xref: /linux/net/netfilter/x_tables.c (revision 6813985ca456d1f5677ad9554f55805cbf27e16f)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * x_tables core - Backend for {ip,ip6,arp}_tables
4  *
5  * Copyright (C) 2006-2006 Harald Welte <laforge@netfilter.org>
6  * Copyright (C) 2006-2012 Patrick McHardy <kaber@trash.net>
7  *
8  * Based on existing ip_tables code which is
9  *   Copyright (C) 1999 Paul `Rusty' Russell & Michael J. Neuling
10  *   Copyright (C) 2000-2005 Netfilter Core Team <coreteam@netfilter.org>
11  */
12 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
13 #include <linux/kernel.h>
14 #include <linux/module.h>
15 #include <linux/socket.h>
16 #include <linux/net.h>
17 #include <linux/proc_fs.h>
18 #include <linux/seq_file.h>
19 #include <linux/string.h>
20 #include <linux/vmalloc.h>
21 #include <linux/mutex.h>
22 #include <linux/mm.h>
23 #include <linux/slab.h>
24 #include <linux/audit.h>
25 #include <linux/user_namespace.h>
26 #include <net/net_namespace.h>
27 #include <net/netns/generic.h>
28 
29 #include <linux/netfilter/x_tables.h>
30 #include <linux/netfilter_arp.h>
31 #include <linux/netfilter_ipv4/ip_tables.h>
32 #include <linux/netfilter_ipv6/ip6_tables.h>
33 #include <linux/netfilter_arp/arp_tables.h>
34 
35 MODULE_LICENSE("GPL");
36 MODULE_AUTHOR("Harald Welte <laforge@netfilter.org>");
37 MODULE_DESCRIPTION("{ip,ip6,arp,eb}_tables backend module");
38 
39 #define XT_PCPU_BLOCK_SIZE 4096
40 #define XT_MAX_TABLE_SIZE	(512 * 1024 * 1024)
41 
42 struct xt_template {
43 	struct list_head list;
44 
45 	/* called when table is needed in the given netns */
46 	int (*table_init)(struct net *net);
47 
48 	struct module *me;
49 
50 	/* A unique name... */
51 	char name[XT_TABLE_MAXNAMELEN];
52 };
53 
54 static struct list_head xt_templates[NFPROTO_NUMPROTO];
55 
56 struct xt_pernet {
57 	struct list_head tables[NFPROTO_NUMPROTO];
58 };
59 
60 struct compat_delta {
61 	unsigned int offset; /* offset in kernel */
62 	int delta; /* delta in 32bit user land */
63 };
64 
65 struct xt_af {
66 	struct mutex mutex;
67 	struct list_head match;
68 	struct list_head target;
69 #ifdef CONFIG_NETFILTER_XTABLES_COMPAT
70 	struct mutex compat_mutex;
71 	struct compat_delta *compat_tab;
72 	unsigned int number; /* number of slots in compat_tab[] */
73 	unsigned int cur; /* number of used slots in compat_tab[] */
74 #endif
75 };
76 
77 static unsigned int xt_pernet_id __read_mostly;
78 static struct xt_af *xt __read_mostly;
79 
80 static const char *const xt_prefix[NFPROTO_NUMPROTO] = {
81 	[NFPROTO_UNSPEC] = "x",
82 	[NFPROTO_IPV4]   = "ip",
83 	[NFPROTO_ARP]    = "arp",
84 	[NFPROTO_BRIDGE] = "eb",
85 	[NFPROTO_IPV6]   = "ip6",
86 };
87 
88 /* Registration hooks for targets. */
89 int xt_register_target(struct xt_target *target)
90 {
91 	u_int8_t af = target->family;
92 
93 	mutex_lock(&xt[af].mutex);
94 	list_add(&target->list, &xt[af].target);
95 	mutex_unlock(&xt[af].mutex);
96 	return 0;
97 }
98 EXPORT_SYMBOL(xt_register_target);
99 
100 void
101 xt_unregister_target(struct xt_target *target)
102 {
103 	u_int8_t af = target->family;
104 
105 	mutex_lock(&xt[af].mutex);
106 	list_del(&target->list);
107 	mutex_unlock(&xt[af].mutex);
108 }
109 EXPORT_SYMBOL(xt_unregister_target);
110 
111 int
112 xt_register_targets(struct xt_target *target, unsigned int n)
113 {
114 	unsigned int i;
115 	int err = 0;
116 
117 	for (i = 0; i < n; i++) {
118 		err = xt_register_target(&target[i]);
119 		if (err)
120 			goto err;
121 	}
122 	return err;
123 
124 err:
125 	if (i > 0)
126 		xt_unregister_targets(target, i);
127 	return err;
128 }
129 EXPORT_SYMBOL(xt_register_targets);
130 
131 void
132 xt_unregister_targets(struct xt_target *target, unsigned int n)
133 {
134 	while (n-- > 0)
135 		xt_unregister_target(&target[n]);
136 }
137 EXPORT_SYMBOL(xt_unregister_targets);
138 
139 int xt_register_match(struct xt_match *match)
140 {
141 	u_int8_t af = match->family;
142 
143 	mutex_lock(&xt[af].mutex);
144 	list_add(&match->list, &xt[af].match);
145 	mutex_unlock(&xt[af].mutex);
146 	return 0;
147 }
148 EXPORT_SYMBOL(xt_register_match);
149 
150 void
151 xt_unregister_match(struct xt_match *match)
152 {
153 	u_int8_t af = match->family;
154 
155 	mutex_lock(&xt[af].mutex);
156 	list_del(&match->list);
157 	mutex_unlock(&xt[af].mutex);
158 }
159 EXPORT_SYMBOL(xt_unregister_match);
160 
161 int
162 xt_register_matches(struct xt_match *match, unsigned int n)
163 {
164 	unsigned int i;
165 	int err = 0;
166 
167 	for (i = 0; i < n; i++) {
168 		err = xt_register_match(&match[i]);
169 		if (err)
170 			goto err;
171 	}
172 	return err;
173 
174 err:
175 	if (i > 0)
176 		xt_unregister_matches(match, i);
177 	return err;
178 }
179 EXPORT_SYMBOL(xt_register_matches);
180 
181 void
182 xt_unregister_matches(struct xt_match *match, unsigned int n)
183 {
184 	while (n-- > 0)
185 		xt_unregister_match(&match[n]);
186 }
187 EXPORT_SYMBOL(xt_unregister_matches);
188 
189 
190 /*
191  * These are weird, but module loading must not be done with mutex
192  * held (since they will register), and we have to have a single
193  * function to use.
