1 // SPDX-License-Identifier: GPL-2.0-only 2 /* Copyright (c) 2011-2014 PLUMgrid, http://plumgrid.com 3 */ 4 #include <linux/bpf.h> 5 #include <linux/btf.h> 6 #include <linux/bpf-cgroup.h> 7 #include <linux/cgroup.h> 8 #include <linux/rcupdate.h> 9 #include <linux/random.h> 10 #include <linux/smp.h> 11 #include <linux/topology.h> 12 #include <linux/ktime.h> 13 #include <linux/sched.h> 14 #include <linux/uidgid.h> 15 #include <linux/filter.h> 16 #include <linux/ctype.h> 17 #include <linux/jiffies.h> 18 #include <linux/pid_namespace.h> 19 #include <linux/poison.h> 20 #include <linux/proc_ns.h> 21 #include <linux/sched/task.h> 22 #include <linux/security.h> 23 #include <linux/btf_ids.h> 24 #include <linux/bpf_mem_alloc.h> 25 #include <linux/kasan.h> 26 #include <linux/bpf_verifier.h> 27 #include <linux/uaccess.h> 28 #include <linux/verification.h> 29 #include <linux/task_work.h> 30 #include <linux/irq_work.h> 31 #include <linux/buildid.h> 32 33 #include "../../lib/kstrtox.h" 34 35 /* If kernel subsystem is allowing eBPF programs to call this function, 36 * inside its own verifier_ops->get_func_proto() callback it should return 37 * bpf_map_lookup_elem_proto, so that verifier can properly check the arguments 38 * 39 * Different map implementations will rely on rcu in map methods 40 * lookup/update/delete, therefore eBPF programs must run under rcu lock 41 * if program is allowed to access maps, so check rcu_read_lock_held() or 42 * rcu_read_lock_trace_held() in all three functions. 43 */ 44 BPF_CALL_2(bpf_map_lookup_elem, struct bpf_map *, map, void *, key) 45 { 46 WARN_ON_ONCE(!bpf_rcu_lock_held()); 47 return (unsigned long) map->ops->map_lookup_elem(map, key); 48 } 49 50 const struct bpf_func_proto bpf_map_lookup_elem_proto = { 51 .func = bpf_map_lookup_elem, 52 .gpl_only = false, 53 .pkt_access = true, 54 .ret_type = RET_PTR_TO_MAP_VALUE_OR_NULL, 55 .arg1_type = ARG_CONST_MAP_PTR, 56 .arg2_type = ARG_PTR_TO_MAP_KEY, 57 }; 58 59 BPF_CALL_4(bpf_map_update_elem, struct bpf_map *, map, void *, key, 60 void *, value, u64, flags) 61 { 62 WARN_ON_ONCE(!bpf_rcu_lock_held()); 63 return map->ops->map_update_elem(map, key, value, flags); 64 } 65 66 const struct bpf_func_proto bpf_map_update_elem_proto = { 67 .func = bpf_map_update_elem, 68 .gpl_only = false, 69 .pkt_access = true, 70 .ret_type = RET_INTEGER, 71 .arg1_type = ARG_CONST_MAP_PTR, 72 .arg2_type = ARG_PTR_TO_MAP_KEY, 73 .arg3_type = ARG_PTR_TO_MAP_VALUE, 74 .arg4_type = ARG_ANYTHING, 75 }; 76 77 BPF_CALL_2(bpf_map_delete_elem, struct bpf_map *, map, void *, key) 78 { 79 WARN_ON_ONCE(!bpf_rcu_lock_held()); 80 return map->ops->map_delete_elem(map, key); 81 } 82 83 const struct bpf_func_proto bpf_map_delete_elem_proto = { 84 .func = bpf_map_delete_elem, 85 .gpl_only = false, 86 .pkt_access = true, 87 .ret_type = RET_INTEGER, 88 .arg1_type = ARG_CONST_MAP_PTR, 89 .arg2_type = ARG_PTR_TO_MAP_KEY, 90 }; 91 92 BPF_CALL_3(bpf_map_push_elem, struct bpf_map *, map, void *, value, u64, flags) 93 { 94 return map->ops->map_push_elem(map, value, flags); 95 } 96 97 const struct bpf_func_proto bpf_map_push_elem_proto = { 98 .func = bpf_map_push_elem, 99 .gpl_only = false, 100 .pkt_access = true, 101 .ret_type = RET_INTEGER, 102 .arg1_type = ARG_CONST_MAP_PTR, 103 .arg2_type = ARG_PTR_TO_MAP_VALUE, 104 .arg3_type = ARG_ANYTHING, 105 }; 106 107 BPF_CALL_2(bpf_map_pop_elem, struct bpf_map *, map, void *, value) 108 { 109 return map->ops->map_pop_elem(map, value); 110 } 111 112 const struct bpf_func_proto bpf_map_pop_elem_proto = { 113 .func = bpf_map_pop_elem, 114 .gpl_only = false, 115 .ret_type = RET_INTEGER, 116 .arg1_type = ARG_CONST_MAP_PTR, 117 .arg2_type = ARG_PTR_TO_MAP_VALUE | MEM_UNINIT | MEM_WRITE, 118 }; 119 120 BPF_CALL_2(bpf_map_peek_elem, struct bpf_map *, map, void *, value) 121 { 122 return map->ops->map_peek_elem(map, value); 123 } 124 125 const struct bpf_func_proto bpf_map_peek_elem_proto = { 126 .func = bpf_map_peek_elem, 127 .gpl_only = false, 128 .ret_type = RET_INTEGER, 129 .arg1_type = ARG_CONST_MAP_PTR, 130 .arg2_type = ARG_PTR_TO_MAP_VALUE | MEM_UNINIT | MEM_WRITE, 131 }; 132 133 BPF_CALL_3(bpf_map_lookup_percpu_elem, struct bpf_map *, map, void *, key, u32, cpu) 134 { 135 WARN_ON_ONCE(!bpf_rcu_lock_held()); 136 return (unsigned long) map->ops->map_lookup_percpu_elem(map, key, cpu); 137 } 138 139 const struct bpf_func_proto bpf_map_lookup_percpu_elem_proto = { 140 .func = bpf_map_lookup_percpu_elem, 141 .gpl_only = false, 142 .pkt_access = true, 143 .ret_type = RET_PTR_TO_MAP_VALUE_OR_NULL, 144 .arg1_type = ARG_CONST_MAP_PTR, 145 .arg2_type = ARG_PTR_TO_MAP_KEY, 146 .arg3_type = ARG_ANYTHING, 147 }; 148 149 const struct bpf_func_proto bpf_get_prandom_u32_proto = { 150 .func = bpf_user_rnd_u32, 151 .gpl_only = false, 152 .ret_type = RET_INTEGER, 153 }; 154 155 BPF_CALL_0(bpf_get_smp_processor_id) 156 { 157 return smp_processor_id(); 158 } 159 160 const struct bpf_func_proto bpf_get_smp_processor_id_proto = { 161 .func = bpf_get_smp_processor_id, 162 .gpl_only = false, 163 .ret_type = RET_INTEGER, 164 .allow_fastcall = true, 165 }; 166 167 BPF_CALL_0(bpf_get_numa_node_id) 168 { 169 return numa_node_id(); 170 } 171 172 const struct bpf_func_proto bpf_get_numa_node_id_proto = { 173 .func = bpf_get_numa_node_id, 174 .gpl_only = false, 175 .ret_type = RET_INTEGER, 176 }; 177 178 BPF_CALL_0(bpf_ktime_get_ns) 179 { 180 /* NMI safe access to clock monotonic */ 181 return ktime_get_mono_fast_ns(); 182 } 183 184 const struct bpf_func_proto bpf_ktime_get_ns_proto = { 185 .func = bpf_ktime_get_ns, 186 .gpl_only = false, 187 .ret_type = RET_INTEGER, 188 }; 189 190 BPF_CALL_0(bpf_ktime_get_boot_ns) 191 { 192 /* NMI safe access to clock boottime */ 193 return ktime_get_boot_fast_ns(); 194 } 195 196 const struct bpf_func_proto bpf_ktime_get_boot_ns_proto = { 197 .func = bpf_ktime_get_boot_ns, 198 .gpl_only = false, 199 .ret_type = RET_INTEGER, 200 }; 201 202 BPF_CALL_0(bpf_ktime_get_coarse_ns) 203 { 204 return ktime_get_coarse_ns(); 205 } 206 207 const struct bpf_func_proto bpf_ktime_get_coarse_ns_proto = { 208 .func = bpf_ktime_get_coarse_ns, 209 .gpl_only = false, 210 .ret_type = RET_INTEGER, 211 }; 212 213 BPF_CALL_0(bpf_ktime_get_tai_ns) 214 { 215 /* NMI safe access to clock tai */ 216 return ktime_get_tai_fast_ns(); 217 } 218 219 const struct bpf_func_proto bpf_ktime_get_tai_ns_proto = { 220 .func = bpf_ktime_get_tai_ns, 221 .gpl_only = false, 222 .ret_type = RET_INTEGER, 223 }; 224 225 BPF_CALL_0(bpf_get_current_pid_tgid) 226 { 227 struct task_struct *task = current; 228 229 if (unlikely(!task)) 230 return -EINVAL; 231 232 return (u64) task->tgid << 32 | task->pid; 233 } 234 235 const struct bpf_func_proto bpf_get_current_pid_tgid_proto = { 236 .func = bpf_get_current_pid_tgid, 237 .gpl_only = false, 238 .ret_type = RET_INTEGER, 239 }; 240 241 BPF_CALL_0(bpf_get_current_uid_gid) 242 { 243 struct task_struct *task = current; 244 kuid_t uid; 245 kgid_t gid; 246 247 if (unlikely(!task)) 248 return -EINVAL; 249 250 current_uid_gid(&uid, &gid); 251 return (u64) from_kgid(&init_user_ns, gid) << 32 | 252 from_kuid(&init_user_ns, uid); 253 } 254 255 const struct bpf_func_proto bpf_get_current_uid_gid_proto = { 256 .func = bpf_get_current_uid_gid, 257 .gpl_only = false, 258 .ret_type = RET_INTEGER, 259 }; 260 261 BPF_CALL_2(bpf_get_current_comm, char *, buf, u32, size) 262 { 263 struct task_struct *task = current; 264 265 if (unlikely(!task)) 266 goto err_clear; 267 268 /* Verifier guarantees that size > 0 */ 269 strscpy_pad(buf, task->comm, size); 270 return 0; 271 err_clear: 272 memset(buf, 0, size); 273 return -EINVAL; 274 } 275 276 const struct bpf_func_proto bpf_get_current_comm_proto = { 277 .func = bpf_get_current_comm, 278 .gpl_only = false, 279 .ret_type = RET_INTEGER, 280 .arg1_type = ARG_PTR_TO_UNINIT_MEM, 281 .arg2_type = ARG_CONST_SIZE, 282 }; 283 284 #if defined(CONFIG_QUEUED_SPINLOCKS) || defined(CONFIG_BPF_ARCH_SPINLOCK) 285 286 static inline void __bpf_spin_lock(struct bpf_spin_lock *lock) 287 { 288 arch_spinlock_t *l = (void *)lock; 289 union { 290 __u32 val; 291 arch_spinlock_t lock; 292 } u = { .lock = __ARCH_SPIN_LOCK_UNLOCKED }; 293 294 compiletime_assert(u.val == 0, "__ARCH_SPIN_LOCK_UNLOCKED not 0"); 295 BUILD_BUG_ON(sizeof(*l) != sizeof(__u32)); 296 BUILD_BUG_ON(sizeof(*lock) != sizeof(__u32)); 297 preempt_disable(); 298 arch_spin_lock(l); 299 } 300 301 static inline void __bpf_spin_unlock(struct bpf_spin_lock *lock) 302 { 303 arch_spinlock_t *l = (void *)lock; 304 305 arch_spin_unlock(l); 306 preempt_enable(); 307 } 308 309 #else 310 311 static inline void __bpf_spin_lock(struct bpf_spin_lock *lock) 312 { 313 atomic_t *l = (void *)lock; 314 315 BUILD_BUG_ON(sizeof(*l) != sizeof(*lock)); 316 do { 317 atomic_cond_read_relaxed(l, !VAL); 318 } while (atomic_xchg(l, 1)); 319 } 320 321 static inline void __bpf_spin_unlock(struct bpf_spin_lock *lock) 322 { 323 atomic_t *l = (void *)lock; 324 325 atomic_set_release(l, 0); 326 } 327 328 #endif 329 330 static DEFINE_PER_CPU(unsigned long, irqsave_flags); 331 332 static inline void __bpf_spin_lock_irqsave(struct bpf_spin_lock *lock) 333 { 334 unsigned long flags; 335 336 local_irq_save(flags); 337 __bpf_spin_lock(lock); 338 __this_cpu_write(irqsave_flags, flags); 339 } 340 341 NOTRACE_BPF_CALL_1(bpf_spin_lock, struct bpf_spin_lock *, lock) 342 { 343 __bpf_spin_lock_irqsave(lock); 344 return 0; 345 } 346 347 const struct bpf_func_proto bpf_spin_lock_proto = { 348 .func = bpf_spin_lock, 349 .gpl_only = false, 350 .ret_type = RET_VOID, 351 .arg1_type = ARG_PTR_TO_SPIN_LOCK, 352 .arg1_btf_id = BPF_PTR_POISON, 353 }; 354 355 static inline void __bpf_spin_unlock_irqrestore(struct bpf_spin_lock *lock) 356 { 357 unsigned long flags; 358 359 flags = __this_cpu_read(irqsave_flags); 360 __bpf_spin_unlock(lock); 361 local_irq_restore(flags); 362 } 363 364 NOTRACE_BPF_CALL_1(bpf_spin_unlock, struct bpf_spin_lock *, lock) 365 { 366 __bpf_spin_unlock_irqrestore(lock); 367 return 0; 368 } 369 370 const struct bpf_func_proto bpf_spin_unlock_proto = { 371 .func = bpf_spin_unlock, 372 .gpl_only = false, 373 .ret_type = RET_VOID, 374 .arg1_type = ARG_PTR_TO_SPIN_LOCK, 375 .arg1_btf_id = BPF_PTR_POISON, 376 }; 377 378 void copy_map_value_locked(struct bpf_map *map, void *dst, void *src, 379 bool lock_src) 380 { 381 struct bpf_spin_lock *lock; 382 383 if (lock_src) 384 lock = src + map->record->spin_lock_off; 385 else 386 lock = dst + map->record->spin_lock_off; 387 preempt_disable(); 388 __bpf_spin_lock_irqsave(lock); 389 copy_map_value(map, dst, src); 390 __bpf_spin_unlock_irqrestore(lock); 391 preempt_enable(); 392 } 393 394 BPF_CALL_0(bpf_jiffies64) 395 { 396 return get_jiffies_64(); 397 } 398 399 const struct bpf_func_proto bpf_jiffies64_proto = { 400 .func = bpf_jiffies64, 401 .gpl_only = false, 402 .ret_type = RET_INTEGER, 403 }; 404 405 #ifdef CONFIG_CGROUPS 406 BPF_CALL_0(bpf_get_current_cgroup_id) 407 { 408 struct cgroup *cgrp; 409 u64 cgrp_id; 410 411 rcu_read_lock(); 412 cgrp = task_dfl_cgroup(current); 413 cgrp_id = cgroup_id(cgrp); 414 rcu_read_unlock(); 415 416 return cgrp_id; 417 } 418 419 const struct bpf_func_proto bpf_get_current_cgroup_id_proto = { 420 .func = bpf_get_current_cgroup_id, 421 .gpl_only = false, 422 .ret_type = RET_INTEGER, 423 }; 424 425 BPF_CALL_1(bpf_get_current_ancestor_cgroup_id, int, ancestor_level) 426 { 427 struct cgroup *cgrp; 428 struct cgroup *ancestor; 429 u64 cgrp_id; 430 431 rcu_read_lock(); 432 cgrp = task_dfl_cgroup(current); 433 ancestor = cgroup_ancestor(cgrp, ancestor_level); 434 cgrp_id = ancestor ? cgroup_id(ancestor) : 0; 435 rcu_read_unlock(); 436 437 return cgrp_id; 438 } 439 440 const struct bpf_func_proto bpf_get_current_ancestor_cgroup_id_proto = { 441 .func = bpf_get_current_ancestor_cgroup_id, 442 .gpl_only = false, 443 .ret_type = RET_INTEGER, 444 .arg1_type = ARG_ANYTHING, 445 }; 446 #endif /* CONFIG_CGROUPS */ 447 448 #define BPF_STRTOX_BASE_MASK 0x1F 449 450 static int __bpf_strtoull(const char *buf, size_t buf_len, u64 flags, 451 unsigned long long *res, bool *is_negative) 452 { 453 unsigned int base = flags & BPF_STRTOX_BASE_MASK; 454 const char *cur_buf = buf; 455 size_t cur_len = buf_len; 456 unsigned int consumed; 457 size_t val_len; 458 char str[64]; 459 460 if (!buf || !buf_len || !res || !is_negative) 461 return -EINVAL; 462 463 if (base != 0 && base != 8 && base != 10 && base != 16) 464 return -EINVAL; 465 466 if (flags & ~BPF_STRTOX_BASE_MASK) 467 return -EINVAL; 468 469 while (cur_buf < buf + buf_len && isspace(*cur_buf)) 470 ++cur_buf; 471 472 *is_negative = (cur_buf < buf + buf_len && *cur_buf == '-'); 473 if (*is_negative) 474 ++cur_buf; 475 476 consumed = cur_buf - buf; 477 cur_len -= consumed; 478 if (!cur_len) 479 return -EINVAL; 480 481 cur_len = min(cur_len, sizeof(str) - 1); 482 memcpy(str, cur_buf, cur_len); 483 str[cur_len] = '\0'; 484 cur_buf = str; 485 486 cur_buf = _parse_integer_fixup_radix(cur_buf, &base); 487 val_len = _parse_integer(cur_buf, base, res); 488 489 if (val_len & KSTRTOX_OVERFLOW) 490 return -ERANGE; 491 492 if (val_len == 0) 493 return -EINVAL; 494 495 cur_buf += val_len; 496 consumed += cur_buf - str; 497 498 return consumed; 499 } 500 501 static int __bpf_strtoll(const char *buf, size_t buf_len, u64 flags, 502 long long *res) 503 { 504 unsigned long long _res; 505 bool is_negative; 506 int err; 507 508 err = __bpf_strtoull(buf, buf_len, flags, &_res, &is_negative); 509 if (err < 0) 510 return err; 511 if (is_negative) { 512 if ((long long)-_res > 0) 513 return -ERANGE; 514 *res = -_res; 515 } else { 516 if ((long long)_res < 0) 517 return -ERANGE; 518 *res = _res; 519 } 520 return err; 521 } 522 523 BPF_CALL_4(bpf_strtol, const char *, buf, size_t, buf_len, u64, flags, 524 s64 *, res) 525 { 526 long long _res; 527 int err; 528 529 *res = 0; 530 err = __bpf_strtoll(buf, buf_len, flags, &_res); 531 if (err < 0) 532 return err; 533 *res = _res; 534 return err; 535 } 536 537 const struct bpf_func_proto bpf_strtol_proto = { 538 .func = bpf_strtol, 539 .gpl_only = false, 540 .ret_type = RET_INTEGER, 541 .arg1_type = ARG_PTR_TO_MEM | MEM_RDONLY, 542 .arg2_type = ARG_CONST_SIZE, 543 .arg3_type = ARG_ANYTHING, 544 .arg4_type = ARG_PTR_TO_FIXED_SIZE_MEM | MEM_UNINIT | MEM_WRITE | MEM_ALIGNED, 545 .arg4_size = sizeof(s64), 546 }; 547 548 BPF_CALL_4(bpf_strtoul, const char *, buf, size_t, buf_len, u64, flags, 549 u64 *, res) 550 { 551 unsigned long long _res; 552 bool is_negative; 553 int err; 554 555 *res = 0; 556 err = __bpf_strtoull(buf, buf_len, flags, &_res, &is_negative); 557 if (err < 0) 558 return err; 559 if (is_negative) 560 return -EINVAL; 561 *res = _res; 562 return err; 563 } 564 565 const struct bpf_func_proto bpf_strtoul_proto = { 566 .func = bpf_strtoul, 567 .gpl_only = false, 568 .ret_type = RET_INTEGER, 569 .arg1_type = ARG_PTR_TO_MEM | MEM_RDONLY, 570 .arg2_type = ARG_CONST_SIZE, 571 .arg3_type = ARG_ANYTHING, 572 .arg4_type = ARG_PTR_TO_FIXED_SIZE_MEM | MEM_UNINIT | MEM_WRITE | MEM_ALIGNED, 573 .arg4_size = sizeof(u64), 574 }; 575 576 BPF_CALL_3(bpf_strncmp, const char *, s1, u32, s1_sz, const char *, s2) 577 { 578 return strncmp(s1, s2, s1_sz); 579 } 580 581 static const struct bpf_func_proto bpf_strncmp_proto = { 582 .func = bpf_strncmp, 583 .gpl_only = false, 584 .ret_type = RET_INTEGER, 585 .arg1_type = ARG_PTR_TO_MEM | MEM_RDONLY, 586 .arg2_type = ARG_CONST_SIZE, 587 .arg3_type = ARG_PTR_TO_CONST_STR, 588 }; 589 590 BPF_CALL_4(bpf_get_ns_current_pid_tgid, u64, dev, u64, ino, 591 struct bpf_pidns_info *, nsdata, u32, size) 592 { 593 struct task_struct *task = current; 594 struct pid_namespace *pidns; 595 int err = -EINVAL; 596 597 if (unlikely(size != sizeof(struct bpf_pidns_info))) 598 goto clear; 599 600 if (unlikely((u64)(dev_t)dev != dev)) 601 goto clear; 602 603 if (unlikely(!task)) 604 goto clear; 605 606 pidns = task_active_pid_ns(task); 607 if (unlikely(!pidns)) { 608 err = -ENOENT; 609 goto clear; 610 } 611 612 if (!ns_match(&pidns->ns, (dev_t)dev, ino)) 613 goto clear; 614 615 nsdata->pid = task_pid_nr_ns(task, pidns); 616 nsdata->tgid = task_tgid_nr_ns(task, pidns); 617 return 0; 618 clear: 619 memset((void *)nsdata, 0, (size_t) size); 620 return err; 621 } 622 623 const struct bpf_func_proto bpf_get_ns_current_pid_tgid_proto = { 624 .func = bpf_get_ns_current_pid_tgid, 625 .gpl_only = false, 626 .ret_type = RET_INTEGER, 627 .arg1_type = ARG_ANYTHING, 628 .arg2_type = ARG_ANYTHING, 629 .arg3_type = ARG_PTR_TO_UNINIT_MEM, 630 .arg4_type = ARG_CONST_SIZE, 631 }; 632 633 static const struct bpf_func_proto bpf_get_raw_smp_processor_id_proto = { 634 .func = bpf_get_raw_cpu_id, 635 .gpl_only = false, 636 .ret_type = RET_INTEGER, 637 }; 638 639 BPF_CALL_5(bpf_event_output_data, void *, ctx, struct bpf_map *, map, 640 u64, flags, void *, data, u64, size) 641 { 642 if (unlikely(flags & ~(BPF_F_INDEX_MASK))) 643 return -EINVAL; 644 645 return bpf_event_output(map, flags, data, size, NULL, 0, NULL); 646 } 647 648 const struct bpf_func_proto bpf_event_output_data_proto = { 649 .func = bpf_event_output_data, 650 .gpl_only = true, 651 .ret_type = RET_INTEGER, 652 .arg1_type = ARG_PTR_TO_CTX, 653 .arg2_type = ARG_CONST_MAP_PTR, 654 .arg3_type = ARG_ANYTHING, 655 .arg4_type = ARG_PTR_TO_MEM | MEM_RDONLY, 656 .arg5_type = ARG_CONST_SIZE_OR_ZERO, 657 }; 658 659 BPF_CALL_3(bpf_copy_from_user, void *, dst, u32, size, 660 const void __user *, user_ptr) 661 { 662 int ret = copy_from_user(dst, user_ptr, size); 663 664 if (unlikely(ret)) { 665 memset(dst, 0, size); 666 ret = -EFAULT; 667 } 668 669 return ret; 670 } 671 672 const struct bpf_func_proto bpf_copy_from_user_proto = { 673 .func = bpf_copy_from_user, 674 .gpl_only = false, 675 .might_sleep = true, 676 .ret_type = RET_INTEGER, 677 .arg1_type = ARG_PTR_TO_UNINIT_MEM, 678 .arg2_type = ARG_CONST_SIZE_OR_ZERO, 679 .arg3_type = ARG_ANYTHING, 680 }; 681 682 BPF_CALL_5(bpf_copy_from_user_task, void *, dst, u32, size, 683 const void __user *, user_ptr, struct task_struct *, tsk, u64, flags) 684 { 685 int ret; 686 687 /* flags is not used yet */ 688 if (unlikely(flags)) 689 return -EINVAL; 690 691 if (unlikely(!size)) 692 return 0; 693 694 ret = access_process_vm(tsk, (unsigned long)user_ptr, dst, size, 0); 695 if (ret == size) 696 return 0; 697 698 memset(dst, 0, size); 699 /* Return -EFAULT for partial read */ 700 return ret < 0 ? ret : -EFAULT; 701 } 702 703 const struct bpf_func_proto bpf_copy_from_user_task_proto = { 704 .func = bpf_copy_from_user_task, 705 .gpl_only = true, 706 .might_sleep = true, 707 .ret_type = RET_INTEGER, 708 .arg1_type = ARG_PTR_TO_UNINIT_MEM, 709 .arg2_type = ARG_CONST_SIZE_OR_ZERO, 710 .arg3_type = ARG_ANYTHING, 711 .arg4_type = ARG_PTR_TO_BTF_ID, 712 .arg4_btf_id = &btf_tracing_ids[BTF_TRACING_TYPE_TASK], 713 .arg5_type = ARG_ANYTHING 714 }; 715 716 BPF_CALL_2(bpf_per_cpu_ptr, const void *, ptr, u32, cpu) 717 { 718 if (cpu >= nr_cpu_ids) 719 return (unsigned long)NULL; 720 721 return (unsigned long)per_cpu_ptr((const void __percpu *)(const uintptr_t)ptr, cpu); 722 } 723 724 const struct bpf_func_proto bpf_per_cpu_ptr_proto = { 725 .func = bpf_per_cpu_ptr, 726 .gpl_only = false, 727 .ret_type = RET_PTR_TO_MEM_OR_BTF_ID | PTR_MAYBE_NULL | MEM_RDONLY, 728 .arg1_type = ARG_PTR_TO_PERCPU_BTF_ID, 729 .arg2_type = ARG_ANYTHING, 730 }; 731 732 BPF_CALL_1(bpf_this_cpu_ptr, const void *, percpu_ptr) 733 { 734 return (unsigned long)this_cpu_ptr((const void __percpu *)(const uintptr_t)percpu_ptr); 735 } 736 737 const struct bpf_func_proto bpf_this_cpu_ptr_proto = { 738 .func = bpf_this_cpu_ptr, 739 .gpl_only = false, 740 .ret_type = RET_PTR_TO_MEM_OR_BTF_ID | MEM_RDONLY, 741 .arg1_type = ARG_PTR_TO_PERCPU_BTF_ID, 742 }; 743 744 static int bpf_trace_copy_string(char *buf, void *unsafe_ptr, char fmt_ptype, 745 size_t bufsz) 746 { 747 void __user *user_ptr = (__force void __user *)unsafe_ptr; 748 749 buf[0] = 0; 750 751 switch (fmt_ptype) { 752 case 's': 753 #ifdef CONFIG_ARCH_HAS_NON_OVERLAPPING_ADDRESS_SPACE 754 if ((unsigned long)unsafe_ptr < TASK_SIZE) 755 return strncpy_from_user_nofault(buf, user_ptr, bufsz); 756 fallthrough; 757 #endif 758 case 'k': 759 return strncpy_from_kernel_nofault(buf, unsafe_ptr, bufsz); 760 case 'u': 761 return strncpy_from_user_nofault(buf, user_ptr, bufsz); 762 } 763 764 return -EINVAL; 765 } 766 767 /* Support executing three nested bprintf helper calls on a given CPU */ 768 #define MAX_BPRINTF_NEST_LEVEL 3 769 770 static DEFINE_PER_CPU(struct bpf_bprintf_buffers[MAX_BPRINTF_NEST_LEVEL], bpf_bprintf_bufs); 771 static DEFINE_PER_CPU(int, bpf_bprintf_nest_level); 772 773 int bpf_try_get_buffers(struct bpf_bprintf_buffers **bufs) 774 { 775 int nest_level; 776 777 preempt_disable(); 778 nest_level = this_cpu_inc_return(bpf_bprintf_nest_level); 779 if (WARN_ON_ONCE(nest_level > MAX_BPRINTF_NEST_LEVEL)) { 780 this_cpu_dec(bpf_bprintf_nest_level); 781 preempt_enable(); 782 return -EBUSY; 783 } 784 *bufs = this_cpu_ptr(&bpf_bprintf_bufs[nest_level - 1]); 785 786 return 0; 787 } 788 789 void bpf_put_buffers(void) 790 { 791 if (WARN_ON_ONCE(this_cpu_read(bpf_bprintf_nest_level) == 0)) 792 return; 793 this_cpu_dec(bpf_bprintf_nest_level); 794 preempt_enable(); 795 } 796 797 void bpf_bprintf_cleanup(struct bpf_bprintf_data *data) 798 { 799 if (!data->bin_args && !data->buf) 800 return; 801 bpf_put_buffers(); 802 } 803 804 /* 805 * bpf_bprintf_prepare - Generic pass on format strings for bprintf-like helpers 806 * 807 * Returns a negative value if fmt is an invalid format string or 0 otherwise. 