1 /* SPDX-License-Identifier: GPL-2.0-only */
2 /* Copyright (c) 2011-2014 PLUMgrid, http://plumgrid.com
3 */
4 #ifndef _LINUX_BPF_VERIFIER_H
5 #define _LINUX_BPF_VERIFIER_H 1
6
7 #include <linux/bpf.h> /* for enum bpf_reg_type */
8 #include <linux/btf.h> /* for struct btf and btf_id() */
9 #include <linux/filter.h> /* for MAX_BPF_STACK */
10 #include <linux/tnum.h>
11 #include <linux/cnum.h>
12
13 /* Maximum variable offset umax_value permitted when resolving memory accesses.
14 * In practice this is far bigger than any realistic pointer offset; this limit
15 * ensures that umax_value + (int)off + (int)size cannot overflow a u64.
16 */
17 #define BPF_MAX_VAR_OFF (1 << 29)
18 /* Maximum variable size permitted for ARG_MEM_SIZE[_OR_ZERO]. This ensures
19 * that converting umax_value to int cannot overflow.
20 */
21 #define BPF_MAX_VAR_SIZ (1 << 29)
22 /* size of tmp_str_buf in bpf_verifier.
23 * we need at least 306 bytes to fit full stack mask representation
24 * (in the "-8,-16,...,-512" form)
25 */
26 #define TMP_STR_BUF_LEN 320
27 /* Patch buffer size */
28 #define INSN_BUF_SIZE 32
29
30 #define ITER_PREFIX "bpf_iter_"
31
32 enum bpf_iter_state {
33 BPF_ITER_STATE_INVALID, /* for non-first slot */
34 BPF_ITER_STATE_ACTIVE,
35 BPF_ITER_STATE_DRAINED,
36 };
37
38 struct bpf_reg_state {
39 /* Ordering of fields matters. See states_equal() */
40 enum bpf_reg_type type;
41 /*
42 * Constant delta between "linked" scalars with the same ID.
43 */
44 s32 delta;
45 union {
46 /* valid when type == PTR_TO_PACKET */
47 int range;
48 /*
49 * Valid when type == PTR_TO_STACK. Inside the callee two registers
50 * can be both PTR_TO_STACK like R1=fp-8 and R2=fp-8, but one of them
51 * points to this function stack while another to the caller's stack.
52 * To differentiate them 'frameno' is used which is an index in
53 * bpf_verifier_state->frame[] array pointing to bpf_func_state.
54 */
55 u8 frameno;
56
57 /*
58 * For CONST_PTR_TO_MAP, PTR_TO_MAP_KEY, PTR_TO_MAP_VALUE and
59 * PTR_TO_INSN.
60 */
61 struct bpf_map *map_ptr;
62
63 /* for PTR_TO_BTF_ID */
64 struct {
65 struct btf *btf;
66 u32 btf_id;
67 };
68
69 struct { /* for PTR_TO_MEM | PTR_TO_MEM_OR_NULL */
70 u32 mem_size;
71 };
72
73 /* For dynptr stack slots */
74 struct {
75 enum bpf_dynptr_type type;
76 /* A dynptr is 16 bytes so it takes up 2 stack slots.
77 * We need to track which slot is the first slot
78 * to protect against cases where the user may try to
79 * pass in an address starting at the second slot of the
80 * dynptr.
81 */
82 bool first_slot;
83 } dynptr;
84
85 /* For bpf_iter stack slots */
86 struct {
87 /* BTF container and BTF type ID describing
88 * struct bpf_iter_<type> of an iterator state
89 */
90 struct btf *btf;
91 u32 btf_id;
92 /* packing following two fields to fit iter state into 16 bytes */
93 enum bpf_iter_state state:2;
94 int depth:30;
95 } iter;
96
97 /* For irq stack slots */
98 struct {
99 enum {
100 IRQ_NATIVE_KFUNC,
101 IRQ_LOCK_KFUNC,
102 } kfunc_class;
103 } irq;
104
105 /* Max size from any of the above. */
106 struct {
107 unsigned long raw1;
108 unsigned long raw2;
109 } raw;
110
111 u32 subprogno; /* for PTR_TO_FUNC */
112 };
113 /* For scalar types (SCALAR_VALUE), this represents our knowledge of
114 * the actual value.
115 * For pointer types, this represents the variable part of the offset
116 * from the pointed-to object, and is shared with all bpf_reg_states
117 * with the same id as us.
118 */
119 struct tnum var_off;
120 /* Used to determine if any memory access using this register will
121 * result in a bad access.
122 * These refer to the same value as var_off, not necessarily the actual
123 * contents of the register.
124 */
125 struct cnum64 r64; /* 64-bit range as circular number */
126 struct cnum32 r32; /* 32-bit range as circular number */
127 /* For PTR_TO_PACKET, used to find other pointers with the same variable
128 * offset, so they can share range knowledge.
129 * For PTR_TO_MAP_VALUE_OR_NULL this is used to share which map value we
130 * came from, when one is tested for != NULL.
131 * For PTR_TO_MEM_OR_NULL this is used to identify memory allocation
132 * for the purpose of tracking that it's freed.
133 * For PTR_TO_SOCKET this is used to share which pointers retain the
134 * same reference to the socket, to determine proper reference freeing.
135 * For stack slots that are dynptrs, this is used to track references to
136 * the dynptr to determine proper reference freeing.
137 * Similarly to dynptrs, we use ID to track "belonging" of a reference
138 * to a specific instance of bpf_iter.
139 */
140 /*
141 * Upper bit of ID is used to remember relationship between "linked"
142 * registers. Example:
143 * r1 = r2; both will have r1->id == r2->id == N
144 * r1 += 10; r1->id == N | BPF_ADD_CONST and r1->delta == 10
145 * r3 = r2; both will have r3->id == r2->id == N
146 * w3 += 10; r3->id == N | BPF_ADD_CONST32 and r3->delta == 10
147 */
148 #define BPF_ADD_CONST64 (1U << 31)
149 #define BPF_ADD_CONST32 (1U << 30)
150 #define BPF_ADD_CONST (BPF_ADD_CONST64 | BPF_ADD_CONST32)
151 u32 id;
152 /*
153 * Tracks the parent object this register was derived from.
154 * Used for cascading invalidation: when the parent object is
155 * released or invalidated, all registers with matching parent_id
156 * are also invalidated. For example, a slice from bpf_dynptr_data()
157 * gets parent_id set to the dynptr's id.
158 */
159 u32 parent_id;
160 /*
161 * Distinguishes inner-map lookups and their keys and values. Zero for
162 * other registers. Kept outside the metadata union for ID remapping
163 * during state comparisons.
164 */
165 u32 map_uid;
166 /* if (!precise && SCALAR_VALUE) min/max/tnum don't affect safety */
167 bool precise;
168 };
169
reg_smin(const struct bpf_reg_state * reg)170 static inline s64 reg_smin(const struct bpf_reg_state *reg)
171 {
172 return cnum64_smin(reg->r64);
173 }
174
reg_smax(const struct bpf_reg_state * reg)175 static inline s64 reg_smax(const struct bpf_reg_state *reg)
176 {
177 return cnum64_smax(reg->r64);
178 }
179
reg_umin(const struct bpf_reg_state * reg)180 static inline u64 reg_umin(const struct bpf_reg_state *reg)
181 {
182 return cnum64_umin(reg->r64);
183 }
184
reg_umax(const struct bpf_reg_state * reg)185 static inline u64 reg_umax(const struct bpf_reg_state *reg)
186 {
187 return cnum64_umax(reg->r64);
188 }
189
reg_s32_min(const struct bpf_reg_state * reg)190 static inline s32 reg_s32_min(const struct bpf_reg_state *reg)
191 {
192 return cnum32_smin(reg->r32);
193 }
194
reg_s32_max(const struct bpf_reg_state * reg)195 static inline s32 reg_s32_max(const struct bpf_reg_state *reg)
196 {
197 return cnum32_smax(reg->r32);
198 }
199
reg_u32_min(const struct bpf_reg_state * reg)200 static inline u32 reg_u32_min(const struct bpf_reg_state *reg)
201 {
202 return cnum32_umin(reg->r32);
203 }
204
reg_u32_max(const struct bpf_reg_state * reg)205 static inline u32 reg_u32_max(const struct bpf_reg_state *reg)
206 {
207 return cnum32_umax(reg->r32);
208 }
209
reg_set_srange32(struct bpf_reg_state * reg,s32 smin,s32 smax)210 static inline void reg_set_srange32(struct bpf_reg_state *reg, s32 smin, s32 smax)
211 {
212 reg->r32 = cnum32_from_srange(smin, smax);
213 }
214
reg_set_urange32(struct bpf_reg_state * reg,u32 umin,u32 umax)215 static inline void reg_set_urange32(struct bpf_reg_state *reg, u32 umin, u32 umax)
216 {
217 reg->r32 = cnum32_from_urange(umin, umax);
218 }
219
reg_set_srange64(struct bpf_reg_state * reg,s64 smin,s64 smax)220 static inline void reg_set_srange64(struct bpf_reg_state *reg, s64 smin, s64 smax)
221 {
222 reg->r64 = cnum64_from_srange(smin, smax);
223 }
224
reg_set_urange64(struct bpf_reg_state * reg,u64 umin,u64 umax)225 static inline void reg_set_urange64(struct bpf_reg_state *reg, u64 umin, u64 umax)
226 {
227 reg->r64 = cnum64_from_urange(umin, umax);
228 }
229
230 enum bpf_stack_slot_type {
231 STACK_INVALID, /* nothing was stored in this stack slot */
232 STACK_SPILL, /* register spilled into stack */
233 STACK_MISC, /* BPF program wrote some data into this slot */
234 STACK_ZERO, /* BPF program wrote constant zero */
235 /* A dynptr is stored in this stack slot. The type of dynptr
