env, "NON_OWN_REF already set"); 11586 return -EFAULT; 11587 } 11588 11589 reg->type |= NON_OWN_REF; 11590 if (rec->refcount_off >= 0) 11591 reg->type |= MEM_RCU; 11592 11593 return 0; 11594 } 11595 11596 static int ref_convert_owning_non_owning(struct bpf_verifier_env *env, u32 ref_obj_id) 11597 { 11598 struct bpf_verifier_state *state = env->cur_state; 11599 struct bpf_func_state *unused; 11600 struct bpf_reg_state *reg; 11601 int i; 11602 11603 if (!ref_obj_id) { 11604 verifier_bug(env, "ref_obj_id is zero for owning -> non-owning conversion"); 11605 return -EFAULT; 11606 } 11607 11608 for (i = 0; i < state->acquired_refs; i++) { 11609 if (state->refs[i].id != ref_obj_id) 11610 continue; 11611 11612 /* Clear ref_obj_id here so release_reference doesn't clobber 11613 * the whole reg 11614 */ 11615 bpf_for_each_reg_in_vstate(env->cur_state, unused, reg, ({ 11616 if (reg->ref_obj_id == ref_obj_id) { 11617 reg->ref_obj_id = 0; 11618 ref_set_non_owning(env, reg); 11619 } 11620 })); 11621 return 0; 11622 } 11623 11624 verifier_bug(env, "ref state missing for ref_obj_id"); 11625 return -EFAULT; 11626 } 11627 11628 /* Implementation details: 11629 * 11630 * Each register points to some region of memory, which we define as an 11631 * allocation. Each allocation may embed a bpf_spin_lock which protects any 11632 * special BPF objects (bpf_list_head, bpf_rb_root, etc.) part of the same 11633 * allocation. The lock and the data it protects are colocated in the same 11634 * memory region. 11635 * 11636 * Hence, everytime a register holds a pointer value pointing to such 11637 * allocation, the verifier preserves a unique reg->id for it. 11638 * 11639 * The verifier remembers the lock 'ptr' and the lock 'id' whenever 11640 * bpf_spin_lock is called. 11641 * 11642 * To enable this, lock state in the verifier captures two values: 11643 * active_lock.ptr = Register's type specific pointer 11644 * active_lock.id = A unique ID for each register pointer value 11645 * 11646 * Currently, PTR_TO_MAP_VALUE and PTR_TO_BTF_ID | MEM_ALLOC are the two 11647 * supported register types. 11648 * 11649 * The active_lock.ptr in case of map values is the reg->map_ptr, and in case of 11650 * allocated objects is the reg->btf pointer. 11651 * 11652 * The active_lock.id is non-unique for maps supporting direct_value_addr, as we 11653 * can establish the provenance of the map value statically for each distinct 11654 * lookup into such maps. They always contain a single map value hence unique 11655 * IDs for each pseudo load pessimizes the algorithm and rejects valid programs. 11656 * 11657 * So, in case of global variables, they use array maps with max_entries = 1, 11658 * hence their active_lock.ptr becomes map_ptr and id = 0 (since they all point 11659 * into the same map value as max_entries is 1, as described above). 11660 * 11661 * In case of inner map lookups, the inner map pointer has same map_ptr as the 11662 * outer map pointer (in verifier context), but each lookup into an inner map 11663 * assigns a fresh reg->id to the lookup, so while lookups into distinct inner 11664 * maps from the same outer map share the same map_ptr as active_lock.ptr, they 11665 * will get different reg->id assigned to each lookup, hence different 11666 * active_lock.id. 11667 * 11668 * In case of allocated objects, active_lock.ptr is the reg->btf, and the 11669 * reg->id is a unique ID preserved after the NULL pointer check on the pointer 11670 * returned from bpf_obj_new. Each allocation receives a new reg->id. 11671 */ 11672 static int check_reg_allocation_locked(struct bpf_verifier_env *env, struct bpf_reg_state *reg) 11673 { 11674 struct bpf_reference_state *s; 11675 void *ptr; 11676 u32 id; 11677 11678 switch ((int)reg->type) { 11679 case PTR_TO_MAP_VALUE: 11680 ptr = reg->map_ptr; 11681 break; 11682 case PTR_TO_BTF_ID | MEM_ALLOC: 11683 ptr = reg->btf; 11684 break; 11685 default: 11686 verifier_bug(env, "unknown reg type for lock check"); 11687 return -EFAULT; 11688 } 11689 id = reg->id; 11690 11691 if (!env->cur_state->active_locks) 11692 return -EINVAL; 11693 s = find_lock_state(env->cur_state, REF_TYPE_LOCK_MASK, id, ptr); 11694 if (!s) { 11695 verbose(env, "held lock and object are not in the same allocation\n"); 11696 return -EINVAL; 11697 } 11698 return 0; 11699 } 11700 11701 static bool is_bpf_list_api_kfunc(u32 btf_id) 11702 { 11703 return is_bpf_list_push_kfunc(btf_id) || 11704 btf_id == special_kfunc_list[KF_bpf_list_pop_front] || 11705 btf_id == special_kfunc_list[KF_bpf_list_pop_back] || 11706 btf_id == special_kfunc_list[KF_bpf_list_front] || 11707 btf_id == special_kfunc_list[KF_bpf_list_back]; 11708 } 11709 11710 static bool is_bpf_rbtree_api_kfunc(u32 btf_id) 11711 { 11712 return is_bpf_rbtree_add_kfunc(btf_id) || 11713 btf_id == special_kfunc_list[KF_bpf_rbtree_remove] || 11714 btf_id == special_kfunc_list[KF_bpf_rbtree_first] || 11715 btf_id == special_kfunc_list[KF_bpf_rbtree_root] || 11716 btf_id == special_kfunc_list[KF_bpf_rbtree_left] || 11717 btf_id == special_kfunc_list[KF_bpf_rbtree_right]; 11718 } 11719 11720 static bool is_bpf_iter_num_api_kfunc(u32 btf_id) 11721 { 11722 return btf_id == special_kfunc_list[KF_bpf_iter_num_new] || 11723 btf_id == special_kfunc_list[KF_bpf_iter_num_next] || 11724 btf_id == special_kfunc_list[KF_bpf_iter_num_destroy]; 11725 } 11726 11727 static bool is_bpf_graph_api_kfunc(u32 btf_id) 11728 { 11729 return is_bpf_list_api_kfunc(btf_id) || 11730 is_bpf_rbtree_api_kfunc(btf_id) || 11731 is_bpf_refcount_acquire_kfunc(btf_id); 11732 } 11733 11734 static bool is_bpf_res_spin_lock_kfunc(u32 btf_id) 11735 { 11736 return btf_id == special_kfunc_list[KF_bpf_res_spin_lock] || 11737 btf_id == special_kfunc_list[KF_bpf_res_spin_unlock] || 11738 btf_id == special_kfunc_list[KF_bpf_res_spin_lock_irqsave] || 11739 btf_id == special_kfunc_list[KF_bpf_res_spin_unlock_irqrestore]; 11740 } 11741 11742 static bool is_bpf_arena_kfunc(u32 btf_id) 11743 { 11744 return btf_id == special_kfunc_list[KF_bpf_arena_alloc_pages] || 11745 btf_id == special_kfunc_list[KF_bpf_arena_free_pages] || 11746 btf_id == special_kfunc_list[KF_bpf_arena_reserve_pages]; 11747 } 11748 11749 static bool is_bpf_stream_kfunc(u32 btf_id) 11750 { 11751 return btf_id == special_kfunc_list[KF_bpf_stream_vprintk] || 11752 btf_id == special_kfunc_list[KF_bpf_stream_print_stack]; 11753 } 11754 11755 static bool kfunc_spin_allowed(u32 btf_id) 11756 { 11757 return is_bpf_graph_api_kfunc(btf_id) || is_bpf_iter_num_api_kfunc(btf_id) || 11758 is_bpf_res_spin_lock_kfunc(btf_id) || is_bpf_arena_kfunc(btf_id) || 11759 is_bpf_stream_kfunc(btf_id); 11760 } 11761 11762 static bool is_sync_callback_calling_kfunc(u32 btf_id) 11763 { 11764 return is_bpf_rbtree_add_kfunc(btf_id); 11765 } 11766 11767 static bool is_async_callback_calling_kfunc(u32 btf_id) 11768 { 11769 return is_bpf_wq_set_callback_kfunc(btf_id) || 11770 is_task_work_add_kfunc(btf_id); 11771 } 11772 11773 static bool is_bpf_throw_kfunc(struct bpf_insn *insn) 11774 { 11775 return bpf_pseudo_kfunc_call(insn) && insn->off == 0 && 11776 insn->imm == special_kfunc_list[KF_bpf_throw]; 11777 } 11778 11779 static bool is_bpf_wq_set_callback_kfunc(u32 btf_id) 11780 { 11781 return btf_id == special_kfunc_list[KF_bpf_wq_set_callback]; 11782 } 11783 11784 static bool is_callback_calling_kfunc(u32 btf_id) 11785 { 11786 return is_sync_callback_calling_kfunc(btf_id) || 11787 is_async_callback_calling_kfunc(btf_id); 11788 } 11789 11790 static bool is_rbtree_lock_required_kfunc(u32 btf_id) 11791 { 11792 return is_bpf_rbtree_api_kfunc(btf_id); 11793 } 11794 11795 static bool check_kfunc_is_graph_root_api(struct bpf_verifier_env *env, 11796 enum btf_field_type head_field_type, 11797 u32 kfunc_btf_id) 11798 { 11799 bool ret; 11800 11801 switch (head_field_type) { 11802 case BPF_LIST_HEAD: 11803 ret = is_bpf_list_api_kfunc(kfunc_btf_id); 11804 break; 11805 case BPF_RB_ROOT: 11806 ret = is_bpf_rbtree_api_kfunc(kfunc_btf_id); 11807 break; 11808 default: 11809 verbose(env, "verifier internal error: unexpected graph root argument type %s\n", 11810 btf_field_type_name(head_field_type)); 11811 return false; 11812 } 11813 11814 if (!ret) 11815 verbose(env, "verifier internal error: %s head arg for unknown kfunc\n", 11816 btf_field_type_name(head_field_type)); 11817 return ret; 11818 } 11819 11820 static bool check_kfunc_is_graph_node_api(struct bpf_verifier_env *env, 11821 enum btf_field_type node_field_type, 11822 u32 kfunc_btf_id) 11823 { 11824 bool ret; 11825 11826 switch (node_field_type) { 11827 case BPF_LIST_NODE: 11828 ret = is_bpf_list_push_kfunc(kfunc_btf_id); 11829 break; 11830 case BPF_RB_NODE: 11831 ret = (is_bpf_rbtree_add_kfunc(kfunc_btf_id) || 11832 kfunc_btf_id == special_kfunc_list[KF_bpf_rbtree_remove] || 11833 kfunc_btf_id == special_kfunc_list[KF_bpf_rbtree_left] || 11834 kfunc_btf_id == special_kfunc_list[KF_bpf_rbtree_right]); 11835 break; 11836 default: 11837 verbose(env, "verifier internal error: unexpected graph node argument type %s\n", 11838 btf_field_type_name(node_field_type)); 11839 return false; 11840 } 11841 11842 if (!ret) 11843 verbose(env, "verifier internal error: %s node arg for unknown kfunc\n", 11844 btf_field_type_name(node_field_type)); 11845 return ret; 11846 } 11847 11848 static int 11849 __process_kf_arg_ptr_to_graph_root(struct bpf_verifier_env *env, 11850 struct bpf_reg_state *reg, u32 regno, 11851 struct bpf_kfunc_call_arg_meta *meta, 11852 enum btf_field_type head_field_type, 11853 struct btf_field **head_field) 11854 { 11855 const char *head_type_name; 11856 struct btf_field *field; 11857 struct btf_record *rec; 11858 u32 head_off; 11859 11860 if (meta->btf != btf_vmlinux) { 11861 verifier_bug(env, "unexpected btf mismatch in kfunc call"); 11862 return -EFAULT; 11863 } 11864 11865 if (!check_kfunc_is_graph_root_api(env, head_field_type, meta->func_id)) 11866 return -EFAULT; 11867 11868 head_type_name = btf_field_type_name(head_field_type); 11869 if (!tnum_is_const(reg->var_off)) { 11870 verbose(env, 11871 "R%d doesn't have constant offset. %s has to be at the constant offset\n", 11872 regno, head_type_name); 11873 return -EINVAL; 11874 } 11875 11876 rec = reg_btf_record(reg); 11877 head_off = reg->var_off.value; 11878 field = btf_record_find(rec, head_off, head_field_type); 11879 if (!field) { 11880 verbose(env, "%s not found at offset=%u\n", head_type_name, head_off); 11881 return -EINVAL; 11882 } 11883 11884 /* All functions require bpf_list_head to be protected using a bpf_spin_lock */ 11885 if (check_reg_allocation_locked(env, reg)) { 11886 verbose(env, "bpf_spin_lock at off=%d must be held for %s\n", 11887 rec->spin_lock_off, head_type_name); 11888 return -EINVAL; 11889 } 11890 11891 if (*head_field) { 11892 verifier_bug(env, "repeating %s arg", head_type_name); 11893 return -EFAULT; 11894 } 11895 *head_field = field; 11896 return 0; 11897 } 11898 11899 static int process_kf_arg_ptr_to_list_head(struct bpf_verifier_env *env, 11900 struct bpf_reg_state *reg, u32 regno, 11901 struct bpf_kfunc_call_arg_meta *meta) 11902 { 11903 return __process_kf_arg_ptr_to_graph_root(env, reg, regno, meta, BPF_LIST_HEAD, 11904 &meta->arg_list_head.field); 11905 } 11906 11907 static int process_kf_arg_ptr_to_rbtree_root(struct bpf_verifier_env *env, 11908 struct bpf_reg_state *reg, u32 regno, 11909 struct bpf_kfunc_call_arg_meta *meta) 11910 { 11911 return __process_kf_arg_ptr_to_graph_root(env, reg, regno, meta, BPF_RB_ROOT, 11912 &meta->arg_rbtree_root.field); 11913 } 11914 11915 static int 11916 __process_kf_arg_ptr_to_graph_node(struct bpf_verifier_env *env, 11917 struct bpf_reg_state *reg, u32 regno, 11918 struct bpf_kfunc_call_arg_meta *meta, 11919 enum btf_field_type head_field_type, 11920 enum btf_field_type node_field_type, 11921 struct btf_field **node_field) 11922 { 11923 const char *node_type_name; 11924 const struct btf_type *et, *t; 11925 struct btf_field *field; 11926 u32 node_off; 11927 11928 if (meta->btf != btf_vmlinux) { 11929 verifier_bug(env, "unexpected btf mismatch in kfunc call"); 11930 return -EFAULT; 11931 } 11932 11933 if (!check_kfunc_is_graph_node_api(env, node_field_type, meta->func_id)) 11934 return -EFAULT; 11935 11936 node_type_name = btf_field_type_name(node_field_type); 11937 if (!tnum_is_const(reg->var_off)) { 11938 verbose(env, 11939 "R%d doesn't have constant offset. %s has to be at the constant offset\n", 11940 regno, node_type_name); 11941 return -EINVAL; 11942 } 11943 11944 node_off = reg->var_off.value; 11945 field = reg_find_field_offset(reg, node_off, node_field_type); 11946 if (!field) { 11947 verbose(env, "%s not found at offset=%u\n", node_type_name, node_off); 11948 return -EINVAL; 11949 } 11950 11951 field = *node_field; 11952 11953 et = btf_type_by_id(field->graph_root.btf, field->graph_root.value_btf_id); 11954 t = btf_type_by_id(reg->btf, reg->btf_id); 11955 if (!btf_struct_ids_match(&env->log, reg->btf, reg->btf_id, 0, field->graph_root.btf, 11956 field->graph_root.value_btf_id, true)) { 11957 verbose(env, "operation on %s expects arg#1 %s at offset=%d " 11958 "in struct %s, but arg is at offset=%d in struct %s\n", 11959 btf_field_type_name(head_field_type), 11960 btf_field_type_name(node_field_type), 11961 field->graph_root.node_offset, 11962 btf_name_by_offset(field->graph_root.btf, et->name_off), 11963 node_off, btf_name_by_offset(reg->btf, t->name_off)); 11964 return -EINVAL; 11965 } 11966 meta->arg_btf = reg->btf; 11967 meta->arg_btf_id = reg->btf_id; 11968 11969 if (node_off != field->graph_root.node_offset) { 11970 verbose(env, "arg#1 offset=%d, but expected %s at offset=%d in struct %s\n", 11971 node_off, btf_field_type_name(node_field_type), 11972 field->graph_root.node_offset, 11973 btf_name_by_offset(field->graph_root.btf, et->name_off)); 11974 return -EINVAL; 11975 } 11976 11977 return 0; 11978 } 11979 11980 static int process_kf_arg_ptr_to_list_node(struct bpf_verifier_env *env, 11981 struct bpf_reg_state *reg, u32 regno, 11982 struct bpf_kfunc_call_arg_meta *meta) 11983 { 11984 return __process_kf_arg_ptr_to_graph_node(env, reg, regno, meta, 11985 BPF_LIST_HEAD, BPF_LIST_NODE, 11986 &meta->arg_list_head.field); 11987 } 11988 11989 static int process_kf_arg_ptr_to_rbtree_node(struct bpf_verifier_env *env, 11990 struct bpf_reg_state *reg, u32 regno, 11991 struct bpf_kfunc_call_arg_meta *meta) 11992 { 11993 return __process_kf_arg_ptr_to_graph_node(env, reg, regno, meta, 11994 BPF_RB_ROOT, BPF_RB_NODE, 11995 &meta->arg_rbtree_root.field); 11996 } 11997 11998 /* 11999 * css_task iter allowlist is needed to avoid dead locking on css_set_lock. 12000 * LSM hooks and iters (both sleepable and non-sleepable) are safe. 12001 * Any sleepable progs are also safe since bpf_check_attach_target() enforce 12002 * them can only be attached to some specific hook points. 12003 */ 12004 static bool check_css_task_iter_allowlist(struct bpf_verifier_env *env) 12005 { 12006 enum bpf_prog_type prog_type = resolve_prog_type(env->prog); 12007 12008 switch (prog_type) { 12009 case BPF_PROG_TYPE_LSM: 12010 return true; 12011 case BPF_PROG_TYPE_TRACING: 12012 if (env->prog->expected_attach_type == BPF_TRACE_ITER) 12013 return true; 12014 fallthrough; 12015 default: 12016 return in_sleepable(env); 12017 } 12018 } 12019 12020 static int check_kfunc_args(struct bpf_verifier_env *env, struct bpf_kfunc_call_arg_meta *meta, 12021 int insn_idx) 12022 { 12023 const char *func_name = meta->func_name, *ref_tname; 12024 const struct btf *btf = meta->btf; 12025 const struct btf_param *args; 12026 struct btf_record *rec; 12027 u32 i, nargs; 12028 int ret; 12029 12030 args = (const struct btf_param *)(meta->func_proto + 1); 12031 nargs = btf_type_vlen(meta->func_proto); 12032 if (nargs > MAX_BPF_FUNC_REG_ARGS) { 12033 verbose(env, "Function %s has %d > %d args\n", func_name, nargs, 12034 MAX_BPF_FUNC_REG_ARGS); 12035 return -EINVAL; 12036 } 12037 12038 /* Check that BTF function arguments match actual types that the 12039 * verifier sees. 12040 */ 12041 for (i = 0; i < nargs; i++) { 12042 struct bpf_reg_state *regs = cur_regs(env), *reg = ®s[i + 1]; 12043 const struct btf_type *t, *ref_t, *resolve_ret; 12044 enum bpf_arg_type arg_type = ARG_DONTCARE; 12045 u32 regno = i + 1, ref_id, type_size; 12046 bool is_ret_buf_sz = false; 12047 int kf_arg_type; 12048 12049 if (is_kfunc_arg_prog_aux(btf, &args[i])) { 12050 /* Reject repeated use bpf_prog_aux */ 12051 if (meta->arg_prog) { 12052 verifier_bug(env, "Only 1 prog->aux argument supported per-kfunc"); 12053 return -EFAULT; 12054 } 12055 meta->arg_prog = true; 12056 cur_aux(env)->arg_prog = regno; 12057 continue; 12058 } 12059 12060 if (is_kfunc_arg_ignore(btf, &args[i]) || is_kfunc_arg_implicit(meta, i)) 12061 continue; 12062 12063 t = btf_type_skip_modifiers(btf, args[i].type, NULL); 12064 12065 if (btf_type_is_scalar(t)) { 12066 if (reg->type != SCALAR_VALUE) { 12067 verbose(env, "R%d is not a scalar\n", regno); 12068 return -EINVAL; 12069 } 12070 12071 if (is_kfunc_arg_constant(meta->btf, &args[i])) { 12072 if (meta->arg_constant.found) { 12073 verifier_bug(env, "only one constant argument permitted"); 12074 return -EFAULT; 12075 } 12076 if (!tnum_is_const(reg->var_off)) { 12077 verbose(env, "R%d must be a known constant\n", regno); 12078 return -EINVAL; 12079 } 12080 ret = mark_chain_precision(env, regno); 12081 if (ret < 0) 12082 return ret; 12083 meta->arg_constant.found = true; 12084 meta->arg_constant.value = reg->var_off.value; 12085 } else if (is_kfunc_arg_scalar_with_name(btf, &args[i], "rdonly_buf_size")) { 12086 meta->r0_rdonly = true; 12087 is_ret_buf_sz = true; 12088 } else if (is_kfunc_arg_scalar_with_name(btf, &args[i], "rdwr_buf_size")) { 12089 is_ret_buf_sz = true; 12090 } 12091 12092 if (is_ret_buf_sz) { 12093 if (meta->r0_size) { 12094 verbose(env, "2 or more rdonly/rdwr_buf_size parameters for kfunc"); 12095 return -EINVAL; 12096 } 12097 12098 if (!tnum_is_const(reg->var_off)) { 12099 verbose(env, "R%d is not a const\n", regno); 12100 return -EINVAL; 12101 } 12102 12103 meta->r0_size = reg->var_off.value; 12104 ret = mark_chain_precision(env, regno); 12105 if (ret) 12106 return ret; 12107 } 12108 continue; 12109 } 12110 12111 if (!btf_type_is_ptr(t)) { 12112 verbose(env, "Unrecognized arg#%d type %s\n", i, btf_type_str(t)); 12113 return -EINVAL; 12114 } 12115 12116 if ((bpf_register_is_null(reg) || type_may_be_null(reg->type)) && 12117 !is_kfunc_arg_nullable(meta->btf, &args[i])) { 12118 verbose(env, "Possibly NULL pointer passed to trusted arg%d\n", i); 12119 return -EACCES; 12120 } 12121 12122 if (reg->ref_obj_id) { 12123 if (is_kfunc_release(meta) && meta->ref_obj_id) { 12124 verifier_bug(env, "more than one arg with ref_obj_id R%d %u %u", 12125 regno, reg->ref_obj_id, 12126 meta->ref_obj_id); 12127 return -EFAULT; 12128 } 12129 meta->ref_obj_id = reg->ref_obj_id; 12130 if (is_kfunc_release(meta)) 12131 meta->release_regno = regno; 12132 } 12133 12134 ref_t = btf_type_skip_modifiers(btf, t->type, &ref_id); 12135 ref_tname = btf_name_by_offset(btf, ref_t->name_off); 12136 12137 kf_arg_type = get_kfunc_ptr_arg_type(env, meta, t, ref_t, ref_tname, args, i, nargs); 12138 if (kf_arg_type < 0) 12139 return kf_arg_type; 12140 12141 switch (kf_arg_type) { 12142 case KF_ARG_PTR_TO_NULL: 12143 continue; 12144 case KF_ARG_PTR_TO_MAP: 12145 if (!reg->map_ptr) { 12146 verbose(env, "pointer in R%d isn't map pointer\n", regno); 12147 return -EINVAL; 12148 } 12149 if (meta->map.ptr && (reg->map_ptr->record->wq_off >= 0 || 12150 reg->map_ptr->record->task_work_off >= 0)) { 12151 /* Use map_uid (which is unique id of inner map) to reject: 12152 * inner_map1 = bpf_map_lookup_elem(outer_map, key1) 12153 * inner_map2 = bpf_map_lookup_elem(outer_map, key2) 12154 * if (inner_map1 && inner_map2) { 12155 * wq = bpf_map_lookup_elem(inner_map1); 12156 * if (wq) 12157 * // mismatch would have been allowed 12158 * bpf_wq_init(wq, inner_map2); 12159 * } 12160 * 12161 * Comparing map_ptr is enough to distinguish normal and outer maps. 12162 */ 12163 if (meta->map.ptr != reg->map_ptr || 12164 meta->map.uid != reg->map_uid) { 12165 if (reg->map_ptr->record->task_work_off >= 0) { 12166 verbose(env, 12167 "bpf_task_work pointer in R2 map_uid=%d doesn't match map pointer in R3 map_uid=%d\n", 12168 meta->map.uid, reg->map_uid); 12169 return -EINVAL; 12170 } 12171 verbose(env, 12172 "workqueue pointer in R1 map_uid=%d doesn't match map pointer in R2 map_uid=%d\n", 12173 meta->map.uid, reg->map_uid); 12174 return -EINVAL; 12175 } 12176 } 12177 meta->map.ptr = reg->map_ptr; 12178 meta->map.uid = reg->map_uid; 12179 fallthrough; 12180 case KF_ARG_PTR_TO_ALLOC_BTF_ID: 12181 case KF_ARG_PTR_TO_BTF_ID: 12182 if (!is_trusted_reg(reg)) { 12183 if (!is_kfunc_rcu(meta)) { 12184 verbose(env, "R%d must be referenced or trusted\n", regno); 12185 return -EINVAL; 12186 } 12187 if (!is_rcu_reg(reg)) { 12188 verbose(env, "R%d must be a rcu pointer\n", regno); 12189 return -EINVAL; 12190 } 12191 } 12192 fallthrough; 12193 case KF_ARG_PTR_TO_DYNPTR: 12194 case KF_ARG_PTR_TO_ITER: 12195 case KF_ARG_PTR_TO_LIST_HEAD: 12196 case KF_ARG_PTR_TO_LIST_NODE: 12197 case KF_ARG_PTR_TO_RB_ROOT: 12198 case KF_ARG_PTR_TO_RB_NODE: 12199 case KF_ARG_PTR_TO_MEM: 12200 case KF_ARG_PTR_TO_MEM_SIZE: 12201 case KF_ARG_PTR_TO_CALLBACK: 12202 case KF_ARG_PTR_TO_REFCOUNTED_KPTR: 12203 case KF_ARG_PTR_TO_CONST_STR: 12204 case KF_ARG_PTR_TO_WORKQUEUE: 12205 case KF_ARG_PTR_TO_TIMER: 12206 case KF_ARG_PTR_TO_TASK_WORK: 12207 case KF_ARG_PTR_TO_IRQ_FLAG: 12208 case KF_ARG_PTR_TO_RES_SPIN_LOCK: 12209 break; 12210 case KF_ARG_PTR_TO_CTX: 12211 arg_type = ARG_PTR_TO_CTX; 12212 break; 12213 default: 12214 verifier_bug(env, "unknown kfunc arg type %d", kf_arg_type); 12215 return -EFAULT; 12216 } 12217 12218 if (is_kfunc_release(meta) && reg->ref_obj_id) 12219 arg_type |= OBJ_RELEASE; 12220 ret = check_func_arg_reg_off(env, reg, regno, arg_type); 12221 if (ret < 0) 12222 return ret; 12223 12224 switch (kf_arg_type) { 12225 case KF_ARG_PTR_TO_CTX: 12226 if (reg->type != PTR_TO_CTX) { 12227 verbose(env, "arg#%d expected pointer to ctx, but got %s\n", 12228 i, reg_type_str(env, reg->type)); 12229 return -EINVAL; 12230 } 12231 12232 if (meta->func_id == special_kfunc_list[KF_bpf_cast_to_kern_ctx]) { 12233 ret = get_kern_ctx_btf_id(&env->log, resolve_prog_type(env->prog)); 12234 if (ret < 0) 12235 return -EINVAL; 12236 meta->ret_btf_id = ret; 12237 } 12238 break; 12239 case KF_ARG_PTR_TO_ALLOC_BTF_ID: 12240 if (reg->type == (PTR_TO_BTF_ID | MEM_ALLOC)) { 12241 if (!is_bpf_obj_drop_kfunc(meta->func_id)) { 12242 verbose(env, "arg#%d expected for bpf_obj_drop()\n", i); 12243 return -EINVAL; 12244 } 12245 } else if (reg->type == (PTR_TO_BTF_ID | MEM_ALLOC | MEM_PERCPU)) { 12246 if (!is_bpf_percpu_obj_drop_kfunc(meta->func_id)) { 12247 verbose(env, "arg#%d expected for bpf_percpu_obj_drop()\n", i); 12248 return -EINVAL; 12249 } 12250 } else { 12251 verbose(env, "arg#%d expected pointer to allocated object\n", i); 12252 return -EINVAL; 12253 } 12254 if (!reg->ref_obj_id) { 12255 verbose(env, "allocated object must be referenced\n"); 12256 return -EINVAL; 12257 } 12258 if (meta->btf == btf_vmlinux) { 12259 meta->arg_btf = reg->btf; 12260 meta->arg_btf_id = reg->btf_id; 12261 } 12262 break; 12263 case KF_ARG_PTR_TO_DYNPTR: 12264 { 12265 enum bpf_arg_type dynptr_arg_type = ARG_PTR_TO_DYNPTR; 12266 int clone_ref_obj_id = 0; 12267 12268 if (reg->type == CONST_PTR_TO_DYNPTR) 12269 dynptr_arg_type |= MEM_RDONLY; 12270 12271 if (is_kfunc_arg_uninit(btf, &args[i])) 12272 dynptr_arg_type |= MEM_UNINIT; 12273 12274 if (meta->func_id == special_kfunc_list[KF_bpf_dynptr_from_skb]) { 12275 dynptr_arg_type |= DYNPTR_TYPE_SKB; 12276 } else if (meta->func_id == special_kfunc_list[KF_bpf_dynptr_from_xdp]) { 12277 dynptr_arg_type |= DYNPTR_TYPE_XDP; 12278 } else if (meta->func_id == special_kfunc_list[KF_bpf_dynptr_from_skb_meta]) { 12279 dynptr_arg_type |= DYNPTR_TYPE_SKB_META; 12280 } else if (meta->func_id == special_kfunc_list[KF_bpf_dynptr_from_file]) { 12281 dynptr_arg_type |= DYNPTR_TYPE_FILE; 12282 } else if (meta->func_id == special_kfunc_list[KF_bpf_dynptr_file_discard]) { 12283 dynptr_arg_type |= DYNPTR_TYPE_FILE; 12284 meta->release_regno = regno; 12285 } else if (meta->func_id == special_kfunc_list[KF_bpf_dynptr_clone] && 12286 (dynptr_arg_type & MEM_UNINIT)) { 12287 enum bpf_dynptr_type parent_type = meta->initialized_dynptr.type; 12288 12289 if (parent_type == BPF_DYNPTR_TYPE_INVALID) { 12290 verifier_bug(env, "no dynptr type for parent of clone"); 12291 return -EFAULT; 12292 } 12293 12294 dynptr_arg_type |= (unsigned int)get_dynptr_type_flag(parent_type); 12295 clone_ref_obj_id = meta->initialized_dynptr.ref_obj_id; 12296 if (dynptr_type_refcounted(parent_type) && !clone_ref_obj_id) { 12297 verifier_bug(env, "missing ref obj id for parent of clone"); 12298 return -EFAULT; 12299 } 12300 } 12301 12302 ret = process_dynptr_func(env, regno, insn_idx, dynptr_arg_type, clone_ref_obj_id); 12303 if (ret < 0) 12304 return ret; 12305 12306 if (!(dynptr_arg_type & MEM_UNINIT)) { 12307 int id = dynptr_id(env, reg); 12308 12309 if (id < 0) { 12310 verifier_bug(env, "failed to obtain dynptr id"); 12311 return id; 12312 } 12313 meta->initialized_dynptr.id = id; 12314 meta->initialized_dynptr.type = dynptr_get_type(env, reg); 12315 meta->initialized_dynptr.ref_obj_id = dynptr_ref_obj_id(env, reg); 12316 } 12317 12318 break; 12319 } 12320 case KF_ARG_PTR_TO_ITER: 12321 if (meta->func_id == special_kfunc_list[KF_bpf_iter_css_task_new]) { 12322 if (!check_css_task_iter_allowlist(env)) { 12323 verbose(env, "css_task_iter is only allowed in bpf_lsm, bpf_iter and sleepable progs\n"); 12324 return -EINVAL; 12325 } 12326 } 12327 ret = process_iter_arg(env, regno, insn_idx, meta); 12328 if (ret < 0) 12329 return ret; 12330 break; 12331 case KF_ARG_PTR_TO_LIST_HEAD: 12332 if (reg->type != PTR_TO_MAP_VALUE && 12333 reg->type != (PTR_TO_BTF_ID | MEM_ALLOC)) { 12334 verbose(env, "arg#%d expected pointer to map value or allocated object\n", i); 12335 return -EINVAL; 12336 } 12337 if (reg->type == (PTR_TO_BTF_ID | MEM_ALLOC) && !reg->ref_obj_id) { 12338 verbose(env, "allocated object must be referenced\n"); 12339 return -EINVAL; 12340 } 12341 ret = process_kf_arg_ptr_to_list_head(env, reg, regno, meta); 12342 if (ret < 0) 12343 return ret; 12344 break; 12345 case KF_ARG_PTR_TO_RB_ROOT: 12346 if (reg->type != PTR_TO_MAP_VALUE && 12347 reg->type != (PTR_TO_BTF_ID | MEM_ALLOC)) { 12348 verbose(env, "arg#%d expected pointer to map value or allocated object\n", i); 12349 return -EINVAL; 12350 } 12351 if (reg->type == (PTR_TO_BTF_ID | MEM_ALLOC) && !reg->ref_obj_id) { 12352 verbose(env, "allocated object must be referenced\n"); 12353 return -EINVAL; 12354 } 12355 ret = process_kf_arg_ptr_to_rbtree_root(env, reg, regno, meta); 12356 if (ret < 0) 12357 return ret; 12358 break; 12359 case KF_ARG_PTR_TO_LIST_NODE: 12360 if (reg->type != (PTR_TO_BTF_ID | MEM_ALLOC)) { 12361 verbose(env, "arg#%d expected pointer to allocated object\n", i); 12362 return -EINVAL; 12363 } 12364 if (!reg->ref_obj_id) { 12365 verbose(env, "allocated object must be referenced\n"); 12366 return -EINVAL; 12367 } 12368 ret = process_kf_arg_ptr_to_list_node(env, reg, regno, meta); 12369 if (ret < 0) 12370 return ret; 12371 break; 12372 case KF_ARG_PTR_TO_RB_NODE: 12373 if (is_bpf_rbtree_add_kfunc(meta->func_id)) { 12374 if (reg->type != (PTR_TO_BTF_ID | MEM_ALLOC)) { 12375 verbose(env, "arg#%d expected pointer to allocated object\n", i); 12376 return -EINVAL; 12377 } 12378 if (!reg->ref_obj_id) { 12379 verbose(env, "allocated object must be referenced\n"); 12380 return -EINVAL; 12381 } 12382 } else { 12383 if (!type_is_non_owning_ref(reg->type) && !reg->ref_obj_id) { 12384 verbose(env, "%s can only take non-owning or refcounted bpf_rb_node pointer\n", func_name); 12385 return -EINVAL; 12386 } 12387 if (in_rbtree_lock_required_cb(env)) { 12388 verbose(env, "%s not allowed in rbtree cb\n", func_name); 12389 return -EINVAL; 12390 } 12391 } 12392 12393 ret = process_kf_arg_ptr_to_rbtree_node(env, reg, regno, meta); 12394 if (ret < 0) 12395 return ret; 12396 break; 12397 case KF_ARG_PTR_TO_MAP: 12398 /* If argument has '__map' suffix expect 'struct bpf_map *' */ 12399 ref_id = *reg2btf_ids[CONST_PTR_TO_MAP]; 12400 ref_t = btf_type_by_id(btf_vmlinux, ref_id); 12401 ref_tname = btf_name_by_offset(btf, ref_t->name_off); 12402 fallthrough; 12403 case KF_ARG_PTR_TO_BTF_ID: 12404 /* Only base_type is checked, further checks are done here */ 12405 if ((base_type(reg->type) != PTR_TO_BTF_ID || 12406 (bpf_type_has_unsafe_modifiers(reg->type) && !is_rcu_reg(reg))) && 12407 !reg2btf_ids[base_type(reg->type)]) { 12408 verbose(env, "arg#%d is %s ", i, reg_type_str(env, reg->type)); 12409 verbose(env, "expected %s or socket\n", 12410 reg_type_str(env, base_type(reg->type) | 12411 (type_flag(reg->type) & BPF_REG_TRUSTED_MODIFIERS))); 12412 return -EINVAL; 12413 } 12414 ret = process_kf_arg_ptr_to_btf_id(env, reg, ref_t, ref_tname, ref_id, meta, i); 12415 if (ret < 0) 12416 return ret; 12417 break; 12418 case KF_ARG_PTR_TO_MEM: 12419 resolve_ret = btf_resolve_size(btf, ref_t, &type_size); 12420 if (IS_ERR(resolve_ret)) { 12421 verbose(env, "arg#%d reference type('%s %s') size cannot be determined: %ld\n", 12422 i, btf_type_str(ref_t), ref_tname, PTR_ERR(resolve_ret)); 12423 return -EINVAL; 12424 } 12425 ret = check_mem_reg(env, reg, regno, type_size); 12426 if (ret < 0) 12427 return ret; 12428 break; 12429 case KF_ARG_PTR_TO_MEM_SIZE: 12430 { 12431 struct bpf_reg_state *buff_reg = ®s[regno]; 12432 const struct btf_param *buff_arg = &args[i]; 12433 struct bpf_reg_state *size_reg = ®s[regno + 1]; 12434 const struct btf_param *size_arg = &args[i + 1]; 12435 12436 if (!bpf_register_is_null(buff_reg) || !is_kfunc_arg_nullable(meta->btf, buff_arg)) { 12437 ret = check_kfunc_mem_size_reg(env, size_reg, regno + 1); 12438 if (ret < 0) { 12439 verbose(env, "arg#%d arg#%d memory, len pair leads to invalid memory access\n", i, i + 1); 12440 return ret; 12441 } 12442 } 12443 12444 if (is_kfunc_arg_const_mem_size(meta->btf, size_arg, size_reg)) { 12445 if (meta->arg_constant.found) { 12446 verifier_bug(env, "only one constant argument permitted"); 12447 return -EFAULT; 12448 } 12449 if (!tnum_is_const(size_reg->var_off)) { 12450 verbose(env, "R%d must be a known constant\n", regno + 1); 12451 return -EINVAL; 12452 } 12453 meta->arg_constant.found = true; 12454 meta->arg_constant.value = size_reg->var_off.value; 12455 } 12456 12457 /* Skip next '__sz' or '__szk' argument */ 12458 i++; 12459 break; 12460 } 12461 case KF_ARG_PTR_TO_CALLBACK: 12462 if (reg->type != PTR_TO_FUNC) { 12463 verbose(env, "arg%d expected pointer to func\n", i); 12464 return -EINVAL; 12465 } 12466 meta->subprogno = reg->subprogno; 12467 break; 12468 case KF_ARG_PTR_TO_REFCOUNTED_KPTR: 12469 if (!type_is_ptr_alloc_obj(reg->type)) { 12470 verbose(env, "arg#%d is neither owning or non-owning ref\n", i); 12471 return -EINVAL; 12472 } 12473 if (!type_is_non_owning_ref(reg->type)) 12474 meta->arg_owning_ref = true; 12475 12476 rec = reg_btf_record(reg); 12477 if (!rec) { 12478 verifier_bug(env, "Couldn't find btf_record"); 12479 return -EFAULT; 12480 } 12481 12482 if (rec->refcount_off < 0) { 12483 verbose(env, "arg#%d doesn't point to a type with bpf_refcount field\n", i); 12484 return -EINVAL; 12485 } 12486 12487 meta->arg_btf = reg->btf; 12488 meta->arg_btf_id = reg->btf_id; 12489 break; 12490 case KF_ARG_PTR_TO_CONST_STR: 12491 if (reg->type != PTR_TO_MAP_VALUE) { 12492 verbose(env, "arg#%d doesn't point to a const string\n", i); 12493 return -EINVAL; 12494 } 12495 ret = check_reg_const_str(env, reg, regno); 12496 if (ret) 12497 return ret; 12498 break; 12499 case KF_ARG_PTR_TO_WORKQUEUE: 12500 if (reg->type != PTR_TO_MAP_VALUE) { 12501 verbose(env, "arg#%d doesn't point to a map value\n", i); 12502 return -EINVAL; 12503 } 12504 ret = check_map_field_pointer(env, regno, BPF_WORKQUEUE, &meta->map); 12505 if (ret < 0) 12506 return ret; 12507 break; 12508 case KF_ARG_PTR_TO_TIMER: 12509 if (reg->type != PTR_TO_MAP_VALUE) { 12510 verbose(env, "arg#%d doesn't point to a map value\n", i); 12511 return -EINVAL; 12512 } 12513 ret = process_timer_kfunc(env, regno, meta); 12514 if (ret < 0) 12515 return ret; 12516 break; 12517 case KF_ARG_PTR_TO_TASK_WORK: 12518 if (reg->type != PTR_TO_MAP_VALUE) { 12519 verbose(env, "arg#%d doesn't point to a map value\n", i); 12520 return -EINVAL; 12521 } 12522 ret = check_map_field_pointer(env, regno, BPF_TASK_WORK, &meta->map); 12523 if (ret < 0) 12524 return ret; 12525 break; 12526 case KF_ARG_PTR_TO_IRQ_FLAG: 12527 if (reg->type != PTR_TO_STACK) { 12528 verbose(env, "arg#%d doesn't point to an irq flag on stack\n", i); 12529 return -EINVAL; 12530 } 12531 ret = process_irq_flag(env, regno, meta); 12532 if (ret < 0) 12533 return ret; 12534 break; 12535 case KF_ARG_PTR_TO_RES_SPIN_LOCK: 12536 { 12537 int flags = PROCESS_RES_LOCK; 12538 12539 if (reg->type != PTR_TO_MAP_VALUE && reg->type != (PTR_TO_BTF_ID | MEM_ALLOC)) { 12540 verbose(env, "arg#%d doesn't point to map value or allocated object\n", i); 12541 return -EINVAL; 12542 } 12543 12544 if (!is_bpf_res_spin_lock_kfunc(meta->func_id)) 12545 return -EFAULT; 12546 if (meta->func_id == special_kfunc_list[KF_bpf_res_spin_lock] || 12547 meta->func_id == special_kfunc_list[KF_bpf_res_spin_lock_irqsave]) 12548 flags |= PROCESS_SPIN_LOCK; 12549 if (meta->func_id == special_kfunc_list[KF_bpf_res_spin_lock_irqsave] || 12550 meta->func_id == special_kfunc_list[KF_bpf_res_spin_unlock_irqrestore]) 12551 flags |= PROCESS_LOCK_IRQ; 12552 ret = process_spin_lock(env, regno, flags); 12553 if (ret < 0) 12554 return ret; 12555 break; 12556 } 12557 } 12558 } 12559 12560 if (is_kfunc_release(meta) && !meta->release_regno) { 12561 verbose(env, "release kernel function %s expects refcounted PTR_TO_BTF_ID\n", 12562 func_name); 12563 return -EINVAL; 12564 } 12565 12566 return 0; 12567 } 12568 12569 int bpf_fetch_kfunc_arg_meta(struct bpf_verifier_env *env, 12570 s32 func_id, 12571 s16 offset, 12572 struct bpf_kfunc_call_arg_meta *meta) 12573 { 12574 struct bpf_kfunc_meta kfunc; 12575 int err; 12576 12577 err = fetch_kfunc_meta(env, func_id, offset, &kfunc); 12578 if (err) 12579 return err; 12580 12581 memset(meta, 0, sizeof(*meta)); 12582 meta->btf = kfunc.btf; 12583 meta->func_id = kfunc.id; 12584 meta->func_proto = kfunc.proto; 12585 meta->func_name = kfunc.name; 12586 12587 if (!kfunc.flags || !btf_kfunc_is_allowed(kfunc.btf, kfunc.id, env->prog)) 12588 return -EACCES; 12589 12590 meta->kfunc_flags = *kfunc.flags; 12591 12592 return 0; 12593 } 12594 12595 /* 12596 * Determine how many bytes a helper accesses through a stack pointer at 12597 * argument position @arg (0-based, corresponding to R1-R5). 12598 * 12599 * Returns: 12600 * > 0 known read access size in bytes 12601 * 0 doesn't read anything directly 12602 * S64_MIN unknown 12603 * < 0 known write access of (-return) bytes 12604 */ 12605 s64 bpf_helper_stack_access_bytes(struct bpf_verifier_env *env, struct bpf_insn *insn, 12606 int arg, int insn_idx) 12607 { 12608 struct bpf_insn_aux_data *aux = &env->insn_aux_data[insn_idx]; 12609 const struct bpf_func_proto *fn; 12610 enum bpf_arg_type at; 12611 s64 size; 12612 12613 if (bpf_get_helper_proto(env, insn->imm, &fn) < 0) 12614 return S64_MIN; 12615 12616 at = fn->arg_type[arg]; 12617 12618 switch (base_type(at)) { 12619 case ARG_PTR_TO_MAP_KEY: 12620 case ARG_PTR_TO_MAP_VALUE: { 12621 bool is_key = base_type(at) == ARG_PTR_TO_MAP_KEY; 12622 u64 val; 12623 int i, map_reg; 12624 12625 for (i = 0; i < arg; i++) { 12626 if (base_type(fn->arg_type[i]) == ARG_CONST_MAP_PTR) 12627 break; 12628 } 12629 if (i >= arg) 12630 goto scan_all_maps; 12631 12632 map_reg = BPF_REG_1 + i; 12633 12634 if (!(aux->const_reg_map_mask & BIT(map_reg))) 12635 goto scan_all_maps; 12636 12637 i = aux->const_reg_vals[map_reg]; 12638 if (i < env->used_map_cnt) { 12639 size = is_key ? env->used_maps[i]->key_size 12640 : env->used_maps[i]->value_size; 12641 goto out; 12642 } 12643 scan_all_maps: 12644 /* 12645 * Map pointer is not known at this call site (e.g. different 12646 * maps on merged paths). Conservatively return the largest 12647 * key_size or value_size across all maps used by the program. 