808 * 809 * This can be used in two ways: 810 * - Format string verification only: when data->get_bin_args is false 811 * - Arguments preparation: in addition to the above verification, it writes in 812 * data->bin_args a binary representation of arguments usable by bstr_printf 813 * where pointers from BPF have been sanitized. 814 * 815 * In argument preparation mode, if 0 is returned, safe temporary buffers are 816 * allocated and bpf_bprintf_cleanup should be called to free them after use. 817 */ 818 int bpf_bprintf_prepare(const char *fmt, u32 fmt_size, const u64 *raw_args, 819 u32 num_args, struct bpf_bprintf_data *data) 820 { 821 bool get_buffers = (data->get_bin_args && num_args) || data->get_buf; 822 char *unsafe_ptr = NULL, *tmp_buf = NULL, *tmp_buf_end, *fmt_end; 823 struct bpf_bprintf_buffers *buffers = NULL; 824 size_t sizeof_cur_arg, sizeof_cur_ip; 825 int err, i, num_spec = 0; 826 u64 cur_arg; 827 char fmt_ptype, cur_ip[16], ip_spec[] = "%pXX"; 828 829 fmt_end = strnchr(fmt, fmt_size, 0); 830 if (!fmt_end) 831 return -EINVAL; 832 fmt_size = fmt_end - fmt; 833 834 if (get_buffers && bpf_try_get_buffers(&buffers)) 835 return -EBUSY; 836 837 if (data->get_bin_args) { 838 if (num_args) 839 tmp_buf = buffers->bin_args; 840 tmp_buf_end = tmp_buf + MAX_BPRINTF_BIN_ARGS; 841 data->bin_args = (u32 *)tmp_buf; 842 } 843 844 if (data->get_buf) 845 data->buf = buffers->buf; 846 847 for (i = 0; i < fmt_size; i++) { 848 unsigned char c = fmt[i]; 849 850 /* 851 * Permit bytes >= 0x80 in plain text so UTF-8 literals can pass 852 * through unchanged, while still rejecting ASCII control bytes. 853 */ 854 if (isascii(c) && !isprint(c) && !isspace(c)) { 855 err = -EINVAL; 856 goto out; 857 } 858 859 if (fmt[i] != '%') 860 continue; 861 862 if (fmt[i + 1] == '%') { 863 i++; 864 continue; 865 } 866 867 if (num_spec >= num_args) { 868 err = -EINVAL; 869 goto out; 870 } 871 872 /* The string is zero-terminated so if fmt[i] != 0, we can 873 * always access fmt[i + 1], in the worst case it will be a 0 874 */ 875 i++; 876 c = fmt[i]; 877 /* 878 * The format parser below only understands ASCII conversion 879 * specifiers and modifiers, so reject non-ASCII after '%'. 880 */ 881 if (!isascii(c)) { 882 err = -EINVAL; 883 goto out; 884 } 885 886 /* skip optional "[0 +-][num]" width formatting field */ 887 while (fmt[i] == '0' || fmt[i] == '+' || fmt[i] == '-' || 888 fmt[i] == ' ') 889 i++; 890 if (fmt[i] >= '1' && fmt[i] <= '9') { 891 i++; 892 while (fmt[i] >= '0' && fmt[i] <= '9') 893 i++; 894 } 895 896 if (fmt[i] == 'p') { 897 sizeof_cur_arg = sizeof(long); 898 899 if (fmt[i + 1] == 0 || isspace(fmt[i + 1]) || 900 ispunct(fmt[i + 1])) { 901 if (tmp_buf) 902 cur_arg = raw_args[num_spec]; 903 goto nocopy_fmt; 904 } 905 906 if ((fmt[i + 1] == 'k' || fmt[i + 1] == 'u') && 907 fmt[i + 2] == 's') { 908 fmt_ptype = fmt[i + 1]; 909 i += 2; 910 goto fmt_str; 911 } 912 913 if (fmt[i + 1] == 'K' || 914 fmt[i + 1] == 'x' || fmt[i + 1] == 's' || 915 fmt[i + 1] == 'S') { 916 if (tmp_buf) 917 cur_arg = raw_args[num_spec]; 918 i++; 919 goto nocopy_fmt; 920 } 921 922 if (fmt[i + 1] == 'B') { 923 if (tmp_buf) { 924 err = snprintf(tmp_buf, 925 (tmp_buf_end - tmp_buf), 926 "%pB", 927 (void *)(long)raw_args[num_spec]); 928 tmp_buf += (err + 1); 929 } 930 931 i++; 932 num_spec++; 933 continue; 934 } 935 936 /* only support "%pI4", "%pi4", "%pI6" and "%pi6". */ 937 if ((fmt[i + 1] != 'i' && fmt[i + 1] != 'I') || 938 (fmt[i + 2] != '4' && fmt[i + 2] != '6')) { 939 err = -EINVAL; 940 goto out; 941 } 942 943 i += 2; 944 if (!tmp_buf) 945 goto nocopy_fmt; 946 947 sizeof_cur_ip = (fmt[i] == '4') ? 4 : 16; 948 if (tmp_buf_end - tmp_buf < sizeof_cur_ip) { 949 err = -ENOSPC; 950 goto out; 951 } 952 953 unsafe_ptr = (char *)(long)raw_args[num_spec]; 954 err = copy_from_kernel_nofault(cur_ip, unsafe_ptr, 955 sizeof_cur_ip); 956 if (err < 0) 957 memset(cur_ip, 0, sizeof_cur_ip); 958 959 /* hack: bstr_printf expects IP addresses to be 960 * pre-formatted as strings, ironically, the easiest way 961 * to do that is to call snprintf. 962 */ 963 ip_spec[2] = fmt[i - 1]; 964 ip_spec[3] = fmt[i]; 965 err = snprintf(tmp_buf, tmp_buf_end - tmp_buf, 966 ip_spec, &cur_ip); 967 968 tmp_buf += err + 1; 969 num_spec++; 970 971 continue; 972 } else if (fmt[i] == 's') { 973 fmt_ptype = fmt[i]; 974 fmt_str: 975 if (fmt[i + 1] != 0 && 976 !isspace(fmt[i + 1]) && 977 !ispunct(fmt[i + 1])) { 978 err = -EINVAL; 979 goto out; 980 } 981 982 if (!tmp_buf) 983 goto nocopy_fmt; 984 985 if (tmp_buf_end == tmp_buf) { 986 err = -ENOSPC; 987 goto out; 988 } 989 990 unsafe_ptr = (char *)(long)raw_args[num_spec]; 991 err = bpf_trace_copy_string(tmp_buf, unsafe_ptr, 992 fmt_ptype, 993 tmp_buf_end - tmp_buf); 994 if (err < 0) { 995 tmp_buf[0] = '\0'; 996 err = 1; 997 } 998 999 tmp_buf += err; 1000 num_spec++; 1001 1002 continue; 1003 } else if (fmt[i] == 'c') { 1004 if (!tmp_buf) 1005 goto nocopy_fmt; 1006 1007 if (tmp_buf_end == tmp_buf) { 1008 err = -ENOSPC; 1009 goto out; 1010 } 1011 1012 *tmp_buf = raw_args[num_spec]; 1013 tmp_buf++; 1014 num_spec++; 1015 1016 continue; 1017 } 1018 1019 sizeof_cur_arg = sizeof(int); 1020 1021 if (fmt[i] == 'l') { 1022 sizeof_cur_arg = sizeof(long); 1023 i++; 1024 } 1025 if (fmt[i] == 'l') { 1026 sizeof_cur_arg = sizeof(long long); 1027 i++; 1028 } 1029 1030 if (fmt[i] != 'i' && fmt[i] != 'd' && fmt[i] != 'u' && 1031 fmt[i] != 'x' && fmt[i] != 'X') { 1032 err = -EINVAL; 1033 goto out; 1034 } 1035 1036 if (tmp_buf) 1037 cur_arg = raw_args[num_spec]; 1038 nocopy_fmt: 1039 if (tmp_buf) { 1040 tmp_buf = PTR_ALIGN(tmp_buf, sizeof(u32)); 1041 if (tmp_buf_end - tmp_buf < sizeof_cur_arg) { 1042 err = -ENOSPC; 1043 goto out; 1044 } 1045 1046 if (sizeof_cur_arg == 8) { 1047 *(u32 *)tmp_buf = *(u32 *)&cur_arg; 1048 *(u32 *)(tmp_buf + 4) = *((u32 *)&cur_arg + 1); 1049 } else { 1050 *(u32 *)tmp_buf = (u32)(long)cur_arg; 1051 } 1052 tmp_buf += sizeof_cur_arg; 1053 } 1054 num_spec++; 1055 } 1056 1057 err = 0; 1058 out: 1059 if (err) 1060 bpf_bprintf_cleanup(data); 1061 return err; 1062 } 1063 1064 BPF_CALL_5(bpf_snprintf, char *, str, u32, str_size, char *, fmt, 1065 const void *, args, u32, data_len) 1066 { 1067 struct bpf_bprintf_data data = { 1068 .get_bin_args = true, 1069 }; 1070 int err, num_args; 1071 1072 if (data_len % 8 || data_len > MAX_BPRINTF_VARARGS * 8 || 1073 (data_len && !args)) 1074 return -EINVAL; 1075 num_args = data_len / 8; 1076 1077 /* ARG_PTR_TO_CONST_STR guarantees that fmt is zero-terminated so we 1078 * can safely give an unbounded size. 1079 */ 1080 err = bpf_bprintf_prepare(fmt, UINT_MAX, args, num_args, &data); 1081 if (err < 0) 1082 return err; 1083 1084 err = bstr_printf(str, str_size, fmt, data.bin_args); 1085 1086 bpf_bprintf_cleanup(&data); 1087 1088 return err + 1; 1089 } 1090 1091 const struct bpf_func_proto bpf_snprintf_proto = { 1092 .func = bpf_snprintf, 1093 .gpl_only = true, 1094 .ret_type = RET_INTEGER, 1095 .arg1_type = ARG_PTR_TO_MEM_OR_NULL | MEM_WRITE, 1096 .arg2_type = ARG_CONST_SIZE_OR_ZERO, 1097 .arg3_type = ARG_PTR_TO_CONST_STR, 1098 .arg4_type = ARG_PTR_TO_MEM | PTR_MAYBE_NULL | MEM_RDONLY, 1099 .arg5_type = ARG_CONST_SIZE_OR_ZERO, 1100 }; 1101 1102 static void *map_key_from_value(struct bpf_map *map, void *value, u32 *arr_idx) 1103 { 1104 if (map->map_type == BPF_MAP_TYPE_ARRAY) { 1105 struct bpf_array *array = container_of(map, struct bpf_array, map); 1106 1107 *arr_idx = ((char *)value - array->value) / array->elem_size; 1108 return arr_idx; 1109 } 1110 return (void *)value - round_up(map->key_size, 8); 1111 } 1112 1113 enum bpf_async_type { 1114 BPF_ASYNC_TYPE_TIMER = 0, 1115 BPF_ASYNC_TYPE_WQ, 1116 }; 1117 1118 enum bpf_async_op { 1119 BPF_ASYNC_START, 1120 BPF_ASYNC_CANCEL 1121 }; 1122 1123 struct bpf_async_cmd { 1124 struct llist_node node; 1125 u64 nsec; 1126 u32 mode; 1127 enum bpf_async_op op; 1128 }; 1129 1130 struct bpf_async_cb { 1131 struct bpf_map *map; 1132 struct bpf_prog *prog; 1133 void __rcu *callback_fn; 1134 void *value; 1135 struct rcu_head rcu; 1136 u64 flags; 1137 struct irq_work worker; 1138 refcount_t refcnt; 1139 enum bpf_async_type type; 1140 struct llist_head async_cmds; 1141 }; 1142 1143 /* BPF map elements can contain 'struct bpf_timer'. 1144 * Such map owns all of its BPF timers. 1145 * 'struct bpf_timer' is allocated as part of map element allocation 1146 * and it's zero initialized. 1147 * That space is used to keep 'struct bpf_async_kern'. 1148 * bpf_timer_init() allocates 'struct bpf_hrtimer', inits hrtimer, and 1149 * remembers 'struct bpf_map *' pointer it's part of. 1150 * bpf_timer_set_callback() increments prog refcnt and assign bpf callback_fn. 1151 * bpf_timer_start() arms the timer. 1152 * If user space reference to a map goes to zero at this point 1153 * ops->map_release_uref callback is responsible for cancelling the timers, 1154 * freeing their memory, and decrementing prog's refcnts. 1155 * bpf_timer_cancel() cancels the timer and decrements prog's refcnt. 1156 * Inner maps can contain bpf timers as well. ops->map_release_uref is 1157 * freeing the timers when inner map is replaced or deleted by user space. 1158 */ 1159 struct bpf_hrtimer { 1160 struct bpf_async_cb cb; 1161 struct hrtimer timer; 1162 atomic_t cancelling; 1163 }; 1164 1165 struct bpf_work { 1166 struct bpf_async_cb cb; 1167 struct work_struct work; 1168 }; 1169 1170 /* the actual struct hidden inside uapi struct bpf_timer and bpf_wq */ 1171 struct bpf_async_kern { 1172 union { 1173 struct bpf_async_cb *cb; 1174 struct bpf_hrtimer *timer; 1175 struct bpf_work *work; 1176 }; 1177 } __attribute__((aligned(8))); 1178 1179 static DEFINE_PER_CPU(struct bpf_hrtimer *, hrtimer_running); 1180 1181 static void bpf_async_refcount_put(struct bpf_async_cb *cb); 1182 1183 static enum hrtimer_restart bpf_timer_cb(struct hrtimer *hrtimer) 1184 { 1185 struct bpf_hrtimer *t = container_of(hrtimer, struct bpf_hrtimer, timer); 1186 struct bpf_map *map = t->cb.map; 1187 void *value = t->cb.value; 1188 bpf_callback_t callback_fn; 1189 void *key; 1190 u32 idx; 1191 1192 BTF_TYPE_EMIT(struct bpf_timer); 1193 callback_fn = rcu_dereference_check(t->cb.callback_fn, rcu_read_lock_bh_held()); 1194 if (!callback_fn) 1195 goto out; 1196 1197 /* bpf_timer_cb() runs in hrtimer_run_softirq. It doesn't migrate and 1198 * cannot be preempted by another bpf_timer_cb() on the same cpu. 1199 * Remember the timer this callback is servicing to prevent 1200 * deadlock if callback_fn() calls bpf_timer_cancel() or 1201 * bpf_map_delete_elem() on the same timer. 1202 */ 1203 this_cpu_write(hrtimer_running, t); 1204 1205 key = map_key_from_value(map, value, &idx); 1206 1207 callback_fn((u64)(long)map, (u64)(long)key, (u64)(long)value, 0, 0); 1208 /* The verifier checked that return value is zero. */ 1209 1210 this_cpu_write(hrtimer_running, NULL); 1211 out: 1212 return HRTIMER_NORESTART; 1213 } 1214 1215 static void bpf_wq_work(struct work_struct *work) 1216 { 1217 struct bpf_work *w = container_of(work, struct bpf_work, work); 1218 struct bpf_async_cb *cb = &w->cb; 1219 struct bpf_map *map = cb->map; 1220 bpf_callback_t callback_fn; 1221 void *value = cb->value; 1222 void *key; 1223 u32 idx; 1224 1225 BTF_TYPE_EMIT(struct bpf_wq); 1226 1227 callback_fn = READ_ONCE(cb->callback_fn); 1228 if (!callback_fn) 1229 return; 1230 1231 key = map_key_from_value(map, value, &idx); 1232 1233 rcu_read_lock_trace(); 1234 migrate_disable(); 1235 1236 callback_fn((u64)(long)map, (u64)(long)key, (u64)(long)value, 0, 0); 1237 1238 migrate_enable(); 1239 rcu_read_unlock_trace(); 1240 } 1241 1242 static void bpf_async_cb_rcu_free(struct rcu_head *rcu) 1243 { 1244 struct bpf_async_cb *cb = container_of(rcu, struct bpf_async_cb, rcu); 1245 1246 /* 1247 * Drop the last reference to prog only after RCU GP, as set_callback() 1248 * may race with cancel_and_free() 1249 */ 1250 if (cb->prog) 1251 bpf_prog_put(cb->prog); 1252 1253 kfree_nolock(cb); 1254 } 1255 1256 /* Callback from call_rcu_tasks_trace, chains to call_rcu for final free */ 1257 static void bpf_async_cb_rcu_tasks_trace_free(struct rcu_head *rcu) 1258 { 1259 struct bpf_async_cb *cb = container_of(rcu, struct bpf_async_cb, rcu); 1260 struct bpf_hrtimer *t = container_of(cb, struct bpf_hrtimer, cb); 1261 struct bpf_work *w = container_of(cb, struct bpf_work, cb); 1262 bool retry = false; 1263 1264 /* 1265 * bpf_async_cancel_and_free() tried to cancel timer/wq, but it 1266 * could have raced with timer/wq_start. Now refcnt is zero and 1267 * srcu/rcu GP completed. Cancel timer/wq again. 1268 */ 1269 switch (cb->type) { 1270 case BPF_ASYNC_TYPE_TIMER: 1271 if (hrtimer_try_to_cancel(&t->timer) < 0) 1272 retry = true; 1273 break; 1274 case BPF_ASYNC_TYPE_WQ: 1275 if (!cancel_work(&w->work) && work_busy(&w->work)) 1276 retry = true; 1277 break; 1278 } 1279 if (retry) { 1280 /* 1281 * hrtimer or wq callback may still be running. It must be 1282 * in rcu_tasks_trace or rcu CS, so wait for GP again. 1283 * It won't retry forever, since refcnt zero prevents all 1284 * operations on timer/wq. 1285 */ 1286 call_rcu_tasks_trace(&cb->rcu, bpf_async_cb_rcu_tasks_trace_free); 1287 return; 1288 } 1289 1290 /* RCU Tasks Trace grace period implies RCU grace period. */ 1291 bpf_async_cb_rcu_free(rcu); 1292 } 1293 1294 static void worker_for_call_rcu(struct irq_work *work) 1295 { 1296 struct bpf_async_cb *cb = container_of(work, struct bpf_async_cb, worker); 1297 1298 call_rcu_tasks_trace(&cb->rcu, bpf_async_cb_rcu_tasks_trace_free); 1299 } 1300 1301 static void bpf_async_refcount_put(struct bpf_async_cb *cb) 1302 { 1303 if (!refcount_dec_and_test(&cb->refcnt)) 1304 return; 1305 1306 if (irqs_disabled()) { 1307 cb->worker = IRQ_WORK_INIT(worker_for_call_rcu); 1308 irq_work_queue(&cb->worker); 1309 } else { 1310 call_rcu_tasks_trace(&cb->rcu, bpf_async_cb_rcu_tasks_trace_free); 1311 } 1312 } 1313 1314 static void bpf_async_cancel_and_free(struct bpf_async_kern *async); 1315 static void bpf_async_irq_worker(struct irq_work *work); 1316 1317 static int __bpf_async_init(struct bpf_async_kern *async, struct bpf_map *map, u64 flags, 1318 enum bpf_async_type type) 1319 { 1320 struct bpf_async_cb *cb, *old_cb; 1321 struct bpf_hrtimer *t; 1322 struct bpf_work *w; 1323 clockid_t clockid; 1324 size_t size; 1325 1326 switch (type) { 1327 case BPF_ASYNC_TYPE_TIMER: 1328 size = sizeof(struct bpf_hrtimer); 1329 break; 1330 case BPF_ASYNC_TYPE_WQ: 1331 size = sizeof(struct bpf_work); 1332 break; 1333 default: 1334 return -EINVAL; 1335 } 1336 1337 old_cb = READ_ONCE(async->cb); 1338 if (old_cb) 1339 return -EBUSY; 1340 1341 cb = bpf_map_kmalloc_nolock(map, size, 0, map->numa_node); 1342 if (!cb) 1343 return -ENOMEM; 1344 1345 switch (type) { 1346 case BPF_ASYNC_TYPE_TIMER: 1347 clockid = flags & (MAX_CLOCKS - 1); 1348 t = (struct bpf_hrtimer *)cb; 1349 1350 atomic_set(&t->cancelling, 0); 1351 hrtimer_setup(&t->timer, bpf_timer_cb, clockid, HRTIMER_MODE_REL_SOFT); 1352 cb->value = (void *)async - map->record->timer_off; 1353 break; 1354 case BPF_ASYNC_TYPE_WQ: 1355 w = (struct bpf_work *)cb; 1356 1357 INIT_WORK(&w->work, bpf_wq_work); 1358 cb->value = (void *)async - map->record->wq_off; 1359 break; 1360 } 1361 cb->map = map; 1362 cb->prog = NULL; 1363 cb->flags = flags; 1364 cb->worker = IRQ_WORK_INIT(bpf_async_irq_worker); 1365 init_llist_head(&cb->async_cmds); 1366 refcount_set(&cb->refcnt, 1); /* map's reference */ 1367 cb->type = type; 1368 rcu_assign_pointer(cb->callback_fn, NULL); 1369 1370 old_cb = cmpxchg(&async->cb, NULL, cb); 1371 if (old_cb) { 1372 /* Lost the race to initialize this bpf_async_kern, drop the allocated object */ 1373 kfree_nolock(cb); 1374 return -EBUSY; 1375 } 1376 /* Guarantee the order between async->cb and map->usercnt. So 1377 * when there are concurrent uref release and bpf timer init, either 1378 * bpf_timer_cancel_and_free() called by uref release reads a no-NULL 1379 * timer or atomic64_read() below returns a zero usercnt. 1380 */ 1381 smp_mb(); 1382 if (!atomic64_read(&map->usercnt)) { 1383 /* maps with timers must be either held by user space 1384 * or pinned in bpffs. 1385 */ 1386 bpf_async_cancel_and_free(async); 1387 return -EPERM; 1388 } 1389 1390 return 0; 1391 } 1392 1393 BPF_CALL_3(bpf_timer_init, struct bpf_async_kern *, timer, struct bpf_map *, map, 1394 u64, flags) 1395 { 1396 clock_t clockid = flags & (MAX_CLOCKS - 1); 1397 1398 BUILD_BUG_ON(MAX_CLOCKS != 16); 1399 BUILD_BUG_ON(sizeof(struct bpf_async_kern) > sizeof(struct bpf_timer)); 1400 BUILD_BUG_ON(__alignof__(struct bpf_async_kern) != __alignof__(struct bpf_timer)); 1401 1402 if (flags >= MAX_CLOCKS || 1403 /* similar to timerfd except _ALARM variants are not supported */ 1404 (clockid != CLOCK_MONOTONIC && 1405 clockid != CLOCK_REALTIME && 1406 clockid != CLOCK_BOOTTIME)) 1407 return -EINVAL; 1408 1409 return __bpf_async_init(timer, map, flags, BPF_ASYNC_TYPE_TIMER); 1410 } 1411 1412 static const struct bpf_func_proto bpf_timer_init_proto = { 1413 .func = bpf_timer_init, 1414 .gpl_only = true, 1415 .ret_type = RET_INTEGER, 1416 .arg1_type = ARG_PTR_TO_TIMER, 1417 .arg2_type = ARG_CONST_MAP_PTR, 1418 .arg3_type = ARG_ANYTHING, 1419 }; 1420 1421 static int bpf_async_update_prog_callback(struct bpf_async_cb *cb, 1422 struct bpf_prog *prog, 1423 void *callback_fn) 1424 { 1425 struct bpf_prog *prev; 1426 1427 /* Acquire a guard reference on prog to prevent it from being freed during the loop */ 1428 if (prog) { 1429 prog = bpf_prog_inc_not_zero(prog); 1430 if (IS_ERR(prog)) 1431 return PTR_ERR(prog); 1432 } 1433 1434 do { 1435 if (prog) 1436 prog = bpf_prog_inc_not_zero(prog); 1437 prev = xchg(&cb->prog, prog); 1438 rcu_assign_pointer(cb->callback_fn, callback_fn); 1439 1440 /* 1441 * Release previous prog, make sure that if other CPU is contending, 1442 * to set bpf_prog, references are not leaked as each iteration acquires and 1443 * releases one reference. 