194  */
195 
196 /* Find match, grabs ref.  Returns ERR_PTR() on error. */
197 struct xt_match *xt_find_match(u8 af, const char *name, u8 revision)
198 {
199 	struct xt_match *m;
200 	int err = -ENOENT;
201 
202 	if (strnlen(name, XT_EXTENSION_MAXNAMELEN) == XT_EXTENSION_MAXNAMELEN)
203 		return ERR_PTR(-EINVAL);
204 
205 	mutex_lock(&xt[af].mutex);
206 	list_for_each_entry(m, &xt[af].match, list) {
207 		if (strcmp(m->name, name) == 0) {
208 			if (m->revision == revision) {
209 				if (try_module_get(m->me)) {
210 					mutex_unlock(&xt[af].mutex);
211 					return m;
212 				}
213 			} else
214 				err = -EPROTOTYPE; /* Found something. */
215 		}
216 	}
217 	mutex_unlock(&xt[af].mutex);
218 
219 	if (af != NFPROTO_UNSPEC)
220 		/* Try searching again in the family-independent list */
221 		return xt_find_match(NFPROTO_UNSPEC, name, revision);
222 
223 	return ERR_PTR(err);
224 }
225 EXPORT_SYMBOL(xt_find_match);
226 
227 struct xt_match *
228 xt_request_find_match(uint8_t nfproto, const char *name, uint8_t revision)
229 {
230 	struct xt_match *match;
231 
232 	if (strnlen(name, XT_EXTENSION_MAXNAMELEN) == XT_EXTENSION_MAXNAMELEN)
233 		return ERR_PTR(-EINVAL);
234 
235 	match = xt_find_match(nfproto, name, revision);
236 	if (IS_ERR(match)) {
237 		request_module("%st_%s", xt_prefix[nfproto], name);
238 		match = xt_find_match(nfproto, name, revision);
239 	}
240 
241 	return match;
242 }
243 EXPORT_SYMBOL_GPL(xt_request_find_match);
244 
245 /* Find target, grabs ref.  Returns ERR_PTR() on error. */
246 static struct xt_target *xt_find_target(u8 af, const char *name, u8 revision)
247 {
248 	struct xt_target *t;
249 	int err = -ENOENT;
250 
251 	if (strnlen(name, XT_EXTENSION_MAXNAMELEN) == XT_EXTENSION_MAXNAMELEN)
252 		return ERR_PTR(-EINVAL);
253 
254 	mutex_lock(&xt[af].mutex);
255 	list_for_each_entry(t, &xt[af].target, list) {
256 		if (strcmp(t->name, name) == 0) {
257 			if (t->revision == revision) {
258 				if (try_module_get(t->me)) {
259 					mutex_unlock(&xt[af].mutex);
260 					return t;
261 				}
262 			} else
263 				err = -EPROTOTYPE; /* Found something. */
264 		}
265 	}
266 	mutex_unlock(&xt[af].mutex);
267 
268 	if (af != NFPROTO_UNSPEC)
269 		/* Try searching again in the family-independent list */
270 		return xt_find_target(NFPROTO_UNSPEC, name, revision);
271 
272 	return ERR_PTR(err);
273 }
274 
275 struct xt_target *xt_request_find_target(u8 af, const char *name, u8 revision)
276 {
277 	struct xt_target *target;
278 
279 	if (strnlen(name, XT_EXTENSION_MAXNAMELEN) == XT_EXTENSION_MAXNAMELEN)
280 		return ERR_PTR(-EINVAL);
281 
282 	target = xt_find_target(af, name, revision);
283 	if (IS_ERR(target)) {
284 		request_module("%st_%s", xt_prefix[af], name);
285 		target = xt_find_target(af, name, revision);
286 	}
287 
288 	return target;
289 }
290 EXPORT_SYMBOL_GPL(xt_request_find_target);
291 
292 
293 static int xt_obj_to_user(u16 __user *psize, u16 size,
294 			  void __user *pname, const char *name,
295 			  u8 __user *prev, u8 rev)
296 {
297 	if (put_user(size, psize))
298 		return -EFAULT;
299 	if (copy_to_user(pname, name, strlen(name) + 1))
300 		return -EFAULT;
301 	if (put_user(rev, prev))
302 		return -EFAULT;
303 
304 	return 0;
305 }
306 
307 #define XT_OBJ_TO_USER(U, K, TYPE, C_SIZE)				\
308 	xt_obj_to_user(&U->u.TYPE##_size, C_SIZE ? : K->u.TYPE##_size,	\
309 		       U->u.user.name, K->u.kernel.TYPE->name,		\
310 		       &U->u.user.revision, K->u.kernel.TYPE->revision)
311 
312 int xt_data_to_user(void __user *dst, const void *src,
313 		    int usersize, int size, int aligned_size)
314 {
315 	usersize = usersize ? : size;
316 	if (copy_to_user(dst, src, usersize))
317 		return -EFAULT;
318 	if (usersize != aligned_size &&
319 	    clear_user(dst + usersize, aligned_size - usersize))
320 		return -EFAULT;
321 
322 	return 0;
323 }
324 EXPORT_SYMBOL_GPL(xt_data_to_user);
325 
326 #define XT_DATA_TO_USER(U, K, TYPE)					\
327 	xt_data_to_user(U->data, K->data,				\
328 			K->u.kernel.TYPE->usersize,			\
329 			K->u.kernel.TYPE->TYPE##size,			\
330 			XT_ALIGN(K->u.kernel.TYPE->TYPE##size))
331 
332 int xt_match_to_user(const struct xt_entry_match *m,
333 		     struct xt_entry_match __user *u)
334 {
335 	return XT_OBJ_TO_USER(u, m, match, 0) ||