236 * is stored in bpf_stack_state->spilled_ptr.dynptr.type
237 */
238 STACK_DYNPTR,
239 STACK_ITER,
240 STACK_IRQ_FLAG,
241 STACK_POISON,
242 };
243
244 #define BPF_REG_SIZE 8 /* size of eBPF register in bytes */
245
246 /* 4-byte stack slot granularity for liveness analysis */
247 #define BPF_HALF_REG_SIZE 4
248 #define STACK_SLOT_SZ 4
249 #define STACK_SLOTS (MAX_BPF_STACK / BPF_HALF_REG_SIZE) /* 128 */
250
251 typedef struct {
252 u64 v[2];
253 } spis_t;
254
255 #define SPIS_ZERO ((spis_t){})
256 #define SPIS_ALL ((spis_t){{ U64_MAX, U64_MAX }})
257
spis_is_zero(spis_t s)258 static inline bool spis_is_zero(spis_t s)
259 {
260 return s.v[0] == 0 && s.v[1] == 0;
261 }
262
spis_equal(spis_t a,spis_t b)263 static inline bool spis_equal(spis_t a, spis_t b)
264 {
265 return a.v[0] == b.v[0] && a.v[1] == b.v[1];
266 }
267
spis_or(spis_t a,spis_t b)268 static inline spis_t spis_or(spis_t a, spis_t b)
269 {
270 return (spis_t){{ a.v[0] | b.v[0], a.v[1] | b.v[1] }};
271 }
272
spis_and(spis_t a,spis_t b)273 static inline spis_t spis_and(spis_t a, spis_t b)
274 {
275 return (spis_t){{ a.v[0] & b.v[0], a.v[1] & b.v[1] }};
276 }
277
spis_not(spis_t s)278 static inline spis_t spis_not(spis_t s)
279 {
280 return (spis_t){{ ~s.v[0], ~s.v[1] }};
281 }
282
spis_test_bit(spis_t s,u32 slot)283 static inline bool spis_test_bit(spis_t s, u32 slot)
284 {
285 return s.v[slot / 64] & BIT_ULL(slot % 64);
286 }
287
spis_or_range(spis_t * mask,u32 lo,u32 hi)288 static inline void spis_or_range(spis_t *mask, u32 lo, u32 hi)
289 {
290 u32 w;
291
292 for (w = lo; w <= hi && w < STACK_SLOTS; w++)
293 mask->v[w / 64] |= BIT_ULL(w % 64);
294 }
295
296 #define BPF_REGMASK_ARGS ((1 << BPF_REG_1) | (1 << BPF_REG_2) | \
297 (1 << BPF_REG_3) | (1 << BPF_REG_4) | \
298 (1 << BPF_REG_5))
299
300 #define BPF_MAIN_FUNC (-1)
301
302 #define BPF_DYNPTR_SIZE sizeof(struct bpf_dynptr_kern)
303 #define BPF_DYNPTR_NR_SLOTS (BPF_DYNPTR_SIZE / BPF_REG_SIZE)
304
305 struct bpf_stack_state {
306 struct bpf_reg_state spilled_ptr;
307 u8 slot_type[BPF_REG_SIZE];
308 };
309
310 struct bpf_reference_state {
311 /* Each reference object has a type. Ensure REF_TYPE_PTR is zero to
312 * default to pointer reference on zero initialization of a state.
313 */
314 enum ref_state_type {
315 REF_TYPE_PTR = (1 << 1),
316 REF_TYPE_IRQ = (1 << 2),
317 REF_TYPE_LOCK = (1 << 3),
318 REF_TYPE_RES_LOCK = (1 << 4),
319 REF_TYPE_RES_LOCK_IRQ = (1 << 5),
320 REF_TYPE_LOCK_MASK = REF_TYPE_LOCK | REF_TYPE_RES_LOCK | REF_TYPE_RES_LOCK_IRQ,
321 } type;
322 /* Track each reference created with a unique id, even if the same
323 * instruction creates the reference multiple times (eg, via CALL).
324 */
325 int id;
326 /* Instruction where the allocation of this reference occurred. This
327 * is used purely to inform the user of a reference leak.
328 */
329 int insn_idx;
330 union {
331 /* For REF_TYPE_PTR */
332 int parent_id;
333 /* Use to keep track of the source object of a lock, to ensure
334 * it matches on unlock.
335 */
336 void *ptr;
337 };
338 };
339
340 struct bpf_retval_range {
341 s32 minval;
342 s32 maxval;
343 bool return_32bit;
344 };
345
346 /* state of the program:
347 * type of all registers and stack info
348 */
349 struct bpf_func_state {
350 struct bpf_reg_state regs[MAX_BPF_REG];
351 /* index of call instruction that called into this func */
352 int callsite;
353 /* stack frame number of this function state from pov of
354 * enclosing bpf_verifier_state.
355 * 0 = main function, 1 = first callee.
356 */
357 u32 frameno;
358 /*
359 * Unique diagnostic identity for this function invocation. Frame depth is
360 * reused after returns, while this ID is preserved across state clones.
361 */
362 u32 diag_frame_id;
363 /* subprog number == index within subprog_info
364 * zero == main subprog
365 */
366 u32 subprogno;
367 /* Every bpf_timer_start will increment async_entry_cnt.
368 * It's used to distinguish:
369 * void foo(void) { for(;;); }
370 * void foo(void) { bpf_timer_set_callback(,foo); }
371 */
372 u32 async_entry_cnt;
373 struct bpf_retval_range callback_ret_range;
374 bool in_callback_fn;
375 bool in_async_callback_fn;
376 bool in_exception_callback_fn;
377 bool no_stack_arg_load;
378 /* For callback calling functions that limit number of possible
379 * callback executions (e.g. bpf_loop) keeps track of current
380 * simulated iteration number.
381 * Value in frame N refers to number of times callback with frame
382 * N+1 was simulated, e.g. for the following call:
383 *
384 * bpf_loop(..., fn, ...); | suppose current frame is N
385 * | fn would be simulated in frame N+1
386 * | number of simulations is tracked in frame N
387 */
388 u32 callback_depth;
389 /* Instructions processed in this frame and callees on the current path. */
390 u32 insns_subtotal;
391
392 /* The following fields should be last. See copy_func_state() */
393 /* The state of the stack. Each element of the array describes BPF_REG_SIZE
394 * (i.e. 8) bytes worth of stack memory.
395 * stack[0] represents bytes [*(r10-8)..*(r10-1)]
396 * stack[1] represents bytes [*(r10-16)..*(r10-9)]
397 * ...
398 * stack[allocated_stack/8 - 1] represents [*(r10-allocated_stack)..*(r10-allocated_stack+7)]
399 */
400 struct bpf_stack_state *stack;
401 /* Size of the current stack, in bytes. The stack state is tracked below, in
402 * `stack`. allocated_stack is always a multiple of BPF_REG_SIZE.
403 */
404 int allocated_stack;
405
406 u16 out_stack_arg_cnt; /* Number of outgoing on-stack argument slots */
407 struct bpf_reg_state *stack_arg_regs; /* Outgoing on-stack arguments */
408 };
409
410 #define MAX_CALL_FRAMES 16
411
412 /* instruction history flags, used in bpf_jmp_history_entry.flags field.
413 * Frame number and SPI are stored in dedicated fields of bpf_jmp_history_entry.
414 */
415 enum {
416 INSN_F_STACK_ACCESS = BIT(0),
417
418 INSN_F_DST_REG_STACK = BIT(1), /* dst_reg is PTR_TO_STACK */
419 INSN_F_SRC_REG_STACK = BIT(2), /* src_reg is PTR_TO_STACK */
420
421 INSN_F_STACK_ARG_ACCESS = BIT(3),
422 };
423
424 struct bpf_jmp_history_entry {
425 /* insn idx can't be bigger than 1 million */
426 u32 idx : 20;
427 u32 frame : 4; /* stack access frame number */
428 u32 spi : 6; /* stack slot index (0..63) */
429 u32 : 2;
430 u32 prev_idx : 20;
431 /* special INSN_F_xxx flags */
432 u32 flags : 4;
433 u32 : 8;
434 /*
435 * additional registers that need precision tracking when this
436 * jump is backtracked, vector of five 11-bit records
437 */
438 u64 linked_regs;
439 };
440
441 static_assert(MAX_CALL_FRAMES <= (1 << 4));
442 static_assert(MAX_BPF_STACK / 8 <= (1 << 6));
443
444 /* Maximum number of bpf_reg_state objects that can exist at once */
445 #define MAX_STACK_ARG_SLOTS (MAX_BPF_FUNC_ARGS - MAX_BPF_FUNC_REG_ARGS)
446 #define BPF_ID_MAP_SIZE ((MAX_BPF_REG + MAX_BPF_STACK / BPF_REG_SIZE + \
447 MAX_STACK_ARG_SLOTS) * MAX_CALL_FRAMES)
448 struct bpf_verifier_state {
449 /* call stack tracking */
450 struct bpf_func_state *frame[MAX_CALL_FRAMES];
451 struct bpf_verifier_state *parent;
452 /* Acquired reference states */
453 struct bpf_reference_state *refs;
454 /*
455 * 'branches' field is the number of branches left to explore:
456 * 0 - all possible paths from this state reached bpf_exit or
457 * were safely pruned
458 * 1 - at least one path is being explored.
459 * This state hasn't reached bpf_exit
460 * 2 - at least two paths are being explored.
461 * This state is an immediate parent of two children.
462 * One is fallthrough branch with branches==1 and another
463 * state is pushed into stack (to be explored later) also with
464 * branches==1. The parent of this state has branches==1.
465 * The verifier state tree connected via 'parent' pointer looks like:
466 * 1
467 * 1
468 * 2 -> 1 (first 'if' pushed into stack)
469 * 1
470 * 2 -> 1 (second 'if' pushed into stack)
471 * 1
472 * 1
473 * 1 bpf_exit.
474 *
475 * Once do_check() reaches bpf_exit, it calls update_branch_counts()
476 * and the verifier state tree will look:
477 * 1
478 * 1
479 * 2 -> 1 (first 'if' pushed into stack)
480 * 1
481 * 1 -> 1 (second 'if' pushed into stack)
482 * 0
483 * 0
484 * 0 bpf_exit.
