xref: /linux/kernel/bpf/core.c (revision 261b61d3735b042ae25634f795c4540be0fc140c)
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  * Linux Socket Filter - Kernel level socket filtering
4  *
5  * Based on the design of the Berkeley Packet Filter. The new
6  * internal format has been designed by PLUMgrid:
7  *
8  *	Copyright (c) 2011 - 2014 PLUMgrid, http://plumgrid.com
9  *
10  * Authors:
11  *
12  *	Jay Schulist <jschlst@samba.org>
13  *	Alexei Starovoitov <ast@plumgrid.com>
14  *	Daniel Borkmann <dborkman@redhat.com>
15  *
16  * Andi Kleen - Fix a few bad bugs and races.
17  * Kris Katterjohn - Added many additional checks in bpf_check_classic()
18  */
19 
20 #include <uapi/linux/btf.h>
21 #include <linux/filter.h>
22 #include <linux/sched/signal.h>
23 #include <linux/skbuff.h>
24 #include <linux/static_call.h>
25 #include <linux/vmalloc.h>
26 #include <linux/prandom.h>
27 #include <linux/bpf.h>
28 #include <linux/btf.h>
29 #include <linux/hex.h>
30 #include <linux/objtool.h>
31 #include <linux/overflow.h>
32 #include <linux/rbtree_latch.h>
33 #include <linux/kallsyms.h>
34 #include <linux/rcupdate.h>
35 #include <linux/perf_event.h>
36 #include <linux/extable.h>
37 #include <linux/log2.h>
38 #include <linux/bpf_verifier.h>
39 #include <linux/nodemask.h>
40 #include <linux/nospec.h>
41 #include <linux/bpf_mem_alloc.h>
42 #include <linux/memcontrol.h>
43 #include <linux/execmem.h>
44 #include <crypto/sha2.h>
45 
46 #include <asm/barrier.h>
47 #include <linux/unaligned.h>
48 
49 /* Registers */
50 #define BPF_R0	regs[BPF_REG_0]
51 #define BPF_R1	regs[BPF_REG_1]
52 #define BPF_R2	regs[BPF_REG_2]
53 #define BPF_R3	regs[BPF_REG_3]
54 #define BPF_R4	regs[BPF_REG_4]
55 #define BPF_R5	regs[BPF_REG_5]
56 #define BPF_R6	regs[BPF_REG_6]
57 #define BPF_R7	regs[BPF_REG_7]
58 #define BPF_R8	regs[BPF_REG_8]
59 #define BPF_R9	regs[BPF_REG_9]
60 #define BPF_R10	regs[BPF_REG_10]
61 
62 /* Named registers */
63 #define DST	regs[insn->dst_reg]
64 #define SRC	regs[insn->src_reg]
65 #define FP	regs[BPF_REG_FP]
66 #define AX	regs[BPF_REG_AX]
67 #define ARG1	regs[BPF_REG_ARG1]
68 #define CTX	regs[BPF_REG_CTX]
69 #define OFF	insn->off
70 #define IMM	insn->imm
71 
72 struct bpf_mem_alloc bpf_global_ma;
73 bool bpf_global_ma_set;
74 
75 /* No hurry in this branch
76  *
77  * Exported for the bpf jit load helper.
78  */
79 void *bpf_internal_load_pointer_neg_helper(const struct sk_buff *skb, int k, unsigned int size)
80 {
81 	u8 *ptr = NULL;
82 
83 	if (k >= SKF_NET_OFF) {
84 		ptr = skb_network_header(skb) + k - SKF_NET_OFF;
85 	} else if (k >= SKF_LL_OFF) {
86 		if (unlikely(!skb_mac_header_was_set(skb)))
87 			return NULL;
88 		ptr = skb_mac_header(skb) + k - SKF_LL_OFF;
89 	}
90 	if (ptr >= skb->head && ptr + size <= skb_tail_pointer(skb))
91 		return ptr;
92 
93 	return NULL;
94 }
95 
96 /* tell bpf programs that include vmlinux.h kernel's PAGE_SIZE */
97 enum page_size_enum {
98 	__PAGE_SIZE = PAGE_SIZE
99 };
100 
101 struct bpf_prog *bpf_prog_alloc_no_stats(unsigned int size, gfp_t gfp_extra_flags)
102 {
103 	gfp_t gfp_flags = bpf_memcg_flags(GFP_KERNEL | __GFP_ZERO | gfp_extra_flags);
104 	struct bpf_prog_aux *aux;
105 	struct bpf_prog *fp;
106 
107 	size = round_up(size, __PAGE_SIZE);
108 	fp = __vmalloc(size, gfp_flags);
109 	if (fp == NULL)
110 		return NULL;
111 
112 	aux = kzalloc_obj(*aux, bpf_memcg_flags(GFP_KERNEL | gfp_extra_flags));
113 	if (aux == NULL) {
114 		vfree(fp);
115 		return NULL;
116 	}
117 	fp->active = __alloc_percpu_gfp(sizeof(u8[BPF_NR_CONTEXTS]), 4,
118 					bpf_memcg_flags(GFP_KERNEL | gfp_extra_flags));
119 	if (!fp->active) {
120 		vfree(fp);
121 		kfree(aux);
122 		return NULL;
123 	}
124 
125 	fp->pages = size / PAGE_SIZE;
126 	fp->aux = aux;
127 	fp->aux->main_prog_aux = aux;
128 	fp->aux->prog = fp;
129 	fp->jit_requested = ebpf_jit_enabled();
130 	fp->jit_required = IS_ENABLED(CONFIG_BPF_JIT_ALWAYS_ON);
131 	fp->blinding_requested = bpf_jit_blinding_enabled(fp);
132 #ifdef CONFIG_CGROUP_BPF
133 	aux->cgroup_atype = CGROUP_BPF_ATTACH_TYPE_INVALID;
134 #endif
135 
136 	INIT_LIST_HEAD_RCU(&fp->aux->ksym.lnode);
137 #ifdef CONFIG_FINEIBT
138 	INIT_LIST_HEAD_RCU(&fp->aux->ksym_prefix.lnode);
139 #endif
140 	mutex_init(&fp->aux->used_maps_mutex);
141 	mutex_init(&fp->aux->ext_mutex);
142 	mutex_init(&fp->aux->dst_mutex);
143 	mutex_init(&fp->aux->st_ops_assoc_mutex);
144 
145 #ifdef CONFIG_BPF_SYSCALL
146 	bpf_prog_stream_init(fp);
147 #endif
148 
149 	return fp;
150 }
151 
152 struct bpf_prog *bpf_prog_alloc(unsigned int size, gfp_t gfp_extra_flags)
153 {
154 	gfp_t gfp_flags = bpf_memcg_flags(GFP_KERNEL | __GFP_ZERO | gfp_extra_flags);
155 	struct bpf_prog *prog;
156 	int cpu;
157 
158 	prog = bpf_prog_alloc_no_stats(size, gfp_extra_flags);
159 	if (!prog)
160 		return NULL;
161 
162 	prog->stats = alloc_percpu_gfp(struct bpf_prog_stats, gfp_flags);
163 	if (!prog->stats) {
164 		free_percpu(prog->active);
165 		kfree(prog->aux);
166 		vfree(prog);
167 		return NULL;
168 	}
169 
170 	for_each_possible_cpu(cpu) {
171 		struct bpf_prog_stats *pstats;
172 
173 		pstats = per_cpu_ptr(prog->stats, cpu);
174 		u64_stats_init(&pstats->syncp);
175 	}
176 	return prog;
177 }
178 EXPORT_SYMBOL_GPL(bpf_prog_alloc);
179 
180 int bpf_prog_alloc_jited_linfo(struct bpf_prog *prog)
181 {
182 	if (!prog->aux->nr_linfo || !prog->jit_requested)
183 		return 0;
184 
185 	prog->aux->jited_linfo = kvzalloc_objs(*prog->aux->jited_linfo,
186 					       prog->aux->nr_linfo,
187 					       bpf_memcg_flags(GFP_KERNEL | __GFP_NOWARN));
188 	if (!prog->aux->jited_linfo)
189 		return -ENOMEM;
190 
191 	return 0;
192 }
193 
194 void bpf_prog_jit_attempt_done(struct bpf_prog *prog)
195 {
196 	if (prog->aux->jited_linfo &&
197 	    (!prog->jited || !prog->aux->jited_linfo[0])) {
198 		kvfree(prog->aux->jited_linfo);
199 		prog->aux->jited_linfo = NULL;
200 	}
201 
202 	kfree(prog->aux->kfunc_tab);
203 	prog->aux->kfunc_tab = NULL;
204 }
205 
206 /* The jit engine is responsible to provide an array
207  * for insn_off to the jited_off mapping (insn_to_jit_off).
208  *
209  * The idx to this array is the insn_off.  Hence, the insn_off
210  * here is relative to the prog itself instead of the main prog.
211  * This array has one entry for each xlated bpf insn.
212  *
213  * jited_off is the byte off to the end of the jited insn.
214  *
215  * Hence, with
216  * insn_start:
217  *      The first bpf insn off of the prog.  The insn off
218  *      here is relative to the main prog.
219  *      e.g. if prog is a subprog, insn_start > 0
220  * linfo_idx:
221  *      The prog's idx to prog->aux->linfo and jited_linfo
222  *
223  * jited_linfo[linfo_idx] = prog->bpf_func
224  *
225  * For i > linfo_idx,
226  *
227  * jited_linfo[i] = prog->bpf_func +
228  *	insn_to_jit_off[linfo[i].insn_off - insn_start - 1]
229  */
230 void bpf_prog_fill_jited_linfo(struct bpf_prog *prog,
231 			       const u32 *insn_to_jit_off)
232 {
233 	u32 linfo_idx, insn_start, insn_end, nr_linfo, i;
234 	const struct bpf_line_info *linfo;
235 	void **jited_linfo;
236 
237 	if (!prog->aux->jited_linfo || prog->aux->func_idx > prog->aux->func_cnt)
238 		/* Userspace did not provide linfo */
239 		return;
240 
241 	linfo_idx = prog->aux->linfo_idx;
242 	linfo = &prog->aux->linfo[linfo_idx];
243 	insn_start = linfo[0].insn_off;
244 	insn_end = insn_start + prog->len;
245 
246 	jited_linfo = &prog->aux->jited_linfo[linfo_idx];
247 	jited_linfo[0] = prog->bpf_func;
248 
249 	nr_linfo = prog->aux->nr_linfo - linfo_idx;
250 
251 	for (i = 1; i < nr_linfo && linfo[i].insn_off < insn_end; i++)
252 		/* The verifier ensures that linfo[i].insn_off is
253 		 * strictly increasing
254 		 */
255 		jited_linfo[i] = prog->bpf_func +
256 			insn_to_jit_off[linfo[i].insn_off - insn_start - 1];
257 }
258 
259 struct bpf_prog *bpf_prog_realloc(struct bpf_prog *fp_old, unsigned int size,
260 				  gfp_t gfp_extra_flags)
261 {
262 	gfp_t gfp_flags = bpf_memcg_flags(GFP_KERNEL | __GFP_ZERO | gfp_extra_flags);
263 	struct bpf_prog *fp;
264 	u32 pages;
265 
266 	size = round_up(size, PAGE_SIZE);
267 	pages = size / PAGE_SIZE;
268 	if (pages <= fp_old->pages)
269 		return fp_old;
270 
271 	fp = __vmalloc(size, gfp_flags);
272 	if (fp) {
273 		memcpy(fp, fp_old, fp_old->pages * PAGE_SIZE);
274 		fp->pages = pages;
275 		fp->aux->prog = fp;
276 
277 		/* We keep fp->aux from fp_old around in the new
278 		 * reallocated structure.
279 		 */
280 		fp_old->aux = NULL;
281 		fp_old->stats = NULL;
282 		fp_old->active = NULL;
283 		__bpf_prog_free(fp_old);
284 	}
285 
286 	return fp;
287 }
288 
289 void __bpf_prog_free(struct bpf_prog *fp)
290 {
291 	if (fp->aux) {
292 		mutex_destroy(&fp->aux->used_maps_mutex);
293 		mutex_destroy(&fp->aux->dst_mutex);
294 		mutex_destroy(&fp->aux->st_ops_assoc_mutex);
295 		kfree(fp->aux->poke_tab);
296 		kfree(fp->aux);
297 	}
298 	free_percpu(fp->stats);
299 	free_percpu(fp->active);
300 	vfree(fp);
301 }
302 
303 int bpf_prog_calc_tag(struct bpf_prog *fp)
304 {
305 	size_t size = bpf_prog_insn_size(fp);
306 	struct bpf_insn *dst;
307 	bool was_ld_map;
308 	u32 i;
309 
310 	dst = __vmalloc(size, GFP_KERNEL_ACCOUNT);
311 	if (!dst)
312 		return -ENOMEM;
313 
314 	/* We need to take out the map fd for the digest calculation
315 	 * since they are unstable from user space side.
316 	 */
317 	for (i = 0, was_ld_map = false; i < fp->len; i++) {
318 		dst[i] = fp->insnsi[i];
319 		if (!was_ld_map &&
320 		    dst[i].code == (BPF_LD | BPF_IMM | BPF_DW) &&
321 		    (dst[i].src_reg == BPF_PSEUDO_MAP_FD ||
322 		     dst[i].src_reg == BPF_PSEUDO_MAP_VALUE)) {
323 			was_ld_map = true;
324 			dst[i].imm = 0;
325 		} else if (was_ld_map &&
326 			   dst[i].code == 0 &&
327 			   dst[i].dst_reg == 0 &&
328 			   dst[i].src_reg == 0 &&
329 			   dst[i].off == 0) {
330 			was_ld_map = false;
331 			dst[i].imm = 0;
332 		} else {
333 			was_ld_map = false;
334 		}
335 	}
336 	sha256((u8 *)dst, size, fp->digest);
337 	vfree(dst);
338 	return 0;
339 }
340 
341 static int bpf_adj_delta_to_imm(struct bpf_insn *insn, u32 pos, s32 end_old,
342 				s32 end_new, s32 curr, const bool probe_pass)
343 {
344 	const s64 imm_min = S32_MIN, imm_max = S32_MAX;
345 	s32 delta = end_new - end_old;
346 	s64 imm = insn->imm;
347 
348 	if (curr < pos && curr + imm + 1 >= end_old)
349 		imm += delta;
350 	else if (curr >= end_new && curr + imm + 1 < end_new)
351 		imm -= delta;
352 	if (imm < imm_min || imm > imm_max)
353 		return -ERANGE;
354 	if (!probe_pass)
355 		insn->imm = imm;
356 	return 0;
357 }
358 
359 static int bpf_adj_delta_to_off(struct bpf_insn *insn, u32 pos, s32 end_old,
360 				s32 end_new, s32 curr, const bool probe_pass)
361 {
362 	s64 off_min, off_max, off;
363 	s32 delta = end_new - end_old;
364 
365 	if (insn->code == (BPF_JMP32 | BPF_JA)) {
366 		off = insn->imm;
367 		off_min = S32_MIN;
368 		off_max = S32_MAX;
369 	} else {
370 		off = insn->off;
371 		off_min = S16_MIN;
372 		off_max = S16_MAX;
373 	}
374 
375 	if (curr < pos && curr + off + 1 >= end_old)
376 		off += delta;
377 	else if (curr >= end_new && curr + off + 1 < end_new)
378 		off -= delta;
379 	if (off < off_min || off > off_max)
380 		return -ERANGE;
381 	if (!probe_pass) {
382 		if (insn->code == (BPF_JMP32 | BPF_JA))
383 			insn->imm = off;
384 		else
385 			insn->off = off;
386 	}
387 	return 0;
388 }
389 
390 static int bpf_adj_branches(struct bpf_prog *prog, u32 pos, s32 end_old,
391 			    s32 end_new, const bool probe_pass)
392 {
393 	u32 i, insn_cnt = prog->len + (probe_pass ? end_new - end_old : 0);
394 	struct bpf_insn *insn = prog->insnsi;
395 	int ret = 0;
396 
397 	for (i = 0; i < insn_cnt; i++, insn++) {
398 		u8 code;
399 
400 		/* In the probing pass we still operate on the original,
401 		 * unpatched image in order to check overflows before we
402 		 * do any other adjustments. Therefore skip the patchlet.
403 		 */
404 		if (probe_pass && i == pos) {
405 			i = end_new;
406 			insn = prog->insnsi + end_old;
407 		}
408 		if (bpf_pseudo_func(insn)) {
409 			ret = bpf_adj_delta_to_imm(insn, pos, end_old,
410 						   end_new, i, probe_pass);
411 			if (ret)
412 				return ret;
413 			continue;
414 		}
415 		code = insn->code;
416 		if ((BPF_CLASS(code) != BPF_JMP &&
417 		     BPF_CLASS(code) != BPF_JMP32) ||
418 		    BPF_OP(code) == BPF_EXIT)
419 			continue;
420 		/* Adjust offset of jmps if we cross patch boundaries. */
421 		if (BPF_OP(code) == BPF_CALL) {
422 			if (insn->src_reg != BPF_PSEUDO_CALL)
423 				continue;
424 			ret = bpf_adj_delta_to_imm(insn, pos, end_old,
425 						   end_new, i, probe_pass);
426 		} else {
427 			ret = bpf_adj_delta_to_off(insn, pos, end_old,
428 						   end_new, i, probe_pass);
429 		}
430 		if (ret)
431 			break;
432 	}
433 
434 	return ret;
435 }
436 
437 static void bpf_adj_linfo(struct bpf_prog *prog, u32 off, u32 delta)
438 {
439 	struct bpf_line_info *linfo;
440 	u32 i, nr_linfo;
441 
442 	nr_linfo = prog->aux->nr_linfo;
443 	if (!nr_linfo || !delta)
444 		return;
445 
446 	linfo = prog->aux->linfo;
447 
448 	for (i = 0; i < nr_linfo; i++)
449 		if (off < linfo[i].insn_off)
450 			break;
451 
452 	/* Push all off < linfo[i].insn_off by delta */
453 	for (; i < nr_linfo; i++)
454 		linfo[i].insn_off += delta;
455 }
456 
457 struct bpf_prog *bpf_patch_insn_single(struct bpf_prog *prog, u32 off,
458 				       const struct bpf_insn *patch, u32 len)
459 {
460 	u32 insn_adj_cnt, insn_rest, insn_delta = len - 1;
461 	const u32 cnt_max = S16_MAX;
462 	struct bpf_prog *prog_adj;
463 	int err;
464 
465 	/* Since our patchlet doesn't expand the image, we're done. */
466 	if (insn_delta == 0) {
467 		memcpy(prog->insnsi + off, patch, sizeof(*patch));
468 		return prog;
469 	}
470 
471 	insn_adj_cnt = prog->len + insn_delta;
472 
473 	/* Reject anything that would potentially let the insn->off
474 	 * target overflow when we have excessive program expansions.
475 	 * We need to probe here before we do any reallocation where
476 	 * we afterwards may not fail anymore.