12648 */ 12649 val = 0; 12650 for (i = 0; i < env->used_map_cnt; i++) { 12651 struct bpf_map *map = env->used_maps[i]; 12652 u32 sz = is_key ? map->key_size : map->value_size; 12653 12654 if (sz > val) 12655 val = sz; 12656 if (map->inner_map_meta) { 12657 sz = is_key ? map->inner_map_meta->key_size 12658 : map->inner_map_meta->value_size; 12659 if (sz > val) 12660 val = sz; 12661 } 12662 } 12663 if (!val) 12664 return S64_MIN; 12665 size = val; 12666 goto out; 12667 } 12668 case ARG_PTR_TO_MEM: 12669 if (at & MEM_FIXED_SIZE) { 12670 size = fn->arg_size[arg]; 12671 goto out; 12672 } 12673 if (arg + 1 < ARRAY_SIZE(fn->arg_type) && 12674 arg_type_is_mem_size(fn->arg_type[arg + 1])) { 12675 int size_reg = BPF_REG_1 + arg + 1; 12676 12677 if (aux->const_reg_mask & BIT(size_reg)) { 12678 size = (s64)aux->const_reg_vals[size_reg]; 12679 goto out; 12680 } 12681 /* 12682 * Size arg is const on each path but differs across merged 12683 * paths. MAX_BPF_STACK is a safe upper bound for reads. 12684 */ 12685 if (at & MEM_UNINIT) 12686 return 0; 12687 return MAX_BPF_STACK; 12688 } 12689 return S64_MIN; 12690 case ARG_PTR_TO_DYNPTR: 12691 size = BPF_DYNPTR_SIZE; 12692 break; 12693 case ARG_PTR_TO_STACK: 12694 /* 12695 * Only used by bpf_calls_callback() helpers. The helper itself 12696 * doesn't access stack. The callback subprog does and it's 12697 * analyzed separately. 12698 */ 12699 return 0; 12700 default: 12701 return S64_MIN; 12702 } 12703 out: 12704 /* 12705 * MEM_UNINIT args are write-only: the helper initializes the 12706 * buffer without reading it. 12707 */ 12708 if (at & MEM_UNINIT) 12709 return -size; 12710 return size; 12711 } 12712 12713 /* 12714 * Determine how many bytes a kfunc accesses through a stack pointer at 12715 * argument position @arg (0-based, corresponding to R1-R5). 12716 * 12717 * Returns: 12718 * > 0 known read access size in bytes 12719 * 0 doesn't access memory through that argument (ex: not a pointer) 12720 * S64_MIN unknown 12721 * < 0 known write access of (-return) bytes 12722 */ 12723 s64 bpf_kfunc_stack_access_bytes(struct bpf_verifier_env *env, struct bpf_insn *insn, 12724 int arg, int insn_idx) 12725 { 12726 struct bpf_insn_aux_data *aux = &env->insn_aux_data[insn_idx]; 12727 struct bpf_kfunc_call_arg_meta meta; 12728 const struct btf_param *args; 12729 const struct btf_type *t, *ref_t; 12730 const struct btf *btf; 12731 u32 nargs, type_size; 12732 s64 size; 12733 12734 if (bpf_fetch_kfunc_arg_meta(env, insn->imm, insn->off, &meta) < 0) 12735 return S64_MIN; 12736 12737 btf = meta.btf; 12738 args = btf_params(meta.func_proto); 12739 nargs = btf_type_vlen(meta.func_proto); 12740 if (arg >= nargs) 12741 return 0; 12742 12743 t = btf_type_skip_modifiers(btf, args[arg].type, NULL); 12744 if (!btf_type_is_ptr(t)) 12745 return 0; 12746 12747 /* dynptr: fixed 16-byte on-stack representation */ 12748 if (is_kfunc_arg_dynptr(btf, &args[arg])) { 12749 size = BPF_DYNPTR_SIZE; 12750 goto out; 12751 } 12752 12753 /* ptr + __sz/__szk pair: size is in the next register */ 12754 if (arg + 1 < nargs && 12755 (btf_param_match_suffix(btf, &args[arg + 1], "__sz") || 12756 btf_param_match_suffix(btf, &args[arg + 1], "__szk"))) { 12757 int size_reg = BPF_REG_1 + arg + 1; 12758 12759 if (aux->const_reg_mask & BIT(size_reg)) { 12760 size = (s64)aux->const_reg_vals[size_reg]; 12761 goto out; 12762 } 12763 return MAX_BPF_STACK; 12764 } 12765 12766 /* fixed-size pointed-to type: resolve via BTF */ 12767 ref_t = btf_type_skip_modifiers(btf, t->type, NULL); 12768 if (!IS_ERR(btf_resolve_size(btf, ref_t, &type_size))) { 12769 size = type_size; 12770 goto out; 12771 } 12772 12773 return S64_MIN; 12774 out: 12775 /* KF_ITER_NEW kfuncs initialize the iterator state at arg 0 */ 12776 if (arg == 0 && meta.kfunc_flags & KF_ITER_NEW) 12777 return -size; 12778 if (is_kfunc_arg_uninit(btf, &args[arg])) 12779 return -size; 12780 return size; 12781 } 12782 12783 /* check special kfuncs and return: 12784 * 1 - not fall-through to 'else' branch, continue verification 12785 * 0 - fall-through to 'else' branch 12786 * < 0 - not fall-through to 'else' branch, return error 12787 */ 12788 static int check_special_kfunc(struct bpf_verifier_env *env, struct bpf_kfunc_call_arg_meta *meta, 12789 struct bpf_reg_state *regs, struct bpf_insn_aux_data *insn_aux, 12790 const struct btf_type *ptr_type, struct btf *desc_btf) 12791 { 12792 const struct btf_type *ret_t; 12793 int err = 0; 12794 12795 if (meta->btf != btf_vmlinux) 12796 return 0; 12797 12798 if (is_bpf_obj_new_kfunc(meta->func_id) || is_bpf_percpu_obj_new_kfunc(meta->func_id)) { 12799 struct btf_struct_meta *struct_meta; 12800 struct btf *ret_btf; 12801 u32 ret_btf_id; 12802 12803 if (is_bpf_obj_new_kfunc(meta->func_id) && !bpf_global_ma_set) 12804 return -ENOMEM; 12805 12806 if (((u64)(u32)meta->arg_constant.value) != meta->arg_constant.value) { 12807 verbose(env, "local type ID argument must be in range [0, U32_MAX]\n"); 12808 return -EINVAL; 12809 } 12810 12811 ret_btf = env->prog->aux->btf; 12812 ret_btf_id = meta->arg_constant.value; 12813 12814 /* This may be NULL due to user not supplying a BTF */ 12815 if (!ret_btf) { 12816 verbose(env, "bpf_obj_new/bpf_percpu_obj_new requires prog BTF\n"); 12817 return -EINVAL; 12818 } 12819 12820 ret_t = btf_type_by_id(ret_btf, ret_btf_id); 12821 if (!ret_t || !__btf_type_is_struct(ret_t)) { 12822 verbose(env, "bpf_obj_new/bpf_percpu_obj_new type ID argument must be of a struct\n"); 12823 return -EINVAL; 12824 } 12825 12826 if (is_bpf_percpu_obj_new_kfunc(meta->func_id)) { 12827 if (ret_t->size > BPF_GLOBAL_PERCPU_MA_MAX_SIZE) { 12828 verbose(env, "bpf_percpu_obj_new type size (%d) is greater than %d\n", 12829 ret_t->size, BPF_GLOBAL_PERCPU_MA_MAX_SIZE); 12830 return -EINVAL; 12831 } 12832 12833 if (!bpf_global_percpu_ma_set) { 12834 mutex_lock(&bpf_percpu_ma_lock); 12835 if (!bpf_global_percpu_ma_set) { 12836 /* Charge memory allocated with bpf_global_percpu_ma to 12837 * root memcg. The obj_cgroup for root memcg is NULL. 12838 */ 12839 err = bpf_mem_alloc_percpu_init(&bpf_global_percpu_ma, NULL); 12840 if (!err) 12841 bpf_global_percpu_ma_set = true; 12842 } 12843 mutex_unlock(&bpf_percpu_ma_lock); 12844 if (err) 12845 return err; 12846 } 12847 12848 mutex_lock(&bpf_percpu_ma_lock); 12849 err = bpf_mem_alloc_percpu_unit_init(&bpf_global_percpu_ma, ret_t->size); 12850 mutex_unlock(&bpf_percpu_ma_lock); 12851 if (err) 12852 return err; 12853 } 12854 12855 struct_meta = btf_find_struct_meta(ret_btf, ret_btf_id); 12856 if (is_bpf_percpu_obj_new_kfunc(meta->func_id)) { 12857 if (!__btf_type_is_scalar_struct(env, ret_btf, ret_t, 0)) { 12858 verbose(env, "bpf_percpu_obj_new type ID argument must be of a struct of scalars\n"); 12859 return -EINVAL; 12860 } 12861 12862 if (struct_meta) { 12863 verbose(env, "bpf_percpu_obj_new type ID argument must not contain special fields\n"); 12864 return -EINVAL; 12865 } 12866 } 12867 12868 mark_reg_known_zero(env, regs, BPF_REG_0); 12869 regs[BPF_REG_0].type = PTR_TO_BTF_ID | MEM_ALLOC; 12870 regs[BPF_REG_0].btf = ret_btf; 12871 regs[BPF_REG_0].btf_id = ret_btf_id; 12872 if (is_bpf_percpu_obj_new_kfunc(meta->func_id)) 12873 regs[BPF_REG_0].type |= MEM_PERCPU; 12874 12875 insn_aux->obj_new_size = ret_t->size; 12876 insn_aux->kptr_struct_meta = struct_meta; 12877 } else if (is_bpf_refcount_acquire_kfunc(meta->func_id)) { 12878 mark_reg_known_zero(env, regs, BPF_REG_0); 12879 regs[BPF_REG_0].type = PTR_TO_BTF_ID | MEM_ALLOC; 12880 regs[BPF_REG_0].btf = meta->arg_btf; 12881 regs[BPF_REG_0].btf_id = meta->arg_btf_id; 12882 12883 insn_aux->kptr_struct_meta = 12884 btf_find_struct_meta(meta->arg_btf, 12885 meta->arg_btf_id); 12886 } else if (is_list_node_type(ptr_type)) { 12887 struct btf_field *field = meta->arg_list_head.field; 12888 12889 mark_reg_graph_node(regs, BPF_REG_0, &field->graph_root); 12890 } else if (is_rbtree_node_type(ptr_type)) { 12891 struct btf_field *field = meta->arg_rbtree_root.field; 12892 12893 mark_reg_graph_node(regs, BPF_REG_0, &field->graph_root); 12894 } else if (meta->func_id == special_kfunc_list[KF_bpf_cast_to_kern_ctx]) { 12895 mark_reg_known_zero(env, regs, BPF_REG_0); 12896 regs[BPF_REG_0].type = PTR_TO_BTF_ID | PTR_TRUSTED; 12897 regs[BPF_REG_0].btf = desc_btf; 12898 regs[BPF_REG_0].btf_id = meta->ret_btf_id; 12899 } else if (meta->func_id == special_kfunc_list[KF_bpf_rdonly_cast]) { 12900 ret_t = btf_type_by_id(desc_btf, meta->arg_constant.value); 12901 if (!ret_t) { 12902 verbose(env, "Unknown type ID %lld passed to kfunc bpf_rdonly_cast\n", 12903 meta->arg_constant.value); 12904 return -EINVAL; 12905 } else if (btf_type_is_struct(ret_t)) { 12906 mark_reg_known_zero(env, regs, BPF_REG_0); 12907 regs[BPF_REG_0].type = PTR_TO_BTF_ID | PTR_UNTRUSTED; 12908 regs[BPF_REG_0].btf = desc_btf; 12909 regs[BPF_REG_0].btf_id = meta->arg_constant.value; 12910 } else if (btf_type_is_void(ret_t)) { 12911 mark_reg_known_zero(env, regs, BPF_REG_0); 12912 regs[BPF_REG_0].type = PTR_TO_MEM | MEM_RDONLY | PTR_UNTRUSTED; 12913 regs[BPF_REG_0].mem_size = 0; 12914 } else { 12915 verbose(env, 12916 "kfunc bpf_rdonly_cast type ID argument must be of a struct or void\n"); 12917 return -EINVAL; 12918 } 12919 } else if (meta->func_id == special_kfunc_list[KF_bpf_dynptr_slice] || 12920 meta->func_id == special_kfunc_list[KF_bpf_dynptr_slice_rdwr]) { 12921 enum bpf_type_flag type_flag = get_dynptr_type_flag(meta->initialized_dynptr.type); 12922 12923 mark_reg_known_zero(env, regs, BPF_REG_0); 12924 12925 if (!meta->arg_constant.found) { 12926 verifier_bug(env, "bpf_dynptr_slice(_rdwr) no constant size"); 12927 return -EFAULT; 12928 } 12929 12930 regs[BPF_REG_0].mem_size = meta->arg_constant.value; 12931 12932 /* PTR_MAYBE_NULL will be added when is_kfunc_ret_null is checked */ 12933 regs[BPF_REG_0].type = PTR_TO_MEM | type_flag; 12934 12935 if (meta->func_id == special_kfunc_list[KF_bpf_dynptr_slice]) { 12936 regs[BPF_REG_0].type |= MEM_RDONLY; 12937 } else { 12938 /* this will set env->seen_direct_write to true */ 12939 if (!may_access_direct_pkt_data(env, NULL, BPF_WRITE)) { 12940 verbose(env, "the prog does not allow writes to packet data\n"); 12941 return -EINVAL; 12942 } 12943 } 12944 12945 if (!meta->initialized_dynptr.id) { 12946 verifier_bug(env, "no dynptr id"); 12947 return -EFAULT; 12948 } 12949 regs[BPF_REG_0].dynptr_id = meta->initialized_dynptr.id; 12950 12951 /* we don't need to set BPF_REG_0's ref obj id 12952 * because packet slices are not refcounted (see 12953 * dynptr_type_refcounted) 12954 */ 12955 } else { 12956 return 0; 12957 } 12958 12959 return 1; 12960 } 12961 12962 static int check_return_code(struct bpf_verifier_env *env, int regno, const char *reg_name); 12963 static int process_bpf_exit_full(struct bpf_verifier_env *env, 12964 bool *do_print_state, bool exception_exit); 12965 12966 static int check_kfunc_call(struct bpf_verifier_env *env, struct bpf_insn *insn, 12967 int *insn_idx_p) 12968 { 12969 bool sleepable, rcu_lock, rcu_unlock, preempt_disable, preempt_enable; 12970 u32 i, nargs, ptr_type_id, release_ref_obj_id; 12971 struct bpf_reg_state *regs = cur_regs(env); 12972 const char *func_name, *ptr_type_name; 12973 const struct btf_type *t, *ptr_type; 12974 struct bpf_kfunc_call_arg_meta meta; 12975 struct bpf_insn_aux_data *insn_aux; 12976 int err, insn_idx = *insn_idx_p; 12977 const struct btf_param *args; 12978 struct btf *desc_btf; 12979 12980 /* skip for now, but return error when we find this in fixup_kfunc_call */ 12981 if (!insn->imm) 12982 return 0; 12983 12984 err = bpf_fetch_kfunc_arg_meta(env, insn->imm, insn->off, &meta); 12985 if (err == -EACCES && meta.func_name) 12986 verbose(env, "calling kernel function %s is not allowed\n", meta.func_name); 12987 if (err) 12988 return err; 12989 desc_btf = meta.btf; 12990 func_name = meta.func_name; 12991 insn_aux = &env->insn_aux_data[insn_idx]; 12992 12993 insn_aux->is_iter_next = bpf_is_iter_next_kfunc(&meta); 12994 12995 if (!insn->off && 12996 (insn->imm == special_kfunc_list[KF_bpf_res_spin_lock] || 12997 insn->imm == special_kfunc_list[KF_bpf_res_spin_lock_irqsave])) { 12998 struct bpf_verifier_state *branch; 12999 struct bpf_reg_state *regs; 13000 13001 branch = push_stack(env, env->insn_idx + 1, env->insn_idx, false); 13002 if (IS_ERR(branch)) { 13003 verbose(env, "failed to push state for failed lock acquisition\n"); 13004 return PTR_ERR(branch); 13005 } 13006 13007 regs = branch->frame[branch->curframe]->regs; 13008 13009 /* Clear r0-r5 registers in forked state */ 13010 for (i = 0; i < CALLER_SAVED_REGS; i++) 13011 bpf_mark_reg_not_init(env, ®s[caller_saved[i]]); 13012 13013 mark_reg_unknown(env, regs, BPF_REG_0); 13014 err = __mark_reg_s32_range(env, regs, BPF_REG_0, -MAX_ERRNO, -1); 13015 if (err) { 13016 verbose(env, "failed to mark s32 range for retval in forked state for lock\n"); 13017 return err; 13018 } 13019 __mark_btf_func_reg_size(env, regs, BPF_REG_0, sizeof(u32)); 13020 } else if (!insn->off && insn->imm == special_kfunc_list[KF___bpf_trap]) { 13021 verbose(env, "unexpected __bpf_trap() due to uninitialized variable?\n"); 13022 return -EFAULT; 13023 } 13024 13025 if (is_kfunc_destructive(&meta) && !capable(CAP_SYS_BOOT)) { 13026 verbose(env, "destructive kfunc calls require CAP_SYS_BOOT capability\n"); 13027 return -EACCES; 13028 } 13029 13030 sleepable = bpf_is_kfunc_sleepable(&meta); 13031 if (sleepable && !in_sleepable(env)) { 13032 verbose(env, "program must be sleepable to call sleepable kfunc %s\n", func_name); 13033 return -EACCES; 13034 } 13035 13036 /* Track non-sleepable context for kfuncs, same as for helpers. */ 13037 if (!in_sleepable_context(env)) 13038 insn_aux->non_sleepable = true; 13039 13040 /* Check the arguments */ 13041 err = check_kfunc_args(env, &meta, insn_idx); 13042 if (err < 0) 13043 return err; 13044 13045 if (is_bpf_rbtree_add_kfunc(meta.func_id)) { 13046 err = push_callback_call(env, insn, insn_idx, meta.subprogno, 13047 set_rbtree_add_callback_state); 13048 if (err) { 13049 verbose(env, "kfunc %s#%d failed callback verification\n", 13050 func_name, meta.func_id); 13051 return err; 13052 } 13053 } 13054 13055 if (meta.func_id == special_kfunc_list[KF_bpf_session_cookie]) { 13056 meta.r0_size = sizeof(u64); 13057 meta.r0_rdonly = false; 13058 } 13059 13060 if (is_bpf_wq_set_callback_kfunc(meta.func_id)) { 13061 err = push_callback_call(env, insn, insn_idx, meta.subprogno, 13062 set_timer_callback_state); 13063 if (err) { 13064 verbose(env, "kfunc %s#%d failed callback verification\n", 13065 func_name, meta.func_id); 13066 return err; 13067 } 13068 } 13069 13070 if (is_task_work_add_kfunc(meta.func_id)) { 13071 err = push_callback_call(env, insn, insn_idx, meta.subprogno, 13072 set_task_work_schedule_callback_state); 13073 if (err) { 13074 verbose(env, "kfunc %s#%d failed callback verification\n", 13075 func_name, meta.func_id); 13076 return err; 13077 } 13078 } 13079 13080 rcu_lock = is_kfunc_bpf_rcu_read_lock(&meta); 13081 rcu_unlock = is_kfunc_bpf_rcu_read_unlock(&meta); 13082 13083 preempt_disable = is_kfunc_bpf_preempt_disable(&meta); 13084 preempt_enable = is_kfunc_bpf_preempt_enable(&meta); 13085 13086 if (rcu_lock) { 13087 env->cur_state->active_rcu_locks++; 13088 } else if (rcu_unlock) { 13089 struct bpf_func_state *state; 13090 struct bpf_reg_state *reg; 13091 u32 clear_mask = (1 << STACK_SPILL) | (1 << STACK_ITER); 13092 13093 if (env->cur_state->active_rcu_locks == 0) { 13094 verbose(env, "unmatched rcu read unlock (kernel function %s)\n", func_name); 13095 return -EINVAL; 13096 } 13097 if (--env->cur_state->active_rcu_locks == 0) { 13098 bpf_for_each_reg_in_vstate_mask(env->cur_state, state, reg, clear_mask, ({ 13099 if (reg->type & MEM_RCU) { 13100 reg->type &= ~(MEM_RCU | PTR_MAYBE_NULL); 13101 reg->type |= PTR_UNTRUSTED; 13102 } 13103 })); 13104 } 13105 } else if (preempt_disable) { 13106 env->cur_state->active_preempt_locks++; 13107 } else if (preempt_enable) { 13108 if (env->cur_state->active_preempt_locks == 0) { 13109 verbose(env, "unmatched attempt to enable preemption (kernel function %s)\n", func_name); 13110 return -EINVAL; 13111 } 13112 env->cur_state->active_preempt_locks--; 13113 } 13114 13115 if (sleepable && !in_sleepable_context(env)) { 13116 verbose(env, "kernel func %s is sleepable within %s\n", 13117 func_name, non_sleepable_context_description(env)); 13118 return -EACCES; 13119 } 13120 13121 if (in_rbtree_lock_required_cb(env) && (rcu_lock || rcu_unlock)) { 13122 verbose(env, "Calling bpf_rcu_read_{lock,unlock} in unnecessary rbtree callback\n"); 13123 return -EACCES; 13124 } 13125 13126 if (is_kfunc_rcu_protected(&meta) && !in_rcu_cs(env)) { 13127 verbose(env, "kernel func %s requires RCU critical section protection\n", func_name); 13128 return -EACCES; 13129 } 13130 13131 /* In case of release function, we get register number of refcounted 13132 * PTR_TO_BTF_ID in bpf_kfunc_arg_meta, do the release now. 13133 */ 13134 if (meta.release_regno) { 13135 struct bpf_reg_state *reg = ®s[meta.release_regno]; 13136 13137 if (meta.initialized_dynptr.ref_obj_id) { 13138 err = unmark_stack_slots_dynptr(env, reg); 13139 } else { 13140 err = release_reference(env, reg->ref_obj_id); 13141 if (err) 13142 verbose(env, "kfunc %s#%d reference has not been acquired before\n", 13143 func_name, meta.func_id); 13144 } 13145 if (err) 13146 return err; 13147 } 13148 13149 if (is_bpf_list_push_kfunc(meta.func_id) || is_bpf_rbtree_add_kfunc(meta.func_id)) { 13150 release_ref_obj_id = regs[BPF_REG_2].ref_obj_id; 13151 insn_aux->insert_off = regs[BPF_REG_2].var_off.value; 13152 insn_aux->kptr_struct_meta = btf_find_struct_meta(meta.arg_btf, meta.arg_btf_id); 13153 err = ref_convert_owning_non_owning(env, release_ref_obj_id); 13154 if (err) { 13155 verbose(env, "kfunc %s#%d conversion of owning ref to non-owning failed\n", 13156 func_name, meta.func_id); 13157 return err; 13158 } 13159 13160 err = release_reference(env, release_ref_obj_id); 13161 if (err) { 13162 verbose(env, "kfunc %s#%d reference has not been acquired before\n", 13163 func_name, meta.func_id); 13164 return err; 13165 } 13166 } 13167 13168 if (meta.func_id == special_kfunc_list[KF_bpf_throw]) { 13169 if (!bpf_jit_supports_exceptions()) { 13170 verbose(env, "JIT does not support calling kfunc %s#%d\n", 13171 func_name, meta.func_id); 13172 return -ENOTSUPP; 13173 } 13174 env->seen_exception = true; 13175 13176 /* In the case of the default callback, the cookie value passed 13177 * to bpf_throw becomes the return value of the program. 13178 */ 13179 if (!env->exception_callback_subprog) { 13180 err = check_return_code(env, BPF_REG_1, "R1"); 13181 if (err < 0) 13182 return err; 13183 } 13184 } 13185 13186 for (i = 0; i < CALLER_SAVED_REGS; i++) { 13187 u32 regno = caller_saved[i]; 13188 13189 bpf_mark_reg_not_init(env, ®s[regno]); 13190 regs[regno].subreg_def = DEF_NOT_SUBREG; 13191 } 13192 13193 /* Check return type */ 13194 t = btf_type_skip_modifiers(desc_btf, meta.func_proto->type, NULL); 13195 13196 if (is_kfunc_acquire(&meta) && !btf_type_is_struct_ptr(meta.btf, t)) { 13197 if (meta.btf != btf_vmlinux || 13198 (!is_bpf_obj_new_kfunc(meta.func_id) && 13199 !is_bpf_percpu_obj_new_kfunc(meta.func_id) && 13200 !is_bpf_refcount_acquire_kfunc(meta.func_id))) { 13201 verbose(env, "acquire kernel function does not return PTR_TO_BTF_ID\n"); 13202 return -EINVAL; 13203 } 13204 } 13205 13206 if (btf_type_is_scalar(t)) { 13207 mark_reg_unknown(env, regs, BPF_REG_0); 13208 if (meta.btf == btf_vmlinux && (meta.func_id == special_kfunc_list[KF_bpf_res_spin_lock] || 13209 meta.func_id == special_kfunc_list[KF_bpf_res_spin_lock_irqsave])) 13210 __mark_reg_const_zero(env, ®s[BPF_REG_0]); 13211 mark_btf_func_reg_size(env, BPF_REG_0, t->size); 13212 } else if (btf_type_is_ptr(t)) { 13213 ptr_type = btf_type_skip_modifiers(desc_btf, t->type, &ptr_type_id); 13214 err = check_special_kfunc(env, &meta, regs, insn_aux, ptr_type, desc_btf); 13215 if (err) { 13216 if (err < 0) 13217 return err; 13218 } else if (btf_type_is_void(ptr_type)) { 13219 /* kfunc returning 'void *' is equivalent to returning scalar */ 13220 mark_reg_unknown(env, regs, BPF_REG_0); 13221 } else if (!__btf_type_is_struct(ptr_type)) { 13222 if (!meta.r0_size) { 13223 __u32 sz; 13224 13225 if (!IS_ERR(btf_resolve_size(desc_btf, ptr_type, &sz))) { 13226 meta.r0_size = sz; 13227 meta.r0_rdonly = true; 13228 } 13229 } 13230 if (!meta.r0_size) { 13231 ptr_type_name = btf_name_by_offset(desc_btf, 13232 ptr_type->name_off); 13233 verbose(env, 13234 "kernel function %s returns pointer type %s %s is not supported\n", 13235 func_name, 13236 btf_type_str(ptr_type), 13237 ptr_type_name); 13238 return -EINVAL; 13239 } 13240 13241 mark_reg_known_zero(env, regs, BPF_REG_0); 13242 regs[BPF_REG_0].type = PTR_TO_MEM; 13243 regs[BPF_REG_0].mem_size = meta.r0_size; 13244 13245 if (meta.r0_rdonly) 13246 regs[BPF_REG_0].type |= MEM_RDONLY; 13247 13248 /* Ensures we don't access the memory after a release_reference() */ 13249 if (meta.ref_obj_id) 13250 regs[BPF_REG_0].ref_obj_id = meta.ref_obj_id; 13251 13252 if (is_kfunc_rcu_protected(&meta)) 13253 regs[BPF_REG_0].type |= MEM_RCU; 13254 } else { 13255 enum bpf_reg_type type = PTR_TO_BTF_ID; 13256 13257 if (meta.func_id == special_kfunc_list[KF_bpf_get_kmem_cache]) 13258 type |= PTR_UNTRUSTED; 13259 else if (is_kfunc_rcu_protected(&meta) || 13260 (bpf_is_iter_next_kfunc(&meta) && 13261 (get_iter_from_state(env->cur_state, &meta) 13262 ->type & MEM_RCU))) { 13263 /* 13264 * If the iterator's constructor (the _new 13265 * function e.g., bpf_iter_task_new) has been 13266 * annotated with BPF kfunc flag 13267 * KF_RCU_PROTECTED and was called within a RCU 13268 * read-side critical section, also propagate 13269 * the MEM_RCU flag to the pointer returned from 13270 * the iterator's next function (e.g., 13271 * bpf_iter_task_next). 13272 */ 13273 type |= MEM_RCU; 13274 } else { 13275 /* 13276 * Any PTR_TO_BTF_ID that is returned from a BPF 13277 * kfunc should by default be treated as 13278 * implicitly trusted. 13279 */ 13280 type |= PTR_TRUSTED; 13281 } 13282 13283 mark_reg_known_zero(env, regs, BPF_REG_0); 13284 regs[BPF_REG_0].btf = desc_btf; 13285 regs[BPF_REG_0].type = type; 13286 regs[BPF_REG_0].btf_id = ptr_type_id; 13287 } 13288 13289 if (is_kfunc_ret_null(&meta)) { 13290 regs[BPF_REG_0].type |= PTR_MAYBE_NULL; 13291 /* For mark_ptr_or_null_reg, see 93c230e3f5bd6 */ 13292 regs[BPF_REG_0].id = ++env->id_gen; 13293 } 13294 mark_btf_func_reg_size(env, BPF_REG_0, sizeof(void *)); 13295 if (is_kfunc_acquire(&meta)) { 13296 int id = acquire_reference(env, insn_idx); 13297 13298 if (id < 0) 13299 return id; 13300 if (is_kfunc_ret_null(&meta)) 13301 regs[BPF_REG_0].id = id; 13302 regs[BPF_REG_0].ref_obj_id = id; 13303 } else if (is_rbtree_node_type(ptr_type) || is_list_node_type(ptr_type)) { 13304 ref_set_non_owning(env, ®s[BPF_REG_0]); 13305 } 13306 13307 if (reg_may_point_to_spin_lock(®s[BPF_REG_0]) && !regs[BPF_REG_0].id) 13308 regs[BPF_REG_0].id = ++env->id_gen; 13309 } else if (btf_type_is_void(t)) { 13310 if (meta.btf == btf_vmlinux) { 13311 if (is_bpf_obj_drop_kfunc(meta.func_id) || 13312 is_bpf_percpu_obj_drop_kfunc(meta.func_id)) { 13313 insn_aux->kptr_struct_meta = 13314 btf_find_struct_meta(meta.arg_btf, 13315 meta.arg_btf_id); 13316 } 13317 } 13318 } 13319 13320 if (bpf_is_kfunc_pkt_changing(&meta)) 13321 clear_all_pkt_pointers(env); 13322 13323 nargs = btf_type_vlen(meta.func_proto); 13324 args = (const struct btf_param *)(meta.func_proto + 1); 13325 for (i = 0; i < nargs; i++) { 13326 u32 regno = i + 1; 13327 13328 t = btf_type_skip_modifiers(desc_btf, args[i].type, NULL); 13329 if (btf_type_is_ptr(t)) 13330 mark_btf_func_reg_size(env, regno, sizeof(void *)); 13331 else 13332 /* scalar. ensured by check_kfunc_args() */ 13333 mark_btf_func_reg_size(env, regno, t->size); 13334 } 13335 13336 if (bpf_is_iter_next_kfunc(&meta)) { 13337 err = process_iter_next_call(env, insn_idx, &meta); 13338 if (err) 13339 return err; 13340 } 13341 13342 if (meta.func_id == special_kfunc_list[KF_bpf_session_cookie]) 13343 env->prog->call_session_cookie = true; 13344 13345 if (is_bpf_throw_kfunc(insn)) 13346 return process_bpf_exit_full(env, NULL, true); 13347 13348 return 0; 13349 } 13350 13351 static bool check_reg_sane_offset_scalar(struct bpf_verifier_env *env, 13352 const struct bpf_reg_state *reg, 13353 enum bpf_reg_type type) 13354 { 13355 bool known = tnum_is_const(reg->var_off); 13356 s64 val = reg->var_off.value; 13357 s64 smin = reg->smin_value; 13358 13359 if (known && (val >= BPF_MAX_VAR_OFF || val <= -BPF_MAX_VAR_OFF)) { 13360 verbose(env, "math between %s pointer and %lld is not allowed\n", 13361 reg_type_str(env, type), val); 13362 return false; 13363 } 13364 13365 if (smin == S64_MIN) { 13366 verbose(env, "math between %s pointer and register with unbounded min value is not allowed\n", 13367 reg_type_str(env, type)); 13368 return false; 13369 } 13370 13371 if (smin >= BPF_MAX_VAR_OFF || smin <= -BPF_MAX_VAR_OFF) { 13372 verbose(env, "value %lld makes %s pointer be out of bounds\n", 13373 smin, reg_type_str(env, type)); 13374 return false; 13375 } 13376 13377 return true; 13378 } 13379 13380 static bool check_reg_sane_offset_ptr(struct bpf_verifier_env *env, 13381 const struct bpf_reg_state *reg, 13382 enum bpf_reg_type type) 13383 { 13384 bool known = tnum_is_const(reg->var_off); 13385 s64 val = reg->var_off.value; 13386 s64 smin = reg->smin_value; 13387 13388 if (known && (val >= BPF_MAX_VAR_OFF || val <= -BPF_MAX_VAR_OFF)) { 13389 verbose(env, "%s pointer offset %lld is not allowed\n", 13390 reg_type_str(env, type), val); 13391 return false; 13392 } 13393 13394 if (smin >= BPF_MAX_VAR_OFF || smin <= -BPF_MAX_VAR_OFF) { 13395 verbose(env, "%s pointer offset %lld is not allowed\n", 13396 reg_type_str(env, type), smin); 13397 return false; 13398 } 13399 13400 return true; 13401 } 13402 13403 enum { 13404 REASON_BOUNDS = -1, 13405 REASON_TYPE = -2, 13406 REASON_PATHS = -3, 13407 REASON_LIMIT = -4, 13408 REASON_STACK = -5, 13409 }; 13410 13411 static int retrieve_ptr_limit(const struct bpf_reg_state *ptr_reg, 13412 u32 *alu_limit, bool mask_to_left) 13413 { 13414 u32 max = 0, ptr_limit = 0; 13415 13416 switch (ptr_reg->type) { 13417 case PTR_TO_STACK: 13418 /* Offset 0 is out-of-bounds, but acceptable start for the 13419 * left direction, see BPF_REG_FP. Also, unknown scalar 13420 * offset where we would need to deal with min/max bounds is 13421 * currently prohibited for unprivileged. 13422 */ 13423 max = MAX_BPF_STACK + mask_to_left; 13424 ptr_limit = -ptr_reg->var_off.value; 13425 break; 13426 case PTR_TO_MAP_VALUE: 13427 max = ptr_reg->map_ptr->value_size; 13428 ptr_limit = mask_to_left ? ptr_reg->smin_value : ptr_reg->umax_value; 13429 break; 13430 default: 13431 return REASON_TYPE; 13432 } 13433 13434 if (ptr_limit >= max) 13435 return REASON_LIMIT; 13436 *alu_limit = ptr_limit; 13437 return 0; 13438 } 13439 13440 static bool can_skip_alu_sanitation(const struct bpf_verifier_env *env, 13441 const struct bpf_insn *insn) 13442 { 13443 return env->bypass_spec_v1 || 13444 BPF_SRC(insn->code) == BPF_K || 13445 cur_aux(env)->nospec; 13446 } 13447 13448 static int update_alu_sanitation_state(struct bpf_insn_aux_data *aux, 13449 u32 alu_state, u32 alu_limit) 13450 { 13451 /* If we arrived here from different branches with different 13452 * state or limits to sanitize, then this won't work. 13453 */ 13454 if (aux->alu_state && 13455 (aux->alu_state != alu_state || 13456 aux->alu_limit != alu_limit)) 13457 return REASON_PATHS; 13458 13459 /* Corresponding fixup done in do_misc_fixups(). */ 13460 aux->alu_state = alu_state; 13461 aux->alu_limit = alu_limit; 13462 return 0; 13463 } 13464 13465 static int sanitize_val_alu(struct bpf_verifier_env *env, 13466 struct bpf_insn *insn) 13467 { 13468 struct bpf_insn_aux_data *aux = cur_aux(env); 13469 13470 if (can_skip_alu_sanitation(env, insn)) 13471 return 0; 13472 13473 return update_alu_sanitation_state(aux, BPF_ALU_NON_POINTER, 0); 13474 } 13475 13476 static bool sanitize_needed(u8 opcode) 13477 { 13478 return opcode == BPF_ADD || opcode == BPF_SUB; 13479 } 13480 13481 struct bpf_sanitize_info { 13482 struct bpf_insn_aux_data aux; 13483 bool mask_to_left; 13484 }; 13485 13486 static int sanitize_speculative_path(struct bpf_verifier_env *env, 13487 const struct bpf_insn *insn, 13488 u32 next_idx, u32 curr_idx) 13489 { 13490 struct bpf_verifier_state *branch; 13491 struct bpf_reg_state *regs; 13492 13493 branch = push_stack(env, next_idx, curr_idx, true); 13494 if (!IS_ERR(branch) && insn) { 13495 regs = branch->frame[branch->curframe]->regs; 13496 if (BPF_SRC(insn->code) == BPF_K) { 13497 mark_reg_unknown(env, regs, insn->dst_reg); 13498 } else if (BPF_SRC(insn->code) == BPF_X) { 13499 mark_reg_unknown(env, regs, insn->dst_reg); 13500 mark_reg_unknown(env, regs, insn->src_reg); 13501 } 13502 } 13503 return PTR_ERR_OR_ZERO(branch); 13504 } 13505 13506 static int sanitize_ptr_alu(struct bpf_verifier_env *env, 13507 struct bpf_insn *insn, 13508 const struct bpf_reg_state *ptr_reg, 13509 const struct bpf_reg_state *off_reg, 13510 struct bpf_reg_state *dst_reg, 13511 struct bpf_sanitize_info *info, 13512 const bool commit_window) 13513 { 13514 struct bpf_insn_aux_data *aux = commit_window ? cur_aux(env) : &info->aux; 13515 struct bpf_verifier_state *vstate = env->cur_state; 13516 bool off_is_imm = tnum_is_const(off_reg->var_off); 13517 bool off_is_neg = off_reg->smin_value < 0; 13518 bool ptr_is_dst_reg = ptr_reg == dst_reg; 13519 u8 opcode = BPF_OP(insn->code); 13520 u32 alu_state, alu_limit; 13521 struct bpf_reg_state tmp; 13522 int err; 13523 13524 if (can_skip_alu_sanitation(env, insn)) 13525 return 0; 13526 13527 /* We already marked aux for masking from non-speculative 13528 * paths, thus we got here in the first place. We only care 13529 * to explore bad access from here. 13530 */ 13531 if (vstate->speculative) 13532 goto do_sim; 13533 13534 if (!commit_window) { 13535 if (!tnum_is_const(off_reg->var_off) && 13536 (off_reg->smin_value < 0) != (off_reg->smax_value < 0)) 13537 return REASON_BOUNDS; 13538 13539 info->mask_to_left = (opcode == BPF_ADD && off_is_neg) || 13540 (opcode == BPF_SUB && !off_is_neg); 13541 } 13542 13543 err = retrieve_ptr_limit(ptr_reg, &alu_limit, info->mask_to_left); 13544 if (err < 0) 13545 return err; 13546 13547 if (commit_window) { 13548 /* In commit phase we narrow the masking window based on 13549 * the observed pointer move after the simulated operation. 13550 */ 13551 alu_state = info->aux.alu_state; 13552 alu_limit = abs(info->aux.alu_limit - alu_limit); 13553 } else { 13554 alu_state = off_is_neg ? BPF_ALU_NEG_VALUE : 0; 13555 alu_state |= off_is_imm ? BPF_ALU_IMMEDIATE : 0; 13556 alu_state |= ptr_is_dst_reg ? 13557 BPF_ALU_SANITIZE_SRC : BPF_ALU_SANITIZE_DST; 13558 13559 /* Limit pruning on unknown scalars to enable deep search for 13560 * potential masking differences from other program paths. 13561 */ 13562 if (!off_is_imm) 13563 env->explore_alu_limits = true; 13564 } 13565 13566 err = update_alu_sanitation_state(aux, alu_state, alu_limit); 13567 if (err < 0) 13568 return err; 13569 do_sim: 13570 /* If we're in commit phase, we're done here given we already 13571 * pushed the truncated dst_reg into the speculative verification 13572 * stack. 13573 * 13574 * Also, when register is a known constant, we rewrite register-based 13575 * operation to immediate-based, and thus do not need masking (and as 13576 * a consequence, do not need to simulate the zero-truncation either). 13577 */ 13578 if (commit_window || off_is_imm) 13579 return 0; 13580 13581 /* Simulate and find potential out-of-bounds access under 13582 * speculative execution from truncation as a result of 13583 * masking when off was not within expected range. If off 13584 * sits in dst, then we temporarily need to move ptr there 13585 * to simulate dst (== 0) +/-= ptr. Needed, for example, 13586 * for cases where we use K-based arithmetic in one direction 13587 * and truncated reg-based in the other in order to explore 13588 * bad access. 13589 */ 13590 if (!ptr_is_dst_reg) { 13591 tmp = *dst_reg; 13592 copy_register_state(dst_reg, ptr_reg); 13593 } 13594 err = sanitize_speculative_path(env, NULL, env->insn_idx + 1, env->insn_idx); 13595 if (err < 0) 13596 return REASON_STACK; 13597 if (!ptr_is_dst_reg) 13598 *dst_reg = tmp; 13599 return 0; 13600 } 13601 13602 static void sanitize_mark_insn_seen(struct bpf_verifier_env *env) 13603 { 13604 struct bpf_verifier_state *vstate = env->cur_state; 13605 13606 /* If we simulate paths under speculation, we don't update the 13607 * insn as 'seen' such that when we verify unreachable paths in 13608 * the non-speculative domain, sanitize_dead_code() can still 13609 * rewrite/sanitize them. 13610 */ 13611 if (!vstate->speculative) 13612 env->insn_aux_data[env->insn_idx].seen = env->pass_cnt; 13613 } 13614 13615 static int sanitize_err(struct bpf_verifier_env *env, 13616 const struct bpf_insn *insn, int reason, 13617 const struct bpf_reg_state *off_reg, 13618 const struct bpf_reg_state *dst_reg) 13619 { 13620 static const char *err = "pointer arithmetic with it prohibited for !root"; 13621 const char *op = BPF_OP(insn->code) == BPF_ADD ? "add" : "sub"; 13622 u32 dst = insn->dst_reg, src = insn->src_reg; 13623 13624 switch (reason) { 13625 case REASON_BOUNDS: 13626 verbose(env, "R%d has unknown scalar with mixed signed bounds, %s\n", 13627 off_reg == dst_reg ? dst : src, err); 13628 break; 13629 case REASON_TYPE: 13630 verbose(env, "R%d has pointer with unsupported alu operation, %s\n", 13631 off_reg == dst_reg ? src : dst, err); 13632 break; 13633 case REASON_PATHS: 13634 verbose(env, "R%d tried to %s from different maps, paths or scalars, %s\n", 13635 dst, op, err); 13636 break; 13637 case REASON_LIMIT: 13638 verbose(env, "R%d tried to %s beyond pointer bounds, %s\n", 13639 dst, op, err); 13640 break; 13641 case REASON_STACK: 13642 verbose(env, "R%d could not be pushed for speculative verification, %s\n", 13643 dst, err); 13644 return -ENOMEM; 13645 default: 13646 verifier_bug(env, "unknown reason (%d)", reason); 13647 break; 13648 } 13649 13650 return -EACCES; 13651 } 13652 13653 /* check that stack access falls within stack limits and that 'reg' doesn't 13654 * have a variable offset. 13655 * 13656 * Variable offset is prohibited for unprivileged mode for simplicity since it 13657 * requires corresponding support in Spectre masking for stack ALU. See also 13658 * retrieve_ptr_limit(). 13659 */ 13660 static int check_stack_access_for_ptr_arithmetic( 13661 struct bpf_verifier_env *env, 13662 int regno, 13663 const struct bpf_reg_state *reg, 13664 int off) 13665 { 13666 if (!tnum_is_const(reg->var_off)) { 13667 char tn_buf[48]; 13668 13669 tnum_strn(tn_buf, sizeof(tn_buf), reg->var_off); 13670 verbose(env, "R%d variable stack access prohibited for !root, var_off=%s off=%d\n", 13671 regno, tn_buf, off); 13672 return -EACCES; 13673 } 13674 13675 if (off >= 0 || off < -MAX_BPF_STACK) { 13676 verbose(env, "R%d stack pointer arithmetic goes out of range, " 13677 "prohibited for !root; off=%d\n", regno, off); 13678 return -EACCES; 13679 } 13680 13681 return 0; 13682 } 13683 13684 static int sanitize_check_bounds(struct bpf_verifier_env *env, 13685 const struct bpf_insn *insn, 13686 const struct bpf_reg_state *dst_reg) 13687 { 13688 u32 dst = insn->dst_reg; 13689 13690 /* For unprivileged we require that resulting offset must be in bounds 13691 * in order to be able to sanitize access later on. 13692 */ 13693 if (env->bypass_spec_v1) 13694 return 0; 13695 13696 switch (dst_reg->type) { 13697 case PTR_TO_STACK: 13698 if (check_stack_access_for_ptr_arithmetic(env, dst, dst_reg, 13699 dst_reg->var_off.value)) 13700 return -EACCES; 13701 break; 13702 case PTR_TO_MAP_VALUE: 13703 if (check_map_access(env, dst, 0, 1, false, ACCESS_HELPER)) { 13704 verbose(env, "R%d pointer arithmetic of map value goes out of range, " 13705 "prohibited for !root\n", dst); 13706 return -EACCES; 13707 } 13708 break; 13709 default: 13710 return -EOPNOTSUPP; 13711 } 13712 13713 return 0; 13714 } 13715 13716 /* Handles arithmetic on a pointer and a scalar: computes new min/max and var_off. 13717 * Caller should also handle BPF_MOV case separately. 