485 * After pop_stack() the do_check() will resume at second 'if'.
486 *
487 * If is_state_visited() sees a state with branches > 0 it means
488 * there is a loop. If such state is exactly equal to the current state
489 * it's an infinite loop. Note states_equal() checks for states
490 * equivalency, so two states being 'states_equal' does not mean
491 * infinite loop. The exact comparison is provided by
492 * states_maybe_looping() function. It's a stronger pre-check and
493 * much faster than states_equal().
494 *
495 * This algorithm may not find all possible infinite loops or
496 * loop iteration count may be too high.
497 * In such cases BPF_COMPLEXITY_LIMIT_INSNS limit kicks in.
498 */
499 u32 branches;
500 u32 insn_idx;
501 u32 curframe;
502
503 u32 acquired_refs;
504 u32 active_locks;
505 u32 active_preempt_locks;
506 u32 active_irq_id;
507 u32 active_lock_id;
508 void *active_lock_ptr;
509 u32 active_rcu_locks;
510
511 bool speculative;
512 bool in_sleepable;
513
514 /* first and last insn idx of this verifier state */
515 u32 first_insn_idx;
516 u32 last_insn_idx;
517 /* if this state is a backedge state then equal_state
518 * records cached state to which this state is equal.
519 */
520 struct bpf_verifier_state *equal_state;
521 /* jmp history recorded from first to last.
522 * backtracking is using it to go from last to first.
523 * For most states jmp_history_cnt is [0-3].
524 * For loops can go up to ~40.
525 */
526 struct bpf_jmp_history_entry *jmp_history;
527 u32 jmp_history_cnt;
528 u32 dfs_depth;
529 u32 callback_unroll_depth;
530 u32 may_goto_depth;
531 };
532
533 static inline struct bpf_reg_state *
bpf_get_spilled_reg(int slot,struct bpf_func_state * frame,u32 mask)534 bpf_get_spilled_reg(int slot, struct bpf_func_state *frame, u32 mask)
535 {
536 if (slot < frame->allocated_stack / BPF_REG_SIZE &&
537 (1 << frame->stack[slot].slot_type[BPF_REG_SIZE - 1]) & mask)
538 return &frame->stack[slot].spilled_ptr;
539 return NULL;
540 }
541
542 static inline struct bpf_reg_state *
bpf_get_spilled_stack_arg(int slot,struct bpf_func_state * frame)543 bpf_get_spilled_stack_arg(int slot, struct bpf_func_state *frame)
544 {
545 if (slot < frame->out_stack_arg_cnt &&
546 frame->stack_arg_regs[slot].type != NOT_INIT)
547 return &frame->stack_arg_regs[slot];
548 return NULL;
549 }
550
551 /* Iterate over 'frame', setting 'reg' to either NULL or a spilled register. */
552 #define bpf_for_each_spilled_reg(iter, frame, reg, mask) \
553 for (iter = 0, reg = bpf_get_spilled_reg(iter, frame, mask); \
554 iter < frame->allocated_stack / BPF_REG_SIZE; \
555 iter++, reg = bpf_get_spilled_reg(iter, frame, mask))
556
557 /* Iterate over 'frame', setting 'reg' to either NULL or a spilled stack arg. */
558 #define bpf_for_each_spilled_stack_arg(iter, frame, reg) \
559 for (iter = 0, reg = bpf_get_spilled_stack_arg(iter, frame); \
560 iter < frame->out_stack_arg_cnt; \
561 iter++, reg = bpf_get_spilled_stack_arg(iter, frame))
562
563 #define bpf_for_each_reg_in_vstate_mask(__vst, __state, __reg, __stack, __mask, __expr) \
564 ({ \
565 struct bpf_verifier_state *___vstate = __vst; \
566 int ___i, ___j; \
567 for (___i = 0; ___i <= ___vstate->curframe; ___i++) { \
568 struct bpf_reg_state *___regs; \
569 __state = ___vstate->frame[___i]; \
570 ___regs = __state->regs; \
571 __stack = NULL; \
572 for (___j = 0; ___j < MAX_BPF_REG; ___j++) { \
573 __reg = &___regs[___j]; \
574 (void)(__expr); \
575 } \
576 bpf_for_each_spilled_reg(___j, __state, __reg, __mask) { \
577 if (!__reg) \
578 continue; \
579 __stack = &__state->stack[___j]; \
580 (void)(__expr); \
581 } \
582 __stack = NULL; \
583 bpf_for_each_spilled_stack_arg(___j, __state, __reg) { \
584 if (!__reg) \
585 continue; \
586 (void)(__expr); \
587 } \
588 } \
589 (void)__stack; \
590 })
591
592 /* Invoke __expr over regsiters in __vst, setting __state and __reg */
593 #define bpf_for_each_reg_in_vstate(__vst, __state, __reg, __expr) \
594 ({ \
595 struct bpf_stack_state * ___stack; \
596 (void)___stack; \
597 bpf_for_each_reg_in_vstate_mask(__vst, __state, __reg, ___stack,\
598 1 << STACK_SPILL, __expr); \
599 })
600
601 /* linked list of verifier states used to prune search */
602 struct bpf_verifier_state_list {
603 struct bpf_verifier_state state;
604 struct list_head node;
605 u32 miss_cnt;
606 u32 hit_cnt:31;
607 u32 in_free_list:1;
608 };
609
610 struct bpf_loop_inline_state {
611 unsigned int initialized:1; /* set to true upon first entry */
612 unsigned int fit_for_inline:1; /* true if callback function is the same
613 * at each call and flags are always zero
614 */
615 u32 callback_subprogno; /* valid when fit_for_inline is true */
616 };
617
618 /* pointer and state for maps */
619 struct bpf_map_ptr_state {
620 struct bpf_map *map_ptr;
621 bool poison;
622 bool unpriv;
623 };
624
625 /* Possible states for alu_state member. */
626 #define BPF_ALU_SANITIZE_SRC (1U << 0)
627 #define BPF_ALU_SANITIZE_DST (1U << 1)
628 #define BPF_ALU_NEG_VALUE (1U << 2)
629 #define BPF_ALU_NON_POINTER (1U << 3)
630 #define BPF_ALU_IMMEDIATE (1U << 4)
631 #define BPF_ALU_SANITIZE (BPF_ALU_SANITIZE_SRC | \
632 BPF_ALU_SANITIZE_DST)
633
634 /*
635 * An array of BPF instructions.
636 * Primary usage: return value of bpf_insn_successors.
637 */
638 struct bpf_iarray {
639 int cnt;
640 u32 items[];
641 };
642
643 struct bpf_insn_aux_data {
644 union {
645 enum bpf_reg_type ptr_type; /* pointer type for load/store insns */
646 struct bpf_map_ptr_state map_ptr_state;
647 s32 call_imm; /* saved imm field of call insn */
648 u32 alu_limit; /* limit for add/sub register with pointer */
649 struct {
650 u32 map_index; /* index into used_maps[] */
651 u32 map_off; /* offset from value base address */
652 };
653 struct {
654 enum bpf_reg_type reg_type; /* type of pseudo_btf_id */
655 union {
656 struct {
657 struct btf *btf;
658 u32 btf_id; /* btf_id for struct typed var */
659 };
660 u32 mem_size; /* mem_size for non-struct typed var */
661 };
662 } btf_var;
663 /* if instruction is a call to bpf_loop this field tracks
664 * the state of the relevant registers to make decision about inlining
665 */
666 struct bpf_loop_inline_state loop_inline_state;
667 };
668 union {
669 /* remember the size of type passed to bpf_obj_new to rewrite R1 */
670 u64 obj_new_size;
671 /* remember the offset of node field within type to rewrite */
672 u64 insert_off;
673 };
674 struct bpf_iarray *jt; /* jump table for gotox or bpf_tailcall call instruction */
675 struct btf_struct_meta *kptr_struct_meta;
676 u64 map_key_state; /* constant (32 bit) key tracking for maps */
677 int ctx_field_size; /* the ctx field size for load insn, maybe 0 */
678 u32 seen; /* this insn was processed by the verifier at env->pass_cnt */
679 bool nospec; /* do not execute this instruction speculatively */
680 bool nospec_result; /* result is unsafe under speculation, nospec must follow */
681 bool zext_dst; /* this insn zero extends dst reg */
682 bool needs_zext; /* alu op needs to clear upper bits */
683 bool prevent_zext; /* alu op cannot be zext (already used with 64-bit scalars) */
684 bool non_sleepable; /* helper/kfunc may be called from non-sleepable context */
685 bool is_iter_next; /* bpf_iter_<type>_next() kfunc call */
686 bool call_with_percpu_alloc_ptr; /* {this,per}_cpu_ptr() with prog percpu alloc */
687 u8 alu_state; /* used in combination with alu_limit */
688 /* true if STX or LDX instruction is a part of a spill/fill
689 * pattern for a bpf_fastcall call.
690 */
691 u8 fastcall_pattern:1;
692 /* for CALL instructions, a number of spill/fill pairs in the
693 * bpf_fastcall pattern.
694 */
695 u8 fastcall_spills_num:3;
696 u8 arg_prog:4;
697
698 /* below fields are initialized once */
699 unsigned int orig_idx; /* original instruction index */
700 u32 jmp_point:1;
701 u32 prune_point:1;
702 /* ensure we check state equivalence and save state checkpoint and
703 * this instruction, regardless of any heuristics
704 */
705 u32 force_checkpoint:1;
706 /* true if instruction is a call to a helper function that
707 * accepts callback function as a parameter.
708 */
709 u32 calls_callback:1;
710 u32 indirect_target:1; /* if it is an indirect jump target */
711 /* true if some jump or call instruction targets this instruction */
712 u32 jump_target:1;
713 /*
714 * CFG strongly connected component this instruction belongs to,
715 * zero if it is a singleton SCC.