477 	 */
478 	if (insn_adj_cnt > cnt_max &&
479 	    (err = bpf_adj_branches(prog, off, off + 1, off + len, true)))
480 		return ERR_PTR(err);
481 
482 	/* Several new instructions need to be inserted. Make room
483 	 * for them. Likely, there's no need for a new allocation as
484 	 * last page could have large enough tailroom.
485 	 */
486 	prog_adj = bpf_prog_realloc(prog, bpf_prog_size(insn_adj_cnt),
487 				    GFP_USER);
488 	if (!prog_adj)
489 		return ERR_PTR(-ENOMEM);
490 
491 	prog_adj->len = insn_adj_cnt;
492 
493 	/* Patching happens in 3 steps:
494 	 *
495 	 * 1) Move over tail of insnsi from next instruction onwards,
496 	 *    so we can patch the single target insn with one or more
497 	 *    new ones (patching is always from 1 to n insns, n > 0).
498 	 * 2) Inject new instructions at the target location.
499 	 * 3) Adjust branch offsets if necessary.
500 	 */
501 	insn_rest = insn_adj_cnt - off - len;
502 
503 	memmove(prog_adj->insnsi + off + len, prog_adj->insnsi + off + 1,
504 		sizeof(*patch) * insn_rest);
505 	memcpy(prog_adj->insnsi + off, patch, sizeof(*patch) * len);
506 
507 	/* We are guaranteed to not fail at this point, otherwise
508 	 * the ship has sailed to reverse to the original state. An
509 	 * overflow cannot happen at this point.
510 	 */
511 	BUG_ON(bpf_adj_branches(prog_adj, off, off + 1, off + len, false));
512 
513 	bpf_adj_linfo(prog_adj, off, insn_delta);
514 
515 	return prog_adj;
516 }
517 
518 int bpf_remove_insns(struct bpf_prog *prog, u32 off, u32 cnt)
519 {
520 	int err;
521 
522 	/* Branch offsets can't overflow when program is shrinking, no need
523 	 * to call bpf_adj_branches(..., true) here
524 	 */
525 	memmove(prog->insnsi + off, prog->insnsi + off + cnt,
526 		sizeof(struct bpf_insn) * (prog->len - off - cnt));
527 	prog->len -= cnt;
528 
529 	err = bpf_adj_branches(prog, off, off + cnt, off, false);
530 	WARN_ON_ONCE(err);
531 	return err;
532 }
533 
534 static void bpf_prog_kallsyms_del_subprogs(struct bpf_prog *fp)
535 {
536 	int i;
537 
538 	for (i = 0; i < fp->aux->real_func_cnt; i++)
539 		bpf_prog_kallsyms_del(fp->aux->func[i]);
540 }
541 
542 void bpf_prog_kallsyms_del_all(struct bpf_prog *fp)
543 {
544 	bpf_prog_kallsyms_del_subprogs(fp);
545 	bpf_prog_kallsyms_del(fp);
546 }
547 
548 #ifdef CONFIG_BPF_JIT
549 /* All BPF JIT sysctl knobs here. */
550 int bpf_jit_enable   __read_mostly = IS_BUILTIN(CONFIG_BPF_JIT_DEFAULT_ON);
551 int bpf_jit_kallsyms __read_mostly = IS_BUILTIN(CONFIG_BPF_JIT_DEFAULT_ON);
552 int bpf_jit_harden   __read_mostly;
553 long bpf_jit_limit   __read_mostly;
554 long bpf_jit_limit_max __read_mostly;
555 
556 static void
557 bpf_prog_ksym_set_addr(struct bpf_prog *prog)
558 {
559 	WARN_ON_ONCE(!bpf_prog_ebpf_jited(prog));
560 
561 	prog->aux->ksym.start = (unsigned long) prog->bpf_func;
562 	prog->aux->ksym.end   = prog->aux->ksym.start + prog->jited_len;
563 }
564 
565 static void
566 bpf_prog_ksym_set_name(struct bpf_prog *prog)
567 {
568 	char *sym = prog->aux->ksym.name;
569 	const char *end = sym + KSYM_NAME_LEN;
570 	const struct btf_type *type;
571 	const char *func_name;
572 
573 	BUILD_BUG_ON(sizeof("bpf_prog_") +
574 		     sizeof(prog->tag) * 2 +
575 		     /* name has been null terminated.
576 		      * We should need +1 for the '_' preceding
577 		      * the name.  However, the null character
578 		      * is double counted between the name and the
579 		      * sizeof("bpf_prog_") above, so we omit
580 		      * the +1 here.
581 		      */
582 		     sizeof(prog->aux->name) > KSYM_NAME_LEN);
583 
584 	sym += snprintf(sym, KSYM_NAME_LEN, "bpf_prog_");
585 	sym  = bin2hex(sym, prog->tag, sizeof(prog->tag));
586 
587 	/* prog->aux->name will be ignored if full btf name is available */
588 	if (prog->aux->func_info_cnt && prog->aux->func_idx < prog->aux->func_info_cnt) {
589 		type = btf_type_by_id(prog->aux->btf,
590 				      prog->aux->func_info[prog->aux->func_idx].type_id);
591 		func_name = btf_name_by_offset(prog->aux->btf, type->name_off);
592 		snprintf(sym, (size_t)(end - sym), "_%s", func_name);
593 		return;
594 	}
595 
596 	if (prog->aux->name[0])
597 		snprintf(sym, (size_t)(end - sym), "_%s", prog->aux->name);
598 	else
599 		*sym = 0;
600 }
601 
602 static unsigned long bpf_get_ksym_start(struct latch_tree_node *n)
603 {
604 	return container_of(n, struct bpf_ksym, tnode)->start;
605 }
606 
607 static __always_inline bool bpf_tree_less(struct latch_tree_node *a,
608 					  struct latch_tree_node *b)
609 {
610 	return bpf_get_ksym_start(a) < bpf_get_ksym_start(b);
611 }
612 
613 static __always_inline int bpf_tree_comp(void *key, struct latch_tree_node *n)
614 {
615 	unsigned long val = (unsigned long)key;
616 	const struct bpf_ksym *ksym;
617 
618 	ksym = container_of(n, struct bpf_ksym, tnode);
619 
620 	if (val < ksym->start)
621 		return -1;
622 	/* Ensure that we detect return addresses as part of the program, when
623 	 * the final instruction is a call for a program part of the stack
624 	 * trace. Therefore, do val > ksym->end instead of val >= ksym->end.
625 	 */
626 	if (val > ksym->end)
627 		return  1;
628 
629 	return 0;
630 }
631 
632 static const struct latch_tree_ops bpf_tree_ops = {
633 	.less	= bpf_tree_less,
634 	.comp	= bpf_tree_comp,
635 };
636 
637 static DEFINE_SPINLOCK(bpf_lock);
638 static LIST_HEAD(bpf_kallsyms);
639 static struct latch_tree_root bpf_tree __cacheline_aligned;
640 
641 void bpf_ksym_add(struct bpf_ksym *ksym)
642 {
643 	spin_lock_bh(&bpf_lock);
644 	WARN_ON_ONCE(!list_empty(&ksym->lnode));
645 	list_add_tail_rcu(&ksym->lnode, &bpf_kallsyms);
646 	latch_tree_insert(&ksym->tnode, &bpf_tree, &bpf_tree_ops);
647 	spin_unlock_bh(&bpf_lock);
648 }
649 
650 static void __bpf_ksym_del(struct bpf_ksym *ksym)
651 {
652 	if (list_empty(&ksym->lnode))
653 		return;
654 
655 	latch_tree_erase(&ksym->tnode, &bpf_tree, &bpf_tree_ops);
656 	list_del_rcu(&ksym->lnode);
657 }
658 
659 void bpf_ksym_del(struct bpf_ksym *ksym)
660 {
661 	spin_lock_bh(&bpf_lock);
662 	__bpf_ksym_del(ksym);
663 	spin_unlock_bh(&bpf_lock);
664 }
665 
666 static bool bpf_prog_kallsyms_candidate(const struct bpf_prog *fp)
667 {
668 	return fp->jited && !bpf_prog_was_classic(fp);
669 }
670 
671 void bpf_prog_kallsyms_add(struct bpf_prog *fp)
672 {
673 	if (!bpf_prog_kallsyms_candidate(fp) ||
674 	    !bpf_token_capable(fp->aux->token, CAP_BPF))
675 		return;
676 
677 	bpf_prog_ksym_set_addr(fp);
678 	bpf_prog_ksym_set_name(fp);
679 	fp->aux->ksym.prog = true;
680 
681 	bpf_ksym_add(&fp->aux->ksym);
682 
683 #ifdef CONFIG_FINEIBT
684 	/*
685 	 * When FineIBT, code in the __cfi_foo() symbols can get executed
686 	 * and hence unwinder needs help.
687 	 */
688 	if (cfi_mode != CFI_FINEIBT)
689 		return;
690 
691 	snprintf(fp->aux->ksym_prefix.name, KSYM_NAME_LEN,
692 		 "__cfi_%s", fp->aux->ksym.name);
693 
694 	fp->aux->ksym_prefix.start = (unsigned long) fp->bpf_func - 16;
695 	fp->aux->ksym_prefix.end   = (unsigned long) fp->bpf_func;
696 
697 	bpf_ksym_add(&fp->aux->ksym_prefix);
698 #endif
699 }
700 
701 void bpf_prog_kallsyms_del(struct bpf_prog *fp)
702 {
703 	if (!bpf_prog_kallsyms_candidate(fp))
704 		return;
705 
706 	bpf_ksym_del(&fp->aux->ksym);
707 #ifdef CONFIG_FINEIBT
708 	if (cfi_mode != CFI_FINEIBT)
709 		return;
710 	bpf_ksym_del(&fp->aux->ksym_prefix);
711 #endif
712 }
713 
714 static struct bpf_ksym *bpf_ksym_find(unsigned long addr)
715 {
716 	struct latch_tree_node *n;
717 
718 	n = latch_tree_find((void *)addr, &bpf_tree, &bpf_tree_ops);
719 	return n ? container_of(n, struct bpf_ksym, tnode) : NULL;
720 }
721 
722 int bpf_address_lookup(unsigned long addr, unsigned long *size,
723 		       unsigned long *off, char *sym)
724 {
725 	struct bpf_ksym *ksym;
726 	int ret = 0;
727 
728 	rcu_read_lock();
729 	ksym = bpf_ksym_find(addr);
730 	if (ksym) {
731 		unsigned long symbol_start = ksym->start;
732 		unsigned long symbol_end = ksym->end;
733 
734 		ret = strscpy(sym, ksym->name, KSYM_NAME_LEN);
735 
736 		if (size)
737 			*size = symbol_end - symbol_start;
738 		if (off)
739 			*off  = addr - symbol_start;
740 	}
741 	rcu_read_unlock();
742 
743 	return ret;
744 }
745 
746 bool is_bpf_text_address(unsigned long addr)
747 {
748 	bool ret;
749 
750 	rcu_read_lock();
751 	ret = bpf_ksym_find(addr) != NULL;
752 	rcu_read_unlock();
753 
754 	return ret;
755 }
756 
757 struct bpf_prog *bpf_prog_ksym_find(unsigned long addr)
758 {
759 	struct bpf_ksym *ksym;
760 
761 	WARN_ON_ONCE(!rcu_read_lock_held());
762 	ksym = bpf_ksym_find(addr);
763 
764 	return ksym && ksym->prog ?
765 	       container_of(ksym, struct bpf_prog_aux, ksym)->prog :
766 	       NULL;
767 }
768 
769 bool bpf_has_frame_pointer(unsigned long ip)
770 {
771 	struct bpf_ksym *ksym;
772 	unsigned long offset;
773 
774 	guard(rcu)();
775 
776 	ksym = bpf_ksym_find(ip);
777 	if (!ksym || !ksym->fp_start || !ksym->fp_end)
778 		return false;
779 
780 	offset = ip - ksym->start;
781 
782 	return offset >= ksym->fp_start && offset < ksym->fp_end;
783 }
784 
785 const struct exception_table_entry *search_bpf_extables(unsigned long addr)
786 {
787 	const struct exception_table_entry *e = NULL;
788 	struct bpf_prog *prog;
789 
790 	rcu_read_lock();
791 	prog = bpf_prog_ksym_find(addr);
792 	if (!prog)
793 		goto out;
794 	if (!prog->aux->num_exentries)
795 		goto out;
796 
797 	e = search_extable(prog->aux->extable, prog->aux->num_exentries, addr);
798 out:
799 	rcu_read_unlock();
800 	return e;
801 }
802 
803 int bpf_get_kallsym(unsigned int symnum, unsigned long *value, char *type,
804 		    char *sym)
805 {
806 	struct bpf_ksym *ksym;
807 	unsigned int it = 0;
808 	int ret = -ERANGE;
809 
810 	if (!bpf_jit_kallsyms_enabled())
811 		return ret;
812 
813 	rcu_read_lock();
814 	list_for_each_entry_rcu(ksym, &bpf_kallsyms, lnode) {
815 		if (it++ != symnum)
816 			continue;
817 
818 		strscpy(sym, ksym->name, KSYM_NAME_LEN);
819 
820 		*value = ksym->start;
821 		*type  = BPF_SYM_ELF_TYPE;
822 
823 		ret = 0;
824 		break;
825 	}
826 	rcu_read_unlock();
827 
828 	return ret;
829 }
830 
831 int bpf_jit_add_poke_descriptor(struct bpf_prog *prog,
832 				struct bpf_jit_poke_descriptor *poke)
833 {
834 	struct bpf_jit_poke_descriptor *tab = prog->aux->poke_tab;
835 	static const u32 poke_tab_max = 1024;
836 	u32 slot = prog->aux->size_poke_tab;
837 	u32 size = slot + 1;
838 
839 	if (size > poke_tab_max)
840 		return -ENOSPC;
841 	if (poke->tailcall_target || poke->tailcall_target_stable ||
842 	    poke->tailcall_bypass || poke->adj_off || poke->bypass_addr)
843 		return -EINVAL;
844 
845 	switch (poke->reason) {
846 	case BPF_POKE_REASON_TAIL_CALL:
847 		if (!poke->tail_call.map)
848 			return -EINVAL;
849 		break;
850 	default:
851 		return -EINVAL;
852 	}
853 
854 	tab = krealloc_array(tab, size, sizeof(*poke), GFP_KERNEL);
855 	if (!tab)
856 		return -ENOMEM;
857 
858 	memcpy(&tab[slot], poke, sizeof(*poke));
859 	prog->aux->size_poke_tab = size;
860 	prog->aux->poke_tab = tab;
861 
862 	return slot;
863 }
864 
865 /*
866  * BPF program pack allocator.
867  *
868  * Most BPF programs are pretty small. Allocating a hole page for each
869  * program is sometime a waste. Many small bpf program also adds pressure
870  * to instruction TLB. To solve this issue, we introduce a BPF program pack
871  * allocator. The prog_pack allocator uses HPAGE_PMD_SIZE page (2MB on x86)
872  * to host BPF programs.
873  */
874 #define BPF_PROG_CHUNK_SHIFT	6
875 #define BPF_PROG_CHUNK_SIZE	(1 << BPF_PROG_CHUNK_SHIFT)
876 #define BPF_PROG_CHUNK_MASK	(~(BPF_PROG_CHUNK_SIZE - 1))
877 
878 struct bpf_prog_pack {
879 	struct list_head list;
880 	void *ptr;
881 	bool arch_flush_needed;
882 	unsigned long bitmap[];
883 };
884 
885 void bpf_jit_fill_hole_with_zero(void *area, unsigned int size)
886 {
887 	memset(area, 0, size);
888 }
889 
890 DEFINE_STATIC_CALL_NULL(bpf_arch_pred_flush, bpf_arch_pred_flush);
891 
892 /*
893  * Enabled once bpf_arch_pred_flush points at a real flush routine. Lets the
894  * pack allocator test "is a predictor flush wired up at all" with a cheap
895  * static branch instead of repeatedly querying the static call target.
896  */
897 DEFINE_STATIC_KEY_FALSE(bpf_pred_flush_enabled);
898 
899 #define BPF_PROG_SIZE_TO_NBITS(size)	(round_up(size, BPF_PROG_CHUNK_SIZE) / BPF_PROG_CHUNK_SIZE)
900 
901 static DEFINE_MUTEX(pack_mutex);
902 static LIST_HEAD(pack_list);
903 
904 /* PMD_SIZE is not available in some special config, e.g. ARCH=arm with
905  * CONFIG_MMU=n. Use PAGE_SIZE in these cases.
906  */
907 #ifdef PMD_SIZE
908 /* PMD_SIZE is really big for some archs. It doesn't make sense to
909  * reserve too much memory in one allocation. Hardcode BPF_PROG_PACK_SIZE to
910  * 2MiB * num_possible_nodes(). On most architectures PMD_SIZE will be
911  * greater than or equal to 2MB.
912  */
913 #define BPF_PROG_PACK_SIZE (SZ_2M * num_possible_nodes())
914 #else
915 #define BPF_PROG_PACK_SIZE PAGE_SIZE
916 #endif
917 
918 #define BPF_PROG_CHUNK_COUNT (BPF_PROG_PACK_SIZE / BPF_PROG_CHUNK_SIZE)
919 
920 static bool bpf_jit_mem_is_rox(void)
921 {
922 	return execmem_is_rox(EXECMEM_BPF);
923 }
924 
925 static struct bpf_prog_pack *alloc_new_pack(bpf_jit_fill_hole_t bpf_fill_ill_insns)
926 {
927 	struct bpf_prog_pack *pack;
928 	int err;
929 
930 	pack = kzalloc_flex(*pack, bitmap, BITS_TO_LONGS(BPF_PROG_CHUNK_COUNT));
931 	if (!pack)
932 		return NULL;
933 	pack->ptr = bpf_jit_alloc_exec(BPF_PROG_PACK_SIZE);
934 	if (!pack->ptr)
935 		goto out;
936 	bitmap_zero(pack->bitmap, BPF_PROG_PACK_SIZE / BPF_PROG_CHUNK_SIZE);
937 
938 	if (static_branch_unlikely(&bpf_pred_flush_enabled))
939 		pack->arch_flush_needed = true;
940 	if (!bpf_jit_mem_is_rox()) {
941 		bpf_fill_ill_insns(pack->ptr, BPF_PROG_PACK_SIZE);
942 		set_vm_flush_reset_perms(pack->ptr);
943 		err = set_memory_rox((unsigned long)pack->ptr,
944 				     BPF_PROG_PACK_SIZE / PAGE_SIZE);
945 		if (err)
946 			goto out;
947 	}
948 	list_add_tail(&pack->list, &pack_list);
949 	return pack;
950 
951 out:
952 	bpf_jit_free_exec(pack->ptr);
953 	kfree(pack);
954 	return NULL;
955 }
956 
957 void *bpf_prog_pack_alloc(u32 size, bpf_jit_fill_hole_t bpf_fill_ill_insns, bool was_classic)
958 {
959 	unsigned int nbits = BPF_PROG_SIZE_TO_NBITS(size);
960 	struct bpf_prog_pack *pack, *fallback_pack = NULL;
961 	unsigned long pos, fallback_pos = 0;
962 	void *ptr = NULL;
963 
964 	mutex_lock(&pack_mutex);
965 	if (size > BPF_PROG_PACK_SIZE) {
966 		/*
967 		 * Allocations larger than a pack get their own pages, and
968 		 * predictors are not flushed for such allocation. This is only
969 		 * safe because cBPF programs (the unprivileged attack surface)
970 		 * are bounded well below a pack size.