13718 * If we return -EACCES, caller may want to try again treating pointer as a 13719 * scalar. So we only emit a diagnostic if !env->allow_ptr_leaks. 13720 */ 13721 static int adjust_ptr_min_max_vals(struct bpf_verifier_env *env, 13722 struct bpf_insn *insn, 13723 const struct bpf_reg_state *ptr_reg, 13724 const struct bpf_reg_state *off_reg) 13725 { 13726 struct bpf_verifier_state *vstate = env->cur_state; 13727 struct bpf_func_state *state = vstate->frame[vstate->curframe]; 13728 struct bpf_reg_state *regs = state->regs, *dst_reg; 13729 bool known = tnum_is_const(off_reg->var_off); 13730 s64 smin_val = off_reg->smin_value, smax_val = off_reg->smax_value, 13731 smin_ptr = ptr_reg->smin_value, smax_ptr = ptr_reg->smax_value; 13732 u64 umin_val = off_reg->umin_value, umax_val = off_reg->umax_value, 13733 umin_ptr = ptr_reg->umin_value, umax_ptr = ptr_reg->umax_value; 13734 struct bpf_sanitize_info info = {}; 13735 u8 opcode = BPF_OP(insn->code); 13736 u32 dst = insn->dst_reg; 13737 int ret, bounds_ret; 13738 13739 dst_reg = ®s[dst]; 13740 13741 if ((known && (smin_val != smax_val || umin_val != umax_val)) || 13742 smin_val > smax_val || umin_val > umax_val) { 13743 /* Taint dst register if offset had invalid bounds derived from 13744 * e.g. dead branches. 13745 */ 13746 __mark_reg_unknown(env, dst_reg); 13747 return 0; 13748 } 13749 13750 if (BPF_CLASS(insn->code) != BPF_ALU64) { 13751 /* 32-bit ALU ops on pointers produce (meaningless) scalars */ 13752 if (opcode == BPF_SUB && env->allow_ptr_leaks) { 13753 __mark_reg_unknown(env, dst_reg); 13754 return 0; 13755 } 13756 13757 verbose(env, 13758 "R%d 32-bit pointer arithmetic prohibited\n", 13759 dst); 13760 return -EACCES; 13761 } 13762 13763 if (ptr_reg->type & PTR_MAYBE_NULL) { 13764 verbose(env, "R%d pointer arithmetic on %s prohibited, null-check it first\n", 13765 dst, reg_type_str(env, ptr_reg->type)); 13766 return -EACCES; 13767 } 13768 13769 /* 13770 * Accesses to untrusted PTR_TO_MEM are done through probe 13771 * instructions, hence no need to track offsets. 13772 */ 13773 if (base_type(ptr_reg->type) == PTR_TO_MEM && (ptr_reg->type & PTR_UNTRUSTED)) 13774 return 0; 13775 13776 switch (base_type(ptr_reg->type)) { 13777 case PTR_TO_CTX: 13778 case PTR_TO_MAP_VALUE: 13779 case PTR_TO_MAP_KEY: 13780 case PTR_TO_STACK: 13781 case PTR_TO_PACKET_META: 13782 case PTR_TO_PACKET: 13783 case PTR_TO_TP_BUFFER: 13784 case PTR_TO_BTF_ID: 13785 case PTR_TO_MEM: 13786 case PTR_TO_BUF: 13787 case PTR_TO_FUNC: 13788 case CONST_PTR_TO_DYNPTR: 13789 break; 13790 case PTR_TO_FLOW_KEYS: 13791 if (known) 13792 break; 13793 fallthrough; 13794 case CONST_PTR_TO_MAP: 13795 /* smin_val represents the known value */ 13796 if (known && smin_val == 0 && opcode == BPF_ADD) 13797 break; 13798 fallthrough; 13799 default: 13800 verbose(env, "R%d pointer arithmetic on %s prohibited\n", 13801 dst, reg_type_str(env, ptr_reg->type)); 13802 return -EACCES; 13803 } 13804 13805 /* In case of 'scalar += pointer', dst_reg inherits pointer type and id. 13806 * The id may be overwritten later if we create a new variable offset. 13807 */ 13808 dst_reg->type = ptr_reg->type; 13809 dst_reg->id = ptr_reg->id; 13810 13811 if (!check_reg_sane_offset_scalar(env, off_reg, ptr_reg->type) || 13812 !check_reg_sane_offset_ptr(env, ptr_reg, ptr_reg->type)) 13813 return -EINVAL; 13814 13815 /* pointer types do not carry 32-bit bounds at the moment. */ 13816 __mark_reg32_unbounded(dst_reg); 13817 13818 if (sanitize_needed(opcode)) { 13819 ret = sanitize_ptr_alu(env, insn, ptr_reg, off_reg, dst_reg, 13820 &info, false); 13821 if (ret < 0) 13822 return sanitize_err(env, insn, ret, off_reg, dst_reg); 13823 } 13824 13825 switch (opcode) { 13826 case BPF_ADD: 13827 /* 13828 * dst_reg gets the pointer type and since some positive 13829 * integer value was added to the pointer, give it a new 'id' 13830 * if it's a PTR_TO_PACKET. 13831 * this creates a new 'base' pointer, off_reg (variable) gets 13832 * added into the variable offset, and we copy the fixed offset 13833 * from ptr_reg. 13834 */ 13835 if (check_add_overflow(smin_ptr, smin_val, &dst_reg->smin_value) || 13836 check_add_overflow(smax_ptr, smax_val, &dst_reg->smax_value)) { 13837 dst_reg->smin_value = S64_MIN; 13838 dst_reg->smax_value = S64_MAX; 13839 } 13840 if (check_add_overflow(umin_ptr, umin_val, &dst_reg->umin_value) || 13841 check_add_overflow(umax_ptr, umax_val, &dst_reg->umax_value)) { 13842 dst_reg->umin_value = 0; 13843 dst_reg->umax_value = U64_MAX; 13844 } 13845 dst_reg->var_off = tnum_add(ptr_reg->var_off, off_reg->var_off); 13846 dst_reg->raw = ptr_reg->raw; 13847 if (reg_is_pkt_pointer(ptr_reg)) { 13848 if (!known) 13849 dst_reg->id = ++env->id_gen; 13850 /* 13851 * Clear range for unknown addends since we can't know 13852 * where the pkt pointer ended up. Also clear AT_PKT_END / 13853 * BEYOND_PKT_END from prior comparison as any pointer 13854 * arithmetic invalidates them. 13855 */ 13856 if (!known || dst_reg->range < 0) 13857 memset(&dst_reg->raw, 0, sizeof(dst_reg->raw)); 13858 } 13859 break; 13860 case BPF_SUB: 13861 if (dst_reg == off_reg) { 13862 /* scalar -= pointer. Creates an unknown scalar */ 13863 verbose(env, "R%d tried to subtract pointer from scalar\n", 13864 dst); 13865 return -EACCES; 13866 } 13867 /* We don't allow subtraction from FP, because (according to 13868 * test_verifier.c test "invalid fp arithmetic", JITs might not 13869 * be able to deal with it. 13870 */ 13871 if (ptr_reg->type == PTR_TO_STACK) { 13872 verbose(env, "R%d subtraction from stack pointer prohibited\n", 13873 dst); 13874 return -EACCES; 13875 } 13876 /* A new variable offset is created. If the subtrahend is known 13877 * nonnegative, then any reg->range we had before is still good. 13878 */ 13879 if (check_sub_overflow(smin_ptr, smax_val, &dst_reg->smin_value) || 13880 check_sub_overflow(smax_ptr, smin_val, &dst_reg->smax_value)) { 13881 /* Overflow possible, we know nothing */ 13882 dst_reg->smin_value = S64_MIN; 13883 dst_reg->smax_value = S64_MAX; 13884 } 13885 if (umin_ptr < umax_val) { 13886 /* Overflow possible, we know nothing */ 13887 dst_reg->umin_value = 0; 13888 dst_reg->umax_value = U64_MAX; 13889 } else { 13890 /* Cannot overflow (as long as bounds are consistent) */ 13891 dst_reg->umin_value = umin_ptr - umax_val; 13892 dst_reg->umax_value = umax_ptr - umin_val; 13893 } 13894 dst_reg->var_off = tnum_sub(ptr_reg->var_off, off_reg->var_off); 13895 dst_reg->raw = ptr_reg->raw; 13896 if (reg_is_pkt_pointer(ptr_reg)) { 13897 if (!known) 13898 dst_reg->id = ++env->id_gen; 13899 /* 13900 * Clear range if the subtrahend may be negative since 13901 * pkt pointer could move past its bounds. A positive 13902 * subtrahend moves it backwards keeping positive range 13903 * intact. Also clear AT_PKT_END / BEYOND_PKT_END from 13904 * prior comparison as arithmetic invalidates them. 13905 */ 13906 if ((!known && smin_val < 0) || dst_reg->range < 0) 13907 memset(&dst_reg->raw, 0, sizeof(dst_reg->raw)); 13908 } 13909 break; 13910 case BPF_AND: 13911 case BPF_OR: 13912 case BPF_XOR: 13913 /* bitwise ops on pointers are troublesome, prohibit. */ 13914 verbose(env, "R%d bitwise operator %s on pointer prohibited\n", 13915 dst, bpf_alu_string[opcode >> 4]); 13916 return -EACCES; 13917 default: 13918 /* other operators (e.g. MUL,LSH) produce non-pointer results */ 13919 verbose(env, "R%d pointer arithmetic with %s operator prohibited\n", 13920 dst, bpf_alu_string[opcode >> 4]); 13921 return -EACCES; 13922 } 13923 13924 if (!check_reg_sane_offset_ptr(env, dst_reg, ptr_reg->type)) 13925 return -EINVAL; 13926 reg_bounds_sync(dst_reg); 13927 bounds_ret = sanitize_check_bounds(env, insn, dst_reg); 13928 if (bounds_ret == -EACCES) 13929 return bounds_ret; 13930 if (sanitize_needed(opcode)) { 13931 ret = sanitize_ptr_alu(env, insn, dst_reg, off_reg, dst_reg, 13932 &info, true); 13933 if (verifier_bug_if(!can_skip_alu_sanitation(env, insn) 13934 && !env->cur_state->speculative 13935 && bounds_ret 13936 && !ret, 13937 env, "Pointer type unsupported by sanitize_check_bounds() not rejected by retrieve_ptr_limit() as required")) { 13938 return -EFAULT; 13939 } 13940 if (ret < 0) 13941 return sanitize_err(env, insn, ret, off_reg, dst_reg); 13942 } 13943 13944 return 0; 13945 } 13946 13947 static void scalar32_min_max_add(struct bpf_reg_state *dst_reg, 13948 struct bpf_reg_state *src_reg) 13949 { 13950 s32 *dst_smin = &dst_reg->s32_min_value; 13951 s32 *dst_smax = &dst_reg->s32_max_value; 13952 u32 *dst_umin = &dst_reg->u32_min_value; 13953 u32 *dst_umax = &dst_reg->u32_max_value; 13954 u32 umin_val = src_reg->u32_min_value; 13955 u32 umax_val = src_reg->u32_max_value; 13956 bool min_overflow, max_overflow; 13957 13958 if (check_add_overflow(*dst_smin, src_reg->s32_min_value, dst_smin) || 13959 check_add_overflow(*dst_smax, src_reg->s32_max_value, dst_smax)) { 13960 *dst_smin = S32_MIN; 13961 *dst_smax = S32_MAX; 13962 } 13963 13964 /* If either all additions overflow or no additions overflow, then 13965 * it is okay to set: dst_umin = dst_umin + src_umin, dst_umax = 13966 * dst_umax + src_umax. Otherwise (some additions overflow), set 13967 * the output bounds to unbounded. 13968 */ 13969 min_overflow = check_add_overflow(*dst_umin, umin_val, dst_umin); 13970 max_overflow = check_add_overflow(*dst_umax, umax_val, dst_umax); 13971 13972 if (!min_overflow && max_overflow) { 13973 *dst_umin = 0; 13974 *dst_umax = U32_MAX; 13975 } 13976 } 13977 13978 static void scalar_min_max_add(struct bpf_reg_state *dst_reg, 13979 struct bpf_reg_state *src_reg) 13980 { 13981 s64 *dst_smin = &dst_reg->smin_value; 13982 s64 *dst_smax = &dst_reg->smax_value; 13983 u64 *dst_umin = &dst_reg->umin_value; 13984 u64 *dst_umax = &dst_reg->umax_value; 13985 u64 umin_val = src_reg->umin_value; 13986 u64 umax_val = src_reg->umax_value; 13987 bool min_overflow, max_overflow; 13988 13989 if (check_add_overflow(*dst_smin, src_reg->smin_value, dst_smin) || 13990 check_add_overflow(*dst_smax, src_reg->smax_value, dst_smax)) { 13991 *dst_smin = S64_MIN; 13992 *dst_smax = S64_MAX; 13993 } 13994 13995 /* If either all additions overflow or no additions overflow, then 13996 * it is okay to set: dst_umin = dst_umin + src_umin, dst_umax = 13997 * dst_umax + src_umax. Otherwise (some additions overflow), set 13998 * the output bounds to unbounded. 13999 */ 14000 min_overflow = check_add_overflow(*dst_umin, umin_val, dst_umin); 14001 max_overflow = check_add_overflow(*dst_umax, umax_val, dst_umax); 14002 14003 if (!min_overflow && max_overflow) { 14004 *dst_umin = 0; 14005 *dst_umax = U64_MAX; 14006 } 14007 } 14008 14009 static void scalar32_min_max_sub(struct bpf_reg_state *dst_reg, 14010 struct bpf_reg_state *src_reg) 14011 { 14012 s32 *dst_smin = &dst_reg->s32_min_value; 14013 s32 *dst_smax = &dst_reg->s32_max_value; 14014 u32 *dst_umin = &dst_reg->u32_min_value; 14015 u32 *dst_umax = &dst_reg->u32_max_value; 14016 u32 umin_val = src_reg->u32_min_value; 14017 u32 umax_val = src_reg->u32_max_value; 14018 bool min_underflow, max_underflow; 14019 14020 if (check_sub_overflow(*dst_smin, src_reg->s32_max_value, dst_smin) || 14021 check_sub_overflow(*dst_smax, src_reg->s32_min_value, dst_smax)) { 14022 /* Overflow possible, we know nothing */ 14023 *dst_smin = S32_MIN; 14024 *dst_smax = S32_MAX; 14025 } 14026 14027 /* If either all subtractions underflow or no subtractions 14028 * underflow, it is okay to set: dst_umin = dst_umin - src_umax, 14029 * dst_umax = dst_umax - src_umin. Otherwise (some subtractions 14030 * underflow), set the output bounds to unbounded. 14031 */ 14032 min_underflow = check_sub_overflow(*dst_umin, umax_val, dst_umin); 14033 max_underflow = check_sub_overflow(*dst_umax, umin_val, dst_umax); 14034 14035 if (min_underflow && !max_underflow) { 14036 *dst_umin = 0; 14037 *dst_umax = U32_MAX; 14038 } 14039 } 14040 14041 static void scalar_min_max_sub(struct bpf_reg_state *dst_reg, 14042 struct bpf_reg_state *src_reg) 14043 { 14044 s64 *dst_smin = &dst_reg->smin_value; 14045 s64 *dst_smax = &dst_reg->smax_value; 14046 u64 *dst_umin = &dst_reg->umin_value; 14047 u64 *dst_umax = &dst_reg->umax_value; 14048 u64 umin_val = src_reg->umin_value; 14049 u64 umax_val = src_reg->umax_value; 14050 bool min_underflow, max_underflow; 14051 14052 if (check_sub_overflow(*dst_smin, src_reg->smax_value, dst_smin) || 14053 check_sub_overflow(*dst_smax, src_reg->smin_value, dst_smax)) { 14054 /* Overflow possible, we know nothing */ 14055 *dst_smin = S64_MIN; 14056 *dst_smax = S64_MAX; 14057 } 14058 14059 /* If either all subtractions underflow or no subtractions 14060 * underflow, it is okay to set: dst_umin = dst_umin - src_umax, 14061 * dst_umax = dst_umax - src_umin. Otherwise (some subtractions 14062 * underflow), set the output bounds to unbounded. 14063 */ 14064 min_underflow = check_sub_overflow(*dst_umin, umax_val, dst_umin); 14065 max_underflow = check_sub_overflow(*dst_umax, umin_val, dst_umax); 14066 14067 if (min_underflow && !max_underflow) { 14068 *dst_umin = 0; 14069 *dst_umax = U64_MAX; 14070 } 14071 } 14072 14073 static void scalar32_min_max_mul(struct bpf_reg_state *dst_reg, 14074 struct bpf_reg_state *src_reg) 14075 { 14076 s32 *dst_smin = &dst_reg->s32_min_value; 14077 s32 *dst_smax = &dst_reg->s32_max_value; 14078 u32 *dst_umin = &dst_reg->u32_min_value; 14079 u32 *dst_umax = &dst_reg->u32_max_value; 14080 s32 tmp_prod[4]; 14081 14082 if (check_mul_overflow(*dst_umax, src_reg->u32_max_value, dst_umax) || 14083 check_mul_overflow(*dst_umin, src_reg->u32_min_value, dst_umin)) { 14084 /* Overflow possible, we know nothing */ 14085 *dst_umin = 0; 14086 *dst_umax = U32_MAX; 14087 } 14088 if (check_mul_overflow(*dst_smin, src_reg->s32_min_value, &tmp_prod[0]) || 14089 check_mul_overflow(*dst_smin, src_reg->s32_max_value, &tmp_prod[1]) || 14090 check_mul_overflow(*dst_smax, src_reg->s32_min_value, &tmp_prod[2]) || 14091 check_mul_overflow(*dst_smax, src_reg->s32_max_value, &tmp_prod[3])) { 14092 /* Overflow possible, we know nothing */ 14093 *dst_smin = S32_MIN; 14094 *dst_smax = S32_MAX; 14095 } else { 14096 *dst_smin = min_array(tmp_prod, 4); 14097 *dst_smax = max_array(tmp_prod, 4); 14098 } 14099 } 14100 14101 static void scalar_min_max_mul(struct bpf_reg_state *dst_reg, 14102 struct bpf_reg_state *src_reg) 14103 { 14104 s64 *dst_smin = &dst_reg->smin_value; 14105 s64 *dst_smax = &dst_reg->smax_value; 14106 u64 *dst_umin = &dst_reg->umin_value; 14107 u64 *dst_umax = &dst_reg->umax_value; 14108 s64 tmp_prod[4]; 14109 14110 if (check_mul_overflow(*dst_umax, src_reg->umax_value, dst_umax) || 14111 check_mul_overflow(*dst_umin, src_reg->umin_value, dst_umin)) { 14112 /* Overflow possible, we know nothing */ 14113 *dst_umin = 0; 14114 *dst_umax = U64_MAX; 14115 } 14116 if (check_mul_overflow(*dst_smin, src_reg->smin_value, &tmp_prod[0]) || 14117 check_mul_overflow(*dst_smin, src_reg->smax_value, &tmp_prod[1]) || 14118 check_mul_overflow(*dst_smax, src_reg->smin_value, &tmp_prod[2]) || 14119 check_mul_overflow(*dst_smax, src_reg->smax_value, &tmp_prod[3])) { 14120 /* Overflow possible, we know nothing */ 14121 *dst_smin = S64_MIN; 14122 *dst_smax = S64_MAX; 14123 } else { 14124 *dst_smin = min_array(tmp_prod, 4); 14125 *dst_smax = max_array(tmp_prod, 4); 14126 } 14127 } 14128 14129 static void scalar32_min_max_udiv(struct bpf_reg_state *dst_reg, 14130 struct bpf_reg_state *src_reg) 14131 { 14132 u32 *dst_umin = &dst_reg->u32_min_value; 14133 u32 *dst_umax = &dst_reg->u32_max_value; 14134 u32 src_val = src_reg->u32_min_value; /* non-zero, const divisor */ 14135 14136 *dst_umin = *dst_umin / src_val; 14137 *dst_umax = *dst_umax / src_val; 14138 14139 /* Reset other ranges/tnum to unbounded/unknown. */ 14140 dst_reg->s32_min_value = S32_MIN; 14141 dst_reg->s32_max_value = S32_MAX; 14142 reset_reg64_and_tnum(dst_reg); 14143 } 14144 14145 static void scalar_min_max_udiv(struct bpf_reg_state *dst_reg, 14146 struct bpf_reg_state *src_reg) 14147 { 14148 u64 *dst_umin = &dst_reg->umin_value; 14149 u64 *dst_umax = &dst_reg->umax_value; 14150 u64 src_val = src_reg->umin_value; /* non-zero, const divisor */ 14151 14152 *dst_umin = div64_u64(*dst_umin, src_val); 14153 *dst_umax = div64_u64(*dst_umax, src_val); 14154 14155 /* Reset other ranges/tnum to unbounded/unknown. */ 14156 dst_reg->smin_value = S64_MIN; 14157 dst_reg->smax_value = S64_MAX; 14158 reset_reg32_and_tnum(dst_reg); 14159 } 14160 14161 static void scalar32_min_max_sdiv(struct bpf_reg_state *dst_reg, 14162 struct bpf_reg_state *src_reg) 14163 { 14164 s32 *dst_smin = &dst_reg->s32_min_value; 14165 s32 *dst_smax = &dst_reg->s32_max_value; 14166 s32 src_val = src_reg->s32_min_value; /* non-zero, const divisor */ 14167 s32 res1, res2; 14168 14169 /* BPF div specification: S32_MIN / -1 = S32_MIN */ 14170 if (*dst_smin == S32_MIN && src_val == -1) { 14171 /* 14172 * If the dividend range contains more than just S32_MIN, 14173 * we cannot precisely track the result, so it becomes unbounded. 14174 * e.g., [S32_MIN, S32_MIN+10]/(-1), 14175 * = {S32_MIN} U [-(S32_MIN+10), -(S32_MIN+1)] 14176 * = {S32_MIN} U [S32_MAX-9, S32_MAX] = [S32_MIN, S32_MAX] 14177 * Otherwise (if dividend is exactly S32_MIN), result remains S32_MIN. 14178 */ 14179 if (*dst_smax != S32_MIN) { 14180 *dst_smin = S32_MIN; 14181 *dst_smax = S32_MAX; 14182 } 14183 goto reset; 14184 } 14185 14186 res1 = *dst_smin / src_val; 14187 res2 = *dst_smax / src_val; 14188 *dst_smin = min(res1, res2); 14189 *dst_smax = max(res1, res2); 14190 14191 reset: 14192 /* Reset other ranges/tnum to unbounded/unknown. */ 14193 dst_reg->u32_min_value = 0; 14194 dst_reg->u32_max_value = U32_MAX; 14195 reset_reg64_and_tnum(dst_reg); 14196 } 14197 14198 static void scalar_min_max_sdiv(struct bpf_reg_state *dst_reg, 14199 struct bpf_reg_state *src_reg) 14200 { 14201 s64 *dst_smin = &dst_reg->smin_value; 14202 s64 *dst_smax = &dst_reg->smax_value; 14203 s64 src_val = src_reg->smin_value; /* non-zero, const divisor */ 14204 s64 res1, res2; 14205 14206 /* BPF div specification: S64_MIN / -1 = S64_MIN */ 14207 if (*dst_smin == S64_MIN && src_val == -1) { 14208 /* 14209 * If the dividend range contains more than just S64_MIN, 14210 * we cannot precisely track the result, so it becomes unbounded. 14211 * e.g., [S64_MIN, S64_MIN+10]/(-1), 14212 * = {S64_MIN} U [-(S64_MIN+10), -(S64_MIN+1)] 14213 * = {S64_MIN} U [S64_MAX-9, S64_MAX] = [S64_MIN, S64_MAX] 14214 * Otherwise (if dividend is exactly S64_MIN), result remains S64_MIN. 14215 */ 14216 if (*dst_smax != S64_MIN) { 14217 *dst_smin = S64_MIN; 14218 *dst_smax = S64_MAX; 14219 } 14220 goto reset; 14221 } 14222 14223 res1 = div64_s64(*dst_smin, src_val); 14224 res2 = div64_s64(*dst_smax, src_val); 14225 *dst_smin = min(res1, res2); 14226 *dst_smax = max(res1, res2); 14227 14228 reset: 14229 /* Reset other ranges/tnum to unbounded/unknown. */ 14230 dst_reg->umin_value = 0; 14231 dst_reg->umax_value = U64_MAX; 14232 reset_reg32_and_tnum(dst_reg); 14233 } 14234 14235 static void scalar32_min_max_umod(struct bpf_reg_state *dst_reg, 14236 struct bpf_reg_state *src_reg) 14237 { 14238 u32 *dst_umin = &dst_reg->u32_min_value; 14239 u32 *dst_umax = &dst_reg->u32_max_value; 14240 u32 src_val = src_reg->u32_min_value; /* non-zero, const divisor */ 14241 u32 res_max = src_val - 1; 14242 14243 /* 14244 * If dst_umax <= res_max, the result remains unchanged. 14245 * e.g., [2, 5] % 10 = [2, 5]. 14246 */ 14247 if (*dst_umax <= res_max) 14248 return; 14249 14250 *dst_umin = 0; 14251 *dst_umax = min(*dst_umax, res_max); 14252 14253 /* Reset other ranges/tnum to unbounded/unknown. */ 14254 dst_reg->s32_min_value = S32_MIN; 14255 dst_reg->s32_max_value = S32_MAX; 14256 reset_reg64_and_tnum(dst_reg); 14257 } 14258 14259 static void scalar_min_max_umod(struct bpf_reg_state *dst_reg, 14260 struct bpf_reg_state *src_reg) 14261 { 14262 u64 *dst_umin = &dst_reg->umin_value; 14263 u64 *dst_umax = &dst_reg->umax_value; 14264 u64 src_val = src_reg->umin_value; /* non-zero, const divisor */ 14265 u64 res_max = src_val - 1; 14266 14267 /* 14268 * If dst_umax <= res_max, the result remains unchanged. 14269 * e.g., [2, 5] % 10 = [2, 5]. 14270 */ 14271 if (*dst_umax <= res_max) 14272 return; 14273 14274 *dst_umin = 0; 14275 *dst_umax = min(*dst_umax, res_max); 14276 14277 /* Reset other ranges/tnum to unbounded/unknown. */ 14278 dst_reg->smin_value = S64_MIN; 14279 dst_reg->smax_value = S64_MAX; 14280 reset_reg32_and_tnum(dst_reg); 14281 } 14282 14283 static void scalar32_min_max_smod(struct bpf_reg_state *dst_reg, 14284 struct bpf_reg_state *src_reg) 14285 { 14286 s32 *dst_smin = &dst_reg->s32_min_value; 14287 s32 *dst_smax = &dst_reg->s32_max_value; 14288 s32 src_val = src_reg->s32_min_value; /* non-zero, const divisor */ 14289 14290 /* 14291 * Safe absolute value calculation: 14292 * If src_val == S32_MIN (-2147483648), src_abs becomes 2147483648. 14293 * Here use unsigned integer to avoid overflow. 14294 */ 14295 u32 src_abs = (src_val > 0) ? (u32)src_val : -(u32)src_val; 14296 14297 /* 14298 * Calculate the maximum possible absolute value of the result. 14299 * Even if src_abs is 2147483648 (S32_MIN), subtracting 1 gives 14300 * 2147483647 (S32_MAX), which fits perfectly in s32. 14301 */ 14302 s32 res_max_abs = src_abs - 1; 14303 14304 /* 14305 * If the dividend is already within the result range, 14306 * the result remains unchanged. e.g., [-2, 5] % 10 = [-2, 5]. 14307 */ 14308 if (*dst_smin >= -res_max_abs && *dst_smax <= res_max_abs) 14309 return; 14310 14311 /* General case: result has the same sign as the dividend. */ 14312 if (*dst_smin >= 0) { 14313 *dst_smin = 0; 14314 *dst_smax = min(*dst_smax, res_max_abs); 14315 } else if (*dst_smax <= 0) { 14316 *dst_smax = 0; 14317 *dst_smin = max(*dst_smin, -res_max_abs); 14318 } else { 14319 *dst_smin = -res_max_abs; 14320 *dst_smax = res_max_abs; 14321 } 14322 14323 /* Reset other ranges/tnum to unbounded/unknown. */ 14324 dst_reg->u32_min_value = 0; 14325 dst_reg->u32_max_value = U32_MAX; 14326 reset_reg64_and_tnum(dst_reg); 14327 } 14328 14329 static void scalar_min_max_smod(struct bpf_reg_state *dst_reg, 14330 struct bpf_reg_state *src_reg) 14331 { 14332 s64 *dst_smin = &dst_reg->smin_value; 14333 s64 *dst_smax = &dst_reg->smax_value; 14334 s64 src_val = src_reg->smin_value; /* non-zero, const divisor */ 14335 14336 /* 14337 * Safe absolute value calculation: 14338 * If src_val == S64_MIN (-2^63), src_abs becomes 2^63. 14339 * Here use unsigned integer to avoid overflow. 14340 */ 14341 u64 src_abs = (src_val > 0) ? (u64)src_val : -(u64)src_val; 14342 14343 /* 14344 * Calculate the maximum possible absolute value of the result. 14345 * Even if src_abs is 2^63 (S64_MIN), subtracting 1 gives 14346 * 2^63 - 1 (S64_MAX), which fits perfectly in s64. 14347 */ 14348 s64 res_max_abs = src_abs - 1; 14349 14350 /* 14351 * If the dividend is already within the result range, 14352 * the result remains unchanged. e.g., [-2, 5] % 10 = [-2, 5]. 14353 */ 14354 if (*dst_smin >= -res_max_abs && *dst_smax <= res_max_abs) 14355 return; 14356 14357 /* General case: result has the same sign as the dividend. */ 14358 if (*dst_smin >= 0) { 14359 *dst_smin = 0; 14360 *dst_smax = min(*dst_smax, res_max_abs); 14361 } else if (*dst_smax <= 0) { 14362 *dst_smax = 0; 14363 *dst_smin = max(*dst_smin, -res_max_abs); 14364 } else { 14365 *dst_smin = -res_max_abs; 14366 *dst_smax = res_max_abs; 14367 } 14368 14369 /* Reset other ranges/tnum to unbounded/unknown. */ 14370 dst_reg->umin_value = 0; 14371 dst_reg->umax_value = U64_MAX; 14372 reset_reg32_and_tnum(dst_reg); 14373 } 14374 14375 static void scalar32_min_max_and(struct bpf_reg_state *dst_reg, 14376 struct bpf_reg_state *src_reg) 14377 { 14378 bool src_known = tnum_subreg_is_const(src_reg->var_off); 14379 bool dst_known = tnum_subreg_is_const(dst_reg->var_off); 14380 struct tnum var32_off = tnum_subreg(dst_reg->var_off); 14381 u32 umax_val = src_reg->u32_max_value; 14382 14383 if (src_known && dst_known) { 14384 __mark_reg32_known(dst_reg, var32_off.value); 14385 return; 14386 } 14387 14388 /* We get our minimum from the var_off, since that's inherently 14389 * bitwise. Our maximum is the minimum of the operands' maxima. 14390 */ 14391 dst_reg->u32_min_value = var32_off.value; 14392 dst_reg->u32_max_value = min(dst_reg->u32_max_value, umax_val); 14393 14394 /* Safe to set s32 bounds by casting u32 result into s32 when u32 14395 * doesn't cross sign boundary. Otherwise set s32 bounds to unbounded. 14396 */ 14397 if ((s32)dst_reg->u32_min_value <= (s32)dst_reg->u32_max_value) { 14398 dst_reg->s32_min_value = dst_reg->u32_min_value; 14399 dst_reg->s32_max_value = dst_reg->u32_max_value; 14400 } else { 14401 dst_reg->s32_min_value = S32_MIN; 14402 dst_reg->s32_max_value = S32_MAX; 14403 } 14404 } 14405 14406 static void scalar_min_max_and(struct bpf_reg_state *dst_reg, 14407 struct bpf_reg_state *src_reg) 14408 { 14409 bool src_known = tnum_is_const(src_reg->var_off); 14410 bool dst_known = tnum_is_const(dst_reg->var_off); 14411 u64 umax_val = src_reg->umax_value; 14412 14413 if (src_known && dst_known) { 14414 __mark_reg_known(dst_reg, dst_reg->var_off.value); 14415 return; 14416 } 14417 14418 /* We get our minimum from the var_off, since that's inherently 14419 * bitwise. Our maximum is the minimum of the operands' maxima. 14420 */ 14421 dst_reg->umin_value = dst_reg->var_off.value; 14422 dst_reg->umax_value = min(dst_reg->umax_value, umax_val); 14423 14424 /* Safe to set s64 bounds by casting u64 result into s64 when u64 14425 * doesn't cross sign boundary. Otherwise set s64 bounds to unbounded. 14426 */ 14427 if ((s64)dst_reg->umin_value <= (s64)dst_reg->umax_value) { 14428 dst_reg->smin_value = dst_reg->umin_value; 14429 dst_reg->smax_value = dst_reg->umax_value; 14430 } else { 14431 dst_reg->smin_value = S64_MIN; 14432 dst_reg->smax_value = S64_MAX; 14433 } 14434 /* We may learn something more from the var_off */ 14435 __update_reg_bounds(dst_reg); 14436 } 14437 14438 static void scalar32_min_max_or(struct bpf_reg_state *dst_reg, 14439 struct bpf_reg_state *src_reg) 14440 { 14441 bool src_known = tnum_subreg_is_const(src_reg->var_off); 14442 bool dst_known = tnum_subreg_is_const(dst_reg->var_off); 14443 struct tnum var32_off = tnum_subreg(dst_reg->var_off); 14444 u32 umin_val = src_reg->u32_min_value; 14445 14446 if (src_known && dst_known) { 14447 __mark_reg32_known(dst_reg, var32_off.value); 14448 return; 14449 } 14450 14451 /* We get our maximum from the var_off, and our minimum is the 14452 * maximum of the operands' minima 14453 */ 14454 dst_reg->u32_min_value = max(dst_reg->u32_min_value, umin_val); 14455 dst_reg->u32_max_value = var32_off.value | var32_off.mask; 14456 14457 /* Safe to set s32 bounds by casting u32 result into s32 when u32 14458 * doesn't cross sign boundary. Otherwise set s32 bounds to unbounded. 14459 */ 14460 if ((s32)dst_reg->u32_min_value <= (s32)dst_reg->u32_max_value) { 14461 dst_reg->s32_min_value = dst_reg->u32_min_value; 14462 dst_reg->s32_max_value = dst_reg->u32_max_value; 14463 } else { 14464 dst_reg->s32_min_value = S32_MIN; 14465 dst_reg->s32_max_value = S32_MAX; 14466 } 14467 } 14468 14469 static void scalar_min_max_or(struct bpf_reg_state *dst_reg, 14470 struct bpf_reg_state *src_reg) 14471 { 14472 bool src_known = tnum_is_const(src_reg->var_off); 14473 bool dst_known = tnum_is_const(dst_reg->var_off); 14474 u64 umin_val = src_reg->umin_value; 14475 14476 if (src_known && dst_known) { 14477 __mark_reg_known(dst_reg, dst_reg->var_off.value); 14478 return; 14479 } 14480 14481 /* We get our maximum from the var_off, and our minimum is the 14482 * maximum of the operands' minima 14483 */ 14484 dst_reg->umin_value = max(dst_reg->umin_value, umin_val); 14485 dst_reg->umax_value = dst_reg->var_off.value | dst_reg->var_off.mask; 14486 14487 /* Safe to set s64 bounds by casting u64 result into s64 when u64 14488 * doesn't cross sign boundary. Otherwise set s64 bounds to unbounded. 14489 */ 14490 if ((s64)dst_reg->umin_value <= (s64)dst_reg->umax_value) { 14491 dst_reg->smin_value = dst_reg->umin_value; 14492 dst_reg->smax_value = dst_reg->umax_value; 14493 } else { 14494 dst_reg->smin_value = S64_MIN; 14495 dst_reg->smax_value = S64_MAX; 14496 } 14497 /* We may learn something more from the var_off */ 14498 __update_reg_bounds(dst_reg); 14499 } 14500 14501 static void scalar32_min_max_xor(struct bpf_reg_state *dst_reg, 14502 struct bpf_reg_state *src_reg) 14503 { 14504 bool src_known = tnum_subreg_is_const(src_reg->var_off); 14505 bool dst_known = tnum_subreg_is_const(dst_reg->var_off); 14506 struct tnum var32_off = tnum_subreg(dst_reg->var_off); 14507 14508 if (src_known && dst_known) { 14509 __mark_reg32_known(dst_reg, var32_off.value); 14510 return; 14511 } 14512 14513 /* We get both minimum and maximum from the var32_off. */ 14514 dst_reg->u32_min_value = var32_off.value; 14515 dst_reg->u32_max_value = var32_off.value | var32_off.mask; 14516 14517 /* Safe to set s32 bounds by casting u32 result into s32 when u32 14518 * doesn't cross sign boundary. Otherwise set s32 bounds to unbounded. 14519 */ 14520 if ((s32)dst_reg->u32_min_value <= (s32)dst_reg->u32_max_value) { 14521 dst_reg->s32_min_value = dst_reg->u32_min_value; 14522 dst_reg->s32_max_value = dst_reg->u32_max_value; 14523 } else { 14524 dst_reg->s32_min_value = S32_MIN; 14525 dst_reg->s32_max_value = S32_MAX; 14526 } 14527 } 14528 14529 static void scalar_min_max_xor(struct bpf_reg_state *dst_reg, 14530 struct bpf_reg_state *src_reg) 14531 { 14532 bool src_known = tnum_is_const(src_reg->var_off); 14533 bool dst_known = tnum_is_const(dst_reg->var_off); 14534 14535 if (src_known && dst_known) { 14536 /* dst_reg->var_off.value has been updated earlier */ 14537 __mark_reg_known(dst_reg, dst_reg->var_off.value); 14538 return; 14539 } 14540 14541 /* We get both minimum and maximum from the var_off. */ 14542 dst_reg->umin_value = dst_reg->var_off.value; 14543 dst_reg->umax_value = dst_reg->var_off.value | dst_reg->var_off.mask; 14544 14545 /* Safe to set s64 bounds by casting u64 result into s64 when u64 14546 * doesn't cross sign boundary. Otherwise set s64 bounds to unbounded. 14547 */ 14548 if ((s64)dst_reg->umin_value <= (s64)dst_reg->umax_value) { 14549 dst_reg->smin_value = dst_reg->umin_value; 14550 dst_reg->smax_value = dst_reg->umax_value; 14551 } else { 14552 dst_reg->smin_value = S64_MIN; 14553 dst_reg->smax_value = S64_MAX; 14554 } 14555 14556 __update_reg_bounds(dst_reg); 14557 } 14558 14559 static void __scalar32_min_max_lsh(struct bpf_reg_state *dst_reg, 14560 u64 umin_val, u64 umax_val) 14561 { 14562 /* We lose all sign bit information (except what we can pick 14563 * up from var_off) 14564 */ 14565 dst_reg->s32_min_value = S32_MIN; 14566 dst_reg->s32_max_value = S32_MAX; 14567 /* If we might shift our top bit out, then we know nothing */ 14568 if (umax_val > 31 || dst_reg->u32_max_value > 1ULL << (31 - umax_val)) { 14569 dst_reg->u32_min_value = 0; 14570 dst_reg->u32_max_value = U32_MAX; 14571 } else { 14572 dst_reg->u32_min_value <<= umin_val; 14573 dst_reg->u32_max_value <<= umax_val; 14574 } 14575 } 14576 14577 static void scalar32_min_max_lsh(struct bpf_reg_state *dst_reg, 14578 struct bpf_reg_state *src_reg) 14579 { 14580 u32 umax_val = src_reg->u32_max_value; 14581 u32 umin_val = src_reg->u32_min_value; 14582 /* u32 alu operation will zext upper bits */ 14583 struct tnum subreg = tnum_subreg(dst_reg->var_off); 14584 14585 __scalar32_min_max_lsh(dst_reg, umin_val, umax_val); 14586 dst_reg->var_off = tnum_subreg(tnum_lshift(subreg, umin_val)); 14587 /* Not required but being careful mark reg64 bounds as unknown so 14588 * that we are forced to pick them up from tnum and zext later and 14589 * if some path skips this step we are still safe. 14590 */ 14591 __mark_reg64_unbounded(dst_reg); 14592 __update_reg32_bounds(dst_reg); 14593 } 14594 14595 static void __scalar64_min_max_lsh(struct bpf_reg_state *dst_reg, 14596 u64 umin_val, u64 umax_val) 14597 { 14598 /* Special case <<32 because it is a common compiler pattern to sign 14599 * extend subreg by doing <<32 s>>32. smin/smax assignments are correct 14600 * because s32 bounds don't flip sign when shifting to the left by 14601 * 32bits. 14602 */ 14603 if (umin_val == 32 && umax_val == 32) { 14604 dst_reg->smax_value = (s64)dst_reg->s32_max_value << 32; 14605 dst_reg->smin_value = (s64)dst_reg->s32_min_value << 32; 14606 } else { 14607 dst_reg->smax_value = S64_MAX; 14608 dst_reg->smin_value = S64_MIN; 14609 } 14610 14611 /* If we might shift our top bit out, then we know nothing */ 14612 if (dst_reg->umax_value > 1ULL << (63 - umax_val)) { 14613 dst_reg->umin_value = 0; 14614 dst_reg->umax_value = U64_MAX; 14615 } else { 14616 dst_reg->umin_value <<= umin_val; 14617 dst_reg->umax_value <<= umax_val; 14618 } 14619 } 14620 14621 static void scalar_min_max_lsh(struct bpf_reg_state *dst_reg, 14622 struct bpf_reg_state *src_reg) 14623 { 14624 u64 umax_val = src_reg->umax_value; 14625 u64 umin_val = src_reg->umin_value; 14626 14627 /* scalar64 calc uses 32bit unshifted bounds so must be called first */ 14628 __scalar64_min_max_lsh(dst_reg, umin_val, umax_val); 14629 __scalar32_min_max_lsh(dst_reg, umin_val, umax_val); 14630 14631 dst_reg->var_off = tnum_lshift(dst_reg->var_off, umin_val); 14632 /* We may learn something more from the var_off */ 14633 __update_reg_bounds(dst_reg); 14634 } 14635 14636 static void scalar32_min_max_rsh(struct bpf_reg_state *dst_reg, 14637 struct bpf_reg_state *src_reg) 14638 { 14639 struct tnum subreg = tnum_subreg(dst_reg->var_off); 14640 u32 umax_val = src_reg->u32_max_value; 14641 u32 umin_val = src_reg->u32_min_value; 14642 14643 /* BPF_RSH is an unsigned shift. If the value in dst_reg might 14644 * be negative, then either: 14645 * 1) src_reg might be zero, so the sign bit of the result is 14646 * unknown, so we lose our signed bounds 14647 * 2) it's known negative, thus the unsigned bounds capture the 14648 * signed bounds 14649 * 3) the signed bounds cross zero, so they tell us nothing 14650 * about the result 14651 * If the value in dst_reg is known nonnegative, then again the 14652 * unsigned bounds capture the signed bounds. 14653 * Thus, in all cases it suffices to blow away our signed bounds 14654 * and rely on inferring new ones from the unsigned bounds and 14655 * var_off of the result. 14656 */ 14657 dst_reg->s32_min_value = S32_MIN; 14658 dst_reg->s32_max_value = S32_MAX; 14659 14660 dst_reg->var_off = tnum_rshift(subreg, umin_val); 14661 dst_reg->u32_min_value >>= umax_val; 14662 dst_reg->u32_max_value >>= umin_val; 14663 14664 __mark_reg64_unbounded(dst_reg); 14665 __update_reg32_bounds(dst_reg); 14666 } 14667 14668 static void scalar_min_max_rsh(struct bpf_reg_state *dst_reg, 14669 struct bpf_reg_state *src_reg) 14670 { 14671 u64 umax_val = src_reg->umax_value; 14672 u64 umin_val = src_reg->umin_value; 14673 14674 /* BPF_RSH is an unsigned shift. If the value in dst_reg might 14675 * be negative, then either: 14676 * 1) src_reg might be zero, so the sign bit of the result is 14677 * unknown, so we lose our signed bounds 14678 * 2) it's known negative, thus the unsigned bounds capture the 14679 * signed bounds 14680 * 3) the signed bounds cross zero, so they tell us nothing 14681 * about the result 14682 * If the value in dst_reg is known nonnegative, then again the 14683 * unsigned bounds capture the signed bounds. 14684 * Thus, in all cases it suffices to blow away our signed bounds 14685 * and rely on inferring new ones from the unsigned bounds and 14686 * var_off of the result. 14687 */ 14688 dst_reg->smin_value = S64_MIN; 14689 dst_reg->smax_value = S64_MAX; 14690 dst_reg->var_off = tnum_rshift(dst_reg->var_off, umin_val); 14691 dst_reg->umin_value >>= umax_val; 14692 dst_reg->umax_value >>= umin_val; 14693 14694 /* Its not easy to operate on alu32 bounds here because it depends 14695 * on bits being shifted in. Take easy way out and mark unbounded 14696 * so we can recalculate later from tnum. 14697 */ 14698 __mark_reg32_unbounded(dst_reg); 14699 __update_reg_bounds(dst_reg); 14700 } 14701 14702 static void scalar32_min_max_arsh(struct bpf_reg_state *dst_reg, 14703 struct bpf_reg_state *src_reg) 14704 { 14705 u64 umin_val = src_reg->u32_min_value; 14706 14707 /* Upon reaching here, src_known is true and 14708 * umax_val is equal to umin_val. 14709 */ 14710 dst_reg->s32_min_value = (u32)(((s32)dst_reg->s32_min_value) >> umin_val); 14711 dst_reg->s32_max_value = (u32)(((s32)dst_reg->s32_max_value) >> umin_val); 14712 14713 dst_reg->var_off = tnum_arshift(tnum_subreg(dst_reg->var_off), umin_val, 32); 14714 14715 /* blow away the dst_reg umin_value/umax_value and rely on 14716 * dst_reg var_off to refine the result. 