716 */
717 u32 scc;
718 /* registers alive before this instruction. */
719 u16 live_regs_before;
720 /*
721 * Bitmask of R0-R9 that hold known values at this instruction.
722 * const_reg_mask: scalar constants that fit in 32 bits.
723 * const_reg_map_mask: map pointers, val is map_index into used_maps[].
724 * const_reg_subprog_mask: subprog pointers, val is subprog number.
725 * const_reg_vals[i] holds the 32-bit value for register i.
726 * Populated by compute_const_regs() pre-pass.
727 */
728 u16 const_reg_mask;
729 u16 const_reg_map_mask;
730 u16 const_reg_subprog_mask;
731 u32 const_reg_vals[10];
732 };
733
734 #define MAX_USED_MAPS 64 /* max number of maps accessed by one eBPF program */
735 #define MAX_USED_BTFS 64 /* max number of BTFs accessed by one BPF program */
736
737 #define BPF_VERIFIER_TMP_LOG_SIZE 1024
738
739 struct bpf_verifier_log {
740 /* Logical start and end positions of a "log window" of the verifier log.
741 * start_pos == 0 means we haven't truncated anything.
742 * Once truncation starts to happen, start_pos + len_total == end_pos,
743 * except during log reset situations, in which (end_pos - start_pos)
744 * might get smaller than len_total (see bpf_vlog_reset()).
745 * Generally, (end_pos - start_pos) gives number of useful data in
746 * user log buffer.
747 */
748 u64 start_pos;
749 u64 end_pos;
750 char __user *ubuf;
751 u32 level;
752 u32 len_total;
753 u32 len_max;
754 char kbuf[BPF_VERIFIER_TMP_LOG_SIZE];
755 };
756
757 #define BPF_LOG_LEVEL1 1
758 #define BPF_LOG_LEVEL2 2
759 #define BPF_LOG_STATS 4
760 #define BPF_LOG_FIXED 8
761 #define BPF_LOG_LEVEL (BPF_LOG_LEVEL1 | BPF_LOG_LEVEL2)
762 #define BPF_LOG_MASK (BPF_LOG_LEVEL | BPF_LOG_STATS | BPF_LOG_FIXED)
763 #define BPF_LOG_KERNEL (BPF_LOG_MASK + 1) /* kernel internal flag */
764 #define BPF_LOG_MIN_ALIGNMENT 8U
765 #define BPF_LOG_ALIGNMENT 40U
766
bpf_verifier_log_needed(const struct bpf_verifier_log * log)767 static inline bool bpf_verifier_log_needed(const struct bpf_verifier_log *log)
768 {
769 return log && log->level;
770 }
771
772 struct bpf_log_attr {
773 char __user *ubuf;
774 u32 size;
775 u32 level;
776 u32 offsetof_true_size;
777 bpfptr_t uattr;
778 };
779
780 int bpf_log_attr_init(struct bpf_log_attr *log, u64 log_buf, u32 log_size, u32 log_level,
781 u32 offsetof_log_true_size, bpfptr_t uattr, struct bpf_common_attr *common,
782 bpfptr_t uattr_common, u32 size_common);
783 struct bpf_verifier_log *bpf_log_attr_create_vlog(struct bpf_log_attr *attr_log,
784 struct bpf_common_attr *common, bpfptr_t uattr,
785 u32 size);
786 int bpf_log_attr_finalize(struct bpf_log_attr *attr, struct bpf_verifier_log *log);
787
788 #define BPF_MAX_SUBPROGS 256
789
790 struct bpf_subprog_arg_info {
791 enum bpf_arg_type arg_type;
792 union {
793 u32 mem_size;
794 u32 btf_id;
795 };
796 };
797
798 enum priv_stack_mode {
799 PRIV_STACK_UNKNOWN,
800 NO_PRIV_STACK,
801 PRIV_STACK_ADAPTIVE,
802 };
803
804 struct bpf_subprog_info {
805 const char *name; /* name extracted from BTF */
806 u32 start; /* insn idx of function entry point */
807 u32 linfo_idx; /* The idx to the main_prog->aux->linfo */
808 u32 postorder_start; /* The idx to the env->cfg.insn_postorder */
809 u32 exit_idx; /* Index of one of the BPF_EXIT instructions in this subprogram */
810 u16 stack_depth; /* max. stack depth used by this function */
811 u16 stack_extra;
812 u32 insns_total;
813 u32 insns_self;
814 /* offsets in range [stack_depth .. fastcall_stack_off)
815 * are used for bpf_fastcall spills and fills.
816 */
817 s16 fastcall_stack_off;
818 bool has_tail_call: 1;
819 bool might_throw: 1;
820 bool tail_call_reachable: 1;
821 bool has_ld_abs: 1;
822 bool is_cb: 1;
823 bool is_async_cb: 1;
824 bool is_exception_cb: 1;
825 bool args_cached: 1;
826 /* true if bpf_fastcall stack region is used by functions that can't be inlined */
827 bool keep_fastcall_stack: 1;
828 bool changes_pkt_data: 1;
829 bool might_sleep: 1;
830 u8 arg_cnt:4;
831
832 enum priv_stack_mode priv_stack_mode;
833 struct bpf_subprog_arg_info args[MAX_BPF_FUNC_ARGS];
834 u16 stack_arg_cnt; /* incoming + max outgoing */
835 u16 max_out_stack_arg_cnt;
836 };
837
bpf_in_stack_arg_cnt(const struct bpf_subprog_info * sub)838 static inline u16 bpf_in_stack_arg_cnt(const struct bpf_subprog_info *sub)
839 {
840 if (sub->arg_cnt > MAX_BPF_FUNC_REG_ARGS)
841 return sub->arg_cnt - MAX_BPF_FUNC_REG_ARGS;
842 return 0;
843 }
844
845 struct bpf_diag;
846 struct bpf_verifier_env;
847
848 struct backtrack_state {
849 struct bpf_verifier_env *env;
850 u32 frame;
851 u32 reg_masks[MAX_CALL_FRAMES];
852 u64 stack_masks[MAX_CALL_FRAMES];
853 u8 stack_arg_masks[MAX_CALL_FRAMES];
854 };
855
856 struct bpf_id_pair {
857 u32 old;
858 u32 cur;
859 };
860
861 struct bpf_idmap {
862 u32 tmp_id_gen;
863 u32 cnt;
864 struct bpf_id_pair map[BPF_ID_MAP_SIZE];
865 };
866
867 struct bpf_idset {
868 u32 num_ids;
869 struct {
870 u32 id;
871 u32 cnt;
872 } entries[BPF_ID_MAP_SIZE];
873 };
874
875 /* see verifier.c:compute_scc_callchain() */
876 struct bpf_scc_callchain {
877 /* call sites from bpf_verifier_state->frame[*]->callsite leading to this SCC */
878 u32 callsites[MAX_CALL_FRAMES - 1];
879 /* last frame in a chain is identified by SCC id */
880 u32 scc;
881 };
882
883 /* verifier state waiting for propagate_backedges() */
884 struct bpf_scc_backedge {
885 struct bpf_scc_backedge *next;
886 struct bpf_verifier_state state;
887 };
888
889 struct bpf_scc_visit {
890 struct bpf_scc_callchain callchain;
891 /* first state in current verification path that entered SCC
892 * identified by the callchain
893 */
894 struct bpf_verifier_state *entry_state;
895 struct bpf_scc_backedge *backedges; /* list of backedges */
896 u32 num_backedges;
897 };
898
899 /* An array of bpf_scc_visit structs sharing tht same bpf_scc_callchain->scc
900 * but having different bpf_scc_callchain->callsites.
901 */
902 struct bpf_scc_info {
903 u32 num_visits;
904 struct bpf_scc_visit visits[];
905 };
906
907 struct bpf_liveness;
908
909 struct bpf_fd_array {
910 union {
911 struct bpf_map *map;
912 struct btf *btf;
913 unsigned long val;
914 };
915 };
916
917 /* single container for all structs
918 * one verifier_env per bpf_check() call
919 */
920 struct bpf_verifier_env {
921 u32 insn_idx;
922 u32 prev_insn_idx;
923 struct bpf_prog *prog; /* eBPF program being verified */
924 const struct bpf_verifier_ops *ops;
925 struct module *attach_btf_mod; /* The owner module of prog->aux->attach_btf */
926 struct bpf_verifier_stack_elem *head; /* stack of verifier states to be processed */
927 int stack_size; /* number of states to be processed */
928 bool strict_alignment; /* perform strict pointer alignment checks */
929 bool test_state_freq; /* test verifier with different pruning frequency */
930 bool test_reg_invariants; /* fail verification on register invariants violations */
931 struct bpf_verifier_state *cur_state; /* current verifier state */
932 /* Search pruning optimization, array of list_heads for
933 * lists of struct bpf_verifier_state_list.
934 */
935 struct list_head *explored_states;
936 struct list_head free_list; /* list of struct bpf_verifier_state_list */
937 struct bpf_map *used_maps[MAX_USED_MAPS]; /* array of map's used by eBPF program */
938 struct btf_mod_pair used_btfs[MAX_USED_BTFS]; /* array of BTF's used by BPF program */
939 struct bpf_map *insn_array_maps[MAX_USED_MAPS]; /* array of INSN_ARRAY map's to be relocated */
940 u32 used_map_cnt; /* number of used maps */
941 u32 used_btf_cnt; /* number of used BTF objects */
942 u32 insn_array_map_cnt; /* number of used maps of type BPF_MAP_TYPE_INSN_ARRAY */
943 u32 id_gen; /* used to generate unique reg IDs */
944 u32 hidden_subprog_cnt; /* number of hidden subprogs */
945 int exception_callback_subprog;
946 bool explore_alu_limits;
947 bool allow_ptr_leaks;
948 /* Allow access to uninitialized stack memory. Writes with fixed offset are
949 * always allowed, so this refers to reads (with fixed or variable offset),
950 * to writes with variable offset and to indirect (helper) accesses.