971 		 */
972 		if (was_classic && static_branch_unlikely(&bpf_pred_flush_enabled))
973 			pr_warn_once("BPF: Predictors not flushed for allocations greater than BPF_PROG_PACK_SIZE\n");
974 		size = round_up(size, PAGE_SIZE);
975 		ptr = bpf_jit_alloc_exec(size);
976 		if (ptr && !bpf_jit_mem_is_rox()) {
977 			int err;
978 
979 			bpf_fill_ill_insns(ptr, size);
980 			set_vm_flush_reset_perms(ptr);
981 			err = set_memory_rox((unsigned long)ptr,
982 					     size / PAGE_SIZE);
983 			if (err) {
984 				bpf_jit_free_exec(ptr);
985 				ptr = NULL;
986 			}
987 		}
988 		goto out;
989 	}
990 	list_for_each_entry(pack, &pack_list, list) {
991 		pos = bitmap_find_next_zero_area(pack->bitmap, BPF_PROG_CHUNK_COUNT, 0,
992 						 nbits, 0);
993 		if (pos >= BPF_PROG_CHUNK_COUNT)
994 			continue;
995 		/* Flush not enabled, use any pack */
996 		if (!static_branch_unlikely(&bpf_pred_flush_enabled))
997 			goto found_free_area;
998 		/*
999 		 * cBPF reuse of a dirty pack triggers a flush, so prefer a
1000 		 * clean pack for cBPF. eBPF never flushes, so steer it to a
1001 		 * dirty pack and keep clean packs free for cBPF.
1002 		 */
1003 		if (was_classic ^ pack->arch_flush_needed)
1004 			goto found_free_area;
1005 		if (!fallback_pack) {
1006 			fallback_pack = pack;
1007 			fallback_pos = pos;
1008 		}
1009 	}
1010 
1011 	/* No preferred pack found */
1012 	if (fallback_pack) {
1013 		pack = fallback_pack;
1014 		pos = fallback_pos;
1015 		goto found_free_area;
1016 	}
1017 
1018 	pack = alloc_new_pack(bpf_fill_ill_insns);
1019 	if (!pack)
1020 		goto out;
1021 
1022 	pos = 0;
1023 
1024 found_free_area:
1025 	/* Flush only for cBPF as it may contain a crafted gadget */
1026 	if (static_branch_unlikely(&bpf_pred_flush_enabled) &&
1027 	    pack->arch_flush_needed &&
1028 	    was_classic) {
1029 		struct bpf_prog_pack *p;
1030 
1031 		static_call_cond(bpf_arch_pred_flush)();
1032 		list_for_each_entry(p, &pack_list, list)
1033 			p->arch_flush_needed = false;
1034 	}
1035 	bitmap_set(pack->bitmap, pos, nbits);
1036 	ptr = (void *)(pack->ptr) + (pos << BPF_PROG_CHUNK_SHIFT);
1037 
1038 out:
1039 	mutex_unlock(&pack_mutex);
1040 	return ptr;
1041 }
1042 
1043 void bpf_prog_pack_free(void *ptr, u32 size)
1044 {
1045 	struct bpf_prog_pack *pack = NULL, *tmp;
1046 	unsigned int nbits;
1047 	unsigned long pos;
1048 
1049 	mutex_lock(&pack_mutex);
1050 	if (size > BPF_PROG_PACK_SIZE) {
1051 		bpf_jit_free_exec(ptr);
1052 		goto out;
1053 	}
1054 
1055 	list_for_each_entry(tmp, &pack_list, list) {
1056 		if (ptr >= tmp->ptr && (tmp->ptr + BPF_PROG_PACK_SIZE) > ptr) {
1057 			pack = tmp;
1058 			break;
1059 		}
1060 	}
1061 
1062 	if (WARN_ONCE(!pack, "bpf_prog_pack bug\n"))
1063 		goto out;
1064 
1065 	nbits = BPF_PROG_SIZE_TO_NBITS(size);
1066 	pos = ((unsigned long)ptr - (unsigned long)pack->ptr) >> BPF_PROG_CHUNK_SHIFT;
1067 
1068 	WARN_ONCE(bpf_arch_text_invalidate(ptr, size),
1069 		  "bpf_prog_pack bug: missing bpf_arch_text_invalidate?\n");
1070 
1071 	bitmap_clear(pack->bitmap, pos, nbits);
1072 
1073 	if (static_branch_unlikely(&bpf_pred_flush_enabled))
1074 		pack->arch_flush_needed = true;
1075 	if (bitmap_find_next_zero_area(pack->bitmap, BPF_PROG_CHUNK_COUNT, 0,
1076 				       BPF_PROG_CHUNK_COUNT, 0) == 0) {
1077 		list_del(&pack->list);
1078 		bpf_jit_free_exec(pack->ptr);
1079 		kfree(pack);
1080 	}
1081 out:
1082 	mutex_unlock(&pack_mutex);
1083 }
1084 
1085 static atomic_long_t bpf_jit_current;
1086 
1087 /* Can be overridden by an arch's JIT compiler if it has a custom,
1088  * dedicated BPF backend memory area, or if neither of the two
1089  * below apply.
1090  */
1091 u64 __weak bpf_jit_alloc_exec_limit(void)
1092 {
1093 #if defined(MODULES_VADDR)
1094 	return MODULES_END - MODULES_VADDR;
1095 #else
1096 	return VMALLOC_END - VMALLOC_START;
1097 #endif
1098 }
1099 
1100 static int __init bpf_jit_charge_init(void)
1101 {
1102 	/* Only used as heuristic here to derive limit. */
1103 	bpf_jit_limit_max = bpf_jit_alloc_exec_limit();
1104 	bpf_jit_limit = min_t(u64, round_up(bpf_jit_limit_max >> 1,
1105 					    PAGE_SIZE), LONG_MAX);
1106 	return 0;
1107 }
1108 pure_initcall(bpf_jit_charge_init);
1109 
1110 int bpf_jit_charge_modmem(u32 size)
1111 {
1112 	if (atomic_long_add_return(size, &bpf_jit_current) > READ_ONCE(bpf_jit_limit)) {
1113 		if (!bpf_capable()) {
1114 			atomic_long_sub(size, &bpf_jit_current);
1115 			return -EPERM;
1116 		}
1117 	}
1118 
1119 	return 0;
1120 }
1121 
1122 void bpf_jit_uncharge_modmem(u32 size)
1123 {
1124 	atomic_long_sub(size, &bpf_jit_current);
1125 }
1126 
1127 void *bpf_jit_alloc_exec(unsigned long size)
1128 {
1129 	return execmem_alloc(EXECMEM_BPF, size);
1130 }
1131 
1132 void bpf_jit_free_exec(void *addr)
1133 {
1134 	execmem_free(addr);
1135 }
1136 
1137 struct bpf_binary_header *
1138 bpf_jit_binary_alloc(unsigned int proglen, u8 **image_ptr,
1139 		     unsigned int alignment,
1140 		     bpf_jit_fill_hole_t bpf_fill_ill_insns)
1141 {
1142 	struct bpf_binary_header *hdr;
1143 	u32 size, hole, start;
1144 
1145 	WARN_ON_ONCE(!is_power_of_2(alignment) ||
1146 		     alignment > BPF_IMAGE_ALIGNMENT);
1147 
1148 	/* Most of BPF filters are really small, but if some of them
1149 	 * fill a page, allow at least 128 extra bytes to insert a
1150 	 * random section of illegal instructions.
1151 	 */
1152 	size = round_up(proglen + sizeof(*hdr) + 128, PAGE_SIZE);
1153 
1154 	if (bpf_jit_charge_modmem(size))
1155 		return NULL;
1156 	hdr = bpf_jit_alloc_exec(size);
1157 	if (!hdr) {
1158 		bpf_jit_uncharge_modmem(size);
1159 		return NULL;
1160 	}
1161 
1162 	/* Fill space with illegal/arch-dep instructions. */
1163 	bpf_fill_ill_insns(hdr, size);
1164 
1165 	hdr->size = size;
1166 	hole = min_t(unsigned int, size - (proglen + sizeof(*hdr)),
1167 		     PAGE_SIZE - sizeof(*hdr));
1168 	start = get_random_u32_below(hole) & ~(alignment - 1);
1169 
1170 	/* Leave a random number of instructions before BPF code. */
1171 	*image_ptr = &hdr->image[start];
1172 
1173 	return hdr;
1174 }
1175 
1176 void bpf_jit_binary_free(struct bpf_binary_header *hdr)
1177 {
1178 	u32 size = hdr->size;
1179 
1180 	bpf_jit_free_exec(hdr);
1181 	bpf_jit_uncharge_modmem(size);
1182 }
1183 
1184 /* Allocate jit binary from bpf_prog_pack allocator.
1185  * Since the allocated memory is RO+X, the JIT engine cannot write directly
1186  * to the memory. To solve this problem, a RW buffer is also allocated at
1187  * as the same time. The JIT engine should calculate offsets based on the
1188  * RO memory address, but write JITed program to the RW buffer. Once the
1189  * JIT engine finishes, it calls bpf_jit_binary_pack_finalize, which copies
1190  * the JITed program to the RO memory.
1191  */
1192 struct bpf_binary_header *
1193 bpf_jit_binary_pack_alloc(unsigned int proglen, u8 **image_ptr,
1194 			  unsigned int alignment,
1195 			  struct bpf_binary_header **rw_header,
1196 			  u8 **rw_image,
1197 			  bpf_jit_fill_hole_t bpf_fill_ill_insns,
1198 			  bool was_classic)
1199 {
1200 	struct bpf_binary_header *ro_header;
1201 	u32 size, hole, start;
1202 
1203 	WARN_ON_ONCE(!is_power_of_2(alignment) ||
1204 		     alignment > BPF_IMAGE_ALIGNMENT);
1205 
1206 	/* add 16 bytes for a random section of illegal instructions */
1207 	size = round_up(proglen + sizeof(*ro_header) + 16, BPF_PROG_CHUNK_SIZE);
1208 
1209 	if (bpf_jit_charge_modmem(size))
1210 		return NULL;
1211 	ro_header = bpf_prog_pack_alloc(size, bpf_fill_ill_insns, was_classic);
1212 	if (!ro_header) {
1213 		bpf_jit_uncharge_modmem(size);
1214 		return NULL;
1215 	}
1216 
1217 	*rw_header = kvmalloc(size, GFP_KERNEL);
1218 	if (!*rw_header) {
1219 		bpf_prog_pack_free(ro_header, size);
1220 		bpf_jit_uncharge_modmem(size);
1221 		return NULL;
1222 	}
1223 
1224 	/* Fill space with illegal/arch-dep instructions. */
1225 	bpf_fill_ill_insns(*rw_header, size);
1226 	(*rw_header)->size = size;
1227 
1228 	hole = min_t(unsigned int, size - (proglen + sizeof(*ro_header)),
1229 		     BPF_PROG_CHUNK_SIZE - sizeof(*ro_header));
1230 	start = get_random_u32_below(hole) & ~(alignment - 1);
1231 
1232 	*image_ptr = &ro_header->image[start];
1233 	*rw_image = &(*rw_header)->image[start];
1234 
1235 	return ro_header;
1236 }
1237 
1238 /* Copy JITed text from rw_header to its final location, the ro_header. */
1239 int bpf_jit_binary_pack_finalize(struct bpf_binary_header *ro_header,
1240 				 struct bpf_binary_header *rw_header)
1241 {
1242 	void *ptr;
1243 
1244 	ptr = bpf_arch_text_copy(ro_header, rw_header, rw_header->size);
1245 
1246 	kvfree(rw_header);
1247 
1248 	if (IS_ERR(ptr)) {
1249 		bpf_prog_pack_free(ro_header, ro_header->size);
1250 		return PTR_ERR(ptr);
1251 	}
1252 	return 0;
1253 }
1254 
1255 /* bpf_jit_binary_pack_free is called in two different scenarios:
1256  *   1) when the program is freed after;
1257  *   2) when the JIT engine fails (before bpf_jit_binary_pack_finalize).
1258  * For case 2), we need to free both the RO memory and the RW buffer.
1259  *
1260  * bpf_jit_binary_pack_free requires proper ro_header->size. However,
1261  * bpf_jit_binary_pack_alloc does not set it. Therefore, ro_header->size
1262  * must be set with either bpf_jit_binary_pack_finalize (normal path) or
1263  * bpf_arch_text_copy (when jit fails).
1264  */
1265 void bpf_jit_binary_pack_free(struct bpf_binary_header *ro_header,
1266 			      struct bpf_binary_header *rw_header)
1267 {
1268 	u32 size = ro_header->size;
1269 
1270 	bpf_prog_pack_free(ro_header, size);
1271 	kvfree(rw_header);
1272 	bpf_jit_uncharge_modmem(size);
1273 }
1274 
1275 struct bpf_binary_header *
1276 bpf_jit_binary_pack_hdr(const struct bpf_prog *fp)
1277 {
1278 	unsigned long real_start = (unsigned long)fp->bpf_func;
1279 	unsigned long addr;
1280 
1281 	addr = real_start & BPF_PROG_CHUNK_MASK;
1282 	return (void *)addr;
1283 }
1284 
1285 static inline struct bpf_binary_header *
1286 bpf_jit_binary_hdr(const struct bpf_prog *fp)
1287 {
1288 	unsigned long real_start = (unsigned long)fp->bpf_func;
1289 	unsigned long addr;
1290 
1291 	addr = real_start & PAGE_MASK;
1292 	return (void *)addr;
1293 }
1294 
1295 /* This symbol is only overridden by archs that have different
1296  * requirements than the usual eBPF JITs, f.e. when they only
1297  * implement cBPF JIT, do not set images read-only, etc.
1298  */
1299 void __weak bpf_jit_free(struct bpf_prog *fp)
1300 {
1301 	if (fp->jited) {
1302 		struct bpf_binary_header *hdr = bpf_jit_binary_hdr(fp);
1303 
1304 		bpf_jit_binary_free(hdr);
1305 		WARN_ON_ONCE(!bpf_prog_kallsyms_verify_off(fp));
1306 	}
1307 
1308 	bpf_prog_unlock_free(fp);
1309 }
1310 
1311 int bpf_jit_get_func_addr(const struct bpf_prog *prog,
1312 			  const struct bpf_insn *insn, bool extra_pass,
1313 			  u64 *func_addr, bool *func_addr_fixed)
1314 {
1315 	s16 off = insn->off;
1316 	s32 imm = insn->imm;
1317 	u8 *addr;
1318 	int err;
1319 
1320 	*func_addr_fixed = insn->src_reg != BPF_PSEUDO_CALL;
1321 	if (!*func_addr_fixed) {
1322 		/* Place-holder address till the last pass has collected
1323 		 * all addresses for JITed subprograms in which case we
1324 		 * can pick them up from prog->aux.
1325 		 */
1326 		if (!extra_pass)
1327 			addr = NULL;
1328 		else if (prog->aux->func &&
1329 			 off >= 0 && off < prog->aux->real_func_cnt)
1330 			addr = (u8 *)prog->aux->func[off]->bpf_func;
1331 		else
1332 			return -EINVAL;
1333 	} else if (insn->src_reg == BPF_PSEUDO_KFUNC_CALL &&
1334 		   bpf_jit_supports_far_kfunc_call()) {
1335 		err = bpf_get_kfunc_addr(prog, insn->imm, insn->off, &addr);
1336 		if (err)
1337 			return err;
1338 	} else {
1339 		/* Address of a BPF helper call. Since part of the core
1340 		 * kernel, it's always at a fixed location. __bpf_call_base
1341 		 * and the helper with imm relative to it are both in core
1342 		 * kernel.
1343 		 */
1344 		addr = (u8 *)__bpf_call_base + imm;
1345 	}
1346 
1347 	*func_addr = (unsigned long)addr;
1348 	return 0;
1349 }
1350 
1351 const char *bpf_jit_get_prog_name(struct bpf_prog *prog)
1352 {
1353 	if (prog->aux->ksym.prog)
1354 		return prog->aux->ksym.name;
1355 	return prog->aux->name;
1356 }
1357 
1358 static int bpf_jit_blind_insn(const struct bpf_insn *from,
1359 			      const struct bpf_insn *aux,
1360 			      struct bpf_insn *to_buff,
1361 			      bool emit_zext)
1362 {
1363 	struct bpf_insn *to = to_buff;
1364 	u32 imm_rnd = get_random_u32();
1365 	s16 off;
1366 
1367 	BUILD_BUG_ON(BPF_REG_PARAMS + 2 != MAX_BPF_JIT_REG);
1368 	BUILD_BUG_ON(BPF_REG_AX + 1 != MAX_BPF_JIT_REG);
1369 
1370 	/* Constraints on AX register:
1371 	 *
1372 	 * AX register is inaccessible from user space. It is mapped in
1373 	 * all JITs, and used here for constant blinding rewrites. It is
1374 	 * typically "stateless" meaning its contents are only valid within
1375 	 * the executed instruction, but not across several instructions.
1376 	 * There are a few exceptions however which are further detailed
1377 	 * below.
1378 	 *
1379 	 * Constant blinding is only used by JITs, not in the interpreter.
1380 	 * The interpreter uses AX in some occasions as a local temporary
1381 	 * register e.g. in DIV or MOD instructions.
1382 	 *
1383 	 * In restricted circumstances, the verifier can also use the AX
1384 	 * register for rewrites as long as they do not interfere with
1385 	 * the above cases!