14717 */ 14718 dst_reg->u32_min_value = 0; 14719 dst_reg->u32_max_value = U32_MAX; 14720 14721 __mark_reg64_unbounded(dst_reg); 14722 __update_reg32_bounds(dst_reg); 14723 } 14724 14725 static void scalar_min_max_arsh(struct bpf_reg_state *dst_reg, 14726 struct bpf_reg_state *src_reg) 14727 { 14728 u64 umin_val = src_reg->umin_value; 14729 14730 /* Upon reaching here, src_known is true and umax_val is equal 14731 * to umin_val. 14732 */ 14733 dst_reg->smin_value >>= umin_val; 14734 dst_reg->smax_value >>= umin_val; 14735 14736 dst_reg->var_off = tnum_arshift(dst_reg->var_off, umin_val, 64); 14737 14738 /* blow away the dst_reg umin_value/umax_value and rely on 14739 * dst_reg var_off to refine the result. 14740 */ 14741 dst_reg->umin_value = 0; 14742 dst_reg->umax_value = U64_MAX; 14743 14744 /* Its not easy to operate on alu32 bounds here because it depends 14745 * on bits being shifted in from upper 32-bits. Take easy way out 14746 * and mark unbounded so we can recalculate later from tnum. 14747 */ 14748 __mark_reg32_unbounded(dst_reg); 14749 __update_reg_bounds(dst_reg); 14750 } 14751 14752 static void scalar_byte_swap(struct bpf_reg_state *dst_reg, struct bpf_insn *insn) 14753 { 14754 /* 14755 * Byte swap operation - update var_off using tnum_bswap. 14756 * Three cases: 14757 * 1. bswap(16|32|64): opcode=0xd7 (BPF_END | BPF_ALU64 | BPF_TO_LE) 14758 * unconditional swap 14759 * 2. to_le(16|32|64): opcode=0xd4 (BPF_END | BPF_ALU | BPF_TO_LE) 14760 * swap on big-endian, truncation or no-op on little-endian 14761 * 3. to_be(16|32|64): opcode=0xdc (BPF_END | BPF_ALU | BPF_TO_BE) 14762 * swap on little-endian, truncation or no-op on big-endian 14763 */ 14764 14765 bool alu64 = BPF_CLASS(insn->code) == BPF_ALU64; 14766 bool to_le = BPF_SRC(insn->code) == BPF_TO_LE; 14767 bool is_big_endian; 14768 #ifdef CONFIG_CPU_BIG_ENDIAN 14769 is_big_endian = true; 14770 #else 14771 is_big_endian = false; 14772 #endif 14773 /* Apply bswap if alu64 or switch between big-endian and little-endian machines */ 14774 bool need_bswap = alu64 || (to_le == is_big_endian); 14775 14776 /* 14777 * If the register is mutated, manually reset its scalar ID to break 14778 * any existing ties and avoid incorrect bounds propagation. 14779 */ 14780 if (need_bswap || insn->imm == 16 || insn->imm == 32) 14781 clear_scalar_id(dst_reg); 14782 14783 if (need_bswap) { 14784 if (insn->imm == 16) 14785 dst_reg->var_off = tnum_bswap16(dst_reg->var_off); 14786 else if (insn->imm == 32) 14787 dst_reg->var_off = tnum_bswap32(dst_reg->var_off); 14788 else if (insn->imm == 64) 14789 dst_reg->var_off = tnum_bswap64(dst_reg->var_off); 14790 /* 14791 * Byteswap scrambles the range, so we must reset bounds. 14792 * Bounds will be re-derived from the new tnum later. 14793 */ 14794 __mark_reg_unbounded(dst_reg); 14795 } 14796 /* For bswap16/32, truncate dst register to match the swapped size */ 14797 if (insn->imm == 16 || insn->imm == 32) 14798 coerce_reg_to_size(dst_reg, insn->imm / 8); 14799 } 14800 14801 static bool is_safe_to_compute_dst_reg_range(struct bpf_insn *insn, 14802 const struct bpf_reg_state *src_reg) 14803 { 14804 bool src_is_const = false; 14805 u64 insn_bitness = (BPF_CLASS(insn->code) == BPF_ALU64) ? 64 : 32; 14806 14807 if (insn_bitness == 32) { 14808 if (tnum_subreg_is_const(src_reg->var_off) 14809 && src_reg->s32_min_value == src_reg->s32_max_value 14810 && src_reg->u32_min_value == src_reg->u32_max_value) 14811 src_is_const = true; 14812 } else { 14813 if (tnum_is_const(src_reg->var_off) 14814 && src_reg->smin_value == src_reg->smax_value 14815 && src_reg->umin_value == src_reg->umax_value) 14816 src_is_const = true; 14817 } 14818 14819 switch (BPF_OP(insn->code)) { 14820 case BPF_ADD: 14821 case BPF_SUB: 14822 case BPF_NEG: 14823 case BPF_AND: 14824 case BPF_XOR: 14825 case BPF_OR: 14826 case BPF_MUL: 14827 case BPF_END: 14828 return true; 14829 14830 /* 14831 * Division and modulo operators range is only safe to compute when the 14832 * divisor is a constant. 14833 */ 14834 case BPF_DIV: 14835 case BPF_MOD: 14836 return src_is_const; 14837 14838 /* Shift operators range is only computable if shift dimension operand 14839 * is a constant. Shifts greater than 31 or 63 are undefined. This 14840 * includes shifts by a negative number. 14841 */ 14842 case BPF_LSH: 14843 case BPF_RSH: 14844 case BPF_ARSH: 14845 return (src_is_const && src_reg->umax_value < insn_bitness); 14846 default: 14847 return false; 14848 } 14849 } 14850 14851 static int maybe_fork_scalars(struct bpf_verifier_env *env, struct bpf_insn *insn, 14852 struct bpf_reg_state *dst_reg) 14853 { 14854 struct bpf_verifier_state *branch; 14855 struct bpf_reg_state *regs; 14856 bool alu32; 14857 14858 if (dst_reg->smin_value == -1 && dst_reg->smax_value == 0) 14859 alu32 = false; 14860 else if (dst_reg->s32_min_value == -1 && dst_reg->s32_max_value == 0) 14861 alu32 = true; 14862 else 14863 return 0; 14864 14865 branch = push_stack(env, env->insn_idx, env->insn_idx, false); 14866 if (IS_ERR(branch)) 14867 return PTR_ERR(branch); 14868 14869 regs = branch->frame[branch->curframe]->regs; 14870 if (alu32) { 14871 __mark_reg32_known(®s[insn->dst_reg], 0); 14872 __mark_reg32_known(dst_reg, -1ull); 14873 } else { 14874 __mark_reg_known(®s[insn->dst_reg], 0); 14875 __mark_reg_known(dst_reg, -1ull); 14876 } 14877 return 0; 14878 } 14879 14880 /* WARNING: This function does calculations on 64-bit values, but the actual 14881 * execution may occur on 32-bit values. Therefore, things like bitshifts 14882 * need extra checks in the 32-bit case. 14883 */ 14884 static int adjust_scalar_min_max_vals(struct bpf_verifier_env *env, 14885 struct bpf_insn *insn, 14886 struct bpf_reg_state *dst_reg, 14887 struct bpf_reg_state src_reg) 14888 { 14889 u8 opcode = BPF_OP(insn->code); 14890 s16 off = insn->off; 14891 bool alu32 = (BPF_CLASS(insn->code) != BPF_ALU64); 14892 int ret; 14893 14894 if (!is_safe_to_compute_dst_reg_range(insn, &src_reg)) { 14895 __mark_reg_unknown(env, dst_reg); 14896 return 0; 14897 } 14898 14899 if (sanitize_needed(opcode)) { 14900 ret = sanitize_val_alu(env, insn); 14901 if (ret < 0) 14902 return sanitize_err(env, insn, ret, NULL, NULL); 14903 } 14904 14905 /* Calculate sign/unsigned bounds and tnum for alu32 and alu64 bit ops. 14906 * There are two classes of instructions: The first class we track both 14907 * alu32 and alu64 sign/unsigned bounds independently this provides the 14908 * greatest amount of precision when alu operations are mixed with jmp32 14909 * operations. These operations are BPF_ADD, BPF_SUB, BPF_MUL, BPF_ADD, 14910 * and BPF_OR. This is possible because these ops have fairly easy to 14911 * understand and calculate behavior in both 32-bit and 64-bit alu ops. 14912 * See alu32 verifier tests for examples. The second class of 14913 * operations, BPF_LSH, BPF_RSH, and BPF_ARSH, however are not so easy 14914 * with regards to tracking sign/unsigned bounds because the bits may 14915 * cross subreg boundaries in the alu64 case. When this happens we mark 14916 * the reg unbounded in the subreg bound space and use the resulting 14917 * tnum to calculate an approximation of the sign/unsigned bounds. 14918 */ 14919 switch (opcode) { 14920 case BPF_ADD: 14921 scalar32_min_max_add(dst_reg, &src_reg); 14922 scalar_min_max_add(dst_reg, &src_reg); 14923 dst_reg->var_off = tnum_add(dst_reg->var_off, src_reg.var_off); 14924 break; 14925 case BPF_SUB: 14926 scalar32_min_max_sub(dst_reg, &src_reg); 14927 scalar_min_max_sub(dst_reg, &src_reg); 14928 dst_reg->var_off = tnum_sub(dst_reg->var_off, src_reg.var_off); 14929 break; 14930 case BPF_NEG: 14931 env->fake_reg[0] = *dst_reg; 14932 __mark_reg_known(dst_reg, 0); 14933 scalar32_min_max_sub(dst_reg, &env->fake_reg[0]); 14934 scalar_min_max_sub(dst_reg, &env->fake_reg[0]); 14935 dst_reg->var_off = tnum_neg(env->fake_reg[0].var_off); 14936 break; 14937 case BPF_MUL: 14938 dst_reg->var_off = tnum_mul(dst_reg->var_off, src_reg.var_off); 14939 scalar32_min_max_mul(dst_reg, &src_reg); 14940 scalar_min_max_mul(dst_reg, &src_reg); 14941 break; 14942 case BPF_DIV: 14943 /* BPF div specification: x / 0 = 0 */ 14944 if ((alu32 && src_reg.u32_min_value == 0) || (!alu32 && src_reg.umin_value == 0)) { 14945 ___mark_reg_known(dst_reg, 0); 14946 break; 14947 } 14948 if (alu32) 14949 if (off == 1) 14950 scalar32_min_max_sdiv(dst_reg, &src_reg); 14951 else 14952 scalar32_min_max_udiv(dst_reg, &src_reg); 14953 else 14954 if (off == 1) 14955 scalar_min_max_sdiv(dst_reg, &src_reg); 14956 else 14957 scalar_min_max_udiv(dst_reg, &src_reg); 14958 break; 14959 case BPF_MOD: 14960 /* BPF mod specification: x % 0 = x */ 14961 if ((alu32 && src_reg.u32_min_value == 0) || (!alu32 && src_reg.umin_value == 0)) 14962 break; 14963 if (alu32) 14964 if (off == 1) 14965 scalar32_min_max_smod(dst_reg, &src_reg); 14966 else 14967 scalar32_min_max_umod(dst_reg, &src_reg); 14968 else 14969 if (off == 1) 14970 scalar_min_max_smod(dst_reg, &src_reg); 14971 else 14972 scalar_min_max_umod(dst_reg, &src_reg); 14973 break; 14974 case BPF_AND: 14975 if (tnum_is_const(src_reg.var_off)) { 14976 ret = maybe_fork_scalars(env, insn, dst_reg); 14977 if (ret) 14978 return ret; 14979 } 14980 dst_reg->var_off = tnum_and(dst_reg->var_off, src_reg.var_off); 14981 scalar32_min_max_and(dst_reg, &src_reg); 14982 scalar_min_max_and(dst_reg, &src_reg); 14983 break; 14984 case BPF_OR: 14985 if (tnum_is_const(src_reg.var_off)) { 14986 ret = maybe_fork_scalars(env, insn, dst_reg); 14987 if (ret) 14988 return ret; 14989 } 14990 dst_reg->var_off = tnum_or(dst_reg->var_off, src_reg.var_off); 14991 scalar32_min_max_or(dst_reg, &src_reg); 14992 scalar_min_max_or(dst_reg, &src_reg); 14993 break; 14994 case BPF_XOR: 14995 dst_reg->var_off = tnum_xor(dst_reg->var_off, src_reg.var_off); 14996 scalar32_min_max_xor(dst_reg, &src_reg); 14997 scalar_min_max_xor(dst_reg, &src_reg); 14998 break; 14999 case BPF_LSH: 15000 if (alu32) 15001 scalar32_min_max_lsh(dst_reg, &src_reg); 15002 else 15003 scalar_min_max_lsh(dst_reg, &src_reg); 15004 break; 15005 case BPF_RSH: 15006 if (alu32) 15007 scalar32_min_max_rsh(dst_reg, &src_reg); 15008 else 15009 scalar_min_max_rsh(dst_reg, &src_reg); 15010 break; 15011 case BPF_ARSH: 15012 if (alu32) 15013 scalar32_min_max_arsh(dst_reg, &src_reg); 15014 else 15015 scalar_min_max_arsh(dst_reg, &src_reg); 15016 break; 15017 case BPF_END: 15018 scalar_byte_swap(dst_reg, insn); 15019 break; 15020 default: 15021 break; 15022 } 15023 15024 /* 15025 * ALU32 ops are zero extended into 64bit register. 15026 * 15027 * BPF_END is already handled inside the helper (truncation), 15028 * so skip zext here to avoid unexpected zero extension. 15029 * e.g., le64: opcode=(BPF_END|BPF_ALU|BPF_TO_LE), imm=0x40 15030 * This is a 64bit byte swap operation with alu32==true, 15031 * but we should not zero extend the result. 15032 */ 15033 if (alu32 && opcode != BPF_END) 15034 zext_32_to_64(dst_reg); 15035 reg_bounds_sync(dst_reg); 15036 return 0; 15037 } 15038 15039 /* Handles ALU ops other than BPF_END, BPF_NEG and BPF_MOV: computes new min/max 15040 * and var_off. 15041 */ 15042 static int adjust_reg_min_max_vals(struct bpf_verifier_env *env, 15043 struct bpf_insn *insn) 15044 { 15045 struct bpf_verifier_state *vstate = env->cur_state; 15046 struct bpf_func_state *state = vstate->frame[vstate->curframe]; 15047 struct bpf_reg_state *regs = state->regs, *dst_reg, *src_reg; 15048 struct bpf_reg_state *ptr_reg = NULL, off_reg = {0}; 15049 bool alu32 = (BPF_CLASS(insn->code) != BPF_ALU64); 15050 u8 opcode = BPF_OP(insn->code); 15051 int err; 15052 15053 dst_reg = ®s[insn->dst_reg]; 15054 if (BPF_SRC(insn->code) == BPF_X) 15055 src_reg = ®s[insn->src_reg]; 15056 else 15057 src_reg = NULL; 15058 15059 /* Case where at least one operand is an arena. */ 15060 if (dst_reg->type == PTR_TO_ARENA || (src_reg && src_reg->type == PTR_TO_ARENA)) { 15061 struct bpf_insn_aux_data *aux = cur_aux(env); 15062 15063 if (dst_reg->type != PTR_TO_ARENA) 15064 *dst_reg = *src_reg; 15065 15066 dst_reg->subreg_def = env->insn_idx + 1; 15067 15068 if (BPF_CLASS(insn->code) == BPF_ALU64) 15069 /* 15070 * 32-bit operations zero upper bits automatically. 15071 * 64-bit operations need to be converted to 32. 15072 */ 15073 aux->needs_zext = true; 15074 15075 /* Any arithmetic operations are allowed on arena pointers */ 15076 return 0; 15077 } 15078 15079 if (dst_reg->type != SCALAR_VALUE) 15080 ptr_reg = dst_reg; 15081 15082 if (BPF_SRC(insn->code) == BPF_X) { 15083 if (src_reg->type != SCALAR_VALUE) { 15084 if (dst_reg->type != SCALAR_VALUE) { 15085 /* Combining two pointers by any ALU op yields 15086 * an arbitrary scalar. Disallow all math except 15087 * pointer subtraction 15088 */ 15089 if (opcode == BPF_SUB && env->allow_ptr_leaks) { 15090 mark_reg_unknown(env, regs, insn->dst_reg); 15091 return 0; 15092 } 15093 verbose(env, "R%d pointer %s pointer prohibited\n", 15094 insn->dst_reg, 15095 bpf_alu_string[opcode >> 4]); 15096 return -EACCES; 15097 } else { 15098 /* scalar += pointer 15099 * This is legal, but we have to reverse our 15100 * src/dest handling in computing the range 15101 */ 15102 err = mark_chain_precision(env, insn->dst_reg); 15103 if (err) 15104 return err; 15105 return adjust_ptr_min_max_vals(env, insn, 15106 src_reg, dst_reg); 15107 } 15108 } else if (ptr_reg) { 15109 /* pointer += scalar */ 15110 err = mark_chain_precision(env, insn->src_reg); 15111 if (err) 15112 return err; 15113 return adjust_ptr_min_max_vals(env, insn, 15114 dst_reg, src_reg); 15115 } else if (dst_reg->precise) { 15116 /* if dst_reg is precise, src_reg should be precise as well */ 15117 err = mark_chain_precision(env, insn->src_reg); 15118 if (err) 15119 return err; 15120 } 15121 } else { 15122 /* Pretend the src is a reg with a known value, since we only 15123 * need to be able to read from this state. 15124 */ 15125 off_reg.type = SCALAR_VALUE; 15126 __mark_reg_known(&off_reg, insn->imm); 15127 src_reg = &off_reg; 15128 if (ptr_reg) /* pointer += K */ 15129 return adjust_ptr_min_max_vals(env, insn, 15130 ptr_reg, src_reg); 15131 } 15132 15133 /* Got here implies adding two SCALAR_VALUEs */ 15134 if (WARN_ON_ONCE(ptr_reg)) { 15135 print_verifier_state(env, vstate, vstate->curframe, true); 15136 verbose(env, "verifier internal error: unexpected ptr_reg\n"); 15137 return -EFAULT; 15138 } 15139 if (WARN_ON(!src_reg)) { 15140 print_verifier_state(env, vstate, vstate->curframe, true); 15141 verbose(env, "verifier internal error: no src_reg\n"); 15142 return -EFAULT; 15143 } 15144 /* 15145 * For alu32 linked register tracking, we need to check dst_reg's 15146 * umax_value before the ALU operation. After adjust_scalar_min_max_vals(), 15147 * alu32 ops will have zero-extended the result, making umax_value <= U32_MAX. 15148 */ 15149 u64 dst_umax = dst_reg->umax_value; 15150 15151 err = adjust_scalar_min_max_vals(env, insn, dst_reg, *src_reg); 15152 if (err) 15153 return err; 15154 /* 15155 * Compilers can generate the code 15156 * r1 = r2 15157 * r1 += 0x1 15158 * if r2 < 1000 goto ... 15159 * use r1 in memory access 15160 * So remember constant delta between r2 and r1 and update r1 after 15161 * 'if' condition. 15162 */ 15163 if (env->bpf_capable && 15164 (BPF_OP(insn->code) == BPF_ADD || BPF_OP(insn->code) == BPF_SUB) && 15165 dst_reg->id && is_reg_const(src_reg, alu32) && 15166 !(BPF_SRC(insn->code) == BPF_X && insn->src_reg == insn->dst_reg)) { 15167 u64 val = reg_const_value(src_reg, alu32); 15168 s32 off; 15169 15170 if (!alu32 && ((s64)val < S32_MIN || (s64)val > S32_MAX)) 15171 goto clear_id; 15172 15173 if (alu32 && (dst_umax > U32_MAX)) 15174 goto clear_id; 15175 15176 off = (s32)val; 15177 15178 if (BPF_OP(insn->code) == BPF_SUB) { 15179 /* Negating S32_MIN would overflow */ 15180 if (off == S32_MIN) 15181 goto clear_id; 15182 off = -off; 15183 } 15184 15185 if (dst_reg->id & BPF_ADD_CONST) { 15186 /* 15187 * If the register already went through rX += val 15188 * we cannot accumulate another val into rx->off. 15189 */ 15190 clear_id: 15191 clear_scalar_id(dst_reg); 15192 } else { 15193 if (alu32) 15194 dst_reg->id |= BPF_ADD_CONST32; 15195 else 15196 dst_reg->id |= BPF_ADD_CONST64; 15197 dst_reg->delta = off; 15198 } 15199 } else { 15200 /* 15201 * Make sure ID is cleared otherwise dst_reg min/max could be 15202 * incorrectly propagated into other registers by sync_linked_regs() 15203 */ 15204 clear_scalar_id(dst_reg); 15205 } 15206 return 0; 15207 } 15208 15209 /* check validity of 32-bit and 64-bit arithmetic operations */ 15210 static int check_alu_op(struct bpf_verifier_env *env, struct bpf_insn *insn) 15211 { 15212 struct bpf_reg_state *regs = cur_regs(env); 15213 u8 opcode = BPF_OP(insn->code); 15214 int err; 15215 15216 if (opcode == BPF_END || opcode == BPF_NEG) { 15217 /* check src operand */ 15218 err = check_reg_arg(env, insn->dst_reg, SRC_OP); 15219 if (err) 15220 return err; 15221 15222 if (is_pointer_value(env, insn->dst_reg)) { 15223 verbose(env, "R%d pointer arithmetic prohibited\n", 15224 insn->dst_reg); 15225 return -EACCES; 15226 } 15227 15228 /* check dest operand */ 15229 if (regs[insn->dst_reg].type == SCALAR_VALUE) { 15230 err = check_reg_arg(env, insn->dst_reg, DST_OP_NO_MARK); 15231 err = err ?: adjust_scalar_min_max_vals(env, insn, 15232 ®s[insn->dst_reg], 15233 regs[insn->dst_reg]); 15234 } else { 15235 err = check_reg_arg(env, insn->dst_reg, DST_OP); 15236 } 15237 if (err) 15238 return err; 15239 15240 } else if (opcode == BPF_MOV) { 15241 15242 if (BPF_SRC(insn->code) == BPF_X) { 15243 if (insn->off == BPF_ADDR_SPACE_CAST) { 15244 if (!env->prog->aux->arena) { 15245 verbose(env, "addr_space_cast insn can only be used in a program that has an associated arena\n"); 15246 return -EINVAL; 15247 } 15248 } 15249 15250 /* check src operand */ 15251 err = check_reg_arg(env, insn->src_reg, SRC_OP); 15252 if (err) 15253 return err; 15254 } 15255 15256 /* check dest operand, mark as required later */ 15257 err = check_reg_arg(env, insn->dst_reg, DST_OP_NO_MARK); 15258 if (err) 15259 return err; 15260 15261 if (BPF_SRC(insn->code) == BPF_X) { 15262 struct bpf_reg_state *src_reg = regs + insn->src_reg; 15263 struct bpf_reg_state *dst_reg = regs + insn->dst_reg; 15264 15265 if (BPF_CLASS(insn->code) == BPF_ALU64) { 15266 if (insn->imm) { 15267 /* off == BPF_ADDR_SPACE_CAST */ 15268 mark_reg_unknown(env, regs, insn->dst_reg); 15269 if (insn->imm == 1) { /* cast from as(1) to as(0) */ 15270 dst_reg->type = PTR_TO_ARENA; 15271 /* PTR_TO_ARENA is 32-bit */ 15272 dst_reg->subreg_def = env->insn_idx + 1; 15273 } 15274 } else if (insn->off == 0) { 15275 /* case: R1 = R2 15276 * copy register state to dest reg 15277 */ 15278 assign_scalar_id_before_mov(env, src_reg); 15279 copy_register_state(dst_reg, src_reg); 15280 dst_reg->subreg_def = DEF_NOT_SUBREG; 15281 } else { 15282 /* case: R1 = (s8, s16 s32)R2 */ 15283 if (is_pointer_value(env, insn->src_reg)) { 15284 verbose(env, 15285 "R%d sign-extension part of pointer\n", 15286 insn->src_reg); 15287 return -EACCES; 15288 } else if (src_reg->type == SCALAR_VALUE) { 15289 bool no_sext; 15290 15291 no_sext = src_reg->umax_value < (1ULL << (insn->off - 1)); 15292 if (no_sext) 15293 assign_scalar_id_before_mov(env, src_reg); 15294 copy_register_state(dst_reg, src_reg); 15295 if (!no_sext) 15296 clear_scalar_id(dst_reg); 15297 coerce_reg_to_size_sx(dst_reg, insn->off >> 3); 15298 dst_reg->subreg_def = DEF_NOT_SUBREG; 15299 } else { 15300 mark_reg_unknown(env, regs, insn->dst_reg); 15301 } 15302 } 15303 } else { 15304 /* R1 = (u32) R2 */ 15305 if (is_pointer_value(env, insn->src_reg)) { 15306 verbose(env, 15307 "R%d partial copy of pointer\n", 15308 insn->src_reg); 15309 return -EACCES; 15310 } else if (src_reg->type == SCALAR_VALUE) { 15311 if (insn->off == 0) { 15312 bool is_src_reg_u32 = get_reg_width(src_reg) <= 32; 15313 15314 if (is_src_reg_u32) 15315 assign_scalar_id_before_mov(env, src_reg); 15316 copy_register_state(dst_reg, src_reg); 15317 /* Make sure ID is cleared if src_reg is not in u32 15318 * range otherwise dst_reg min/max could be incorrectly 15319 * propagated into src_reg by sync_linked_regs() 15320 */ 15321 if (!is_src_reg_u32) 15322 clear_scalar_id(dst_reg); 15323 dst_reg->subreg_def = env->insn_idx + 1; 15324 } else { 15325 /* case: W1 = (s8, s16)W2 */ 15326 bool no_sext = src_reg->umax_value < (1ULL << (insn->off - 1)); 15327 15328 if (no_sext) 15329 assign_scalar_id_before_mov(env, src_reg); 15330 copy_register_state(dst_reg, src_reg); 15331 if (!no_sext) 15332 clear_scalar_id(dst_reg); 15333 dst_reg->subreg_def = env->insn_idx + 1; 15334 coerce_subreg_to_size_sx(dst_reg, insn->off >> 3); 15335 } 15336 } else { 15337 mark_reg_unknown(env, regs, 15338 insn->dst_reg); 15339 } 15340 zext_32_to_64(dst_reg); 15341 reg_bounds_sync(dst_reg); 15342 } 15343 } else { 15344 /* case: R = imm 15345 * remember the value we stored into this reg 15346 */ 15347 /* clear any state __mark_reg_known doesn't set */ 15348 mark_reg_unknown(env, regs, insn->dst_reg); 15349 regs[insn->dst_reg].type = SCALAR_VALUE; 15350 if (BPF_CLASS(insn->code) == BPF_ALU64) { 15351 __mark_reg_known(regs + insn->dst_reg, 15352 insn->imm); 15353 } else { 15354 __mark_reg_known(regs + insn->dst_reg, 15355 (u32)insn->imm); 15356 } 15357 } 15358 15359 } else { /* all other ALU ops: and, sub, xor, add, ... */ 15360 15361 if (BPF_SRC(insn->code) == BPF_X) { 15362 /* check src1 operand */ 15363 err = check_reg_arg(env, insn->src_reg, SRC_OP); 15364 if (err) 15365 return err; 15366 } 15367 15368 /* check src2 operand */ 15369 err = check_reg_arg(env, insn->dst_reg, SRC_OP); 15370 if (err) 15371 return err; 15372 15373 if ((opcode == BPF_MOD || opcode == BPF_DIV) && 15374 BPF_SRC(insn->code) == BPF_K && insn->imm == 0) { 15375 verbose(env, "div by zero\n"); 15376 return -EINVAL; 15377 } 15378 15379 if ((opcode == BPF_LSH || opcode == BPF_RSH || 15380 opcode == BPF_ARSH) && BPF_SRC(insn->code) == BPF_K) { 15381 int size = BPF_CLASS(insn->code) == BPF_ALU64 ? 64 : 32; 15382 15383 if (insn->imm < 0 || insn->imm >= size) { 15384 verbose(env, "invalid shift %d\n", insn->imm); 15385 return -EINVAL; 15386 } 15387 } 15388 15389 /* check dest operand */ 15390 err = check_reg_arg(env, insn->dst_reg, DST_OP_NO_MARK); 15391 err = err ?: adjust_reg_min_max_vals(env, insn); 15392 if (err) 15393 return err; 15394 } 15395 15396 return reg_bounds_sanity_check(env, ®s[insn->dst_reg], "alu"); 15397 } 15398 15399 static void find_good_pkt_pointers(struct bpf_verifier_state *vstate, 15400 struct bpf_reg_state *dst_reg, 15401 enum bpf_reg_type type, 15402 bool range_right_open) 15403 { 15404 struct bpf_func_state *state; 15405 struct bpf_reg_state *reg; 15406 int new_range; 15407 15408 if (dst_reg->umax_value == 0 && range_right_open) 15409 /* This doesn't give us any range */ 15410 return; 15411 15412 if (dst_reg->umax_value > MAX_PACKET_OFF) 15413 /* Risk of overflow. For instance, ptr + (1<<63) may be less 15414 * than pkt_end, but that's because it's also less than pkt. 15415 */ 15416 return; 15417 15418 new_range = dst_reg->umax_value; 15419 if (range_right_open) 15420 new_range++; 15421 15422 /* Examples for register markings: 15423 * 15424 * pkt_data in dst register: 15425 * 15426 * r2 = r3; 15427 * r2 += 8; 15428 * if (r2 > pkt_end) goto <handle exception> 15429 * <access okay> 15430 * 15431 * r2 = r3; 15432 * r2 += 8; 15433 * if (r2 < pkt_end) goto <access okay> 15434 * <handle exception> 15435 * 15436 * Where: 15437 * r2 == dst_reg, pkt_end == src_reg 15438 * r2=pkt(id=n,off=8,r=0) 15439 * r3=pkt(id=n,off=0,r=0) 15440 * 15441 * pkt_data in src register: 15442 * 15443 * r2 = r3; 15444 * r2 += 8; 15445 * if (pkt_end >= r2) goto <access okay> 15446 * <handle exception> 15447 * 15448 * r2 = r3; 15449 * r2 += 8; 15450 * if (pkt_end <= r2) goto <handle exception> 15451 * <access okay> 15452 * 15453 * Where: 15454 * pkt_end == dst_reg, r2 == src_reg 15455 * r2=pkt(id=n,off=8,r=0) 15456 * r3=pkt(id=n,off=0,r=0) 15457 * 15458 * Find register r3 and mark its range as r3=pkt(id=n,off=0,r=8) 15459 * or r3=pkt(id=n,off=0,r=8-1), so that range of bytes [r3, r3 + 8) 15460 * and [r3, r3 + 8-1) respectively is safe to access depending on 15461 * the check. 15462 */ 15463 15464 /* If our ids match, then we must have the same max_value. And we 15465 * don't care about the other reg's fixed offset, since if it's too big 15466 * the range won't allow anything. 15467 * dst_reg->umax_value is known < MAX_PACKET_OFF, therefore it fits in a u16. 15468 */ 15469 bpf_for_each_reg_in_vstate(vstate, state, reg, ({ 15470 if (reg->type == type && reg->id == dst_reg->id) 15471 /* keep the maximum range already checked */ 15472 reg->range = max(reg->range, new_range); 15473 })); 15474 } 15475 15476 static void regs_refine_cond_op(struct bpf_reg_state *reg1, struct bpf_reg_state *reg2, 15477 u8 opcode, bool is_jmp32); 15478 static u8 rev_opcode(u8 opcode); 15479 15480 /* 15481 * Learn more information about live branches by simulating refinement on both branches. 15482 * regs_refine_cond_op() is sound, so producing ill-formed register bounds for the branch means 15483 * that branch is dead. 15484 */ 15485 static int simulate_both_branches_taken(struct bpf_verifier_env *env, u8 opcode, bool is_jmp32) 15486 { 15487 /* Fallthrough (FALSE) branch */ 15488 regs_refine_cond_op(&env->false_reg1, &env->false_reg2, rev_opcode(opcode), is_jmp32); 15489 reg_bounds_sync(&env->false_reg1); 15490 reg_bounds_sync(&env->false_reg2); 15491 /* 15492 * If there is a range bounds violation in *any* of the abstract values in either 15493 * reg_states in the FALSE branch (i.e. reg1, reg2), the FALSE branch must be dead. Only 15494 * TRUE branch will be taken. 15495 */ 15496 if (range_bounds_violation(&env->false_reg1) || range_bounds_violation(&env->false_reg2)) 15497 return 1; 15498 15499 /* Jump (TRUE) branch */ 15500 regs_refine_cond_op(&env->true_reg1, &env->true_reg2, opcode, is_jmp32); 15501 reg_bounds_sync(&env->true_reg1); 15502 reg_bounds_sync(&env->true_reg2); 15503 /* 15504 * If there is a range bounds violation in *any* of the abstract values in either 15505 * reg_states in the TRUE branch (i.e. true_reg1, true_reg2), the TRUE branch must be dead. 15506 * Only FALSE branch will be taken. 15507 */ 15508 if (range_bounds_violation(&env->true_reg1) || range_bounds_violation(&env->true_reg2)) 15509 return 0; 15510 15511 /* Both branches are possible, we can't determine which one will be taken. */ 15512 return -1; 15513 } 15514 15515 /* 15516 * <reg1> <op> <reg2>, currently assuming reg2 is a constant 15517 */ 15518 static int is_scalar_branch_taken(struct bpf_verifier_env *env, struct bpf_reg_state *reg1, 15519 struct bpf_reg_state *reg2, u8 opcode, bool is_jmp32) 15520 { 15521 struct tnum t1 = is_jmp32 ? tnum_subreg(reg1->var_off) : reg1->var_off; 15522 struct tnum t2 = is_jmp32 ? tnum_subreg(reg2->var_off) : reg2->var_off; 15523 u64 umin1 = is_jmp32 ? (u64)reg1->u32_min_value : reg1->umin_value; 15524 u64 umax1 = is_jmp32 ? (u64)reg1->u32_max_value : reg1->umax_value; 15525 s64 smin1 = is_jmp32 ? (s64)reg1->s32_min_value : reg1->smin_value; 15526 s64 smax1 = is_jmp32 ? (s64)reg1->s32_max_value : reg1->smax_value; 15527 u64 umin2 = is_jmp32 ? (u64)reg2->u32_min_value : reg2->umin_value; 15528 u64 umax2 = is_jmp32 ? (u64)reg2->u32_max_value : reg2->umax_value; 15529 s64 smin2 = is_jmp32 ? (s64)reg2->s32_min_value : reg2->smin_value; 15530 s64 smax2 = is_jmp32 ? (s64)reg2->s32_max_value : reg2->smax_value; 15531 15532 if (reg1 == reg2) { 15533 switch (opcode) { 15534 case BPF_JGE: 15535 case BPF_JLE: 15536 case BPF_JSGE: 15537 case BPF_JSLE: 15538 case BPF_JEQ: 15539 return 1; 15540 case BPF_JGT: 15541 case BPF_JLT: 15542 case BPF_JSGT: 15543 case BPF_JSLT: 15544 case BPF_JNE: 15545 return 0; 15546 case BPF_JSET: 15547 if (tnum_is_const(t1)) 15548 return t1.value != 0; 15549 else 15550 return (smin1 <= 0 && smax1 >= 0) ? -1 : 1; 15551 default: 15552 return -1; 15553 } 15554 } 15555 15556 switch (opcode) { 15557 case BPF_JEQ: 15558 /* constants, umin/umax and smin/smax checks would be 15559 * redundant in this case because they all should match 15560 */ 15561 if (tnum_is_const(t1) && tnum_is_const(t2)) 15562 return t1.value == t2.value; 15563 if (!tnum_overlap(t1, t2)) 15564 return 0; 15565 /* non-overlapping ranges */ 15566 if (umin1 > umax2 || umax1 < umin2) 15567 return 0; 15568 if (smin1 > smax2 || smax1 < smin2) 15569 return 0; 15570 if (!is_jmp32) { 15571 /* if 64-bit ranges are inconclusive, see if we can 15572 * utilize 32-bit subrange knowledge to eliminate 15573 * branches that can't be taken a priori 15574 */ 15575 if (reg1->u32_min_value > reg2->u32_max_value || 15576 reg1->u32_max_value < reg2->u32_min_value) 15577 return 0; 15578 if (reg1->s32_min_value > reg2->s32_max_value || 15579 reg1->s32_max_value < reg2->s32_min_value) 15580 return 0; 15581 } 15582 break; 15583 case BPF_JNE: 15584 /* constants, umin/umax and smin/smax checks would be 15585 * redundant in this case because they all should match 15586 */ 15587 if (tnum_is_const(t1) && tnum_is_const(t2)) 15588 return t1.value != t2.value; 15589 if (!tnum_overlap(t1, t2)) 15590 return 1; 15591 /* non-overlapping ranges */ 15592 if (umin1 > umax2 || umax1 < umin2) 15593 return 1; 15594 if (smin1 > smax2 || smax1 < smin2) 15595 return 1; 15596 if (!is_jmp32) { 15597 /* if 64-bit ranges are inconclusive, see if we can 15598 * utilize 32-bit subrange knowledge to eliminate 15599 * branches that can't be taken a priori 15600 */ 15601 if (reg1->u32_min_value > reg2->u32_max_value || 15602 reg1->u32_max_value < reg2->u32_min_value) 15603 return 1; 15604 if (reg1->s32_min_value > reg2->s32_max_value || 15605 reg1->s32_max_value < reg2->s32_min_value) 15606 return 1; 15607 } 15608 break; 15609 case BPF_JSET: 15610 if (!is_reg_const(reg2, is_jmp32)) { 15611 swap(reg1, reg2); 15612 swap(t1, t2); 15613 } 15614 if (!is_reg_const(reg2, is_jmp32)) 15615 return -1; 15616 if ((~t1.mask & t1.value) & t2.value) 15617 return 1; 15618 if (!((t1.mask | t1.value) & t2.value)) 15619 return 0; 15620 break; 15621 case BPF_JGT: 15622 if (umin1 > umax2) 15623 return 1; 15624 else if (umax1 <= umin2) 15625 return 0; 15626 break; 15627 case BPF_JSGT: 15628 if (smin1 > smax2) 15629 return 1; 15630 else if (smax1 <= smin2) 15631 return 0; 15632 break; 15633 case BPF_JLT: 15634 if (umax1 < umin2) 15635 return 1; 15636 else if (umin1 >= umax2) 15637 return 0; 15638 break; 15639 case BPF_JSLT: 15640 if (smax1 < smin2) 15641 return 1; 15642 else if (smin1 >= smax2) 15643 return 0; 15644 break; 15645 case BPF_JGE: 15646 if (umin1 >= umax2) 15647 return 1; 15648 else if (umax1 < umin2) 15649 return 0; 15650 break; 15651 case BPF_JSGE: 15652 if (smin1 >= smax2) 15653 return 1; 15654 else if (smax1 < smin2) 15655 return 0; 15656 break; 15657 case BPF_JLE: 15658 if (umax1 <= umin2) 15659 return 1; 15660 else if (umin1 > umax2) 15661 return 0; 15662 break; 15663 case BPF_JSLE: 15664 if (smax1 <= smin2) 15665 return 1; 15666 else if (smin1 > smax2) 15667 return 0; 15668 break; 15669 } 15670 15671 return simulate_both_branches_taken(env, opcode, is_jmp32); 15672 } 15673 15674 static int flip_opcode(u32 opcode) 15675 { 15676 /* How can we transform "a <op> b" into "b <op> a"? */ 15677 static const u8 opcode_flip[16] = { 15678 /* these stay the same */ 15679 [BPF_JEQ >> 4] = BPF_JEQ, 15680 [BPF_JNE >> 4] = BPF_JNE, 15681 [BPF_JSET >> 4] = BPF_JSET, 15682 /* these swap "lesser" and "greater" (L and G in the opcodes) */ 15683 [BPF_JGE >> 4] = BPF_JLE, 15684 [BPF_JGT >> 4] = BPF_JLT, 15685 [BPF_JLE >> 4] = BPF_JGE, 15686 [BPF_JLT >> 4] = BPF_JGT, 15687 [BPF_JSGE >> 4] = BPF_JSLE, 15688 [BPF_JSGT >> 4] = BPF_JSLT, 15689 [BPF_JSLE >> 4] = BPF_JSGE, 15690 [BPF_JSLT >> 4] = BPF_JSGT 15691 }; 15692 return opcode_flip[opcode >> 4]; 15693 } 15694 15695 static int is_pkt_ptr_branch_taken(struct bpf_reg_state *dst_reg, 15696 struct bpf_reg_state *src_reg, 15697 u8 opcode) 15698 { 15699 struct bpf_reg_state *pkt; 15700 15701 if (src_reg->type == PTR_TO_PACKET_END) { 15702 pkt = dst_reg; 15703 } else if (dst_reg->type == PTR_TO_PACKET_END) { 15704 pkt = src_reg; 15705 opcode = flip_opcode(opcode); 15706 } else { 15707 return -1; 15708 } 15709 15710 if (pkt->range >= 0) 15711 return -1; 15712 15713 switch (opcode) { 15714 case BPF_JLE: 15715 /* pkt <= pkt_end */ 15716 fallthrough; 15717 case BPF_JGT: 15718 /* pkt > pkt_end */ 15719 if (pkt->range == BEYOND_PKT_END) 15720 /* pkt has at last one extra byte beyond pkt_end */ 15721 return opcode == BPF_JGT; 15722 break; 15723 case BPF_JLT: 15724 /* pkt < pkt_end */ 15725 fallthrough; 15726 case BPF_JGE: 15727 /* pkt >= pkt_end */ 15728 if (pkt->range == BEYOND_PKT_END || pkt->range == AT_PKT_END) 15729 return opcode == BPF_JGE; 15730 break; 15731 } 15732 return -1; 15733 } 15734 15735 /* compute branch direction of the expression "if (<reg1> opcode <reg2>) goto target;" 15736 * and return: 15737 * 1 - branch will be taken and "goto target" will be executed 15738 * 0 - branch will not be taken and fall-through to next insn 15739 * -1 - unknown. Example: "if (reg1 < 5)" is unknown when register value 15740 * range [0,10] 15741 */ 15742 static int is_branch_taken(struct bpf_verifier_env *env, struct bpf_reg_state *reg1, 15743 struct bpf_reg_state *reg2, u8 opcode, bool is_jmp32) 15744 { 15745 if (reg_is_pkt_pointer_any(reg1) && reg_is_pkt_pointer_any(reg2) && !is_jmp32) 15746 return is_pkt_ptr_branch_taken(reg1, reg2, opcode); 15747 15748 if (__is_pointer_value(false, reg1) || __is_pointer_value(false, reg2)) { 15749 u64 val; 15750 15751 /* arrange that reg2 is a scalar, and reg1 is a pointer */ 15752 if (!is_reg_const(reg2, is_jmp32)) { 15753 opcode = flip_opcode(opcode); 15754 swap(reg1, reg2); 15755 } 15756 /* and ensure that reg2 is a constant */ 15757 if (!is_reg_const(reg2, is_jmp32)) 15758 return -1; 15759 15760 if (!reg_not_null(reg1)) 15761 return -1; 15762 15763 /* If pointer is valid tests against zero will fail so we can 15764 * use this to direct branch taken. 15765 */ 15766 val = reg_const_value(reg2, is_jmp32); 15767 if (val != 0) 15768 return -1; 15769 15770 switch (opcode) { 15771 case BPF_JEQ: 15772 return 0; 15773 case BPF_JNE: 15774 return 1; 15775 default: 15776 return -1; 15777 } 15778 } 15779 15780 /* now deal with two scalars, but not necessarily constants */ 15781 return is_scalar_branch_taken(env, reg1, reg2, opcode, is_jmp32); 15782 } 15783 15784 /* Opcode that corresponds to a *false* branch condition. 