1444 */ 1445 if (prev) 1446 bpf_prog_put(prev); 1447 1448 } while (READ_ONCE(cb->prog) != prog || 1449 (void __force *)READ_ONCE(cb->callback_fn) != callback_fn); 1450 1451 if (prog) 1452 bpf_prog_put(prog); 1453 1454 return 0; 1455 } 1456 1457 static DEFINE_PER_CPU(struct bpf_async_cb *, async_cb_running); 1458 1459 static int bpf_async_schedule_op(struct bpf_async_cb *cb, enum bpf_async_op op, 1460 u64 nsec, u32 timer_mode) 1461 { 1462 /* 1463 * Do not schedule another operation on this cpu if it's in irq_work 1464 * callback that is processing async_cmds queue. Otherwise the following 1465 * loop is possible: 1466 * bpf_timer_start() -> bpf_async_schedule_op() -> irq_work_queue(). 1467 * irqrestore -> bpf_async_irq_worker() -> tracepoint -> bpf_timer_start(). 1468 */ 1469 if (this_cpu_read(async_cb_running) == cb) { 1470 bpf_async_refcount_put(cb); 1471 return -EDEADLK; 1472 } 1473 1474 struct bpf_async_cmd *cmd = kmalloc_nolock(sizeof(*cmd), 0, NUMA_NO_NODE); 1475 1476 if (!cmd) { 1477 bpf_async_refcount_put(cb); 1478 return -ENOMEM; 1479 } 1480 init_llist_node(&cmd->node); 1481 cmd->nsec = nsec; 1482 cmd->mode = timer_mode; 1483 cmd->op = op; 1484 if (llist_add(&cmd->node, &cb->async_cmds)) 1485 irq_work_queue(&cb->worker); 1486 return 0; 1487 } 1488 1489 static int __bpf_async_set_callback(struct bpf_async_kern *async, void *callback_fn, 1490 struct bpf_prog *prog) 1491 { 1492 struct bpf_async_cb *cb; 1493 1494 cb = READ_ONCE(async->cb); 1495 if (!cb) 1496 return -EINVAL; 1497 1498 return bpf_async_update_prog_callback(cb, prog, callback_fn); 1499 } 1500 1501 BPF_CALL_3(bpf_timer_set_callback, struct bpf_async_kern *, timer, void *, callback_fn, 1502 struct bpf_prog_aux *, aux) 1503 { 1504 return __bpf_async_set_callback(timer, callback_fn, aux->prog); 1505 } 1506 1507 static const struct bpf_func_proto bpf_timer_set_callback_proto = { 1508 .func = bpf_timer_set_callback, 1509 .gpl_only = true, 1510 .ret_type = RET_INTEGER, 1511 .arg1_type = ARG_PTR_TO_TIMER, 1512 .arg2_type = ARG_PTR_TO_FUNC, 1513 }; 1514 1515 static bool defer_timer_wq_op(void) 1516 { 1517 return in_hardirq() || irqs_disabled(); 1518 } 1519 1520 BPF_CALL_3(bpf_timer_start, struct bpf_async_kern *, async, u64, nsecs, u64, flags) 1521 { 1522 struct bpf_hrtimer *t; 1523 u32 mode; 1524 1525 if (flags & ~(BPF_F_TIMER_ABS | BPF_F_TIMER_CPU_PIN)) 1526 return -EINVAL; 1527 1528 t = READ_ONCE(async->timer); 1529 if (!t || !READ_ONCE(t->cb.prog)) 1530 return -EINVAL; 1531 1532 if (flags & BPF_F_TIMER_ABS) 1533 mode = HRTIMER_MODE_ABS_SOFT; 1534 else 1535 mode = HRTIMER_MODE_REL_SOFT; 1536 1537 if (flags & BPF_F_TIMER_CPU_PIN) 1538 mode |= HRTIMER_MODE_PINNED; 1539 1540 /* 1541 * bpf_async_cancel_and_free() could have dropped refcnt to zero. In 1542 * such case BPF progs are not allowed to arm the timer to prevent UAF. 1543 */ 1544 if (!refcount_inc_not_zero(&t->cb.refcnt)) 1545 return -ENOENT; 1546 1547 if (!defer_timer_wq_op()) { 1548 hrtimer_start(&t->timer, ns_to_ktime(nsecs), mode); 1549 bpf_async_refcount_put(&t->cb); 1550 return 0; 1551 } else { 1552 return bpf_async_schedule_op(&t->cb, BPF_ASYNC_START, nsecs, mode); 1553 } 1554 } 1555 1556 static const struct bpf_func_proto bpf_timer_start_proto = { 1557 .func = bpf_timer_start, 1558 .gpl_only = true, 1559 .ret_type = RET_INTEGER, 1560 .arg1_type = ARG_PTR_TO_TIMER, 1561 .arg2_type = ARG_ANYTHING, 1562 .arg3_type = ARG_ANYTHING, 1563 }; 1564 1565 BPF_CALL_1(bpf_timer_cancel, struct bpf_async_kern *, async) 1566 { 1567 struct bpf_hrtimer *t, *cur_t; 1568 bool inc = false; 1569 int ret = 0; 1570 1571 if (defer_timer_wq_op()) 1572 return -EOPNOTSUPP; 1573 1574 t = READ_ONCE(async->timer); 1575 if (!t) 1576 return -EINVAL; 1577 1578 cur_t = this_cpu_read(hrtimer_running); 1579 if (cur_t == t) { 1580 /* If bpf callback_fn is trying to bpf_timer_cancel() 1581 * its own timer the hrtimer_cancel() will deadlock 1582 * since it waits for callback_fn to finish. 1583 */ 1584 return -EDEADLK; 1585 } 1586 1587 /* Only account in-flight cancellations when invoked from a timer 1588 * callback, since we want to avoid waiting only if other _callbacks_ 1589 * are waiting on us, to avoid introducing lockups. Non-callback paths 1590 * are ok, since nobody would synchronously wait for their completion. 1591 */ 1592 if (!cur_t) 1593 goto drop; 1594 atomic_inc(&t->cancelling); 1595 /* Need full barrier after relaxed atomic_inc */ 1596 smp_mb__after_atomic(); 1597 inc = true; 1598 if (atomic_read(&cur_t->cancelling)) { 1599 /* We're cancelling timer t, while some other timer callback is 1600 * attempting to cancel us. In such a case, it might be possible 1601 * that timer t belongs to the other callback, or some other 1602 * callback waiting upon it (creating transitive dependencies 1603 * upon us), and we will enter a deadlock if we continue 1604 * cancelling and waiting for it synchronously, since it might 1605 * do the same. Bail! 1606 */ 1607 atomic_dec(&t->cancelling); 1608 return -EDEADLK; 1609 } 1610 drop: 1611 bpf_async_update_prog_callback(&t->cb, NULL, NULL); 1612 /* Cancel the timer and wait for associated callback to finish 1613 * if it was running. 1614 */ 1615 ret = hrtimer_cancel(&t->timer); 1616 if (inc) 1617 atomic_dec(&t->cancelling); 1618 return ret; 1619 } 1620 1621 static const struct bpf_func_proto bpf_timer_cancel_proto = { 1622 .func = bpf_timer_cancel, 1623 .gpl_only = true, 1624 .ret_type = RET_INTEGER, 1625 .arg1_type = ARG_PTR_TO_TIMER, 1626 }; 1627 1628 static void bpf_async_process_op(struct bpf_async_cb *cb, u32 op, 1629 u64 timer_nsec, u32 timer_mode) 1630 { 1631 switch (cb->type) { 1632 case BPF_ASYNC_TYPE_TIMER: { 1633 struct bpf_hrtimer *t = container_of(cb, struct bpf_hrtimer, cb); 1634 1635 switch (op) { 1636 case BPF_ASYNC_START: 1637 hrtimer_start(&t->timer, ns_to_ktime(timer_nsec), timer_mode); 1638 break; 1639 case BPF_ASYNC_CANCEL: 1640 hrtimer_try_to_cancel(&t->timer); 1641 break; 1642 } 1643 break; 1644 } 1645 case BPF_ASYNC_TYPE_WQ: { 1646 struct bpf_work *w = container_of(cb, struct bpf_work, cb); 1647 1648 switch (op) { 1649 case BPF_ASYNC_START: 1650 schedule_work(&w->work); 1651 break; 1652 case BPF_ASYNC_CANCEL: 1653 cancel_work(&w->work); 1654 break; 1655 } 1656 break; 1657 } 1658 } 1659 bpf_async_refcount_put(cb); 1660 } 1661 1662 static void bpf_async_irq_worker(struct irq_work *work) 1663 { 1664 struct bpf_async_cb *cb = container_of(work, struct bpf_async_cb, worker); 1665 struct llist_node *pos, *n, *list; 1666 1667 list = llist_del_all(&cb->async_cmds); 1668 if (!list) 1669 return; 1670 1671 list = llist_reverse_order(list); 1672 this_cpu_write(async_cb_running, cb); 1673 llist_for_each_safe(pos, n, list) { 1674 struct bpf_async_cmd *cmd; 1675 1676 cmd = container_of(pos, struct bpf_async_cmd, node); 1677 bpf_async_process_op(cb, cmd->op, cmd->nsec, cmd->mode); 1678 kfree_nolock(cmd); 1679 } 1680 this_cpu_write(async_cb_running, NULL); 1681 } 1682 1683 static void bpf_async_cancel_and_free(struct bpf_async_kern *async) 1684 { 1685 struct bpf_async_cb *cb; 1686 1687 if (!READ_ONCE(async->cb)) 1688 return; 1689 1690 cb = xchg(&async->cb, NULL); 1691 if (!cb) 1692 return; 1693 1694 bpf_async_update_prog_callback(cb, NULL, NULL); 1695 /* 1696 * No refcount_inc_not_zero(&cb->refcnt) here. Dropping the last 1697 * refcnt. Either synchronously or asynchronously in irq_work. 1698 */ 1699 1700 if (!defer_timer_wq_op()) { 1701 bpf_async_process_op(cb, BPF_ASYNC_CANCEL, 0, 0); 1702 } else { 1703 (void)bpf_async_schedule_op(cb, BPF_ASYNC_CANCEL, 0, 0); 1704 /* 1705 * bpf_async_schedule_op() either enqueues allocated cmd into llist 1706 * or fails with ENOMEM and drop the last refcnt. 1707 * This is unlikely, but safe, since bpf_async_cb_rcu_tasks_trace_free() 1708 * callback will do additional timer/wq_cancel due to races anyway. 1709 */ 1710 } 1711 } 1712 1713 /* 1714 * This function is called by map_delete/update_elem for individual element and 1715 * by ops->map_release_uref when the user space reference to a map reaches zero. 1716 */ 1717 void bpf_timer_cancel_and_free(void *val) 1718 { 1719 bpf_async_cancel_and_free(val); 1720 } 1721 1722 /* 1723 * This function is called by map_delete/update_elem for individual element and 1724 * by ops->map_release_uref when the user space reference to a map reaches zero. 1725 */ 1726 void bpf_wq_cancel_and_free(void *val) 1727 { 1728 bpf_async_cancel_and_free(val); 1729 } 1730 1731 BPF_CALL_2(bpf_kptr_xchg, void *, dst, void *, ptr) 1732 { 1733 unsigned long *kptr = dst; 1734 1735 /* This helper may be inlined by verifier. */ 1736 return xchg(kptr, (unsigned long)ptr); 1737 } 1738 1739 /* Unlike other PTR_TO_BTF_ID helpers the btf_id in bpf_kptr_xchg() 1740 * helper is determined dynamically by the verifier. Use BPF_PTR_POISON to 1741 * denote type that verifier will determine. 1742 */ 1743 static const struct bpf_func_proto bpf_kptr_xchg_proto = { 1744 .func = bpf_kptr_xchg, 1745 .gpl_only = false, 1746 .ret_type = RET_PTR_TO_BTF_ID_OR_NULL, 1747 .ret_btf_id = BPF_PTR_POISON, 1748 .arg1_type = ARG_KPTR_XCHG_DEST, 1749 .arg2_type = ARG_PTR_TO_BTF_ID_OR_NULL | OBJ_RELEASE, 1750 .arg2_btf_id = BPF_PTR_POISON, 1751 }; 1752 1753 struct bpf_dynptr_file_impl { 1754 struct freader freader; 1755 /* 64 bit offset and size overriding 32 bit ones in bpf_dynptr_kern */ 1756 u64 offset; 1757 u64 size; 1758 }; 1759 1760 /* Since the upper 8 bits of dynptr->size is reserved, the 1761 * maximum supported size is 2^24 - 1. 1762 */ 1763 #define DYNPTR_MAX_SIZE ((1UL << 24) - 1) 1764 #define DYNPTR_TYPE_SHIFT 28 1765 #define DYNPTR_SIZE_MASK 0xFFFFFF 1766 #define DYNPTR_RDONLY_BIT BIT(31) 1767 1768 bool __bpf_dynptr_is_rdonly(const struct bpf_dynptr_kern *ptr) 1769 { 1770 return ptr->size & DYNPTR_RDONLY_BIT; 1771 } 1772 1773 void bpf_dynptr_set_rdonly(struct bpf_dynptr_kern *ptr) 1774 { 1775 ptr->size |= DYNPTR_RDONLY_BIT; 1776 } 1777 1778 static void bpf_dynptr_set_type(struct bpf_dynptr_kern *ptr, enum bpf_dynptr_type type) 1779 { 1780 ptr->size |= type << DYNPTR_TYPE_SHIFT; 1781 } 1782 1783 static enum bpf_dynptr_type bpf_dynptr_get_type(const struct bpf_dynptr_kern *ptr) 1784 { 1785 return (ptr->size & ~(DYNPTR_RDONLY_BIT)) >> DYNPTR_TYPE_SHIFT; 1786 } 1787 1788 u64 __bpf_dynptr_size(const struct bpf_dynptr_kern *ptr) 1789 { 1790 if (bpf_dynptr_get_type(ptr) == BPF_DYNPTR_TYPE_FILE) { 1791 struct bpf_dynptr_file_impl *df = ptr->data; 1792 1793 return df->size; 1794 } 1795 1796 return ptr->size & DYNPTR_SIZE_MASK; 1797 } 1798 1799 static void bpf_dynptr_advance_offset(struct bpf_dynptr_kern *ptr, u64 off) 1800 { 1801 if (bpf_dynptr_get_type(ptr) == BPF_DYNPTR_TYPE_FILE) { 1802 struct bpf_dynptr_file_impl *df = ptr->data; 1803 1804 df->offset += off; 1805 return; 1806 } 1807 ptr->offset += off; 1808 } 1809 1810 static void bpf_dynptr_set_size(struct bpf_dynptr_kern *ptr, u64 new_size) 1811 { 1812 u32 metadata = ptr->size & ~DYNPTR_SIZE_MASK; 1813 1814 if (bpf_dynptr_get_type(ptr) == BPF_DYNPTR_TYPE_FILE) { 1815 struct bpf_dynptr_file_impl *df = ptr->data; 1816 1817 df->size = new_size; 1818 return; 1819 } 1820 ptr->size = (u32)new_size | metadata; 1821 } 1822 1823 int bpf_dynptr_check_size(u64 size) 1824 { 1825 return size > DYNPTR_MAX_SIZE ? -E2BIG : 0; 1826 } 1827 1828 static int bpf_file_fetch_bytes(struct bpf_dynptr_file_impl *df, u64 offset, void *buf, u64 len) 1829 { 1830 const void *ptr; 1831 1832 if (!buf) 1833 return -EINVAL; 1834 1835 df->freader.buf = buf; 1836 df->freader.buf_sz = len; 1837 ptr = freader_fetch(&df->freader, offset + df->offset, len); 1838 if (!ptr) 1839 return df->freader.err; 1840 1841 if (ptr != buf) /* Force copying into the buffer */ 1842 memcpy(buf, ptr, len); 1843 1844 return 0; 1845 } 1846 1847 void bpf_dynptr_init(struct bpf_dynptr_kern *ptr, void *data, 1848 enum bpf_dynptr_type type, u32 offset, u32 size) 1849 { 1850 ptr->data = data; 1851 ptr->offset = offset; 1852 ptr->size = size; 1853 bpf_dynptr_set_type(ptr, type); 1854 } 1855 1856 void bpf_dynptr_set_null(struct bpf_dynptr_kern *ptr) 1857 { 1858 memset(ptr, 0, sizeof(*ptr)); 1859 } 1860 1861 BPF_CALL_4(bpf_dynptr_from_mem, void *, data, u64, size, u64, flags, struct bpf_dynptr_kern *, ptr) 1862 { 1863 int err; 1864 1865 BTF_TYPE_EMIT(struct bpf_dynptr); 1866 1867 err = bpf_dynptr_check_size(size); 1868 if (err) 1869 goto error; 1870 1871 /* flags is currently unsupported */ 1872 if (flags) { 1873 err = -EINVAL; 1874 goto error; 1875 } 1876 1877 bpf_dynptr_init(ptr, data, BPF_DYNPTR_TYPE_LOCAL, 0, size); 1878 1879 return 0; 1880 1881 error: 1882 bpf_dynptr_set_null(ptr); 1883 return err; 1884 } 1885 1886 static const struct bpf_func_proto bpf_dynptr_from_mem_proto = { 1887 .func = bpf_dynptr_from_mem, 1888 .gpl_only = false, 1889 .ret_type = RET_INTEGER, 1890 .arg1_type = ARG_PTR_TO_UNINIT_MEM, 1891 .arg2_type = ARG_CONST_SIZE_OR_ZERO, 1892 .arg3_type = ARG_ANYTHING, 1893 .arg4_type = ARG_PTR_TO_DYNPTR | DYNPTR_TYPE_LOCAL | MEM_UNINIT | MEM_WRITE, 1894 }; 1895 1896 static int __bpf_dynptr_read(void *dst, u64 len, const struct bpf_dynptr_kern *src, 1897 u64 offset, u64 flags) 1898 { 1899 enum bpf_dynptr_type type; 1900 int err; 1901 1902 if (!src->data || flags) 1903 return -EINVAL; 1904 1905 err = bpf_dynptr_check_off_len(src, offset, len); 1906 if (err) 1907 return err; 1908 1909 type = bpf_dynptr_get_type(src); 1910 1911 switch (type) { 1912 case BPF_DYNPTR_TYPE_LOCAL: 1913 case BPF_DYNPTR_TYPE_RINGBUF: 1914 /* Source and destination may possibly overlap, hence use memmove to 1915 * copy the data. E.g. bpf_dynptr_from_mem may create two dynptr 1916 * pointing to overlapping PTR_TO_MAP_VALUE regions. 1917 */ 1918 memmove(dst, src->data + src->offset + offset, len); 1919 return 0; 1920 case BPF_DYNPTR_TYPE_SKB: 1921 return __bpf_skb_load_bytes(src->data, src->offset + offset, dst, len); 1922 case BPF_DYNPTR_TYPE_XDP: 1923 return __bpf_xdp_load_bytes(src->data, src->offset + offset, dst, len); 1924 case BPF_DYNPTR_TYPE_SKB_META: 1925 memmove(dst, bpf_skb_meta_pointer(src->data, src->offset + offset), len); 1926 return 0; 1927 case BPF_DYNPTR_TYPE_FILE: 1928 return bpf_file_fetch_bytes(src->data, offset, dst, len); 1929 default: 1930 WARN_ONCE(true, "bpf_dynptr_read: unknown dynptr type %d\n", type); 1931 return -EFAULT; 1932 } 1933 } 1934 1935 BPF_CALL_5(bpf_dynptr_read, void *, dst, u64, len, const struct bpf_dynptr_kern *, src, 1936 u64, offset, u64, flags) 1937 { 1938 return __bpf_dynptr_read(dst, len, src, offset, flags); 1939 } 1940 1941 static const struct bpf_func_proto bpf_dynptr_read_proto = { 1942 .func = bpf_dynptr_read, 1943 .gpl_only = false, 1944 .ret_type = RET_INTEGER, 1945 .arg1_type = ARG_PTR_TO_UNINIT_MEM, 1946 .arg2_type = ARG_CONST_SIZE_OR_ZERO, 1947 .arg3_type = ARG_PTR_TO_DYNPTR, 1948 .arg4_type = ARG_ANYTHING, 1949 .arg5_type = ARG_ANYTHING, 1950 }; 1951 1952 int __bpf_dynptr_write(const struct bpf_dynptr_kern *dst, u64 offset, void *src, 1953 u64 len, u64 flags) 1954 { 1955 enum bpf_dynptr_type type; 1956 int err; 1957 1958 if (!dst->data || __bpf_dynptr_is_rdonly(dst)) 1959 return -EINVAL; 1960 1961 err = bpf_dynptr_check_off_len(dst, offset, len); 1962 if (err) 1963 return err; 1964 1965 type = bpf_dynptr_get_type(dst); 1966 1967 switch (type) { 1968 case BPF_DYNPTR_TYPE_LOCAL: 1969 case BPF_DYNPTR_TYPE_RINGBUF: 1970 if (flags) 1971 return -EINVAL; 1972 /* Source and destination may possibly overlap, hence use memmove to 1973 * copy the data. E.g. bpf_dynptr_from_mem may create two dynptr 1974 * pointing to overlapping PTR_TO_MAP_VALUE regions. 1975 */ 1976 memmove(dst->data + dst->offset + offset, src, len); 1977 return 0; 1978 case BPF_DYNPTR_TYPE_SKB: 1979 return __bpf_skb_store_bytes(dst->data, dst->offset + offset, src, len, 1980 flags); 1981 case BPF_DYNPTR_TYPE_XDP: 1982 if (flags) 1983 return -EINVAL; 1984 return __bpf_xdp_store_bytes(dst->data, dst->offset + offset, src, len); 1985 case BPF_DYNPTR_TYPE_SKB_META: 1986 return __bpf_skb_meta_store_bytes(dst->data, dst->offset + offset, src, 1987 len, flags); 1988 default: 1989 WARN_ONCE(true, "bpf_dynptr_write: unknown dynptr type %d\n", type); 1990 return -EFAULT; 1991 } 1992 } 1993 1994 BPF_CALL_5(bpf_dynptr_write, const struct bpf_dynptr_kern *, dst, u64, offset, void *, src, 1995 u64, len, u64, flags) 1996 { 1997 return __bpf_dynptr_write(dst, offset, src, len, flags); 1998 } 1999 2000 static const struct bpf_func_proto bpf_dynptr_write_proto = { 2001 .func = bpf_dynptr_write, 2002 .gpl_only = false, 2003 .ret_type = RET_INTEGER, 2004 .arg1_type = ARG_PTR_TO_DYNPTR, 2005 .arg2_type = ARG_ANYTHING, 2006 .arg3_type = ARG_PTR_TO_MEM | MEM_RDONLY, 2007 .arg4_type = ARG_CONST_SIZE_OR_ZERO, 2008 .arg5_type = ARG_ANYTHING, 2009 }; 2010 2011 BPF_CALL_3(bpf_dynptr_data, const struct bpf_dynptr_kern *, ptr, u64, offset, u64, len) 2012 { 2013 enum bpf_dynptr_type type; 2014 int err; 2015 2016 if (!ptr->data) 2017 return 0; 2018 2019 err = bpf_dynptr_check_off_len(ptr, offset, len); 2020 if (err) 2021 return 0; 2022 2023 if (__bpf_dynptr_is_rdonly(ptr)) 2024 return 0; 2025 2026 type = bpf_dynptr_get_type(ptr); 2027 2028 switch (type) { 2029 case BPF_DYNPTR_TYPE_LOCAL: 2030 case BPF_DYNPTR_TYPE_RINGBUF: 2031 return (unsigned long)(ptr->data + ptr->offset + offset); 2032 case BPF_DYNPTR_TYPE_SKB: 2033 case BPF_DYNPTR_TYPE_XDP: 2034 case BPF_DYNPTR_TYPE_SKB_META: 2035 /* skb and xdp dynptrs should use bpf_dynptr_slice / bpf_dynptr_slice_rdwr */ 2036 return 0; 2037 default: 2038 WARN_ONCE(true, "bpf_dynptr_data: unknown dynptr type %d\n", type); 2039 return 0; 2040 } 2041 } 2042 2043 static const struct bpf_func_proto bpf_dynptr_data_proto = { 2044 .func = bpf_dynptr_data, 2045 .gpl_only = false, 2046 .ret_type = RET_PTR_TO_DYNPTR_MEM_OR_NULL, 2047 .arg1_type = ARG_PTR_TO_DYNPTR, 2048 .arg2_type = ARG_ANYTHING, 2049 .arg3_type = ARG_CONST_ALLOC_SIZE_OR_ZERO, 2050 }; 2051 2052 const struct bpf_func_proto bpf_get_current_task_proto __weak; 2053 const struct bpf_func_proto bpf_get_current_task_btf_proto __weak; 2054 const struct bpf_func_proto bpf_probe_read_user_proto __weak; 2055 const struct bpf_func_proto bpf_probe_read_user_str_proto __weak; 2056 const struct bpf_func_proto bpf_probe_read_kernel_proto __weak; 2057 const struct bpf_func_proto bpf_probe_read_kernel_str_proto __weak; 2058 const struct bpf_func_proto bpf_task_pt_regs_proto __weak; 2059 const struct bpf_func_proto bpf_perf_event_read_proto __weak; 2060 const struct bpf_func_proto bpf_send_signal_proto __weak; 2061 const struct bpf_func_proto bpf_send_signal_thread_proto __weak; 2062 const struct bpf_func_proto bpf_get_task_stack_sleepable_proto __weak; 2063 const struct bpf_func_proto bpf_get_task_stack_proto __weak; 2064 const struct bpf_func_proto bpf_get_branch_snapshot_proto __weak; 2065 2066 const struct bpf_func_proto * 2067 bpf_base_func_proto(enum bpf_func_id func_id, const struct bpf_prog *prog) 2068 { 2069 switch (func_id) { 2070 case BPF_FUNC_map_lookup_elem: 2071 return &bpf_map_lookup_elem_proto; 2072 case BPF_FUNC_map_update_elem: 2073 return &bpf_map_update_elem_proto; 2074 case BPF_FUNC_map_delete_elem: 2075 return &bpf_map_delete_elem_proto; 2076 case BPF_FUNC_map_push_elem: 2077 return &bpf_map_push_elem_proto; 2078 case BPF_FUNC_map_pop_elem: 2079 return &bpf_map_pop_elem_proto; 2080 case BPF_FUNC_map_peek_elem: 2081 return &bpf_map_peek_elem_proto; 2082 case BPF_FUNC_map_lookup_percpu_elem: 2083 return &bpf_map_lookup_percpu_elem_proto; 2084 case BPF_FUNC_get_prandom_u32: 2085 return &bpf_get_prandom_u32_proto; 2086 case BPF_FUNC_get_smp_processor_id: 2087 return &bpf_get_raw_smp_processor_id_proto; 2088 case BPF_FUNC_get_numa_node_id: 2089 return &bpf_get_numa_node_id_proto; 2090 case BPF_FUNC_tail_call: 2091 return &bpf_tail_call_proto; 2092 case BPF_FUNC_ktime_get_ns: 2093 return &bpf_ktime_get_ns_proto; 2094 case BPF_FUNC_ktime_get_boot_ns: 2095 return &bpf_ktime_get_boot_ns_proto; 2096 case BPF_FUNC_ktime_get_tai_ns: 2097 return &bpf_ktime_get_tai_ns_proto; 2098 case BPF_FUNC_ringbuf_output: 2099 return &bpf_ringbuf_output_proto; 2100 case BPF_FUNC_ringbuf_reserve: 2101 return &bpf_ringbuf_reserve_proto; 2102 case BPF_FUNC_ringbuf_submit: 2103 return &bpf_ringbuf_submit_proto; 