1386 	 */
1387 	if (from->dst_reg == BPF_REG_AX || from->src_reg == BPF_REG_AX)
1388 		goto out;
1389 
1390 	if (from->imm == 0 &&
1391 	    (from->code == (BPF_ALU   | BPF_MOV | BPF_K) ||
1392 	     from->code == (BPF_ALU64 | BPF_MOV | BPF_K))) {
1393 		*to++ = BPF_ALU64_REG(BPF_XOR, from->dst_reg, from->dst_reg);
1394 		goto out;
1395 	}
1396 
1397 	switch (from->code) {
1398 	case BPF_ALU | BPF_ADD | BPF_K:
1399 	case BPF_ALU | BPF_SUB | BPF_K:
1400 	case BPF_ALU | BPF_AND | BPF_K:
1401 	case BPF_ALU | BPF_OR  | BPF_K:
1402 	case BPF_ALU | BPF_XOR | BPF_K:
1403 	case BPF_ALU | BPF_MUL | BPF_K:
1404 	case BPF_ALU | BPF_MOV | BPF_K:
1405 	case BPF_ALU | BPF_DIV | BPF_K:
1406 	case BPF_ALU | BPF_MOD | BPF_K:
1407 		*to++ = BPF_ALU32_IMM(BPF_MOV, BPF_REG_AX, imm_rnd ^ from->imm);
1408 		*to++ = BPF_ALU32_IMM(BPF_XOR, BPF_REG_AX, imm_rnd);
1409 		*to++ = BPF_ALU32_REG_OFF(from->code, from->dst_reg, BPF_REG_AX, from->off);
1410 		break;
1411 
1412 	case BPF_ALU64 | BPF_ADD | BPF_K:
1413 	case BPF_ALU64 | BPF_SUB | BPF_K:
1414 	case BPF_ALU64 | BPF_AND | BPF_K:
1415 	case BPF_ALU64 | BPF_OR  | BPF_K:
1416 	case BPF_ALU64 | BPF_XOR | BPF_K:
1417 	case BPF_ALU64 | BPF_MUL | BPF_K:
1418 	case BPF_ALU64 | BPF_MOV | BPF_K:
1419 	case BPF_ALU64 | BPF_DIV | BPF_K:
1420 	case BPF_ALU64 | BPF_MOD | BPF_K:
1421 		*to++ = BPF_ALU64_IMM(BPF_MOV, BPF_REG_AX, imm_rnd ^ from->imm);
1422 		*to++ = BPF_ALU64_IMM(BPF_XOR, BPF_REG_AX, imm_rnd);
1423 		*to++ = BPF_ALU64_REG_OFF(from->code, from->dst_reg, BPF_REG_AX, from->off);
1424 		break;
1425 
1426 	case BPF_JMP | BPF_JEQ  | BPF_K:
1427 	case BPF_JMP | BPF_JNE  | BPF_K:
1428 	case BPF_JMP | BPF_JGT  | BPF_K:
1429 	case BPF_JMP | BPF_JLT  | BPF_K:
1430 	case BPF_JMP | BPF_JGE  | BPF_K:
1431 	case BPF_JMP | BPF_JLE  | BPF_K:
1432 	case BPF_JMP | BPF_JSGT | BPF_K:
1433 	case BPF_JMP | BPF_JSLT | BPF_K:
1434 	case BPF_JMP | BPF_JSGE | BPF_K:
1435 	case BPF_JMP | BPF_JSLE | BPF_K:
1436 	case BPF_JMP | BPF_JSET | BPF_K:
1437 		/* Accommodate for extra offset in case of a backjump. */
1438 		off = from->off;
1439 		if (off < 0)
1440 			off -= 2;
1441 		*to++ = BPF_ALU64_IMM(BPF_MOV, BPF_REG_AX, imm_rnd ^ from->imm);
1442 		*to++ = BPF_ALU64_IMM(BPF_XOR, BPF_REG_AX, imm_rnd);
1443 		*to++ = BPF_JMP_REG(from->code, from->dst_reg, BPF_REG_AX, off);
1444 		break;
1445 
1446 	case BPF_JMP32 | BPF_JEQ  | BPF_K:
1447 	case BPF_JMP32 | BPF_JNE  | BPF_K:
1448 	case BPF_JMP32 | BPF_JGT  | BPF_K:
1449 	case BPF_JMP32 | BPF_JLT  | BPF_K:
1450 	case BPF_JMP32 | BPF_JGE  | BPF_K:
1451 	case BPF_JMP32 | BPF_JLE  | BPF_K:
1452 	case BPF_JMP32 | BPF_JSGT | BPF_K:
1453 	case BPF_JMP32 | BPF_JSLT | BPF_K:
1454 	case BPF_JMP32 | BPF_JSGE | BPF_K:
1455 	case BPF_JMP32 | BPF_JSLE | BPF_K:
1456 	case BPF_JMP32 | BPF_JSET | BPF_K:
1457 		/* Accommodate for extra offset in case of a backjump. */
1458 		off = from->off;
1459 		if (off < 0)
1460 			off -= 2;
1461 		*to++ = BPF_ALU32_IMM(BPF_MOV, BPF_REG_AX, imm_rnd ^ from->imm);
1462 		*to++ = BPF_ALU32_IMM(BPF_XOR, BPF_REG_AX, imm_rnd);
1463 		*to++ = BPF_JMP32_REG(from->code, from->dst_reg, BPF_REG_AX,
1464 				      off);
1465 		break;
1466 
1467 	case BPF_LD | BPF_IMM | BPF_DW:
1468 		*to++ = BPF_ALU64_IMM(BPF_MOV, BPF_REG_AX, imm_rnd ^ aux[1].imm);
1469 		*to++ = BPF_ALU64_IMM(BPF_XOR, BPF_REG_AX, imm_rnd);
1470 		*to++ = BPF_ALU64_IMM(BPF_LSH, BPF_REG_AX, 32);
1471 		*to++ = BPF_ALU64_REG(BPF_MOV, aux[0].dst_reg, BPF_REG_AX);
1472 		break;
1473 	case 0: /* Part 2 of BPF_LD | BPF_IMM | BPF_DW. */
1474 		*to++ = BPF_ALU32_IMM(BPF_MOV, BPF_REG_AX, imm_rnd ^ aux[0].imm);
1475 		*to++ = BPF_ALU32_IMM(BPF_XOR, BPF_REG_AX, imm_rnd);
1476 		if (emit_zext)
1477 			*to++ = BPF_ZEXT_REG(BPF_REG_AX);
1478 		*to++ = BPF_ALU64_REG(BPF_OR,  aux[0].dst_reg, BPF_REG_AX);
1479 		break;
1480 
1481 	case BPF_ST | BPF_MEM | BPF_DW:
1482 	case BPF_ST | BPF_MEM | BPF_W:
1483 	case BPF_ST | BPF_MEM | BPF_H:
1484 	case BPF_ST | BPF_MEM | BPF_B:
1485 		*to++ = BPF_ALU64_IMM(BPF_MOV, BPF_REG_AX, imm_rnd ^ from->imm);
1486 		*to++ = BPF_ALU64_IMM(BPF_XOR, BPF_REG_AX, imm_rnd);
1487 		*to++ = BPF_STX_MEM(from->code, from->dst_reg, BPF_REG_AX, from->off);
1488 		break;
1489 
1490 	case BPF_ST | BPF_PROBE_MEM32 | BPF_DW:
1491 	case BPF_ST | BPF_PROBE_MEM32 | BPF_W:
1492 	case BPF_ST | BPF_PROBE_MEM32 | BPF_H:
1493 	case BPF_ST | BPF_PROBE_MEM32 | BPF_B:
1494 		*to++ = BPF_ALU64_IMM(BPF_MOV, BPF_REG_AX, imm_rnd ^
1495 				      from->imm);
1496 		*to++ = BPF_ALU64_IMM(BPF_XOR, BPF_REG_AX, imm_rnd);
1497 		/*
1498 		 * Cannot use BPF_STX_MEM() macro here as it
1499 		 * hardcodes BPF_MEM mode, losing PROBE_MEM32
1500 		 * and breaking arena addressing in the JIT.
1501 		 */
1502 		*to++ = (struct bpf_insn) {
1503 			.code  = BPF_STX | BPF_PROBE_MEM32 |
1504 				 BPF_SIZE(from->code),
1505 			.dst_reg = from->dst_reg,
1506 			.src_reg = BPF_REG_AX,
1507 			.off   = from->off,
1508 		};
1509 		break;
1510 	}
1511 out:
1512 	return to - to_buff;
1513 }
1514 
1515 static struct bpf_prog *bpf_prog_clone_create(struct bpf_prog *fp_other,
1516 					      gfp_t gfp_extra_flags)
1517 {
1518 	gfp_t gfp_flags = GFP_KERNEL | __GFP_ZERO | gfp_extra_flags;
1519 	struct bpf_prog *fp;
1520 
1521 	fp = __vmalloc(fp_other->pages * PAGE_SIZE, gfp_flags);
1522 	if (fp != NULL) {
1523 		/* aux->prog still points to the fp_other one, so
1524 		 * when promoting the clone to the real program,
1525 		 * this still needs to be adapted.
1526 		 */
1527 		memcpy(fp, fp_other, fp_other->pages * PAGE_SIZE);
1528 	}
1529 
1530 	return fp;
1531 }
1532 
1533 static void bpf_prog_clone_free(struct bpf_prog *fp)
1534 {
1535 	/* aux was stolen by the other clone, so we cannot free
1536 	 * it from this path! It will be freed eventually by the
1537 	 * other program on release.
1538 	 *
1539 	 * At this point, we don't need a deferred release since
1540 	 * clone is guaranteed to not be locked.
1541 	 */
1542 	fp->aux = NULL;
1543 	fp->stats = NULL;
1544 	fp->active = NULL;
1545 	__bpf_prog_free(fp);
1546 }
1547 
1548 void bpf_jit_prog_release_other(struct bpf_prog *fp, struct bpf_prog *fp_other)
1549 {
1550 	/* We have to repoint aux->prog to self, as we don't
1551 	 * know whether fp here is the clone or the original.
1552 	 */
1553 	fp->aux->prog = fp;
1554 	if (fp->aux->offload)
1555 		fp->aux->offload->prog = fp;
1556 	bpf_prog_clone_free(fp_other);
1557 }
1558 
1559 /*
1560  * Now this function is used only to blind the main prog and must be invoked only when
1561  * bpf_prog_need_blind() returns true.
1562  */
1563 struct bpf_prog *bpf_jit_blind_constants(struct bpf_verifier_env *env, struct bpf_prog *prog)
1564 {
1565 	struct bpf_insn insn_buff[16], aux[2];
1566 	struct bpf_prog *clone, *tmp;
1567 	int insn_delta, insn_cnt;
1568 	struct bpf_insn *insn;
1569 	int i, rewritten;
1570 
1571 	if (WARN_ON_ONCE(env && env->prog != prog))
1572 		return ERR_PTR(-EINVAL);
1573 
1574 	clone = bpf_prog_clone_create(prog, GFP_USER);
1575 	if (!clone)
1576 		return ERR_PTR(-ENOMEM);
1577 
1578 	/* make sure bpf_patch_insn_data() patches the correct prog */
1579 	if (env)
1580 		env->prog = clone;
1581 
1582 	insn_cnt = clone->len;
1583 	insn = clone->insnsi;
1584 
1585 	for (i = 0; i < insn_cnt; i++, insn++) {
1586 		if (bpf_pseudo_func(insn)) {
1587 			/* ld_imm64 with an address of bpf subprog is not
1588 			 * a user controlled constant. Don't randomize it,
1589 			 * since it will conflict with jit_subprogs() logic.
1590 			 */
1591 			insn++;
1592 			i++;
1593 			continue;
1594 		}
1595 
1596 		/* We temporarily need to hold the original ld64 insn
1597 		 * so that we can still access the first part in the
1598 		 * second blinding run.
1599 		 */
1600 		if (insn[0].code == (BPF_LD | BPF_IMM | BPF_DW) &&
1601 		    insn[1].code == 0)
1602 			memcpy(aux, insn, sizeof(aux));
1603 
1604 		rewritten = bpf_jit_blind_insn(insn, aux, insn_buff,
1605 						clone->aux->verifier_zext);
1606 		if (!rewritten)
1607 			continue;
1608 
1609 		if (env)
1610 			tmp = bpf_patch_insn_data(env, i, insn_buff, rewritten);
1611 		else
1612 			tmp = bpf_patch_insn_single(clone, i, insn_buff, rewritten);
1613 
1614 		if (IS_ERR_OR_NULL(tmp)) {
1615 			if (env)
1616 				/* restore the original prog */
1617 				env->prog = prog;
1618 			/* Patching may have repointed aux->prog during
1619 			 * realloc from the original one, so we need to
1620 			 * fix it up here on error.
1621 			 */
1622 			bpf_jit_prog_release_other(prog, clone);
1623 			if (env && fatal_signal_pending(current))
1624 				return ERR_PTR(-EINTR);
1625 			return IS_ERR(tmp) ? tmp : ERR_PTR(-ENOMEM);
1626 		}
1627 
1628 		clone = tmp;
1629 		insn_delta = rewritten - 1;
1630 
1631 		if (env)
1632 			env->prog = clone;
1633 
1634 		/* Walk new program and skip insns we just inserted. */
1635 		insn = clone->insnsi + i + insn_delta;
1636 		insn_cnt += insn_delta;
1637 		i        += insn_delta;
1638 	}
1639 
1640 	clone->blinded = 1;
1641 	return clone;
1642 }
1643 
1644 bool bpf_insn_is_indirect_target(const struct bpf_verifier_env *env, const struct bpf_prog *prog,
1645 				 int insn_idx)
1646 {
1647 	if (!env)
1648 		return false;
1649 	insn_idx += prog->aux->subprog_start;
1650 	return env->insn_aux_data[insn_idx].indirect_target;
1651 }
1652 
1653 u16 bpf_out_stack_arg_cnt(const struct bpf_verifier_env *env, const struct bpf_prog *prog)
1654 {
1655 	const struct bpf_subprog_info *sub;
1656 
1657 	if (!env)
1658 		return 0;
1659 	sub = &env->subprog_info[prog->aux->func_idx];
1660 	return sub->stack_arg_cnt - bpf_in_stack_arg_cnt(sub);
1661 }
1662 #endif /* CONFIG_BPF_JIT */
1663 
1664 /* Base function for offset calculation. Needs to go into .text section,
1665  * therefore keeping it non-static as well; will also be used by JITs
1666  * anyway later on, so do not let the compiler omit it. This also needs
1667  * to go into kallsyms for correlation from e.g. bpftool, so naming
1668  * must not change.
1669  */
1670 noinline u64 __bpf_call_base(u64 r1, u64 r2, u64 r3, u64 r4, u64 r5)
1671 {
1672 	return 0;
1673 }
1674 EXPORT_SYMBOL_GPL(__bpf_call_base);
1675 
1676 /* All UAPI available opcodes. */
1677 #define BPF_INSN_MAP(INSN_2, INSN_3)		\
1678 	/* 32 bit ALU operations. */		\
1679 	/*   Register based. */			\
1680 	INSN_3(ALU, ADD,  X),			\
1681 	INSN_3(ALU, SUB,  X),			\
1682 	INSN_3(ALU, AND,  X),			\
1683 	INSN_3(ALU, OR,   X),			\
1684 	INSN_3(ALU, LSH,  X),			\
1685 	INSN_3(ALU, RSH,  X),			\
1686 	INSN_3(ALU, XOR,  X),			\
1687 	INSN_3(ALU, MUL,  X),			\
1688 	INSN_3(ALU, MOV,  X),			\
1689 	INSN_3(ALU, ARSH, X),			\
1690 	INSN_3(ALU, DIV,  X),			\
1691 	INSN_3(ALU, MOD,  X),			\
1692 	INSN_2(ALU, NEG),			\
1693 	INSN_3(ALU, END, TO_BE),		\
1694 	INSN_3(ALU, END, TO_LE),		\
1695 	/*   Immediate based. */		\
1696 	INSN_3(ALU, ADD,  K),			\
1697 	INSN_3(ALU, SUB,  K),			\
1698 	INSN_3(ALU, AND,  K),			\
1699 	INSN_3(ALU, OR,   K),			\
1700 	INSN_3(ALU, LSH,  K),			\
1701 	INSN_3(ALU, RSH,  K),			\
1702 	INSN_3(ALU, XOR,  K),			\
1703 	INSN_3(ALU, MUL,  K),			\
1704 	INSN_3(ALU, MOV,  K),			\
1705 	INSN_3(ALU, ARSH, K),			\
1706 	INSN_3(ALU, DIV,  K),			\
1707 	INSN_3(ALU, MOD,  K),			\
1708 	/* 64 bit ALU operations. */		\
1709 	/*   Register based. */			\
1710 	INSN_3(ALU64, ADD,  X),			\
1711 	INSN_3(ALU64, SUB,  X),			\
1712 	INSN_3(ALU64, AND,  X),			\
1713 	INSN_3(ALU64, OR,   X),			\
1714 	INSN_3(ALU64, LSH,  X),			\
1715 	INSN_3(ALU64, RSH,  X),			\
1716 	INSN_3(ALU64, XOR,  X),			\
1717 	INSN_3(ALU64, MUL,  X),			\
1718 	INSN_3(ALU64, MOV,  X),			\
1719 	INSN_3(ALU64, ARSH, X),			\
1720 	INSN_3(ALU64, DIV,  X),			\
1721 	INSN_3(ALU64, MOD,  X),			\
1722 	INSN_2(ALU64, NEG),			\
1723 	INSN_3(ALU64, END, TO_LE),		\
1724 	/*   Immediate based. */		\
1725 	INSN_3(ALU64, ADD,  K),			\
1726 	INSN_3(ALU64, SUB,  K),			\
1727 	INSN_3(ALU64, AND,  K),			\
1728 	INSN_3(ALU64, OR,   K),			\
1729 	INSN_3(ALU64, LSH,  K),			\
1730 	INSN_3(ALU64, RSH,  K),			\
1731 	INSN_3(ALU64, XOR,  K),			\
1732 	INSN_3(ALU64, MUL,  K),			\
1733 	INSN_3(ALU64, MOV,  K),			\
1734 	INSN_3(ALU64, ARSH, K),			\
1735 	INSN_3(ALU64, DIV,  K),			\
1736 	INSN_3(ALU64, MOD,  K),			\
1737 	/* Call instruction. */			\
1738 	INSN_2(JMP, CALL),			\
1739 	/* Exit instruction. */			\
1740 	INSN_2(JMP, EXIT),			\
1741 	/* 32-bit Jump instructions. */		\
1742 	/*   Register based. */			\
1743 	INSN_3(JMP32, JEQ,  X),			\
1744 	INSN_3(JMP32, JNE,  X),			\
1745 	INSN_3(JMP32, JGT,  X),			\
1746 	INSN_3(JMP32, JLT,  X),			\
1747 	INSN_3(JMP32, JGE,  X),			\
1748 	INSN_3(JMP32, JLE,  X),			\
1749 	INSN_3(JMP32, JSGT, X),			\
1750 	INSN_3(JMP32, JSLT, X),			\
1751 	INSN_3(JMP32, JSGE, X),			\
1752 	INSN_3(JMP32, JSLE, X),			\
1753 	INSN_3(JMP32, JSET, X),			\
1754 	/*   Immediate based. */		\
1755 	INSN_3(JMP32, JEQ,  K),			\
1756 	INSN_3(JMP32, JNE,  K),			\
1757 	INSN_3(JMP32, JGT,  K),			\
1758 	INSN_3(JMP32, JLT,  K),			\
1759 	INSN_3(JMP32, JGE,  K),			\
1760 	INSN_3(JMP32, JLE,  K),			\
1761 	INSN_3(JMP32, JSGT, K),			\
1762 	INSN_3(JMP32, JSLT, K),			\
1763 	INSN_3(JMP32, JSGE, K),			\
1764 	INSN_3(JMP32, JSLE, K),			\
1765 	INSN_3(JMP32, JSET, K),			\
1766 	/* Jump instructions. */		\
1767 	/*   Register based. */			\
1768 	INSN_3(JMP, JEQ,  X),			\
1769 	INSN_3(JMP, JNE,  X),			\
1770 	INSN_3(JMP, JGT,  X),			\
1771 	INSN_3(JMP, JLT,  X),			\
1772 	INSN_3(JMP, JGE,  X),			\
1773 	INSN_3(JMP, JLE,  X),			\
1774 	INSN_3(JMP, JSGT, X),			\
1775 	INSN_3(JMP, JSLT, X),			\
1776 	INSN_3(JMP, JSGE, X),			\
1777 	INSN_3(JMP, JSLE, X),			\
1778 	INSN_3(JMP, JSET, X),			\
1779 	/*   Immediate based. */		\
1780 	INSN_3(JMP, JEQ,  K),			\
1781 	INSN_3(JMP, JNE,  K),			\
1782 	INSN_3(JMP, JGT,  K),			\
1783 	INSN_3(JMP, JLT,  K),			\
1784 	INSN_3(JMP, JGE,  K),			\
1785 	INSN_3(JMP, JLE,  K),			\
1786 	INSN_3(JMP, JSGT, K),			\
1787 	INSN_3(JMP, JSLT, K),			\
1788 	INSN_3(JMP, JSGE, K),			\
1789 	INSN_3(JMP, JSLE, K),			\
1790 	INSN_3(JMP, JSET, K),			\
1791 	INSN_2(JMP, JA),			\
1792 	INSN_2(JMP32, JA),			\
1793 	/* Atomic operations. */		\
1794 	INSN_3(STX, ATOMIC, B),			\
1795 	INSN_3(STX, ATOMIC, H),			\
1796 	INSN_3(STX, ATOMIC, W),			\
1797 	INSN_3(STX, ATOMIC, DW),		\
1798 	/* Store instructions. */		\
1799 	/*   Register based. */			\
1800 	INSN_3(STX, MEM,  B),			\
1801 	INSN_3(STX, MEM,  H),			\
1802 	INSN_3(STX, MEM,  W),			\
1803 	INSN_3(STX, MEM,  DW),			\
1804 	/*   Immediate based. */		\
1805 	INSN_3(ST, MEM, B),			\
1806 	INSN_3(ST, MEM, H),			\
1807 	INSN_3(ST, MEM, W),			\
1808 	INSN_3(ST, MEM, DW),			\
1809 	/* Load instructions. */		\
1810 	/*   Register based. */			\
1811 	INSN_3(LDX, MEM, B),			\
1812 	INSN_3(LDX, MEM, H),			\
1813 	INSN_3(LDX, MEM, W),			\
1814 	INSN_3(LDX, MEM, DW),			\
1815 	INSN_3(LDX, MEMSX, B),			\
1816 	INSN_3(LDX, MEMSX, H),			\
1817 	INSN_3(LDX, MEMSX, W),			\
1818 	/*   Immediate based. */		\
1819 	INSN_3(LD, IMM, DW)
1820 
1821 bool bpf_opcode_in_insntable(u8 code)
1822 {
1823 #define BPF_INSN_2_TBL(x, y)    [BPF_##x | BPF_##y] = true
1824 #define BPF_INSN_3_TBL(x, y, z) [BPF_##x | BPF_##y | BPF_##z] = true
1825 	static const bool public_insntable[256] = {
1826 		[0 ... 255] = false,
1827 		/* Now overwrite non-defaults ... */
1828 		BPF_INSN_MAP(BPF_INSN_2_TBL, BPF_INSN_3_TBL),
1829 		/* UAPI exposed, but rewritten opcodes. cBPF carry-over. */
1830 		[BPF_LD | BPF_ABS | BPF_B] = true,
1831 		[BPF_LD | BPF_ABS | BPF_H] = true,
1832 		[BPF_LD | BPF_ABS | BPF_W] = true,
1833 		[BPF_LD | BPF_IND | BPF_B] = true,
1834 		[BPF_LD | BPF_IND | BPF_H] = true,
1835 		[BPF_LD | BPF_IND | BPF_W] = true,
1836 		[BPF_JMP | BPF_JA | BPF_X] = true,
1837 		[BPF_JMP | BPF_JCOND] = true,
1838 	};
1839 #undef BPF_INSN_3_TBL
1840 #undef BPF_INSN_2_TBL
1841 	return public_insntable[code];
1842 }
1843 
1844 #ifndef CONFIG_BPF_JIT_ALWAYS_ON
1845 /* Absolute value of s32 without undefined behavior for S32_MIN */
1846 static u32 abs_s32(s32 x)
1847 {
1848 	return x >= 0 ? (u32)x : -(u32)x;
1849 }
1850 
1851 static u64 (*interpreters_args[])(u64 r1, u64 r2, u64 r3, u64 r4, u64 r5,
1852 				  const struct bpf_insn *insn);
1853 
1854 /**
1855  *	___bpf_prog_run - run eBPF program on a given context
1856  *	@regs: is the array of MAX_BPF_EXT_REG eBPF pseudo-registers
1857  *	@insn: is the array of eBPF instructions
1858  *
1859  * Decode and execute eBPF instructions.