15785 * E.g., if r1 < r2, then reverse (false) condition is r1 >= r2 15786 */ 15787 static u8 rev_opcode(u8 opcode) 15788 { 15789 switch (opcode) { 15790 case BPF_JEQ: return BPF_JNE; 15791 case BPF_JNE: return BPF_JEQ; 15792 /* JSET doesn't have it's reverse opcode in BPF, so add 15793 * BPF_X flag to denote the reverse of that operation 15794 */ 15795 case BPF_JSET: return BPF_JSET | BPF_X; 15796 case BPF_JSET | BPF_X: return BPF_JSET; 15797 case BPF_JGE: return BPF_JLT; 15798 case BPF_JGT: return BPF_JLE; 15799 case BPF_JLE: return BPF_JGT; 15800 case BPF_JLT: return BPF_JGE; 15801 case BPF_JSGE: return BPF_JSLT; 15802 case BPF_JSGT: return BPF_JSLE; 15803 case BPF_JSLE: return BPF_JSGT; 15804 case BPF_JSLT: return BPF_JSGE; 15805 default: return 0; 15806 } 15807 } 15808 15809 /* Refine range knowledge for <reg1> <op> <reg>2 conditional operation. */ 15810 static void regs_refine_cond_op(struct bpf_reg_state *reg1, struct bpf_reg_state *reg2, 15811 u8 opcode, bool is_jmp32) 15812 { 15813 struct tnum t; 15814 u64 val; 15815 15816 /* In case of GE/GT/SGE/JST, reuse LE/LT/SLE/SLT logic from below */ 15817 switch (opcode) { 15818 case BPF_JGE: 15819 case BPF_JGT: 15820 case BPF_JSGE: 15821 case BPF_JSGT: 15822 opcode = flip_opcode(opcode); 15823 swap(reg1, reg2); 15824 break; 15825 default: 15826 break; 15827 } 15828 15829 switch (opcode) { 15830 case BPF_JEQ: 15831 if (is_jmp32) { 15832 reg1->u32_min_value = max(reg1->u32_min_value, reg2->u32_min_value); 15833 reg1->u32_max_value = min(reg1->u32_max_value, reg2->u32_max_value); 15834 reg1->s32_min_value = max(reg1->s32_min_value, reg2->s32_min_value); 15835 reg1->s32_max_value = min(reg1->s32_max_value, reg2->s32_max_value); 15836 reg2->u32_min_value = reg1->u32_min_value; 15837 reg2->u32_max_value = reg1->u32_max_value; 15838 reg2->s32_min_value = reg1->s32_min_value; 15839 reg2->s32_max_value = reg1->s32_max_value; 15840 15841 t = tnum_intersect(tnum_subreg(reg1->var_off), tnum_subreg(reg2->var_off)); 15842 reg1->var_off = tnum_with_subreg(reg1->var_off, t); 15843 reg2->var_off = tnum_with_subreg(reg2->var_off, t); 15844 } else { 15845 reg1->umin_value = max(reg1->umin_value, reg2->umin_value); 15846 reg1->umax_value = min(reg1->umax_value, reg2->umax_value); 15847 reg1->smin_value = max(reg1->smin_value, reg2->smin_value); 15848 reg1->smax_value = min(reg1->smax_value, reg2->smax_value); 15849 reg2->umin_value = reg1->umin_value; 15850 reg2->umax_value = reg1->umax_value; 15851 reg2->smin_value = reg1->smin_value; 15852 reg2->smax_value = reg1->smax_value; 15853 15854 reg1->var_off = tnum_intersect(reg1->var_off, reg2->var_off); 15855 reg2->var_off = reg1->var_off; 15856 } 15857 break; 15858 case BPF_JNE: 15859 if (!is_reg_const(reg2, is_jmp32)) 15860 swap(reg1, reg2); 15861 if (!is_reg_const(reg2, is_jmp32)) 15862 break; 15863 15864 /* try to recompute the bound of reg1 if reg2 is a const and 15865 * is exactly the edge of reg1. 15866 */ 15867 val = reg_const_value(reg2, is_jmp32); 15868 if (is_jmp32) { 15869 /* u32_min_value is not equal to 0xffffffff at this point, 15870 * because otherwise u32_max_value is 0xffffffff as well, 15871 * in such a case both reg1 and reg2 would be constants, 15872 * jump would be predicted and regs_refine_cond_op() 15873 * wouldn't be called. 15874 * 15875 * Same reasoning works for all {u,s}{min,max}{32,64} cases 15876 * below. 15877 */ 15878 if (reg1->u32_min_value == (u32)val) 15879 reg1->u32_min_value++; 15880 if (reg1->u32_max_value == (u32)val) 15881 reg1->u32_max_value--; 15882 if (reg1->s32_min_value == (s32)val) 15883 reg1->s32_min_value++; 15884 if (reg1->s32_max_value == (s32)val) 15885 reg1->s32_max_value--; 15886 } else { 15887 if (reg1->umin_value == (u64)val) 15888 reg1->umin_value++; 15889 if (reg1->umax_value == (u64)val) 15890 reg1->umax_value--; 15891 if (reg1->smin_value == (s64)val) 15892 reg1->smin_value++; 15893 if (reg1->smax_value == (s64)val) 15894 reg1->smax_value--; 15895 } 15896 break; 15897 case BPF_JSET: 15898 if (!is_reg_const(reg2, is_jmp32)) 15899 swap(reg1, reg2); 15900 if (!is_reg_const(reg2, is_jmp32)) 15901 break; 15902 val = reg_const_value(reg2, is_jmp32); 15903 /* BPF_JSET (i.e., TRUE branch, *not* BPF_JSET | BPF_X) 15904 * requires single bit to learn something useful. E.g., if we 15905 * know that `r1 & 0x3` is true, then which bits (0, 1, or both) 15906 * are actually set? We can learn something definite only if 15907 * it's a single-bit value to begin with. 15908 * 15909 * BPF_JSET | BPF_X (i.e., negation of BPF_JSET) doesn't have 15910 * this restriction. I.e., !(r1 & 0x3) means neither bit 0 nor 15911 * bit 1 is set, which we can readily use in adjustments. 15912 */ 15913 if (!is_power_of_2(val)) 15914 break; 15915 if (is_jmp32) { 15916 t = tnum_or(tnum_subreg(reg1->var_off), tnum_const(val)); 15917 reg1->var_off = tnum_with_subreg(reg1->var_off, t); 15918 } else { 15919 reg1->var_off = tnum_or(reg1->var_off, tnum_const(val)); 15920 } 15921 break; 15922 case BPF_JSET | BPF_X: /* reverse of BPF_JSET, see rev_opcode() */ 15923 if (!is_reg_const(reg2, is_jmp32)) 15924 swap(reg1, reg2); 15925 if (!is_reg_const(reg2, is_jmp32)) 15926 break; 15927 val = reg_const_value(reg2, is_jmp32); 15928 /* Forget the ranges before narrowing tnums, to avoid invariant 15929 * violations if we're on a dead branch. 15930 */ 15931 __mark_reg_unbounded(reg1); 15932 if (is_jmp32) { 15933 t = tnum_and(tnum_subreg(reg1->var_off), tnum_const(~val)); 15934 reg1->var_off = tnum_with_subreg(reg1->var_off, t); 15935 } else { 15936 reg1->var_off = tnum_and(reg1->var_off, tnum_const(~val)); 15937 } 15938 break; 15939 case BPF_JLE: 15940 if (is_jmp32) { 15941 reg1->u32_max_value = min(reg1->u32_max_value, reg2->u32_max_value); 15942 reg2->u32_min_value = max(reg1->u32_min_value, reg2->u32_min_value); 15943 } else { 15944 reg1->umax_value = min(reg1->umax_value, reg2->umax_value); 15945 reg2->umin_value = max(reg1->umin_value, reg2->umin_value); 15946 } 15947 break; 15948 case BPF_JLT: 15949 if (is_jmp32) { 15950 reg1->u32_max_value = min(reg1->u32_max_value, reg2->u32_max_value - 1); 15951 reg2->u32_min_value = max(reg1->u32_min_value + 1, reg2->u32_min_value); 15952 } else { 15953 reg1->umax_value = min(reg1->umax_value, reg2->umax_value - 1); 15954 reg2->umin_value = max(reg1->umin_value + 1, reg2->umin_value); 15955 } 15956 break; 15957 case BPF_JSLE: 15958 if (is_jmp32) { 15959 reg1->s32_max_value = min(reg1->s32_max_value, reg2->s32_max_value); 15960 reg2->s32_min_value = max(reg1->s32_min_value, reg2->s32_min_value); 15961 } else { 15962 reg1->smax_value = min(reg1->smax_value, reg2->smax_value); 15963 reg2->smin_value = max(reg1->smin_value, reg2->smin_value); 15964 } 15965 break; 15966 case BPF_JSLT: 15967 if (is_jmp32) { 15968 reg1->s32_max_value = min(reg1->s32_max_value, reg2->s32_max_value - 1); 15969 reg2->s32_min_value = max(reg1->s32_min_value + 1, reg2->s32_min_value); 15970 } else { 15971 reg1->smax_value = min(reg1->smax_value, reg2->smax_value - 1); 15972 reg2->smin_value = max(reg1->smin_value + 1, reg2->smin_value); 15973 } 15974 break; 15975 default: 15976 return; 15977 } 15978 } 15979 15980 /* Check for invariant violations on the registers for both branches of a condition */ 15981 static int regs_bounds_sanity_check_branches(struct bpf_verifier_env *env) 15982 { 15983 int err; 15984 15985 err = reg_bounds_sanity_check(env, &env->true_reg1, "true_reg1"); 15986 err = err ?: reg_bounds_sanity_check(env, &env->true_reg2, "true_reg2"); 15987 err = err ?: reg_bounds_sanity_check(env, &env->false_reg1, "false_reg1"); 15988 err = err ?: reg_bounds_sanity_check(env, &env->false_reg2, "false_reg2"); 15989 return err; 15990 } 15991 15992 static void mark_ptr_or_null_reg(struct bpf_func_state *state, 15993 struct bpf_reg_state *reg, u32 id, 15994 bool is_null) 15995 { 15996 if (type_may_be_null(reg->type) && reg->id == id && 15997 (is_rcu_reg(reg) || !WARN_ON_ONCE(!reg->id))) { 15998 /* Old offset should have been known-zero, because we don't 15999 * allow pointer arithmetic on pointers that might be NULL. 16000 * If we see this happening, don't convert the register. 16001 * 16002 * But in some cases, some helpers that return local kptrs 16003 * advance offset for the returned pointer. In those cases, 16004 * it is fine to expect to see reg->var_off. 16005 */ 16006 if (!(type_is_ptr_alloc_obj(reg->type) || type_is_non_owning_ref(reg->type)) && 16007 WARN_ON_ONCE(!tnum_equals_const(reg->var_off, 0))) 16008 return; 16009 if (is_null) { 16010 /* We don't need id and ref_obj_id from this point 16011 * onwards anymore, thus we should better reset it, 16012 * so that state pruning has chances to take effect. 16013 */ 16014 __mark_reg_known_zero(reg); 16015 reg->type = SCALAR_VALUE; 16016 16017 return; 16018 } 16019 16020 mark_ptr_not_null_reg(reg); 16021 16022 if (!reg_may_point_to_spin_lock(reg)) { 16023 /* For not-NULL ptr, reg->ref_obj_id will be reset 16024 * in release_reference(). 16025 * 16026 * reg->id is still used by spin_lock ptr. Other 16027 * than spin_lock ptr type, reg->id can be reset. 16028 */ 16029 reg->id = 0; 16030 } 16031 } 16032 } 16033 16034 /* The logic is similar to find_good_pkt_pointers(), both could eventually 16035 * be folded together at some point. 16036 */ 16037 static void mark_ptr_or_null_regs(struct bpf_verifier_state *vstate, u32 regno, 16038 bool is_null) 16039 { 16040 struct bpf_func_state *state = vstate->frame[vstate->curframe]; 16041 struct bpf_reg_state *regs = state->regs, *reg; 16042 u32 ref_obj_id = regs[regno].ref_obj_id; 16043 u32 id = regs[regno].id; 16044 16045 if (ref_obj_id && ref_obj_id == id && is_null) 16046 /* regs[regno] is in the " == NULL" branch. 16047 * No one could have freed the reference state before 16048 * doing the NULL check. 16049 */ 16050 WARN_ON_ONCE(release_reference_nomark(vstate, id)); 16051 16052 bpf_for_each_reg_in_vstate(vstate, state, reg, ({ 16053 mark_ptr_or_null_reg(state, reg, id, is_null); 16054 })); 16055 } 16056 16057 static bool try_match_pkt_pointers(const struct bpf_insn *insn, 16058 struct bpf_reg_state *dst_reg, 16059 struct bpf_reg_state *src_reg, 16060 struct bpf_verifier_state *this_branch, 16061 struct bpf_verifier_state *other_branch) 16062 { 16063 if (BPF_SRC(insn->code) != BPF_X) 16064 return false; 16065 16066 /* Pointers are always 64-bit. */ 16067 if (BPF_CLASS(insn->code) == BPF_JMP32) 16068 return false; 16069 16070 switch (BPF_OP(insn->code)) { 16071 case BPF_JGT: 16072 if ((dst_reg->type == PTR_TO_PACKET && 16073 src_reg->type == PTR_TO_PACKET_END) || 16074 (dst_reg->type == PTR_TO_PACKET_META && 16075 reg_is_init_pkt_pointer(src_reg, PTR_TO_PACKET))) { 16076 /* pkt_data' > pkt_end, pkt_meta' > pkt_data */ 16077 find_good_pkt_pointers(this_branch, dst_reg, 16078 dst_reg->type, false); 16079 mark_pkt_end(other_branch, insn->dst_reg, true); 16080 } else if ((dst_reg->type == PTR_TO_PACKET_END && 16081 src_reg->type == PTR_TO_PACKET) || 16082 (reg_is_init_pkt_pointer(dst_reg, PTR_TO_PACKET) && 16083 src_reg->type == PTR_TO_PACKET_META)) { 16084 /* pkt_end > pkt_data', pkt_data > pkt_meta' */ 16085 find_good_pkt_pointers(other_branch, src_reg, 16086 src_reg->type, true); 16087 mark_pkt_end(this_branch, insn->src_reg, false); 16088 } else { 16089 return false; 16090 } 16091 break; 16092 case BPF_JLT: 16093 if ((dst_reg->type == PTR_TO_PACKET && 16094 src_reg->type == PTR_TO_PACKET_END) || 16095 (dst_reg->type == PTR_TO_PACKET_META && 16096 reg_is_init_pkt_pointer(src_reg, PTR_TO_PACKET))) { 16097 /* pkt_data' < pkt_end, pkt_meta' < pkt_data */ 16098 find_good_pkt_pointers(other_branch, dst_reg, 16099 dst_reg->type, true); 16100 mark_pkt_end(this_branch, insn->dst_reg, false); 16101 } else if ((dst_reg->type == PTR_TO_PACKET_END && 16102 src_reg->type == PTR_TO_PACKET) || 16103 (reg_is_init_pkt_pointer(dst_reg, PTR_TO_PACKET) && 16104 src_reg->type == PTR_TO_PACKET_META)) { 16105 /* pkt_end < pkt_data', pkt_data > pkt_meta' */ 16106 find_good_pkt_pointers(this_branch, src_reg, 16107 src_reg->type, false); 16108 mark_pkt_end(other_branch, insn->src_reg, true); 16109 } else { 16110 return false; 16111 } 16112 break; 16113 case BPF_JGE: 16114 if ((dst_reg->type == PTR_TO_PACKET && 16115 src_reg->type == PTR_TO_PACKET_END) || 16116 (dst_reg->type == PTR_TO_PACKET_META && 16117 reg_is_init_pkt_pointer(src_reg, PTR_TO_PACKET))) { 16118 /* pkt_data' >= pkt_end, pkt_meta' >= pkt_data */ 16119 find_good_pkt_pointers(this_branch, dst_reg, 16120 dst_reg->type, true); 16121 mark_pkt_end(other_branch, insn->dst_reg, false); 16122 } else if ((dst_reg->type == PTR_TO_PACKET_END && 16123 src_reg->type == PTR_TO_PACKET) || 16124 (reg_is_init_pkt_pointer(dst_reg, PTR_TO_PACKET) && 16125 src_reg->type == PTR_TO_PACKET_META)) { 16126 /* pkt_end >= pkt_data', pkt_data >= pkt_meta' */ 16127 find_good_pkt_pointers(other_branch, src_reg, 16128 src_reg->type, false); 16129 mark_pkt_end(this_branch, insn->src_reg, true); 16130 } else { 16131 return false; 16132 } 16133 break; 16134 case BPF_JLE: 16135 if ((dst_reg->type == PTR_TO_PACKET && 16136 src_reg->type == PTR_TO_PACKET_END) || 16137 (dst_reg->type == PTR_TO_PACKET_META && 16138 reg_is_init_pkt_pointer(src_reg, PTR_TO_PACKET))) { 16139 /* pkt_data' <= pkt_end, pkt_meta' <= pkt_data */ 16140 find_good_pkt_pointers(other_branch, dst_reg, 16141 dst_reg->type, false); 16142 mark_pkt_end(this_branch, insn->dst_reg, true); 16143 } else if ((dst_reg->type == PTR_TO_PACKET_END && 16144 src_reg->type == PTR_TO_PACKET) || 16145 (reg_is_init_pkt_pointer(dst_reg, PTR_TO_PACKET) && 16146 src_reg->type == PTR_TO_PACKET_META)) { 16147 /* pkt_end <= pkt_data', pkt_data <= pkt_meta' */ 16148 find_good_pkt_pointers(this_branch, src_reg, 16149 src_reg->type, true); 16150 mark_pkt_end(other_branch, insn->src_reg, false); 16151 } else { 16152 return false; 16153 } 16154 break; 16155 default: 16156 return false; 16157 } 16158 16159 return true; 16160 } 16161 16162 static void __collect_linked_regs(struct linked_regs *reg_set, struct bpf_reg_state *reg, 16163 u32 id, u32 frameno, u32 spi_or_reg, bool is_reg) 16164 { 16165 struct linked_reg *e; 16166 16167 if (reg->type != SCALAR_VALUE || (reg->id & ~BPF_ADD_CONST) != id) 16168 return; 16169 16170 e = linked_regs_push(reg_set); 16171 if (e) { 16172 e->frameno = frameno; 16173 e->is_reg = is_reg; 16174 e->regno = spi_or_reg; 16175 } else { 16176 clear_scalar_id(reg); 16177 } 16178 } 16179 16180 /* For all R being scalar registers or spilled scalar registers 16181 * in verifier state, save R in linked_regs if R->id == id. 16182 * If there are too many Rs sharing same id, reset id for leftover Rs. 16183 */ 16184 static void collect_linked_regs(struct bpf_verifier_env *env, 16185 struct bpf_verifier_state *vstate, 16186 u32 id, 16187 struct linked_regs *linked_regs) 16188 { 16189 struct bpf_insn_aux_data *aux = env->insn_aux_data; 16190 struct bpf_func_state *func; 16191 struct bpf_reg_state *reg; 16192 u16 live_regs; 16193 int i, j; 16194 16195 id = id & ~BPF_ADD_CONST; 16196 for (i = vstate->curframe; i >= 0; i--) { 16197 live_regs = aux[bpf_frame_insn_idx(vstate, i)].live_regs_before; 16198 func = vstate->frame[i]; 16199 for (j = 0; j < BPF_REG_FP; j++) { 16200 if (!(live_regs & BIT(j))) 16201 continue; 16202 reg = &func->regs[j]; 16203 __collect_linked_regs(linked_regs, reg, id, i, j, true); 16204 } 16205 for (j = 0; j < func->allocated_stack / BPF_REG_SIZE; j++) { 16206 if (!bpf_is_spilled_reg(&func->stack[j])) 16207 continue; 16208 reg = &func->stack[j].spilled_ptr; 16209 __collect_linked_regs(linked_regs, reg, id, i, j, false); 16210 } 16211 } 16212 } 16213 16214 /* For all R in linked_regs, copy known_reg range into R 16215 * if R->id == known_reg->id. 16216 */ 16217 static void sync_linked_regs(struct bpf_verifier_env *env, struct bpf_verifier_state *vstate, 16218 struct bpf_reg_state *known_reg, struct linked_regs *linked_regs) 16219 { 16220 struct bpf_reg_state fake_reg; 16221 struct bpf_reg_state *reg; 16222 struct linked_reg *e; 16223 int i; 16224 16225 for (i = 0; i < linked_regs->cnt; ++i) { 16226 e = &linked_regs->entries[i]; 16227 reg = e->is_reg ? &vstate->frame[e->frameno]->regs[e->regno] 16228 : &vstate->frame[e->frameno]->stack[e->spi].spilled_ptr; 16229 if (reg->type != SCALAR_VALUE || reg == known_reg) 16230 continue; 16231 if ((reg->id & ~BPF_ADD_CONST) != (known_reg->id & ~BPF_ADD_CONST)) 16232 continue; 16233 /* 16234 * Skip mixed 32/64-bit links: the delta relationship doesn't 16235 * hold across different ALU widths. 16236 */ 16237 if (((reg->id ^ known_reg->id) & BPF_ADD_CONST) == BPF_ADD_CONST) 16238 continue; 16239 if ((!(reg->id & BPF_ADD_CONST) && !(known_reg->id & BPF_ADD_CONST)) || 16240 reg->delta == known_reg->delta) { 16241 s32 saved_subreg_def = reg->subreg_def; 16242 16243 copy_register_state(reg, known_reg); 16244 reg->subreg_def = saved_subreg_def; 16245 } else { 16246 s32 saved_subreg_def = reg->subreg_def; 16247 s32 saved_off = reg->delta; 16248 u32 saved_id = reg->id; 16249 16250 fake_reg.type = SCALAR_VALUE; 16251 __mark_reg_known(&fake_reg, (s64)reg->delta - (s64)known_reg->delta); 16252 16253 /* reg = known_reg; reg += delta */ 16254 copy_register_state(reg, known_reg); 16255 /* 16256 * Must preserve off, id and subreg_def flag, 16257 * otherwise another sync_linked_regs() will be incorrect. 16258 */ 16259 reg->delta = saved_off; 16260 reg->id = saved_id; 16261 reg->subreg_def = saved_subreg_def; 16262 16263 scalar32_min_max_add(reg, &fake_reg); 16264 scalar_min_max_add(reg, &fake_reg); 16265 reg->var_off = tnum_add(reg->var_off, fake_reg.var_off); 16266 if ((reg->id | known_reg->id) & BPF_ADD_CONST32) 16267 zext_32_to_64(reg); 16268 reg_bounds_sync(reg); 16269 } 16270 if (e->is_reg) 16271 mark_reg_scratched(env, e->regno); 16272 else 16273 mark_stack_slot_scratched(env, e->spi); 16274 } 16275 } 16276 16277 static int check_cond_jmp_op(struct bpf_verifier_env *env, 16278 struct bpf_insn *insn, int *insn_idx) 16279 { 16280 struct bpf_verifier_state *this_branch = env->cur_state; 16281 struct bpf_verifier_state *other_branch; 16282 struct bpf_reg_state *regs = this_branch->frame[this_branch->curframe]->regs; 16283 struct bpf_reg_state *dst_reg, *other_branch_regs, *src_reg = NULL; 16284 struct bpf_reg_state *eq_branch_regs; 16285 struct linked_regs linked_regs = {}; 16286 u8 opcode = BPF_OP(insn->code); 16287 int insn_flags = 0; 16288 bool is_jmp32; 16289 int pred = -1; 16290 int err; 16291 16292 /* Only conditional jumps are expected to reach here. */ 16293 if (opcode == BPF_JA || opcode > BPF_JCOND) { 16294 verbose(env, "invalid BPF_JMP/JMP32 opcode %x\n", opcode); 16295 return -EINVAL; 16296 } 16297 16298 if (opcode == BPF_JCOND) { 16299 struct bpf_verifier_state *cur_st = env->cur_state, *queued_st, *prev_st; 16300 int idx = *insn_idx; 16301 16302 prev_st = find_prev_entry(env, cur_st->parent, idx); 16303 16304 /* branch out 'fallthrough' insn as a new state to explore */ 16305 queued_st = push_stack(env, idx + 1, idx, false); 16306 if (IS_ERR(queued_st)) 16307 return PTR_ERR(queued_st); 16308 16309 queued_st->may_goto_depth++; 16310 if (prev_st) 16311 widen_imprecise_scalars(env, prev_st, queued_st); 16312 *insn_idx += insn->off; 16313 return 0; 16314 } 16315 16316 /* check src2 operand */ 16317 err = check_reg_arg(env, insn->dst_reg, SRC_OP); 16318 if (err) 16319 return err; 16320 16321 dst_reg = ®s[insn->dst_reg]; 16322 if (BPF_SRC(insn->code) == BPF_X) { 16323 /* check src1 operand */ 16324 err = check_reg_arg(env, insn->src_reg, SRC_OP); 16325 if (err) 16326 return err; 16327 16328 src_reg = ®s[insn->src_reg]; 16329 if (!(reg_is_pkt_pointer_any(dst_reg) && reg_is_pkt_pointer_any(src_reg)) && 16330 is_pointer_value(env, insn->src_reg)) { 16331 verbose(env, "R%d pointer comparison prohibited\n", 16332 insn->src_reg); 16333 return -EACCES; 16334 } 16335 16336 if (src_reg->type == PTR_TO_STACK) 16337 insn_flags |= INSN_F_SRC_REG_STACK; 16338 if (dst_reg->type == PTR_TO_STACK) 16339 insn_flags |= INSN_F_DST_REG_STACK; 16340 } else { 16341 src_reg = &env->fake_reg[0]; 16342 memset(src_reg, 0, sizeof(*src_reg)); 16343 src_reg->type = SCALAR_VALUE; 16344 __mark_reg_known(src_reg, insn->imm); 16345 16346 if (dst_reg->type == PTR_TO_STACK) 16347 insn_flags |= INSN_F_DST_REG_STACK; 16348 } 16349 16350 if (insn_flags) { 16351 err = bpf_push_jmp_history(env, this_branch, insn_flags, 0); 16352 if (err) 16353 return err; 16354 } 16355 16356 is_jmp32 = BPF_CLASS(insn->code) == BPF_JMP32; 16357 copy_register_state(&env->false_reg1, dst_reg); 16358 copy_register_state(&env->false_reg2, src_reg); 16359 copy_register_state(&env->true_reg1, dst_reg); 16360 copy_register_state(&env->true_reg2, src_reg); 16361 pred = is_branch_taken(env, dst_reg, src_reg, opcode, is_jmp32); 16362 if (pred >= 0) { 16363 /* If we get here with a dst_reg pointer type it is because 16364 * above is_branch_taken() special cased the 0 comparison. 16365 */ 16366 if (!__is_pointer_value(false, dst_reg)) 16367 err = mark_chain_precision(env, insn->dst_reg); 16368 if (BPF_SRC(insn->code) == BPF_X && !err && 16369 !__is_pointer_value(false, src_reg)) 16370 err = mark_chain_precision(env, insn->src_reg); 16371 if (err) 16372 return err; 16373 } 16374 16375 if (pred == 1) { 16376 /* Only follow the goto, ignore fall-through. If needed, push 16377 * the fall-through branch for simulation under speculative 16378 * execution. 16379 */ 16380 if (!env->bypass_spec_v1) { 16381 err = sanitize_speculative_path(env, insn, *insn_idx + 1, *insn_idx); 16382 if (err < 0) 16383 return err; 16384 } 16385 if (env->log.level & BPF_LOG_LEVEL) 16386 print_insn_state(env, this_branch, this_branch->curframe); 16387 *insn_idx += insn->off; 16388 return 0; 16389 } else if (pred == 0) { 16390 /* Only follow the fall-through branch, since that's where the 16391 * program will go. If needed, push the goto branch for 16392 * simulation under speculative execution. 16393 */ 16394 if (!env->bypass_spec_v1) { 16395 err = sanitize_speculative_path(env, insn, *insn_idx + insn->off + 1, 16396 *insn_idx); 16397 if (err < 0) 16398 return err; 16399 } 16400 if (env->log.level & BPF_LOG_LEVEL) 16401 print_insn_state(env, this_branch, this_branch->curframe); 16402 return 0; 16403 } 16404 16405 /* Push scalar registers sharing same ID to jump history, 16406 * do this before creating 'other_branch', so that both 16407 * 'this_branch' and 'other_branch' share this history 16408 * if parent state is created. 16409 */ 16410 if (BPF_SRC(insn->code) == BPF_X && src_reg->type == SCALAR_VALUE && src_reg->id) 16411 collect_linked_regs(env, this_branch, src_reg->id, &linked_regs); 16412 if (dst_reg->type == SCALAR_VALUE && dst_reg->id) 16413 collect_linked_regs(env, this_branch, dst_reg->id, &linked_regs); 16414 if (linked_regs.cnt > 1) { 16415 err = bpf_push_jmp_history(env, this_branch, 0, linked_regs_pack(&linked_regs)); 16416 if (err) 16417 return err; 16418 } 16419 16420 other_branch = push_stack(env, *insn_idx + insn->off + 1, *insn_idx, false); 16421 if (IS_ERR(other_branch)) 16422 return PTR_ERR(other_branch); 16423 other_branch_regs = other_branch->frame[other_branch->curframe]->regs; 16424 16425 err = regs_bounds_sanity_check_branches(env); 16426 if (err) 16427 return err; 16428 16429 copy_register_state(dst_reg, &env->false_reg1); 16430 copy_register_state(src_reg, &env->false_reg2); 16431 copy_register_state(&other_branch_regs[insn->dst_reg], &env->true_reg1); 16432 if (BPF_SRC(insn->code) == BPF_X) 16433 copy_register_state(&other_branch_regs[insn->src_reg], &env->true_reg2); 16434 16435 if (BPF_SRC(insn->code) == BPF_X && 16436 src_reg->type == SCALAR_VALUE && src_reg->id && 16437 !WARN_ON_ONCE(src_reg->id != other_branch_regs[insn->src_reg].id)) { 16438 sync_linked_regs(env, this_branch, src_reg, &linked_regs); 16439 sync_linked_regs(env, other_branch, &other_branch_regs[insn->src_reg], 16440 &linked_regs); 16441 } 16442 if (dst_reg->type == SCALAR_VALUE && dst_reg->id && 16443 !WARN_ON_ONCE(dst_reg->id != other_branch_regs[insn->dst_reg].id)) { 16444 sync_linked_regs(env, this_branch, dst_reg, &linked_regs); 16445 sync_linked_regs(env, other_branch, &other_branch_regs[insn->dst_reg], 16446 &linked_regs); 16447 } 16448 16449 /* if one pointer register is compared to another pointer 16450 * register check if PTR_MAYBE_NULL could be lifted. 16451 * E.g. register A - maybe null 16452 * register B - not null 16453 * for JNE A, B, ... - A is not null in the false branch; 16454 * for JEQ A, B, ... - A is not null in the true branch. 16455 * 16456 * Since PTR_TO_BTF_ID points to a kernel struct that does 16457 * not need to be null checked by the BPF program, i.e., 16458 * could be null even without PTR_MAYBE_NULL marking, so 16459 * only propagate nullness when neither reg is that type. 16460 */ 16461 if (!is_jmp32 && BPF_SRC(insn->code) == BPF_X && 16462 __is_pointer_value(false, src_reg) && __is_pointer_value(false, dst_reg) && 16463 type_may_be_null(src_reg->type) != type_may_be_null(dst_reg->type) && 16464 base_type(src_reg->type) != PTR_TO_BTF_ID && 16465 base_type(dst_reg->type) != PTR_TO_BTF_ID) { 16466 eq_branch_regs = NULL; 16467 switch (opcode) { 16468 case BPF_JEQ: 16469 eq_branch_regs = other_branch_regs; 16470 break; 16471 case BPF_JNE: 16472 eq_branch_regs = regs; 16473 break; 16474 default: 16475 /* do nothing */ 16476 break; 16477 } 16478 if (eq_branch_regs) { 16479 if (type_may_be_null(src_reg->type)) 16480 mark_ptr_not_null_reg(&eq_branch_regs[insn->src_reg]); 16481 else 16482 mark_ptr_not_null_reg(&eq_branch_regs[insn->dst_reg]); 16483 } 16484 } 16485 16486 /* detect if R == 0 where R is returned from bpf_map_lookup_elem(). 16487 * Also does the same detection for a register whose the value is 16488 * known to be 0. 16489 * NOTE: these optimizations below are related with pointer comparison 16490 * which will never be JMP32. 16491 */ 16492 if (!is_jmp32 && (opcode == BPF_JEQ || opcode == BPF_JNE) && 16493 type_may_be_null(dst_reg->type) && 16494 ((BPF_SRC(insn->code) == BPF_K && insn->imm == 0) || 16495 (BPF_SRC(insn->code) == BPF_X && bpf_register_is_null(src_reg)))) { 16496 /* Mark all identical registers in each branch as either 16497 * safe or unknown depending R == 0 or R != 0 conditional. 16498 */ 16499 mark_ptr_or_null_regs(this_branch, insn->dst_reg, 16500 opcode == BPF_JNE); 16501 mark_ptr_or_null_regs(other_branch, insn->dst_reg, 16502 opcode == BPF_JEQ); 16503 } else if (!try_match_pkt_pointers(insn, dst_reg, ®s[insn->src_reg], 16504 this_branch, other_branch) && 16505 is_pointer_value(env, insn->dst_reg)) { 16506 verbose(env, "R%d pointer comparison prohibited\n", 16507 insn->dst_reg); 16508 return -EACCES; 16509 } 16510 if (env->log.level & BPF_LOG_LEVEL) 16511 print_insn_state(env, this_branch, this_branch->curframe); 16512 return 0; 16513 } 16514 16515 /* verify BPF_LD_IMM64 instruction */ 16516 static int check_ld_imm(struct bpf_verifier_env *env, struct bpf_insn *insn) 16517 { 16518 struct bpf_insn_aux_data *aux = cur_aux(env); 16519 struct bpf_reg_state *regs = cur_regs(env); 16520 struct bpf_reg_state *dst_reg; 16521 struct bpf_map *map; 16522 int err; 16523 16524 if (BPF_SIZE(insn->code) != BPF_DW) { 16525 verbose(env, "invalid BPF_LD_IMM insn\n"); 16526 return -EINVAL; 16527 } 16528 16529 err = check_reg_arg(env, insn->dst_reg, DST_OP); 16530 if (err) 16531 return err; 16532 16533 dst_reg = ®s[insn->dst_reg]; 16534 if (insn->src_reg == 0) { 16535 u64 imm = ((u64)(insn + 1)->imm << 32) | (u32)insn->imm; 16536 16537 dst_reg->type = SCALAR_VALUE; 16538 __mark_reg_known(®s[insn->dst_reg], imm); 16539 return 0; 16540 } 16541 16542 /* All special src_reg cases are listed below. From this point onwards 16543 * we either succeed and assign a corresponding dst_reg->type after 16544 * zeroing the offset, or fail and reject the program. 16545 */ 16546 mark_reg_known_zero(env, regs, insn->dst_reg); 16547 16548 if (insn->src_reg == BPF_PSEUDO_BTF_ID) { 16549 dst_reg->type = aux->btf_var.reg_type; 16550 switch (base_type(dst_reg->type)) { 16551 case PTR_TO_MEM: 16552 dst_reg->mem_size = aux->btf_var.mem_size; 16553 break; 16554 case PTR_TO_BTF_ID: 16555 dst_reg->btf = aux->btf_var.btf; 16556 dst_reg->btf_id = aux->btf_var.btf_id; 16557 break; 16558 default: 16559 verifier_bug(env, "pseudo btf id: unexpected dst reg type"); 16560 return -EFAULT; 16561 } 16562 return 0; 16563 } 16564 16565 if (insn->src_reg == BPF_PSEUDO_FUNC) { 16566 struct bpf_prog_aux *aux = env->prog->aux; 16567 u32 subprogno = bpf_find_subprog(env, 16568 env->insn_idx + insn->imm + 1); 16569 16570 if (!aux->func_info) { 16571 verbose(env, "missing btf func_info\n"); 16572 return -EINVAL; 16573 } 16574 if (aux->func_info_aux[subprogno].linkage != BTF_FUNC_STATIC) { 16575 verbose(env, "callback function not static\n"); 16576 return -EINVAL; 16577 } 16578 16579 dst_reg->type = PTR_TO_FUNC; 16580 dst_reg->subprogno = subprogno; 16581 return 0; 16582 } 16583 16584 map = env->used_maps[aux->map_index]; 16585 16586 if (insn->src_reg == BPF_PSEUDO_MAP_VALUE || 16587 insn->src_reg == BPF_PSEUDO_MAP_IDX_VALUE) { 16588 if (map->map_type == BPF_MAP_TYPE_ARENA) { 16589 __mark_reg_unknown(env, dst_reg); 16590 dst_reg->map_ptr = map; 16591 return 0; 16592 } 16593 __mark_reg_known(dst_reg, aux->map_off); 16594 dst_reg->type = PTR_TO_MAP_VALUE; 16595 dst_reg->map_ptr = map; 16596 WARN_ON_ONCE(map->map_type != BPF_MAP_TYPE_INSN_ARRAY && 16597 map->max_entries != 1); 16598 /* We want reg->id to be same (0) as map_value is not distinct */ 16599 } else if (insn->src_reg == BPF_PSEUDO_MAP_FD || 16600 insn->src_reg == BPF_PSEUDO_MAP_IDX) { 16601 dst_reg->type = CONST_PTR_TO_MAP; 16602 dst_reg->map_ptr = map; 16603 } else { 16604 verifier_bug(env, "unexpected src reg value for ldimm64"); 16605 return -EFAULT; 16606 } 16607 16608 return 0; 16609 } 16610 16611 static bool may_access_skb(enum bpf_prog_type type) 16612 { 16613 switch (type) { 16614 case BPF_PROG_TYPE_SOCKET_FILTER: 16615 case BPF_PROG_TYPE_SCHED_CLS: 16616 case BPF_PROG_TYPE_SCHED_ACT: 16617 return true; 16618 default: 16619 return false; 16620 } 16621 } 16622 16623 /* verify safety of LD_ABS|LD_IND instructions: 16624 * - they can only appear in the programs where ctx == skb 16625 * - since they are wrappers of function calls, they scratch R1-R5 registers, 16626 * preserve R6-R9, and store return value into R0 16627 * 16628 * Implicit input: 16629 * ctx == skb == R6 == CTX 16630 * 16631 * Explicit input: 16632 * SRC == any register 16633 * IMM == 32-bit immediate 16634 * 16635 * Output: 16636 * R0 - 8/16/32-bit skb data converted to cpu endianness 16637 */ 16638 static int check_ld_abs(struct bpf_verifier_env *env, struct bpf_insn *insn) 16639 { 16640 struct bpf_reg_state *regs = cur_regs(env); 16641 static const int ctx_reg = BPF_REG_6; 16642 u8 mode = BPF_MODE(insn->code); 16643 int i, err; 16644 16645 if (!may_access_skb(resolve_prog_type(env->prog))) { 16646 verbose(env, "BPF_LD_[ABS|IND] instructions not allowed for this program type\n"); 16647 return -EINVAL; 16648 } 16649 16650 if (!env->ops->gen_ld_abs) { 16651 verifier_bug(env, "gen_ld_abs is null"); 16652 return -EFAULT; 16653 } 16654 16655 /* check whether implicit source operand (register R6) is readable */ 16656 err = check_reg_arg(env, ctx_reg, SRC_OP); 16657 if (err) 16658 return err; 16659 16660 /* Disallow usage of BPF_LD_[ABS|IND] with reference tracking, as 16661 * gen_ld_abs() may terminate the program at runtime, leading to 16662 * reference leak. 16663 */ 16664 err = check_resource_leak(env, false, true, "BPF_LD_[ABS|IND]"); 16665 if (err) 16666 return err; 16667 16668 if (regs[ctx_reg].type != PTR_TO_CTX) { 16669 verbose(env, 16670 "at the time of BPF_LD_ABS|IND R6 != pointer to skb\n"); 16671 return -EINVAL; 16672 } 16673 16674 if (mode == BPF_IND) { 16675 /* check explicit source operand */ 16676 err = check_reg_arg(env, insn->src_reg, SRC_OP); 16677 if (err) 16678 return err; 16679 } 16680 16681 err = check_ptr_off_reg(env, ®s[ctx_reg], ctx_reg); 16682 if (err < 0) 16683 return err; 16684 16685 /* reset caller saved regs to unreadable */ 16686 for (i = 0; i < CALLER_SAVED_REGS; i++) { 16687 bpf_mark_reg_not_init(env, ®s[caller_saved[i]]); 16688 check_reg_arg(env, caller_saved[i], DST_OP_NO_MARK); 16689 } 16690 16691 /* mark destination R0 register as readable, since it contains 16692 * the value fetched from the packet. 16693 * Already marked as written above. 16694 */ 16695 mark_reg_unknown(env, regs, BPF_REG_0); 16696 /* ld_abs load up to 32-bit skb data. */ 16697 regs[BPF_REG_0].subreg_def = env->insn_idx + 1; 16698 /* 16699 * See bpf_gen_ld_abs() which emits a hidden BPF_EXIT with r0=0 16700 * which must be explored by the verifier when in a subprog. 16701 */ 16702 if (env->cur_state->curframe) { 16703 struct bpf_verifier_state *branch; 16704 16705 mark_reg_scratched(env, BPF_REG_0); 16706 branch = push_stack(env, env->insn_idx + 1, env->insn_idx, false); 16707 if (IS_ERR(branch)) 16708 return PTR_ERR(branch); 16709 mark_reg_known_zero(env, regs, BPF_REG_0); 16710 err = prepare_func_exit(env, &env->insn_idx); 16711 if (err) 16712 return err; 16713 env->insn_idx--; 16714 } 16715 return 0; 16716 } 16717 16718 16719 static bool return_retval_range(struct bpf_verifier_env *env, struct bpf_retval_range *range) 16720 { 16721 enum bpf_prog_type prog_type = resolve_prog_type(env->prog); 16722 16723 /* Default return value range. */ 16724 *range = retval_range(0, 1); 16725 16726 switch (prog_type) { 16727 case BPF_PROG_TYPE_CGROUP_SOCK_ADDR: 16728 switch (env->prog->expected_attach_type) { 16729 case BPF_CGROUP_UDP4_RECVMSG: 16730 case BPF_CGROUP_UDP6_RECVMSG: 16731 case BPF_CGROUP_UNIX_RECVMSG: 16732 case BPF_CGROUP_INET4_GETPEERNAME: 16733 case BPF_CGROUP_INET6_GETPEERNAME: 16734 case BPF_CGROUP_UNIX_GETPEERNAME: 16735 case BPF_CGROUP_INET4_GETSOCKNAME: 16736 case BPF_CGROUP_INET6_GETSOCKNAME: 16737 case BPF_CGROUP_UNIX_GETSOCKNAME: 16738 *range = retval_range(1, 1); 16739 break; 16740 case BPF_CGROUP_INET4_BIND: 16741 case BPF_CGROUP_INET6_BIND: 16742 *range = retval_range(0, 3); 16743 break; 16744 default: 16745 break; 16746 } 16747 break; 16748 case BPF_PROG_TYPE_CGROUP_SKB: 16749 if (env->prog->expected_attach_type == BPF_CGROUP_INET_EGRESS) 16750 *range = retval_range(0, 3); 16751 break; 16752 case BPF_PROG_TYPE_CGROUP_SOCK: 16753 case BPF_PROG_TYPE_SOCK_OPS: 16754 case BPF_PROG_TYPE_CGROUP_DEVICE: 16755 case BPF_PROG_TYPE_CGROUP_SYSCTL: 16756 case BPF_PROG_TYPE_CGROUP_SOCKOPT: 16757 break; 16758 case BPF_PROG_TYPE_RAW_TRACEPOINT: 16759 if (!env->prog->aux->attach_btf_id) 16760 return false; 16761 *range = retval_range(0, 0); 16762 break; 16763 case BPF_PROG_TYPE_TRACING: 16764 switch (env->prog->expected_attach_type) { 16765 case BPF_TRACE_FENTRY: 16766 case BPF_TRACE_FEXIT: 16767 case BPF_TRACE_FSESSION: 16768 *range = retval_range(0, 0); 16769 break; 16770 case BPF_TRACE_RAW_TP: 16771 case BPF_MODIFY_RETURN: 16772 return false; 16773 case BPF_TRACE_ITER: 16774 default: 16775 break; 16776 } 16777 break; 16778 case BPF_PROG_TYPE_KPROBE: 16779 switch (env->prog->expected_attach_type) { 16780 case BPF_TRACE_KPROBE_SESSION: 16781 case BPF_TRACE_UPROBE_SESSION: 16782 break; 16783 default: 16784 return false; 16785 } 16786 break; 16787 case BPF_PROG_TYPE_SK_LOOKUP: 16788 *range = retval_range(SK_DROP, SK_PASS); 16789 break; 16790 16791 case BPF_PROG_TYPE_LSM: 16792 if (env->prog->expected_attach_type != BPF_LSM_CGROUP) { 16793 /* no range found, any return value is allowed */ 16794 if (!get_func_retval_range(env->prog, range)) 16795 return false; 16796 /* no restricted range, any return value is allowed */ 16797 if (range->minval == S32_MIN && range->maxval == S32_MAX) 16798 return false; 16799 range->return_32bit = true; 16800 } else if (!env->prog->aux->attach_func_proto->type) { 16801 /* Make sure programs that attach to void 16802 * hooks don't try to modify return value. 16803 */ 16804 *range = retval_range(1, 1); 16805 } 16806 break; 16807 16808 case BPF_PROG_TYPE_NETFILTER: 16809 *range = retval_range(NF_DROP, NF_ACCEPT); 16810 break; 16811 case BPF_PROG_TYPE_STRUCT_OPS: 16812 *range = retval_range(0, 0); 16813 break; 16814 case BPF_PROG_TYPE_EXT: 16815 /* freplace program can return anything as its return value 16816 * depends on the to-be-replaced kernel func or bpf program. 16817 */ 16818 default: 16819 return false; 16820 } 16821 16822 /* Continue calculating. */ 16823 16824 return true; 16825 } 16826 16827 static bool program_returns_void(struct bpf_verifier_env *env) 16828 { 16829 const struct bpf_prog *prog = env->prog; 16830 enum bpf_prog_type prog_type = prog->type; 16831 16832 switch (prog_type) { 16833 case BPF_PROG_TYPE_LSM: 16834 /* See return_retval_range, for BPF_LSM_CGROUP can be 0 or 0-1 depending on hook. */ 16835 if (prog->expected_attach_type != BPF_LSM_CGROUP && 16836 !prog->aux->attach_func_proto->type) 16837 return true; 16838 break; 16839 case BPF_PROG_TYPE_STRUCT_OPS: 16840 if (!prog->aux->attach_func_proto->type) 16841 return true; 16842 break; 16843 case BPF_PROG_TYPE_EXT: 16844 /* 16845 * If the actual program is an extension, let it 16846 * return void - attaching will succeed only if the 16847 * program being replaced also returns void, and since 16848 * it has passed verification its actual type doesn't matter. 