2104 case BPF_FUNC_ringbuf_discard: 2105 return &bpf_ringbuf_discard_proto; 2106 case BPF_FUNC_ringbuf_query: 2107 return &bpf_ringbuf_query_proto; 2108 case BPF_FUNC_strncmp: 2109 return &bpf_strncmp_proto; 2110 case BPF_FUNC_strtol: 2111 return &bpf_strtol_proto; 2112 case BPF_FUNC_strtoul: 2113 return &bpf_strtoul_proto; 2114 case BPF_FUNC_get_current_pid_tgid: 2115 return &bpf_get_current_pid_tgid_proto; 2116 case BPF_FUNC_get_ns_current_pid_tgid: 2117 return &bpf_get_ns_current_pid_tgid_proto; 2118 case BPF_FUNC_get_current_uid_gid: 2119 return &bpf_get_current_uid_gid_proto; 2120 default: 2121 break; 2122 } 2123 2124 if (!bpf_token_capable(prog->aux->token, CAP_BPF)) 2125 return NULL; 2126 2127 switch (func_id) { 2128 case BPF_FUNC_spin_lock: 2129 return &bpf_spin_lock_proto; 2130 case BPF_FUNC_spin_unlock: 2131 return &bpf_spin_unlock_proto; 2132 case BPF_FUNC_jiffies64: 2133 return &bpf_jiffies64_proto; 2134 case BPF_FUNC_per_cpu_ptr: 2135 return &bpf_per_cpu_ptr_proto; 2136 case BPF_FUNC_this_cpu_ptr: 2137 return &bpf_this_cpu_ptr_proto; 2138 case BPF_FUNC_timer_init: 2139 return &bpf_timer_init_proto; 2140 case BPF_FUNC_timer_set_callback: 2141 return &bpf_timer_set_callback_proto; 2142 case BPF_FUNC_timer_start: 2143 return &bpf_timer_start_proto; 2144 case BPF_FUNC_timer_cancel: 2145 return &bpf_timer_cancel_proto; 2146 case BPF_FUNC_kptr_xchg: 2147 return &bpf_kptr_xchg_proto; 2148 case BPF_FUNC_for_each_map_elem: 2149 return &bpf_for_each_map_elem_proto; 2150 case BPF_FUNC_loop: 2151 return &bpf_loop_proto; 2152 case BPF_FUNC_user_ringbuf_drain: 2153 return &bpf_user_ringbuf_drain_proto; 2154 case BPF_FUNC_ringbuf_reserve_dynptr: 2155 return &bpf_ringbuf_reserve_dynptr_proto; 2156 case BPF_FUNC_ringbuf_submit_dynptr: 2157 return &bpf_ringbuf_submit_dynptr_proto; 2158 case BPF_FUNC_ringbuf_discard_dynptr: 2159 return &bpf_ringbuf_discard_dynptr_proto; 2160 case BPF_FUNC_dynptr_from_mem: 2161 return &bpf_dynptr_from_mem_proto; 2162 case BPF_FUNC_dynptr_read: 2163 return &bpf_dynptr_read_proto; 2164 case BPF_FUNC_dynptr_write: 2165 return &bpf_dynptr_write_proto; 2166 case BPF_FUNC_dynptr_data: 2167 return &bpf_dynptr_data_proto; 2168 #ifdef CONFIG_CGROUPS 2169 case BPF_FUNC_cgrp_storage_get: 2170 return &bpf_cgrp_storage_get_proto; 2171 case BPF_FUNC_cgrp_storage_delete: 2172 return &bpf_cgrp_storage_delete_proto; 2173 case BPF_FUNC_get_current_cgroup_id: 2174 return &bpf_get_current_cgroup_id_proto; 2175 case BPF_FUNC_get_current_ancestor_cgroup_id: 2176 return &bpf_get_current_ancestor_cgroup_id_proto; 2177 case BPF_FUNC_current_task_under_cgroup: 2178 return &bpf_current_task_under_cgroup_proto; 2179 #endif 2180 #ifdef CONFIG_CGROUP_NET_CLASSID 2181 case BPF_FUNC_get_cgroup_classid: 2182 return &bpf_get_cgroup_classid_curr_proto; 2183 #endif 2184 case BPF_FUNC_task_storage_get: 2185 return &bpf_task_storage_get_proto; 2186 case BPF_FUNC_task_storage_delete: 2187 return &bpf_task_storage_delete_proto; 2188 default: 2189 break; 2190 } 2191 2192 if (!bpf_token_capable(prog->aux->token, CAP_PERFMON)) 2193 return NULL; 2194 2195 switch (func_id) { 2196 case BPF_FUNC_trace_printk: 2197 return bpf_get_trace_printk_proto(); 2198 case BPF_FUNC_get_current_task: 2199 return &bpf_get_current_task_proto; 2200 case BPF_FUNC_get_current_task_btf: 2201 return &bpf_get_current_task_btf_proto; 2202 case BPF_FUNC_get_current_comm: 2203 return &bpf_get_current_comm_proto; 2204 case BPF_FUNC_probe_read_user: 2205 return &bpf_probe_read_user_proto; 2206 case BPF_FUNC_probe_read_kernel: 2207 return security_locked_down(LOCKDOWN_BPF_READ_KERNEL) < 0 ? 2208 NULL : &bpf_probe_read_kernel_proto; 2209 case BPF_FUNC_probe_read_user_str: 2210 return &bpf_probe_read_user_str_proto; 2211 case BPF_FUNC_probe_read_kernel_str: 2212 return security_locked_down(LOCKDOWN_BPF_READ_KERNEL) < 0 ? 2213 NULL : &bpf_probe_read_kernel_str_proto; 2214 case BPF_FUNC_copy_from_user: 2215 return &bpf_copy_from_user_proto; 2216 case BPF_FUNC_copy_from_user_task: 2217 return &bpf_copy_from_user_task_proto; 2218 case BPF_FUNC_snprintf_btf: 2219 return &bpf_snprintf_btf_proto; 2220 case BPF_FUNC_snprintf: 2221 return &bpf_snprintf_proto; 2222 case BPF_FUNC_task_pt_regs: 2223 return &bpf_task_pt_regs_proto; 2224 case BPF_FUNC_trace_vprintk: 2225 return bpf_get_trace_vprintk_proto(); 2226 case BPF_FUNC_perf_event_read_value: 2227 return bpf_get_perf_event_read_value_proto(); 2228 case BPF_FUNC_perf_event_read: 2229 return &bpf_perf_event_read_proto; 2230 case BPF_FUNC_send_signal: 2231 return &bpf_send_signal_proto; 2232 case BPF_FUNC_send_signal_thread: 2233 return &bpf_send_signal_thread_proto; 2234 case BPF_FUNC_get_task_stack: 2235 return prog->sleepable ? &bpf_get_task_stack_sleepable_proto 2236 : &bpf_get_task_stack_proto; 2237 case BPF_FUNC_get_branch_snapshot: 2238 return &bpf_get_branch_snapshot_proto; 2239 case BPF_FUNC_find_vma: 2240 return &bpf_find_vma_proto; 2241 default: 2242 return NULL; 2243 } 2244 } 2245 EXPORT_SYMBOL_GPL(bpf_base_func_proto); 2246 2247 void bpf_list_head_free(const struct btf_field *field, void *list_head, 2248 struct bpf_spin_lock *spin_lock) 2249 { 2250 struct list_head *head = list_head, drain, *pos, *n; 2251 2252 BUILD_BUG_ON(sizeof(struct list_head) > sizeof(struct bpf_list_head)); 2253 BUILD_BUG_ON(__alignof__(struct list_head) > __alignof__(struct bpf_list_head)); 2254 INIT_LIST_HEAD(&drain); 2255 2256 /* Do the actual list draining outside the lock to not hold the lock for 2257 * too long, and also prevent deadlocks if tracing programs end up 2258 * executing on entry/exit of functions called inside the critical 2259 * section, and end up doing map ops that call bpf_list_head_free for 2260 * the same map value again. 2261 */ 2262 __bpf_spin_lock_irqsave(spin_lock); 2263 if (!head->next || list_empty(head)) 2264 goto unlock; 2265 list_for_each_safe(pos, n, head) { 2266 struct bpf_list_node_kern *node; 2267 2268 node = container_of(pos, struct bpf_list_node_kern, list_head); 2269 WRITE_ONCE(node->owner, BPF_PTR_POISON); 2270 list_move_tail(pos, &drain); 2271 } 2272 unlock: 2273 INIT_LIST_HEAD(head); 2274 __bpf_spin_unlock_irqrestore(spin_lock); 2275 2276 while (!list_empty(&drain)) { 2277 struct bpf_list_node_kern *node; 2278 2279 pos = drain.next; 2280 node = container_of(pos, struct bpf_list_node_kern, list_head); 2281 list_del_init(pos); 2282 /* Ensure __bpf_list_add() sees the node as unlinked. */ 2283 smp_store_release(&node->owner, NULL); 2284 /* The contained type can also have resources, including a 2285 * bpf_list_head which needs to be freed. 2286 */ 2287 __bpf_obj_drop_impl((char *)pos - field->graph_root.node_offset, 2288 field->graph_root.value_rec, false); 2289 } 2290 } 2291 2292 /* Like rbtree_postorder_for_each_entry_safe, but 'pos' and 'n' are 2293 * 'rb_node *', so field name of rb_node within containing struct is not 2294 * needed. 2295 * 2296 * Since bpf_rb_tree's node type has a corresponding struct btf_field with 2297 * graph_root.node_offset, it's not necessary to know field name 2298 * or type of node struct 2299 */ 2300 #define bpf_rbtree_postorder_for_each_entry_safe(pos, n, root) \ 2301 for (pos = rb_first_postorder(root); \ 2302 pos && ({ n = rb_next_postorder(pos); 1; }); \ 2303 pos = n) 2304 2305 void bpf_rb_root_free(const struct btf_field *field, void *rb_root, 2306 struct bpf_spin_lock *spin_lock) 2307 { 2308 struct rb_root_cached orig_root, *root = rb_root; 2309 struct rb_node *pos, *n; 2310 void *obj; 2311 2312 BUILD_BUG_ON(sizeof(struct rb_root_cached) > sizeof(struct bpf_rb_root)); 2313 BUILD_BUG_ON(__alignof__(struct rb_root_cached) > __alignof__(struct bpf_rb_root)); 2314 2315 __bpf_spin_lock_irqsave(spin_lock); 2316 orig_root = *root; 2317 *root = RB_ROOT_CACHED; 2318 __bpf_spin_unlock_irqrestore(spin_lock); 2319 2320 bpf_rbtree_postorder_for_each_entry_safe(pos, n, &orig_root.rb_root) { 2321 obj = pos; 2322 obj -= field->graph_root.node_offset; 2323 2324 2325 __bpf_obj_drop_impl(obj, field->graph_root.value_rec, false); 2326 } 2327 } 2328 2329 __bpf_kfunc_start_defs(); 2330 2331 /** 2332 * bpf_obj_new() - allocate an object described by program BTF 2333 * @local_type_id__k: type ID in program BTF 2334 * @meta: verifier-supplied struct metadata 2335 * 2336 * Allocate an object of the type identified by @local_type_id__k and 2337 * initialize its special fields. BPF programs can use 2338 * bpf_core_type_id_local() to provide @local_type_id__k. The verifier 2339 * rewrites @meta; BPF programs do not set it. 2340 * 2341 * Return: Pointer to the allocated object, or %NULL on failure. 2342 */ 2343 __bpf_kfunc void *bpf_obj_new(u64 local_type_id__k, struct btf_struct_meta *meta) 2344 { 2345 u64 size = local_type_id__k; 2346 void *p; 2347 2348 p = bpf_mem_alloc(&bpf_global_ma, size); 2349 if (!p) 2350 return NULL; 2351 if (meta) 2352 bpf_obj_init(meta->record, p); 2353 2354 return p; 2355 } 2356 2357 __bpf_kfunc void *bpf_obj_new_impl(u64 local_type_id__k, void *meta__ign) 2358 { 2359 return bpf_obj_new(local_type_id__k, meta__ign); 2360 } 2361 2362 /** 2363 * bpf_percpu_obj_new() - allocate a percpu object described by program BTF 2364 * @local_type_id__k: type ID in program BTF 2365 * @meta: verifier-supplied struct metadata 2366 * 2367 * Allocate a percpu object of the type identified by @local_type_id__k. BPF 2368 * programs can use bpf_core_type_id_local() to provide @local_type_id__k. 2369 * The verifier rewrites @meta; BPF programs do not set it. 2370 * 2371 * Return: Pointer to the allocated percpu object, or %NULL on failure. 2372 */ 2373 __bpf_kfunc void *bpf_percpu_obj_new(u64 local_type_id__k, struct btf_struct_meta *meta) 2374 { 2375 u64 size = local_type_id__k; 2376 2377 /* The verifier has ensured that meta must be NULL */ 2378 return bpf_mem_alloc(&bpf_global_percpu_ma, size); 2379 } 2380 2381 __bpf_kfunc void *bpf_percpu_obj_new_impl(u64 local_type_id__k, void *meta__ign) 2382 { 2383 return bpf_percpu_obj_new(local_type_id__k, meta__ign); 2384 } 2385 2386 /* Must be called under migrate_disable(), as required by bpf_mem_free */ 2387 void __bpf_obj_drop_impl(void *p, const struct btf_record *rec, bool percpu) 2388 { 2389 struct bpf_mem_alloc *ma; 2390 2391 if (rec && rec->refcount_off >= 0 && 2392 !refcount_dec_and_test((refcount_t *)(p + rec->refcount_off))) { 2393 /* Object is refcounted and refcount_dec didn't result in 0 2394 * refcount. Return without freeing the object 2395 */ 2396 return; 2397 } 2398 2399 if (rec) 2400 bpf_obj_free_fields(rec, p); 2401 2402 if (percpu) 2403 ma = &bpf_global_percpu_ma; 2404 else 2405 ma = &bpf_global_ma; 2406 bpf_mem_free_rcu(ma, p); 2407 } 2408 2409 /** 2410 * bpf_obj_drop() - drop a previously allocated object 2411 * @p__alloc: object to free 2412 * @meta: verifier-supplied struct metadata 2413 * 2414 * Destroy special fields in @p__alloc as needed and free the object. The 2415 * verifier rewrites @meta; BPF programs do not set it. 2416 */ 2417 __bpf_kfunc void bpf_obj_drop(void *p__alloc, struct btf_struct_meta *meta) 2418 { 2419 void *p = p__alloc; 2420 2421 __bpf_obj_drop_impl(p, meta ? meta->record : NULL, false); 2422 } 2423 2424 __bpf_kfunc void bpf_obj_drop_impl(void *p__alloc, void *meta__ign) 2425 { 2426 return bpf_obj_drop(p__alloc, meta__ign); 2427 } 2428 2429 /** 2430 * bpf_percpu_obj_drop() - drop a previously allocated percpu object 2431 * @p__alloc: percpu object to free 2432 * @meta: verifier-supplied struct metadata 2433 * 2434 * Free @p__alloc. The verifier rewrites @meta; BPF programs do not set it. 2435 */ 2436 __bpf_kfunc void bpf_percpu_obj_drop(void *p__alloc, struct btf_struct_meta *meta) 2437 { 2438 /* The verifier has ensured that meta must be NULL */ 2439 bpf_mem_free_rcu(&bpf_global_percpu_ma, p__alloc); 2440 } 2441 2442 __bpf_kfunc void bpf_percpu_obj_drop_impl(void *p__alloc, void *meta__ign) 2443 { 2444 bpf_percpu_obj_drop(p__alloc, meta__ign); 2445 } 2446 2447 /** 2448 * bpf_refcount_acquire() - turn a local kptr into an owning reference 2449 * @p__refcounted_kptr: non-owning local kptr 2450 * @meta: verifier-supplied struct metadata 2451 * 2452 * Increment the refcount for @p__refcounted_kptr. The verifier rewrites 2453 * @meta; BPF programs do not set it. 2454 * 2455 * Return: Owning reference to @p__refcounted_kptr, or %NULL on failure. 2456 */ 2457 __bpf_kfunc void *bpf_refcount_acquire(void *p__refcounted_kptr, struct btf_struct_meta *meta) 2458 { 2459 struct bpf_refcount *ref; 2460 2461 /* Could just cast directly to refcount_t *, but need some code using 2462 * bpf_refcount type so that it is emitted in vmlinux BTF 2463 */ 2464 ref = (struct bpf_refcount *)(p__refcounted_kptr + meta->record->refcount_off); 2465 if (!refcount_inc_not_zero((refcount_t *)ref)) 2466 return NULL; 2467 2468 /* Verifier strips KF_RET_NULL if input is owned ref, see is_kfunc_ret_null 2469 * in verifier.c 2470 */ 2471 return (void *)p__refcounted_kptr; 2472 } 2473 2474 __bpf_kfunc void *bpf_refcount_acquire_impl(void *p__refcounted_kptr, void *meta__ign) 2475 { 2476 return bpf_refcount_acquire(p__refcounted_kptr, meta__ign); 2477 } 2478 2479 static int __bpf_list_add(struct bpf_list_node_kern *node, 2480 struct bpf_list_head *head, 2481 struct list_head **prev_ptr, 2482 struct btf_record *rec, u64 off) 2483 { 2484 struct list_head *n = &node->list_head, *h = (void *)head; 2485 struct list_head *prev; 2486 2487 /* If list_head was 0-initialized by map, bpf_obj_init_field wasn't 2488 * called on its fields, so init here 2489 */ 2490 if (unlikely(!h->next)) 2491 INIT_LIST_HEAD(h); 2492 2493 prev = *prev_ptr; 2494 2495 /* When prev is not the list head, it must be a node in this list. */ 2496 if (prev != h) { 2497 struct bpf_list_node_kern *prev_kn = 2498 container_of(prev, struct bpf_list_node_kern, list_head); 2499 2500 if (unlikely(READ_ONCE(prev_kn->owner) != head)) 2501 goto fail; 2502 } 2503 2504 /* node->owner != NULL implies !list_empty(n), no need to separately 2505 * check the latter 2506 */ 2507 if (cmpxchg(&node->owner, NULL, BPF_PTR_POISON)) 2508 goto fail; 2509 2510 list_add(n, prev); 2511 WRITE_ONCE(node->owner, head); 2512 return 0; 2513 2514 fail: 2515 /* Only called from BPF prog, no need to migrate_disable */ 2516 __bpf_obj_drop_impl((void *)n - off, rec, false); 2517 return -EINVAL; 2518 } 2519 2520 /** 2521 * bpf_list_push_front() - add a node to the front of a BPF linked list 2522 * @head: list head 2523 * @node: node to insert 2524 * @meta: verifier-supplied struct metadata 2525 * @off: verifier-supplied offset of @node within the containing object 2526 * 2527 * Insert @node at the front of @head. The verifier rewrites @meta and @off; 2528 * BPF programs do not set them. 2529 * 2530 * Return: 0 on success, or %-EINVAL if @node is already linked. 2531 */ 2532 __bpf_kfunc int bpf_list_push_front(struct bpf_list_head *head, 2533 struct bpf_list_node *node, 2534 struct btf_struct_meta *meta, 2535 u64 off) 2536 { 2537 struct bpf_list_node_kern *n = (void *)node; 2538 struct list_head *h = (void *)head; 2539 2540 return __bpf_list_add(n, head, &h, meta ? meta->record : NULL, off); 2541 } 2542 2543 __bpf_kfunc int bpf_list_push_front_impl(struct bpf_list_head *head, 2544 struct bpf_list_node *node, 2545 void *meta__ign, u64 off) 2546 { 2547 return bpf_list_push_front(head, node, meta__ign, off); 2548 } 2549 2550 /** 2551 * bpf_list_push_back() - add a node to the back of a BPF linked list 2552 * @head: list head 2553 * @node: node to insert 2554 * @meta: verifier-supplied struct metadata 2555 * @off: verifier-supplied offset of @node within the containing object 2556 * 2557 * Insert @node at the back of @head. The verifier rewrites @meta and @off; 2558 * BPF programs do not set them. 2559 * 2560 * Return: 0 on success, or %-EINVAL if @node is already linked. 2561 */ 2562 __bpf_kfunc int bpf_list_push_back(struct bpf_list_head *head, 2563 struct bpf_list_node *node, 2564 struct btf_struct_meta *meta, 2565 u64 off) 2566 { 2567 struct bpf_list_node_kern *n = (void *)node; 2568 struct list_head *h = (void *)head; 2569 2570 return __bpf_list_add(n, head, &h->prev, meta ? meta->record : NULL, off); 2571 } 2572 2573 __bpf_kfunc int bpf_list_push_back_impl(struct bpf_list_head *head, 2574 struct bpf_list_node *node, 2575 void *meta__ign, u64 off) 2576 { 2577 return bpf_list_push_back(head, node, meta__ign, off); 2578 } 2579 2580 __bpf_kfunc int bpf_list_add(struct bpf_list_head *head, struct bpf_list_node *new, 2581 struct bpf_list_node *prev__nonown_allowed, 2582 struct btf_struct_meta *meta, u64 off) 2583 { 2584 struct bpf_list_node_kern *n = (void *)new, *p = (void *)prev__nonown_allowed; 2585 struct list_head *prev_ptr = &p->list_head; 2586 2587 return __bpf_list_add(n, head, &prev_ptr, meta ? meta->record : NULL, off); 2588 } 2589 2590 static struct bpf_list_node *__bpf_list_del(struct bpf_list_head *head, 2591 struct list_head *n) 2592 { 2593 struct list_head *h = (void *)head; 2594 struct bpf_list_node_kern *node; 2595 2596 /* If list_head was 0-initialized by map, bpf_obj_init_field wasn't 2597 * called on its fields, so init here 2598 */ 2599 if (unlikely(!h->next)) { 2600 INIT_LIST_HEAD(h); 2601 return NULL; 2602 } 2603 if (list_empty(h)) 2604 return NULL; 2605 2606 node = container_of(n, struct bpf_list_node_kern, list_head); 2607 if (unlikely(READ_ONCE(node->owner) != head)) 2608 return NULL; 2609 2610 list_del_init(n); 2611 /* Ensure __bpf_list_add() sees the node as unlinked. */ 2612 smp_store_release(&node->owner, NULL); 2613 return (struct bpf_list_node *)n; 2614 } 2615 2616 __bpf_kfunc struct bpf_list_node *bpf_list_pop_front(struct bpf_list_head *head) 2617 { 2618 struct list_head *h = (void *)head; 2619 2620 return __bpf_list_del(head, h->next); 2621 } 2622 2623 __bpf_kfunc struct bpf_list_node *bpf_list_pop_back(struct bpf_list_head *head) 2624 { 2625 struct list_head *h = (void *)head; 2626 2627 return __bpf_list_del(head, h->prev); 2628 } 2629 2630 __bpf_kfunc struct bpf_list_node *bpf_list_del(struct bpf_list_head *head, 2631 struct bpf_list_node *node__nonown_allowed) 2632 { 2633 struct bpf_list_node_kern *kn = (void *)node__nonown_allowed; 2634 2635 /* verifier guarantees node is a list node rather than list head */ 2636 return __bpf_list_del(head, &kn->list_head); 2637 } 2638 2639 __bpf_kfunc struct bpf_list_node *bpf_list_front(struct bpf_list_head *head) 2640 { 2641 struct list_head *h = (struct list_head *)head; 2642 2643 if (list_empty(h) || unlikely(!h->next)) 2644 return NULL; 2645 2646 return (struct bpf_list_node *)h->next; 2647 } 2648 2649 __bpf_kfunc struct bpf_list_node *bpf_list_back(struct bpf_list_head *head) 2650 { 2651 struct list_head *h = (struct list_head *)head; 2652 2653 if (list_empty(h) || unlikely(!h->next)) 2654 return NULL; 2655 2656 return (struct bpf_list_node *)h->prev; 2657 } 2658 2659 __bpf_kfunc bool bpf_list_is_first(struct bpf_list_head *head, 2660 struct bpf_list_node *node__nonown_allowed) 2661 { 2662 struct list_head *h = (struct list_head *)head; 2663 struct bpf_list_node_kern *kn = (struct bpf_list_node_kern *)node__nonown_allowed; 2664 2665 if (READ_ONCE(kn->owner) != head) 2666 return false; 2667 2668 return list_is_first(&kn->list_head, h); 2669 } 2670 2671 __bpf_kfunc bool bpf_list_is_last(struct bpf_list_head *head, 2672 struct bpf_list_node *node__nonown_allowed) 2673 { 2674 struct list_head *h = (struct list_head *)head; 2675 struct bpf_list_node_kern *kn = (struct bpf_list_node_kern *)node__nonown_allowed; 2676 2677 if (READ_ONCE(kn->owner) != head) 2678 return false; 2679 2680 return list_is_last(&kn->list_head, h); 2681 } 2682 2683 __bpf_kfunc bool bpf_list_empty(struct bpf_list_head *head) 2684 { 2685 struct list_head *h = (struct list_head *)head; 2686 2687 /* If list_head was 0-initialized by map, bpf_obj_init_field wasn't 2688 * called on its fields, so init here 2689 */ 