1860  *
1861  * Return: whatever value is in %BPF_R0 at program exit
1862  */
1863 static u64 ___bpf_prog_run(u64 *regs, const struct bpf_insn *insn)
1864 {
1865 #define BPF_INSN_2_LBL(x, y)    [BPF_##x | BPF_##y] = &&x##_##y
1866 #define BPF_INSN_3_LBL(x, y, z) [BPF_##x | BPF_##y | BPF_##z] = &&x##_##y##_##z
1867 	static const void * const jumptable[256] __annotate_jump_table = {
1868 		[0 ... 255] = &&default_label,
1869 		/* Now overwrite non-defaults ... */
1870 		BPF_INSN_MAP(BPF_INSN_2_LBL, BPF_INSN_3_LBL),
1871 		/* Non-UAPI available opcodes. */
1872 		[BPF_JMP | BPF_CALL_ARGS] = &&JMP_CALL_ARGS,
1873 		[BPF_JMP | BPF_TAIL_CALL] = &&JMP_TAIL_CALL,
1874 		[BPF_ST  | BPF_NOSPEC] = &&ST_NOSPEC,
1875 		[BPF_LDX | BPF_PROBE_MEM | BPF_B] = &&LDX_PROBE_MEM_B,
1876 		[BPF_LDX | BPF_PROBE_MEM | BPF_H] = &&LDX_PROBE_MEM_H,
1877 		[BPF_LDX | BPF_PROBE_MEM | BPF_W] = &&LDX_PROBE_MEM_W,
1878 		[BPF_LDX | BPF_PROBE_MEM | BPF_DW] = &&LDX_PROBE_MEM_DW,
1879 		[BPF_LDX | BPF_PROBE_MEMSX | BPF_B] = &&LDX_PROBE_MEMSX_B,
1880 		[BPF_LDX | BPF_PROBE_MEMSX | BPF_H] = &&LDX_PROBE_MEMSX_H,
1881 		[BPF_LDX | BPF_PROBE_MEMSX | BPF_W] = &&LDX_PROBE_MEMSX_W,
1882 	};
1883 #undef BPF_INSN_3_LBL
1884 #undef BPF_INSN_2_LBL
1885 	u32 tail_call_cnt = 0;
1886 
1887 #define CONT	 ({ insn++; goto select_insn; })
1888 #define CONT_JMP ({ insn++; goto select_insn; })
1889 
1890 select_insn:
1891 	goto *jumptable[insn->code];
1892 
1893 	/* Explicitly mask the register-based shift amounts with 63 or 31
1894 	 * to avoid undefined behavior. Normally this won't affect the
1895 	 * generated code, for example, in case of native 64 bit archs such
1896 	 * as x86-64 or arm64, the compiler is optimizing the AND away for
1897 	 * the interpreter. In case of JITs, each of the JIT backends compiles
1898 	 * the BPF shift operations to machine instructions which produce
1899 	 * implementation-defined results in such a case; the resulting
1900 	 * contents of the register may be arbitrary, but program behaviour
1901 	 * as a whole remains defined. In other words, in case of JIT backends,
1902 	 * the AND must /not/ be added to the emitted LSH/RSH/ARSH translation.
1903 	 */
1904 	/* ALU (shifts) */
1905 #define SHT(OPCODE, OP)					\
1906 	ALU64_##OPCODE##_X:				\
1907 		DST = DST OP (SRC & 63);		\
1908 		CONT;					\
1909 	ALU_##OPCODE##_X:				\
1910 		DST = (u32) DST OP ((u32) SRC & 31);	\
1911 		CONT;					\
1912 	ALU64_##OPCODE##_K:				\
1913 		DST = DST OP IMM;			\
1914 		CONT;					\
1915 	ALU_##OPCODE##_K:				\
1916 		DST = (u32) DST OP (u32) IMM;		\
1917 		CONT;
1918 	/* ALU (rest) */
1919 #define ALU(OPCODE, OP)					\
1920 	ALU64_##OPCODE##_X:				\
1921 		DST = DST OP SRC;			\
1922 		CONT;					\
1923 	ALU_##OPCODE##_X:				\
1924 		DST = (u32) DST OP (u32) SRC;		\
1925 		CONT;					\
1926 	ALU64_##OPCODE##_K:				\
1927 		DST = DST OP IMM;			\
1928 		CONT;					\
1929 	ALU_##OPCODE##_K:				\
1930 		DST = (u32) DST OP (u32) IMM;		\
1931 		CONT;
1932 	ALU(ADD,  +)
1933 	ALU(SUB,  -)
1934 	ALU(AND,  &)
1935 	ALU(OR,   |)
1936 	ALU(XOR,  ^)
1937 	ALU(MUL,  *)
1938 	SHT(LSH, <<)
1939 	SHT(RSH, >>)
1940 #undef SHT
1941 #undef ALU
1942 	ALU_NEG:
1943 		DST = (u32) -DST;
1944 		CONT;
1945 	ALU64_NEG:
1946 		DST = -DST;
1947 		CONT;
1948 	ALU_MOV_X:
1949 		switch (OFF) {
1950 		case 0:
1951 			DST = (u32) SRC;
1952 			break;
1953 		case 8:
1954 			DST = (u32)(s8) SRC;
1955 			break;
1956 		case 16:
1957 			DST = (u32)(s16) SRC;
1958 			break;
1959 		}
1960 		CONT;
1961 	ALU_MOV_K:
1962 		DST = (u32) IMM;
1963 		CONT;
1964 	ALU64_MOV_X:
1965 		switch (OFF) {
1966 		case 0:
1967 			DST = SRC;
1968 			break;
1969 		case 8:
1970 			DST = (s8) SRC;
1971 			break;
1972 		case 16:
1973 			DST = (s16) SRC;
1974 			break;
1975 		case 32:
1976 			DST = (s32) SRC;
1977 			break;
1978 		}
1979 		CONT;
1980 	ALU64_MOV_K:
1981 		DST = IMM;
1982 		CONT;
1983 	LD_IMM_DW:
1984 		DST = (u64) (u32) insn[0].imm | ((u64) (u32) insn[1].imm) << 32;
1985 		insn++;
1986 		CONT;
1987 	ALU_ARSH_X:
1988 		DST = (u64) (u32) (((s32) DST) >> (SRC & 31));
1989 		CONT;
1990 	ALU_ARSH_K:
1991 		DST = (u64) (u32) (((s32) DST) >> IMM);
1992 		CONT;
1993 	ALU64_ARSH_X:
1994 		(*(s64 *) &DST) >>= (SRC & 63);
1995 		CONT;
1996 	ALU64_ARSH_K:
1997 		(*(s64 *) &DST) >>= IMM;
1998 		CONT;
1999 	ALU64_MOD_X:
2000 		switch (OFF) {
2001 		case 0:
2002 			div64_u64_rem(DST, SRC, &AX);
2003 			DST = AX;
2004 			break;
2005 		case 1:
2006 			AX = div64_s64(DST, SRC);
2007 			DST = DST - AX * SRC;
2008 			break;
2009 		}
2010 		CONT;
2011 	ALU_MOD_X:
2012 		switch (OFF) {
2013 		case 0:
2014 			AX = (u32) DST;
2015 			DST = do_div(AX, (u32) SRC);
2016 			break;
2017 		case 1:
2018 			AX = abs_s32((s32)DST);
2019 			AX = do_div(AX, abs_s32((s32)SRC));
2020 			if ((s32)DST < 0)
2021 				DST = (u32)-AX;
2022 			else
2023 				DST = (u32)AX;
2024 			break;
2025 		}
2026 		CONT;
2027 	ALU64_MOD_K:
2028 		switch (OFF) {
2029 		case 0:
2030 			div64_u64_rem(DST, IMM, &AX);
2031 			DST = AX;
2032 			break;
2033 		case 1:
2034 			AX = div64_s64(DST, IMM);
2035 			DST = DST - AX * IMM;
2036 			break;
2037 		}
2038 		CONT;
2039 	ALU_MOD_K:
2040 		switch (OFF) {
2041 		case 0:
2042 			AX = (u32) DST;
2043 			DST = do_div(AX, (u32) IMM);
2044 			break;
2045 		case 1:
2046 			AX = abs_s32((s32)DST);
2047 			AX = do_div(AX, abs_s32((s32)IMM));
2048 			if ((s32)DST < 0)
2049 				DST = (u32)-AX;
2050 			else
2051 				DST = (u32)AX;
2052 			break;
2053 		}
2054 		CONT;
2055 	ALU64_DIV_X:
2056 		switch (OFF) {
2057 		case 0:
2058 			DST = div64_u64(DST, SRC);
2059 			break;
2060 		case 1:
2061 			DST = div64_s64(DST, SRC);
2062 			break;
2063 		}
2064 		CONT;
2065 	ALU_DIV_X:
2066 		switch (OFF) {
2067 		case 0:
2068 			AX = (u32) DST;
2069 			do_div(AX, (u32) SRC);
2070 			DST = (u32) AX;
2071 			break;
2072 		case 1:
2073 			AX = abs_s32((s32)DST);
2074 			do_div(AX, abs_s32((s32)SRC));
2075 			if (((s32)DST < 0) == ((s32)SRC < 0))
2076 				DST = (u32)AX;
2077 			else
2078 				DST = (u32)-AX;
2079 			break;
2080 		}
2081 		CONT;
2082 	ALU64_DIV_K:
2083 		switch (OFF) {
2084 		case 0:
2085 			DST = div64_u64(DST, IMM);
2086 			break;
2087 		case 1:
2088 			DST = div64_s64(DST, IMM);
2089 			break;
2090 		}
2091 		CONT;
2092 	ALU_DIV_K:
2093 		switch (OFF) {
2094 		case 0:
2095 			AX = (u32) DST;
2096 			do_div(AX, (u32) IMM);
2097 			DST = (u32) AX;
2098 			break;
2099 		case 1:
2100 			AX = abs_s32((s32)DST);
2101 			do_div(AX, abs_s32((s32)IMM));
2102 			if (((s32)DST < 0) == ((s32)IMM < 0))
2103 				DST = (u32)AX;
2104 			else
2105 				DST = (u32)-AX;
2106 			break;
2107 		}
2108 		CONT;
2109 	ALU_END_TO_BE:
2110 		switch (IMM) {
2111 		case 16:
2112 			DST = (__force u16) cpu_to_be16(DST);
2113 			break;
2114 		case 32:
2115 			DST = (__force u32) cpu_to_be32(DST);
2116 			break;
2117 		case 64:
2118 			DST = (__force u64) cpu_to_be64(DST);
2119 			break;
2120 		}
2121 		CONT;
2122 	ALU_END_TO_LE:
2123 		switch (IMM) {
2124 		case 16:
2125 			DST = (__force u16) cpu_to_le16(DST);
2126 			break;
2127 		case 32:
2128 			DST = (__force u32) cpu_to_le32(DST);
2129 			break;
2130 		case 64:
2131 			DST = (__force u64) cpu_to_le64(DST);
2132 			break;
2133 		}
2134 		CONT;
2135 	ALU64_END_TO_LE:
2136 		switch (IMM) {
2137 		case 16:
2138 			DST = (__force u16) __swab16(DST);
2139 			break;
2140 		case 32:
2141 			DST = (__force u32) __swab32(DST);
2142 			break;
2143 		case 64:
2144 			DST = (__force u64) __swab64(DST);
2145 			break;
2146 		}
2147 		CONT;
2148 
2149 	/* CALL */
2150 	JMP_CALL:
2151 		/* Function call scratches BPF_R1-BPF_R5 registers,
2152 		 * preserves BPF_R6-BPF_R9, and stores return value
2153 		 * into BPF_R0.
2154 		 */
2155 		BPF_R0 = (__bpf_call_base + insn->imm)(BPF_R1, BPF_R2, BPF_R3,
2156 						       BPF_R4, BPF_R5);
2157 		CONT;
2158 
2159 	JMP_CALL_ARGS:
2160 		BPF_R0 = interpreters_args[insn->off](BPF_R1, BPF_R2, BPF_R3,
2161 						      BPF_R4, BPF_R5,
2162 						      insn + insn->imm + 1);
2163 		CONT;
2164 
2165 	JMP_TAIL_CALL: {
2166 		struct bpf_map *map = (struct bpf_map *) (unsigned long) BPF_R2;
2167 		struct bpf_array *array = container_of(map, struct bpf_array, map);
2168 		struct bpf_prog *prog;
2169 		u32 index = BPF_R3;
2170 
2171 		if (unlikely(index >= array->map.max_entries))
2172 			goto out;
2173 
2174 		if (unlikely(tail_call_cnt >= MAX_TAIL_CALL_CNT))
2175 			goto out;
2176 
2177 		prog = READ_ONCE(array->ptrs[index]);
2178 		if (!prog)
2179 			goto out;
2180 
2181 		tail_call_cnt++;
2182 
2183 		/* ARG1 at this point is guaranteed to point to CTX from
2184 		 * the verifier side due to the fact that the tail call is
2185 		 * handled like a helper, that is, bpf_tail_call_proto,
2186 		 * where arg1_type is ARG_PTR_TO_CTX.