336 	       XT_DATA_TO_USER(u, m, match);
337 }
338 EXPORT_SYMBOL_GPL(xt_match_to_user);
339 
340 int xt_target_to_user(const struct xt_entry_target *t,
341 		      struct xt_entry_target __user *u)
342 {
343 	return XT_OBJ_TO_USER(u, t, target, 0) ||
344 	       XT_DATA_TO_USER(u, t, target);
345 }
346 EXPORT_SYMBOL_GPL(xt_target_to_user);
347 
348 static int match_revfn(u8 af, const char *name, u8 revision, int *bestp)
349 {
350 	const struct xt_match *m;
351 	int have_rev = 0;
352 
353 	mutex_lock(&xt[af].mutex);
354 	list_for_each_entry(m, &xt[af].match, list) {
355 		if (strcmp(m->name, name) == 0) {
356 			if (m->revision > *bestp)
357 				*bestp = m->revision;
358 			if (m->revision == revision)
359 				have_rev = 1;
360 		}
361 	}
362 	mutex_unlock(&xt[af].mutex);
363 
364 	if (af != NFPROTO_UNSPEC && !have_rev)
365 		return match_revfn(NFPROTO_UNSPEC, name, revision, bestp);
366 
367 	return have_rev;
368 }
369 
370 static int target_revfn(u8 af, const char *name, u8 revision, int *bestp)
371 {
372 	const struct xt_target *t;
373 	int have_rev = 0;
374 
375 	mutex_lock(&xt[af].mutex);
376 	list_for_each_entry(t, &xt[af].target, list) {
377 		if (strcmp(t->name, name) == 0) {
378 			if (t->revision > *bestp)
379 				*bestp = t->revision;
380 			if (t->revision == revision)
381 				have_rev = 1;
382 		}
383 	}
384 	mutex_unlock(&xt[af].mutex);
385 
386 	if (af != NFPROTO_UNSPEC && !have_rev)
387 		return target_revfn(NFPROTO_UNSPEC, name, revision, bestp);
388 
389 	return have_rev;
390 }
391 
392 /* Returns true or false (if no such extension at all) */
393 int xt_find_revision(u8 af, const char *name, u8 revision, int target,
394 		     int *err)
395 {
396 	int have_rev, best = -1;
397 
398 	if (target == 1)
399 		have_rev = target_revfn(af, name, revision, &best);
400 	else
401 		have_rev = match_revfn(af, name, revision, &best);
402 
403 	/* Nothing at all?  Return 0 to try loading module. */
404 	if (best == -1) {
405 		*err = -ENOENT;
406 		return 0;
407 	}
408 
409 	*err = best;
410 	if (!have_rev)
411 		*err = -EPROTONOSUPPORT;
412 	return 1;
413 }
414 EXPORT_SYMBOL_GPL(xt_find_revision);
415 
416 static char *
417 textify_hooks(char *buf, size_t size, unsigned int mask, uint8_t nfproto)
418 {
419 	static const char *const inetbr_names[] = {
420 		"PREROUTING", "INPUT", "FORWARD",
421 		"OUTPUT", "POSTROUTING", "BROUTING",
422 	};
423 	static const char *const arp_names[] = {
424 		"INPUT", "FORWARD", "OUTPUT",
425 	};
426 	const char *const *names;
427 	unsigned int i, max;
428 	char *p = buf;
429 	bool np = false;
430 	int res;
431 
432 	names = (nfproto == NFPROTO_ARP) ? arp_names : inetbr_names;
433 	max   = (nfproto == NFPROTO_ARP) ? ARRAY_SIZE(arp_names) :
434 	                                   ARRAY_SIZE(inetbr_names);
435 	*p = '\0';
436 	for (i = 0; i < max; ++i) {
437 		if (!(mask & (1 << i)))
438 			continue;
439 		res = snprintf(p, size, "%s%s", np ? "/" : "", names[i]);
440 		if (res > 0) {
441 			size -= res;
442 			p += res;
443 		}
444 		np = true;
445 	}
446 
447 	return buf;
448 }
449 
450 /**
451  * xt_check_proc_name - check that name is suitable for /proc file creation
452  *
453  * @name: file name candidate
454  * @size: length of buffer
455  *
456  * some x_tables modules wish to create a file in /proc.
457  * This function makes sure that the name is suitable for this
458  * purpose, it checks that name is NUL terminated and isn't a 'special'
459  * name, like "..".
460  *
461  * returns negative number on error or 0 if name is useable.
462  */
463 int xt_check_proc_name(const char *name, unsigned int size)
464 {
465 	if (name[0] == '\0')
466 		return -EINVAL;
467 
468 	if (strnlen(name, size) == size)
469 		return -ENAMETOOLONG;
470 
471 	if (strcmp(name, ".") == 0 ||
472 	    strcmp(name, "..") == 0 ||
473 	    strchr(name, '/'))
474 		return -EINVAL;
475 
476 	return 0;
477 }
478 EXPORT_SYMBOL(xt_check_proc_name);
479 
480 static int xt_check_match_common(struct xt_mtchk_param *par,
481 				 unsigned int size, u16 proto, bool inv_proto)
482 {
483 	if (XT_ALIGN(par->match->matchsize) != size &&
484 	    par->match->matchsize != -1) {
485 		/*
486 		 * ebt_among is exempt from centralized matchsize checking
487 		 * because it uses a dynamic-size data set.