951 */
952 bool allow_uninit_stack;
953 bool bpf_capable;
954 bool bypass_spec_v1;
955 bool bypass_spec_v4;
956 bool seen_direct_write;
957 bool seen_exception;
958 bool signature;
959 u32 insn_aux_data_len;
960 struct bpf_insn_aux_data *insn_aux_data; /* array of per-insn state */
961 const struct bpf_line_info *prev_linfo;
962 struct bpf_verifier_log log;
963 struct bpf_diag *diag;
964 struct bpf_subprog_info subprog_info[BPF_MAX_SUBPROGS + 2]; /* max + 2 for the fake and exception subprogs */
965 /* subprog indices sorted in topological order: leaves first, callers last */
966 int subprog_topo_order[BPF_MAX_SUBPROGS + 2];
967 union {
968 struct bpf_idmap idmap_scratch;
969 struct bpf_idset idset_scratch;
970 };
971 struct {
972 int *insn_state;
973 int *insn_stack;
974 /*
975 * vector of instruction indexes sorted in post-order, grouped by subprogram,
976 * see bpf_subprog_info->postorder_start.
977 */
978 int *insn_postorder;
979 int cur_stack;
980 /* current position in the insn_postorder vector */
981 int cur_postorder;
982 } cfg;
983 struct backtrack_state bt;
984 struct bpf_jmp_history_entry *cur_hist_ent;
985 /* Per-callsite copy of parent's converged at_stack_in for cross-frame fills. */
986 struct arg_track **callsite_at_stack;
987 u32 pass_cnt; /* number of times do_check() was called */
988 u32 subprog_cnt;
989 /* number of instructions analyzed by the verifier */
990 u32 prev_insn_processed, insn_processed;
991 /* number of jmps, calls, exits analyzed so far */
992 u32 prev_jmps_processed, jmps_processed;
993 /* maximum combined stack depth */
994 u32 max_stack_depth;
995 /* total verification time */
996 u64 verification_time;
997 /* maximum number of verifier states kept in 'branching' instructions */
998 u32 max_states_per_insn;
999 /* total number of allocated verifier states */
1000 u32 total_states;
1001 /* some states are freed during program analysis.
1002 * this is peak number of states. this number dominates kernel
1003 * memory consumption during verification
1004 */
1005 u32 peak_states;
1006 /* longest register parentage chain walked for liveness marking */
1007 u32 longest_mark_read_walk;
1008 u32 free_list_size;
1009 u32 explored_states_size;
1010 u32 num_backedges;
1011 /*
1012 * The program's fd_array comes in two shapes, told apart by whether
1013 * the caller passed fd_array_cnt. They are mutually exclusive:
1014 * - continuous (fd_array_cnt given): ->fd_array holds every entry
1015 * resolved to its object up front, indexed by fd_array position,
1016 * with ->fd_array_cnt slots; ->fd_array_raw is unused.
1017 * - sparse (no fd_array_cnt): ->fd_array is NULL, and entries are
1018 * read from ->fd_array_raw (the caller's fd_array) and resolved
1019 * on the spot at each reference.
1020 */
1021 struct bpf_fd_array *fd_array;
1022 u32 fd_array_cnt;
1023 bpfptr_t fd_array_raw;
1024
1025 /* bit mask to keep track of whether a register has been accessed
1026 * since the last time the function state was printed
1027 */
1028 u32 scratched_regs;
1029 /* Same as scratched_regs but for stack slots */
1030 u64 scratched_stack_slots;
1031 u64 prev_log_pos, prev_insn_print_pos;
1032 /* buffer used to temporary hold constants as scalar registers */
1033 struct bpf_reg_state fake_reg[1];
1034 /* buffers used to save updated reg states while simulating branches */
1035 struct bpf_reg_state true_reg1, true_reg2, false_reg1, false_reg2;
1036 /* buffer used to generate temporary string representations,
1037 * e.g., in reg_type_str() to generate reg_type string
1038 */
1039 char tmp_str_buf[TMP_STR_BUF_LEN];
1040 char tmp_arg_name[32];
1041 struct bpf_insn insn_buf[INSN_BUF_SIZE];
1042 struct bpf_insn epilogue_buf[INSN_BUF_SIZE];
1043 struct bpf_scc_callchain callchain_buf;
1044 struct bpf_liveness *liveness;
1045 /* array of pointers to bpf_scc_info indexed by SCC id */
1046 struct bpf_scc_info **scc_info;
1047 u32 scc_cnt;
1048 struct bpf_iarray *succ;
1049 struct bpf_iarray *gotox_tmp_buf;
1050 };
1051
subprog_aux(struct bpf_verifier_env * env,int subprog)1052 static inline struct bpf_func_info_aux *subprog_aux(struct bpf_verifier_env *env, int subprog)
1053 {
1054 return &env->prog->aux->func_info_aux[subprog];
1055 }
1056
subprog_info(struct bpf_verifier_env * env,int subprog)1057 static inline struct bpf_subprog_info *subprog_info(struct bpf_verifier_env *env, int subprog)
1058 {
1059 return &env->subprog_info[subprog];
1060 }
1061
1062 struct bpf_call_summary {
1063 u8 num_params;
1064 bool is_void;
1065 bool fastcall;
1066 };
1067
bpf_helper_call(const struct bpf_insn * insn)1068 static inline bool bpf_helper_call(const struct bpf_insn *insn)
1069 {
1070 return insn->code == (BPF_JMP | BPF_CALL) &&
1071 insn->src_reg == 0;
1072 }
1073
bpf_pseudo_call(const struct bpf_insn * insn)1074 static inline bool bpf_pseudo_call(const struct bpf_insn *insn)
1075 {
1076 return insn->code == (BPF_JMP | BPF_CALL) &&
1077 insn->src_reg == BPF_PSEUDO_CALL;
1078 }
1079
bpf_pseudo_kfunc_call(const struct bpf_insn * insn)1080 static inline bool bpf_pseudo_kfunc_call(const struct bpf_insn *insn)
1081 {
1082 return insn->code == (BPF_JMP | BPF_CALL) &&
1083 insn->src_reg == BPF_PSEUDO_KFUNC_CALL;
1084 }
1085
1086 __printf(2, 0) void bpf_verifier_vlog(struct bpf_verifier_log *log,
1087 const char *fmt, va_list args);
1088 __printf(2, 3) void bpf_verifier_log_write(struct bpf_verifier_env *env,
1089 const char *fmt, ...);
1090 __printf(2, 3) void bpf_log(struct bpf_verifier_log *log,
1091 const char *fmt, ...);
1092 int bpf_vlog_init(struct bpf_verifier_log *log, u32 log_level,
1093 char __user *log_buf, u32 log_size);
1094 void bpf_vlog_reset(struct bpf_verifier_log *log, u64 new_pos);
1095 int bpf_vlog_finalize(struct bpf_verifier_log *log, u32 *log_size_actual);
1096
1097 __printf(3, 4) void verbose_linfo(struct bpf_verifier_env *env,
1098 u32 insn_off,
1099 const char *prefix_fmt, ...);
1100
1101 #define verifier_bug_if(cond, env, fmt, args...) \
1102 ({ \
1103 bool __cond = (cond); \
1104 if (unlikely(__cond)) \
1105 verifier_bug(env, fmt " (" #cond ")", ##args); \
1106 (__cond); \
1107 })
1108 #define verifier_bug(env, fmt, args...) \
1109 ({ \
1110 BPF_WARN_ONCE(1, "verifier bug: " fmt "\n", ##args); \
1111 bpf_log(&env->log, "verifier bug: " fmt "\n", ##args); \
1112 })
1113
mark_prune_point(struct bpf_verifier_env * env,int idx)1114 static inline void mark_prune_point(struct bpf_verifier_env *env, int idx)
1115 {
1116 env->insn_aux_data[idx].prune_point = true;
1117 }
1118
bpf_is_prune_point(struct bpf_verifier_env * env,int insn_idx)1119 static inline bool bpf_is_prune_point(struct bpf_verifier_env *env, int insn_idx)
1120 {
1121 return env->insn_aux_data[insn_idx].prune_point;
1122 }
1123
mark_force_checkpoint(struct bpf_verifier_env * env,int idx)1124 static inline void mark_force_checkpoint(struct bpf_verifier_env *env, int idx)
1125 {
1126 env->insn_aux_data[idx].force_checkpoint = true;
1127 }
1128
bpf_is_force_checkpoint(struct bpf_verifier_env * env,int insn_idx)1129 static inline bool bpf_is_force_checkpoint(struct bpf_verifier_env *env, int insn_idx)
1130 {
1131 return env->insn_aux_data[insn_idx].force_checkpoint;
1132 }
1133
mark_calls_callback(struct bpf_verifier_env * env,int idx)1134 static inline void mark_calls_callback(struct bpf_verifier_env *env, int idx)
1135 {
1136 env->insn_aux_data[idx].calls_callback = true;
1137 }
1138
bpf_calls_callback(struct bpf_verifier_env * env,int insn_idx)1139 static inline bool bpf_calls_callback(struct bpf_verifier_env *env, int insn_idx)
1140 {
1141 return env->insn_aux_data[insn_idx].calls_callback;
1142 }
1143
mark_jmp_point(struct bpf_verifier_env * env,int idx)1144 static inline void mark_jmp_point(struct bpf_verifier_env *env, int idx)
1145 {
1146 env->insn_aux_data[idx].jmp_point = true;
1147 }
1148
mark_jump_target(struct bpf_verifier_env * env,int idx)1149 static inline void mark_jump_target(struct bpf_verifier_env *env, int idx)
1150 {
1151 env->insn_aux_data[idx].jump_target = true;
1152 }
1153
bpf_is_jump_target(struct bpf_verifier_env * env,int insn_idx)1154 static inline bool bpf_is_jump_target(struct bpf_verifier_env *env, int insn_idx)
1155 {
1156 return env->insn_aux_data[insn_idx].jump_target;