2187 		 */
2188 		insn = prog->insnsi;
2189 		goto select_insn;
2190 out:
2191 		CONT;
2192 	}
2193 	JMP_JA:
2194 		insn += insn->off;
2195 		CONT;
2196 	JMP32_JA:
2197 		insn += insn->imm;
2198 		CONT;
2199 	JMP_EXIT:
2200 		return BPF_R0;
2201 	/* JMP */
2202 #define COND_JMP(SIGN, OPCODE, CMP_OP)				\
2203 	JMP_##OPCODE##_X:					\
2204 		if ((SIGN##64) DST CMP_OP (SIGN##64) SRC) {	\
2205 			insn += insn->off;			\
2206 			CONT_JMP;				\
2207 		}						\
2208 		CONT;						\
2209 	JMP32_##OPCODE##_X:					\
2210 		if ((SIGN##32) DST CMP_OP (SIGN##32) SRC) {	\
2211 			insn += insn->off;			\
2212 			CONT_JMP;				\
2213 		}						\
2214 		CONT;						\
2215 	JMP_##OPCODE##_K:					\
2216 		if ((SIGN##64) DST CMP_OP (SIGN##64) IMM) {	\
2217 			insn += insn->off;			\
2218 			CONT_JMP;				\
2219 		}						\
2220 		CONT;						\
2221 	JMP32_##OPCODE##_K:					\
2222 		if ((SIGN##32) DST CMP_OP (SIGN##32) IMM) {	\
2223 			insn += insn->off;			\
2224 			CONT_JMP;				\
2225 		}						\
2226 		CONT;
2227 	COND_JMP(u, JEQ, ==)
2228 	COND_JMP(u, JNE, !=)
2229 	COND_JMP(u, JGT, >)
2230 	COND_JMP(u, JLT, <)
2231 	COND_JMP(u, JGE, >=)
2232 	COND_JMP(u, JLE, <=)
2233 	COND_JMP(u, JSET, &)
2234 	COND_JMP(s, JSGT, >)
2235 	COND_JMP(s, JSLT, <)
2236 	COND_JMP(s, JSGE, >=)
2237 	COND_JMP(s, JSLE, <=)
2238 #undef COND_JMP
2239 	/* ST, STX and LDX*/
2240 	ST_NOSPEC:
2241 		/* Speculation barrier for mitigating Speculative Store Bypass,
2242 		 * Bounds-Check Bypass and Type Confusion. In case of arm64, we
2243 		 * rely on the firmware mitigation as controlled via the ssbd
2244 		 * kernel parameter. Whenever the mitigation is enabled, it
2245 		 * works for all of the kernel code with no need to provide any
2246 		 * additional instructions here. In case of x86, we use 'lfence'
2247 		 * insn for mitigation. We reuse preexisting logic from Spectre
2248 		 * v1 mitigation that happens to produce the required code on
2249 		 * x86 for v4 as well.
2250 		 */
2251 		barrier_nospec();
2252 		CONT;
2253 #define LDST(SIZEOP, SIZE)						\
2254 	STX_MEM_##SIZEOP:						\
2255 		*(SIZE *)(unsigned long) (DST + insn->off) = SRC;	\
2256 		CONT;							\
2257 	ST_MEM_##SIZEOP:						\
2258 		*(SIZE *)(unsigned long) (DST + insn->off) = IMM;	\
2259 		CONT;							\
2260 	LDX_MEM_##SIZEOP:						\
2261 		DST = *(SIZE *)(unsigned long) (SRC + insn->off);	\
2262 		CONT;							\
2263 	LDX_PROBE_MEM_##SIZEOP:						\
2264 		bpf_probe_read_kernel_common(&DST, sizeof(SIZE),	\
2265 			      (const void *)(long) (SRC + insn->off));	\
2266 		DST = *((SIZE *)&DST);					\
2267 		CONT;
2268 
2269 	LDST(B,   u8)
2270 	LDST(H,  u16)
2271 	LDST(W,  u32)
2272 	LDST(DW, u64)
2273 #undef LDST
2274 
2275 #define LDSX(SIZEOP, SIZE)						\
2276 	LDX_MEMSX_##SIZEOP:						\
2277 		DST = *(SIZE *)(unsigned long) (SRC + insn->off);	\
2278 		CONT;							\
2279 	LDX_PROBE_MEMSX_##SIZEOP:					\
2280 		bpf_probe_read_kernel_common(&DST, sizeof(SIZE),		\
2281 				      (const void *)(long) (SRC + insn->off));	\
2282 		DST = *((SIZE *)&DST);					\
2283 		CONT;
2284 
2285 	LDSX(B,   s8)
2286 	LDSX(H,  s16)
2287 	LDSX(W,  s32)
2288 #undef LDSX
2289 
2290 #define ATOMIC_ALU_OP(BOP, KOP)						\
2291 		case BOP:						\
2292 			if (BPF_SIZE(insn->code) == BPF_W)		\
2293 				atomic_##KOP((u32) SRC, (atomic_t *)(unsigned long) \
2294 					     (DST + insn->off));	\
2295 			else if (BPF_SIZE(insn->code) == BPF_DW)	\
2296 				atomic64_##KOP((u64) SRC, (atomic64_t *)(unsigned long) \
2297 					       (DST + insn->off));	\
2298 			else						\
2299 				goto default_label;			\
2300 			break;						\
2301 		case BOP | BPF_FETCH:					\
2302 			if (BPF_SIZE(insn->code) == BPF_W)		\
2303 				SRC = (u32) atomic_fetch_##KOP(		\
2304 					(u32) SRC,			\
2305 					(atomic_t *)(unsigned long) (DST + insn->off)); \
2306 			else if (BPF_SIZE(insn->code) == BPF_DW)	\
2307 				SRC = (u64) atomic64_fetch_##KOP(	\
2308 					(u64) SRC,			\
2309 					(atomic64_t *)(unsigned long) (DST + insn->off)); \
2310 			else						\
2311 				goto default_label;			\
2312 			break;
2313 
2314 	STX_ATOMIC_DW:
2315 	STX_ATOMIC_W:
2316 	STX_ATOMIC_H:
2317 	STX_ATOMIC_B:
2318 		switch (IMM) {
2319 		/* Atomic read-modify-write instructions support only W and DW
2320 		 * size modifiers.
2321 		 */
2322 		ATOMIC_ALU_OP(BPF_ADD, add)
2323 		ATOMIC_ALU_OP(BPF_AND, and)
2324 		ATOMIC_ALU_OP(BPF_OR, or)
2325 		ATOMIC_ALU_OP(BPF_XOR, xor)
2326 #undef ATOMIC_ALU_OP
2327 
2328 		case BPF_XCHG:
2329 			if (BPF_SIZE(insn->code) == BPF_W)
2330 				SRC = (u32) atomic_xchg(
2331 					(atomic_t *)(unsigned long) (DST + insn->off),
2332 					(u32) SRC);
2333 			else if (BPF_SIZE(insn->code) == BPF_DW)
2334 				SRC = (u64) atomic64_xchg(
2335 					(atomic64_t *)(unsigned long) (DST + insn->off),
2336 					(u64) SRC);
2337 			else
2338 				goto default_label;
2339 			break;
2340 		case BPF_CMPXCHG:
2341 			if (BPF_SIZE(insn->code) == BPF_W)
2342 				BPF_R0 = (u32) atomic_cmpxchg(
2343 					(atomic_t *)(unsigned long) (DST + insn->off),
2344 					(u32) BPF_R0, (u32) SRC);
2345 			else if (BPF_SIZE(insn->code) == BPF_DW)
2346 				BPF_R0 = (u64) atomic64_cmpxchg(
2347 					(atomic64_t *)(unsigned long) (DST + insn->off),
2348 					(u64) BPF_R0, (u64) SRC);
2349 			else
2350 				goto default_label;
2351 			break;
2352 		/* Atomic load and store instructions support all size
2353 		 * modifiers.
2354 		 */
2355 		case BPF_LOAD_ACQ:
2356 			switch (BPF_SIZE(insn->code)) {
2357 #define LOAD_ACQUIRE(SIZEOP, SIZE)				\
2358 			case BPF_##SIZEOP:			\
2359 				DST = (SIZE)smp_load_acquire(	\
2360 					(SIZE *)(unsigned long)(SRC + insn->off));	\
2361 				break;
2362 			LOAD_ACQUIRE(B,   u8)
2363 			LOAD_ACQUIRE(H,  u16)
2364 			LOAD_ACQUIRE(W,  u32)
2365 #ifdef CONFIG_64BIT
2366 			LOAD_ACQUIRE(DW, u64)
2367 #endif
2368 #undef LOAD_ACQUIRE
2369 			default:
2370 				goto default_label;
2371 			}
2372 			break;
2373 		case BPF_STORE_REL:
2374 			switch (BPF_SIZE(insn->code)) {
2375 #define STORE_RELEASE(SIZEOP, SIZE)			\
2376 			case BPF_##SIZEOP:		\
2377 				smp_store_release(	\
2378 					(SIZE *)(unsigned long)(DST + insn->off), (SIZE)SRC);	\
2379 				break;
2380 			STORE_RELEASE(B,   u8)
2381 			STORE_RELEASE(H,  u16)
2382 			STORE_RELEASE(W,  u32)
2383 #ifdef CONFIG_64BIT
2384 			STORE_RELEASE(DW, u64)
2385 #endif
2386 #undef STORE_RELEASE
2387 			default:
2388 				goto default_label;
2389 			}
2390 			break;
2391 
2392 		default:
2393 			goto default_label;
2394 		}
2395 		CONT;
2396 
2397 	default_label:
2398 		/* If we ever reach this, we have a bug somewhere. Die hard here
2399 		 * instead of just returning 0; we could be somewhere in a subprog,
2400 		 * so execution could continue otherwise which we do /not/ want.
2401 		 *
2402 		 * Note, verifier whitelists all opcodes in bpf_opcode_in_insntable().
2403 		 */
2404 		pr_warn("BPF interpreter: unknown opcode %02x (imm: 0x%x)\n",
2405 			insn->code, insn->imm);
2406 		BUG_ON(1);
2407 		return 0;
2408 }
2409 
2410 #define PROG_NAME(stack_size) __bpf_prog_run##stack_size
2411 #define DEFINE_BPF_PROG_RUN(stack_size) \
2412 static unsigned int PROG_NAME(stack_size)(const void *ctx, const struct bpf_insn *insn) \
2413 { \
2414 	u64 stack[stack_size / sizeof(u64)]; \
2415 	u64 regs[MAX_BPF_EXT_REG] = {}; \
2416 \
2417 	kmsan_unpoison_memory(stack, sizeof(stack)); \
2418 	FP = (u64) (unsigned long) &stack[ARRAY_SIZE(stack)]; \
2419 	ARG1 = (u64) (unsigned long) ctx; \
2420 	return ___bpf_prog_run(regs, insn); \
2421 }
2422 
2423 #define PROG_NAME_ARGS(stack_size) __bpf_prog_run_args##stack_size
2424 #define DEFINE_BPF_PROG_RUN_ARGS(stack_size) \
2425 static u64 PROG_NAME_ARGS(stack_size)(u64 r1, u64 r2, u64 r3, u64 r4, u64 r5, \
2426 				      const struct bpf_insn *insn) \
2427 { \
2428 	u64 stack[stack_size / sizeof(u64)]; \
2429 	u64 regs[MAX_BPF_EXT_REG]; \
2430 \
2431 	kmsan_unpoison_memory(stack, sizeof(stack)); \
2432 	FP = (u64) (unsigned long) &stack[ARRAY_SIZE(stack)]; \
2433 	BPF_R1 = r1; \
2434 	BPF_R2 = r2; \
2435 	BPF_R3 = r3; \
2436 	BPF_R4 = r4; \
2437 	BPF_R5 = r5; \
2438 	return ___bpf_prog_run(regs, insn); \
2439 }
2440 
2441 #define EVAL1(FN, X) FN(X)
2442 #define EVAL2(FN, X, Y...) FN(X) EVAL1(FN, Y)
2443 #define EVAL3(FN, X, Y...) FN(X) EVAL2(FN, Y)
2444 #define EVAL4(FN, X, Y...) FN(X) EVAL3(FN, Y)
2445 #define EVAL5(FN, X, Y...) FN(X) EVAL4(FN, Y)
2446 #define EVAL6(FN, X, Y...) FN(X) EVAL5(FN, Y)
2447 
2448 EVAL6(DEFINE_BPF_PROG_RUN, 32, 64, 96, 128, 160, 192);
2449 EVAL6(DEFINE_BPF_PROG_RUN, 224, 256, 288, 320, 352, 384);
2450 EVAL4(DEFINE_BPF_PROG_RUN, 416, 448, 480, 512);
2451 
2452 EVAL6(DEFINE_BPF_PROG_RUN_ARGS, 32, 64, 96, 128, 160, 192);
2453 EVAL6(DEFINE_BPF_PROG_RUN_ARGS, 224, 256, 288, 320, 352, 384);
2454 EVAL4(DEFINE_BPF_PROG_RUN_ARGS, 416, 448, 480, 512);
2455 
2456 #define PROG_NAME_LIST(stack_size) PROG_NAME(stack_size),
2457 
2458 static unsigned int (*interpreters[])(const void *ctx,
2459 				      const struct bpf_insn *insn) = {
2460 EVAL6(PROG_NAME_LIST, 32, 64, 96, 128, 160, 192)
2461 EVAL6(PROG_NAME_LIST, 224, 256, 288, 320, 352, 384)
2462 EVAL4(PROG_NAME_LIST, 416, 448, 480, 512)
2463 };
2464 #undef PROG_NAME_LIST
2465 #define PROG_NAME_LIST(stack_size) PROG_NAME_ARGS(stack_size),
2466 static __maybe_unused
2467 u64 (*interpreters_args[])(u64 r1, u64 r2, u64 r3, u64 r4, u64 r5,
2468 			   const struct bpf_insn *insn) = {
2469 EVAL6(PROG_NAME_LIST, 32, 64, 96, 128, 160, 192)
2470 EVAL6(PROG_NAME_LIST, 224, 256, 288, 320, 352, 384)
2471 EVAL4(PROG_NAME_LIST, 416, 448, 480, 512)
2472 };
2473 #undef PROG_NAME_LIST
2474 
2475 #ifdef CONFIG_BPF_SYSCALL
2476 int bpf_patch_call_args(struct bpf_insn *insn, u32 stack_depth)
2477 {
2478 	stack_depth = max_t(u32, stack_depth, 1);
2479 	/* Prevent out-of-bounds read to interpreters_args */
2480 	if (stack_depth > MAX_BPF_STACK)
2481 		return -EINVAL;
2482 	insn->off = (round_up(stack_depth, 32) / 32) - 1;
2483 	insn->code = BPF_JMP | BPF_CALL_ARGS;
2484 	return 0;
2485 }
2486 
2487 s32 bpf_call_args_imm(s16 idx)
2488 {
2489 	if (WARN_ON_ONCE(idx < 0 || idx >= ARRAY_SIZE(interpreters_args)))
2490 		return 0;
2491 	return BPF_CALL_IMM(interpreters_args[idx]);
2492 }
2493 #endif
2494 #endif
2495 
2496 static unsigned int __bpf_prog_ret0_warn(const void *ctx,
2497 					 const struct bpf_insn *insn)
2498 {
2499 	/* If this handler ever gets executed, then BPF_JIT_ALWAYS_ON
2500 	 * is not working properly, so warn about it!
2501 	 */
2502 	WARN_ON_ONCE(1);
2503 	return 0;
2504 }
2505 
2506 static bool __bpf_prog_map_compatible(struct bpf_map *map,
2507 				      const struct bpf_prog *fp)
2508 {
2509 	enum bpf_prog_type prog_type = resolve_prog_type(fp);
2510 	struct bpf_prog_aux *aux = fp->aux;
2511 	enum bpf_cgroup_storage_type i;
2512 	bool ret = false;
2513 	u64 cookie;
2514 
2515 	if (fp->kprobe_override)
2516 		return ret;
2517 
2518 	spin_lock(&map->owner_lock);
2519 	/* There's no owner yet where we could check for compatibility. */
2520 	if (!map->owner) {
2521 		map->owner = bpf_map_owner_alloc(map);
2522 		if (!map->owner)
2523 			goto err;
2524 		map->owner->type  = prog_type;
2525 		map->owner->jited = fp->jited;
2526 		map->owner->xdp_has_frags = aux->xdp_has_frags;
2527 		map->owner->sleepable = fp->sleepable;
2528 		map->owner->expected_attach_type = fp->expected_attach_type;
2529 		map->owner->attach_func_proto = aux->attach_func_proto;
2530 		for_each_cgroup_storage_type(i) {
2531 			map->owner->storage_cookie[i] =
2532 				aux->cgroup_storage[i] ?
2533 				aux->cgroup_storage[i]->cookie : 0;
2534 		}
2535 		ret = true;
2536 	} else {
2537 		ret = map->owner->type  == prog_type &&
2538 		      map->owner->jited == fp->jited &&
2539 		      map->owner->xdp_has_frags == aux->xdp_has_frags &&
2540 		      map->owner->sleepable == fp->sleepable;
2541 		if (ret &&
2542 		    map->map_type == BPF_MAP_TYPE_PROG_ARRAY &&
2543 		    map->owner->expected_attach_type != fp->expected_attach_type)
2544 			ret = false;
2545 		for_each_cgroup_storage_type(i) {
2546 			if (!ret)
2547 				break;
2548 			cookie = aux->cgroup_storage[i] ?
2549 				 aux->cgroup_storage[i]->cookie : 0;
2550 			ret = map->owner->storage_cookie[i] == cookie ||
2551 			      (!cookie && !aux->tail_call_reachable);
2552 		}
2553 		if (ret &&
2554 		    map->owner->attach_func_proto != aux->attach_func_proto) {
2555 			switch (prog_type) {
2556 			case BPF_PROG_TYPE_TRACING:
2557 			case BPF_PROG_TYPE_LSM:
2558 			case BPF_PROG_TYPE_EXT:
2559 			case BPF_PROG_TYPE_STRUCT_OPS:
2560 				ret = false;
2561 				break;
2562 			default:
2563 				break;
2564 			}
2565 		}
2566 	}
2567 err:
2568 	spin_unlock(&map->owner_lock);
2569 	return ret;
2570 }
2571 
2572 bool bpf_prog_map_compatible(struct bpf_map *map, const struct bpf_prog *fp)
2573 {
2574 	/* XDP programs inserted into maps are not guaranteed to run on
2575 	 * a particular netdev (and can run outside driver context entirely
2576 	 * in the case of devmap and cpumap). Until device checks
2577 	 * are implemented, prohibit adding dev-bound programs to program maps.
2578 	 */
2579 	if (bpf_prog_is_dev_bound(fp->aux))
2580 		return false;
2581 
2582 	return __bpf_prog_map_compatible(map, fp);
2583 }
2584 
2585 static int bpf_check_tail_call(const struct bpf_prog *fp)
2586 {
2587 	struct bpf_prog_aux *aux = fp->aux;
2588 	int i, ret = 0;
2589 
2590 	mutex_lock(&aux->used_maps_mutex);
2591 	for (i = 0; i < aux->used_map_cnt; i++) {
2592 		struct bpf_map *map = aux->used_maps[i];
2593 
2594 		if (!map_type_contains_progs(map))
2595 			continue;
2596 
2597 		if (!__bpf_prog_map_compatible(map, fp)) {
2598 			ret = -EINVAL;
2599 			goto out;
2600 		}
2601 	}
2602 
2603 out:
2604 	mutex_unlock(&aux->used_maps_mutex);
2605 	return ret;
2606 }
2607 
2608 static bool bpf_prog_select_interpreter(struct bpf_prog *fp)
2609 {
2610 	bool select_interpreter = false;
2611 #ifndef CONFIG_BPF_JIT_ALWAYS_ON
2612 	u32 stack_depth = max_t(u32, fp->aux->stack_depth, 1);
2613 	u32 idx = (round_up(stack_depth, 32) / 32) - 1;
2614 
2615 	/* may_goto may cause stack size > 512, leading to idx out-of-bounds.