488 		 */
489 		pr_err_ratelimited("%s_tables: %s.%u match: invalid size %u (kernel) != (user) %u\n",
490 				   xt_prefix[par->family], par->match->name,
491 				   par->match->revision,
492 				   XT_ALIGN(par->match->matchsize), size);
493 		return -EINVAL;
494 	}
495 	if (par->match->table != NULL &&
496 	    strcmp(par->match->table, par->table) != 0) {
497 		pr_info_ratelimited("%s_tables: %s match: only valid in %s table, not %s\n",
498 				    xt_prefix[par->family], par->match->name,
499 				    par->match->table, par->table);
500 		return -EINVAL;
501 	}
502 
503 	/* NFPROTO_UNSPEC implies NF_INET_* hooks which do not overlap with
504 	 * NF_ARP_IN,OUT,FORWARD, allow explicit extensions with NFPROTO_ARP
505 	 * support.
506 	 */
507 	if (par->family == NFPROTO_ARP &&
508 	    par->match->family != NFPROTO_ARP) {
509 		pr_info_ratelimited("%s_tables: %s match: not valid for this family\n",
510 				    xt_prefix[par->family], par->match->name);
511 		return -EINVAL;
512 	}
513 	if (par->match->hooks && (par->hook_mask & ~par->match->hooks) != 0) {
514 		char used[64], allow[64];
515 
516 		pr_info_ratelimited("%s_tables: %s match: used from hooks %s, but only valid from %s\n",
517 				    xt_prefix[par->family], par->match->name,
518 				    textify_hooks(used, sizeof(used),
519 						  par->hook_mask, par->family),
520 				    textify_hooks(allow, sizeof(allow),
521 						  par->match->hooks,
522 						  par->family));
523 		return -EINVAL;
524 	}
525 	if (par->match->proto && (par->match->proto != proto || inv_proto)) {
526 		pr_info_ratelimited("%s_tables: %s match: only valid for protocol %u\n",
527 				    xt_prefix[par->family], par->match->name,
528 				    par->match->proto);
529 		return -EINVAL;
530 	}
531 
532 	return 0;
533 }
534 
535 static int xt_checkentry_match(struct xt_mtchk_param *par)
536 {
537 	int ret;
538 
539 	if (par->match->checkentry != NULL) {
540 		ret = par->match->checkentry(par);
541 		if (ret < 0)
542 			return ret;
543 		else if (ret > 0)
544 			/* Flag up potential errors. */
545 			return -EIO;
546 	}
547 
548 	return 0;
549 }
550 
551 int xt_check_hooks_match(struct xt_mtchk_param *par)
552 {
553 	if (par->match->check_hooks != NULL)
554 		return par->match->check_hooks(par);
555 
556 	return 0;
557 }
558 EXPORT_SYMBOL_GPL(xt_check_hooks_match);
559 
560 int xt_check_match(struct xt_mtchk_param *par,
561 		   unsigned int size, u16 proto, bool inv_proto)
562 {
563 	int ret;
564 
565 	ret = xt_check_match_common(par, size, proto, inv_proto);
566 	if (ret < 0)
567 		return ret;
568 
569 	ret = xt_check_hooks_match(par);
570 	if (ret < 0)
571 		return ret;
572 
573 	return xt_checkentry_match(par);
574 }
575 EXPORT_SYMBOL_GPL(xt_check_match);
576 
577 /** xt_check_entry_match - check that matches end before start of target
578  *
579  * @match: beginning of xt_entry_match
580  * @target: beginning of this rules target (alleged end of matches)
581  * @alignment: alignment requirement of match structures
582  *
583  * Validates that all matches add up to the beginning of the target,
584  * and that each match covers at least the base structure size.
585  *
586  * Return: 0 on success, negative errno on failure.
587  */
588 static int xt_check_entry_match(const char *match, const char *target,
589 				const size_t alignment)
590 {
591 	const struct xt_entry_match *pos;
592 	int length = target - match;
593 
594 	if (length == 0) /* no matches */
595 		return 0;
596 
597 	pos = (struct xt_entry_match *)match;
598 	do {
599 		if ((unsigned long)pos % alignment)
600 			return -EINVAL;
601 
602 		if (length < (int)sizeof(struct xt_entry_match))
603 			return -EINVAL;
604 
605 		if (pos->u.match_size < sizeof(struct xt_entry_match))
606 			return -EINVAL;
607 
608 		if (pos->u.match_size > length)
609 			return -EINVAL;
610 
611 		length -= pos->u.match_size;
612 		pos = ((void *)((char *)(pos) + (pos)->u.match_size));
613 	} while (length > 0);
614 
615 	return 0;
616 }
617 
618 /** xt_check_table_hooks - check hook entry points are sane
619  *
620  * @info xt_table_info to check
621  * @valid_hooks - hook entry points that we can enter from
622  *
623  * Validates that the hook entry and underflows points are set up.
624  *
625  * Return: 0 on success, negative errno on failure.