16849 */ 16850 if (subprog_returns_void(env, 0)) 16851 return true; 16852 break; 16853 default: 16854 break; 16855 } 16856 return false; 16857 } 16858 16859 static int check_return_code(struct bpf_verifier_env *env, int regno, const char *reg_name) 16860 { 16861 const char *exit_ctx = "At program exit"; 16862 struct tnum enforce_attach_type_range = tnum_unknown; 16863 const struct bpf_prog *prog = env->prog; 16864 struct bpf_reg_state *reg = reg_state(env, regno); 16865 struct bpf_retval_range range = retval_range(0, 1); 16866 enum bpf_prog_type prog_type = resolve_prog_type(env->prog); 16867 struct bpf_func_state *frame = env->cur_state->frame[0]; 16868 const struct btf_type *reg_type, *ret_type = NULL; 16869 int err; 16870 16871 /* LSM and struct_ops func-ptr's return type could be "void" */ 16872 if (!frame->in_async_callback_fn && program_returns_void(env)) 16873 return 0; 16874 16875 if (prog_type == BPF_PROG_TYPE_STRUCT_OPS) { 16876 /* Allow a struct_ops program to return a referenced kptr if it 16877 * matches the operator's return type and is in its unmodified 16878 * form. A scalar zero (i.e., a null pointer) is also allowed. 16879 */ 16880 reg_type = reg->btf ? btf_type_by_id(reg->btf, reg->btf_id) : NULL; 16881 ret_type = btf_type_resolve_ptr(prog->aux->attach_btf, 16882 prog->aux->attach_func_proto->type, 16883 NULL); 16884 if (ret_type && ret_type == reg_type && reg->ref_obj_id) 16885 return __check_ptr_off_reg(env, reg, regno, false); 16886 } 16887 16888 /* eBPF calling convention is such that R0 is used 16889 * to return the value from eBPF program. 16890 * Make sure that it's readable at this time 16891 * of bpf_exit, which means that program wrote 16892 * something into it earlier 16893 */ 16894 err = check_reg_arg(env, regno, SRC_OP); 16895 if (err) 16896 return err; 16897 16898 if (is_pointer_value(env, regno)) { 16899 verbose(env, "R%d leaks addr as return value\n", regno); 16900 return -EACCES; 16901 } 16902 16903 if (frame->in_async_callback_fn) { 16904 exit_ctx = "At async callback return"; 16905 range = frame->callback_ret_range; 16906 goto enforce_retval; 16907 } 16908 16909 if (prog_type == BPF_PROG_TYPE_STRUCT_OPS && !ret_type) 16910 return 0; 16911 16912 if (prog_type == BPF_PROG_TYPE_CGROUP_SKB && (env->prog->expected_attach_type == BPF_CGROUP_INET_EGRESS)) 16913 enforce_attach_type_range = tnum_range(2, 3); 16914 16915 if (!return_retval_range(env, &range)) 16916 return 0; 16917 16918 enforce_retval: 16919 if (reg->type != SCALAR_VALUE) { 16920 verbose(env, "%s the register R%d is not a known value (%s)\n", 16921 exit_ctx, regno, reg_type_str(env, reg->type)); 16922 return -EINVAL; 16923 } 16924 16925 err = mark_chain_precision(env, regno); 16926 if (err) 16927 return err; 16928 16929 if (!retval_range_within(range, reg)) { 16930 verbose_invalid_scalar(env, reg, range, exit_ctx, reg_name); 16931 if (prog->expected_attach_type == BPF_LSM_CGROUP && 16932 prog_type == BPF_PROG_TYPE_LSM && 16933 !prog->aux->attach_func_proto->type) 16934 verbose(env, "Note, BPF_LSM_CGROUP that attach to void LSM hooks can't modify return value!\n"); 16935 return -EINVAL; 16936 } 16937 16938 if (!tnum_is_unknown(enforce_attach_type_range) && 16939 tnum_in(enforce_attach_type_range, reg->var_off)) 16940 env->prog->enforce_expected_attach_type = 1; 16941 return 0; 16942 } 16943 16944 static int check_global_subprog_return_code(struct bpf_verifier_env *env) 16945 { 16946 struct bpf_reg_state *reg = reg_state(env, BPF_REG_0); 16947 struct bpf_func_state *cur_frame = cur_func(env); 16948 int err; 16949 16950 if (subprog_returns_void(env, cur_frame->subprogno)) 16951 return 0; 16952 16953 err = check_reg_arg(env, BPF_REG_0, SRC_OP); 16954 if (err) 16955 return err; 16956 16957 if (is_pointer_value(env, BPF_REG_0)) { 16958 verbose(env, "R%d leaks addr as return value\n", BPF_REG_0); 16959 return -EACCES; 16960 } 16961 16962 if (reg->type != SCALAR_VALUE) { 16963 verbose(env, "At subprogram exit the register R0 is not a scalar value (%s)\n", 16964 reg_type_str(env, reg->type)); 16965 return -EINVAL; 16966 } 16967 16968 return 0; 16969 } 16970 16971 /* Bitmask with 1s for all caller saved registers */ 16972 #define ALL_CALLER_SAVED_REGS ((1u << CALLER_SAVED_REGS) - 1) 16973 16974 /* True if do_misc_fixups() replaces calls to helper number 'imm', 16975 * replacement patch is presumed to follow bpf_fastcall contract 16976 * (see mark_fastcall_pattern_for_call() below). 16977 */ 16978 bool bpf_verifier_inlines_helper_call(struct bpf_verifier_env *env, s32 imm) 16979 { 16980 switch (imm) { 16981 #ifdef CONFIG_X86_64 16982 case BPF_FUNC_get_smp_processor_id: 16983 #ifdef CONFIG_SMP 16984 case BPF_FUNC_get_current_task_btf: 16985 case BPF_FUNC_get_current_task: 16986 #endif 16987 return env->prog->jit_requested && bpf_jit_supports_percpu_insn(); 16988 #endif 16989 default: 16990 return false; 16991 } 16992 } 16993 16994 /* If @call is a kfunc or helper call, fills @cs and returns true, 16995 * otherwise returns false. 16996 */ 16997 bool bpf_get_call_summary(struct bpf_verifier_env *env, struct bpf_insn *call, 16998 struct bpf_call_summary *cs) 16999 { 17000 struct bpf_kfunc_call_arg_meta meta; 17001 const struct bpf_func_proto *fn; 17002 int i; 17003 17004 if (bpf_helper_call(call)) { 17005 17006 if (bpf_get_helper_proto(env, call->imm, &fn) < 0) 17007 /* error would be reported later */ 17008 return false; 17009 cs->fastcall = fn->allow_fastcall && 17010 (bpf_verifier_inlines_helper_call(env, call->imm) || 17011 bpf_jit_inlines_helper_call(call->imm)); 17012 cs->is_void = fn->ret_type == RET_VOID; 17013 cs->num_params = 0; 17014 for (i = 0; i < ARRAY_SIZE(fn->arg_type); ++i) { 17015 if (fn->arg_type[i] == ARG_DONTCARE) 17016 break; 17017 cs->num_params++; 17018 } 17019 return true; 17020 } 17021 17022 if (bpf_pseudo_kfunc_call(call)) { 17023 int err; 17024 17025 err = bpf_fetch_kfunc_arg_meta(env, call->imm, call->off, &meta); 17026 if (err < 0) 17027 /* error would be reported later */ 17028 return false; 17029 cs->num_params = btf_type_vlen(meta.func_proto); 17030 cs->fastcall = meta.kfunc_flags & KF_FASTCALL; 17031 cs->is_void = btf_type_is_void(btf_type_by_id(meta.btf, meta.func_proto->type)); 17032 return true; 17033 } 17034 17035 return false; 17036 } 17037 17038 /* LLVM define a bpf_fastcall function attribute. 17039 * This attribute means that function scratches only some of 17040 * the caller saved registers defined by ABI. 17041 * For BPF the set of such registers could be defined as follows: 17042 * - R0 is scratched only if function is non-void; 17043 * - R1-R5 are scratched only if corresponding parameter type is defined 17044 * in the function prototype. 17045 * 17046 * The contract between kernel and clang allows to simultaneously use 17047 * such functions and maintain backwards compatibility with old 17048 * kernels that don't understand bpf_fastcall calls: 17049 * 17050 * - for bpf_fastcall calls clang allocates registers as-if relevant r0-r5 17051 * registers are not scratched by the call; 17052 * 17053 * - as a post-processing step, clang visits each bpf_fastcall call and adds 17054 * spill/fill for every live r0-r5; 17055 * 17056 * - stack offsets used for the spill/fill are allocated as lowest 17057 * stack offsets in whole function and are not used for any other 17058 * purposes; 17059 * 17060 * - when kernel loads a program, it looks for such patterns 17061 * (bpf_fastcall function surrounded by spills/fills) and checks if 17062 * spill/fill stack offsets are used exclusively in fastcall patterns; 17063 * 17064 * - if so, and if verifier or current JIT inlines the call to the 17065 * bpf_fastcall function (e.g. a helper call), kernel removes unnecessary 17066 * spill/fill pairs; 17067 * 17068 * - when old kernel loads a program, presence of spill/fill pairs 17069 * keeps BPF program valid, albeit slightly less efficient. 17070 * 17071 * For example: 17072 * 17073 * r1 = 1; 17074 * r2 = 2; 17075 * *(u64 *)(r10 - 8) = r1; r1 = 1; 17076 * *(u64 *)(r10 - 16) = r2; r2 = 2; 17077 * call %[to_be_inlined] --> call %[to_be_inlined] 17078 * r2 = *(u64 *)(r10 - 16); r0 = r1; 17079 * r1 = *(u64 *)(r10 - 8); r0 += r2; 17080 * r0 = r1; exit; 17081 * r0 += r2; 17082 * exit; 17083 * 17084 * The purpose of mark_fastcall_pattern_for_call is to: 17085 * - look for such patterns; 17086 * - mark spill and fill instructions in env->insn_aux_data[*].fastcall_pattern; 17087 * - mark set env->insn_aux_data[*].fastcall_spills_num for call instruction; 17088 * - update env->subprog_info[*]->fastcall_stack_off to find an offset 17089 * at which bpf_fastcall spill/fill stack slots start; 17090 * - update env->subprog_info[*]->keep_fastcall_stack. 17091 * 17092 * The .fastcall_pattern and .fastcall_stack_off are used by 17093 * check_fastcall_stack_contract() to check if every stack access to 17094 * fastcall spill/fill stack slot originates from spill/fill 17095 * instructions, members of fastcall patterns. 17096 * 17097 * If such condition holds true for a subprogram, fastcall patterns could 17098 * be rewritten by remove_fastcall_spills_fills(). 17099 * Otherwise bpf_fastcall patterns are not changed in the subprogram 17100 * (code, presumably, generated by an older clang version). 17101 * 17102 * For example, it is *not* safe to remove spill/fill below: 17103 * 17104 * r1 = 1; 17105 * *(u64 *)(r10 - 8) = r1; r1 = 1; 17106 * call %[to_be_inlined] --> call %[to_be_inlined] 17107 * r1 = *(u64 *)(r10 - 8); r0 = *(u64 *)(r10 - 8); <---- wrong !!! 17108 * r0 = *(u64 *)(r10 - 8); r0 += r1; 17109 * r0 += r1; exit; 17110 * exit; 17111 */ 17112 static void mark_fastcall_pattern_for_call(struct bpf_verifier_env *env, 17113 struct bpf_subprog_info *subprog, 17114 int insn_idx, s16 lowest_off) 17115 { 17116 struct bpf_insn *insns = env->prog->insnsi, *stx, *ldx; 17117 struct bpf_insn *call = &env->prog->insnsi[insn_idx]; 17118 u32 clobbered_regs_mask; 17119 struct bpf_call_summary cs; 17120 u32 expected_regs_mask; 17121 s16 off; 17122 int i; 17123 17124 if (!bpf_get_call_summary(env, call, &cs)) 17125 return; 17126 17127 /* A bitmask specifying which caller saved registers are clobbered 17128 * by a call to a helper/kfunc *as if* this helper/kfunc follows 17129 * bpf_fastcall contract: 17130 * - includes R0 if function is non-void; 17131 * - includes R1-R5 if corresponding parameter has is described 17132 * in the function prototype. 17133 */ 17134 clobbered_regs_mask = GENMASK(cs.num_params, cs.is_void ? 1 : 0); 17135 /* e.g. if helper call clobbers r{0,1}, expect r{2,3,4,5} in the pattern */ 17136 expected_regs_mask = ~clobbered_regs_mask & ALL_CALLER_SAVED_REGS; 17137 17138 /* match pairs of form: 17139 * 17140 * *(u64 *)(r10 - Y) = rX (where Y % 8 == 0) 17141 * ... 17142 * call %[to_be_inlined] 17143 * ... 17144 * rX = *(u64 *)(r10 - Y) 17145 */ 17146 for (i = 1, off = lowest_off; i <= ARRAY_SIZE(caller_saved); ++i, off += BPF_REG_SIZE) { 17147 if (insn_idx - i < 0 || insn_idx + i >= env->prog->len) 17148 break; 17149 stx = &insns[insn_idx - i]; 17150 ldx = &insns[insn_idx + i]; 17151 /* must be a stack spill/fill pair */ 17152 if (stx->code != (BPF_STX | BPF_MEM | BPF_DW) || 17153 ldx->code != (BPF_LDX | BPF_MEM | BPF_DW) || 17154 stx->dst_reg != BPF_REG_10 || 17155 ldx->src_reg != BPF_REG_10) 17156 break; 17157 /* must be a spill/fill for the same reg */ 17158 if (stx->src_reg != ldx->dst_reg) 17159 break; 17160 /* must be one of the previously unseen registers */ 17161 if ((BIT(stx->src_reg) & expected_regs_mask) == 0) 17162 break; 17163 /* must be a spill/fill for the same expected offset, 17164 * no need to check offset alignment, BPF_DW stack access 17165 * is always 8-byte aligned. 17166 */ 17167 if (stx->off != off || ldx->off != off) 17168 break; 17169 expected_regs_mask &= ~BIT(stx->src_reg); 17170 env->insn_aux_data[insn_idx - i].fastcall_pattern = 1; 17171 env->insn_aux_data[insn_idx + i].fastcall_pattern = 1; 17172 } 17173 if (i == 1) 17174 return; 17175 17176 /* Conditionally set 'fastcall_spills_num' to allow forward 17177 * compatibility when more helper functions are marked as 17178 * bpf_fastcall at compile time than current kernel supports, e.g: 17179 * 17180 * 1: *(u64 *)(r10 - 8) = r1 17181 * 2: call A ;; assume A is bpf_fastcall for current kernel 17182 * 3: r1 = *(u64 *)(r10 - 8) 17183 * 4: *(u64 *)(r10 - 8) = r1 17184 * 5: call B ;; assume B is not bpf_fastcall for current kernel 17185 * 6: r1 = *(u64 *)(r10 - 8) 17186 * 17187 * There is no need to block bpf_fastcall rewrite for such program. 17188 * Set 'fastcall_pattern' for both calls to keep check_fastcall_stack_contract() happy, 17189 * don't set 'fastcall_spills_num' for call B so that remove_fastcall_spills_fills() 17190 * does not remove spill/fill pair {4,6}. 17191 */ 17192 if (cs.fastcall) 17193 env->insn_aux_data[insn_idx].fastcall_spills_num = i - 1; 17194 else 17195 subprog->keep_fastcall_stack = 1; 17196 subprog->fastcall_stack_off = min(subprog->fastcall_stack_off, off); 17197 } 17198 17199 static int mark_fastcall_patterns(struct bpf_verifier_env *env) 17200 { 17201 struct bpf_subprog_info *subprog = env->subprog_info; 17202 struct bpf_insn *insn; 17203 s16 lowest_off; 17204 int s, i; 17205 17206 for (s = 0; s < env->subprog_cnt; ++s, ++subprog) { 17207 /* find lowest stack spill offset used in this subprog */ 17208 lowest_off = 0; 17209 for (i = subprog->start; i < (subprog + 1)->start; ++i) { 17210 insn = env->prog->insnsi + i; 17211 if (insn->code != (BPF_STX | BPF_MEM | BPF_DW) || 17212 insn->dst_reg != BPF_REG_10) 17213 continue; 17214 lowest_off = min(lowest_off, insn->off); 17215 } 17216 /* use this offset to find fastcall patterns */ 17217 for (i = subprog->start; i < (subprog + 1)->start; ++i) { 17218 insn = env->prog->insnsi + i; 17219 if (insn->code != (BPF_JMP | BPF_CALL)) 17220 continue; 17221 mark_fastcall_pattern_for_call(env, subprog, i, lowest_off); 17222 } 17223 } 17224 return 0; 17225 } 17226 17227 static void adjust_btf_func(struct bpf_verifier_env *env) 17228 { 17229 struct bpf_prog_aux *aux = env->prog->aux; 17230 int i; 17231 17232 if (!aux->func_info) 17233 return; 17234 17235 /* func_info is not available for hidden subprogs */ 17236 for (i = 0; i < env->subprog_cnt - env->hidden_subprog_cnt; i++) 17237 aux->func_info[i].insn_off = env->subprog_info[i].start; 17238 } 17239 17240 /* Find id in idset and increment its count, or add new entry */ 17241 static void idset_cnt_inc(struct bpf_idset *idset, u32 id) 17242 { 17243 u32 i; 17244 17245 for (i = 0; i < idset->num_ids; i++) { 17246 if (idset->entries[i].id == id) { 17247 idset->entries[i].cnt++; 17248 return; 17249 } 17250 } 17251 /* New id */ 17252 if (idset->num_ids < BPF_ID_MAP_SIZE) { 17253 idset->entries[idset->num_ids].id = id; 17254 idset->entries[idset->num_ids].cnt = 1; 17255 idset->num_ids++; 17256 } 17257 } 17258 17259 /* Find id in idset and return its count, or 0 if not found */ 17260 static u32 idset_cnt_get(struct bpf_idset *idset, u32 id) 17261 { 17262 u32 i; 17263 17264 for (i = 0; i < idset->num_ids; i++) { 17265 if (idset->entries[i].id == id) 17266 return idset->entries[i].cnt; 17267 } 17268 return 0; 17269 } 17270 17271 /* 17272 * Clear singular scalar ids in a state. 17273 * A register with a non-zero id is called singular if no other register shares 17274 * the same base id. Such registers can be treated as independent (id=0). 17275 */ 17276 void bpf_clear_singular_ids(struct bpf_verifier_env *env, 17277 struct bpf_verifier_state *st) 17278 { 17279 struct bpf_idset *idset = &env->idset_scratch; 17280 struct bpf_func_state *func; 17281 struct bpf_reg_state *reg; 17282 17283 idset->num_ids = 0; 17284 17285 bpf_for_each_reg_in_vstate(st, func, reg, ({ 17286 if (reg->type != SCALAR_VALUE) 17287 continue; 17288 if (!reg->id) 17289 continue; 17290 idset_cnt_inc(idset, reg->id & ~BPF_ADD_CONST); 17291 })); 17292 17293 bpf_for_each_reg_in_vstate(st, func, reg, ({ 17294 if (reg->type != SCALAR_VALUE) 17295 continue; 17296 if (!reg->id) 17297 continue; 17298 if (idset_cnt_get(idset, reg->id & ~BPF_ADD_CONST) == 1) 17299 clear_scalar_id(reg); 17300 })); 17301 } 17302 17303 /* Return true if it's OK to have the same insn return a different type. */ 17304 static bool reg_type_mismatch_ok(enum bpf_reg_type type) 17305 { 17306 switch (base_type(type)) { 17307 case PTR_TO_CTX: 17308 case PTR_TO_SOCKET: 17309 case PTR_TO_SOCK_COMMON: 17310 case PTR_TO_TCP_SOCK: 17311 case PTR_TO_XDP_SOCK: 17312 case PTR_TO_BTF_ID: 17313 case PTR_TO_ARENA: 17314 return false; 17315 default: 17316 return true; 17317 } 17318 } 17319 17320 /* If an instruction was previously used with particular pointer types, then we 17321 * need to be careful to avoid cases such as the below, where it may be ok 17322 * for one branch accessing the pointer, but not ok for the other branch: 17323 * 17324 * R1 = sock_ptr 17325 * goto X; 17326 * ... 17327 * R1 = some_other_valid_ptr; 17328 * goto X; 17329 * ... 17330 * R2 = *(u32 *)(R1 + 0); 17331 */ 17332 static bool reg_type_mismatch(enum bpf_reg_type src, enum bpf_reg_type prev) 17333 { 17334 return src != prev && (!reg_type_mismatch_ok(src) || 17335 !reg_type_mismatch_ok(prev)); 17336 } 17337 17338 static bool is_ptr_to_mem_or_btf_id(enum bpf_reg_type type) 17339 { 17340 switch (base_type(type)) { 17341 case PTR_TO_MEM: 17342 case PTR_TO_BTF_ID: 17343 return true; 17344 default: 17345 return false; 17346 } 17347 } 17348 17349 static bool is_ptr_to_mem(enum bpf_reg_type type) 17350 { 17351 return base_type(type) == PTR_TO_MEM; 17352 } 17353 17354 static int save_aux_ptr_type(struct bpf_verifier_env *env, enum bpf_reg_type type, 17355 bool allow_trust_mismatch) 17356 { 17357 enum bpf_reg_type *prev_type = &env->insn_aux_data[env->insn_idx].ptr_type; 17358 enum bpf_reg_type merged_type; 17359 17360 if (*prev_type == NOT_INIT) { 17361 /* Saw a valid insn 17362 * dst_reg = *(u32 *)(src_reg + off) 17363 * save type to validate intersecting paths 17364 */ 17365 *prev_type = type; 17366 } else if (reg_type_mismatch(type, *prev_type)) { 17367 /* Abuser program is trying to use the same insn 17368 * dst_reg = *(u32*) (src_reg + off) 17369 * with different pointer types: 17370 * src_reg == ctx in one branch and 17371 * src_reg == stack|map in some other branch. 17372 * Reject it. 17373 */ 17374 if (allow_trust_mismatch && 17375 is_ptr_to_mem_or_btf_id(type) && 17376 is_ptr_to_mem_or_btf_id(*prev_type)) { 17377 /* 17378 * Have to support a use case when one path through 17379 * the program yields TRUSTED pointer while another 17380 * is UNTRUSTED. Fallback to UNTRUSTED to generate 17381 * BPF_PROBE_MEM/BPF_PROBE_MEMSX. 17382 * Same behavior of MEM_RDONLY flag. 17383 */ 17384 if (is_ptr_to_mem(type) || is_ptr_to_mem(*prev_type)) 17385 merged_type = PTR_TO_MEM; 17386 else 17387 merged_type = PTR_TO_BTF_ID; 17388 if ((type & PTR_UNTRUSTED) || (*prev_type & PTR_UNTRUSTED)) 17389 merged_type |= PTR_UNTRUSTED; 17390 if ((type & MEM_RDONLY) || (*prev_type & MEM_RDONLY)) 17391 merged_type |= MEM_RDONLY; 17392 *prev_type = merged_type; 17393 } else { 17394 verbose(env, "same insn cannot be used with different pointers\n"); 17395 return -EINVAL; 17396 } 17397 } 17398 17399 return 0; 17400 } 17401 17402 enum { 17403 PROCESS_BPF_EXIT = 1, 17404 INSN_IDX_UPDATED = 2, 17405 }; 17406 17407 static int process_bpf_exit_full(struct bpf_verifier_env *env, 17408 bool *do_print_state, 17409 bool exception_exit) 17410 { 17411 struct bpf_func_state *cur_frame = cur_func(env); 17412 17413 /* We must do check_reference_leak here before 17414 * prepare_func_exit to handle the case when 17415 * state->curframe > 0, it may be a callback function, 17416 * for which reference_state must match caller reference 17417 * state when it exits. 17418 */ 17419 int err = check_resource_leak(env, exception_exit, 17420 exception_exit || !env->cur_state->curframe, 17421 exception_exit ? "bpf_throw" : 17422 "BPF_EXIT instruction in main prog"); 17423 if (err) 17424 return err; 17425 17426 /* The side effect of the prepare_func_exit which is 17427 * being skipped is that it frees bpf_func_state. 17428 * Typically, process_bpf_exit will only be hit with 17429 * outermost exit. copy_verifier_state in pop_stack will 17430 * handle freeing of any extra bpf_func_state left over 17431 * from not processing all nested function exits. We 17432 * also skip return code checks as they are not needed 17433 * for exceptional exits. 17434 */ 17435 if (exception_exit) 17436 return PROCESS_BPF_EXIT; 17437 17438 if (env->cur_state->curframe) { 17439 /* exit from nested function */ 17440 err = prepare_func_exit(env, &env->insn_idx); 17441 if (err) 17442 return err; 17443 *do_print_state = true; 17444 return INSN_IDX_UPDATED; 17445 } 17446 17447 /* 17448 * Return from a regular global subprogram differs from return 17449 * from the main program or async/exception callback. 17450 * Main program exit implies return code restrictions 17451 * that depend on program type. 17452 * Exit from exception callback is equivalent to main program exit. 17453 * Exit from async callback implies return code restrictions 17454 * that depend on async scheduling mechanism. 17455 */ 17456 if (cur_frame->subprogno && 17457 !cur_frame->in_async_callback_fn && 17458 !cur_frame->in_exception_callback_fn) 17459 err = check_global_subprog_return_code(env); 17460 else 17461 err = check_return_code(env, BPF_REG_0, "R0"); 17462 if (err) 17463 return err; 17464 return PROCESS_BPF_EXIT; 17465 } 17466 17467 static int indirect_jump_min_max_index(struct bpf_verifier_env *env, 17468 int regno, 17469 struct bpf_map *map, 17470 u32 *pmin_index, u32 *pmax_index) 17471 { 17472 struct bpf_reg_state *reg = reg_state(env, regno); 17473 u64 min_index = reg->umin_value; 17474 u64 max_index = reg->umax_value; 17475 const u32 size = 8; 17476 17477 if (min_index > (u64) U32_MAX * size) { 17478 verbose(env, "the sum of R%u umin_value %llu is too big\n", regno, reg->umin_value); 17479 return -ERANGE; 17480 } 17481 if (max_index > (u64) U32_MAX * size) { 17482 verbose(env, "the sum of R%u umax_value %llu is too big\n", regno, reg->umax_value); 17483 return -ERANGE; 17484 } 17485 17486 min_index /= size; 17487 max_index /= size; 17488 17489 if (max_index >= map->max_entries) { 17490 verbose(env, "R%u points to outside of jump table: [%llu,%llu] max_entries %u\n", 17491 regno, min_index, max_index, map->max_entries); 17492 return -EINVAL; 17493 } 17494 17495 *pmin_index = min_index; 17496 *pmax_index = max_index; 17497 return 0; 17498 } 17499 17500 /* gotox *dst_reg */ 17501 static int check_indirect_jump(struct bpf_verifier_env *env, struct bpf_insn *insn) 17502 { 17503 struct bpf_verifier_state *other_branch; 17504 struct bpf_reg_state *dst_reg; 17505 struct bpf_map *map; 17506 u32 min_index, max_index; 17507 int err = 0; 17508 int n; 17509 int i; 17510 17511 dst_reg = reg_state(env, insn->dst_reg); 17512 if (dst_reg->type != PTR_TO_INSN) { 17513 verbose(env, "R%d has type %s, expected PTR_TO_INSN\n", 17514 insn->dst_reg, reg_type_str(env, dst_reg->type)); 17515 return -EINVAL; 17516 } 17517 17518 map = dst_reg->map_ptr; 17519 if (verifier_bug_if(!map, env, "R%d has an empty map pointer", insn->dst_reg)) 17520 return -EFAULT; 17521 17522 if (verifier_bug_if(map->map_type != BPF_MAP_TYPE_INSN_ARRAY, env, 17523 "R%d has incorrect map type %d", insn->dst_reg, map->map_type)) 17524 return -EFAULT; 17525 17526 err = indirect_jump_min_max_index(env, insn->dst_reg, map, &min_index, &max_index); 17527 if (err) 17528 return err; 17529 17530 /* Ensure that the buffer is large enough */ 17531 if (!env->gotox_tmp_buf || env->gotox_tmp_buf->cnt < max_index - min_index + 1) { 17532 env->gotox_tmp_buf = bpf_iarray_realloc(env->gotox_tmp_buf, 17533 max_index - min_index + 1); 17534 if (!env->gotox_tmp_buf) 17535 return -ENOMEM; 17536 } 17537 17538 n = bpf_copy_insn_array_uniq(map, min_index, max_index, env->gotox_tmp_buf->items); 17539 if (n < 0) 17540 return n; 17541 if (n == 0) { 17542 verbose(env, "register R%d doesn't point to any offset in map id=%d\n", 17543 insn->dst_reg, map->id); 17544 return -EINVAL; 17545 } 17546 17547 for (i = 0; i < n - 1; i++) { 17548 other_branch = push_stack(env, env->gotox_tmp_buf->items[i], 17549 env->insn_idx, env->cur_state->speculative); 17550 if (IS_ERR(other_branch)) 17551 return PTR_ERR(other_branch); 17552 } 17553 env->insn_idx = env->gotox_tmp_buf->items[n-1]; 17554 return INSN_IDX_UPDATED; 17555 } 17556 17557 static int do_check_insn(struct bpf_verifier_env *env, bool *do_print_state) 17558 { 17559 int err; 17560 struct bpf_insn *insn = &env->prog->insnsi[env->insn_idx]; 17561 u8 class = BPF_CLASS(insn->code); 17562 17563 switch (class) { 17564 case BPF_ALU: 17565 case BPF_ALU64: 17566 return check_alu_op(env, insn); 17567 17568 case BPF_LDX: 17569 return check_load_mem(env, insn, false, 17570 BPF_MODE(insn->code) == BPF_MEMSX, 17571 true, "ldx"); 17572 17573 case BPF_STX: 17574 if (BPF_MODE(insn->code) == BPF_ATOMIC) 17575 return check_atomic(env, insn); 17576 return check_store_reg(env, insn, false); 17577 17578 case BPF_ST: { 17579 enum bpf_reg_type dst_reg_type; 17580 17581 err = check_reg_arg(env, insn->dst_reg, SRC_OP); 17582 if (err) 17583 return err; 17584 17585 dst_reg_type = cur_regs(env)[insn->dst_reg].type; 17586 17587 err = check_mem_access(env, env->insn_idx, insn->dst_reg, 17588 insn->off, BPF_SIZE(insn->code), 17589 BPF_WRITE, -1, false, false); 17590 if (err) 17591 return err; 17592 17593 return save_aux_ptr_type(env, dst_reg_type, false); 17594 } 17595 case BPF_JMP: 17596 case BPF_JMP32: { 17597 u8 opcode = BPF_OP(insn->code); 17598 17599 env->jmps_processed++; 17600 if (opcode == BPF_CALL) { 17601 if (env->cur_state->active_locks) { 17602 if ((insn->src_reg == BPF_REG_0 && 17603 insn->imm != BPF_FUNC_spin_unlock && 17604 insn->imm != BPF_FUNC_kptr_xchg) || 17605 (insn->src_reg == BPF_PSEUDO_KFUNC_CALL && 17606 (insn->off != 0 || !kfunc_spin_allowed(insn->imm)))) { 17607 verbose(env, 17608 "function calls are not allowed while holding a lock\n"); 17609 return -EINVAL; 17610 } 17611 } 17612 mark_reg_scratched(env, BPF_REG_0); 17613 if (insn->src_reg == BPF_PSEUDO_CALL) 17614 return check_func_call(env, insn, &env->insn_idx); 17615 if (insn->src_reg == BPF_PSEUDO_KFUNC_CALL) 17616 return check_kfunc_call(env, insn, &env->insn_idx); 17617 return check_helper_call(env, insn, &env->insn_idx); 17618 } else if (opcode == BPF_JA) { 17619 if (BPF_SRC(insn->code) == BPF_X) 17620 return check_indirect_jump(env, insn); 17621 17622 if (class == BPF_JMP) 17623 env->insn_idx += insn->off + 1; 17624 else 17625 env->insn_idx += insn->imm + 1; 17626 return INSN_IDX_UPDATED; 17627 } else if (opcode == BPF_EXIT) { 17628 return process_bpf_exit_full(env, do_print_state, false); 17629 } 17630 return check_cond_jmp_op(env, insn, &env->insn_idx); 17631 } 17632 case BPF_LD: { 17633 u8 mode = BPF_MODE(insn->code); 17634 17635 if (mode == BPF_ABS || mode == BPF_IND) 17636 return check_ld_abs(env, insn); 17637 17638 if (mode == BPF_IMM) { 17639 err = check_ld_imm(env, insn); 17640 if (err) 17641 return err; 17642 17643 env->insn_idx++; 17644 sanitize_mark_insn_seen(env); 17645 } 17646 return 0; 17647 } 17648 } 17649 /* all class values are handled above. silence compiler warning */ 17650 return -EFAULT; 17651 } 17652 17653 static int do_check(struct bpf_verifier_env *env) 17654 { 17655 bool pop_log = !(env->log.level & BPF_LOG_LEVEL2); 17656 struct bpf_verifier_state *state = env->cur_state; 17657 struct bpf_insn *insns = env->prog->insnsi; 17658 int insn_cnt = env->prog->len; 17659 bool do_print_state = false; 17660 int prev_insn_idx = -1; 17661 17662 for (;;) { 17663 struct bpf_insn *insn; 17664 struct bpf_insn_aux_data *insn_aux; 17665 int err; 17666 17667 /* reset current history entry on each new instruction */ 17668 env->cur_hist_ent = NULL; 17669 17670 env->prev_insn_idx = prev_insn_idx; 17671 if (env->insn_idx >= insn_cnt) { 17672 verbose(env, "invalid insn idx %d insn_cnt %d\n", 17673 env->insn_idx, insn_cnt); 17674 return -EFAULT; 17675 } 17676 17677 insn = &insns[env->insn_idx]; 17678 insn_aux = &env->insn_aux_data[env->insn_idx]; 17679 17680 if (++env->insn_processed > BPF_COMPLEXITY_LIMIT_INSNS) { 17681 verbose(env, 17682 "BPF program is too large. Processed %d insn\n", 17683 env->insn_processed); 17684 return -E2BIG; 17685 } 17686 17687 state->last_insn_idx = env->prev_insn_idx; 17688 state->insn_idx = env->insn_idx; 17689 17690 if (bpf_is_prune_point(env, env->insn_idx)) { 17691 err = bpf_is_state_visited(env, env->insn_idx); 17692 if (err < 0) 17693 return err; 17694 if (err == 1) { 17695 /* found equivalent state, can prune the search */ 17696 if (env->log.level & BPF_LOG_LEVEL) { 17697 if (do_print_state) 17698 verbose(env, "\nfrom %d to %d%s: safe\n", 17699 env->prev_insn_idx, env->insn_idx, 17700 env->cur_state->speculative ? 17701 " (speculative execution)" : ""); 17702 else 17703 verbose(env, "%d: safe\n", env->insn_idx); 17704 } 17705 goto process_bpf_exit; 17706 } 17707 } 17708 17709 if (bpf_is_jmp_point(env, env->insn_idx)) { 17710 err = bpf_push_jmp_history(env, state, 0, 0); 17711 if (err) 17712 return err; 17713 } 17714 17715 if (signal_pending(current)) 17716 return -EAGAIN; 17717 17718 if (need_resched()) 17719 cond_resched(); 17720 17721 if (env->log.level & BPF_LOG_LEVEL2 && do_print_state) { 17722 verbose(env, "\nfrom %d to %d%s:", 17723 env->prev_insn_idx, env->insn_idx, 17724 env->cur_state->speculative ? 17725 " (speculative execution)" : ""); 17726 print_verifier_state(env, state, state->curframe, true); 17727 do_print_state = false; 17728 } 17729 17730 if (env->log.level & BPF_LOG_LEVEL) { 17731 if (verifier_state_scratched(env)) 17732 print_insn_state(env, state, state->curframe); 17733 17734 verbose_linfo(env, env->insn_idx, "; "); 17735 env->prev_log_pos = env->log.end_pos; 17736 verbose(env, "%d: ", env->insn_idx); 17737 bpf_verbose_insn(env, insn); 17738 env->prev_insn_print_pos = env->log.end_pos - env->prev_log_pos; 17739 env->prev_log_pos = env->log.end_pos; 17740 } 17741 17742 if (bpf_prog_is_offloaded(env->prog->aux)) { 17743 err = bpf_prog_offload_verify_insn(env, env->insn_idx, 17744 env->prev_insn_idx); 17745 if (err) 17746 return err; 17747 } 17748 17749 sanitize_mark_insn_seen(env); 17750 prev_insn_idx = env->insn_idx; 17751 17752 /* Sanity check: precomputed constants must match verifier state */ 17753 if (!state->speculative && insn_aux->const_reg_mask) { 17754 struct bpf_reg_state *regs = cur_regs(env); 17755 u16 mask = insn_aux->const_reg_mask; 17756 17757 for (int r = 0; r < ARRAY_SIZE(insn_aux->const_reg_vals); r++) { 17758 u32 cval = insn_aux->const_reg_vals[r]; 17759 17760 if (!(mask & BIT(r))) 17761 continue; 17762 if (regs[r].type != SCALAR_VALUE) 17763 continue; 17764 if (!tnum_is_const(regs[r].var_off)) 17765 continue; 17766 if (verifier_bug_if((u32)regs[r].var_off.value != cval, 17767 env, "const R%d: %u != %llu", 17768 r, cval, regs[r].var_off.value)) 17769 return -EFAULT; 17770 } 17771 } 17772 17773 /* Reduce verification complexity by stopping speculative path 17774 * verification when a nospec is encountered. 17775 */ 17776 if (state->speculative && insn_aux->nospec) 17777 goto process_bpf_exit; 17778 17779 err = do_check_insn(env, &do_print_state); 17780 if (error_recoverable_with_nospec(err) && state->speculative) { 17781 /* Prevent this speculative path from ever reaching the 17782 * insn that would have been unsafe to execute. 17783 */ 17784 insn_aux->nospec = true; 17785 /* If it was an ADD/SUB insn, potentially remove any 17786 * markings for alu sanitization. 17787 */ 17788 insn_aux->alu_state = 0; 17789 goto process_bpf_exit; 17790 } else if (err < 0) { 17791 return err; 17792 } else if (err == PROCESS_BPF_EXIT) { 17793 goto process_bpf_exit; 17794 } else if (err == INSN_IDX_UPDATED) { 17795 } else if (err == 0) { 17796 env->insn_idx++; 17797 } 17798 17799 if (state->speculative && insn_aux->nospec_result) { 17800 /* If we are on a path that performed a jump-op, this 17801 * may skip a nospec patched-in after the jump. This can 17802 * currently never happen because nospec_result is only 17803 * used for the write-ops 17804 * `*(size*)(dst_reg+off)=src_reg|imm32` and helper 17805 * calls. These must never skip the following insn 17806 * (i.e., bpf_insn_successors()'s opcode_info.can_jump 17807 * is false). Still, add a warning to document this in 17808 * case nospec_result is used elsewhere in the future. 17809 * 17810 * All non-branch instructions have a single 17811 * fall-through edge. For these, nospec_result should 17812 * already work. 17813 */ 17814 if (verifier_bug_if((BPF_CLASS(insn->code) == BPF_JMP || 17815 BPF_CLASS(insn->code) == BPF_JMP32) && 17816 BPF_OP(insn->code) != BPF_CALL, env, 17817 "speculation barrier after jump instruction may not have the desired effect")) 17818 return -EFAULT; 17819 process_bpf_exit: 17820 mark_verifier_state_scratched(env); 17821 err = bpf_update_branch_counts(env, env->cur_state); 17822 if (err) 17823 return err; 17824 err = pop_stack(env, &prev_insn_idx, &env->insn_idx, 17825 pop_log); 17826 if (err < 0) { 17827 if (err != -ENOENT) 17828 return err; 17829 break; 17830 } else { 17831 do_print_state = true; 17832 continue; 17833 } 17834 } 17835 } 17836 17837 return 0; 17838 } 17839 17840 static int find_btf_percpu_datasec(struct btf *btf) 17841 { 17842 const struct btf_type *t; 17843 const char *tname; 17844 int i, n; 17845 17846 /* 17847 * Both vmlinux and module each have their own ".data..percpu" 17848 * DATASECs in BTF. So for module's case, we need to skip vmlinux BTF 17849 * types to look at only module's own BTF types. 17850 */ 17851 n = btf_nr_types(btf); 17852 for (i = btf_named_start_id(btf, true); i < n; i++) { 17853 t = btf_type_by_id(btf, i); 17854 if (BTF_INFO_KIND(t->info) != BTF_KIND_DATASEC) 17855 continue; 17856 17857 tname = btf_name_by_offset(btf, t->name_off); 17858 if (!strcmp(tname, ".data..percpu")) 17859 return i; 17860 } 17861 17862 return -ENOENT; 17863 } 17864 17865 /* 17866 * Add btf to the env->used_btfs array. If needed, refcount the 17867 * corresponding kernel module. To simplify caller's logic 17868 * in case of error or if btf was added before the function 17869 * decreases the btf refcount. 17870 */ 17871 static int __add_used_btf(struct bpf_verifier_env *env, struct btf *btf) 17872 { 17873 struct btf_mod_pair *btf_mod; 17874 int ret = 0; 17875 int i; 17876 17877 /* check whether we recorded this BTF (and maybe module) already */ 17878 for (i = 0; i < env->used_btf_cnt; i++) 17879 if (env->used_btfs[i].btf == btf) 17880 goto ret_put; 17881 17882 if (env->used_btf_cnt >= MAX_USED_BTFS) { 17883 verbose(env, "The total number of btfs per program has reached the limit of %u\n", 17884 MAX_USED_BTFS); 17885 ret = -E2BIG; 17886 goto ret_put; 17887 } 17888 17889 btf_mod = &env->used_btfs[env->used_btf_cnt]; 17890 btf_mod->btf = btf; 17891 btf_mod->module = NULL; 17892 17893 /* if we reference variables from kernel module, bump its refcount */ 17894 if (btf_is_module(btf)) { 17895 btf_mod->module = btf_try_get_module(btf); 17896 if (!btf_mod->module) { 17897 ret = -ENXIO; 17898 goto ret_put; 17899 } 17900 } 17901 17902 env->used_btf_cnt++; 17903 return 0; 17904 17905 ret_put: 17906 /* Either error or this BTF was already added */ 17907 btf_put(btf); 17908 return ret; 17909 } 17910 17911 /* replace pseudo btf_id with kernel symbol address */ 17912 static int __check_pseudo_btf_id(struct bpf_verifier_env *env, 17913 struct bpf_insn *insn, 17914 struct bpf_insn_aux_data *aux, 17915 struct btf *btf) 17916 { 17917 const struct btf_var_secinfo *vsi; 17918 const struct btf_type *datasec; 17919 const struct btf_type *t; 17920 const char *sym_name; 17921 bool percpu = false; 17922 u32 type, id = insn->imm; 17923 s32 datasec_id; 17924 u64 addr; 17925 int i; 17926 17927 t = btf_type_by_id(btf, id); 17928 if (!t) { 17929 verbose(env, "ldimm64 insn specifies invalid btf_id %d.\n", id); 17930 return -ENOENT; 17931 } 17932 17933 if (!btf_type_is_var(t) && !btf_type_is_func(t)) { 17934 verbose(env, "pseudo btf_id %d in ldimm64 isn't KIND_VAR or KIND_FUNC\n", id); 17935 return -EINVAL; 17936 } 17937 17938 sym_name = btf_name_by_offset(btf, t->name_off); 17939 addr = kallsyms_lookup_name(sym_name); 17940 if (!addr) { 17941 verbose(env, "ldimm64 failed to find the address for kernel symbol '%s'.