2690 if (unlikely(!h->next)) 2691 INIT_LIST_HEAD(h); 2692 2693 return list_empty(h); 2694 } 2695 2696 __bpf_kfunc struct bpf_rb_node *bpf_rbtree_remove(struct bpf_rb_root *root, 2697 struct bpf_rb_node *node) 2698 { 2699 struct bpf_rb_node_kern *node_internal = (struct bpf_rb_node_kern *)node; 2700 struct rb_root_cached *r = (struct rb_root_cached *)root; 2701 struct rb_node *n = &node_internal->rb_node; 2702 2703 /* node_internal->owner != root implies either RB_EMPTY_NODE(n) or 2704 * n is owned by some other tree. No need to check RB_EMPTY_NODE(n) 2705 */ 2706 if (READ_ONCE(node_internal->owner) != root) 2707 return NULL; 2708 2709 rb_erase_cached(n, r); 2710 RB_CLEAR_NODE(n); 2711 WRITE_ONCE(node_internal->owner, NULL); 2712 return (struct bpf_rb_node *)n; 2713 } 2714 2715 /* Need to copy rbtree_add_cached's logic here because our 'less' is a BPF 2716 * program 2717 */ 2718 static int __bpf_rbtree_add(struct bpf_rb_root *root, 2719 struct bpf_rb_node_kern *node, 2720 void *less, struct btf_record *rec, u64 off) 2721 { 2722 struct rb_node **link = &((struct rb_root_cached *)root)->rb_root.rb_node; 2723 struct rb_node *parent = NULL, *n = &node->rb_node; 2724 bpf_callback_t cb = (bpf_callback_t)less; 2725 bool leftmost = true; 2726 2727 /* node->owner != NULL implies !RB_EMPTY_NODE(n), no need to separately 2728 * check the latter 2729 */ 2730 if (cmpxchg(&node->owner, NULL, BPF_PTR_POISON)) { 2731 /* Only called from BPF prog, no need to migrate_disable */ 2732 __bpf_obj_drop_impl((void *)n - off, rec, false); 2733 return -EINVAL; 2734 } 2735 2736 while (*link) { 2737 parent = *link; 2738 if (cb((uintptr_t)node, (uintptr_t)parent, 0, 0, 0)) { 2739 link = &parent->rb_left; 2740 } else { 2741 link = &parent->rb_right; 2742 leftmost = false; 2743 } 2744 } 2745 2746 rb_link_node(n, parent, link); 2747 rb_insert_color_cached(n, (struct rb_root_cached *)root, leftmost); 2748 WRITE_ONCE(node->owner, root); 2749 return 0; 2750 } 2751 2752 /** 2753 * bpf_rbtree_add() - add a node to a BPF rbtree 2754 * @root: tree root 2755 * @node: node to insert 2756 * @less: comparator used to order nodes 2757 * @meta: verifier-supplied struct metadata 2758 * @off: verifier-supplied offset of @node within the containing object 2759 * 2760 * Insert @node into @root using @less. The verifier rewrites @meta and @off; 2761 * BPF programs do not set them. 2762 * 2763 * Return: 0 on success, or %-EINVAL if @node is already linked in a tree. 2764 */ 2765 __bpf_kfunc int bpf_rbtree_add(struct bpf_rb_root *root, 2766 struct bpf_rb_node *node, 2767 bool (less)(struct bpf_rb_node *a, const struct bpf_rb_node *b), 2768 struct btf_struct_meta *meta, 2769 u64 off) 2770 { 2771 struct bpf_rb_node_kern *n = (void *)node; 2772 2773 return __bpf_rbtree_add(root, n, (void *)less, meta ? meta->record : NULL, off); 2774 } 2775 2776 __bpf_kfunc int bpf_rbtree_add_impl(struct bpf_rb_root *root, struct bpf_rb_node *node, 2777 bool (less)(struct bpf_rb_node *a, const struct bpf_rb_node *b), 2778 void *meta__ign, u64 off) 2779 { 2780 return bpf_rbtree_add(root, node, less, meta__ign, off); 2781 } 2782 2783 __bpf_kfunc struct bpf_rb_node *bpf_rbtree_first(struct bpf_rb_root *root) 2784 { 2785 struct rb_root_cached *r = (struct rb_root_cached *)root; 2786 2787 return (struct bpf_rb_node *)rb_first_cached(r); 2788 } 2789 2790 __bpf_kfunc struct bpf_rb_node *bpf_rbtree_root(struct bpf_rb_root *root) 2791 { 2792 struct rb_root_cached *r = (struct rb_root_cached *)root; 2793 2794 return (struct bpf_rb_node *)r->rb_root.rb_node; 2795 } 2796 2797 __bpf_kfunc struct bpf_rb_node *bpf_rbtree_left(struct bpf_rb_root *root, struct bpf_rb_node *node) 2798 { 2799 struct bpf_rb_node_kern *node_internal = (struct bpf_rb_node_kern *)node; 2800 2801 if (READ_ONCE(node_internal->owner) != root) 2802 return NULL; 2803 2804 return (struct bpf_rb_node *)node_internal->rb_node.rb_left; 2805 } 2806 2807 __bpf_kfunc struct bpf_rb_node *bpf_rbtree_right(struct bpf_rb_root *root, struct bpf_rb_node *node) 2808 { 2809 struct bpf_rb_node_kern *node_internal = (struct bpf_rb_node_kern *)node; 2810 2811 if (READ_ONCE(node_internal->owner) != root) 2812 return NULL; 2813 2814 return (struct bpf_rb_node *)node_internal->rb_node.rb_right; 2815 } 2816 2817 /** 2818 * bpf_task_acquire - Acquire a reference to a task. A task acquired by this 2819 * kfunc which is not stored in a map as a kptr, must be released by calling 2820 * bpf_task_release(). 2821 * @p: The task on which a reference is being acquired. 2822 */ 2823 __bpf_kfunc struct task_struct *bpf_task_acquire(struct task_struct *p) 2824 { 2825 if (refcount_inc_not_zero(&p->rcu_users)) 2826 return p; 2827 return NULL; 2828 } 2829 2830 /** 2831 * bpf_task_release - Release the reference acquired on a task. 2832 * @p: The task on which a reference is being released. 2833 */ 2834 __bpf_kfunc void bpf_task_release(struct task_struct *p) 2835 { 2836 put_task_struct_rcu_user(p); 2837 } 2838 2839 __bpf_kfunc void bpf_task_release_dtor(void *p) 2840 { 2841 put_task_struct_rcu_user(p); 2842 } 2843 CFI_NOSEAL(bpf_task_release_dtor); 2844 2845 #ifdef CONFIG_CGROUPS 2846 /** 2847 * bpf_cgroup_acquire - Acquire a reference to a cgroup. A cgroup acquired by 2848 * this kfunc which is not stored in a map as a kptr, must be released by 2849 * calling bpf_cgroup_release(). 2850 * @cgrp: The cgroup on which a reference is being acquired. 2851 */ 2852 __bpf_kfunc struct cgroup *bpf_cgroup_acquire(struct cgroup *cgrp) 2853 { 2854 return cgroup_tryget(cgrp) ? cgrp : NULL; 2855 } 2856 2857 /** 2858 * bpf_cgroup_release - Release the reference acquired on a cgroup. 2859 * If this kfunc is invoked in an RCU read region, the cgroup is guaranteed to 2860 * not be freed until the current grace period has ended, even if its refcount 2861 * drops to 0. 2862 * @cgrp: The cgroup on which a reference is being released. 2863 */ 2864 __bpf_kfunc void bpf_cgroup_release(struct cgroup *cgrp) 2865 { 2866 cgroup_put(cgrp); 2867 } 2868 2869 __bpf_kfunc void bpf_cgroup_release_dtor(void *cgrp) 2870 { 2871 cgroup_put(cgrp); 2872 } 2873 CFI_NOSEAL(bpf_cgroup_release_dtor); 2874 2875 /** 2876 * bpf_cgroup_ancestor - Perform a lookup on an entry in a cgroup's ancestor 2877 * array. A cgroup returned by this kfunc which is not subsequently stored in a 2878 * map, must be released by calling bpf_cgroup_release(). 2879 * @cgrp: The cgroup for which we're performing a lookup. 2880 * @level: The level of ancestor to look up. 2881 */ 2882 __bpf_kfunc struct cgroup *bpf_cgroup_ancestor(struct cgroup *cgrp, int level) 2883 { 2884 struct cgroup *ancestor; 2885 2886 if (level > cgrp->level || level < 0) 2887 return NULL; 2888 2889 /* cgrp's refcnt could be 0 here, but ancestors can still be accessed */ 2890 ancestor = cgrp->ancestors[level]; 2891 if (!cgroup_tryget(ancestor)) 2892 return NULL; 2893 return ancestor; 2894 } 2895 2896 /** 2897 * bpf_cgroup_from_id - Find a cgroup from its ID. A cgroup returned by this 2898 * kfunc which is not subsequently stored in a map, must be released by calling 2899 * bpf_cgroup_release(). 2900 * @cgid: cgroup id. 2901 */ 2902 __bpf_kfunc struct cgroup *bpf_cgroup_from_id(u64 cgid) 2903 { 2904 struct cgroup *cgrp; 2905 2906 cgrp = __cgroup_get_from_id(cgid); 2907 if (IS_ERR(cgrp)) 2908 return NULL; 2909 return cgrp; 2910 } 2911 2912 /** 2913 * bpf_task_under_cgroup - wrap task_under_cgroup_hierarchy() as a kfunc, test 2914 * task's membership of cgroup ancestry. 2915 * @task: the task to be tested 2916 * @ancestor: possible ancestor of @task's cgroup 2917 * 2918 * Tests whether @task's default cgroup hierarchy is a descendant of @ancestor. 2919 * It follows all the same rules as cgroup_is_descendant, and only applies 2920 * to the default hierarchy. 2921 */ 2922 __bpf_kfunc long bpf_task_under_cgroup(struct task_struct *task, 2923 struct cgroup *ancestor) 2924 { 2925 long ret; 2926 2927 rcu_read_lock(); 2928 ret = task_under_cgroup_hierarchy(task, ancestor); 2929 rcu_read_unlock(); 2930 return ret; 2931 } 2932 2933 BPF_CALL_2(bpf_current_task_under_cgroup, struct bpf_map *, map, u32, idx) 2934 { 2935 struct bpf_array *array = container_of(map, struct bpf_array, map); 2936 struct cgroup *cgrp; 2937 2938 if (unlikely(idx >= array->map.max_entries)) 2939 return -E2BIG; 2940 2941 cgrp = READ_ONCE(array->ptrs[idx]); 2942 if (unlikely(!cgrp)) 2943 return -EAGAIN; 2944 2945 return task_under_cgroup_hierarchy(current, cgrp); 2946 } 2947 2948 const struct bpf_func_proto bpf_current_task_under_cgroup_proto = { 2949 .func = bpf_current_task_under_cgroup, 2950 .gpl_only = false, 2951 .ret_type = RET_INTEGER, 2952 .arg1_type = ARG_CONST_MAP_PTR, 2953 .arg2_type = ARG_ANYTHING, 2954 }; 2955 2956 /** 2957 * bpf_task_get_cgroup1 - Acquires the associated cgroup of a task within a 2958 * specific cgroup1 hierarchy. The cgroup1 hierarchy is identified by its 2959 * hierarchy ID. 2960 * @task: The target task 2961 * @hierarchy_id: The ID of a cgroup1 hierarchy 2962 * 2963 * On success, the cgroup is returen. On failure, NULL is returned. 2964 */ 2965 __bpf_kfunc struct cgroup * 2966 bpf_task_get_cgroup1(struct task_struct *task, int hierarchy_id) 2967 { 2968 struct cgroup *cgrp = task_get_cgroup1(task, hierarchy_id); 2969 2970 if (IS_ERR(cgrp)) 2971 return NULL; 2972 return cgrp; 2973 } 2974 #endif /* CONFIG_CGROUPS */ 2975 2976 /** 2977 * bpf_task_from_pid - Find a struct task_struct from its pid by looking it up 2978 * in the root pid namespace idr. If a task is returned, it must either be 2979 * stored in a map, or released with bpf_task_release(). 2980 * @pid: The pid of the task being looked up. 2981 */ 2982 __bpf_kfunc struct task_struct *bpf_task_from_pid(s32 pid) 2983 { 2984 struct task_struct *p; 2985 2986 rcu_read_lock(); 2987 p = find_task_by_pid_ns(pid, &init_pid_ns); 2988 if (p) 2989 p = bpf_task_acquire(p); 2990 rcu_read_unlock(); 2991 2992 return p; 2993 } 2994 2995 /** 2996 * bpf_task_from_vpid - Find a struct task_struct from its vpid by looking it up 2997 * in the pid namespace of the current task. If a task is returned, it must 2998 * either be stored in a map, or released with bpf_task_release(). 2999 * @vpid: The vpid of the task being looked up. 3000 */ 3001 __bpf_kfunc struct task_struct *bpf_task_from_vpid(s32 vpid) 3002 { 3003 struct task_struct *p; 3004 3005 rcu_read_lock(); 3006 p = find_task_by_vpid(vpid); 3007 if (p) 3008 p = bpf_task_acquire(p); 3009 rcu_read_unlock(); 3010 3011 return p; 3012 } 3013 3014 /** 3015 * bpf_dynptr_slice() - Obtain a read-only pointer to the dynptr data. 3016 * @p: The dynptr whose data slice to retrieve 3017 * @offset: Offset into the dynptr 3018 * @buffer__nullable: User-provided buffer to copy contents into. May be NULL 3019 * @buffer__szk: Size (in bytes) of the buffer if present. This is the 3020 * length of the requested slice. This must be a constant. 3021 * 3022 * For non-skb and non-xdp type dynptrs, there is no difference between 3023 * bpf_dynptr_slice and bpf_dynptr_data. 3024 * 3025 * If buffer__nullable is NULL, the call will fail if buffer_opt was needed. 3026 * 3027 * If the intention is to write to the data slice, please use 3028 * bpf_dynptr_slice_rdwr. 3029 * 3030 * The user must check that the returned pointer is not null before using it. 3031 * 3032 * Please note that in the case of skb and xdp dynptrs, bpf_dynptr_slice 3033 * does not change the underlying packet data pointers, so a call to 3034 * bpf_dynptr_slice will not invalidate any ctx->data/data_end pointers in 3035 * the bpf program. 3036 * 3037 * Return: NULL if the call failed (eg invalid dynptr), pointer to a read-only 3038 * data slice (can be either direct pointer to the data or a pointer to the user 3039 * provided buffer, with its contents containing the data, if unable to obtain 3040 * direct pointer) 3041 */ 3042 __bpf_kfunc void *bpf_dynptr_slice(const struct bpf_dynptr *p, u64 offset, 3043 void *buffer__nullable, u64 buffer__szk) 3044 { 3045 const struct bpf_dynptr_kern *ptr = (struct bpf_dynptr_kern *)p; 3046 enum bpf_dynptr_type type; 3047 u64 len = buffer__szk; 3048 int err; 3049 3050 if (!ptr->data) 3051 return NULL; 3052 3053 err = bpf_dynptr_check_off_len(ptr, offset, len); 3054 if (err) 3055 return NULL; 3056 3057 type = bpf_dynptr_get_type(ptr); 3058 3059 switch (type) { 3060 case BPF_DYNPTR_TYPE_LOCAL: 3061 case BPF_DYNPTR_TYPE_RINGBUF: 3062 return ptr->data + ptr->offset + offset; 3063 case BPF_DYNPTR_TYPE_SKB: 3064 if (buffer__nullable) 3065 return skb_header_pointer(ptr->data, ptr->offset + offset, len, buffer__nullable); 3066 else 3067 return skb_pointer_if_linear(ptr->data, ptr->offset + offset, len); 3068 case BPF_DYNPTR_TYPE_XDP: 3069 { 3070 void *xdp_ptr = bpf_xdp_pointer(ptr->data, ptr->offset + offset, len); 3071 if (!IS_ERR_OR_NULL(xdp_ptr)) 3072 return xdp_ptr; 3073 3074 if (!buffer__nullable) 3075 return NULL; 3076 bpf_xdp_copy_buf(ptr->data, ptr->offset + offset, buffer__nullable, len, false); 3077 return buffer__nullable; 3078 } 3079 case BPF_DYNPTR_TYPE_SKB_META: 3080 return bpf_skb_meta_pointer(ptr->data, ptr->offset + offset); 3081 case BPF_DYNPTR_TYPE_FILE: 3082 err = bpf_file_fetch_bytes(ptr->data, offset, buffer__nullable, buffer__szk); 3083 return err ? NULL : buffer__nullable; 3084 default: 3085 WARN_ONCE(true, "unknown dynptr type %d\n", type); 3086 return NULL; 3087 } 3088 } 3089 3090 /** 3091 * bpf_dynptr_slice_rdwr() - Obtain a writable pointer to the dynptr data. 3092 * @p: The dynptr whose data slice to retrieve 3093 * @offset: Offset into the dynptr 3094 * @buffer__nullable: User-provided buffer to copy contents into. May be NULL 3095 * @buffer__szk: Size (in bytes) of the buffer if present. This is the 3096 * length of the requested slice. This must be a constant. 3097 * 3098 * For non-skb and non-xdp type dynptrs, there is no difference between 3099 * bpf_dynptr_slice and bpf_dynptr_data. 3100 * 3101 * If buffer__nullable is NULL, the call will fail if buffer_opt was needed. 3102 * 3103 * The returned pointer is writable and may point to either directly the dynptr 3104 * data at the requested offset or to the buffer if unable to obtain a direct 3105 * data pointer to (example: the requested slice is to the paged area of an skb 3106 * packet). In the case where the returned pointer is to the buffer, the user 3107 * is responsible for persisting writes through calling bpf_dynptr_write(). This 3108 * usually looks something like this pattern: 3109 * 3110 * struct eth_hdr *eth = bpf_dynptr_slice_rdwr(&dynptr, 0, buffer, sizeof(buffer)); 3111 * if (!eth) 3112 * return TC_ACT_SHOT; 3113 * 3114 * // mutate eth header // 3115 * 3116 * if (eth == buffer) 3117 * bpf_dynptr_write(&ptr, 0, buffer, sizeof(buffer), 0); 3118 * 3119 * Please note that, as in the example above, the user must check that the 3120 * returned pointer is not null before using it. 3121 * 3122 * Please also note that in the case of skb and xdp dynptrs, bpf_dynptr_slice_rdwr 3123 * does not change the underlying packet data pointers, so a call to 3124 * bpf_dynptr_slice_rdwr will not invalidate any ctx->data/data_end pointers in 3125 * the bpf program. 3126 * 3127 * Return: NULL if the call failed (eg invalid dynptr), pointer to a 3128 * data slice (can be either direct pointer to the data or a pointer to the user 3129 * provided buffer, with its contents containing the data, if unable to obtain 3130 * direct pointer) 3131 */ 3132 __bpf_kfunc void *bpf_dynptr_slice_rdwr(const struct bpf_dynptr *p, u64 offset, 3133 void *buffer__nullable, u64 buffer__szk) 3134 { 3135 const struct bpf_dynptr_kern *ptr = (struct bpf_dynptr_kern *)p; 3136 3137 if (!ptr->data || __bpf_dynptr_is_rdonly(ptr)) 3138 return NULL; 3139 3140 /* bpf_dynptr_slice_rdwr is the same logic as bpf_dynptr_slice. 3141 * 3142 * For skb-type dynptrs, it is safe to write into the returned pointer 3143 * if the bpf program allows skb data writes. There are two possibilities 3144 * that may occur when calling bpf_dynptr_slice_rdwr: 3145 * 3146 * 1) The requested slice is in the head of the skb. In this case, the 3147 * returned pointer is directly to skb data, and if the skb is cloned, the 3148 * verifier will have uncloned it (see bpf_unclone_prologue()) already. 3149 * The pointer can be directly written into. 3150 * 3151 * 2) Some portion of the requested slice is in the paged buffer area. 3152 * In this case, the requested data will be copied out into the buffer 3153 * and the returned pointer will be a pointer to the buffer. The skb 3154 * will not be pulled. To persist the write, the user will need to call 3155 * bpf_dynptr_write(), which will pull the skb and commit the write. 3156 * 3157 * Similarly for xdp programs, if the requested slice is not across xdp 3158 * fragments, then a direct pointer will be returned, otherwise the data 3159 * will be copied out into the buffer and the user will need to call 3160 * bpf_dynptr_write() to commit changes. 3161 */ 3162 return bpf_dynptr_slice(p, offset, buffer__nullable, buffer__szk); 3163 } 3164 3165 __bpf_kfunc int bpf_dynptr_adjust(struct bpf_dynptr *p, u64 start, u64 end) 3166 { 3167 struct bpf_dynptr_kern *ptr = (struct bpf_dynptr_kern *)p; 3168 u64 size; 3169 3170 if (!ptr->data || start > end) 3171 return -EINVAL; 3172 3173 size = __bpf_dynptr_size(ptr); 3174 3175 if (start > size || end > size) 3176 return -ERANGE; 3177 3178 bpf_dynptr_advance_offset(ptr, start); 3179 bpf_dynptr_set_size(ptr, end - start); 3180 3181 return 0; 3182 } 3183 3184 __bpf_kfunc bool bpf_dynptr_is_null(const struct bpf_dynptr *p) 3185 { 3186 const struct bpf_dynptr_kern *ptr = (struct bpf_dynptr_kern *)p; 3187 3188 return !ptr->data; 3189 } 3190 3191 __bpf_kfunc bool bpf_dynptr_is_rdonly(const struct bpf_dynptr *p) 3192 { 3193 const struct bpf_dynptr_kern *ptr = (struct bpf_dynptr_kern *)p; 3194 3195 if (!ptr->data) 3196 return false; 3197 3198 return __bpf_dynptr_is_rdonly(ptr); 3199 } 3200 3201 __bpf_kfunc u64 bpf_dynptr_size(const struct bpf_dynptr *p) 3202 { 3203 const struct bpf_dynptr_kern *ptr = (struct bpf_dynptr_kern *)p; 3204 3205 if (!ptr->data) 3206 return -EINVAL; 3207 3208 return __bpf_dynptr_size(ptr); 3209 } 3210 3211 __bpf_kfunc int bpf_dynptr_clone(const struct bpf_dynptr *p, 3212 struct bpf_dynptr *clone__uninit) 3213 { 3214 struct bpf_dynptr_kern *clone = (struct bpf_dynptr_kern *)clone__uninit; 3215 const struct bpf_dynptr_kern *ptr = (struct bpf_dynptr_kern *)p; 3216 3217 if (!ptr->data) { 3218 bpf_dynptr_set_null(clone); 3219 return -EINVAL; 3220 } 3221 3222 *clone = *ptr; 3223 3224 return 0; 3225 } 3226 3227 /** 3228 * bpf_dynptr_copy() - Copy data from one dynptr to another. 3229 * @dst_ptr: Destination dynptr - where data should be copied to 3230 * @dst_off: Offset into the destination dynptr 3231 * @src_ptr: Source dynptr - where data should be copied from 3232 * @src_off: Offset into the source dynptr 3233 * @size: Length of the data to copy from source to destination 3234 * 3235 * Copies data from source dynptr to destination dynptr. 3236 * Returns 0 on success; negative error, otherwise. 