1157 }
1158
cur_func(struct bpf_verifier_env * env)1159 static inline struct bpf_func_state *cur_func(struct bpf_verifier_env *env)
1160 {
1161 struct bpf_verifier_state *cur = env->cur_state;
1162
1163 return cur->frame[cur->curframe];
1164 }
1165
cur_regs(struct bpf_verifier_env * env)1166 static inline struct bpf_reg_state *cur_regs(struct bpf_verifier_env *env)
1167 {
1168 return cur_func(env)->regs;
1169 }
1170
1171 int bpf_prog_offload_verifier_prep(struct bpf_prog *prog);
1172 int bpf_prog_offload_verify_insn(struct bpf_verifier_env *env,
1173 int insn_idx, int prev_insn_idx);
1174 int bpf_prog_offload_finalize(struct bpf_verifier_env *env);
1175 void
1176 bpf_prog_offload_replace_insn(struct bpf_verifier_env *env, u32 off,
1177 struct bpf_insn *insn);
1178 void
1179 bpf_prog_offload_remove_insns(struct bpf_verifier_env *env, u32 off, u32 cnt);
1180
1181 /* this lives here instead of in bpf.h because it needs to dereference tgt_prog */
bpf_trampoline_compute_key(const struct bpf_prog * tgt_prog,struct btf * btf,u32 btf_id)1182 static inline u64 bpf_trampoline_compute_key(const struct bpf_prog *tgt_prog,
1183 struct btf *btf, u32 btf_id)
1184 {
1185 if (tgt_prog)
1186 return ((u64)tgt_prog->aux->id << 32) | btf_id;
1187 else
1188 return ((u64)btf_obj_id(btf) << 32) | 0x80000000 | btf_id;
1189 }
1190
1191 /* unpack the IDs from the key as constructed above */
bpf_trampoline_unpack_key(u64 key,u32 * obj_id,u32 * btf_id)1192 static inline void bpf_trampoline_unpack_key(u64 key, u32 *obj_id, u32 *btf_id)
1193 {
1194 if (obj_id)
1195 *obj_id = key >> 32;
1196 if (btf_id)
1197 *btf_id = key & 0x7FFFFFFF;
1198 }
1199
1200 int bpf_prepare_btf_info(struct bpf_verifier_env *env,
1201 const union bpf_attr *attr, bpfptr_t uattr);
1202 int bpf_check_core_relo(struct bpf_verifier_env *env,
1203 const union bpf_attr *attr, bpfptr_t uattr);
1204 int bpf_check_btf_info(struct bpf_verifier_env *env,
1205 const union bpf_attr *attr, bpfptr_t uattr);
1206
1207 int bpf_check_attach_target(struct bpf_verifier_log *log,
1208 const struct bpf_prog *prog,
1209 const struct bpf_prog *tgt_prog,
1210 u32 btf_id,
1211 struct bpf_attach_target_info *tgt_info);
1212 void bpf_free_kfunc_btf_tab(struct bpf_kfunc_btf_tab *tab);
1213
1214 int mark_chain_precision(struct bpf_verifier_env *env, int regno);
1215
1216 int bpf_is_state_visited(struct bpf_verifier_env *env, int insn_idx);
1217 int bpf_update_branch_counts(struct bpf_verifier_env *env, struct bpf_verifier_state *st);
1218
1219 void bpf_clear_jmp_history(struct bpf_verifier_state *state);
1220 int bpf_copy_verifier_state(struct bpf_verifier_state *dst_state,
1221 const struct bpf_verifier_state *src);
1222 struct list_head *bpf_explored_state(struct bpf_verifier_env *env, int idx);
1223 void bpf_free_verifier_state(struct bpf_verifier_state *state, bool free_self);
1224 void bpf_free_backedges(struct bpf_scc_visit *visit);
1225 int bpf_push_jmp_history(struct bpf_verifier_env *env, struct bpf_verifier_state *cur,
1226 int insn_flags, int spi, int frame, u64 linked_regs);
1227 void bpf_bt_sync_linked_regs(struct backtrack_state *bt, struct bpf_jmp_history_entry *hist);
1228 void bpf_mark_reg_not_init(const struct bpf_verifier_env *env,
1229 struct bpf_reg_state *reg);
1230 void bpf_mark_reg_unknown_imprecise(struct bpf_reg_state *reg);
1231 void bpf_mark_all_scalars_precise(struct bpf_verifier_env *env,
1232 struct bpf_verifier_state *st);
1233 void bpf_clear_singular_ids(struct bpf_verifier_env *env, struct bpf_verifier_state *st);
1234 int bpf_mark_chain_precision(struct bpf_verifier_env *env,
1235 struct bpf_verifier_state *starting_state,
1236 int regno, bool *changed);
1237
bpf_get_spi(s32 off)1238 static inline int bpf_get_spi(s32 off)
1239 {
1240 return (-off - 1) / BPF_REG_SIZE;
1241 }
1242
1243 /*
1244 * Return the function state a stack pointer register refers to. frameno
1245 * shares storage with other pointer metadata, so return NULL for any
1246 * other register type instead of indexing frame[] with aliased bytes.
1247 */
bpf_func(struct bpf_verifier_env * env,const struct bpf_reg_state * reg)1248 static inline struct bpf_func_state *bpf_func(struct bpf_verifier_env *env,
1249 const struct bpf_reg_state *reg)
1250 {
1251 struct bpf_verifier_state *cur = env->cur_state;
1252
1253 if (reg->type != PTR_TO_STACK)
1254 return NULL;
1255 return cur->frame[reg->frameno];
1256 }
1257
1258 /* Return IP for a given frame in a call stack */
bpf_frame_insn_idx(struct bpf_verifier_state * st,u32 frame)1259 static inline u32 bpf_frame_insn_idx(struct bpf_verifier_state *st, u32 frame)
1260 {
1261 return frame == st->curframe
1262 ? st->insn_idx
1263 : st->frame[frame + 1]->callsite;
1264 }
1265
bpf_is_jmp_point(struct bpf_verifier_env * env,int insn_idx)1266 static inline bool bpf_is_jmp_point(struct bpf_verifier_env *env, int insn_idx)
1267 {
1268 return env->insn_aux_data[insn_idx].jmp_point;
1269 }
1270
bpf_is_spilled_reg(const struct bpf_stack_state * stack)1271 static inline bool bpf_is_spilled_reg(const struct bpf_stack_state *stack)
1272 {
1273 return stack->slot_type[BPF_REG_SIZE - 1] == STACK_SPILL;
1274 }
1275
bpf_is_spilled_scalar_reg(const struct bpf_stack_state * stack)1276 static inline bool bpf_is_spilled_scalar_reg(const struct bpf_stack_state *stack)
1277 {
1278 return bpf_is_spilled_reg(stack) && stack->spilled_ptr.type == SCALAR_VALUE;
1279 }
1280
bpf_register_is_null(struct bpf_reg_state * reg)1281 static inline bool bpf_register_is_null(struct bpf_reg_state *reg)
1282 {
1283 return reg->type == SCALAR_VALUE && tnum_equals_const(reg->var_off, 0);
1284 }
1285
bpf_bt_set_frame_reg(struct backtrack_state * bt,u32 frame,u32 reg)1286 static inline void bpf_bt_set_frame_reg(struct backtrack_state *bt, u32 frame, u32 reg)
1287 {
1288 bt->reg_masks[frame] |= 1 << reg;
1289 }
1290
bpf_bt_set_frame_slot(struct backtrack_state * bt,u32 frame,u32 slot)1291 static inline void bpf_bt_set_frame_slot(struct backtrack_state *bt, u32 frame, u32 slot)
1292 {
1293 bt->stack_masks[frame] |= 1ull << slot;
1294 }
1295
bpf_bt_set_frame_slot_mask(struct backtrack_state * bt,u32 frame,u64 mask)1296 static inline void bpf_bt_set_frame_slot_mask(struct backtrack_state *bt, u32 frame, u64 mask)
1297 {
1298 bt->stack_masks[frame] |= mask;
1299 }
1300
bt_set_frame_stack_arg_slot(struct backtrack_state * bt,u32 frame,u32 slot)1301 static inline void bt_set_frame_stack_arg_slot(struct backtrack_state *bt, u32 frame, u32 slot)
1302 {
1303 bt->stack_arg_masks[frame] |= 1 << slot;
1304 }
1305
bt_is_frame_reg_set(struct backtrack_state * bt,u32 frame,u32 reg)1306 static inline bool bt_is_frame_reg_set(struct backtrack_state *bt, u32 frame, u32 reg)
1307 {
1308 return bt->reg_masks[frame] & (1 << reg);
1309 }
1310
bt_is_frame_slot_set(struct backtrack_state * bt,u32 frame,u32 slot)1311 static inline bool bt_is_frame_slot_set(struct backtrack_state *bt, u32 frame, u32 slot)
1312 {
1313 return bt->stack_masks[frame] & (1ull << slot);
1314 }
1315
1316 bool bpf_map_is_rdonly(const struct bpf_map *map);
1317 int bpf_map_direct_read(struct bpf_map *map, int off, int size, u64 *val,
1318 bool is_ldsx);
1319
1320 #define BPF_BASE_TYPE_MASK GENMASK(BPF_BASE_TYPE_BITS - 1, 0)
1321
1322 /* extract base type from bpf_{arg, return, reg}_type. */
base_type(u32 type)1323 static inline u32 base_type(u32 type)
1324 {
1325 return type & BPF_BASE_TYPE_MASK;
1326 }
1327
1328 /* extract flags from an extended type. See bpf_type_flag in bpf.h. */
type_flag(u32 type)1329 static inline u32 type_flag(u32 type)
1330 {
1331 return type & ~BPF_BASE_TYPE_MASK;
1332 }
1333
bpf_is_ptr_to_mem_or_btf_id(enum bpf_reg_type type)1334 static inline bool bpf_is_ptr_to_mem_or_btf_id(enum bpf_reg_type type)
1335 {
1336 switch (base_type(type)) {
1337 case PTR_TO_MEM:
1338 case PTR_TO_BTF_ID:
1339 return true;
1340 default:
1341 return false;
1342 }
1343 }
1344
bpf_may_fault_on_deref(enum bpf_reg_type type)1345 static inline bool bpf_may_fault_on_deref(enum bpf_reg_type type)
1346 {
1347 /*
1348 * The pointer types which must not be dereferenced without fault
1349 * protection, that is, the ones bpf_convert_ctx_accesses() has to
1350 * turn a BPF_LDX into a BPF_PROBE_MEM one for.