\n", 17942 sym_name); 17943 return -ENOENT; 17944 } 17945 insn[0].imm = (u32)addr; 17946 insn[1].imm = addr >> 32; 17947 17948 if (btf_type_is_func(t)) { 17949 aux->btf_var.reg_type = PTR_TO_MEM | MEM_RDONLY; 17950 aux->btf_var.mem_size = 0; 17951 return 0; 17952 } 17953 17954 datasec_id = find_btf_percpu_datasec(btf); 17955 if (datasec_id > 0) { 17956 datasec = btf_type_by_id(btf, datasec_id); 17957 for_each_vsi(i, datasec, vsi) { 17958 if (vsi->type == id) { 17959 percpu = true; 17960 break; 17961 } 17962 } 17963 } 17964 17965 type = t->type; 17966 t = btf_type_skip_modifiers(btf, type, NULL); 17967 if (percpu) { 17968 aux->btf_var.reg_type = PTR_TO_BTF_ID | MEM_PERCPU; 17969 aux->btf_var.btf = btf; 17970 aux->btf_var.btf_id = type; 17971 } else if (!btf_type_is_struct(t)) { 17972 const struct btf_type *ret; 17973 const char *tname; 17974 u32 tsize; 17975 17976 /* resolve the type size of ksym. */ 17977 ret = btf_resolve_size(btf, t, &tsize); 17978 if (IS_ERR(ret)) { 17979 tname = btf_name_by_offset(btf, t->name_off); 17980 verbose(env, "ldimm64 unable to resolve the size of type '%s': %ld\n", 17981 tname, PTR_ERR(ret)); 17982 return -EINVAL; 17983 } 17984 aux->btf_var.reg_type = PTR_TO_MEM | MEM_RDONLY; 17985 aux->btf_var.mem_size = tsize; 17986 } else { 17987 aux->btf_var.reg_type = PTR_TO_BTF_ID; 17988 aux->btf_var.btf = btf; 17989 aux->btf_var.btf_id = type; 17990 } 17991 17992 return 0; 17993 } 17994 17995 static int check_pseudo_btf_id(struct bpf_verifier_env *env, 17996 struct bpf_insn *insn, 17997 struct bpf_insn_aux_data *aux) 17998 { 17999 struct btf *btf; 18000 int btf_fd; 18001 int err; 18002 18003 btf_fd = insn[1].imm; 18004 if (btf_fd) { 18005 btf = btf_get_by_fd(btf_fd); 18006 if (IS_ERR(btf)) { 18007 verbose(env, "invalid module BTF object FD specified.\n"); 18008 return -EINVAL; 18009 } 18010 } else { 18011 if (!btf_vmlinux) { 18012 verbose(env, "kernel is missing BTF, make sure CONFIG_DEBUG_INFO_BTF=y is specified in Kconfig.\n"); 18013 return -EINVAL; 18014 } 18015 btf_get(btf_vmlinux); 18016 btf = btf_vmlinux; 18017 } 18018 18019 err = __check_pseudo_btf_id(env, insn, aux, btf); 18020 if (err) { 18021 btf_put(btf); 18022 return err; 18023 } 18024 18025 return __add_used_btf(env, btf); 18026 } 18027 18028 static bool is_tracing_prog_type(enum bpf_prog_type type) 18029 { 18030 switch (type) { 18031 case BPF_PROG_TYPE_KPROBE: 18032 case BPF_PROG_TYPE_TRACEPOINT: 18033 case BPF_PROG_TYPE_PERF_EVENT: 18034 case BPF_PROG_TYPE_RAW_TRACEPOINT: 18035 case BPF_PROG_TYPE_RAW_TRACEPOINT_WRITABLE: 18036 return true; 18037 default: 18038 return false; 18039 } 18040 } 18041 18042 static bool bpf_map_is_cgroup_storage(struct bpf_map *map) 18043 { 18044 return (map->map_type == BPF_MAP_TYPE_CGROUP_STORAGE || 18045 map->map_type == BPF_MAP_TYPE_PERCPU_CGROUP_STORAGE); 18046 } 18047 18048 static int check_map_prog_compatibility(struct bpf_verifier_env *env, 18049 struct bpf_map *map, 18050 struct bpf_prog *prog) 18051 18052 { 18053 enum bpf_prog_type prog_type = resolve_prog_type(prog); 18054 18055 if (map->excl_prog_sha && 18056 memcmp(map->excl_prog_sha, prog->digest, SHA256_DIGEST_SIZE)) { 18057 verbose(env, "program's hash doesn't match map's excl_prog_hash\n"); 18058 return -EACCES; 18059 } 18060 18061 if (btf_record_has_field(map->record, BPF_LIST_HEAD) || 18062 btf_record_has_field(map->record, BPF_RB_ROOT)) { 18063 if (is_tracing_prog_type(prog_type)) { 18064 verbose(env, "tracing progs cannot use bpf_{list_head,rb_root} yet\n"); 18065 return -EINVAL; 18066 } 18067 } 18068 18069 if (btf_record_has_field(map->record, BPF_SPIN_LOCK | BPF_RES_SPIN_LOCK)) { 18070 if (prog_type == BPF_PROG_TYPE_SOCKET_FILTER) { 18071 verbose(env, "socket filter progs cannot use bpf_spin_lock yet\n"); 18072 return -EINVAL; 18073 } 18074 18075 if (is_tracing_prog_type(prog_type)) { 18076 verbose(env, "tracing progs cannot use bpf_spin_lock yet\n"); 18077 return -EINVAL; 18078 } 18079 } 18080 18081 if ((bpf_prog_is_offloaded(prog->aux) || bpf_map_is_offloaded(map)) && 18082 !bpf_offload_prog_map_match(prog, map)) { 18083 verbose(env, "offload device mismatch between prog and map\n"); 18084 return -EINVAL; 18085 } 18086 18087 if (map->map_type == BPF_MAP_TYPE_STRUCT_OPS) { 18088 verbose(env, "bpf_struct_ops map cannot be used in prog\n"); 18089 return -EINVAL; 18090 } 18091 18092 if (prog->sleepable) 18093 switch (map->map_type) { 18094 case BPF_MAP_TYPE_HASH: 18095 case BPF_MAP_TYPE_LRU_HASH: 18096 case BPF_MAP_TYPE_ARRAY: 18097 case BPF_MAP_TYPE_PERCPU_HASH: 18098 case BPF_MAP_TYPE_PERCPU_ARRAY: 18099 case BPF_MAP_TYPE_LRU_PERCPU_HASH: 18100 case BPF_MAP_TYPE_ARRAY_OF_MAPS: 18101 case BPF_MAP_TYPE_HASH_OF_MAPS: 18102 case BPF_MAP_TYPE_RINGBUF: 18103 case BPF_MAP_TYPE_USER_RINGBUF: 18104 case BPF_MAP_TYPE_INODE_STORAGE: 18105 case BPF_MAP_TYPE_SK_STORAGE: 18106 case BPF_MAP_TYPE_TASK_STORAGE: 18107 case BPF_MAP_TYPE_CGRP_STORAGE: 18108 case BPF_MAP_TYPE_QUEUE: 18109 case BPF_MAP_TYPE_STACK: 18110 case BPF_MAP_TYPE_ARENA: 18111 case BPF_MAP_TYPE_INSN_ARRAY: 18112 case BPF_MAP_TYPE_PROG_ARRAY: 18113 break; 18114 default: 18115 verbose(env, 18116 "Sleepable programs can only use array, hash, ringbuf and local storage maps\n"); 18117 return -EINVAL; 18118 } 18119 18120 if (bpf_map_is_cgroup_storage(map) && 18121 bpf_cgroup_storage_assign(env->prog->aux, map)) { 18122 verbose(env, "only one cgroup storage of each type is allowed\n"); 18123 return -EBUSY; 18124 } 18125 18126 if (map->map_type == BPF_MAP_TYPE_ARENA) { 18127 if (env->prog->aux->arena) { 18128 verbose(env, "Only one arena per program\n"); 18129 return -EBUSY; 18130 } 18131 if (!env->allow_ptr_leaks || !env->bpf_capable) { 18132 verbose(env, "CAP_BPF and CAP_PERFMON are required to use arena\n"); 18133 return -EPERM; 18134 } 18135 if (!env->prog->jit_requested) { 18136 verbose(env, "JIT is required to use arena\n"); 18137 return -EOPNOTSUPP; 18138 } 18139 if (!bpf_jit_supports_arena()) { 18140 verbose(env, "JIT doesn't support arena\n"); 18141 return -EOPNOTSUPP; 18142 } 18143 env->prog->aux->arena = (void *)map; 18144 if (!bpf_arena_get_user_vm_start(env->prog->aux->arena)) { 18145 verbose(env, "arena's user address must be set via map_extra or mmap()\n"); 18146 return -EINVAL; 18147 } 18148 } 18149 18150 return 0; 18151 } 18152 18153 static int __add_used_map(struct bpf_verifier_env *env, struct bpf_map *map) 18154 { 18155 int i, err; 18156 18157 /* check whether we recorded this map already */ 18158 for (i = 0; i < env->used_map_cnt; i++) 18159 if (env->used_maps[i] == map) 18160 return i; 18161 18162 if (env->used_map_cnt >= MAX_USED_MAPS) { 18163 verbose(env, "The total number of maps per program has reached the limit of %u\n", 18164 MAX_USED_MAPS); 18165 return -E2BIG; 18166 } 18167 18168 err = check_map_prog_compatibility(env, map, env->prog); 18169 if (err) 18170 return err; 18171 18172 if (env->prog->sleepable) 18173 atomic64_inc(&map->sleepable_refcnt); 18174 18175 /* hold the map. If the program is rejected by verifier, 18176 * the map will be released by release_maps() or it 18177 * will be used by the valid program until it's unloaded 18178 * and all maps are released in bpf_free_used_maps() 18179 */ 18180 bpf_map_inc(map); 18181 18182 env->used_maps[env->used_map_cnt++] = map; 18183 18184 if (map->map_type == BPF_MAP_TYPE_INSN_ARRAY) { 18185 err = bpf_insn_array_init(map, env->prog); 18186 if (err) { 18187 verbose(env, "Failed to properly initialize insn array\n"); 18188 return err; 18189 } 18190 env->insn_array_maps[env->insn_array_map_cnt++] = map; 18191 } 18192 18193 return env->used_map_cnt - 1; 18194 } 18195 18196 /* Add map behind fd to used maps list, if it's not already there, and return 18197 * its index. 18198 * Returns <0 on error, or >= 0 index, on success. 18199 */ 18200 static int add_used_map(struct bpf_verifier_env *env, int fd) 18201 { 18202 struct bpf_map *map; 18203 CLASS(fd, f)(fd); 18204 18205 map = __bpf_map_get(f); 18206 if (IS_ERR(map)) { 18207 verbose(env, "fd %d is not pointing to valid bpf_map\n", fd); 18208 return PTR_ERR(map); 18209 } 18210 18211 return __add_used_map(env, map); 18212 } 18213 18214 static int check_alu_fields(struct bpf_verifier_env *env, struct bpf_insn *insn) 18215 { 18216 u8 class = BPF_CLASS(insn->code); 18217 u8 opcode = BPF_OP(insn->code); 18218 18219 switch (opcode) { 18220 case BPF_NEG: 18221 if (BPF_SRC(insn->code) != BPF_K || insn->src_reg != BPF_REG_0 || 18222 insn->off != 0 || insn->imm != 0) { 18223 verbose(env, "BPF_NEG uses reserved fields\n"); 18224 return -EINVAL; 18225 } 18226 return 0; 18227 case BPF_END: 18228 if (insn->src_reg != BPF_REG_0 || insn->off != 0 || 18229 (insn->imm != 16 && insn->imm != 32 && insn->imm != 64) || 18230 (class == BPF_ALU64 && BPF_SRC(insn->code) != BPF_TO_LE)) { 18231 verbose(env, "BPF_END uses reserved fields\n"); 18232 return -EINVAL; 18233 } 18234 return 0; 18235 case BPF_MOV: 18236 if (BPF_SRC(insn->code) == BPF_X) { 18237 if (class == BPF_ALU) { 18238 if ((insn->off != 0 && insn->off != 8 && insn->off != 16) || 18239 insn->imm) { 18240 verbose(env, "BPF_MOV uses reserved fields\n"); 18241 return -EINVAL; 18242 } 18243 } else if (insn->off == BPF_ADDR_SPACE_CAST) { 18244 if (insn->imm != 1 && insn->imm != 1u << 16) { 18245 verbose(env, "addr_space_cast insn can only convert between address space 1 and 0\n"); 18246 return -EINVAL; 18247 } 18248 } else if ((insn->off != 0 && insn->off != 8 && 18249 insn->off != 16 && insn->off != 32) || insn->imm) { 18250 verbose(env, "BPF_MOV uses reserved fields\n"); 18251 return -EINVAL; 18252 } 18253 } else if (insn->src_reg != BPF_REG_0 || insn->off != 0) { 18254 verbose(env, "BPF_MOV uses reserved fields\n"); 18255 return -EINVAL; 18256 } 18257 return 0; 18258 case BPF_ADD: 18259 case BPF_SUB: 18260 case BPF_AND: 18261 case BPF_OR: 18262 case BPF_XOR: 18263 case BPF_LSH: 18264 case BPF_RSH: 18265 case BPF_ARSH: 18266 case BPF_MUL: 18267 case BPF_DIV: 18268 case BPF_MOD: 18269 if (BPF_SRC(insn->code) == BPF_X) { 18270 if (insn->imm != 0 || (insn->off != 0 && insn->off != 1) || 18271 (insn->off == 1 && opcode != BPF_MOD && opcode != BPF_DIV)) { 18272 verbose(env, "BPF_ALU uses reserved fields\n"); 18273 return -EINVAL; 18274 } 18275 } else if (insn->src_reg != BPF_REG_0 || 18276 (insn->off != 0 && insn->off != 1) || 18277 (insn->off == 1 && opcode != BPF_MOD && opcode != BPF_DIV)) { 18278 verbose(env, "BPF_ALU uses reserved fields\n"); 18279 return -EINVAL; 18280 } 18281 return 0; 18282 default: 18283 verbose(env, "invalid BPF_ALU opcode %x\n", opcode); 18284 return -EINVAL; 18285 } 18286 } 18287 18288 static int check_jmp_fields(struct bpf_verifier_env *env, struct bpf_insn *insn) 18289 { 18290 u8 class = BPF_CLASS(insn->code); 18291 u8 opcode = BPF_OP(insn->code); 18292 18293 switch (opcode) { 18294 case BPF_CALL: 18295 if (BPF_SRC(insn->code) != BPF_K || 18296 (insn->src_reg != BPF_PSEUDO_KFUNC_CALL && insn->off != 0) || 18297 (insn->src_reg != BPF_REG_0 && insn->src_reg != BPF_PSEUDO_CALL && 18298 insn->src_reg != BPF_PSEUDO_KFUNC_CALL) || 18299 insn->dst_reg != BPF_REG_0 || class == BPF_JMP32) { 18300 verbose(env, "BPF_CALL uses reserved fields\n"); 18301 return -EINVAL; 18302 } 18303 return 0; 18304 case BPF_JA: 18305 if (BPF_SRC(insn->code) == BPF_X) { 18306 if (insn->src_reg != BPF_REG_0 || insn->imm != 0 || insn->off != 0) { 18307 verbose(env, "BPF_JA|BPF_X uses reserved fields\n"); 18308 return -EINVAL; 18309 } 18310 } else if (insn->src_reg != BPF_REG_0 || insn->dst_reg != BPF_REG_0 || 18311 (class == BPF_JMP && insn->imm != 0) || 18312 (class == BPF_JMP32 && insn->off != 0)) { 18313 verbose(env, "BPF_JA uses reserved fields\n"); 18314 return -EINVAL; 18315 } 18316 return 0; 18317 case BPF_EXIT: 18318 if (BPF_SRC(insn->code) != BPF_K || insn->imm != 0 || 18319 insn->src_reg != BPF_REG_0 || insn->dst_reg != BPF_REG_0 || 18320 class == BPF_JMP32) { 18321 verbose(env, "BPF_EXIT uses reserved fields\n"); 18322 return -EINVAL; 18323 } 18324 return 0; 18325 case BPF_JCOND: 18326 if (insn->code != (BPF_JMP | BPF_JCOND) || insn->src_reg != BPF_MAY_GOTO || 18327 insn->dst_reg || insn->imm) { 18328 verbose(env, "invalid may_goto imm %d\n", insn->imm); 18329 return -EINVAL; 18330 } 18331 return 0; 18332 default: 18333 if (BPF_SRC(insn->code) == BPF_X) { 18334 if (insn->imm != 0) { 18335 verbose(env, "BPF_JMP/JMP32 uses reserved fields\n"); 18336 return -EINVAL; 18337 } 18338 } else if (insn->src_reg != BPF_REG_0) { 18339 verbose(env, "BPF_JMP/JMP32 uses reserved fields\n"); 18340 return -EINVAL; 18341 } 18342 return 0; 18343 } 18344 } 18345 18346 static int check_insn_fields(struct bpf_verifier_env *env, struct bpf_insn *insn) 18347 { 18348 switch (BPF_CLASS(insn->code)) { 18349 case BPF_ALU: 18350 case BPF_ALU64: 18351 return check_alu_fields(env, insn); 18352 case BPF_LDX: 18353 if ((BPF_MODE(insn->code) != BPF_MEM && BPF_MODE(insn->code) != BPF_MEMSX) || 18354 insn->imm != 0) { 18355 verbose(env, "BPF_LDX uses reserved fields\n"); 18356 return -EINVAL; 18357 } 18358 return 0; 18359 case BPF_STX: 18360 if (BPF_MODE(insn->code) == BPF_ATOMIC) 18361 return 0; 18362 if (BPF_MODE(insn->code) != BPF_MEM || insn->imm != 0) { 18363 verbose(env, "BPF_STX uses reserved fields\n"); 18364 return -EINVAL; 18365 } 18366 return 0; 18367 case BPF_ST: 18368 if (BPF_MODE(insn->code) != BPF_MEM || insn->src_reg != BPF_REG_0) { 18369 verbose(env, "BPF_ST uses reserved fields\n"); 18370 return -EINVAL; 18371 } 18372 return 0; 18373 case BPF_JMP: 18374 case BPF_JMP32: 18375 return check_jmp_fields(env, insn); 18376 case BPF_LD: { 18377 u8 mode = BPF_MODE(insn->code); 18378 18379 if (mode == BPF_ABS || mode == BPF_IND) { 18380 if (insn->dst_reg != BPF_REG_0 || insn->off != 0 || 18381 BPF_SIZE(insn->code) == BPF_DW || 18382 (mode == BPF_ABS && insn->src_reg != BPF_REG_0)) { 18383 verbose(env, "BPF_LD_[ABS|IND] uses reserved fields\n"); 18384 return -EINVAL; 18385 } 18386 } else if (mode != BPF_IMM) { 18387 verbose(env, "invalid BPF_LD mode\n"); 18388 return -EINVAL; 18389 } 18390 return 0; 18391 } 18392 default: 18393 verbose(env, "unknown insn class %d\n", BPF_CLASS(insn->code)); 18394 return -EINVAL; 18395 } 18396 } 18397 18398 /* 18399 * Check that insns are sane and rewrite pseudo imm in ld_imm64 instructions: 18400 * 18401 * 1. if it accesses map FD, replace it with actual map pointer. 18402 * 2. if it accesses btf_id of a VAR, replace it with pointer to the var. 18403 * 18404 * NOTE: btf_vmlinux is required for converting pseudo btf_id. 18405 */ 18406 static int check_and_resolve_insns(struct bpf_verifier_env *env) 18407 { 18408 struct bpf_insn *insn = env->prog->insnsi; 18409 int insn_cnt = env->prog->len; 18410 int i, err; 18411 18412 err = bpf_prog_calc_tag(env->prog); 18413 if (err) 18414 return err; 18415 18416 for (i = 0; i < insn_cnt; i++, insn++) { 18417 if (insn->dst_reg >= MAX_BPF_REG) { 18418 verbose(env, "R%d is invalid\n", insn->dst_reg); 18419 return -EINVAL; 18420 } 18421 if (insn->src_reg >= MAX_BPF_REG) { 18422 verbose(env, "R%d is invalid\n", insn->src_reg); 18423 return -EINVAL; 18424 } 18425 if (insn[0].code == (BPF_LD | BPF_IMM | BPF_DW)) { 18426 struct bpf_insn_aux_data *aux; 18427 struct bpf_map *map; 18428 int map_idx; 18429 u64 addr; 18430 u32 fd; 18431 18432 if (i == insn_cnt - 1 || insn[1].code != 0 || 18433 insn[1].dst_reg != 0 || insn[1].src_reg != 0 || 18434 insn[1].off != 0) { 18435 verbose(env, "invalid bpf_ld_imm64 insn\n"); 18436 return -EINVAL; 18437 } 18438 18439 if (insn[0].off != 0) { 18440 verbose(env, "BPF_LD_IMM64 uses reserved fields\n"); 18441 return -EINVAL; 18442 } 18443 18444 if (insn[0].src_reg == 0) 18445 /* valid generic load 64-bit imm */ 18446 goto next_insn; 18447 18448 if (insn[0].src_reg == BPF_PSEUDO_BTF_ID) { 18449 aux = &env->insn_aux_data[i]; 18450 err = check_pseudo_btf_id(env, insn, aux); 18451 if (err) 18452 return err; 18453 goto next_insn; 18454 } 18455 18456 if (insn[0].src_reg == BPF_PSEUDO_FUNC) { 18457 aux = &env->insn_aux_data[i]; 18458 aux->ptr_type = PTR_TO_FUNC; 18459 goto next_insn; 18460 } 18461 18462 /* In final convert_pseudo_ld_imm64() step, this is 18463 * converted into regular 64-bit imm load insn. 18464 */ 18465 switch (insn[0].src_reg) { 18466 case BPF_PSEUDO_MAP_VALUE: 18467 case BPF_PSEUDO_MAP_IDX_VALUE: 18468 break; 18469 case BPF_PSEUDO_MAP_FD: 18470 case BPF_PSEUDO_MAP_IDX: 18471 if (insn[1].imm == 0) 18472 break; 18473 fallthrough; 18474 default: 18475 verbose(env, "unrecognized bpf_ld_imm64 insn\n"); 18476 return -EINVAL; 18477 } 18478 18479 switch (insn[0].src_reg) { 18480 case BPF_PSEUDO_MAP_IDX_VALUE: 18481 case BPF_PSEUDO_MAP_IDX: 18482 if (bpfptr_is_null(env->fd_array)) { 18483 verbose(env, "fd_idx without fd_array is invalid\n"); 18484 return -EPROTO; 18485 } 18486 if (copy_from_bpfptr_offset(&fd, env->fd_array, 18487 insn[0].imm * sizeof(fd), 18488 sizeof(fd))) 18489 return -EFAULT; 18490 break; 18491 default: 18492 fd = insn[0].imm; 18493 break; 18494 } 18495 18496 map_idx = add_used_map(env, fd); 18497 if (map_idx < 0) 18498 return map_idx; 18499 map = env->used_maps[map_idx]; 18500 18501 aux = &env->insn_aux_data[i]; 18502 aux->map_index = map_idx; 18503 18504 if (insn[0].src_reg == BPF_PSEUDO_MAP_FD || 18505 insn[0].src_reg == BPF_PSEUDO_MAP_IDX) { 18506 addr = (unsigned long)map; 18507 } else { 18508 u32 off = insn[1].imm; 18509 18510 if (!map->ops->map_direct_value_addr) { 18511 verbose(env, "no direct value access support for this map type\n"); 18512 return -EINVAL; 18513 } 18514 18515 err = map->ops->map_direct_value_addr(map, &addr, off); 18516 if (err) { 18517 verbose(env, "invalid access to map value pointer, value_size=%u off=%u\n", 18518 map->value_size, off); 18519 return err; 18520 } 18521 18522 aux->map_off = off; 18523 addr += off; 18524 } 18525 18526 insn[0].imm = (u32)addr; 18527 insn[1].imm = addr >> 32; 18528 18529 next_insn: 18530 insn++; 18531 i++; 18532 continue; 18533 } 18534 18535 /* Basic sanity check before we invest more work here. */ 18536 if (!bpf_opcode_in_insntable(insn->code)) { 18537 verbose(env, "unknown opcode %02x\n", insn->code); 18538 return -EINVAL; 18539 } 18540 18541 err = check_insn_fields(env, insn); 18542 if (err) 18543 return err; 18544 } 18545 18546 /* now all pseudo BPF_LD_IMM64 instructions load valid 18547 * 'struct bpf_map *' into a register instead of user map_fd. 18548 * These pointers will be used later by verifier to validate map access. 18549 */ 18550 return 0; 18551 } 18552 18553 /* drop refcnt of maps used by the rejected program */ 18554 static void release_maps(struct bpf_verifier_env *env) 18555 { 18556 __bpf_free_used_maps(env->prog->aux, env->used_maps, 18557 env->used_map_cnt); 18558 } 18559 18560 /* drop refcnt of maps used by the rejected program */ 18561 static void release_btfs(struct bpf_verifier_env *env) 18562 { 18563 __bpf_free_used_btfs(env->used_btfs, env->used_btf_cnt); 18564 } 18565 18566 /* convert pseudo BPF_LD_IMM64 into generic BPF_LD_IMM64 */ 18567 static void convert_pseudo_ld_imm64(struct bpf_verifier_env *env) 18568 { 18569 struct bpf_insn *insn = env->prog->insnsi; 18570 int insn_cnt = env->prog->len; 18571 int i; 18572 18573 for (i = 0; i < insn_cnt; i++, insn++) { 18574 if (insn->code != (BPF_LD | BPF_IMM | BPF_DW)) 18575 continue; 18576 if (insn->src_reg == BPF_PSEUDO_FUNC) 18577 continue; 18578 insn->src_reg = 0; 18579 } 18580 } 18581 18582 static void release_insn_arrays(struct bpf_verifier_env *env) 18583 { 18584 int i; 18585 18586 for (i = 0; i < env->insn_array_map_cnt; i++) 18587 bpf_insn_array_release(env->insn_array_maps[i]); 18588 } 18589 18590 18591 18592 /* The verifier does more data flow analysis than llvm and will not 18593 * explore branches that are dead at run time. Malicious programs can 18594 * have dead code too. Therefore replace all dead at-run-time code 18595 * with 'ja -1'. 18596 * 18597 * Just nops are not optimal, e.g. if they would sit at the end of the 18598 * program and through another bug we would manage to jump there, then 18599 * we'd execute beyond program memory otherwise. Returning exception 18600 * code also wouldn't work since we can have subprogs where the dead 18601 * code could be located. 18602 */ 18603 static void sanitize_dead_code(struct bpf_verifier_env *env) 18604 { 18605 struct bpf_insn_aux_data *aux_data = env->insn_aux_data; 18606 struct bpf_insn trap = BPF_JMP_IMM(BPF_JA, 0, 0, -1); 18607 struct bpf_insn *insn = env->prog->insnsi; 18608 const int insn_cnt = env->prog->len; 18609 int i; 18610 18611 for (i = 0; i < insn_cnt; i++) { 18612 if (aux_data[i].seen) 18613 continue; 18614 memcpy(insn + i, &trap, sizeof(trap)); 18615 aux_data[i].zext_dst = false; 18616 } 18617 } 18618 18619 18620 18621 static void free_states(struct bpf_verifier_env *env) 18622 { 18623 struct bpf_verifier_state_list *sl; 18624 struct list_head *head, *pos, *tmp; 18625 struct bpf_scc_info *info; 18626 int i, j; 18627 18628 bpf_free_verifier_state(env->cur_state, true); 18629 env->cur_state = NULL; 18630 while (!pop_stack(env, NULL, NULL, false)); 18631 18632 list_for_each_safe(pos, tmp, &env->free_list) { 18633 sl = container_of(pos, struct bpf_verifier_state_list, node); 18634 bpf_free_verifier_state(&sl->state, false); 18635 kfree(sl); 18636 } 18637 INIT_LIST_HEAD(&env->free_list); 18638 18639 for (i = 0; i < env->scc_cnt; ++i) { 18640 info = env->scc_info[i]; 18641 if (!info) 18642 continue; 18643 for (j = 0; j < info->num_visits; j++) 18644 bpf_free_backedges(&info->visits[j]); 18645 kvfree(info); 18646 env->scc_info[i] = NULL; 18647 } 18648 18649 if (!env->explored_states) 18650 return; 18651 18652 for (i = 0; i < state_htab_size(env); i++) { 18653 head = &env->explored_states[i]; 18654 18655 list_for_each_safe(pos, tmp, head) { 18656 sl = container_of(pos, struct bpf_verifier_state_list, node); 18657 bpf_free_verifier_state(&sl->state, false); 18658 kfree(sl); 18659 } 18660 INIT_LIST_HEAD(&env->explored_states[i]); 18661 } 18662 } 18663 18664 static int do_check_common(struct bpf_verifier_env *env, int subprog) 18665 { 18666 bool pop_log = !(env->log.level & BPF_LOG_LEVEL2); 18667 struct bpf_subprog_info *sub = subprog_info(env, subprog); 18668 struct bpf_prog_aux *aux = env->prog->aux; 18669 struct bpf_verifier_state *state; 18670 struct bpf_reg_state *regs; 18671 int ret, i; 18672 18673 env->prev_linfo = NULL; 18674 env->pass_cnt++; 18675 18676 state = kzalloc_obj(struct bpf_verifier_state, GFP_KERNEL_ACCOUNT); 18677 if (!state) 18678 return -ENOMEM; 18679 state->curframe = 0; 18680 state->speculative = false; 18681 state->branches = 1; 18682 state->in_sleepable = env->prog->sleepable; 18683 state->frame[0] = kzalloc_obj(struct bpf_func_state, GFP_KERNEL_ACCOUNT); 18684 if (!state->frame[0]) { 18685 kfree(state); 18686 return -ENOMEM; 18687 } 18688 env->cur_state = state; 18689 init_func_state(env, state->frame[0], 18690 BPF_MAIN_FUNC /* callsite */, 18691 0 /* frameno */, 18692 subprog); 18693 state->first_insn_idx = env->subprog_info[subprog].start; 18694 state->last_insn_idx = -1; 18695 18696 regs = state->frame[state->curframe]->regs; 18697 if (subprog || env->prog->type == BPF_PROG_TYPE_EXT) { 18698 const char *sub_name = subprog_name(env, subprog); 18699 struct bpf_subprog_arg_info *arg; 18700 struct bpf_reg_state *reg; 18701 18702 if (env->log.level & BPF_LOG_LEVEL) 18703 verbose(env, "Validating %s() func#%d...\n", sub_name, subprog); 18704 ret = btf_prepare_func_args(env, subprog); 18705 if (ret) 18706 goto out; 18707 18708 if (subprog_is_exc_cb(env, subprog)) { 18709 state->frame[0]->in_exception_callback_fn = true; 18710 18711 /* 18712 * Global functions are scalar or void, make sure 18713 * we return a scalar. 18714 */ 18715 if (subprog_returns_void(env, subprog)) { 18716 verbose(env, "exception cb cannot return void\n"); 18717 ret = -EINVAL; 18718 goto out; 18719 } 18720 18721 /* Also ensure the callback only has a single scalar argument. */ 18722 if (sub->arg_cnt != 1 || sub->args[0].arg_type != ARG_ANYTHING) { 18723 verbose(env, "exception cb only supports single integer argument\n"); 18724 ret = -EINVAL; 18725 goto out; 18726 } 18727 } 18728 for (i = BPF_REG_1; i <= sub->arg_cnt; i++) { 18729 arg = &sub->args[i - BPF_REG_1]; 18730 reg = ®s[i]; 18731 18732 if (arg->arg_type == ARG_PTR_TO_CTX) { 18733 reg->type = PTR_TO_CTX; 18734 mark_reg_known_zero(env, regs, i); 18735 } else if (arg->arg_type == ARG_ANYTHING) { 18736 reg->type = SCALAR_VALUE; 18737 mark_reg_unknown(env, regs, i); 18738 } else if (arg->arg_type == (ARG_PTR_TO_DYNPTR | MEM_RDONLY)) { 18739 /* assume unspecial LOCAL dynptr type */ 18740 __mark_dynptr_reg(reg, BPF_DYNPTR_TYPE_LOCAL, true, ++env->id_gen); 18741 } else if (base_type(arg->arg_type) == ARG_PTR_TO_MEM) { 18742 reg->type = PTR_TO_MEM; 18743 reg->type |= arg->arg_type & 18744 (PTR_MAYBE_NULL | PTR_UNTRUSTED | MEM_RDONLY); 18745 mark_reg_known_zero(env, regs, i); 18746 reg->mem_size = arg->mem_size; 18747 if (arg->arg_type & PTR_MAYBE_NULL) 18748 reg->id = ++env->id_gen; 18749 } else if (base_type(arg->arg_type) == ARG_PTR_TO_BTF_ID) { 18750 reg->type = PTR_TO_BTF_ID; 18751 if (arg->arg_type & PTR_MAYBE_NULL) 18752 reg->type |= PTR_MAYBE_NULL; 18753 if (arg->arg_type & PTR_UNTRUSTED) 18754 reg->type |= PTR_UNTRUSTED; 18755 if (arg->arg_type & PTR_TRUSTED) 18756 reg->type |= PTR_TRUSTED; 18757 mark_reg_known_zero(env, regs, i); 18758 reg->btf = bpf_get_btf_vmlinux(); /* can't fail at this point */ 18759 reg->btf_id = arg->btf_id; 18760 reg->id = ++env->id_gen; 18761 } else if (base_type(arg->arg_type) == ARG_PTR_TO_ARENA) { 18762 /* caller can pass either PTR_TO_ARENA or SCALAR */ 18763 mark_reg_unknown(env, regs, i); 18764 } else { 18765 verifier_bug(env, "unhandled arg#%d type %d", 18766 i - BPF_REG_1, arg->arg_type); 18767 ret = -EFAULT; 18768 goto out; 18769 } 18770 } 18771 } else { 18772 /* if main BPF program has associated BTF info, validate that 18773 * it's matching expected signature, and otherwise mark BTF 18774 * info for main program as unreliable 18775 */ 18776 if (env->prog->aux->func_info_aux) { 18777 ret = btf_prepare_func_args(env, 0); 18778 if (ret || sub->arg_cnt != 1 || sub->args[0].arg_type != ARG_PTR_TO_CTX) 18779 env->prog->aux->func_info_aux[0].unreliable = true; 18780 } 18781 18782 /* 1st arg to a function */ 18783 regs[BPF_REG_1].type = PTR_TO_CTX; 18784 mark_reg_known_zero(env, regs, BPF_REG_1); 18785 } 18786 18787 /* Acquire references for struct_ops program arguments tagged with "__ref" */ 18788 if (!subprog && env->prog->type == BPF_PROG_TYPE_STRUCT_OPS) { 18789 for (i = 0; i < aux->ctx_arg_info_size; i++) 18790 aux->ctx_arg_info[i].ref_obj_id = aux->ctx_arg_info[i].refcounted ? 18791 acquire_reference(env, 0) : 0; 18792 } 18793 18794 ret = do_check(env); 18795 out: 18796 if (!ret && pop_log) 18797 bpf_vlog_reset(&env->log, 0); 18798 free_states(env); 18799 return ret; 18800 } 18801 18802 /* Lazily verify all global functions based on their BTF, if they are called 18803 * from main BPF program or any of subprograms transitively. 18804 * BPF global subprogs called from dead code are not validated. 18805 * All callable global functions must pass verification. 18806 * Otherwise the whole program is rejected. 18807 * Consider: 18808 * int bar(int); 18809 * int foo(int f) 18810 * { 18811 * return bar(f); 18812 * } 18813 * int bar(int b) 18814 * { 18815 * ... 18816 * } 18817 * foo() will be verified first for R1=any_scalar_value. During verification it 18818 * will be assumed that bar() already verified successfully and call to bar() 18819 * from foo() will be checked for type match only. Later bar() will be verified 18820 * independently to check that it's safe for R1=any_scalar_value. 18821 */ 18822 static int do_check_subprogs(struct bpf_verifier_env *env) 18823 { 18824 struct bpf_prog_aux *aux = env->prog->aux; 18825 struct bpf_func_info_aux *sub_aux; 18826 int i, ret, new_cnt; 18827 18828 if (!aux->func_info) 18829 return 0; 18830 18831 /* exception callback is presumed to be always called */ 18832 if (env->exception_callback_subprog) 18833 subprog_aux(env, env->exception_callback_subprog)->called = true; 18834 18835 again: 18836 new_cnt = 0; 18837 for (i = 1; i < env->subprog_cnt; i++) { 18838 if (!bpf_subprog_is_global(env, i)) 18839 continue; 18840 18841 sub_aux = subprog_aux(env, i); 18842 if (!sub_aux->called || sub_aux->verified) 18843 continue; 18844 18845 env->insn_idx = env->subprog_info[i].start; 18846 WARN_ON_ONCE(env->insn_idx == 0); 18847 ret = do_check_common(env, i); 18848 if (ret) { 18849 return ret; 18850 } else if (env->log.level & BPF_LOG_LEVEL) { 18851 verbose(env, "Func#%d ('%s') is safe for any args that match its prototype\n", 18852 i, subprog_name(env, i)); 18853 } 18854 18855 /* We verified new global subprog, it might have called some 18856 * more global subprogs that we haven't verified yet, so we 18857 * need to do another pass over subprogs to verify those. 18858 */ 18859 sub_aux->verified = true; 18860 new_cnt++; 18861 } 18862 18863 /* We can't loop forever as we verify at least one global subprog on 18864 * each pass. 18865 */ 18866 if (new_cnt) 18867 goto again; 18868 18869 return 0; 18870 } 18871 18872 static int do_check_main(struct bpf_verifier_env *env) 18873 { 18874 int ret; 18875 18876 env->insn_idx = 0; 18877 ret = do_check_common(env, 0); 18878 if (!ret) 18879 env->prog->aux->stack_depth = env->subprog_info[0].stack_depth; 18880 return ret; 18881 } 18882 18883 18884 static void print_verification_stats(struct bpf_verifier_env *env) 18885 { 18886 int i; 18887 18888 if (env->log.level & BPF_LOG_STATS) { 18889 verbose(env, "verification time %lld usec\n", 18890 div_u64(env->verification_time, 1000)); 18891 verbose(env, "stack depth "); 18892 for (i = 0; i < env->subprog_cnt; i++) { 18893 u32 depth = env->subprog_info[i].stack_depth; 18894 18895 verbose(env, "%d", depth); 18896 if (i + 1 < env->subprog_cnt) 18897 verbose(env, "+"); 18898 } 18899 verbose(env, "\n"); 18900 } 18901 verbose(env, "processed %d insns (limit %d) max_states_per_insn %d " 18902 "total_states %d peak_states %d mark_read %d\n", 18903 env->insn_processed, BPF_COMPLEXITY_LIMIT_INSNS, 18904 env->max_states_per_insn, env->total_states, 18905 env->peak_states, env->longest_mark_read_walk); 18906 } 18907 18908 int bpf_prog_ctx_arg_info_init(struct bpf_prog *prog, 18909 const struct bpf_ctx_arg_aux *info, u32 cnt) 18910 { 18911 prog->aux->ctx_arg_info = kmemdup_array(info, cnt, sizeof(*info), GFP_KERNEL_ACCOUNT); 18912 prog->aux->ctx_arg_info_size = cnt; 18913 18914 return prog->aux->ctx_arg_info ? 0 : -ENOMEM; 18915 } 18916 18917 static int check_struct_ops_btf_id(struct bpf_verifier_env *env) 18918 { 18919 const struct btf_type *t, *func_proto; 18920 const struct bpf_struct_ops_desc *st_ops_desc; 18921 const struct bpf_struct_ops *st_ops; 18922 const struct btf_member *member; 18923 struct bpf_prog *prog = env->prog; 18924 bool has_refcounted_arg = false; 18925 u32 btf_id, member_idx, member_off; 18926 struct btf *btf; 18927 const char *mname; 18928 int i, err; 18929 18930 if (!prog->gpl_compatible) { 18931 verbose(env, "struct ops programs must have a GPL compatible license\n"); 18932 return -EINVAL; 18933 } 18934 18935 if (!prog->aux->attach_btf_id) 18936 return -ENOTSUPP; 18937 18938 btf = prog->aux->attach_btf; 18939 if (btf_is_module(btf)) { 18940 /* Make sure st_ops is valid through the lifetime of env */ 18941 env->attach_btf_mod = btf_try_get_module(btf); 18942 if (!env->attach_btf_mod) { 18943 verbose(env, "struct_ops module %s is not found\n", 18944 btf_get_name(btf)); 18945 return -ENOTSUPP; 18946 } 18947 } 18948 18949 btf_id = prog->aux->attach_btf_id; 18950 st_ops_desc = bpf_struct_ops_find(btf, btf_id); 18951 if (!st_ops_desc) { 18952 verbose(env, "attach_btf_id %u is not a supported struct\n", 18953 btf_id); 18954 return -ENOTSUPP; 18955 } 18956 st_ops = st_ops_desc->st_ops; 18957 18958 t = st_ops_desc->type; 18959 member_idx = prog->expected_attach_type; 18960 if (member_idx >= btf_type_vlen(t)) { 18961 verbose(env, "attach to invalid member idx %u of struct %s\n", 18962 member_idx, st_ops->name); 18963 return -EINVAL; 18964 } 18965 18966 member = &btf_type_member(t)[member_idx]; 18967 mname = btf_name_by_offset(btf, member->name_off); 18968 func_proto = btf_type_resolve_func_ptr(btf, member->type, 18969 NULL); 18970 if (!func_proto) { 18971 verbose(env, "attach to invalid member %s(@idx %u) of struct %s\n", 18972 mname, member_idx, st_ops->name); 18973 return -EINVAL; 18974 } 18975 18976 member_off = __btf_member_bit_offset(t, member) / 8; 18977 err = bpf_struct_ops_supported(st_ops, member_off); 18978 if (err) { 18979 verbose(env, "attach to unsupported member %s of struct %s\n", 18980 mname, st_ops->name); 18981 return err; 18982 } 18983 18984 if (st_ops->check_member) { 18985 err = st_ops->check_member(t, member, prog); 18986 18987 if (err) { 18988 verbose(env, "attach to unsupported member %s of struct %s\n", 18989 mname, st_ops->name); 18990 return err; 18991 } 18992 } 18993 18994 if (prog->aux->priv_stack_requested && !bpf_jit_supports_private_stack()) { 18995 verbose(env, "Private stack not supported by jit\n"); 18996 return -EACCES; 18997 } 18998 18999 for (i = 0; i < st_ops_desc->arg_info[member_idx].cnt; i++) { 19000 if (st_ops_desc->arg_info[member_idx].info[i].refcounted) { 19001 has_refcounted_arg = true; 19002 break; 19003 } 19004 } 19005 19006 /* Tail call is not allowed for programs with refcounted arguments since we 19007 * cannot guarantee that valid refcounted kptrs will be passed to the callee. 19008 */ 19009 for (i = 0; i < env->subprog_cnt; i++) { 19010 if (has_refcounted_arg && env->subprog_info[i].has_tail_call) { 19011 verbose(env, "program with __ref argument cannot tail call\n"); 19012 return -EINVAL; 19013 } 19014 } 19015 19016 prog->aux->st_ops = st_ops; 19017 prog->aux->attach_st_ops_member_off = member_off; 19018 19019 prog->aux->attach_func_proto = func_proto; 19020 prog->aux->attach_func_name = mname; 19021 env->ops = st_ops->verifier_ops; 19022 19023 return bpf_prog_ctx_arg_info_init(prog, st_ops_desc->arg_info[member_idx].info, 19024 st_ops_desc->arg_info[member_idx].cnt); 19025 } 19026 #define SECURITY_PREFIX "security_" 19027 19028 #ifdef CONFIG_FUNCTION_ERROR_INJECTION 19029 19030 /* list of non-sleepable functions that are otherwise on 19031 * ALLOW_ERROR_INJECTION list 19032 */ 19033 BTF_SET_START(btf_non_sleepable_error_inject) 19034 /* Three functions below can be called from sleepable and non-sleepable context. 19035 * Assume non-sleepable from bpf safety point of view. 19036 */ 19037 BTF_ID(func, __filemap_add_folio) 19038 #ifdef CONFIG_FAIL_PAGE_ALLOC 19039 BTF_ID(func, should_fail_alloc_page) 19040 #endif 19041 #ifdef CONFIG_FAILSLAB 19042 BTF_ID(func, should_failslab) 19043 #endif 19044 BTF_SET_END(btf_non_sleepable_error_inject) 19045 19046 static int check_non_sleepable_error_inject(u32 btf_id) 19047 { 19048 return btf_id_set_contains(&btf_non_sleepable_error_inject, btf_id); 19049 } 19050 19051 static int check_attach_sleepable(u32 btf_id, unsigned long addr, const char *func_name) 19052 { 19053 /* fentry/fexit/fmod_ret progs can be sleepable if they are 19054 * attached to ALLOW_ERROR_INJECTION and are not in denylist. 19055 */ 19056 if (!check_non_sleepable_error_inject(btf_id) && 19057 within_error_injection_list(addr)) 19058 return 0; 19059 19060 return -EINVAL; 19061 } 19062 19063 static int check_attach_modify_return(unsigned long addr, const char *func_name) 19064 { 19065 if (within_error_injection_list(addr) || 19066 !strncmp(SECURITY_PREFIX, func_name, sizeof(SECURITY_PREFIX) - 1)) 19067 return 0; 19068 19069 return -EINVAL; 19070 } 19071 19072 #else 19073 19074 /* Unfortunately, the arch-specific prefixes are hard-coded in arch syscall code 19075 * so we need to hard-code them, too. Ftrace has arch_syscall_match_sym_name() 19076 * but that just compares two concrete function names. 