626  */
627 int xt_check_table_hooks(const struct xt_table_info *info, unsigned int valid_hooks)
628 {
629 	const char *err = "unsorted underflow";
630 	unsigned int i, max_uflow, max_entry;
631 	bool check_hooks = false;
632 
633 	BUILD_BUG_ON(ARRAY_SIZE(info->hook_entry) != ARRAY_SIZE(info->underflow));
634 
635 	max_entry = 0;
636 	max_uflow = 0;
637 
638 	for (i = 0; i < ARRAY_SIZE(info->hook_entry); i++) {
639 		if (!(valid_hooks & (1 << i)))
640 			continue;
641 
642 		if (info->hook_entry[i] == 0xFFFFFFFF)
643 			return -EINVAL;
644 		if (info->underflow[i] == 0xFFFFFFFF)
645 			return -EINVAL;
646 
647 		if (check_hooks) {
648 			if (max_uflow > info->underflow[i])
649 				goto error;
650 
651 			if (max_uflow == info->underflow[i]) {
652 				err = "duplicate underflow";
653 				goto error;
654 			}
655 			if (max_entry > info->hook_entry[i]) {
656 				err = "unsorted entry";
657 				goto error;
658 			}
659 			if (max_entry == info->hook_entry[i]) {
660 				err = "duplicate entry";
661 				goto error;
662 			}
663 		}
664 		max_entry = info->hook_entry[i];
665 		max_uflow = info->underflow[i];
666 		check_hooks = true;
667 	}
668 
669 	return 0;
670 error:
671 	pr_err_ratelimited("%s at hook %d\n", err, i);
672 	return -EINVAL;
673 }
674 EXPORT_SYMBOL(xt_check_table_hooks);
675 
676 static bool verdict_ok(int verdict)
677 {
678 	if (verdict > 0)
679 		return true;
680 
681 	if (verdict < 0) {
682 		int v = -verdict - 1;
683 
684 		if (verdict == XT_RETURN)
685 			return true;
686 
687 		switch (v) {
688 		case NF_ACCEPT: return true;
689 		case NF_DROP: return true;
690 		case NF_QUEUE: return true;
691 		default:
692 			break;
693 		}
694 
695 		return false;
696 	}
697 
698 	return false;
699 }
700 
701 static bool error_tg_ok(unsigned int usersize, unsigned int kernsize,
702 			const char *msg, unsigned int msglen)
703 {
704 	return usersize == kernsize && strnlen(msg, msglen) < msglen;
705 }
706 
707 #ifdef CONFIG_NETFILTER_XTABLES_COMPAT
708 int xt_compat_add_offset(u_int8_t af, unsigned int offset, int delta)
709 {
710 	struct xt_af *xp = &xt[af];
711 
712 	WARN_ON(!mutex_is_locked(&xt[af].compat_mutex));
713 
714 	if (WARN_ON(!xp->compat_tab))
715 		return -ENOMEM;
716 
717 	if (xp->cur >= xp->number)
718 		return -EINVAL;
719 
720 	if (xp->cur)
721 		delta += xp->compat_tab[xp->cur - 1].delta;
722 	xp->compat_tab[xp->cur].offset = offset;
723 	xp->compat_tab[xp->cur].delta = delta;
724 	xp->cur++;
725 	return 0;
726 }
727 EXPORT_SYMBOL_GPL(xt_compat_add_offset);
728 
729 void xt_compat_flush_offsets(u_int8_t af)
730 {
731 	WARN_ON(!mutex_is_locked(&xt[af].compat_mutex));
732 
733 	if (xt[af].compat_tab) {
734 		vfree(xt[af].compat_tab);
735 		xt[af].compat_tab = NULL;
736 		xt[af].number = 0;
737 		xt[af].cur = 0;
738 	}
739 }
740 EXPORT_SYMBOL_GPL(xt_compat_flush_offsets);
741 
742 int xt_compat_calc_jump(u_int8_t af, unsigned int offset)
743 {
744 	struct compat_delta *tmp = xt[af].compat_tab;
745 	int mid, left = 0, right = xt[af].cur - 1;
746 
747 	while (left <= right) {
748 		mid = (left + right) >> 1;
749 		if (offset > tmp[mid].offset)
750 			left = mid + 1;
751 		else if (offset < tmp[mid].offset)
752 			right = mid - 1;
753 		else
754 			return mid ? tmp[mid - 1].delta : 0;
755 	}
756 	return left ? tmp[left - 1].delta : 0;
757 }
758 EXPORT_SYMBOL_GPL(xt_compat_calc_jump);
759 
760 int xt_compat_init_offsets(u8 af, unsigned int number)
761 {
762 	size_t mem;
763 
764 	WARN_ON(!mutex_is_locked(&xt[af].compat_mutex));
765 
766 	if (!number || number > (INT_MAX / sizeof(struct compat_delta)))
767 		return -EINVAL;
768 
769 	if (WARN_ON(xt[af].compat_tab))
770 		return -EINVAL;
771 
772 	mem = sizeof(struct compat_delta) * number;
773 	if (mem > XT_MAX_TABLE_SIZE)
774 		return -ENOMEM;
775 
776 	xt[af].compat_tab = vmalloc(mem);
777 	if (!xt[af].compat_tab)
778 		return -ENOMEM;
779 
780 	xt[af].number = number;
781 	xt[af].cur = 0;
782 
783 	return 0;
784 }
785 EXPORT_SYMBOL(xt_compat_init_offsets);
786 
787 int xt_compat_match_offset(const struct xt_match *match)
788 {
789 	u_int16_t csize = match->compatsize ? : match->matchsize;
790 	return XT_ALIGN(match->matchsize) - COMPAT_XT_ALIGN(csize);
791 }
792 EXPORT_SYMBOL_GPL(xt_compat_match_offset);
793 
794 void xt_compat_match_from_user(struct xt_entry_match *m, void **dstptr,
795 			       unsigned int *size)
796 {
797 	const struct xt_match *match = m->u.kernel.match;
798 	struct compat_xt_entry_match *cm = (struct compat_xt_entry_match *)m;
799 	int off = xt_compat_match_offset(match);
800 	u_int16_t msize = cm->u.user.match_size;
801 	char name[sizeof(m->u.user.name)];
802 
803 	m = *dstptr;
804 	memcpy(m, cm, sizeof(*cm));
805 	if (match->compat_from_user)
806 		match->compat_from_user(m->data, cm->data);
807 	else
808 		memcpy(m->data, cm->data, msize - sizeof(*cm));
809 
810 	msize += off;
811 	m->u.user.match_size = msize;
812 	strscpy(name, match->name, sizeof(name));
813 	module_put(match->me);
814 	strscpy_pad(m->u.user.name, name, sizeof(m->u.user.name));