1351 */
1352 return type == PTR_TO_BTF_ID || (type_flag(type) & PTR_UNTRUSTED);
1353 }
1354
bpf_prog_has_arena_ctx_arg(const struct bpf_prog * prog)1355 static inline bool bpf_prog_has_arena_ctx_arg(const struct bpf_prog *prog)
1356 {
1357 int i;
1358
1359 for (i = 0; i < prog->aux->ctx_arg_info_size; i++)
1360 if (base_type(prog->aux->ctx_arg_info[i].reg_type) == PTR_TO_ARENA)
1361 return true;
1362 return false;
1363 }
1364
resolve_prog_type(const struct bpf_prog * prog)1365 static inline enum bpf_prog_type resolve_prog_type(const struct bpf_prog *prog)
1366 {
1367 return (prog->type == BPF_PROG_TYPE_EXT && prog->aux->saved_dst_prog_type) ?
1368 prog->aux->saved_dst_prog_type : prog->type;
1369 }
1370
bpf_prog_check_recur(const struct bpf_prog * prog)1371 static inline bool bpf_prog_check_recur(const struct bpf_prog *prog)
1372 {
1373 switch (resolve_prog_type(prog)) {
1374 case BPF_PROG_TYPE_TRACING:
1375 return prog->expected_attach_type != BPF_TRACE_ITER;
1376 case BPF_PROG_TYPE_STRUCT_OPS:
1377 return prog->aux->jits_use_priv_stack;
1378 case BPF_PROG_TYPE_LSM:
1379 case BPF_PROG_TYPE_SYSCALL:
1380 return false;
1381 default:
1382 return true;
1383 }
1384 }
1385
1386 #define BPF_REG_TRUSTED_MODIFIERS (MEM_ALLOC | PTR_TRUSTED | NON_OWN_REF)
1387
bpf_type_has_unsafe_modifiers(u32 type)1388 static inline bool bpf_type_has_unsafe_modifiers(u32 type)
1389 {
1390 return type_flag(type) & ~BPF_REG_TRUSTED_MODIFIERS;
1391 }
1392
type_is_ptr_alloc_obj(u32 type)1393 static inline bool type_is_ptr_alloc_obj(u32 type)
1394 {
1395 return base_type(type) == PTR_TO_BTF_ID &&
1396 type_flag(type) & MEM_ALLOC &&
1397 !(type_flag(type) & PTR_UNTRUSTED);
1398 }
1399
type_is_non_owning_ref(u32 type)1400 static inline bool type_is_non_owning_ref(u32 type)
1401 {
1402 return type_is_ptr_alloc_obj(type) && type_flag(type) & NON_OWN_REF;
1403 }
1404
type_is_map_ptr(enum bpf_reg_type type)1405 static inline bool type_is_map_ptr(enum bpf_reg_type type)
1406 {
1407 switch (base_type(type)) {
1408 case CONST_PTR_TO_MAP:
1409 case PTR_TO_MAP_KEY:
1410 case PTR_TO_MAP_VALUE:
1411 return true;
1412 default:
1413 return false;
1414 }
1415 }
1416
type_is_pkt_pointer(enum bpf_reg_type type)1417 static inline bool type_is_pkt_pointer(enum bpf_reg_type type)
1418 {
1419 type = base_type(type);
1420 return type == PTR_TO_PACKET ||
1421 type == PTR_TO_PACKET_META;
1422 }
1423
type_is_sk_pointer(enum bpf_reg_type type)1424 static inline bool type_is_sk_pointer(enum bpf_reg_type type)
1425 {
1426 return type == PTR_TO_SOCKET ||
1427 type == PTR_TO_SOCK_COMMON ||
1428 type == PTR_TO_TCP_SOCK ||
1429 type == PTR_TO_XDP_SOCK;
1430 }
1431
type_may_be_null(u32 type)1432 static inline bool type_may_be_null(u32 type)
1433 {
1434 return type & PTR_MAYBE_NULL;
1435 }
1436
mark_reg_scratched(struct bpf_verifier_env * env,u32 regno)1437 static inline void mark_reg_scratched(struct bpf_verifier_env *env, u32 regno)
1438 {
1439 env->scratched_regs |= 1U << regno;
1440 }
1441
mark_stack_slot_scratched(struct bpf_verifier_env * env,u32 spi)1442 static inline void mark_stack_slot_scratched(struct bpf_verifier_env *env, u32 spi)
1443 {
1444 env->scratched_stack_slots |= 1ULL << spi;
1445 }
1446
reg_scratched(const struct bpf_verifier_env * env,u32 regno)1447 static inline bool reg_scratched(const struct bpf_verifier_env *env, u32 regno)
1448 {
1449 return (env->scratched_regs >> regno) & 1;
1450 }
1451
stack_slot_scratched(const struct bpf_verifier_env * env,u64 regno)1452 static inline bool stack_slot_scratched(const struct bpf_verifier_env *env, u64 regno)
1453 {
1454 return (env->scratched_stack_slots >> regno) & 1;
1455 }
1456
verifier_state_scratched(const struct bpf_verifier_env * env)1457 static inline bool verifier_state_scratched(const struct bpf_verifier_env *env)
1458 {
1459 return env->scratched_regs || env->scratched_stack_slots;
1460 }
1461
mark_verifier_state_clean(struct bpf_verifier_env * env)1462 static inline void mark_verifier_state_clean(struct bpf_verifier_env *env)
1463 {
1464 env->scratched_regs = 0U;
1465 env->scratched_stack_slots = 0ULL;
1466 }
1467
1468 /* Used for printing the entire verifier state. */
mark_verifier_state_scratched(struct bpf_verifier_env * env)1469 static inline void mark_verifier_state_scratched(struct bpf_verifier_env *env)
1470 {
1471 env->scratched_regs = ~0U;
1472 env->scratched_stack_slots = ~0ULL;
1473 }
1474
bpf_stack_narrow_access_ok(int off,int fill_size,int spill_size)1475 static inline bool bpf_stack_narrow_access_ok(int off, int fill_size, int spill_size)
1476 {
1477 #ifdef __BIG_ENDIAN
1478 off -= spill_size - fill_size;
1479 #endif
1480
1481 return !(off % BPF_REG_SIZE);
1482 }
1483
insn_is_gotox(struct bpf_insn * insn)1484 static inline bool insn_is_gotox(struct bpf_insn *insn)
1485 {
1486 return BPF_CLASS(insn->code) == BPF_JMP &&
1487 BPF_OP(insn->code) == BPF_JA &&
1488 BPF_SRC(insn->code) == BPF_X;
1489 }
1490
1491 const char *reg_type_str(struct bpf_verifier_env *env, enum bpf_reg_type type);
1492 const char *dynptr_type_str(enum bpf_dynptr_type type);
1493 const char *iter_type_str(const struct btf *btf, u32 btf_id);
1494 const char *iter_state_str(enum bpf_iter_state state);
1495
1496 void print_verifier_state(struct bpf_verifier_env *env, const struct bpf_verifier_state *vstate,
1497 u32 frameno, bool print_all);
1498 void print_insn_state(struct bpf_verifier_env *env, const struct bpf_verifier_state *vstate,
1499 u32 frameno);
1500 u32 bpf_vlog_alignment(u32 pos);
1501 const char *bpf_disasm_kfunc_name(void *data, const struct bpf_insn *insn);
1502
1503 struct bpf_subprog_info *bpf_find_containing_subprog(struct bpf_verifier_env *env, int off);
1504 const char *bpf_subprog_name(const struct bpf_verifier_env *env, int subprog);
1505 int bpf_jmp_offset(struct bpf_insn *insn);
1506 struct bpf_iarray *bpf_insn_successors(struct bpf_verifier_env *env, u32 idx);
1507 void bpf_fmt_stack_mask(char *buf, ssize_t buf_sz, u64 stack_mask);
1508 bool bpf_subprog_is_global(const struct bpf_verifier_env *env, int subprog);
1509
1510 int bpf_find_subprog(struct bpf_verifier_env *env, int off);
1511 bool bpf_is_throw_kfunc(struct bpf_insn *insn);
1512 int bpf_compute_const_regs(struct bpf_verifier_env *env);
1513 int bpf_prune_dead_branches(struct bpf_verifier_env *env);
1514 int bpf_check_cfg(struct bpf_verifier_env *env);
1515 int bpf_compute_postorder(struct bpf_verifier_env *env);
1516 int bpf_compute_scc(struct bpf_verifier_env *env);
1517
1518 struct bpf_map_desc {
1519 struct bpf_map *ptr;
1520 int uid;
1521 };
1522
1523 /* The last initialized dynptr; Populated by process_dynptr_func() */
1524 struct bpf_dynptr_desc {
1525 enum bpf_dynptr_type type;
1526 u32 id;
1527 u32 parent_id;
1528 };
1529
1530 /*
1531 * The last seen rereferenced object; Updated by update_ref_obj() when a register refers to a
1532 * referenced object. Used when the helper or kfunc is casting a referenced object, returning
1533 * allocated memory derived from referenced object or creating a dynptr with a referenced
1534 * object as parent.
1535 */
1536 struct ref_obj_desc {
1537 u32 id;
1538 u32 parent_id;
1539 u8 cnt;
1540 };
1541
1542 /*
1543 * A memory argument a call fills in. The verifier allows the stack to be uninitialized if
1544 * the range is a known constant. Stack slots are marked as STACK_MISC by check_mem_access().