2616 	 * But for non-JITed programs, we don't need bpf_func, so no bounds
2617 	 * check needed.
2618 	 */
2619 	if (idx < ARRAY_SIZE(interpreters)) {
2620 		fp->bpf_func = interpreters[idx];
2621 		select_interpreter = true;
2622 	} else {
2623 		fp->bpf_func = __bpf_prog_ret0_warn;
2624 	}
2625 #else
2626 	fp->bpf_func = __bpf_prog_ret0_warn;
2627 #endif
2628 	return select_interpreter;
2629 }
2630 
2631 static struct bpf_prog *bpf_prog_jit_compile(struct bpf_verifier_env *env, struct bpf_prog *prog)
2632 {
2633 #ifdef CONFIG_BPF_JIT
2634 	struct bpf_prog *orig_prog;
2635 
2636 	if (!bpf_prog_need_blind(prog))
2637 		return bpf_int_jit_compile(env, prog);
2638 
2639 	orig_prog = prog;
2640 	prog = bpf_jit_blind_constants(env, prog);
2641 	/*
2642 	 * Fall back to the interpreter after blinding failures, except when
2643 	 * the loader was killed.
2644 	 */
2645 	if (IS_ERR(prog)) {
2646 		if (PTR_ERR(prog) == -EINTR)
2647 			return prog;
2648 		goto out_restore;
2649 	}
2650 
2651 	prog = bpf_int_jit_compile(env, prog);
2652 	if (prog->jited) {
2653 		bpf_jit_prog_release_other(prog, orig_prog);
2654 		return prog;
2655 	}
2656 
2657 	bpf_jit_prog_release_other(orig_prog, prog);
2658 
2659 out_restore:
2660 	prog = orig_prog;
2661 #endif
2662 	return prog;
2663 }
2664 
2665 struct bpf_prog *__bpf_prog_select_runtime(struct bpf_verifier_env *env, struct bpf_prog *fp,
2666 					   int *err)
2667 {
2668 	struct bpf_prog *jit_prog;
2669 
2670 	/* In case of BPF to BPF calls, verifier did all the prep
2671 	 * work with regards to JITing, etc.
2672 	 */
2673 	bool jit_needed = fp->jit_required;
2674 
2675 	if (fp->bpf_func)
2676 		goto finalize;
2677 
2678 	if (!bpf_prog_select_interpreter(fp))
2679 		jit_needed = true;
2680 
2681 	/* eBPF JITs can rewrite the program in case constant
2682 	 * blinding is active. However, in case of error during
2683 	 * blinding, bpf_int_jit_compile() must always return a
2684 	 * valid program, which in this case would simply not
2685 	 * be JITed, but falls back to the interpreter.
2686 	 */
2687 	if (!bpf_prog_is_offloaded(fp->aux)) {
2688 		*err = bpf_prog_alloc_jited_linfo(fp);
2689 		if (*err)
2690 			return fp;
2691 
2692 		jit_prog = bpf_prog_jit_compile(env, fp);
2693 		if (IS_ERR(jit_prog)) {
2694 			*err = PTR_ERR(jit_prog);
2695 			return fp;
2696 		}
2697 		fp = jit_prog;
2698 		bpf_prog_jit_attempt_done(fp);
2699 		if (!fp->jited && jit_needed) {
2700 			*err = -ENOTSUPP;
2701 			return fp;
2702 		}
2703 	} else {
2704 		*err = bpf_prog_offload_compile(fp);
2705 		if (*err)
2706 			return fp;
2707 	}
2708 
2709 finalize:
2710 	*err = bpf_prog_lock_ro(fp);
2711 	if (*err)
2712 		return fp;
2713 
2714 	/* The tail call compatibility check can only be done at
2715 	 * this late stage as we need to determine, if we deal
2716 	 * with JITed or non JITed program concatenations and not
2717 	 * all eBPF JITs might immediately support all features.
2718 	 */
2719 	*err = bpf_check_tail_call(fp);
2720 
2721 	return fp;
2722 }
2723 
2724 /**
2725  *	bpf_prog_select_runtime - select exec runtime for BPF program
2726  *	@fp: bpf_prog populated with BPF program
2727  *	@err: pointer to error variable
2728  *
2729  * Try to JIT eBPF program, if JIT is not available, use interpreter.
2730  * The BPF program will be executed via bpf_prog_run() function.
2731  *
2732  * Return: the &fp argument along with &err set to 0 for success or
2733  * a negative errno code on failure
2734  */
2735 struct bpf_prog *bpf_prog_select_runtime(struct bpf_prog *fp, int *err)
2736 {
2737 	return __bpf_prog_select_runtime(NULL, fp, err);
2738 }
2739 EXPORT_SYMBOL_GPL(bpf_prog_select_runtime);
2740 
2741 static unsigned int __bpf_prog_ret1(const void *ctx,
2742 				    const struct bpf_insn *insn)
2743 {
2744 	return 1;
2745 }
2746 
2747 static struct bpf_prog_dummy {
2748 	struct bpf_prog prog;
2749 } dummy_bpf_prog = {
2750 	.prog = {
2751 		.bpf_func = __bpf_prog_ret1,
2752 	},
2753 };
2754 
2755 struct bpf_prog_array bpf_empty_prog_array = {
2756 	.items = {
2757 		{ .prog = NULL },
2758 	},
2759 };
2760 EXPORT_SYMBOL(bpf_empty_prog_array);
2761 
2762 struct bpf_prog_array *bpf_prog_array_alloc(u32 prog_cnt, gfp_t flags)
2763 {
2764 	struct bpf_prog_array *p;
2765 
2766 	if (prog_cnt)
2767 		p = kzalloc_flex(*p, items, prog_cnt + 1, flags);
2768 	else
2769 		p = &bpf_empty_prog_array;
2770 
2771 	return p;
2772 }
2773 
2774 void bpf_prog_array_free(struct bpf_prog_array *progs)
2775 {
2776 	if (!progs || progs == &bpf_empty_prog_array)
2777 		return;
2778 	kfree_rcu(progs, rcu);
2779 }
2780 
2781 static void __bpf_prog_array_free_sleepable_cb(struct rcu_head *rcu)
2782 {
2783 	struct bpf_prog_array *progs;
2784 
2785 	/*
2786 	 * RCU Tasks Trace grace period implies RCU grace period, there is no
2787 	 * need to call kfree_rcu(), just call kfree() directly.
2788 	 */
2789 	progs = container_of(rcu, struct bpf_prog_array, rcu);
2790 	kfree(progs);
2791 }
2792 
2793 void bpf_prog_array_free_sleepable(struct bpf_prog_array *progs)
2794 {
2795 	if (!progs || progs == &bpf_empty_prog_array)
2796 		return;
2797 	call_rcu_tasks_trace(&progs->rcu, __bpf_prog_array_free_sleepable_cb);
2798 }
2799 
2800 int bpf_prog_array_length(struct bpf_prog_array *array)
2801 {
2802 	struct bpf_prog_array_item *item;
2803 	u32 cnt = 0;
2804 
2805 	for (item = array->items; item->prog; item++)
2806 		if (item->prog != &dummy_bpf_prog.prog)
2807 			cnt++;
2808 	return cnt;
2809 }
2810 
2811 bool bpf_prog_array_is_empty(struct bpf_prog_array *array)
2812 {
2813 	struct bpf_prog_array_item *item;
2814 
2815 	for (item = array->items; item->prog; item++)
2816 		if (item->prog != &dummy_bpf_prog.prog)
2817 			return false;
2818 	return true;
2819 }
2820 
2821 static bool bpf_prog_array_copy_core(struct bpf_prog_array *array,
2822 				     u32 *prog_ids,
2823 				     u32 request_cnt)
2824 {
2825 	struct bpf_prog_array_item *item;
2826 	int i = 0;
2827 
2828 	for (item = array->items; item->prog; item++) {
2829 		if (item->prog == &dummy_bpf_prog.prog)
2830 			continue;
2831 		prog_ids[i] = item->prog->aux->id;
2832 		if (++i == request_cnt) {
2833 			item++;
2834 			break;
2835 		}
2836 	}
2837 
2838 	return !!(item->prog);
2839 }
2840 
2841 int bpf_prog_array_copy_to_user(struct bpf_prog_array *array,
2842 				__u32 __user *prog_ids, u32 cnt)
2843 {
2844 	unsigned long err = 0;
2845 	bool nospc;
2846 	u32 *ids;
2847 
2848 	/* users of this function are doing:
2849 	 * cnt = bpf_prog_array_length();
2850 	 * if (cnt > 0)
2851 	 *     bpf_prog_array_copy_to_user(..., cnt);
2852 	 * so below kcalloc doesn't need extra cnt > 0 check.
2853 	 */
2854 	ids = kcalloc(cnt, sizeof(u32), GFP_USER | __GFP_NOWARN);
2855 	if (!ids)
2856 		return -ENOMEM;
2857 	nospc = bpf_prog_array_copy_core(array, ids, cnt);
2858 	err = copy_to_user(prog_ids, ids, cnt * sizeof(u32));
2859 	kfree(ids);
2860 	if (err)
2861 		return -EFAULT;
2862 	if (nospc)
2863 		return -ENOSPC;
2864 	return 0;
2865 }
2866 
2867 void bpf_prog_array_delete_safe(struct bpf_prog_array *array,
2868 				struct bpf_prog *old_prog)
2869 {
2870 	struct bpf_prog_array_item *item;
2871 
2872 	for (item = array->items; item->prog; item++)
2873 		if (item->prog == old_prog) {
2874 			WRITE_ONCE(item->prog, &dummy_bpf_prog.prog);
2875 			break;
2876 		}
2877 }
2878 
2879 /**
2880  * bpf_prog_array_delete_safe_at() - Replaces the program at the given
2881  *                                   index into the program array with
2882  *                                   a dummy no-op program.
2883  * @array: a bpf_prog_array
2884  * @index: the index of the program to replace
2885  *
2886  * Skips over dummy programs, by not counting them, when calculating
2887  * the position of the program to replace.
2888  *
2889  * Return:
2890  * * 0		- Success
2891  * * -EINVAL	- Invalid index value. Must be a non-negative integer.
2892  * * -ENOENT	- Index out of range
2893  */
2894 int bpf_prog_array_delete_safe_at(struct bpf_prog_array *array, int index)
2895 {
2896 	return bpf_prog_array_update_at(array, index, &dummy_bpf_prog.prog);
2897 }
2898 
2899 /**
2900  * bpf_prog_array_update_at() - Updates the program at the given index
2901  *                              into the program array.
2902  * @array: a bpf_prog_array
2903  * @index: the index of the program to update
2904  * @prog: the program to insert into the array
2905  *
2906  * Skips over dummy programs, by not counting them, when calculating
2907  * the position of the program to update.
2908  *
2909  * Return:
2910  * * 0		- Success
2911  * * -EINVAL	- Invalid index value. Must be a non-negative integer.
2912  * * -ENOENT	- Index out of range
2913  */
2914 int bpf_prog_array_update_at(struct bpf_prog_array *array, int index,
2915 			     struct bpf_prog *prog)
2916 {
2917 	struct bpf_prog_array_item *item;
2918 
2919 	if (unlikely(index < 0))
2920 		return -EINVAL;
2921 
2922 	for (item = array->items; item->prog; item++) {
2923 		if (item->prog == &dummy_bpf_prog.prog)
2924 			continue;
2925 		if (!index) {
2926 			WRITE_ONCE(item->prog, prog);
2927 			return 0;
2928 		}
2929 		index--;
2930 	}
2931 	return -ENOENT;
2932 }
2933 
2934 int bpf_prog_array_copy(struct bpf_prog_array *old_array,
2935 			struct bpf_prog *exclude_prog,
2936 			struct bpf_prog *include_prog,
2937 			u64 bpf_cookie,
2938 			struct bpf_prog_array **new_array)
2939 {
2940 	int new_prog_cnt, carry_prog_cnt = 0;
2941 	struct bpf_prog_array_item *existing, *new;
2942 	struct bpf_prog_array *array;
2943 	bool found_exclude = false;
2944 
2945 	/* Figure out how many existing progs we need to carry over to
2946 	 * the new array.
2947 	 */
2948 	if (old_array) {
2949 		existing = old_array->items;
2950 		for (; existing->prog; existing++) {
2951 			if (existing->prog == exclude_prog) {
2952 				found_exclude = true;
2953 				continue;
2954 			}
2955 			if (existing->prog != &dummy_bpf_prog.prog)
2956 				carry_prog_cnt++;
2957 			if (existing->prog == include_prog)
2958 				return -EEXIST;
2959 		}
2960 	}
2961 
2962 	if (exclude_prog && !found_exclude)
2963 		return -ENOENT;
2964 
2965 	/* How many progs (not NULL) will be in the new array? */
2966 	new_prog_cnt = carry_prog_cnt;
2967 	if (include_prog)
2968 		new_prog_cnt += 1;
2969 
2970 	/* Do we have any prog (not NULL) in the new array? */
2971 	if (!new_prog_cnt) {
2972 		*new_array = NULL;
2973 		return 0;
2974 	}
2975 
2976 	/* +1 as the end of prog_array is marked with NULL */
2977 	array = bpf_prog_array_alloc(new_prog_cnt + 1, GFP_KERNEL);
2978 	if (!array)
2979 		return -ENOMEM;
2980 	new = array->items;
2981 
2982 	/* Fill in the new prog array */
2983 	if (carry_prog_cnt) {
2984 		existing = old_array->items;
2985 		for (; existing->prog; existing++) {
2986 			if (existing->prog == exclude_prog ||
2987 			    existing->prog == &dummy_bpf_prog.prog)
2988 				continue;
2989 
2990 			new->prog = existing->prog;
2991 			new->bpf_cookie = existing->bpf_cookie;
2992 			new++;
2993 		}
2994 	}
2995 	if (include_prog) {
2996 		new->prog = include_prog;
2997 		new->bpf_cookie = bpf_cookie;
2998 		new++;
2999 	}
3000 	new->prog = NULL;
3001 	*new_array = array;
3002 	return 0;
3003 }
3004 
3005 int bpf_prog_array_copy_info(struct bpf_prog_array *array,
3006 			     u32 *prog_ids, u32 request_cnt,
3007 			     u32 *prog_cnt)
3008 {
3009 	u32 cnt = 0;
3010 
3011 	if (array)
3012 		cnt = bpf_prog_array_length(array);
3013 
3014 	*prog_cnt = cnt;
3015 
3016 	/* return early if user requested only program count or nothing to copy */
3017 	if (!request_cnt || !cnt)
3018 		return 0;
3019 
3020 	/* this function is called under trace/bpf_trace.c: bpf_event_mutex */
3021 	return bpf_prog_array_copy_core(array, prog_ids, request_cnt) ? -ENOSPC
3022 								     : 0;
3023 }
3024 
3025 void __bpf_free_used_maps(struct bpf_prog_aux *aux,
3026 			  struct bpf_map **used_maps, u32 len)
3027 {
3028 	struct bpf_map *map;
3029 	bool sleepable;
3030 	u32 i;
3031 
3032 	sleepable = aux->prog->sleepable;
3033 	for (i = 0; i < len; i++) {
3034 		map = used_maps[i];
3035 		if (map->ops->map_poke_untrack)
3036 			map->ops->map_poke_untrack(map, aux);
3037 		if (sleepable)
3038 			atomic64_dec(&map->sleepable_refcnt);
3039 		bpf_map_put(map);
3040 	}
3041 }
3042 
3043 static void bpf_free_used_maps(struct bpf_prog_aux *aux)
3044 {
3045 	__bpf_free_used_maps(aux, aux->used_maps, aux->used_map_cnt);
3046 	kfree(aux->used_maps);
3047 }
3048 
3049 void __bpf_free_used_btfs(struct btf_mod_pair *used_btfs, u32 len)
3050 {
3051 #ifdef CONFIG_BPF_SYSCALL
3052 	struct btf_mod_pair *btf_mod;
3053 	u32 i;
3054 
3055 	for (i = 0; i < len; i++) {
3056 		btf_mod = &used_btfs[i];
3057 		if (btf_mod->module)
3058 			module_put(btf_mod->module);
3059 		btf_put(btf_mod->btf);
3060 	}
3061 #endif
3062 }
3063 
3064 static void bpf_free_used_btfs(struct bpf_prog_aux *aux)
3065 {
3066 	__bpf_free_used_btfs(aux->used_btfs, aux->used_btf_cnt);
3067 	kfree(aux->used_btfs);
3068 }
3069 
3070 static void bpf_prog_free_deferred(struct work_struct *work)
3071 {
3072 	struct bpf_prog_aux *aux;
3073 	int i;
3074 
3075 	aux = container_of(work, struct bpf_prog_aux, work);
3076 #ifdef CONFIG_BPF_SYSCALL
3077 	bpf_free_kfunc_btf_tab(aux->kfunc_btf_tab);
3078 	bpf_prog_stream_free(aux->prog);
3079 #endif
3080 #ifdef CONFIG_CGROUP_BPF
3081 	if (aux->cgroup_atype != CGROUP_BPF_ATTACH_TYPE_INVALID)
3082 		bpf_cgroup_atype_put(aux->cgroup_atype);
3083 #endif
3084 	bpf_free_used_maps(aux);
3085 	bpf_free_used_btfs(aux);
3086 	bpf_prog_disassoc_struct_ops(aux->prog);
3087 	if (bpf_prog_is_dev_bound(aux))
3088 		bpf_prog_dev_bound_destroy(aux->prog);
3089 #ifdef CONFIG_PERF_EVENTS
3090 	if (aux->prog->has_callchain_buf)
3091 		put_callchain_buffers();
3092 #endif
3093 	if (aux->dst_trampoline)
3094 		bpf_trampoline_put(aux->dst_trampoline);
3095 	for (i = 0; i < aux->real_func_cnt; i++) {
3096 		/* We can just unlink the subprog poke descriptor table as
3097 		 * it was originally linked to the main program and is also
3098 		 * released along with it.
3099 		 */
3100 		aux->func[i]->aux->poke_tab = NULL;
3101 		bpf_jit_free(aux->func[i]);
3102 	}
3103 	if (aux->real_func_cnt) {
3104 		kfree(aux->func);
3105 		bpf_prog_unlock_free(aux->prog);
3106 	} else {
3107 		bpf_jit_free(aux->prog);
3108 	}
3109 }
3110 
3111 void bpf_prog_free(struct bpf_prog *fp)
3112 {
3113 	struct bpf_prog_aux *aux = fp->aux;
3114 
3115 	if (aux->dst_prog)
3116 		bpf_prog_put(aux->dst_prog);
3117 	bpf_token_put(aux->token);
3118 	INIT_WORK(&aux->work, bpf_prog_free_deferred);
3119 	schedule_work(&aux->work);
3120 }
3121 EXPORT_SYMBOL_GPL(bpf_prog_free);
3122 
3123 /* RNG for unprivileged user space with separated state from prandom_u32(). */
3124 static DEFINE_PER_CPU(struct rnd_state, bpf_user_rnd_state);
3125 
3126 void bpf_user_rnd_init_once(void)
3127 {
3128 	prandom_init_once(&bpf_user_rnd_state);
3129 }
3130 
3131 BPF_CALL_0(bpf_user_rnd_u32)
3132 {
3133 	/* Should someone ever have the rather unwise idea to use some
3134 	 * of the registers passed into this function, then note that
3135 	 * this function is called from native eBPF and classic-to-eBPF
3136 	 * transformations. Register assignments from both sides are
3137 	 * different, f.e. classic always sets fn(ctx, A, X) here.