815 
816 	*size += off;
817 	*dstptr += msize;
818 }
819 EXPORT_SYMBOL_GPL(xt_compat_match_from_user);
820 
821 #define COMPAT_XT_DATA_TO_USER(U, K, TYPE, C_SIZE)			\
822 	xt_data_to_user(U->data, K->data,				\
823 			K->u.kernel.TYPE->usersize,			\
824 			C_SIZE,						\
825 			COMPAT_XT_ALIGN(C_SIZE))
826 
827 int xt_compat_match_to_user(const struct xt_entry_match *m,
828 			    void __user **dstptr, unsigned int *size)
829 {
830 	const struct xt_match *match = m->u.kernel.match;
831 	struct compat_xt_entry_match __user *cm = *dstptr;
832 	int off = xt_compat_match_offset(match);
833 	u_int16_t msize = m->u.user.match_size - off;
834 
835 	if (XT_OBJ_TO_USER(cm, m, match, msize))
836 		return -EFAULT;
837 
838 	if (match->compat_to_user) {
839 		if (match->compat_to_user((void __user *)cm->data, m->data))
840 			return -EFAULT;
841 	} else {
842 		if (COMPAT_XT_DATA_TO_USER(cm, m, match, msize - sizeof(*cm)))
843 			return -EFAULT;
844 	}
845 
846 	*size -= off;
847 	*dstptr += msize;
848 	return 0;
849 }
850 EXPORT_SYMBOL_GPL(xt_compat_match_to_user);
851 
852 /* non-compat version may have padding after verdict */
853 struct compat_xt_standard_target {
854 	/* Must be last as it ends in a flexible-array member. */
855 	TRAILING_OVERLAP(struct compat_xt_entry_target, t, data,
856 		compat_uint_t verdict;
857 	);
858 };
859 
860 struct compat_xt_error_target {
861 	/* Must be last as it ends in a flexible-array member. */
862 	TRAILING_OVERLAP(struct compat_xt_entry_target, t, data,
863 		char errorname[XT_FUNCTION_MAXNAMELEN];
864 	);
865 };
866 
867 int xt_compat_check_entry_offsets(const void *base, const char *elems,
868 				  unsigned int target_offset,
869 				  unsigned int next_offset)
870 {
871 	long size_of_base_struct = elems - (const char *)base;
872 	const struct compat_xt_entry_target *t;
873 	const char *e = base;
874 
875 	if (target_offset < size_of_base_struct)
876 		return -EINVAL;
877 
878 	if (target_offset + sizeof(*t) > next_offset)
879 		return -EINVAL;
880 
881 	t = (void *)(e + target_offset);
882 	if (t->u.target_size < sizeof(*t))
883 		return -EINVAL;
884 
885 	if (target_offset + t->u.target_size > next_offset)
886 		return -EINVAL;
887 
888 	if (strcmp(t->u.user.name, XT_STANDARD_TARGET) == 0) {
889 		const struct compat_xt_standard_target *st = (const void *)t;
890 
891 		if (COMPAT_XT_ALIGN(target_offset + sizeof(*st)) != next_offset)
892 			return -EINVAL;
893 
894 		if (!verdict_ok(st->verdict))
895 			return -EINVAL;
896 	} else if (strcmp(t->u.user.name, XT_ERROR_TARGET) == 0) {
897 		const struct compat_xt_error_target *et = (const void *)t;
898 
899 		if (!error_tg_ok(t->u.target_size, sizeof(*et),
900 				 et->errorname, sizeof(et->errorname)))
901 			return -EINVAL;
902 	}
903 
904 	/* compat_xt_entry match has less strict alignment requirements,
905 	 * otherwise they are identical.  In case of padding differences
906 	 * we need to add compat version of xt_check_entry_match.
907 	 */
908 	BUILD_BUG_ON(sizeof(struct compat_xt_entry_match) != sizeof(struct xt_entry_match));
909 
910 	return xt_check_entry_match(elems, base + target_offset,
911 				    __alignof__(struct compat_xt_entry_match));
912 }
913 EXPORT_SYMBOL(xt_compat_check_entry_offsets);
914 #endif /* CONFIG_NETFILTER_XTABLES_COMPAT */
915 
916 /**
917  * xt_check_entry_offsets - validate arp/ip/ip6t_entry
918  *
919  * @base: pointer to arp/ip/ip6t_entry
920  * @elems: pointer to first xt_entry_match, i.e. ip(6)t_entry->elems
921  * @target_offset: the arp/ip/ip6_t->target_offset
922  * @next_offset: the arp/ip/ip6_t->next_offset
923  *
924  * validates that target_offset and next_offset are sane and that all
925  * match sizes (if any) align with the target offset.
926  *
927  * This function does not validate the targets or matches themselves, it
928  * only tests that all the offsets and sizes are correct, that all
929  * match structures are aligned, and that the last structure ends where
930  * the target structure begins.
931  *
932  * Also see xt_compat_check_entry_offsets for CONFIG_NETFILTER_XTABLES_COMPAT version.
933  *
934  * The arp/ip/ip6t_entry structure @base must have passed following tests:
935  * - it must point to a valid memory location
936  * - base to base + next_offset must be accessible, i.e. not exceed allocated
937  *   length.
938  *
939  * A well-formed entry looks like this:
940  *
941  * ip(6)t_entry   match [mtdata]  match [mtdata] target [tgdata] ip(6)t_entry
942  * e->elems[]-----'                              |               |
943  *                matchsize                      |               |
944  *                                matchsize      |               |
945  *                                               |               |
946  * target_offset---------------------------------'               |
947  * next_offset---------------------------------------------------'
948  *
949  * elems[]: flexible array member at end of ip(6)/arpt_entry struct.