3237 */ 3238 __bpf_kfunc int bpf_dynptr_copy(const struct bpf_dynptr *dst_ptr, u64 dst_off, 3239 const struct bpf_dynptr *src_ptr, u64 src_off, u64 size) 3240 { 3241 const struct bpf_dynptr_kern *dst = (struct bpf_dynptr_kern *)dst_ptr; 3242 const struct bpf_dynptr_kern *src = (struct bpf_dynptr_kern *)src_ptr; 3243 void *src_slice, *dst_slice; 3244 char buf[256]; 3245 u64 off; 3246 3247 src_slice = bpf_dynptr_slice(src_ptr, src_off, NULL, size); 3248 dst_slice = bpf_dynptr_slice_rdwr(dst_ptr, dst_off, NULL, size); 3249 3250 if (src_slice && dst_slice) { 3251 memmove(dst_slice, src_slice, size); 3252 return 0; 3253 } 3254 3255 if (src_slice) 3256 return __bpf_dynptr_write(dst, dst_off, src_slice, size, 0); 3257 3258 if (dst_slice) 3259 return __bpf_dynptr_read(dst_slice, size, src, src_off, 0); 3260 3261 if (bpf_dynptr_check_off_len(dst, dst_off, size) || 3262 bpf_dynptr_check_off_len(src, src_off, size)) 3263 return -E2BIG; 3264 3265 off = 0; 3266 while (off < size) { 3267 u64 chunk_sz = min_t(u64, sizeof(buf), size - off); 3268 int err; 3269 3270 err = __bpf_dynptr_read(buf, chunk_sz, src, src_off + off, 0); 3271 if (err) 3272 return err; 3273 err = __bpf_dynptr_write(dst, dst_off + off, buf, chunk_sz, 0); 3274 if (err) 3275 return err; 3276 3277 off += chunk_sz; 3278 } 3279 return 0; 3280 } 3281 3282 /** 3283 * bpf_dynptr_memset() - Fill dynptr memory with a constant byte. 3284 * @p: Destination dynptr - where data will be filled 3285 * @offset: Offset into the dynptr to start filling from 3286 * @size: Number of bytes to fill 3287 * @val: Constant byte to fill the memory with 3288 * 3289 * Fills the @size bytes of the memory area pointed to by @p 3290 * at @offset with the constant byte @val. 3291 * Returns 0 on success; negative error, otherwise. 3292 */ 3293 __bpf_kfunc int bpf_dynptr_memset(const struct bpf_dynptr *p, u64 offset, u64 size, u8 val) 3294 { 3295 const struct bpf_dynptr_kern *ptr = (struct bpf_dynptr_kern *)p; 3296 u64 chunk_sz, write_off; 3297 char buf[256]; 3298 void* slice; 3299 int err; 3300 3301 slice = bpf_dynptr_slice_rdwr(p, offset, NULL, size); 3302 if (likely(slice)) { 3303 memset(slice, val, size); 3304 return 0; 3305 } 3306 3307 if (__bpf_dynptr_is_rdonly(ptr)) 3308 return -EINVAL; 3309 3310 err = bpf_dynptr_check_off_len(ptr, offset, size); 3311 if (err) 3312 return err; 3313 3314 /* Non-linear data under the dynptr, write from a local buffer */ 3315 chunk_sz = min_t(u64, sizeof(buf), size); 3316 memset(buf, val, chunk_sz); 3317 3318 for (write_off = 0; write_off < size; write_off += chunk_sz) { 3319 chunk_sz = min_t(u64, sizeof(buf), size - write_off); 3320 err = __bpf_dynptr_write(ptr, offset + write_off, buf, chunk_sz, 0); 3321 if (err) 3322 return err; 3323 } 3324 3325 return 0; 3326 } 3327 3328 __bpf_kfunc void *bpf_cast_to_kern_ctx(void *obj) 3329 { 3330 return obj; 3331 } 3332 3333 __bpf_kfunc void *bpf_rdonly_cast(const void *obj__ign, u32 btf_id__k) 3334 { 3335 return (void *)obj__ign; 3336 } 3337 3338 __bpf_kfunc void bpf_rcu_read_lock(void) 3339 { 3340 rcu_read_lock(); 3341 } 3342 3343 __bpf_kfunc void bpf_rcu_read_unlock(void) 3344 { 3345 rcu_read_unlock(); 3346 } 3347 3348 struct bpf_throw_ctx { 3349 struct bpf_prog_aux *aux; 3350 u64 sp; 3351 u64 bp; 3352 int cnt; 3353 }; 3354 3355 static bool bpf_stack_walker(void *cookie, u64 ip, u64 sp, u64 bp) 3356 { 3357 struct bpf_throw_ctx *ctx = cookie; 3358 struct bpf_prog *prog; 3359 3360 /* 3361 * The RCU read lock is held to safely traverse the latch tree, but we 3362 * don't need its protection when accessing the prog, since it has an 3363 * active stack frame on the current stack trace, and won't disappear. 3364 */ 3365 rcu_read_lock(); 3366 prog = bpf_prog_ksym_find(ip); 3367 rcu_read_unlock(); 3368 if (!prog) 3369 return !ctx->cnt; 3370 ctx->cnt++; 3371 if (bpf_is_subprog(prog)) 3372 return true; 3373 ctx->aux = prog->aux; 3374 ctx->sp = sp; 3375 ctx->bp = bp; 3376 return false; 3377 } 3378 3379 __bpf_kfunc void bpf_throw(u64 cookie) 3380 { 3381 struct bpf_throw_ctx ctx = {}; 3382 3383 arch_bpf_stack_walk(bpf_stack_walker, &ctx); 3384 WARN_ON_ONCE(!ctx.aux); 3385 if (ctx.aux) 3386 WARN_ON_ONCE(!ctx.aux->exception_boundary); 3387 WARN_ON_ONCE(!ctx.bp); 3388 WARN_ON_ONCE(!ctx.cnt); 3389 /* Prevent KASAN false positives for CONFIG_KASAN_STACK by unpoisoning 3390 * deeper stack depths than ctx.sp as we do not return from bpf_throw, 3391 * which skips compiler generated instrumentation to do the same. 3392 */ 3393 kasan_unpoison_task_stack_below((void *)(long)ctx.sp); 3394 ctx.aux->bpf_exception_cb(cookie, ctx.sp + ctx.aux->stack_arg_sp_adjust, ctx.bp, 0, 0); 3395 WARN(1, "A call to BPF exception callback should never return\n"); 3396 } 3397 3398 __bpf_kfunc int bpf_wq_init(struct bpf_wq *wq, void *p__map, unsigned int flags) 3399 { 3400 struct bpf_async_kern *async = (struct bpf_async_kern *)wq; 3401 struct bpf_map *map = p__map; 3402 3403 BUILD_BUG_ON(sizeof(struct bpf_async_kern) > sizeof(struct bpf_wq)); 3404 BUILD_BUG_ON(__alignof__(struct bpf_async_kern) != __alignof__(struct bpf_wq)); 3405 3406 if (flags) 3407 return -EINVAL; 3408 3409 return __bpf_async_init(async, map, flags, BPF_ASYNC_TYPE_WQ); 3410 } 3411 3412 __bpf_kfunc int bpf_wq_start(struct bpf_wq *wq, unsigned int flags) 3413 { 3414 struct bpf_async_kern *async = (struct bpf_async_kern *)wq; 3415 struct bpf_work *w; 3416 3417 if (flags) 3418 return -EINVAL; 3419 3420 w = READ_ONCE(async->work); 3421 if (!w || !READ_ONCE(w->cb.prog)) 3422 return -EINVAL; 3423 3424 if (!refcount_inc_not_zero(&w->cb.refcnt)) 3425 return -ENOENT; 3426 3427 if (!defer_timer_wq_op()) { 3428 schedule_work(&w->work); 3429 bpf_async_refcount_put(&w->cb); 3430 return 0; 3431 } else { 3432 return bpf_async_schedule_op(&w->cb, BPF_ASYNC_START, 0, 0); 3433 } 3434 } 3435 3436 __bpf_kfunc int bpf_wq_set_callback(struct bpf_wq *wq, 3437 int (callback_fn)(void *map, int *key, void *value), 3438 unsigned int flags, 3439 struct bpf_prog_aux *aux) 3440 { 3441 struct bpf_async_kern *async = (struct bpf_async_kern *)wq; 3442 3443 if (flags) 3444 return -EINVAL; 3445 3446 return __bpf_async_set_callback(async, callback_fn, aux->prog); 3447 } 3448 3449 __bpf_kfunc void bpf_preempt_disable(void) 3450 { 3451 preempt_disable(); 3452 } 3453 3454 __bpf_kfunc void bpf_preempt_enable(void) 3455 { 3456 preempt_enable(); 3457 } 3458 3459 struct bpf_iter_bits { 3460 __u64 __opaque[2]; 3461 } __aligned(8); 3462 3463 #define BITS_ITER_NR_WORDS_MAX 511 3464 3465 struct bpf_iter_bits_kern { 3466 union { 3467 __u64 *bits; 3468 __u64 bits_copy; 3469 }; 3470 int nr_bits; 3471 int bit; 3472 } __aligned(8); 3473 3474 /* On 64-bit hosts, unsigned long and u64 have the same size, so passing 3475 * a u64 pointer and an unsigned long pointer to find_next_bit() will 3476 * return the same result, as both point to the same 8-byte area. 3477 * 3478 * For 32-bit little-endian hosts, using a u64 pointer or unsigned long 3479 * pointer also makes no difference. This is because the first iterated 3480 * unsigned long is composed of bits 0-31 of the u64 and the second unsigned 3481 * long is composed of bits 32-63 of the u64. 3482 * 3483 * However, for 32-bit big-endian hosts, this is not the case. The first 3484 * iterated unsigned long will be bits 32-63 of the u64, so swap these two 3485 * ulong values within the u64. 3486 */ 3487 static void swap_ulong_in_u64(u64 *bits, unsigned int nr) 3488 { 3489 #if (BITS_PER_LONG == 32) && defined(__BIG_ENDIAN) 3490 unsigned int i; 3491 3492 for (i = 0; i < nr; i++) 3493 bits[i] = (bits[i] >> 32) | ((u64)(u32)bits[i] << 32); 3494 #endif 3495 } 3496 3497 /** 3498 * bpf_iter_bits_new() - Initialize a new bits iterator for a given memory area 3499 * @it: The new bpf_iter_bits to be created 3500 * @unsafe_ptr__ign: A pointer pointing to a memory area to be iterated over 3501 * @nr_words: The size of the specified memory area, measured in 8-byte units. 3502 * The maximum value of @nr_words is @BITS_ITER_NR_WORDS_MAX. This limit may be 3503 * further reduced by the BPF memory allocator implementation. 3504 * 3505 * This function initializes a new bpf_iter_bits structure for iterating over 3506 * a memory area which is specified by the @unsafe_ptr__ign and @nr_words. It 3507 * copies the data of the memory area to the newly created bpf_iter_bits @it for 3508 * subsequent iteration operations. 3509 * 3510 * On success, 0 is returned. On failure, ERR is returned. 3511 */ 3512 __bpf_kfunc int 3513 bpf_iter_bits_new(struct bpf_iter_bits *it, const u64 *unsafe_ptr__ign, u32 nr_words) 3514 { 3515 struct bpf_iter_bits_kern *kit = (void *)it; 3516 u32 nr_bytes = nr_words * sizeof(u64); 3517 u32 nr_bits = BYTES_TO_BITS(nr_bytes); 3518 int err; 3519 3520 BUILD_BUG_ON(sizeof(struct bpf_iter_bits_kern) != sizeof(struct bpf_iter_bits)); 3521 BUILD_BUG_ON(__alignof__(struct bpf_iter_bits_kern) != 3522 __alignof__(struct bpf_iter_bits)); 3523 3524 kit->nr_bits = 0; 3525 kit->bits_copy = 0; 3526 kit->bit = -1; 3527 3528 if (!unsafe_ptr__ign || !nr_words) 3529 return -EINVAL; 3530 if (nr_words > BITS_ITER_NR_WORDS_MAX) 3531 return -E2BIG; 3532 3533 /* Optimization for u64 mask */ 3534 if (nr_bits == 64) { 3535 err = bpf_probe_read_kernel_common(&kit->bits_copy, nr_bytes, unsafe_ptr__ign); 3536 if (err) 3537 return -EFAULT; 3538 3539 swap_ulong_in_u64(&kit->bits_copy, nr_words); 3540 3541 kit->nr_bits = nr_bits; 3542 return 0; 3543 } 3544 3545 if (bpf_mem_alloc_check_size(false, nr_bytes)) 3546 return -E2BIG; 3547 3548 /* Fallback to memalloc */ 3549 kit->bits = bpf_mem_alloc(&bpf_global_ma, nr_bytes); 3550 if (!kit->bits) 3551 return -ENOMEM; 3552 3553 err = bpf_probe_read_kernel_common(kit->bits, nr_bytes, unsafe_ptr__ign); 3554 if (err) { 3555 bpf_mem_free(&bpf_global_ma, kit->bits); 3556 return err; 3557 } 3558 3559 swap_ulong_in_u64(kit->bits, nr_words); 3560 3561 kit->nr_bits = nr_bits; 3562 return 0; 3563 } 3564 3565 /** 3566 * bpf_iter_bits_next() - Get the next bit in a bpf_iter_bits 3567 * @it: The bpf_iter_bits to be checked 3568 * 3569 * This function returns a pointer to a number representing the value of the 3570 * next bit in the bits. 3571 * 3572 * If there are no further bits available, it returns NULL. 3573 */ 3574 __bpf_kfunc int *bpf_iter_bits_next(struct bpf_iter_bits *it) 3575 { 3576 struct bpf_iter_bits_kern *kit = (void *)it; 3577 int bit = kit->bit, nr_bits = kit->nr_bits; 3578 const void *bits; 3579 3580 if (!nr_bits || bit >= nr_bits) 3581 return NULL; 3582 3583 bits = nr_bits == 64 ? &kit->bits_copy : kit->bits; 3584 bit = find_next_bit(bits, nr_bits, bit + 1); 3585 if (bit >= nr_bits) { 3586 kit->bit = bit; 3587 return NULL; 3588 } 3589 3590 kit->bit = bit; 3591 return &kit->bit; 3592 } 3593 3594 /** 3595 * bpf_iter_bits_destroy() - Destroy a bpf_iter_bits 3596 * @it: The bpf_iter_bits to be destroyed 3597 * 3598 * Destroy the resource associated with the bpf_iter_bits. 3599 */ 3600 __bpf_kfunc void bpf_iter_bits_destroy(struct bpf_iter_bits *it) 3601 { 3602 struct bpf_iter_bits_kern *kit = (void *)it; 3603 3604 if (kit->nr_bits <= 64) 3605 return; 3606 bpf_mem_free(&bpf_global_ma, kit->bits); 3607 } 3608 3609 /** 3610 * bpf_copy_from_user_str() - Copy a string from an unsafe user address 3611 * @dst: Destination address, in kernel space. This buffer must be 3612 * at least @dst__sz bytes long. 3613 * @dst__sz: Maximum number of bytes to copy, includes the trailing NUL. 3614 * @unsafe_ptr__ign: Source address, in user space. 3615 * @flags: The only supported flag is BPF_F_PAD_ZEROS 3616 * 3617 * Copies a NUL-terminated string from userspace to BPF space. If user string is 3618 * too long this will still ensure zero termination in the dst buffer unless 3619 * buffer size is 0. 3620 * 3621 * If BPF_F_PAD_ZEROS flag is set, memset the tail of @dst to 0 on success and 3622 * memset all of @dst on failure. 3623 */ 3624 __bpf_kfunc int bpf_copy_from_user_str(void *dst, u32 dst__sz, const void __user *unsafe_ptr__ign, u64 flags) 3625 { 3626 int ret; 3627 3628 if (unlikely(flags & ~BPF_F_PAD_ZEROS)) 3629 return -EINVAL; 3630 3631 if (unlikely(!dst__sz)) 3632 return 0; 3633 3634 ret = strncpy_from_user(dst, unsafe_ptr__ign, dst__sz - 1); 3635 if (ret < 0) { 3636 if (flags & BPF_F_PAD_ZEROS) 3637 memset((char *)dst, 0, dst__sz); 3638 3639 return ret; 3640 } 3641 3642 if (flags & BPF_F_PAD_ZEROS) 3643 memset((char *)dst + ret, 0, dst__sz - ret); 3644 else 3645 ((char *)dst)[ret] = '\0'; 3646 3647 return ret + 1; 3648 } 3649 3650 /** 3651 * bpf_copy_from_user_task_str() - Copy a string from an task's address space 3652 * @dst: Destination address, in kernel space. This buffer must be 3653 * at least @dst__sz bytes long. 3654 * @dst__sz: Maximum number of bytes to copy, includes the trailing NUL. 3655 * @unsafe_ptr__ign: Source address in the task's address space. 3656 * @tsk: The task whose address space will be used 3657 * @flags: The only supported flag is BPF_F_PAD_ZEROS 3658 * 3659 * Copies a NUL terminated string from a task's address space to @dst__sz 3660 * buffer. If user string is too long this will still ensure zero termination 3661 * in the @dst__sz buffer unless buffer size is 0. 3662 * 3663 * If BPF_F_PAD_ZEROS flag is set, memset the tail of @dst__sz to 0 on success 3664 * and memset all of @dst__sz on failure. 3665 * 3666 * Return: The number of copied bytes on success including the NUL terminator. 3667 * A negative error code on failure. 3668 */ 3669 __bpf_kfunc int bpf_copy_from_user_task_str(void *dst, u32 dst__sz, 3670 const void __user *unsafe_ptr__ign, 3671 struct task_struct *tsk, u64 flags) 3672 { 3673 int ret; 3674 3675 if (unlikely(flags & ~BPF_F_PAD_ZEROS)) 3676 return -EINVAL; 3677 3678 if (unlikely(dst__sz == 0)) 3679 return 0; 3680 3681 ret = copy_remote_vm_str(tsk, (unsigned long)unsafe_ptr__ign, dst, dst__sz, 0); 3682 if (ret < 0) { 3683 if (flags & BPF_F_PAD_ZEROS) 3684 memset(dst, 0, dst__sz); 3685 return ret; 3686 } 3687 3688 if (flags & BPF_F_PAD_ZEROS) 3689 memset(dst + ret, 0, dst__sz - ret); 3690 3691 return ret + 1; 3692 } 3693 3694 /* Keep unsinged long in prototype so that kfunc is usable when emitted to 3695 * vmlinux.h in BPF programs directly, but note that while in BPF prog, the 3696 * unsigned long always points to 8-byte region on stack, the kernel may only 3697 * read and write the 4-bytes on 32-bit. 3698 */ 3699 __bpf_kfunc void bpf_local_irq_save(unsigned long *flags__irq_flag) 3700 { 3701 local_irq_save(*flags__irq_flag); 3702 } 3703 3704 __bpf_kfunc void bpf_local_irq_restore(unsigned long *flags__irq_flag) 3705 { 3706 local_irq_restore(*flags__irq_flag); 3707 } 3708 3709 __bpf_kfunc void __bpf_trap(void) 3710 { 3711 } 3712 3713 /* 3714 * Kfuncs for string operations. 3715 * 3716 * Since strings are not necessarily %NUL-terminated, we cannot directly call 3717 * in-kernel implementations. Instead, we open-code the implementations using 3718 * __get_kernel_nofault instead of plain dereference to make them safe. 3719 */ 3720 3721 static int __bpf_strncasecmp(const char *s1, const char *s2, bool ignore_case, size_t len) 3722 { 3723 char c1, c2; 3724 int i; 3725 3726 if (!copy_from_kernel_nofault_allowed(s1, 1) || 3727 !copy_from_kernel_nofault_allowed(s2, 1)) { 3728 return -ERANGE; 3729 } 3730 3731 guard(pagefault)(); 3732 for (i = 0; i < len && i < XATTR_SIZE_MAX; i++) { 3733 __get_kernel_nofault(&c1, s1, char, err_out); 3734 __get_kernel_nofault(&c2, s2, char, err_out); 3735 if (ignore_case) { 3736 c1 = tolower(c1); 3737 c2 = tolower(c2); 3738 } 3739 if (c1 != c2) 3740 return c1 < c2 ? -1 : 1; 3741 if (c1 == '\0') 3742 return 0; 3743 s1++; 3744 s2++; 3745 } 3746 return i == XATTR_SIZE_MAX ? -E2BIG : 0; 3747 err_out: 3748 return -EFAULT; 3749 } 3750 3751 /** 3752 * bpf_strcmp - Compare two strings 3753 * @s1__ign: One string 3754 * @s2__ign: Another string 3755 * 3756 * Return: 3757 * * %0 - Strings are equal 3758 * * %-1 - @s1__ign is smaller 3759 * * %1 - @s2__ign is smaller 3760 * * %-EFAULT - Cannot read one of the strings 3761 * * %-E2BIG - One of strings is too large 3762 * * %-ERANGE - One of strings is outside of kernel address space 3763 */ 3764 __bpf_kfunc int bpf_strcmp(const char *s1__ign, const char *s2__ign) 3765 { 3766 return __bpf_strncasecmp(s1__ign, s2__ign, false, XATTR_SIZE_MAX); 3767 } 3768 3769 /** 3770 * bpf_strcasecmp - Compare two strings, ignoring the case of the characters 3771 * @s1__ign: One string 3772 * @s2__ign: Another string 3773 * 3774 * Return: 3775 * * %0 - Strings are equal 3776 * * %-1 - @s1__ign is smaller 3777 * * %1 - @s2__ign is smaller 3778 * * %-EFAULT - Cannot read one of the strings 3779 * * %-E2BIG - One of strings is too large 3780 * * %-ERANGE - One of strings is outside of kernel address space 3781 */ 3782 __bpf_kfunc int bpf_strcasecmp(const char *s1__ign, const char *s2__ign) 3783 { 3784 return __bpf_strncasecmp(s1__ign, s2__ign, true, XATTR_SIZE_MAX); 3785 } 3786 3787 /* 3788 * bpf_strncasecmp - Compare two length-limited strings, ignoring case 3789 * @s1__ign: One string 3790 * @s2__ign: Another string 3791 * @len: The maximum number of characters to compare 3792 * 3793 * Return: 3794 * * %0 - Strings are equal 3795 * * %-1 - @s1__ign is smaller 3796 * * %1 - @s2__ign is smaller 3797 * * %-EFAULT - Cannot read one of the strings 3798 * * %-E2BIG - One of strings is too large 3799 * * %-ERANGE - One of strings is outside of kernel address space 3800 */ 3801 __bpf_kfunc int bpf_strncasecmp(const char *s1__ign, const char *s2__ign, size_t len) 3802 { 3803 return __bpf_strncasecmp(s1__ign, s2__ign, true, len); 3804 } 3805 3806 /** 3807 * bpf_strnchr - Find a character in a length limited string 3808 * @s__ign: The string to be searched 3809 * @count: The number of characters to be searched 3810 * @c: The character to search for 3811 * 3812 * Note that the %NUL-terminator is considered part of the string, and can 3813 * be searched for. 3814 * 3815 * Return: 3816 * * >=0 - Index of the first occurrence of @c within @s__ign 3817 * * %-ENOENT - @c not found in the first @count characters of @s__ign 3818 * * %-EFAULT - Cannot read @s__ign 3819 * * %-E2BIG - @s__ign is too large 3820 * * %-ERANGE - @s__ign is outside of kernel address space 3821 */ 3822 __bpf_kfunc int bpf_strnchr(const char *s__ign, size_t count, char c) 3823 { 3824 char sc; 3825 int i; 3826 3827 if (!copy_from_kernel_nofault_allowed(s__ign, 1)) 3828 return -ERANGE; 3829 3830 guard(pagefault)(); 3831 for (i = 0; i < count && i < XATTR_SIZE_MAX; i++) { 3832 __get_kernel_nofault(&sc, s__ign, char, err_out); 3833 if (sc == c) 3834 return i; 3835 if (sc == '\0') 3836 return -ENOENT; 3837 s__ign++; 3838 } 3839 return i == XATTR_SIZE_MAX ? -E2BIG : -ENOENT; 3840 err_out: 3841 return -EFAULT; 3842 } 3843 3844 /** 3845 * bpf_strchr - Find the first occurrence of a character in a string 3846 * @s__ign: The string to be searched 3847 * @c: The character to search for 3848 * 3849 * Note that the %NUL-terminator is considered part of the string, and can 3850 * be searched for. 3851 * 3852 * Return: 3853 * * >=0 - The index of the first occurrence of @c within @s__ign 3854 * * %-ENOENT - @c not found in @s__ign 3855 * * %-EFAULT - Cannot read @s__ign 3856 * * %-E2BIG - @s__ign is too large 3857 * * %-ERANGE - @s__ign is outside of kernel address space 3858 */ 3859 __bpf_kfunc int bpf_strchr(const char *s__ign, char c) 3860 { 3861 return bpf_strnchr(s__ign, XATTR_SIZE_MAX, c); 3862 } 3863 3864 /** 3865 * bpf_strchrnul - Find and return a character in a string, or end of string 3866 * @s__ign: The string to be searched 3867 * @c: The character to search for 3868 * 3869 * Return: 3870 * * >=0 - Index of the first occurrence of @c within @s__ign or index of 3871 * the null byte at the end of @s__ign when @c is not found 3872 * * %-EFAULT - Cannot read @s__ign 3873 * * %-E2BIG - @s__ign is too large 3874 * * %-ERANGE - @s__ign is outside of kernel address space 3875 */ 3876 __bpf_kfunc int bpf_strchrnul(const char *s__ign, char c) 3877 { 3878 char sc; 3879 int i; 3880 3881 if (!copy_from_kernel_nofault_allowed(s__ign, 1)) 3882 return -ERANGE; 3883 3884 guard(pagefault)(); 3885 for (i = 0; i < XATTR_SIZE_MAX; i++) { 3886 __get_kernel_nofault(&sc, s__ign, char, err_out); 3887 if (sc == '\0' || sc == c) 3888 return i; 3889 s__ign++; 3890 } 3891 return -E2BIG; 3892 err_out: 3893 return -EFAULT; 3894 } 3895 3896 /** 3897 * bpf_strrchr - Find the last occurrence of a character in a string 3898 * @s__ign: The string to be searched 3899 * @c: The character to search for 3900 * 3901 * Return: 3902 * * >=0 - Index of the last occurrence of @c within @s__ign 3903 * * %-ENOENT - @c not found in @s__ign 3904 * * %-EFAULT - Cannot read @s__ign 3905 * * %-E2BIG - @s__ign is too large 3906 * * %-ERANGE - @s__ign is outside of kernel address space 3907 */ 3908 __bpf_kfunc int bpf_strrchr(const char *s__ign, int c) 3909 { 3910 char sc; 3911 int i, last = -ENOENT; 3912 3913 if (!copy_from_kernel_nofault_allowed(s__ign, 1)) 3914 return -ERANGE; 3915 3916 guard(pagefault)(); 3917 for (i = 0; i < XATTR_SIZE_MAX; i++) { 3918 __get_kernel_nofault(&sc, s__ign, char, err_out); 3919 if (sc == c) 3920 last = i; 3921 if (sc == '\0') 3922 return last; 3923 s__ign++; 3924 } 3925 return -E2BIG; 3926 err_out: 3927 return -EFAULT; 3928 } 3929 3930 /** 3931 * bpf_strnlen - Calculate the length of a length-limited string 3932 * @s__ign: The string 3933 * @count: The maximum number of characters to count 3934 * 3935 * Return: 3936 * * >=0 - The length of @s__ign 3937 * * %-EFAULT - Cannot read @s__ign 3938 * * %-E2BIG - @s__ign is too large 3939 * * %-ERANGE - @s__ign is outside of kernel address space 3940 */ 3941 __bpf_kfunc int bpf_strnlen(const char *s__ign, size_t count) 3942 { 3943 char c; 3944 int i; 3945 3946 if (!copy_from_kernel_nofault_allowed(s__ign, 1)) 3947 return -ERANGE; 3948 3949 guard(pagefault)(); 3950 for (i = 0; i < count && i < XATTR_SIZE_MAX; i++) { 3951 __get_kernel_nofault(&c, s__ign, char, err_out); 3952 if (c == '\0') 3953 return i; 3954 s__ign++; 3955 } 3956 return i == XATTR_SIZE_MAX ? -E2BIG : i; 3957 err_out: 3958 return -EFAULT; 3959 } 3960 3961 /** 3962 * bpf_strlen - Calculate the length of a string 3963 * @s__ign: The string 3964 * 3965 * Return: 3966 * * >=0 - The length of @s__ign 3967 * * %-EFAULT - Cannot read @s__ign 3968 * * %-E2BIG - @s__ign is too large 3969 * * %-ERANGE - @s__ign is outside of kernel address space 3970 */ 3971 __bpf_kfunc int bpf_strlen(const char *s__ign) 3972 { 3973 return bpf_strnlen(s__ign, XATTR_SIZE_MAX); 3974 } 3975 3976 /** 3977 * bpf_strspn - Calculate the length of the initial substring of @s__ign which 3978 * only contains letters in @accept__ign 3979 * @s__ign: The string to be searched 3980 * @accept__ign: The string to search for 3981 * 3982 * Return: 3983 * * >=0 - The length of the initial substring of @s__ign which only 3984 * contains letters from @accept__ign 3985 * * %-EFAULT - Cannot read one of the strings 3986 * * %-E2BIG - One of the strings is too large 3987 * * %-ERANGE - One of the strings is outside of kernel address space 3988 */ 3989 __bpf_kfunc int bpf_strspn(const char *s__ign, const char *accept__ign) 3990 { 3991 char cs, ca; 3992 int i, j; 3993 3994 if (!copy_from_kernel_nofault_allowed(s__ign, 1) || 3995 !copy_from_kernel_nofault_allowed(accept__ign, 1)) { 3996 return -ERANGE; 3997 } 3998 3999 guard(pagefault)(); 4000 for (i = 0; i < XATTR_SIZE_MAX; i++) { 4001 __get_kernel_nofault(&cs, s__ign, char, err_out); 4002 if (cs == '\0') 4003 return i; 4004 for (j = 0; j < XATTR_SIZE_MAX; j++) { 4005 __get_kernel_nofault(&ca, accept__ign + j, char, err_out); 4006 if (cs == ca || ca == '\0') 4007 break; 4008 } 4009 if (j == XATTR_SIZE_MAX) 4010 return -E2BIG; 4011 if (ca == '\0') 4012 return i; 4013 s__ign++; 4014 } 4015 return -E2BIG; 4016 err_out: 4017 return -EFAULT; 4018 } 4019 4020 /** 4021 * bpf_strcspn - Calculate the length of the initial substring of @s__ign which 4022 * does not contain letters in @reject__ign 4023 * @s__ign: The string to be searched 4024 * @reject__ign: The string to search for 4025 * 4026 * Return: 4027 * * >=0 - The length of the initial substring of @s__ign which does not 4028 * contain letters from @reject__ign 4029 * * %-EFAULT - Cannot read one of the strings 4030 * * %-E2BIG - One of the strings is too large 4031 * * %-ERANGE - One of the strings is outside of kernel address space 4032 */ 4033 __bpf_kfunc int bpf_strcspn(const char *s__ign, const char *reject__ign) 4034 { 4035 char cs, cr; 4036 int i, j; 4037 4038 if (!copy_from_kernel_nofault_allowed(s__ign, 1) || 4039 !copy_from_kernel_nofault_allowed(reject__ign, 1)) { 4040 return -ERANGE; 4041 } 4042 4043 guard(pagefault)(); 4044 for (i = 0; i < XATTR_SIZE_MAX; i++) { 4045 __get_kernel_nofault(&cs, s__ign, char, err_out); 4046 if (cs == '\0') 4047 return i; 4048 for (j = 0; j < XATTR_SIZE_MAX; j++) { 4049 __get_kernel_nofault(&cr, reject__ign + j, char, err_out); 4050 if (cs == cr || cr == '\0') 4051 break; 4052 } 4053 if (j == XATTR_SIZE_MAX) 4054 return -E2BIG; 4055 if (cr != '\0') 4056 return i; 4057 s__ign++; 4058 } 4059 return -E2BIG; 4060 err_out: 4061 return -EFAULT; 4062 } 4063 4064 static int __bpf_strnstr(const char *s1, const char *s2, size_t len, 4065 bool ignore_case) 4066 { 4067 char c1, c2; 4068 int i, j; 4069 4070 if (!copy_from_kernel_nofault_allowed(s1, 1) || 4071 !copy_from_kernel_nofault_allowed(s2, 1)) { 4072 return -ERANGE; 4073 } 4074 4075 guard(pagefault)(); 4076 for (i = 0; i < XATTR_SIZE_MAX; i++) { 4077 for (j = 0; i + j <= len && j < XATTR_SIZE_MAX; j++) { 4078 __get_kernel_nofault(&c2, s2 + j, char, err_out); 4079 if (c2 == '\0') 4080 return i; 4081 /* 4082 * We allow reading an extra byte from s2 (note the 4083 * `i + j <= len` above) to cover the case when s2 is 4084 * a suffix of the first len chars of s1. 4085 */ 4086 if (i + j == len) 4087 break; 4088 __get_kernel_nofault(&c1, s1 + j, char, err_out); 4089 4090 if (ignore_case) { 4091 c1 = tolower(c1); 4092 c2 = tolower(c2); 4093 } 4094 4095 if (c1 == '\0') 4096 return -ENOENT; 4097 if (c1 != c2) 4098 break; 4099 } 4100 if (j == XATTR_SIZE_MAX) 4101 return -E2BIG; 4102 if (i + j == len) 4103 return -ENOENT; 4104 s1++; 4105 } 4106 return -E2BIG; 4107 err_out: 4108 return -EFAULT; 4109 } 4110 4111 /** 4112 * bpf_strstr - Find the first substring in a string 4113 * @s1__ign: The string to be searched 4114 * @s2__ign: The string to search for 4115 * 4116 * Return: 4117 * * >=0 - Index of the first character of the first occurrence of @s2__ign 4118 * within @s1__ign 4119 * * %-ENOENT - @s2__ign is not a substring of @s1__ign 4120 * * %-EFAULT - Cannot read one of the strings 4121 * * %-E2BIG - One of the strings is too large 4122 * * %-ERANGE - One of the strings is outside of kernel address space 4123 */ 4124 __bpf_kfunc int bpf_strstr(const char *s1__ign, const char *s2__ign) 4125 { 4126 return __bpf_strnstr(s1__ign, s2__ign, XATTR_SIZE_MAX, false); 4127 } 4128 4129 /** 4130 * bpf_strcasestr - Find the first substring in a string, ignoring the case of 4131 * the characters 4132 * @s1__ign: The string to be searched 4133 * @s2__ign: The string to search for 4134 * 4135 * Return: 4136 * * >=0 - Index of the first character of the first occurrence of @s2__ign 4137 * within @s1__ign 4138 * * %-ENOENT - @s2__ign is not a substring of @s1__ign 4139 * * %-EFAULT - Cannot read one of the strings 4140 * * %-E2BIG - One of the strings is too large 4141 * * %-ERANGE - One of the strings is outside of kernel address space 4142 */ 4143 __bpf_kfunc int bpf_strcasestr(const char *s1__ign, const char *s2__ign) 4144 { 4145 return __bpf_strnstr(s1__ign, s2__ign, XATTR_SIZE_MAX, true); 4146 } 4147 4148 /** 4149 * bpf_strnstr - Find the first substring in a length-limited string 4150 * @s1__ign: The string to be searched 4151 * @s2__ign: The string to search for 4152 * @len: the maximum number of characters to search 4153 * 4154 * Return: 4155 * * >=0 - Index of the first character of the first occurrence of @s2__ign 4156 * within the first @len characters of @s1__ign 4157 * * %-ENOENT - @s2__ign not found in the first @len characters of @s1__ign 4158 * * %-EFAULT - Cannot read one of the strings 4159 * * %-E2BIG - One of the strings is too large 4160 * * %-ERANGE - One of the strings is outside of kernel address space 4161 */ 4162 __bpf_kfunc int bpf_strnstr(const char *s1__ign, const char *s2__ign, 4163 size_t len) 4164 { 4165 return __bpf_strnstr(s1__ign, s2__ign, len, false); 4166 } 4167 4168 /** 4169 * bpf_strncasestr - Find the first substring in a length-limited string, 4170 * ignoring the case of the characters 4171 * @s1__ign: The string to be searched 4172 * @s2__ign: The string to search for 4173 * @len: the maximum number of characters to search 4174 * 4175 * Return: 4176 * * >=0 - Index of the first character of the first occurrence of @s2__ign 4177 * within the first @len characters of @s1__ign 4178 * * %-ENOENT - @s2__ign not found in the first @len characters of @s1__ign 4179 * * %-EFAULT - Cannot read one of the strings 4180 * * %-E2BIG - One of the strings is too large 4181 * * %-ERANGE - One of the strings is outside of kernel address space 4182 */ 4183 __bpf_kfunc int bpf_strncasestr(const char *s1__ign, const char *s2__ign, 4184 size_t len) 4185 { 4186 return __bpf_strnstr(s1__ign, s2__ign, len, true); 4187 } 4188 4189 #ifdef CONFIG_KEYS 4190 /** 4191 * bpf_lookup_user_key - lookup a key by its serial 4192 * @serial: key handle serial number 4193 * @flags: lookup-specific flags 4194 * 4195 * Search a key with a given *serial* and the provided *flags*. 4196 * If found, increment the reference count of the key by one, and 4197 * return it in the bpf_key structure. 4198 * 4199 * The bpf_key structure must be passed to bpf_key_put() when done 4200 * with it, so that the key reference count is decremented and the 4201 * bpf_key structure is freed. 4202 * 4203 * Permission checks are deferred to the time the key is used by 4204 * one of the available key-specific kfuncs. 4205 * 4206 * Set *flags* with KEY_LOOKUP_CREATE, to attempt creating a requested 4207 * special keyring (e.g. session keyring), if it doesn't yet exist. 4208 * Set *flags* with KEY_LOOKUP_PARTIAL, to lookup a key without waiting 4209 * for the key construction, and to retrieve uninstantiated keys (keys 4210 * without data attached to them). 4211 * 4212 * Return: a bpf_key pointer with a valid key pointer if the key is found, a 4213 * NULL pointer otherwise. 4214 */ 4215 __bpf_kfunc struct bpf_key *bpf_lookup_user_key(s32 serial, u64 flags) 4216 { 4217 key_ref_t key_ref; 4218 struct bpf_key *bkey; 4219 4220 if (flags & ~KEY_LOOKUP_ALL) 4221 return NULL; 4222 4223 /* 4224 * Permission check is deferred until the key is used, as the 4225 * intent of the caller is unknown here. 4226 */ 4227 key_ref = lookup_user_key(serial, flags, KEY_DEFER_PERM_CHECK); 4228 if (IS_ERR(key_ref)) 4229 return NULL; 4230 4231 bkey = kmalloc_obj(*bkey); 4232 if (!bkey) { 4233 key_put(key_ref_to_ptr(key_ref)); 4234 return NULL; 4235 } 4236 4237 bkey->key = key_ref_to_ptr(key_ref); 4238 bkey->has_ref = true; 4239 4240 return bkey; 4241 } 4242 4243 /** 4244 * bpf_lookup_system_key - lookup a key by a system-defined ID 4245 * @id: key ID 4246 * 4247 * Obtain a bpf_key structure with a key pointer set to the passed key ID. 4248 * The key pointer is marked as invalid, to prevent bpf_key_put() from 4249 * attempting to decrement the key reference count on that pointer. The key 4250 * pointer set in such way is currently understood only by 4251 * verify_pkcs7_signature(). 4252 * 4253 * Set *id* to one of the values defined in include/linux/verification.h: 4254 * 0 for the primary keyring (immutable keyring of system keys); 4255 * VERIFY_USE_SECONDARY_KEYRING for both the primary and secondary keyring 4256 * (where keys can be added only if they are vouched for by existing keys 4257 * in those keyrings); VERIFY_USE_PLATFORM_KEYRING for the platform 4258 * keyring (primarily used by the integrity subsystem to verify a kexec'ed 4259 * kerned image and, possibly, the initramfs signature). 4260 * 4261 * Return: a bpf_key pointer with an invalid key pointer set from the 4262 * pre-determined ID on success, a NULL pointer otherwise 4263 */ 4264 __bpf_kfunc struct bpf_key *bpf_lookup_system_key(u64 id) 4265 { 4266 struct bpf_key *bkey; 4267 4268 if (system_keyring_id_check(id) < 0) 4269 return NULL; 4270 4271 bkey = kmalloc_obj(*bkey, GFP_ATOMIC); 4272 if (!bkey) 4273 return NULL; 4274 4275 bkey->key = (struct key *)(unsigned long)id; 4276 bkey->has_ref = false; 4277 4278 return bkey; 4279 } 4280 4281 /** 4282 * bpf_key_put - decrement key reference count if key is valid and free bpf_key 4283 * @bkey: bpf_key structure 4284 * 4285 * Decrement the reference count of the key inside *bkey*, if the pointer 4286 * is valid, and free *bkey*. 4287 */ 4288 __bpf_kfunc void bpf_key_put(struct bpf_key *bkey) 4289 { 4290 if (bkey->has_ref) 4291 key_put(bkey->key); 4292 4293 kfree(bkey); 4294 } 4295 4296 /** 4297 * bpf_verify_pkcs7_signature - verify a PKCS#7 signature 4298 * @data_p: data to verify 4299 * @sig_p: signature of the data 4300 * @trusted_keyring: keyring with keys trusted for signature verification 4301 * 4302 * Verify the PKCS#7 signature *sig_ptr* against the supplied *data_ptr* 4303 * with keys in a keyring referenced by *trusted_keyring*. 4304 * 4305 * Return: 0 on success, a negative value on error. 4306 */ 4307 __bpf_kfunc int bpf_verify_pkcs7_signature(const struct bpf_dynptr *data_p, 4308 const struct bpf_dynptr *sig_p, 4309 struct bpf_key *trusted_keyring) 4310 { 4311 #ifdef CONFIG_SYSTEM_DATA_VERIFICATION 4312 const struct bpf_dynptr_kern *data_ptr = (struct bpf_dynptr_kern *)data_p; 4313 const struct bpf_dynptr_kern *sig_ptr = (struct bpf_dynptr_kern *)sig_p; 4314 const void *data, *sig; 4315 u32 data_len, sig_len; 4316 int ret; 4317 4318 if (trusted_keyring->has_ref) { 4319 /* 4320 * Do the permission check deferred in bpf_lookup_user_key(). 4321 * See bpf_lookup_user_key() for more details. 4322 * 4323 * A call to key_task_permission() here would be redundant, as 4324 * it is already done by keyring_search() called by 4325 * find_asymmetric_key(). 4326 */ 4327 ret = key_validate(trusted_keyring->key); 4328 if (ret < 0) 4329 return ret; 4330 } 4331 4332 data_len = __bpf_dynptr_size(data_ptr); 4333 data = __bpf_dynptr_data(data_ptr, data_len); 4334 if (!data) 4335 return -EINVAL; 4336 4337 sig_len = __bpf_dynptr_size(sig_ptr); 4338 sig = __bpf_dynptr_data(sig_ptr, sig_len); 4339 if (!sig) 4340 return -EINVAL; 4341 4342 return verify_pkcs7_signature(data, data_len, sig, sig_len, 4343 trusted_keyring->key, 4344 VERIFYING_BPF_SIGNATURE, NULL, 4345 NULL); 4346 #else 4347 return -EOPNOTSUPP; 4348 #endif /* CONFIG_SYSTEM_DATA_VERIFICATION */ 4349 } 4350 #endif /* CONFIG_KEYS */ 4351 4352 typedef int (*bpf_task_work_callback_t)(struct bpf_map *map, void *key, void *value); 4353 4354 enum bpf_task_work_state { 4355 /* bpf_task_work is ready to be used */ 4356 BPF_TW_STANDBY = 0, 4357 /* irq work scheduling in progress */ 4358 BPF_TW_PENDING, 4359 /* task work scheduling in progress */ 4360 BPF_TW_SCHEDULING, 4361 /* task work is scheduled successfully */ 4362 BPF_TW_SCHEDULED, 4363 /* callback is running */ 4364 BPF_TW_RUNNING, 4365 /* associated BPF map value is deleted */ 4366 BPF_TW_FREED, 4367 }; 4368 4369 struct bpf_task_work_ctx { 4370 enum bpf_task_work_state state; 4371 refcount_t refcnt; 4372 struct callback_head work; 4373 struct irq_work irq_work; 4374 /* bpf_prog that schedules task work */ 4375 struct bpf_prog *prog; 4376 /* task for which callback is scheduled */ 4377 struct task_struct *task; 4378 /* the map and map value associated with this context */ 4379 struct bpf_map *map; 4380 void *map_val; 4381 enum task_work_notify_mode mode; 4382 bpf_task_work_callback_t callback_fn; 4383 struct rcu_head rcu; 4384 } __aligned(8); 4385 4386 /* Actual type for struct bpf_task_work */ 4387 struct bpf_task_work_kern { 4388 struct bpf_task_work_ctx *ctx; 4389 }; 4390 4391 static void bpf_task_work_ctx_reset(struct bpf_task_work_ctx *ctx) 4392 { 4393 if (ctx->prog) { 4394 bpf_prog_put(ctx->prog); 4395 ctx->prog = NULL; 4396 } 4397 if (ctx->task) { 4398 bpf_task_release(ctx->task); 4399 ctx->task = NULL; 4400 } 4401 } 4402 4403 static bool bpf_task_work_ctx_tryget(struct bpf_task_work_ctx *ctx) 4404 { 4405 return refcount_inc_not_zero(&ctx->refcnt); 4406 } 4407 4408 static void bpf_task_work_destroy(struct irq_work *irq_work) 4409 { 4410 struct bpf_task_work_ctx *ctx = container_of(irq_work, struct bpf_task_work_ctx, irq_work); 4411 4412 bpf_task_work_ctx_reset(ctx); 4413 kfree_rcu(ctx, rcu); 4414 } 4415 4416 static void bpf_task_work_ctx_put(struct bpf_task_work_ctx *ctx) 4417 { 4418 if (!refcount_dec_and_test(&ctx->refcnt)) 4419 return; 4420 4421 if (irqs_disabled()) { 4422 ctx->irq_work = IRQ_WORK_INIT(bpf_task_work_destroy); 4423 irq_work_queue(&ctx->irq_work); 4424 } else { 4425 bpf_task_work_destroy(&ctx->irq_work); 4426 } 4427 } 4428 4429 static void bpf_task_work_cancel(struct bpf_task_work_ctx *ctx) 4430 { 4431 /* 4432 * Scheduled task_work callback holds ctx ref, so if we successfully 4433 * cancelled, we put that ref on callback's behalf. If we couldn't 4434 * cancel, callback will inevitably run or has already completed 4435 * running, and it would have taken care of its ctx ref itself. 4436 */ 4437 if (task_work_cancel(ctx->task, &ctx->work)) 4438 bpf_task_work_ctx_put(ctx); 4439 } 4440 4441 static void bpf_task_work_callback(struct callback_head *cb) 4442 { 4443 struct bpf_task_work_ctx *ctx = container_of(cb, struct bpf_task_work_ctx, work); 4444 enum bpf_task_work_state state; 4445 u32 idx; 4446 void *key; 4447 4448 /* Read lock is needed to protect ctx and map key/value access */ 4449 guard(rcu_tasks_trace)(); 4450 /* 4451 * This callback may start running before bpf_task_work_irq() switched to 4452 * SCHEDULED state, so handle both transition variants SCHEDULING|SCHEDULED -> RUNNING. 4453 */ 4454 state = cmpxchg(&ctx->state, BPF_TW_SCHEDULING, BPF_TW_RUNNING); 4455 if (state == BPF_TW_SCHEDULED) 4456 state = cmpxchg(&ctx->state, BPF_TW_SCHEDULED, BPF_TW_RUNNING); 4457 if (state == BPF_TW_FREED) { 4458 bpf_task_work_ctx_put(ctx); 4459 return; 4460 } 4461 4462 key = (void *)map_key_from_value(ctx->map, ctx->map_val, &idx); 4463 4464 migrate_disable(); 4465 ctx->callback_fn(ctx->map, key, ctx->map_val); 4466 migrate_enable(); 4467 4468 bpf_task_work_ctx_reset(ctx); 4469 (void)cmpxchg(&ctx->state, BPF_TW_RUNNING, BPF_TW_STANDBY); 4470 4471 bpf_task_work_ctx_put(ctx); 4472 } 4473 4474 static void bpf_task_work_irq(struct irq_work *irq_work) 4475 { 4476 struct bpf_task_work_ctx *ctx = container_of(irq_work, struct bpf_task_work_ctx, irq_work); 4477 enum bpf_task_work_state state; 4478 int err; 4479 4480 guard(rcu)(); 4481 4482 if (cmpxchg(&ctx->state, BPF_TW_PENDING, BPF_TW_SCHEDULING) != BPF_TW_PENDING) { 4483 bpf_task_work_ctx_put(ctx); 4484 return; 4485 } 4486 4487 err = task_work_add(ctx->task, &ctx->work, ctx->mode); 4488 if (err) { 4489 bpf_task_work_ctx_reset(ctx); 4490 /* 4491 * try to switch back to STANDBY for another task_work reuse, but we might have 4492 * gone to FREED already, which is fine as we already cleaned up after ourselves 4493 */ 4494 (void)cmpxchg(&ctx->state, BPF_TW_SCHEDULING, BPF_TW_STANDBY); 4495 bpf_task_work_ctx_put(ctx); 4496 return; 4497 } 4498 4499 /* 4500 * It's technically possible for just scheduled task_work callback to 4501 * complete running by now, going SCHEDULING -> RUNNING and then 4502 * dropping its ctx refcount. Instead of capturing an extra ref just 4503 * to protect below ctx->state access, we rely on rcu_read_lock 4504 * above to prevent kfree_rcu from freeing ctx before we return. 4505 */ 4506 state = cmpxchg(&ctx->state, BPF_TW_SCHEDULING, BPF_TW_SCHEDULED); 4507 if (state == BPF_TW_FREED) 4508 bpf_task_work_cancel(ctx); /* clean up if we switched into FREED state */ 4509 } 4510 4511 static struct bpf_task_work_ctx *bpf_task_work_fetch_ctx(struct bpf_task_work *tw, 4512 struct bpf_map *map) 4513 { 4514 struct bpf_task_work_kern *twk = (void *)tw; 4515 struct bpf_task_work_ctx *ctx, *old_ctx; 4516 4517 ctx = READ_ONCE(twk->ctx); 4518 if (ctx) 4519 return ctx; 4520 4521 ctx = bpf_map_kmalloc_nolock(map, sizeof(*ctx), 0, NUMA_NO_NODE); 4522 if (!ctx) 4523 return ERR_PTR(-ENOMEM); 4524 4525 memset(ctx, 0, sizeof(*ctx)); 4526 refcount_set(&ctx->refcnt, 1); /* map's own ref */ 4527 ctx->state = BPF_TW_STANDBY; 4528 4529 old_ctx = cmpxchg(&twk->ctx, NULL, ctx); 4530 if (old_ctx) { 4531 /* 4532 * tw->ctx is set by concurrent BPF program, release allocated 4533 * memory and try to reuse already set context. 