1545 */
1546 struct arg_raw_mem_desc {
1547 u8 regno;
1548 int size;
1549 };
1550
1551 /* Size of PTR_TO_MEM returned, taken from a constant allocation-size argument */
1552 struct ret_mem_desc {
1553 u32 size;
1554 bool found;
1555 };
1556
1557 /* A constant scalar argument; Populated by process_const_arg() */
1558 struct arg_constant_desc {
1559 u64 value;
1560 bool found;
1561 };
1562
1563 struct bpf_call_arg_meta {
1564 /* Common */
1565 struct btf *btf;
1566 u32 func_id;
1567 const struct bpf_func_proto *fn;
1568 u8 release_regno;
1569 u32 ret_btf_id;
1570 u32 subprogno;
1571 struct bpf_map_desc map;
1572 struct bpf_dynptr_desc dynptr;
1573 struct ref_obj_desc ref_obj;
1574 struct ret_mem_desc ret_mem;
1575
1576 /* Only set by kfunc */
1577 bool r0_rdonly;
1578 u32 kfunc_flags;
1579 const struct btf_type *func_proto;
1580 const char *func_name;
1581 struct arg_constant_desc arg_constant;
1582
1583 /* arg_{btf,btf_id,owning_ref} are used by kfunc-specific handling,
1584 * generally to pass info about user-defined local kptr types to later
1585 * verification logic
1586 * bpf_obj_drop/bpf_percpu_obj_drop
1587 * Record the local kptr type to be drop'd
1588 * bpf_refcount_acquire (via KF_ARG_PTR_TO_REFCOUNTED_KPTR arg type)
1589 * Record the local kptr type to be refcount_incr'd and use
1590 * arg_owning_ref to determine whether refcount_acquire should be
1591 * fallible
1592 */
1593 struct btf *arg_btf;
1594 u32 arg_btf_id;
1595 bool arg_owning_ref;
1596 bool arg_prog;
1597
1598 struct {
1599 struct btf_field *field;
1600 } arg_list_head;
1601 struct {
1602 struct btf_field *field;
1603 } arg_rbtree_root;
1604 struct {
1605 u8 spi;
1606 u8 frameno;
1607 } iter;
1608
1609 /* Only set by helper */
1610 u64 msize_max_value;
1611 s64 const_map_key;
1612 struct btf *ret_btf;
1613 struct btf_field *kptr_field;
1614 struct arg_raw_mem_desc arg_raw_mem;
1615 };
1616
1617 int bpf_get_helper_proto(struct bpf_verifier_env *env, int func_id,
1618 const struct bpf_func_proto **ptr);
1619 int bpf_fetch_kfunc_arg_meta(struct bpf_verifier_env *env, s32 func_id,
1620 s16 offset, struct bpf_call_arg_meta *meta);
1621 bool bpf_is_async_callback_calling_insn(struct bpf_insn *insn);
1622 bool bpf_is_sync_callback_calling_insn(struct bpf_insn *insn);
bpf_is_iter_next_kfunc(struct bpf_call_arg_meta * meta)1623 static inline bool bpf_is_iter_next_kfunc(struct bpf_call_arg_meta *meta)
1624 {
1625 return meta->kfunc_flags & KF_ITER_NEXT;
1626 }
1627
bpf_is_kfunc_sleepable(struct bpf_call_arg_meta * meta)1628 static inline bool bpf_is_kfunc_sleepable(struct bpf_call_arg_meta *meta)
1629 {
1630 return meta->kfunc_flags & KF_SLEEPABLE;
1631 }
1632 bool bpf_is_kfunc_pkt_changing(struct bpf_call_arg_meta *meta);
1633 struct bpf_iarray *bpf_iarray_realloc(struct bpf_iarray *old, size_t n_elem);
1634 int bpf_copy_insn_array_uniq(struct bpf_map *map, u32 start, u32 end, u32 *off);
1635 bool bpf_insn_is_cond_jump(u8 code);
1636 bool bpf_is_may_goto_insn(struct bpf_insn *insn);
1637
1638 void bpf_verbose_insn(struct bpf_verifier_env *env, struct bpf_insn *insn);
1639 bool bpf_get_call_summary(struct bpf_verifier_env *env, struct bpf_insn *call,
1640 struct bpf_call_summary *cs);
1641 s64 bpf_helper_stack_access_bytes(struct bpf_verifier_env *env,
1642 struct bpf_insn *insn, int arg,
1643 int insn_idx);
1644 s64 bpf_kfunc_stack_access_bytes(struct bpf_verifier_env *env,
1645 struct bpf_insn *insn, int arg,
1646 int insn_idx);
1647 int bpf_compute_subprog_arg_access(struct bpf_verifier_env *env);
1648
1649 int bpf_stack_liveness_init(struct bpf_verifier_env *env);
1650 void bpf_stack_liveness_free(struct bpf_verifier_env *env);
1651 int bpf_live_stack_query_init(struct bpf_verifier_env *env, struct bpf_verifier_state *st);
1652 bool bpf_stack_slot_alive(struct bpf_verifier_env *env, u32 frameno, u32 spi);
1653 int bpf_compute_live_registers(struct bpf_verifier_env *env);
1654
1655 #define BPF_MAP_KEY_POISON (1ULL << 63)
1656 #define BPF_MAP_KEY_SEEN (1ULL << 62)
1657
bpf_map_ptr_poisoned(const struct bpf_insn_aux_data * aux)1658 static inline bool bpf_map_ptr_poisoned(const struct bpf_insn_aux_data *aux)
1659 {
1660 return aux->map_ptr_state.poison;
1661 }
1662
bpf_map_ptr_unpriv(const struct bpf_insn_aux_data * aux)1663 static inline bool bpf_map_ptr_unpriv(const struct bpf_insn_aux_data *aux)
1664 {
1665 return aux->map_ptr_state.unpriv;
1666 }
1667
bpf_map_key_poisoned(const struct bpf_insn_aux_data * aux)1668 static inline bool bpf_map_key_poisoned(const struct bpf_insn_aux_data *aux)
1669 {
1670 return aux->map_key_state & BPF_MAP_KEY_POISON;
1671 }
1672
bpf_map_key_unseen(const struct bpf_insn_aux_data * aux)1673 static inline bool bpf_map_key_unseen(const struct bpf_insn_aux_data *aux)
1674 {
1675 return !(aux->map_key_state & BPF_MAP_KEY_SEEN);
1676 }
1677
bpf_map_key_immediate(const struct bpf_insn_aux_data * aux)1678 static inline u64 bpf_map_key_immediate(const struct bpf_insn_aux_data *aux)
1679 {
1680 return aux->map_key_state & ~(BPF_MAP_KEY_SEEN | BPF_MAP_KEY_POISON);
1681 }
1682
1683 #define MAX_PACKET_OFF 0xffff
1684 #define CALLER_SAVED_REGS 6
1685
1686 enum bpf_reg_arg_type {
1687 SRC_OP, /* register is used as source operand */
1688 DST_OP, /* register is used as destination operand */
1689 DST_OP_NO_MARK /* same as above, check only, don't mark */
1690 };
1691
1692 #define MAX_KFUNC_DESCS 256
1693
1694 struct bpf_kfunc_desc {
1695 struct btf_func_model func_model;
1696 struct bpf_func_proto proto;
1697 u32 func_id;
1698 s32 imm;
1699 u16 offset;
1700 unsigned long addr;
1701 };
1702
1703 struct bpf_kfunc_desc_tab {
1704 u32 nr_descs;
1705 /* Sorted by func_id (BTF ID) and offset (fd_array offset) during
1706 * verification. JITs do lookups by bpf_insn, where func_id may not be
1707 * available, therefore at the end of verification do_misc_fixups()
1708 * sorts this by imm and offset.
1709 *
1710 * Grown one entry at a time by bpf_add_kfunc_call().
1711 */
1712 struct bpf_kfunc_desc descs[];
1713 };
1714
1715 /* Functions exported from verifier.c, used by fixups.c */
1716 void bpf_clear_insn_aux_data(struct bpf_verifier_env *env, int start, int len);
1717 void bpf_mark_subprog_exc_cb(struct bpf_verifier_env *env, int subprog);
1718 bool bpf_allow_tail_call_in_subprogs(struct bpf_verifier_env *env);
1719 bool bpf_verifier_inlines_helper_call(struct bpf_verifier_env *env, s32 imm);
1720 int bpf_add_kfunc_call(struct bpf_verifier_env *env, u32 func_id, u16 offset);
1721 int bpf_fixup_kfunc_call(struct bpf_verifier_env *env, struct bpf_insn *insn,
1722 struct bpf_insn *insn_buf, int insn_idx, int *cnt);
1723
1724 /* Functions exported from verifier.c, used by trampoline.c */
1725 int bpf_check_attach_btf_id_multi(struct btf *btf, struct bpf_prog *prog, u32 btf_id,
1726 struct bpf_attach_target_info *tgt_info);
1727
1728 /* Functions in fixups.c, called from bpf_check() */
1729 int bpf_remove_fastcall_spills_fills(struct bpf_verifier_env *env);
1730 int bpf_optimize_bpf_loop(struct bpf_verifier_env *env);
1731 void bpf_opt_hard_wire_dead_code_branches(struct bpf_verifier_env *env);
1732 int bpf_opt_remove_dead_code(struct bpf_verifier_env *env);
1733 int bpf_opt_remove_nops(struct bpf_verifier_env *env);
1734 int bpf_opt_subreg_zext_lo32_rnd_hi32(struct bpf_verifier_env *env, const union bpf_attr *attr);
1735 int bpf_convert_ctx_accesses(struct bpf_verifier_env *env);
1736 int bpf_jit_subprogs(struct bpf_verifier_env *env);
1737 int bpf_fixup_call_args(struct bpf_verifier_env *env);
1738 int bpf_do_misc_fixups(struct bpf_verifier_env *env);
1739 int bpf_insn_def32(struct bpf_prog *prog, struct bpf_insn *insn);
1740
1741 #endif /* _LINUX_BPF_VERIFIER_H */
1742