950  *          This is where matches (if any) and the target reside.
951  * target_offset: beginning of target.
952  * next_offset: start of the next rule; also: size of this rule.
953  * Since targets have a minimum size, target_offset + minlen <= next_offset.
954  *
955  * Every match stores its size, sum of sizes must not exceed target_offset.
956  *
957  * Return: 0 on success, negative errno on failure.
958  */
959 int xt_check_entry_offsets(const void *base,
960 			   const char *elems,
961 			   unsigned int target_offset,
962 			   unsigned int next_offset)
963 {
964 	long size_of_base_struct = elems - (const char *)base;
965 	const struct xt_entry_target *t;
966 	const char *e = base;
967 
968 	/* target start is within the ip/ip6/arpt_entry struct */
969 	if (target_offset < size_of_base_struct)
970 		return -EINVAL;
971 
972 	if (target_offset + sizeof(*t) > next_offset)
973 		return -EINVAL;
974 
975 	t = (void *)(e + target_offset);
976 	if (t->u.target_size < sizeof(*t))
977 		return -EINVAL;
978 
979 	if (target_offset + t->u.target_size > next_offset)
980 		return -EINVAL;
981 
982 	if (strcmp(t->u.user.name, XT_STANDARD_TARGET) == 0) {
983 		const struct xt_standard_target *st = (const void *)t;
984 
985 		if (XT_ALIGN(target_offset + sizeof(*st)) != next_offset)
986 			return -EINVAL;
987 
988 		if (!verdict_ok(st->verdict))
989 			return -EINVAL;
990 	} else if (strcmp(t->u.user.name, XT_ERROR_TARGET) == 0) {
991 		const struct xt_error_target *et = (const void *)t;
992 
993 		if (!error_tg_ok(t->u.target_size, sizeof(*et),
994 				 et->errorname, sizeof(et->errorname)))
995 			return -EINVAL;
996 	}
997 
998 	return xt_check_entry_match(elems, base + target_offset,
999 				    __alignof__(struct xt_entry_match));
1000 }
1001 EXPORT_SYMBOL(xt_check_entry_offsets);
1002 
1003 /**
1004  * xt_alloc_entry_offsets - allocate array to store rule head offsets
1005  *
1006  * @size: number of entries
1007  *
1008  * Return: NULL or zeroed kmalloc'd or vmalloc'd array
1009  */
1010 unsigned int *xt_alloc_entry_offsets(unsigned int size)
1011 {
1012 	if (size > XT_MAX_TABLE_SIZE / sizeof(unsigned int))
1013 		return NULL;
1014 
1015 	return kvcalloc(size, sizeof(unsigned int), GFP_KERNEL);
1016 
1017 }
1018 EXPORT_SYMBOL(xt_alloc_entry_offsets);
1019 
1020 /**
1021  * xt_find_jump_offset - check if target is a valid jump offset
1022  *
1023  * @offsets: array containing all valid rule start offsets of a rule blob
1024  * @target: the jump target to search for
1025  * @size: entries in @offset
1026  */
1027 bool xt_find_jump_offset(const unsigned int *offsets,
1028 			 unsigned int target, unsigned int size)
1029 {
1030 	int m, low = 0, hi = size;
1031 
1032 	while (hi > low) {
1033 		m = (low + hi) / 2u;
1034 
1035 		if (offsets[m] > target)
1036 			hi = m;
1037 		else if (offsets[m] < target)
1038 			low = m + 1;
1039 		else
1040 			return true;
1041 	}
1042 
1043 	return false;
1044 }
1045 EXPORT_SYMBOL(xt_find_jump_offset);
1046 
1047 static int xt_check_target_common(struct xt_tgchk_param *par,
1048 				  unsigned int size, u16 proto, bool inv_proto)
1049 {
1050 	if (XT_ALIGN(par->target->targetsize) != size) {
1051 		pr_err_ratelimited("%s_tables: %s.%u target: invalid size %u (kernel) != (user) %u\n",
1052 				   xt_prefix[par->family], par->target->name,
1053 				   par->target->revision,
1054 				   XT_ALIGN(par->target->targetsize), size);
1055 		return -EINVAL;
1056 	}
1057 	if (par->target->table != NULL &&
1058 	    strcmp(par->target->table, par->table) != 0) {
1059 		pr_info_ratelimited("%s_tables: %s target: only valid in %s table, not %s\n",
1060 				    xt_prefix[par->family], par->target->name,
1061 				    par->target->table, par->table);
1062 		return -EINVAL;
1063 	}
1064 
1065 	/* NFPROTO_UNSPEC implies NF_INET_* hooks which do not overlap with
1066 	 * NF_ARP_IN,OUT,FORWARD, allow explicit extensions with NFPROTO_ARP
1067 	 * support.