3138 	 */
3139 	struct rnd_state *state;
3140 	u32 res;
3141 
3142 	state = &get_cpu_var(bpf_user_rnd_state);
3143 	res = prandom_u32_state(state);
3144 	put_cpu_var(bpf_user_rnd_state);
3145 
3146 	return res;
3147 }
3148 
3149 BPF_CALL_0(bpf_get_raw_cpu_id)
3150 {
3151 	return raw_smp_processor_id();
3152 }
3153 
3154 /* Weak definitions of helper functions in case we don't have bpf syscall. */
3155 const struct bpf_func_proto bpf_map_lookup_elem_proto __weak;
3156 const struct bpf_func_proto bpf_map_update_elem_proto __weak;
3157 const struct bpf_func_proto bpf_map_delete_elem_proto __weak;
3158 const struct bpf_func_proto bpf_map_push_elem_proto __weak;
3159 const struct bpf_func_proto bpf_map_pop_elem_proto __weak;
3160 const struct bpf_func_proto bpf_map_peek_elem_proto __weak;
3161 const struct bpf_func_proto bpf_map_lookup_percpu_elem_proto __weak;
3162 const struct bpf_func_proto bpf_spin_lock_proto __weak;
3163 const struct bpf_func_proto bpf_spin_unlock_proto __weak;
3164 const struct bpf_func_proto bpf_jiffies64_proto __weak;
3165 
3166 const struct bpf_func_proto bpf_get_prandom_u32_proto __weak;
3167 const struct bpf_func_proto bpf_get_smp_processor_id_proto __weak;
3168 const struct bpf_func_proto bpf_get_numa_node_id_proto __weak;
3169 const struct bpf_func_proto bpf_ktime_get_ns_proto __weak;
3170 const struct bpf_func_proto bpf_ktime_get_boot_ns_proto __weak;
3171 const struct bpf_func_proto bpf_ktime_get_coarse_ns_proto __weak;
3172 const struct bpf_func_proto bpf_ktime_get_tai_ns_proto __weak;
3173 
3174 const struct bpf_func_proto bpf_get_current_pid_tgid_proto __weak;
3175 const struct bpf_func_proto bpf_get_current_uid_gid_proto __weak;
3176 const struct bpf_func_proto bpf_get_current_comm_proto __weak;
3177 const struct bpf_func_proto bpf_get_current_cgroup_id_proto __weak;
3178 const struct bpf_func_proto bpf_get_current_ancestor_cgroup_id_proto __weak;
3179 const struct bpf_func_proto bpf_get_local_storage_proto __weak;
3180 const struct bpf_func_proto bpf_get_ns_current_pid_tgid_proto __weak;
3181 const struct bpf_func_proto bpf_snprintf_btf_proto __weak;
3182 const struct bpf_func_proto bpf_seq_printf_btf_proto __weak;
3183 const struct bpf_func_proto bpf_set_retval_proto __weak;
3184 const struct bpf_func_proto bpf_get_retval_proto __weak;
3185 
3186 const struct bpf_func_proto * __weak bpf_get_trace_printk_proto(void)
3187 {
3188 	return NULL;
3189 }
3190 
3191 const struct bpf_func_proto * __weak bpf_get_trace_vprintk_proto(void)
3192 {
3193 	return NULL;
3194 }
3195 
3196 const struct bpf_func_proto * __weak bpf_get_perf_event_read_value_proto(void)
3197 {
3198 	return NULL;
3199 }
3200 
3201 u64 __weak
3202 bpf_event_output(struct bpf_map *map, u64 flags, void *meta, u64 meta_size,
3203 		 void *ctx, u64 ctx_size, bpf_ctx_copy_t ctx_copy)
3204 {
3205 	return -ENOTSUPP;
3206 }
3207 EXPORT_SYMBOL_GPL(bpf_event_output);
3208 
3209 /* Always built-in helper functions. */
3210 const struct bpf_func_proto bpf_tail_call_proto = {
3211 	/* func is unused for tail_call, we set it to pass the
3212 	 * get_helper_proto check
3213 	 */
3214 	.func		= BPF_PTR_POISON,
3215 	.gpl_only	= false,
3216 	.ret_type	= RET_VOID,
3217 	.arg1_type	= ARG_PTR_TO_CTX,
3218 	.arg2_type	= ARG_CONST_MAP_PTR,
3219 	.arg3_type	= ARG_ANYTHING,
3220 };
3221 
3222 /* Stub for JITs that only support cBPF. eBPF programs are interpreted.
3223  * It is encouraged to implement bpf_int_jit_compile() instead, so that
3224  * eBPF and implicitly also cBPF can get JITed!
3225  */
3226 struct bpf_prog * __weak bpf_int_jit_compile(struct bpf_verifier_env *env, struct bpf_prog *prog)
3227 {
3228 	return prog;
3229 }
3230 
3231 /* Stub for JITs that support eBPF. All cBPF code gets transformed into
3232  * eBPF by the kernel and is later compiled by bpf_int_jit_compile().
3233  */
3234 void __weak bpf_jit_compile(struct bpf_prog *prog)
3235 {
3236 }
3237 
3238 bool __weak bpf_helper_changes_pkt_data(enum bpf_func_id func_id)
3239 {
3240 	return false;
3241 }
3242 
3243 /* Return TRUE if the JIT backend wants verifier to enable sub-register usage
3244  * analysis code and wants explicit zero extension inserted by verifier.
3245  * Otherwise, return FALSE.
3246  *
3247  * The verifier inserts an explicit zero extension after BPF_CMPXCHGs even if
3248  * you don't override this. JITs that don't want these extra insns can detect
3249  * them using insn_is_zext.
3250  */
3251 bool __weak bpf_jit_needs_zext(void)
3252 {
3253 	return false;
3254 }
3255 
3256 /* By default, enable the verifier's mitigations against Spectre v1 and v4 for
3257  * all archs. The value returned must not change at runtime as there is
3258  * currently no support for reloading programs that were loaded without
3259  * mitigations.
3260  */
3261 bool __weak bpf_jit_bypass_spec_v1(void)
3262 {
3263 	return false;
3264 }
3265 
3266 bool __weak bpf_jit_bypass_spec_v4(void)
3267 {
3268 	return false;
3269 }
3270 
3271 /* Return true if the JIT inlines the call to the helper corresponding to
3272  * the imm.
3273  *
3274  * The verifier will not patch the insn->imm for the call to the helper if
3275  * this returns true.
3276  */
3277 bool __weak bpf_jit_inlines_helper_call(s32 imm)
3278 {
3279 	return false;
3280 }
3281 
3282 /* Return TRUE if the JIT backend supports mixing bpf2bpf and tailcalls. */
3283 bool __weak bpf_jit_supports_subprog_tailcalls(void)
3284 {
3285 	return false;
3286 }
3287 
3288 bool __weak bpf_jit_supports_percpu_insn(void)
3289 {
3290 	return false;
3291 }
3292 
3293 bool __weak bpf_jit_supports_kfunc_call(void)
3294 {
3295 	return false;
3296 }
3297 
3298 bool __weak bpf_jit_supports_stack_args(void)
3299 {
3300 	return false;
3301 }
3302 
3303 bool __weak bpf_jit_supports_arena_args(void)
3304 {
3305 	return false;
3306 }
3307 
3308 bool __weak bpf_jit_supports_far_kfunc_call(void)
3309 {
3310 	return false;
3311 }
3312 
3313 bool __weak bpf_jit_supports_arena(void)
3314 {
3315 	return false;
3316 }
3317 
3318 bool __weak bpf_jit_supports_insn(struct bpf_insn *insn, bool in_arena)
3319 {
3320 	return false;
3321 }
3322 
3323 bool __weak bpf_jit_supports_fsession(void)
3324 {
3325 	return false;
3326 }
3327 
3328 u64 __weak bpf_arch_uaddress_limit(void)
3329 {
3330 #if defined(CONFIG_64BIT) && defined(CONFIG_ARCH_HAS_NON_OVERLAPPING_ADDRESS_SPACE)
3331 	return TASK_SIZE;
3332 #else
3333 	return 0;
3334 #endif
3335 }
3336 
3337 /* Return TRUE if the JIT backend satisfies the following two conditions:
3338  * 1) JIT backend supports atomic_xchg() on pointer-sized words.
3339  * 2) Under the specific arch, the implementation of xchg() is the same
3340  *    as atomic_xchg() on pointer-sized words.
3341  */
3342 bool __weak bpf_jit_supports_ptr_xchg(void)
3343 {
3344 	return false;
3345 }
3346 
3347 /* To execute LD_ABS/LD_IND instructions __bpf_prog_run() may call
3348  * skb_copy_bits(), so provide a weak definition of it for NET-less config.
3349  */
3350 int __weak skb_copy_bits(const struct sk_buff *skb, int offset, void *to,
3351 			 int len)
3352 {
3353 	return -EFAULT;
3354 }
3355 
3356 int __weak bpf_arch_text_poke(void *ip, enum bpf_text_poke_type old_t,
3357 			      enum bpf_text_poke_type new_t, void *old_addr,
3358 			      void *new_addr)
3359 {
3360 	return -ENOTSUPP;
3361 }
3362 
3363 void * __weak bpf_arch_text_copy(void *dst, void *src, size_t len)
3364 {
3365 	return ERR_PTR(-ENOTSUPP);
3366 }
3367 
3368 int __weak bpf_arch_text_invalidate(void *dst, size_t len)
3369 {
3370 	return -ENOTSUPP;
3371 }
3372 
3373 bool __weak bpf_jit_supports_exceptions(void)
3374 {
3375 	return false;
3376 }
3377 
3378 bool __weak bpf_jit_supports_private_stack(void)
3379 {
3380 	return false;
3381 }
3382 
3383 void __weak arch_bpf_stack_walk(bool (*consume_fn)(void *cookie, u64 ip, u64 sp, u64 bp), void *cookie)
3384 {
3385 }
3386 
3387 bool __weak bpf_jit_supports_timed_may_goto(void)
3388 {
3389 	return false;
3390 }
3391 
3392 u64 __weak arch_bpf_timed_may_goto(void)
3393 {
3394 	return 0;
3395 }
3396 
3397 static noinline void bpf_prog_report_may_goto_violation(void)
3398 {
3399 #ifdef CONFIG_BPF_SYSCALL
3400 	struct bpf_stream_stage ss;
3401 	struct bpf_prog *prog;
3402 
3403 	prog = bpf_prog_find_from_stack();
3404 	if (!prog)
3405 		return;
3406 	bpf_stream_stage(ss, prog, BPF_STDERR, ({
3407 		bpf_stream_printk(ss, "ERROR: Timeout detected for may_goto instruction\n");
3408 		bpf_stream_dump_stack(ss);
3409 	}));
3410 #endif
3411 }
3412 
3413 u64 bpf_check_timed_may_goto(struct bpf_timed_may_goto *p)
3414 {
3415 	u64 time = ktime_get_mono_fast_ns();
3416 
3417 	/* Populate the timestamp for this stack frame, and refresh count. */
3418 	if (!p->timestamp) {
3419 		p->timestamp = time;
3420 		return BPF_MAX_TIMED_LOOPS;
3421 	}
3422 	/* Check if we've exhausted our time slice, and zero count. */
3423 	if (unlikely(time - p->timestamp >= (NSEC_PER_SEC / 4))) {
3424 		bpf_prog_report_may_goto_violation();
3425 		return 0;
3426 	}
3427 	/* Refresh the count for the stack frame. */
3428 	return BPF_MAX_TIMED_LOOPS;
3429 }
3430 
3431 /* for configs without MMU or 32-bit */
3432 __weak const struct bpf_map_ops arena_map_ops;
3433 __weak u64 bpf_arena_get_user_vm_start(struct bpf_arena *arena)
3434 {
3435 	return 0;
3436 }
3437 __weak u64 bpf_arena_get_kern_vm_start(struct bpf_arena *arena)
3438 {
3439 	return 0;
3440 }
3441 
3442 #ifdef CONFIG_BPF_SYSCALL
3443 __weak bool bpf_arena_handle_page_fault(unsigned long addr, bool is_write,
3444 					unsigned long fault_ip)
3445 {
3446 	return false;
3447 }
3448 
3449 static int __init bpf_global_ma_init(void)
3450 {
3451 	int ret;
3452 
3453 	ret = bpf_mem_alloc_init(&bpf_global_ma, 0, false);
3454 	bpf_global_ma_set = !ret;
3455 	return ret;
3456 }
3457 late_initcall(bpf_global_ma_init);
3458 #endif
3459 
3460 DEFINE_STATIC_KEY_FALSE(bpf_stats_enabled_key);
3461 EXPORT_SYMBOL(bpf_stats_enabled_key);
3462 
3463 /* All definitions of tracepoints related to BPF. */
3464 #define CREATE_TRACE_POINTS
3465 #include <linux/bpf_trace.h>
3466 
3467 EXPORT_TRACEPOINT_SYMBOL_GPL(xdp_exception);
3468 EXPORT_TRACEPOINT_SYMBOL_GPL(xdp_bulk_tx);
3469 
3470 #ifdef CONFIG_BPF_SYSCALL
3471 
3472 void bpf_get_linfo_source(struct btf *btf, const struct bpf_line_info *linfo,
3473 			  struct bpf_linfo_source *src)
3474 {
3475 	src->file = kbasename(btf_name_by_offset(btf, linfo->file_name_off));
3476 	src->line = btf_name_by_offset(btf, linfo->line_off);
3477 	src->file_name_off = linfo->file_name_off;
3478 	src->line_num = BPF_LINE_INFO_LINE_NUM(linfo->line_col);
3479 	src->line_col = BPF_LINE_INFO_LINE_COL(linfo->line_col);
3480 }
3481 
3482 const struct bpf_line_info *bpf_find_linfo(const struct bpf_prog *prog, u32 insn_off)
3483 {
3484 	const struct bpf_line_info *linfo;
3485 	u32 nr_linfo;
3486 	int l, r, m;
3487 
3488 	nr_linfo = prog->aux->nr_linfo;
3489 	if (!nr_linfo || insn_off >= prog->len)
3490 		return NULL;
3491 
3492 	linfo = prog->aux->linfo;
3493 	/* Loop invariant: linfo[l].insn_off <= insns_off.
3494 	 * linfo[0].insn_off == 0 which always satisfies above condition.
3495 	 * Binary search is searching for rightmost linfo entry that satisfies
3496 	 * the above invariant, giving us the desired record that covers given
3497 	 * instruction offset.
3498 	 */
3499 	l = 0;
3500 	r = nr_linfo - 1;
3501 	while (l < r) {
3502 		/* (r - l + 1) / 2 means we break a tie to the right, so if:
3503 		 * l=1, r=2, linfo[l].insn_off <= insn_off, linfo[r].insn_off > insn_off,
3504 		 * then m=2, we see that linfo[m].insn_off > insn_off, and so
3505 		 * r becomes 1 and we exit the loop with correct l==1.
3506 		 * If the tie was broken to the left, m=1 would end us up in
3507 		 * an endless loop where l and m stay at 1 and r stays at 2.
3508 		 */
3509 		m = l + (r - l + 1) / 2;
3510 		if (linfo[m].insn_off <= insn_off)
3511 			l = m;
3512 		else
3513 			r = m - 1;
3514 	}
3515 
3516 	return &linfo[l];
3517 }
3518 
3519 int bpf_prog_get_file_line(struct bpf_prog *prog, unsigned long ip, const char **filep,
3520 			   const char **linep, int *nump)
3521 {
3522 	struct bpf_linfo_source src;
3523 	int idx = -1, insn_start, insn_end, len;
3524 	struct bpf_line_info *linfo;
3525 	void **jited_linfo;
3526 	struct btf *btf;
3527 	int nr_linfo;
3528 
3529 	btf = prog->aux->btf;
3530 	linfo = prog->aux->linfo;
3531 	jited_linfo = prog->aux->jited_linfo;
3532 
3533 	if (!btf || !linfo || !jited_linfo)
3534 		return -EINVAL;
3535 	len = prog->aux->func ? prog->aux->func[prog->aux->func_idx]->len : prog->len;
3536 
3537 	linfo = &prog->aux->linfo[prog->aux->linfo_idx];
3538 	jited_linfo = &prog->aux->jited_linfo[prog->aux->linfo_idx];
3539 
3540 	insn_start = linfo[0].insn_off;
3541 	insn_end = insn_start + len;
3542 	nr_linfo = prog->aux->nr_linfo - prog->aux->linfo_idx;
3543 
3544 	for (int i = 0; i < nr_linfo &&
3545 	     linfo[i].insn_off >= insn_start && linfo[i].insn_off < insn_end; i++) {
3546 		if (jited_linfo[i] >= (void *)ip)
3547 			break;
3548 		idx = i;
3549 	}
3550 
3551 	if (idx == -1)
3552 		return -ENOENT;
3553 
3554 	bpf_get_linfo_source(btf, &linfo[idx], &src);
3555 	while (isspace(*src.line))
3556 		src.line++;
3557 	if (filep)
3558 		*filep = src.file;
3559 	if (linep)
3560 		*linep = src.line;
3561 	if (nump)
3562 		*nump = src.line_num;
3563 	return 0;
3564 }
3565 
3566 struct walk_stack_ctx {
3567 	struct bpf_prog *prog;
3568 };
3569 
3570 static bool find_from_stack_cb(void *cookie, u64 ip, u64 sp, u64 bp)
3571 {
3572 	struct walk_stack_ctx *ctxp = cookie;
3573 	struct bpf_prog *prog;
3574 
3575 	/*
3576 	 * The RCU read lock is held to safely traverse the latch tree, but we
3577 	 * don't need its protection when accessing the prog, since it has an
3578 	 * active stack frame on the current stack trace, and won't disappear.
3579 	 */
3580 	rcu_read_lock();
3581 	prog = bpf_prog_ksym_find(ip);
3582 	rcu_read_unlock();
3583 	if (!prog)
3584 		return true;
3585 	/* Make sure we return the main prog if we found a subprog */
3586 	ctxp->prog = prog->aux->main_prog_aux->prog;
3587 	return false;
3588 }
3589 
3590 struct bpf_prog *bpf_prog_find_from_stack(void)
3591 {
3592 	struct walk_stack_ctx ctx = {};
3593 
3594 	arch_bpf_stack_walk(find_from_stack_cb, &ctx);
3595 	return ctx.prog;
3596 }
3597 
3598 #endif
3599