19077 */ 19078 static bool has_arch_syscall_prefix(const char *func_name) 19079 { 19080 #if defined(__x86_64__) 19081 return !strncmp(func_name, "__x64_", 6); 19082 #elif defined(__i386__) 19083 return !strncmp(func_name, "__ia32_", 7); 19084 #elif defined(__s390x__) 19085 return !strncmp(func_name, "__s390x_", 8); 19086 #elif defined(__aarch64__) 19087 return !strncmp(func_name, "__arm64_", 8); 19088 #elif defined(__riscv) 19089 return !strncmp(func_name, "__riscv_", 8); 19090 #elif defined(__powerpc__) || defined(__powerpc64__) 19091 return !strncmp(func_name, "sys_", 4); 19092 #elif defined(__loongarch__) 19093 return !strncmp(func_name, "sys_", 4); 19094 #else 19095 return false; 19096 #endif 19097 } 19098 19099 /* Without error injection, allow sleepable and fmod_ret progs on syscalls. */ 19100 19101 static int check_attach_sleepable(u32 btf_id, unsigned long addr, const char *func_name) 19102 { 19103 if (has_arch_syscall_prefix(func_name)) 19104 return 0; 19105 19106 return -EINVAL; 19107 } 19108 19109 static int check_attach_modify_return(unsigned long addr, const char *func_name) 19110 { 19111 if (has_arch_syscall_prefix(func_name) || 19112 !strncmp(SECURITY_PREFIX, func_name, sizeof(SECURITY_PREFIX) - 1)) 19113 return 0; 19114 19115 return -EINVAL; 19116 } 19117 19118 #endif /* CONFIG_FUNCTION_ERROR_INJECTION */ 19119 19120 int bpf_check_attach_target(struct bpf_verifier_log *log, 19121 const struct bpf_prog *prog, 19122 const struct bpf_prog *tgt_prog, 19123 u32 btf_id, 19124 struct bpf_attach_target_info *tgt_info) 19125 { 19126 bool prog_extension = prog->type == BPF_PROG_TYPE_EXT; 19127 bool prog_tracing = prog->type == BPF_PROG_TYPE_TRACING; 19128 char trace_symbol[KSYM_SYMBOL_LEN]; 19129 const char prefix[] = "btf_trace_"; 19130 struct bpf_raw_event_map *btp; 19131 int ret = 0, subprog = -1, i; 19132 const struct btf_type *t; 19133 bool conservative = true; 19134 const char *tname, *fname; 19135 struct btf *btf; 19136 long addr = 0; 19137 struct module *mod = NULL; 19138 19139 if (!btf_id) { 19140 bpf_log(log, "Tracing programs must provide btf_id\n"); 19141 return -EINVAL; 19142 } 19143 btf = tgt_prog ? tgt_prog->aux->btf : prog->aux->attach_btf; 19144 if (!btf) { 19145 bpf_log(log, 19146 "Tracing program can only be attached to another program annotated with BTF\n"); 19147 return -EINVAL; 19148 } 19149 t = btf_type_by_id(btf, btf_id); 19150 if (!t) { 19151 bpf_log(log, "attach_btf_id %u is invalid\n", btf_id); 19152 return -EINVAL; 19153 } 19154 tname = btf_name_by_offset(btf, t->name_off); 19155 if (!tname) { 19156 bpf_log(log, "attach_btf_id %u doesn't have a name\n", btf_id); 19157 return -EINVAL; 19158 } 19159 if (tgt_prog) { 19160 struct bpf_prog_aux *aux = tgt_prog->aux; 19161 bool tgt_changes_pkt_data; 19162 bool tgt_might_sleep; 19163 19164 if (bpf_prog_is_dev_bound(prog->aux) && 19165 !bpf_prog_dev_bound_match(prog, tgt_prog)) { 19166 bpf_log(log, "Target program bound device mismatch"); 19167 return -EINVAL; 19168 } 19169 19170 for (i = 0; i < aux->func_info_cnt; i++) 19171 if (aux->func_info[i].type_id == btf_id) { 19172 subprog = i; 19173 break; 19174 } 19175 if (subprog == -1) { 19176 bpf_log(log, "Subprog %s doesn't exist\n", tname); 19177 return -EINVAL; 19178 } 19179 if (aux->func && aux->func[subprog]->aux->exception_cb) { 19180 bpf_log(log, 19181 "%s programs cannot attach to exception callback\n", 19182 prog_extension ? "Extension" : "Tracing"); 19183 return -EINVAL; 19184 } 19185 conservative = aux->func_info_aux[subprog].unreliable; 19186 if (prog_extension) { 19187 if (conservative) { 19188 bpf_log(log, 19189 "Cannot replace static functions\n"); 19190 return -EINVAL; 19191 } 19192 if (!prog->jit_requested) { 19193 bpf_log(log, 19194 "Extension programs should be JITed\n"); 19195 return -EINVAL; 19196 } 19197 tgt_changes_pkt_data = aux->func 19198 ? aux->func[subprog]->aux->changes_pkt_data 19199 : aux->changes_pkt_data; 19200 if (prog->aux->changes_pkt_data && !tgt_changes_pkt_data) { 19201 bpf_log(log, 19202 "Extension program changes packet data, while original does not\n"); 19203 return -EINVAL; 19204 } 19205 19206 tgt_might_sleep = aux->func 19207 ? aux->func[subprog]->aux->might_sleep 19208 : aux->might_sleep; 19209 if (prog->aux->might_sleep && !tgt_might_sleep) { 19210 bpf_log(log, 19211 "Extension program may sleep, while original does not\n"); 19212 return -EINVAL; 19213 } 19214 } 19215 if (!tgt_prog->jited) { 19216 bpf_log(log, "Can attach to only JITed progs\n"); 19217 return -EINVAL; 19218 } 19219 if (prog_tracing) { 19220 if (aux->attach_tracing_prog) { 19221 /* 19222 * Target program is an fentry/fexit which is already attached 19223 * to another tracing program. More levels of nesting 19224 * attachment are not allowed. 19225 */ 19226 bpf_log(log, "Cannot nest tracing program attach more than once\n"); 19227 return -EINVAL; 19228 } 19229 } else if (tgt_prog->type == prog->type) { 19230 /* 19231 * To avoid potential call chain cycles, prevent attaching of a 19232 * program extension to another extension. It's ok to attach 19233 * fentry/fexit to extension program. 19234 */ 19235 bpf_log(log, "Cannot recursively attach\n"); 19236 return -EINVAL; 19237 } 19238 if (tgt_prog->type == BPF_PROG_TYPE_TRACING && 19239 prog_extension && 19240 (tgt_prog->expected_attach_type == BPF_TRACE_FENTRY || 19241 tgt_prog->expected_attach_type == BPF_TRACE_FEXIT || 19242 tgt_prog->expected_attach_type == BPF_TRACE_FSESSION)) { 19243 /* Program extensions can extend all program types 19244 * except fentry/fexit. The reason is the following. 19245 * The fentry/fexit programs are used for performance 19246 * analysis, stats and can be attached to any program 19247 * type. When extension program is replacing XDP function 19248 * it is necessary to allow performance analysis of all 19249 * functions. Both original XDP program and its program 19250 * extension. Hence attaching fentry/fexit to 19251 * BPF_PROG_TYPE_EXT is allowed. If extending of 19252 * fentry/fexit was allowed it would be possible to create 19253 * long call chain fentry->extension->fentry->extension 19254 * beyond reasonable stack size. Hence extending fentry 19255 * is not allowed. 19256 */ 19257 bpf_log(log, "Cannot extend fentry/fexit/fsession\n"); 19258 return -EINVAL; 19259 } 19260 } else { 19261 if (prog_extension) { 19262 bpf_log(log, "Cannot replace kernel functions\n"); 19263 return -EINVAL; 19264 } 19265 } 19266 19267 switch (prog->expected_attach_type) { 19268 case BPF_TRACE_RAW_TP: 19269 if (tgt_prog) { 19270 bpf_log(log, 19271 "Only FENTRY/FEXIT/FSESSION progs are attachable to another BPF prog\n"); 19272 return -EINVAL; 19273 } 19274 if (!btf_type_is_typedef(t)) { 19275 bpf_log(log, "attach_btf_id %u is not a typedef\n", 19276 btf_id); 19277 return -EINVAL; 19278 } 19279 if (strncmp(prefix, tname, sizeof(prefix) - 1)) { 19280 bpf_log(log, "attach_btf_id %u points to wrong type name %s\n", 19281 btf_id, tname); 19282 return -EINVAL; 19283 } 19284 tname += sizeof(prefix) - 1; 19285 19286 /* The func_proto of "btf_trace_##tname" is generated from typedef without argument 19287 * names. Thus using bpf_raw_event_map to get argument names. 19288 */ 19289 btp = bpf_get_raw_tracepoint(tname); 19290 if (!btp) 19291 return -EINVAL; 19292 fname = kallsyms_lookup((unsigned long)btp->bpf_func, NULL, NULL, NULL, 19293 trace_symbol); 19294 bpf_put_raw_tracepoint(btp); 19295 19296 if (fname) 19297 ret = btf_find_by_name_kind(btf, fname, BTF_KIND_FUNC); 19298 19299 if (!fname || ret < 0) { 19300 bpf_log(log, "Cannot find btf of tracepoint template, fall back to %s%s.\n", 19301 prefix, tname); 19302 t = btf_type_by_id(btf, t->type); 19303 if (!btf_type_is_ptr(t)) 19304 /* should never happen in valid vmlinux build */ 19305 return -EINVAL; 19306 } else { 19307 t = btf_type_by_id(btf, ret); 19308 if (!btf_type_is_func(t)) 19309 /* should never happen in valid vmlinux build */ 19310 return -EINVAL; 19311 } 19312 19313 t = btf_type_by_id(btf, t->type); 19314 if (!btf_type_is_func_proto(t)) 19315 /* should never happen in valid vmlinux build */ 19316 return -EINVAL; 19317 19318 break; 19319 case BPF_TRACE_ITER: 19320 if (!btf_type_is_func(t)) { 19321 bpf_log(log, "attach_btf_id %u is not a function\n", 19322 btf_id); 19323 return -EINVAL; 19324 } 19325 t = btf_type_by_id(btf, t->type); 19326 if (!btf_type_is_func_proto(t)) 19327 return -EINVAL; 19328 ret = btf_distill_func_proto(log, btf, t, tname, &tgt_info->fmodel); 19329 if (ret) 19330 return ret; 19331 break; 19332 default: 19333 if (!prog_extension) 19334 return -EINVAL; 19335 fallthrough; 19336 case BPF_MODIFY_RETURN: 19337 case BPF_LSM_MAC: 19338 case BPF_LSM_CGROUP: 19339 case BPF_TRACE_FENTRY: 19340 case BPF_TRACE_FEXIT: 19341 case BPF_TRACE_FSESSION: 19342 if (prog->expected_attach_type == BPF_TRACE_FSESSION && 19343 !bpf_jit_supports_fsession()) { 19344 bpf_log(log, "JIT does not support fsession\n"); 19345 return -EOPNOTSUPP; 19346 } 19347 if (!btf_type_is_func(t)) { 19348 bpf_log(log, "attach_btf_id %u is not a function\n", 19349 btf_id); 19350 return -EINVAL; 19351 } 19352 if (prog_extension && 19353 btf_check_type_match(log, prog, btf, t)) 19354 return -EINVAL; 19355 t = btf_type_by_id(btf, t->type); 19356 if (!btf_type_is_func_proto(t)) 19357 return -EINVAL; 19358 19359 if ((prog->aux->saved_dst_prog_type || prog->aux->saved_dst_attach_type) && 19360 (!tgt_prog || prog->aux->saved_dst_prog_type != tgt_prog->type || 19361 prog->aux->saved_dst_attach_type != tgt_prog->expected_attach_type)) 19362 return -EINVAL; 19363 19364 if (tgt_prog && conservative) 19365 t = NULL; 19366 19367 ret = btf_distill_func_proto(log, btf, t, tname, &tgt_info->fmodel); 19368 if (ret < 0) 19369 return ret; 19370 19371 if (tgt_prog) { 19372 if (subprog == 0) 19373 addr = (long) tgt_prog->bpf_func; 19374 else 19375 addr = (long) tgt_prog->aux->func[subprog]->bpf_func; 19376 } else { 19377 if (btf_is_module(btf)) { 19378 mod = btf_try_get_module(btf); 19379 if (mod) 19380 addr = find_kallsyms_symbol_value(mod, tname); 19381 else 19382 addr = 0; 19383 } else { 19384 addr = kallsyms_lookup_name(tname); 19385 } 19386 if (!addr) { 19387 module_put(mod); 19388 bpf_log(log, 19389 "The address of function %s cannot be found\n", 19390 tname); 19391 return -ENOENT; 19392 } 19393 } 19394 19395 if (prog->sleepable) { 19396 ret = -EINVAL; 19397 switch (prog->type) { 19398 case BPF_PROG_TYPE_TRACING: 19399 if (!check_attach_sleepable(btf_id, addr, tname)) 19400 ret = 0; 19401 /* fentry/fexit/fmod_ret progs can also be sleepable if they are 19402 * in the fmodret id set with the KF_SLEEPABLE flag. 19403 */ 19404 else { 19405 u32 *flags = btf_kfunc_is_modify_return(btf, btf_id, 19406 prog); 19407 19408 if (flags && (*flags & KF_SLEEPABLE)) 19409 ret = 0; 19410 } 19411 break; 19412 case BPF_PROG_TYPE_LSM: 19413 /* LSM progs check that they are attached to bpf_lsm_*() funcs. 19414 * Only some of them are sleepable. 19415 */ 19416 if (bpf_lsm_is_sleepable_hook(btf_id)) 19417 ret = 0; 19418 break; 19419 default: 19420 break; 19421 } 19422 if (ret) { 19423 module_put(mod); 19424 bpf_log(log, "%s is not sleepable\n", tname); 19425 return ret; 19426 } 19427 } else if (prog->expected_attach_type == BPF_MODIFY_RETURN) { 19428 if (tgt_prog) { 19429 module_put(mod); 19430 bpf_log(log, "can't modify return codes of BPF programs\n"); 19431 return -EINVAL; 19432 } 19433 ret = -EINVAL; 19434 if (btf_kfunc_is_modify_return(btf, btf_id, prog) || 19435 !check_attach_modify_return(addr, tname)) 19436 ret = 0; 19437 if (ret) { 19438 module_put(mod); 19439 bpf_log(log, "%s() is not modifiable\n", tname); 19440 return ret; 19441 } 19442 } 19443 19444 break; 19445 } 19446 tgt_info->tgt_addr = addr; 19447 tgt_info->tgt_name = tname; 19448 tgt_info->tgt_type = t; 19449 tgt_info->tgt_mod = mod; 19450 return 0; 19451 } 19452 19453 BTF_SET_START(btf_id_deny) 19454 BTF_ID_UNUSED 19455 #ifdef CONFIG_SMP 19456 BTF_ID(func, ___migrate_enable) 19457 BTF_ID(func, migrate_disable) 19458 BTF_ID(func, migrate_enable) 19459 #endif 19460 #if !defined CONFIG_PREEMPT_RCU && !defined CONFIG_TINY_RCU 19461 BTF_ID(func, rcu_read_unlock_strict) 19462 #endif 19463 #if defined(CONFIG_DEBUG_PREEMPT) || defined(CONFIG_TRACE_PREEMPT_TOGGLE) 19464 BTF_ID(func, preempt_count_add) 19465 BTF_ID(func, preempt_count_sub) 19466 #endif 19467 #ifdef CONFIG_PREEMPT_RCU 19468 BTF_ID(func, __rcu_read_lock) 19469 BTF_ID(func, __rcu_read_unlock) 19470 #endif 19471 BTF_SET_END(btf_id_deny) 19472 19473 /* fexit and fmod_ret can't be used to attach to __noreturn functions. 19474 * Currently, we must manually list all __noreturn functions here. Once a more 19475 * robust solution is implemented, this workaround can be removed. 19476 */ 19477 BTF_SET_START(noreturn_deny) 19478 #ifdef CONFIG_IA32_EMULATION 19479 BTF_ID(func, __ia32_sys_exit) 19480 BTF_ID(func, __ia32_sys_exit_group) 19481 #endif 19482 #ifdef CONFIG_KUNIT 19483 BTF_ID(func, __kunit_abort) 19484 BTF_ID(func, kunit_try_catch_throw) 19485 #endif 19486 #ifdef CONFIG_MODULES 19487 BTF_ID(func, __module_put_and_kthread_exit) 19488 #endif 19489 #ifdef CONFIG_X86_64 19490 BTF_ID(func, __x64_sys_exit) 19491 BTF_ID(func, __x64_sys_exit_group) 19492 #endif 19493 BTF_ID(func, do_exit) 19494 BTF_ID(func, do_group_exit) 19495 BTF_ID(func, kthread_complete_and_exit) 19496 BTF_ID(func, make_task_dead) 19497 BTF_SET_END(noreturn_deny) 19498 19499 static bool can_be_sleepable(struct bpf_prog *prog) 19500 { 19501 if (prog->type == BPF_PROG_TYPE_TRACING) { 19502 switch (prog->expected_attach_type) { 19503 case BPF_TRACE_FENTRY: 19504 case BPF_TRACE_FEXIT: 19505 case BPF_MODIFY_RETURN: 19506 case BPF_TRACE_ITER: 19507 case BPF_TRACE_FSESSION: 19508 return true; 19509 default: 19510 return false; 19511 } 19512 } 19513 return prog->type == BPF_PROG_TYPE_LSM || 19514 prog->type == BPF_PROG_TYPE_KPROBE /* only for uprobes */ || 19515 prog->type == BPF_PROG_TYPE_STRUCT_OPS; 19516 } 19517 19518 static int check_attach_btf_id(struct bpf_verifier_env *env) 19519 { 19520 struct bpf_prog *prog = env->prog; 19521 struct bpf_prog *tgt_prog = prog->aux->dst_prog; 19522 struct bpf_attach_target_info tgt_info = {}; 19523 u32 btf_id = prog->aux->attach_btf_id; 19524 struct bpf_trampoline *tr; 19525 int ret; 19526 u64 key; 19527 19528 if (prog->type == BPF_PROG_TYPE_SYSCALL) { 19529 if (prog->sleepable) 19530 /* attach_btf_id checked to be zero already */ 19531 return 0; 19532 verbose(env, "Syscall programs can only be sleepable\n"); 19533 return -EINVAL; 19534 } 19535 19536 if (prog->sleepable && !can_be_sleepable(prog)) { 19537 verbose(env, "Only fentry/fexit/fsession/fmod_ret, lsm, iter, uprobe, and struct_ops programs can be sleepable\n"); 19538 return -EINVAL; 19539 } 19540 19541 if (prog->type == BPF_PROG_TYPE_STRUCT_OPS) 19542 return check_struct_ops_btf_id(env); 19543 19544 if (prog->type != BPF_PROG_TYPE_TRACING && 19545 prog->type != BPF_PROG_TYPE_LSM && 19546 prog->type != BPF_PROG_TYPE_EXT) 19547 return 0; 19548 19549 ret = bpf_check_attach_target(&env->log, prog, tgt_prog, btf_id, &tgt_info); 19550 if (ret) 19551 return ret; 19552 19553 if (tgt_prog && prog->type == BPF_PROG_TYPE_EXT) { 19554 /* to make freplace equivalent to their targets, they need to 19555 * inherit env->ops and expected_attach_type for the rest of the 19556 * verification 19557 */ 19558 env->ops = bpf_verifier_ops[tgt_prog->type]; 19559 prog->expected_attach_type = tgt_prog->expected_attach_type; 19560 } 19561 19562 /* store info about the attachment target that will be used later */ 19563 prog->aux->attach_func_proto = tgt_info.tgt_type; 19564 prog->aux->attach_func_name = tgt_info.tgt_name; 19565 prog->aux->mod = tgt_info.tgt_mod; 19566 19567 if (tgt_prog) { 19568 prog->aux->saved_dst_prog_type = tgt_prog->type; 19569 prog->aux->saved_dst_attach_type = tgt_prog->expected_attach_type; 19570 } 19571 19572 if (prog->expected_attach_type == BPF_TRACE_RAW_TP) { 19573 prog->aux->attach_btf_trace = true; 19574 return 0; 19575 } else if (prog->expected_attach_type == BPF_TRACE_ITER) { 19576 return bpf_iter_prog_supported(prog); 19577 } 19578 19579 if (prog->type == BPF_PROG_TYPE_LSM) { 19580 ret = bpf_lsm_verify_prog(&env->log, prog); 19581 if (ret < 0) 19582 return ret; 19583 } else if (prog->type == BPF_PROG_TYPE_TRACING && 19584 btf_id_set_contains(&btf_id_deny, btf_id)) { 19585 verbose(env, "Attaching tracing programs to function '%s' is rejected.\n", 19586 tgt_info.tgt_name); 19587 return -EINVAL; 19588 } else if ((prog->expected_attach_type == BPF_TRACE_FEXIT || 19589 prog->expected_attach_type == BPF_TRACE_FSESSION || 19590 prog->expected_attach_type == BPF_MODIFY_RETURN) && 19591 btf_id_set_contains(&noreturn_deny, btf_id)) { 19592 verbose(env, "Attaching fexit/fsession/fmod_ret to __noreturn function '%s' is rejected.\n", 19593 tgt_info.tgt_name); 19594 return -EINVAL; 19595 } 19596 19597 key = bpf_trampoline_compute_key(tgt_prog, prog->aux->attach_btf, btf_id); 19598 tr = bpf_trampoline_get(key, &tgt_info); 19599 if (!tr) 19600 return -ENOMEM; 19601 19602 if (tgt_prog && tgt_prog->aux->tail_call_reachable) 19603 tr->flags = BPF_TRAMP_F_TAIL_CALL_CTX; 19604 19605 prog->aux->dst_trampoline = tr; 19606 return 0; 19607 } 19608 19609 struct btf *bpf_get_btf_vmlinux(void) 19610 { 19611 if (!btf_vmlinux && IS_ENABLED(CONFIG_DEBUG_INFO_BTF)) { 19612 mutex_lock(&bpf_verifier_lock); 19613 if (!btf_vmlinux) 19614 btf_vmlinux = btf_parse_vmlinux(); 19615 mutex_unlock(&bpf_verifier_lock); 19616 } 19617 return btf_vmlinux; 19618 } 19619 19620 /* 19621 * The add_fd_from_fd_array() is executed only if fd_array_cnt is non-zero. In 19622 * this case expect that every file descriptor in the array is either a map or 19623 * a BTF. Everything else is considered to be trash. 19624 */ 19625 static int add_fd_from_fd_array(struct bpf_verifier_env *env, int fd) 19626 { 19627 struct bpf_map *map; 19628 struct btf *btf; 19629 CLASS(fd, f)(fd); 19630 int err; 19631 19632 map = __bpf_map_get(f); 19633 if (!IS_ERR(map)) { 19634 err = __add_used_map(env, map); 19635 if (err < 0) 19636 return err; 19637 return 0; 19638 } 19639 19640 btf = __btf_get_by_fd(f); 19641 if (!IS_ERR(btf)) { 19642 btf_get(btf); 19643 return __add_used_btf(env, btf); 19644 } 19645 19646 verbose(env, "fd %d is not pointing to valid bpf_map or btf\n", fd); 19647 return PTR_ERR(map); 19648 } 19649 19650 static int process_fd_array(struct bpf_verifier_env *env, union bpf_attr *attr, bpfptr_t uattr) 19651 { 19652 size_t size = sizeof(int); 19653 int ret; 19654 int fd; 19655 u32 i; 19656 19657 env->fd_array = make_bpfptr(attr->fd_array, uattr.is_kernel); 19658 19659 /* 19660 * The only difference between old (no fd_array_cnt is given) and new 19661 * APIs is that in the latter case the fd_array is expected to be 19662 * continuous and is scanned for map fds right away 19663 */ 19664 if (!attr->fd_array_cnt) 19665 return 0; 19666 19667 /* Check for integer overflow */ 19668 if (attr->fd_array_cnt >= (U32_MAX / size)) { 19669 verbose(env, "fd_array_cnt is too big (%u)\n", attr->fd_array_cnt); 19670 return -EINVAL; 19671 } 19672 19673 for (i = 0; i < attr->fd_array_cnt; i++) { 19674 if (copy_from_bpfptr_offset(&fd, env->fd_array, i * size, size)) 19675 return -EFAULT; 19676 19677 ret = add_fd_from_fd_array(env, fd); 19678 if (ret) 19679 return ret; 19680 } 19681 19682 return 0; 19683 } 19684 19685 /* replace a generic kfunc with a specialized version if necessary */ 19686 static int specialize_kfunc(struct bpf_verifier_env *env, struct bpf_kfunc_desc *desc, int insn_idx) 19687 { 19688 struct bpf_prog *prog = env->prog; 19689 bool seen_direct_write; 19690 void *xdp_kfunc; 19691 bool is_rdonly; 19692 u32 func_id = desc->func_id; 19693 u16 offset = desc->offset; 19694 unsigned long addr = desc->addr; 19695 19696 if (offset) /* return if module BTF is used */ 19697 return 0; 19698 19699 if (bpf_dev_bound_kfunc_id(func_id)) { 19700 xdp_kfunc = bpf_dev_bound_resolve_kfunc(prog, func_id); 19701 if (xdp_kfunc) 19702 addr = (unsigned long)xdp_kfunc; 19703 /* fallback to default kfunc when not supported by netdev */ 19704 } else if (func_id == special_kfunc_list[KF_bpf_dynptr_from_skb]) { 19705 seen_direct_write = env->seen_direct_write; 19706 is_rdonly = !may_access_direct_pkt_data(env, NULL, BPF_WRITE); 19707 19708 if (is_rdonly) 19709 addr = (unsigned long)bpf_dynptr_from_skb_rdonly; 19710 19711 /* restore env->seen_direct_write to its original value, since 19712 * may_access_direct_pkt_data mutates it 19713 */ 19714 env->seen_direct_write = seen_direct_write; 19715 } else if (func_id == special_kfunc_list[KF_bpf_set_dentry_xattr]) { 19716 if (bpf_lsm_has_d_inode_locked(prog)) 19717 addr = (unsigned long)bpf_set_dentry_xattr_locked; 19718 } else if (func_id == special_kfunc_list[KF_bpf_remove_dentry_xattr]) { 19719 if (bpf_lsm_has_d_inode_locked(prog)) 19720 addr = (unsigned long)bpf_remove_dentry_xattr_locked; 19721 } else if (func_id == special_kfunc_list[KF_bpf_dynptr_from_file]) { 19722 if (!env->insn_aux_data[insn_idx].non_sleepable) 19723 addr = (unsigned long)bpf_dynptr_from_file_sleepable; 19724 } else if (func_id == special_kfunc_list[KF_bpf_arena_alloc_pages]) { 19725 if (env->insn_aux_data[insn_idx].non_sleepable) 19726 addr = (unsigned long)bpf_arena_alloc_pages_non_sleepable; 19727 } else if (func_id == special_kfunc_list[KF_bpf_arena_free_pages]) { 19728 if (env->insn_aux_data[insn_idx].non_sleepable) 19729 addr = (unsigned long)bpf_arena_free_pages_non_sleepable; 19730 } 19731 desc->addr = addr; 19732 return 0; 19733 } 19734 19735 static void __fixup_collection_insert_kfunc(struct bpf_insn_aux_data *insn_aux, 19736 u16 struct_meta_reg, 19737 u16 node_offset_reg, 19738 struct bpf_insn *insn, 19739 struct bpf_insn *insn_buf, 19740 int *cnt) 19741 { 19742 struct btf_struct_meta *kptr_struct_meta = insn_aux->kptr_struct_meta; 19743 struct bpf_insn addr[2] = { BPF_LD_IMM64(struct_meta_reg, (long)kptr_struct_meta) }; 19744 19745 insn_buf[0] = addr[0]; 19746 insn_buf[1] = addr[1]; 19747 insn_buf[2] = BPF_MOV64_IMM(node_offset_reg, insn_aux->insert_off); 19748 insn_buf[3] = *insn; 19749 *cnt = 4; 19750 } 19751 19752 int bpf_fixup_kfunc_call(struct bpf_verifier_env *env, struct bpf_insn *insn, 19753 struct bpf_insn *insn_buf, int insn_idx, int *cnt) 19754 { 19755 struct bpf_kfunc_desc *desc; 19756 int err; 19757 19758 if (!insn->imm) { 19759 verbose(env, "invalid kernel function call not eliminated in verifier pass\n"); 19760 return -EINVAL; 19761 } 19762 19763 *cnt = 0; 19764 19765 /* insn->imm has the btf func_id. Replace it with an offset relative to 19766 * __bpf_call_base, unless the JIT needs to call functions that are 19767 * further than 32 bits away (bpf_jit_supports_far_kfunc_call()). 19768 */ 19769 desc = find_kfunc_desc(env->prog, insn->imm, insn->off); 19770 if (!desc) { 19771 verifier_bug(env, "kernel function descriptor not found for func_id %u", 19772 insn->imm); 19773 return -EFAULT; 19774 } 19775 19776 err = specialize_kfunc(env, desc, insn_idx); 19777 if (err) 19778 return err; 19779 19780 if (!bpf_jit_supports_far_kfunc_call()) 19781 insn->imm = BPF_CALL_IMM(desc->addr); 19782 19783 if (is_bpf_obj_new_kfunc(desc->func_id) || is_bpf_percpu_obj_new_kfunc(desc->func_id)) { 19784 struct btf_struct_meta *kptr_struct_meta = env->insn_aux_data[insn_idx].kptr_struct_meta; 19785 struct bpf_insn addr[2] = { BPF_LD_IMM64(BPF_REG_2, (long)kptr_struct_meta) }; 19786 u64 obj_new_size = env->insn_aux_data[insn_idx].obj_new_size; 19787 19788 if (is_bpf_percpu_obj_new_kfunc(desc->func_id) && kptr_struct_meta) { 19789 verifier_bug(env, "NULL kptr_struct_meta expected at insn_idx %d", 19790 insn_idx); 19791 return -EFAULT; 19792 } 19793 19794 insn_buf[0] = BPF_MOV64_IMM(BPF_REG_1, obj_new_size); 19795 insn_buf[1] = addr[0]; 19796 insn_buf[2] = addr[1]; 19797 insn_buf[3] = *insn; 19798 *cnt = 4; 19799 } else if (is_bpf_obj_drop_kfunc(desc->func_id) || 19800 is_bpf_percpu_obj_drop_kfunc(desc->func_id) || 19801 is_bpf_refcount_acquire_kfunc(desc->func_id)) { 19802 struct btf_struct_meta *kptr_struct_meta = env->insn_aux_data[insn_idx].kptr_struct_meta; 19803 struct bpf_insn addr[2] = { BPF_LD_IMM64(BPF_REG_2, (long)kptr_struct_meta) }; 19804 19805 if (is_bpf_percpu_obj_drop_kfunc(desc->func_id) && kptr_struct_meta) { 19806 verifier_bug(env, "NULL kptr_struct_meta expected at insn_idx %d", 19807 insn_idx); 19808 return -EFAULT; 19809 } 19810 19811 if (is_bpf_refcount_acquire_kfunc(desc->func_id) && !kptr_struct_meta) { 19812 verifier_bug(env, "kptr_struct_meta expected at insn_idx %d", 19813 insn_idx); 19814 return -EFAULT; 19815 } 19816 19817 insn_buf[0] = addr[0]; 19818 insn_buf[1] = addr[1]; 19819 insn_buf[2] = *insn; 19820 *cnt = 3; 19821 } else if (is_bpf_list_push_kfunc(desc->func_id) || 19822 is_bpf_rbtree_add_kfunc(desc->func_id)) { 19823 struct btf_struct_meta *kptr_struct_meta = env->insn_aux_data[insn_idx].kptr_struct_meta; 19824 int struct_meta_reg = BPF_REG_3; 19825 int node_offset_reg = BPF_REG_4; 19826 19827 /* rbtree_add has extra 'less' arg, so args-to-fixup are in diff regs */ 19828 if (is_bpf_rbtree_add_kfunc(desc->func_id)) { 19829 struct_meta_reg = BPF_REG_4; 19830 node_offset_reg = BPF_REG_5; 19831 } 19832 19833 if (!kptr_struct_meta) { 19834 verifier_bug(env, "kptr_struct_meta expected at insn_idx %d", 19835 insn_idx); 19836 return -EFAULT; 19837 } 19838 19839 __fixup_collection_insert_kfunc(&env->insn_aux_data[insn_idx], struct_meta_reg, 19840 node_offset_reg, insn, insn_buf, cnt); 19841 } else if (desc->func_id == special_kfunc_list[KF_bpf_cast_to_kern_ctx] || 19842 desc->func_id == special_kfunc_list[KF_bpf_rdonly_cast]) { 19843 insn_buf[0] = BPF_MOV64_REG(BPF_REG_0, BPF_REG_1); 19844 *cnt = 1; 19845 } else if (desc->func_id == special_kfunc_list[KF_bpf_session_is_return] && 19846 env->prog->expected_attach_type == BPF_TRACE_FSESSION) { 19847 /* 19848 * inline the bpf_session_is_return() for fsession: 19849 * bool bpf_session_is_return(void *ctx) 19850 * { 19851 * return (((u64 *)ctx)[-1] >> BPF_TRAMP_IS_RETURN_SHIFT) & 1; 19852 * } 19853 */ 19854 insn_buf[0] = BPF_LDX_MEM(BPF_DW, BPF_REG_0, BPF_REG_1, -8); 19855 insn_buf[1] = BPF_ALU64_IMM(BPF_RSH, BPF_REG_0, BPF_TRAMP_IS_RETURN_SHIFT); 19856 insn_buf[2] = BPF_ALU64_IMM(BPF_AND, BPF_REG_0, 1); 19857 *cnt = 3; 19858 } else if (desc->func_id == special_kfunc_list[KF_bpf_session_cookie] && 19859 env->prog->expected_attach_type == BPF_TRACE_FSESSION) { 19860 /* 19861 * inline bpf_session_cookie() for fsession: 19862 * __u64 *bpf_session_cookie(void *ctx) 19863 * { 19864 * u64 off = (((u64 *)ctx)[-1] >> BPF_TRAMP_COOKIE_INDEX_SHIFT) & 0xFF; 19865 * return &((u64 *)ctx)[-off]; 19866 * } 19867 */ 19868 insn_buf[0] = BPF_LDX_MEM(BPF_DW, BPF_REG_0, BPF_REG_1, -8); 19869 insn_buf[1] = BPF_ALU64_IMM(BPF_RSH, BPF_REG_0, BPF_TRAMP_COOKIE_INDEX_SHIFT); 19870 insn_buf[2] = BPF_ALU64_IMM(BPF_AND, BPF_REG_0, 0xFF); 19871 insn_buf[3] = BPF_ALU64_IMM(BPF_LSH, BPF_REG_0, 3); 19872 insn_buf[4] = BPF_ALU64_REG(BPF_SUB, BPF_REG_0, BPF_REG_1); 19873 insn_buf[5] = BPF_ALU64_IMM(BPF_NEG, BPF_REG_0, 0); 19874 *cnt = 6; 19875 } 19876 19877 if (env->insn_aux_data[insn_idx].arg_prog) { 19878 u32 regno = env->insn_aux_data[insn_idx].arg_prog; 19879 struct bpf_insn ld_addrs[2] = { BPF_LD_IMM64(regno, (long)env->prog->aux) }; 19880 int idx = *cnt; 19881 19882 insn_buf[idx++] = ld_addrs[0]; 19883 insn_buf[idx++] = ld_addrs[1]; 19884 insn_buf[idx++] = *insn; 19885 *cnt = idx; 19886 } 19887 return 0; 19888 } 19889 19890 int bpf_check(struct bpf_prog **prog, union bpf_attr *attr, bpfptr_t uattr, __u32 uattr_size) 19891 { 19892 u64 start_time = ktime_get_ns(); 19893 struct bpf_verifier_env *env; 19894 int i, len, ret = -EINVAL, err; 19895 u32 log_true_size; 19896 bool is_priv; 19897 19898 BTF_TYPE_EMIT(enum bpf_features); 19899 19900 /* no program is valid */ 19901 if (ARRAY_SIZE(bpf_verifier_ops) == 0) 19902 return -EINVAL; 19903 19904 /* 'struct bpf_verifier_env' can be global, but since it's not small, 19905 * allocate/free it every time bpf_check() is called 19906 */ 19907 env = kvzalloc_obj(struct bpf_verifier_env, GFP_KERNEL_ACCOUNT); 19908 if (!env) 19909 return -ENOMEM; 19910 19911 env->bt.env = env; 19912 19913 len = (*prog)->len; 19914 env->insn_aux_data = 19915 vzalloc(array_size(sizeof(struct bpf_insn_aux_data), len)); 19916 ret = -ENOMEM; 19917 if (!env->insn_aux_data) 19918 goto err_free_env; 19919 for (i = 0; i < len; i++) 19920 env->insn_aux_data[i].orig_idx = i; 19921 env->succ = bpf_iarray_realloc(NULL, 2); 19922 if (!env->succ) 19923 goto err_free_env; 19924 env->prog = *prog; 19925 env->ops = bpf_verifier_ops[env->prog->type]; 19926 19927 env->allow_ptr_leaks = bpf_allow_ptr_leaks(env->prog->aux->token); 19928 env->allow_uninit_stack = bpf_allow_uninit_stack(env->prog->aux->token); 19929 env->bypass_spec_v1 = bpf_bypass_spec_v1(env->prog->aux->token); 19930 env->bypass_spec_v4 = bpf_bypass_spec_v4(env->prog->aux->token); 19931 env->bpf_capable = is_priv = bpf_token_capable(env->prog->aux->token, CAP_BPF); 19932 19933 bpf_get_btf_vmlinux(); 19934 19935 /* grab the mutex to protect few globals used by verifier */ 19936 if (!is_priv) 19937 mutex_lock(&bpf_verifier_lock); 19938 19939 /* user could have requested verbose verifier output 19940 * and supplied buffer to store the verification trace 19941 */ 19942 ret = bpf_vlog_init(&env->log, attr->log_level, 19943 (char __user *) (unsigned long) attr->log_buf, 19944 attr->log_size); 19945 if (ret) 19946 goto err_unlock; 19947 19948 ret = process_fd_array(env, attr, uattr); 19949 if (ret) 19950 goto skip_full_check; 19951 19952 mark_verifier_state_clean(env); 19953 19954 if (IS_ERR(btf_vmlinux)) { 19955 /* Either gcc or pahole or kernel are broken. */ 19956 verbose(env, "in-kernel BTF is malformed\n"); 19957 ret = PTR_ERR(btf_vmlinux); 19958 goto skip_full_check; 19959 } 19960 19961 env->strict_alignment = !!(attr->prog_flags & BPF_F_STRICT_ALIGNMENT); 19962 if (!IS_ENABLED(CONFIG_HAVE_EFFICIENT_UNALIGNED_ACCESS)) 19963 env->strict_alignment = true; 19964 if (attr->prog_flags & BPF_F_ANY_ALIGNMENT) 19965 env->strict_alignment = false; 19966 19967 if (is_priv) 19968 env->test_state_freq = attr->prog_flags & BPF_F_TEST_STATE_FREQ; 19969 env->test_reg_invariants = attr->prog_flags & BPF_F_TEST_REG_INVARIANTS; 19970 19971 env->explored_states = kvzalloc_objs(struct list_head, 19972 state_htab_size(env), 19973 GFP_KERNEL_ACCOUNT); 19974 ret = -ENOMEM; 19975 if (!env->explored_states) 19976 goto skip_full_check; 19977 19978 for (i = 0; i < state_htab_size(env); i++) 19979 INIT_LIST_HEAD(&env->explored_states[i]); 19980 INIT_LIST_HEAD(&env->free_list); 19981 19982 ret = bpf_check_btf_info_early(env, attr, uattr); 19983 if (ret < 0) 19984 goto skip_full_check; 19985 19986 ret = add_subprog_and_kfunc(env); 19987 if (ret < 0) 19988 goto skip_full_check; 19989 19990 ret = check_subprogs(env); 19991 if (ret < 0) 19992 goto skip_full_check; 19993 19994 ret = bpf_check_btf_info(env, attr, uattr); 19995 if (ret < 0) 19996 goto skip_full_check; 19997 19998 ret = check_and_resolve_insns(env); 19999 if (ret < 0) 20000 goto skip_full_check; 20001 20002 if (bpf_prog_is_offloaded(env->prog->aux)) { 20003 ret = bpf_prog_offload_verifier_prep(env->prog); 20004 if (ret) 20005 goto skip_full_check; 20006 } 20007 20008 ret = bpf_check_cfg(env); 20009 if (ret < 0) 20010 goto skip_full_check; 20011 20012 ret = bpf_compute_postorder(env); 20013 if (ret < 0) 20014 goto skip_full_check; 20015 20016 ret = bpf_stack_liveness_init(env); 20017 if (ret) 20018 goto skip_full_check; 20019 20020 ret = check_attach_btf_id(env); 20021 if (ret) 20022 goto skip_full_check; 20023 20024 ret = bpf_compute_const_regs(env); 20025 if (ret < 0) 20026 goto skip_full_check; 20027 20028 ret = bpf_prune_dead_branches(env); 20029 if (ret < 0) 20030 goto skip_full_check; 20031 20032 ret = sort_subprogs_topo(env); 20033 if (ret < 0) 20034 goto skip_full_check; 20035 20036 ret = bpf_compute_scc(env); 20037 if (ret < 0) 20038 goto skip_full_check; 20039 20040 ret = bpf_compute_live_registers(env); 20041 if (ret < 0) 20042 goto skip_full_check; 20043 20044 ret = mark_fastcall_patterns(env); 20045 if (ret < 0) 20046 goto skip_full_check; 20047 20048 ret = do_check_main(env); 20049 ret = ret ?: do_check_subprogs(env); 20050 20051 if (ret == 0 && bpf_prog_is_offloaded(env->prog->aux)) 20052 ret = bpf_prog_offload_finalize(env); 20053 20054 skip_full_check: 20055 kvfree(env->explored_states); 20056 20057 /* might decrease stack depth, keep it before passes that 20058 * allocate additional slots. 20059 */ 20060 if (ret == 0) 20061 ret = bpf_remove_fastcall_spills_fills(env); 20062 20063 if (ret == 0) 20064 ret = check_max_stack_depth(env); 20065 20066 /* instruction rewrites happen after this point */ 20067 if (ret == 0) 20068 ret = bpf_optimize_bpf_loop(env); 20069 20070 if (is_priv) { 20071 if (ret == 0) 20072 bpf_opt_hard_wire_dead_code_branches(env); 20073 if (ret == 0) 20074 ret = bpf_opt_remove_dead_code(env); 20075 if (ret == 0) 20076 ret = bpf_opt_remove_nops(env); 20077 } else { 20078 if (ret == 0) 20079 sanitize_dead_code(env); 20080 } 20081 20082 if (ret == 0) 20083 /* program is valid, convert *(u32*)(ctx + off) accesses */ 20084 ret = bpf_convert_ctx_accesses(env); 20085 20086 if (ret == 0) 20087 ret = bpf_do_misc_fixups(env); 20088 20089 /* do 32-bit optimization after insn patching has done so those patched 20090 * insns could be handled correctly. 20091 */ 20092 if (ret == 0 && !bpf_prog_is_offloaded(env->prog->aux)) { 20093 ret = bpf_opt_subreg_zext_lo32_rnd_hi32(env, attr); 20094 env->prog->aux->verifier_zext = bpf_jit_needs_zext() ? !ret 20095 : false; 20096 } 20097 20098 if (ret == 0) 20099 ret = bpf_fixup_call_args(env); 20100 20101 env->verification_time = ktime_get_ns() - start_time; 20102 print_verification_stats(env); 20103 env->prog->aux->verified_insns = env->insn_processed; 20104 20105 /* preserve original error even if log finalization is successful */ 20106 err = bpf_vlog_finalize(&env->log, &log_true_size); 20107 if (err) 20108 ret = err; 20109 20110 if (uattr_size >= offsetofend(union bpf_attr, log_true_size) && 20111 copy_to_bpfptr_offset(uattr, offsetof(union bpf_attr, log_true_size), 20112 &log_true_size, sizeof(log_true_size))) { 20113 ret = -EFAULT; 20114 goto err_release_maps; 20115 } 20116 20117 if (ret) 20118 goto err_release_maps; 20119 20120 if (env->used_map_cnt) { 20121 /* if program passed verifier, update used_maps in bpf_prog_info */ 20122 env->prog->aux->used_maps = kmalloc_objs(env->used_maps[0], 20123 env->used_map_cnt, 20124 GFP_KERNEL_ACCOUNT); 20125 20126 if (!env->prog->aux->used_maps) { 20127 ret = -ENOMEM; 20128 goto err_release_maps; 20129 } 20130 20131 memcpy(env->prog->aux->used_maps, env->used_maps, 20132 sizeof(env->used_maps[0]) * env->used_map_cnt); 20133 env->prog->aux->used_map_cnt = env->used_map_cnt; 20134 } 20135 if (env->used_btf_cnt) { 20136 /* if program passed verifier, update used_btfs in bpf_prog_aux */ 20137 env->prog->aux->used_btfs = kmalloc_objs(env->used_btfs[0], 20138 env->used_btf_cnt, 20139 GFP_KERNEL_ACCOUNT); 20140 if (!env->prog->aux->used_btfs) { 20141 ret = -ENOMEM; 20142 goto err_release_maps; 20143 } 20144 20145 memcpy(env->prog->aux->used_btfs, env->used_btfs, 20146 sizeof(env->used_btfs[0]) * env->used_btf_cnt); 20147 env->prog->aux->used_btf_cnt = env->used_btf_cnt; 20148 } 20149 if (env->used_map_cnt || env->used_btf_cnt) { 20150 /* program is valid. Convert pseudo bpf_ld_imm64 into generic 20151 * bpf_ld_imm64 instructions 20152 */ 20153 convert_pseudo_ld_imm64(env); 20154 } 20155 20156 adjust_btf_func(env); 20157 20158 err_release_maps: 20159 if (ret) 20160 release_insn_arrays(env); 20161 if (!env->prog->aux->used_maps) 20162 /* if we didn't copy map pointers into bpf_prog_info, release 20163 * them now. Otherwise free_used_maps() will release them. 20164 */ 20165 release_maps(env); 20166 if (!env->prog->aux->used_btfs) 20167 release_btfs(env); 20168 20169 /* extension progs temporarily inherit the attach_type of their targets 20170 for verification purposes, so set it back to zero before returning 20171 */ 20172 if (env->prog->type == BPF_PROG_TYPE_EXT) 20173 env->prog->expected_attach_type = 0; 20174 20175 *prog = env->prog; 20176 20177 module_put(env->attach_btf_mod); 20178 err_unlock: 20179 if (!is_priv) 20180 mutex_unlock(&bpf_verifier_lock); 20181 bpf_clear_insn_aux_data(env, 0, env->prog->len); 20182 vfree(env->insn_aux_data); 20183 err_free_env: 20184 bpf_stack_liveness_free(env); 20185 kvfree(env->cfg.insn_postorder); 20186 kvfree(env->scc_info); 20187 kvfree(env->succ); 20188 kvfree(env->gotox_tmp_buf); 20189 kvfree(env); 20190 return ret; 20191 } 20192