4534 */ 4535 kfree_nolock(ctx); 4536 return old_ctx; 4537 } 4538 4539 return ctx; /* Success */ 4540 } 4541 4542 static struct bpf_task_work_ctx *bpf_task_work_acquire_ctx(struct bpf_task_work *tw, 4543 struct bpf_map *map) 4544 { 4545 struct bpf_task_work_ctx *ctx; 4546 4547 /* 4548 * Sleepable BPF programs hold rcu_read_lock_trace but not 4549 * regular rcu_read_lock. Since kfree_rcu waits for regular 4550 * RCU GP, the ctx can be freed while we're between reading 4551 * the pointer and incrementing the refcount. Take regular 4552 * rcu_read_lock to prevent kfree_rcu from freeing the ctx 4553 * before we can tryget it. 4554 */ 4555 scoped_guard(rcu) { 4556 ctx = bpf_task_work_fetch_ctx(tw, map); 4557 if (IS_ERR(ctx)) 4558 return ctx; 4559 4560 /* try to get ref for task_work callback to hold */ 4561 if (!bpf_task_work_ctx_tryget(ctx)) 4562 return ERR_PTR(-EBUSY); 4563 } 4564 4565 if (cmpxchg(&ctx->state, BPF_TW_STANDBY, BPF_TW_PENDING) != BPF_TW_STANDBY) { 4566 /* lost acquiring race or map_release_uref() stole it from us, put ref and bail */ 4567 bpf_task_work_ctx_put(ctx); 4568 return ERR_PTR(-EBUSY); 4569 } 4570 4571 /* 4572 * If no process or bpffs is holding a reference to the map, no new callbacks should be 4573 * scheduled. This does not address any race or correctness issue, but rather is a policy 4574 * choice: dropping user references should stop everything. 4575 */ 4576 if (!atomic64_read(&map->usercnt)) { 4577 /* drop ref we just got for task_work callback itself */ 4578 bpf_task_work_ctx_put(ctx); 4579 /* transfer map's ref into cancel_and_free() */ 4580 bpf_task_work_cancel_and_free(tw); 4581 return ERR_PTR(-EBUSY); 4582 } 4583 4584 return ctx; 4585 } 4586 4587 static int bpf_task_work_schedule(struct task_struct *task, struct bpf_task_work *tw, 4588 struct bpf_map *map, bpf_task_work_callback_t callback_fn, 4589 struct bpf_prog_aux *aux, enum task_work_notify_mode mode) 4590 { 4591 struct bpf_prog *prog; 4592 struct bpf_task_work_ctx *ctx; 4593 int err; 4594 4595 BTF_TYPE_EMIT(struct bpf_task_work); 4596 4597 prog = bpf_prog_inc_not_zero(aux->prog); 4598 if (IS_ERR(prog)) 4599 return -EBADF; 4600 task = bpf_task_acquire(task); 4601 if (!task) { 4602 err = -EBADF; 4603 goto release_prog; 4604 } 4605 4606 ctx = bpf_task_work_acquire_ctx(tw, map); 4607 if (IS_ERR(ctx)) { 4608 err = PTR_ERR(ctx); 4609 goto release_all; 4610 } 4611 4612 ctx->task = task; 4613 ctx->callback_fn = callback_fn; 4614 ctx->prog = prog; 4615 ctx->mode = mode; 4616 ctx->map = map; 4617 ctx->map_val = (void *)tw - map->record->task_work_off; 4618 init_task_work(&ctx->work, bpf_task_work_callback); 4619 init_irq_work(&ctx->irq_work, bpf_task_work_irq); 4620 4621 irq_work_queue(&ctx->irq_work); 4622 return 0; 4623 4624 release_all: 4625 bpf_task_release(task); 4626 release_prog: 4627 bpf_prog_put(prog); 4628 return err; 4629 } 4630 4631 /** 4632 * bpf_task_work_schedule_signal - Schedule BPF callback using task_work_add with TWA_SIGNAL 4633 * mode 4634 * @task: Task struct for which callback should be scheduled 4635 * @tw: Pointer to struct bpf_task_work in BPF map value for internal bookkeeping 4636 * @map__map: bpf_map that embeds struct bpf_task_work in the values 4637 * @callback: pointer to BPF subprogram to call 4638 * @aux: pointer to bpf_prog_aux of the caller BPF program, implicitly set by the verifier 4639 * 4640 * Return: 0 if task work has been scheduled successfully, negative error code otherwise 4641 */ 4642 __bpf_kfunc int bpf_task_work_schedule_signal(struct task_struct *task, struct bpf_task_work *tw, 4643 void *map__map, bpf_task_work_callback_t callback, 4644 struct bpf_prog_aux *aux) 4645 { 4646 return bpf_task_work_schedule(task, tw, map__map, callback, aux, TWA_SIGNAL); 4647 } 4648 4649 /** 4650 * bpf_task_work_schedule_resume - Schedule BPF callback using task_work_add with TWA_RESUME 4651 * mode 4652 * @task: Task struct for which callback should be scheduled 4653 * @tw: Pointer to struct bpf_task_work in BPF map value for internal bookkeeping 4654 * @map__map: bpf_map that embeds struct bpf_task_work in the values 4655 * @callback: pointer to BPF subprogram to call 4656 * @aux: pointer to bpf_prog_aux of the caller BPF program, implicitly set by the verifier 4657 * 4658 * Return: 0 if task work has been scheduled successfully, negative error code otherwise 4659 */ 4660 __bpf_kfunc int bpf_task_work_schedule_resume(struct task_struct *task, struct bpf_task_work *tw, 4661 void *map__map, bpf_task_work_callback_t callback, 4662 struct bpf_prog_aux *aux) 4663 { 4664 return bpf_task_work_schedule(task, tw, map__map, callback, aux, TWA_RESUME); 4665 } 4666 4667 static int make_file_dynptr(struct file *file, u32 flags, bool may_sleep, 4668 struct bpf_dynptr_kern *ptr) 4669 { 4670 struct bpf_dynptr_file_impl *state; 4671 4672 /* flags is currently unsupported */ 4673 if (flags) { 4674 bpf_dynptr_set_null(ptr); 4675 return -EINVAL; 4676 } 4677 4678 state = kmalloc_nolock(sizeof(*state), 0, NUMA_NO_NODE); 4679 if (!state) { 4680 bpf_dynptr_set_null(ptr); 4681 return -ENOMEM; 4682 } 4683 state->offset = 0; 4684 state->size = U64_MAX; /* Don't restrict size, as file may change anyways */ 4685 freader_init_from_file(&state->freader, NULL, 0, file, may_sleep); 4686 bpf_dynptr_init(ptr, state, BPF_DYNPTR_TYPE_FILE, 0, 0); 4687 bpf_dynptr_set_rdonly(ptr); 4688 return 0; 4689 } 4690 4691 __bpf_kfunc int bpf_dynptr_from_file(struct file *file, u32 flags, struct bpf_dynptr *ptr__uninit) 4692 { 4693 return make_file_dynptr(file, flags, false, (struct bpf_dynptr_kern *)ptr__uninit); 4694 } 4695 4696 int bpf_dynptr_from_file_sleepable(struct file *file, u32 flags, struct bpf_dynptr *ptr__uninit) 4697 { 4698 return make_file_dynptr(file, flags, true, (struct bpf_dynptr_kern *)ptr__uninit); 4699 } 4700 4701 __bpf_kfunc int bpf_dynptr_file_discard(struct bpf_dynptr *dynptr) 4702 { 4703 struct bpf_dynptr_kern *ptr = (struct bpf_dynptr_kern *)dynptr; 4704 struct bpf_dynptr_file_impl *df = ptr->data; 4705 4706 if (!df) 4707 return 0; 4708 4709 freader_cleanup(&df->freader); 4710 kfree_nolock(df); 4711 bpf_dynptr_set_null(ptr); 4712 return 0; 4713 } 4714 4715 /** 4716 * bpf_timer_cancel_async - try to deactivate a timer 4717 * @timer: bpf_timer to stop 4718 * 4719 * Returns: 4720 * 4721 * * 0 when the timer was not active 4722 * * 1 when the timer was active 4723 * * -1 when the timer is currently executing the callback function and 4724 * cannot be stopped 4725 * * -ECANCELED when the timer will be cancelled asynchronously 4726 * * -ENOMEM when out of memory 4727 * * -EINVAL when the timer was not initialized 4728 * * -ENOENT when this kfunc is racing with timer deletion 4729 */ 4730 __bpf_kfunc int bpf_timer_cancel_async(struct bpf_timer *timer) 4731 { 4732 struct bpf_async_kern *async = (void *)timer; 4733 struct bpf_async_cb *cb; 4734 int ret; 4735 4736 cb = READ_ONCE(async->cb); 4737 if (!cb) 4738 return -EINVAL; 4739 4740 /* 4741 * Unlike hrtimer_start() it's ok to synchronously call 4742 * hrtimer_try_to_cancel() when refcnt reached zero, but deferring to 4743 * irq_work is not, since irq callback may execute after RCU GP and 4744 * cb could be freed at that time. Check for refcnt zero for 4745 * consistency. 4746 */ 4747 if (!refcount_inc_not_zero(&cb->refcnt)) 4748 return -ENOENT; 4749 4750 if (!defer_timer_wq_op()) { 4751 struct bpf_hrtimer *t = container_of(cb, struct bpf_hrtimer, cb); 4752 4753 ret = hrtimer_try_to_cancel(&t->timer); 4754 bpf_async_refcount_put(cb); 4755 return ret; 4756 } else { 4757 ret = bpf_async_schedule_op(cb, BPF_ASYNC_CANCEL, 0, 0); 4758 return ret ? ret : -ECANCELED; 4759 } 4760 } 4761 4762 __bpf_kfunc_end_defs(); 4763 4764 static void bpf_task_work_cancel_scheduled(struct irq_work *irq_work) 4765 { 4766 struct bpf_task_work_ctx *ctx = container_of(irq_work, struct bpf_task_work_ctx, irq_work); 4767 4768 bpf_task_work_cancel(ctx); /* this might put task_work callback's ref */ 4769 bpf_task_work_ctx_put(ctx); /* and here we put map's own ref that was transferred to us */ 4770 } 4771 4772 void bpf_task_work_cancel_and_free(void *val) 4773 { 4774 struct bpf_task_work_kern *twk = val; 4775 struct bpf_task_work_ctx *ctx; 4776 enum bpf_task_work_state state; 4777 4778 ctx = xchg(&twk->ctx, NULL); 4779 if (!ctx) 4780 return; 4781 4782 state = xchg(&ctx->state, BPF_TW_FREED); 4783 if (state == BPF_TW_SCHEDULED) { 4784 /* run in irq_work to avoid locks in NMI */ 4785 init_irq_work(&ctx->irq_work, bpf_task_work_cancel_scheduled); 4786 irq_work_queue(&ctx->irq_work); 4787 return; 4788 } 4789 4790 bpf_task_work_ctx_put(ctx); /* put bpf map's ref */ 4791 } 4792 4793 BTF_KFUNCS_START(generic_btf_ids) 4794 #ifdef CONFIG_CRASH_DUMP 4795 BTF_ID_FLAGS(func, crash_kexec, KF_DESTRUCTIVE) 4796 #endif 4797 BTF_ID_FLAGS(func, bpf_obj_new, KF_ACQUIRE | KF_RET_NULL | KF_IMPLICIT_ARGS) 4798 BTF_ID_FLAGS(func, bpf_obj_new_impl, KF_ACQUIRE | KF_RET_NULL) 4799 BTF_ID_FLAGS(func, bpf_percpu_obj_new, KF_ACQUIRE | KF_RET_NULL | KF_IMPLICIT_ARGS) 4800 BTF_ID_FLAGS(func, bpf_percpu_obj_new_impl, KF_ACQUIRE | KF_RET_NULL) 4801 BTF_ID_FLAGS(func, bpf_obj_drop, KF_RELEASE | KF_IMPLICIT_ARGS) 4802 BTF_ID_FLAGS(func, bpf_obj_drop_impl, KF_RELEASE) 4803 BTF_ID_FLAGS(func, bpf_percpu_obj_drop, KF_RELEASE | KF_IMPLICIT_ARGS) 4804 BTF_ID_FLAGS(func, bpf_percpu_obj_drop_impl, KF_RELEASE) 4805 BTF_ID_FLAGS(func, bpf_refcount_acquire, KF_ACQUIRE | KF_RET_NULL | KF_RCU | KF_IMPLICIT_ARGS) 4806 BTF_ID_FLAGS(func, bpf_refcount_acquire_impl, KF_ACQUIRE | KF_RET_NULL | KF_RCU) 4807 BTF_ID_FLAGS(func, bpf_list_push_front, KF_IMPLICIT_ARGS) 4808 BTF_ID_FLAGS(func, bpf_list_push_front_impl) 4809 BTF_ID_FLAGS(func, bpf_list_push_back, KF_IMPLICIT_ARGS) 4810 BTF_ID_FLAGS(func, bpf_list_push_back_impl) 4811 BTF_ID_FLAGS(func, bpf_list_add, KF_IMPLICIT_ARGS) 4812 BTF_ID_FLAGS(func, bpf_list_pop_front, KF_ACQUIRE | KF_RET_NULL) 4813 BTF_ID_FLAGS(func, bpf_list_pop_back, KF_ACQUIRE | KF_RET_NULL) 4814 BTF_ID_FLAGS(func, bpf_list_del, KF_ACQUIRE | KF_RET_NULL) 4815 BTF_ID_FLAGS(func, bpf_list_front, KF_RET_NULL) 4816 BTF_ID_FLAGS(func, bpf_list_back, KF_RET_NULL) 4817 BTF_ID_FLAGS(func, bpf_list_is_first) 4818 BTF_ID_FLAGS(func, bpf_list_is_last) 4819 BTF_ID_FLAGS(func, bpf_list_empty) 4820 BTF_ID_FLAGS(func, bpf_task_acquire, KF_ACQUIRE | KF_RCU | KF_RET_NULL) 4821 BTF_ID_FLAGS(func, bpf_task_release, KF_RELEASE) 4822 BTF_ID_FLAGS(func, bpf_rbtree_remove, KF_ACQUIRE | KF_RET_NULL) 4823 BTF_ID_FLAGS(func, bpf_rbtree_add, KF_IMPLICIT_ARGS) 4824 BTF_ID_FLAGS(func, bpf_rbtree_add_impl) 4825 BTF_ID_FLAGS(func, bpf_rbtree_first, KF_RET_NULL) 4826 BTF_ID_FLAGS(func, bpf_rbtree_root, KF_RET_NULL) 4827 BTF_ID_FLAGS(func, bpf_rbtree_left, KF_RET_NULL) 4828 BTF_ID_FLAGS(func, bpf_rbtree_right, KF_RET_NULL) 4829 4830 #ifdef CONFIG_CGROUPS 4831 BTF_ID_FLAGS(func, bpf_cgroup_acquire, KF_ACQUIRE | KF_RCU | KF_RET_NULL) 4832 BTF_ID_FLAGS(func, bpf_cgroup_release, KF_RELEASE) 4833 BTF_ID_FLAGS(func, bpf_cgroup_ancestor, KF_ACQUIRE | KF_RCU | KF_RET_NULL) 4834 BTF_ID_FLAGS(func, bpf_cgroup_from_id, KF_ACQUIRE | KF_RET_NULL) 4835 BTF_ID_FLAGS(func, bpf_task_under_cgroup, KF_RCU) 4836 BTF_ID_FLAGS(func, bpf_task_get_cgroup1, KF_ACQUIRE | KF_RCU | KF_RET_NULL) 4837 #endif 4838 BTF_ID_FLAGS(func, bpf_task_from_pid, KF_ACQUIRE | KF_RET_NULL) 4839 BTF_ID_FLAGS(func, bpf_task_from_vpid, KF_ACQUIRE | KF_RET_NULL) 4840 BTF_ID_FLAGS(func, bpf_throw) 4841 #ifdef CONFIG_BPF_EVENTS 4842 BTF_ID_FLAGS(func, bpf_send_signal_task) 4843 #endif 4844 #ifdef CONFIG_KEYS 4845 BTF_ID_FLAGS(func, bpf_lookup_user_key, KF_ACQUIRE | KF_RET_NULL | KF_SLEEPABLE) 4846 BTF_ID_FLAGS(func, bpf_lookup_system_key, KF_ACQUIRE | KF_RET_NULL) 4847 BTF_ID_FLAGS(func, bpf_key_put, KF_RELEASE) 4848 #ifdef CONFIG_SYSTEM_DATA_VERIFICATION 4849 BTF_ID_FLAGS(func, bpf_verify_pkcs7_signature, KF_SLEEPABLE) 4850 #endif 4851 #endif 4852 #ifdef CONFIG_S390 4853 BTF_ID_FLAGS(func, bpf_get_lowcore) 4854 #endif 4855 BTF_KFUNCS_END(generic_btf_ids) 4856 4857 static const struct btf_kfunc_id_set generic_kfunc_set = { 4858 .owner = THIS_MODULE, 4859 .set = &generic_btf_ids, 4860 }; 4861 4862 4863 BTF_ID_LIST(generic_dtor_ids) 4864 BTF_ID(struct, task_struct) 4865 BTF_ID(func, bpf_task_release_dtor) 4866 #ifdef CONFIG_CGROUPS 4867 BTF_ID(struct, cgroup) 4868 BTF_ID(func, bpf_cgroup_release_dtor) 4869 #endif 4870 4871 BTF_KFUNCS_START(common_btf_ids) 4872 BTF_ID_FLAGS(func, bpf_cast_to_kern_ctx, KF_FASTCALL) 4873 BTF_ID_FLAGS(func, bpf_rdonly_cast, KF_FASTCALL) 4874 BTF_ID_FLAGS(func, bpf_rcu_read_lock) 4875 BTF_ID_FLAGS(func, bpf_rcu_read_unlock) 4876 BTF_ID_FLAGS(func, bpf_dynptr_slice, KF_RET_NULL) 4877 BTF_ID_FLAGS(func, bpf_dynptr_slice_rdwr, KF_RET_NULL) 4878 BTF_ID_FLAGS(func, bpf_iter_num_new, KF_ITER_NEW) 4879 BTF_ID_FLAGS(func, bpf_iter_num_next, KF_ITER_NEXT | KF_RET_NULL) 4880 BTF_ID_FLAGS(func, bpf_iter_num_destroy, KF_ITER_DESTROY) 4881 BTF_ID_FLAGS(func, bpf_iter_task_vma_new, KF_ITER_NEW | KF_RCU) 4882 BTF_ID_FLAGS(func, bpf_iter_task_vma_next, KF_ITER_NEXT | KF_RET_NULL) 4883 BTF_ID_FLAGS(func, bpf_iter_task_vma_destroy, KF_ITER_DESTROY) 4884 #ifdef CONFIG_CGROUPS 4885 BTF_ID_FLAGS(func, bpf_iter_css_task_new, KF_ITER_NEW) 4886 BTF_ID_FLAGS(func, bpf_iter_css_task_next, KF_ITER_NEXT | KF_RET_NULL) 4887 BTF_ID_FLAGS(func, bpf_iter_css_task_destroy, KF_ITER_DESTROY) 4888 BTF_ID_FLAGS(func, bpf_iter_css_new, KF_ITER_NEW | KF_RCU_PROTECTED) 4889 BTF_ID_FLAGS(func, bpf_iter_css_next, KF_ITER_NEXT | KF_RET_NULL) 4890 BTF_ID_FLAGS(func, bpf_iter_css_destroy, KF_ITER_DESTROY) 4891 #endif 4892 BTF_ID_FLAGS(func, bpf_iter_task_new, KF_ITER_NEW | KF_RCU_PROTECTED) 4893 BTF_ID_FLAGS(func, bpf_iter_task_next, KF_ITER_NEXT | KF_RET_NULL) 4894 BTF_ID_FLAGS(func, bpf_iter_task_destroy, KF_ITER_DESTROY) 4895 BTF_ID_FLAGS(func, bpf_dynptr_adjust) 4896 BTF_ID_FLAGS(func, bpf_dynptr_is_null) 4897 BTF_ID_FLAGS(func, bpf_dynptr_is_rdonly) 4898 BTF_ID_FLAGS(func, bpf_dynptr_size) 4899 BTF_ID_FLAGS(func, bpf_dynptr_clone) 4900 BTF_ID_FLAGS(func, bpf_dynptr_copy) 4901 BTF_ID_FLAGS(func, bpf_dynptr_memset) 4902 #ifdef CONFIG_NET 4903 BTF_ID_FLAGS(func, bpf_modify_return_test_tp) 4904 #endif 4905 BTF_ID_FLAGS(func, bpf_wq_init) 4906 BTF_ID_FLAGS(func, bpf_wq_set_callback, KF_IMPLICIT_ARGS) 4907 BTF_ID_FLAGS(func, bpf_wq_start) 4908 BTF_ID_FLAGS(func, bpf_preempt_disable) 4909 BTF_ID_FLAGS(func, bpf_preempt_enable) 4910 BTF_ID_FLAGS(func, bpf_iter_bits_new, KF_ITER_NEW) 4911 BTF_ID_FLAGS(func, bpf_iter_bits_next, KF_ITER_NEXT | KF_RET_NULL) 4912 BTF_ID_FLAGS(func, bpf_iter_bits_destroy, KF_ITER_DESTROY) 4913 BTF_ID_FLAGS(func, bpf_copy_from_user_str, KF_SLEEPABLE) 4914 BTF_ID_FLAGS(func, bpf_copy_from_user_task_str, KF_SLEEPABLE) 4915 BTF_ID_FLAGS(func, bpf_get_kmem_cache) 4916 BTF_ID_FLAGS(func, bpf_iter_kmem_cache_new, KF_ITER_NEW | KF_SLEEPABLE) 4917 BTF_ID_FLAGS(func, bpf_iter_kmem_cache_next, KF_ITER_NEXT | KF_RET_NULL | KF_SLEEPABLE) 4918 BTF_ID_FLAGS(func, bpf_iter_kmem_cache_destroy, KF_ITER_DESTROY | KF_SLEEPABLE) 4919 BTF_ID_FLAGS(func, bpf_local_irq_save) 4920 BTF_ID_FLAGS(func, bpf_local_irq_restore) 4921 #ifdef CONFIG_BPF_EVENTS 4922 BTF_ID_FLAGS(func, bpf_probe_read_user_dynptr) 4923 BTF_ID_FLAGS(func, bpf_probe_read_kernel_dynptr) 4924 BTF_ID_FLAGS(func, bpf_probe_read_user_str_dynptr) 4925 BTF_ID_FLAGS(func, bpf_probe_read_kernel_str_dynptr) 4926 BTF_ID_FLAGS(func, bpf_copy_from_user_dynptr, KF_SLEEPABLE) 4927 BTF_ID_FLAGS(func, bpf_copy_from_user_str_dynptr, KF_SLEEPABLE) 4928 BTF_ID_FLAGS(func, bpf_copy_from_user_task_dynptr, KF_SLEEPABLE) 4929 BTF_ID_FLAGS(func, bpf_copy_from_user_task_str_dynptr, KF_SLEEPABLE) 4930 #endif 4931 #ifdef CONFIG_DMA_SHARED_BUFFER 4932 BTF_ID_FLAGS(func, bpf_iter_dmabuf_new, KF_ITER_NEW | KF_SLEEPABLE) 4933 BTF_ID_FLAGS(func, bpf_iter_dmabuf_next, KF_ITER_NEXT | KF_RET_NULL | KF_SLEEPABLE) 4934 BTF_ID_FLAGS(func, bpf_iter_dmabuf_destroy, KF_ITER_DESTROY | KF_SLEEPABLE) 4935 #endif 4936 BTF_ID_FLAGS(func, __bpf_trap) 4937 BTF_ID_FLAGS(func, bpf_strcmp); 4938 BTF_ID_FLAGS(func, bpf_strcasecmp); 4939 BTF_ID_FLAGS(func, bpf_strncasecmp); 4940 BTF_ID_FLAGS(func, bpf_strchr); 4941 BTF_ID_FLAGS(func, bpf_strchrnul); 4942 BTF_ID_FLAGS(func, bpf_strnchr); 4943 BTF_ID_FLAGS(func, bpf_strrchr); 4944 BTF_ID_FLAGS(func, bpf_strlen); 4945 BTF_ID_FLAGS(func, bpf_strnlen); 4946 BTF_ID_FLAGS(func, bpf_strspn); 4947 BTF_ID_FLAGS(func, bpf_strcspn); 4948 BTF_ID_FLAGS(func, bpf_strstr); 4949 BTF_ID_FLAGS(func, bpf_strcasestr); 4950 BTF_ID_FLAGS(func, bpf_strnstr); 4951 BTF_ID_FLAGS(func, bpf_strncasestr); 4952 #if defined(CONFIG_BPF_LSM) && defined(CONFIG_CGROUPS) 4953 BTF_ID_FLAGS(func, bpf_cgroup_read_xattr, KF_RCU) 4954 #endif 4955 BTF_ID_FLAGS(func, bpf_stream_vprintk, KF_IMPLICIT_ARGS) 4956 BTF_ID_FLAGS(func, bpf_stream_print_stack, KF_IMPLICIT_ARGS) 4957 BTF_ID_FLAGS(func, bpf_task_work_schedule_signal, KF_IMPLICIT_ARGS) 4958 BTF_ID_FLAGS(func, bpf_task_work_schedule_resume, KF_IMPLICIT_ARGS) 4959 BTF_ID_FLAGS(func, bpf_dynptr_from_file) 4960 BTF_ID_FLAGS(func, bpf_dynptr_file_discard, KF_RELEASE) 4961 BTF_ID_FLAGS(func, bpf_timer_cancel_async) 4962 BTF_KFUNCS_END(common_btf_ids) 4963 4964 static const struct btf_kfunc_id_set common_kfunc_set = { 4965 .owner = THIS_MODULE, 4966 .set = &common_btf_ids, 4967 }; 4968 4969 static int __init kfunc_init(void) 4970 { 4971 int ret; 4972 const struct btf_id_dtor_kfunc generic_dtors[] = { 4973 { 4974 .btf_id = generic_dtor_ids[0], 4975 .kfunc_btf_id = generic_dtor_ids[1] 4976 }, 4977 #ifdef CONFIG_CGROUPS 4978 { 4979 .btf_id = generic_dtor_ids[2], 4980 .kfunc_btf_id = generic_dtor_ids[3] 4981 }, 4982 #endif 4983 }; 4984 4985 ret = register_btf_kfunc_id_set(BPF_PROG_TYPE_TRACING, &generic_kfunc_set); 4986 ret = ret ?: register_btf_kfunc_id_set(BPF_PROG_TYPE_SCHED_CLS, &generic_kfunc_set); 4987 ret = ret ?: register_btf_kfunc_id_set(BPF_PROG_TYPE_XDP, &generic_kfunc_set); 4988 ret = ret ?: register_btf_kfunc_id_set(BPF_PROG_TYPE_STRUCT_OPS, &generic_kfunc_set); 4989 ret = ret ?: register_btf_kfunc_id_set(BPF_PROG_TYPE_SYSCALL, &generic_kfunc_set); 4990 ret = ret ?: register_btf_kfunc_id_set(BPF_PROG_TYPE_CGROUP_SKB, &generic_kfunc_set); 4991 ret = ret ?: register_btf_id_dtor_kfuncs(generic_dtors, 4992 ARRAY_SIZE(generic_dtors), 4993 THIS_MODULE); 4994 return ret ?: register_btf_kfunc_id_set(BPF_PROG_TYPE_UNSPEC, &common_kfunc_set); 4995 } 4996 4997 late_initcall(kfunc_init); 4998 4999 /* Get a pointer to dynptr data up to len bytes for read only access. If 5000 * the dynptr doesn't have continuous data up to len bytes, return NULL. 5001 */ 5002 const void *__bpf_dynptr_data(const struct bpf_dynptr_kern *ptr, u64 len) 5003 { 5004 const struct bpf_dynptr *p = (struct bpf_dynptr *)ptr; 5005 5006 return bpf_dynptr_slice(p, 0, NULL, len); 5007 } 5008 5009 /* Get a pointer to dynptr data up to len bytes for read write access. If 5010 * the dynptr doesn't have continuous data up to len bytes, or the dynptr 5011 * is read only, return NULL. 5012 */ 5013 void *__bpf_dynptr_data_rw(const struct bpf_dynptr_kern *ptr, u64 len) 5014 { 5015 if (__bpf_dynptr_is_rdonly(ptr)) 5016 return NULL; 5017 return (void *)__bpf_dynptr_data(ptr, len); 5018 } 5019 5020 void bpf_map_free_internal_structs(struct bpf_map *map, void *val) 5021 { 5022 if (btf_record_has_field(map->record, BPF_TIMER)) 5023 bpf_obj_free_timer(map->record, val); 5024 if (btf_record_has_field(map->record, BPF_WORKQUEUE)) 5025 bpf_obj_free_workqueue(map->record, val); 5026 if (btf_record_has_field(map->record, BPF_TASK_WORK)) 5027 bpf_obj_free_task_work(map->record, val); 5028 } 5029