1068 	 */
1069 	if (par->family == NFPROTO_ARP &&
1070 	    par->target->family != NFPROTO_ARP) {
1071 		pr_info_ratelimited("%s_tables: %s target: not valid for this family\n",
1072 				    xt_prefix[par->family], par->target->name);
1073 		return -EINVAL;
1074 	}
1075 
1076 	if (par->target->hooks && (par->hook_mask & ~par->target->hooks) != 0) {
1077 		char used[64], allow[64];
1078 
1079 		pr_info_ratelimited("%s_tables: %s target: used from hooks %s, but only usable from %s\n",
1080 				    xt_prefix[par->family], par->target->name,
1081 				    textify_hooks(used, sizeof(used),
1082 						  par->hook_mask, par->family),
1083 				    textify_hooks(allow, sizeof(allow),
1084 						  par->target->hooks,
1085 						  par->family));
1086 		return -EINVAL;
1087 	}
1088 	if (par->target->proto && (par->target->proto != proto || inv_proto)) {
1089 		pr_info_ratelimited("%s_tables: %s target: only valid for protocol %u\n",
1090 				    xt_prefix[par->family], par->target->name,
1091 				    par->target->proto);
1092 		return -EINVAL;
1093 	}
1094 
1095 	return 0;
1096 }
1097 
1098 int xt_check_hooks_target(struct xt_tgchk_param *par)
1099 {
1100 	if (par->target->check_hooks != NULL)
1101 		return par->target->check_hooks(par);
1102 
1103 	return 0;
1104 }
1105 EXPORT_SYMBOL_GPL(xt_check_hooks_target);
1106 
1107 static int xt_checkentry_target(struct xt_tgchk_param *par)
1108 {
1109 	int ret;
1110 
1111 	if (par->target->checkentry != NULL) {
1112 		ret = par->target->checkentry(par);
1113 		if (ret < 0)
1114 			return ret;
1115 		else if (ret > 0)
1116 			/* Flag up potential errors. */
1117 			return -EIO;
1118 	}
1119 	return 0;
1120 }
1121 
1122 int xt_check_target(struct xt_tgchk_param *par,
1123 		    unsigned int size, u16 proto, bool inv_proto)
1124 {
1125 	int ret;
1126 
1127 	ret = xt_check_target_common(par, size, proto, inv_proto);
1128 	if (ret < 0)
1129 		return ret;
1130 
1131 	ret = xt_check_hooks_target(par);
1132 	if (ret < 0)
1133 		return ret;
1134 
1135 	return xt_checkentry_target(par);
1136 }
1137 EXPORT_SYMBOL_GPL(xt_check_target);
1138 
1139 /**
1140  * xt_copy_counters - copy counters and metadata from a sockptr_t
1141  *
1142  * @arg: src sockptr
1143  * @len: alleged size of userspace memory
1144  * @info: where to store the xt_counters_info metadata
1145  *
1146  * Copies counter meta data from @user and stores it in @info.
1147  *
1148  * vmallocs memory to hold the counters, then copies the counter data
1149  * from @user to the new memory and returns a pointer to it.
1150  *
1151  * If called from a compat syscall, @info gets converted automatically to the
1152  * 64bit representation.
1153  *
1154  * The metadata associated with the counters is stored in @info.
1155  *
1156  * Return: returns pointer that caller has to test via IS_ERR().
1157  * If IS_ERR is false, caller has to vfree the pointer.
1158  */
1159 void *xt_copy_counters(sockptr_t arg, unsigned int len,
1160 		       struct xt_counters_info *info)
1161 {
1162 	size_t offset;
1163 	void *mem;
1164 	u64 size;
1165 
1166 #ifdef CONFIG_NETFILTER_XTABLES_COMPAT
1167 	if (in_compat_syscall()) {
1168 		/* structures only differ in size due to alignment */
1169 		struct compat_xt_counters_info compat_tmp;
1170 
1171 		if (len <= sizeof(compat_tmp))
1172 			return ERR_PTR(-EINVAL);
1173 
1174 		len -= sizeof(compat_tmp);
1175 		if (copy_from_sockptr(&compat_tmp, arg, sizeof(compat_tmp)) != 0)
1176 			return ERR_PTR(-EFAULT);
1177 
1178 		memcpy(info->name, compat_tmp.name, sizeof(info->name) - 1);
1179 		info->num_counters = compat_tmp.num_counters;
1180 		offset = sizeof(compat_tmp);
1181 	} else
1182 #endif
1183 	{
1184 		if (len <= sizeof(*info))
1185 			return ERR_PTR(-EINVAL);
1186 
1187 		len -= sizeof(*info);
1188 		if (copy_from_sockptr(info, arg, sizeof(*info)) != 0)
1189 			return ERR_PTR(-EFAULT);
1190 
1191 		offset = sizeof(*info);
1192 	}
1193 	info->name[sizeof(info->name) - 1] = '\0';
1194 
1195 	size = sizeof(struct xt_counters);
1196 	size *= info->num_counters;
1197 
1198 	if (size != (u64)len)
1199 		return ERR_PTR(-EINVAL);
1200 
1201 	mem = vmalloc(len);
1202 	if (!mem)
1203 		return ERR_PTR(-ENOMEM);
1204 
1205 	if (copy_from_sockptr_offset(mem, arg, offset, len) == 0)
1206 		return mem;
1207 
1208 	vfree(mem);
1209 	return ERR_PTR(-EFAULT);
1210 }
1211 EXPORT_SYMBOL_GPL(xt_copy_counters);
1212 
1213 #ifdef CONFIG_NETFILTER_XTABLES_COMPAT
1214 int xt_compat_target_offset(const struct xt_target *target)
1215 {
1216 	u_int16_t csize = target->compatsize ? : target->targetsize;
1217 	return XT_ALIGN(target->targetsize) - COMPAT_XT_ALIGN(csize);
1218 }
1219 EXPORT_SYMBOL_GPL(xt_compat_target_offset);
1220 
1221 void xt_compat_target_from_user(struct xt_entry_target *t, void **dstptr,
1222 				unsigned int *size)
1223 {
1224 	const struct xt_target *target = t->u.kernel.target;
1225 	struct compat_xt_entry_target *ct = (struct compat_xt_entry_target *)t;
1226 	int off = xt_compat_target_offset(target);
1227 	u_int16_t tsize = ct->u.user.target_size;
1228 	char name[sizeof(t->u.user.name)];
1229 
1230 	t = *dstptr;
1231 	memcpy(t, ct, sizeof(*ct));
1232 	if (target->compat_from_user)
1233 		target->compat_from_user(t->data, ct->data);
1234 	else
1235 		unsafe_memcpy(t->data, ct->data, tsize - sizeof(*ct),
1236 			      /* UAPI 0-sized destination */);
1237 
1238 	tsize += off;
1239 	t->u.user.target_size = tsize;
1240 	strscpy(name, target->name, sizeof(name));
1241 	module_put(target->me);
1242 	strscpy_pad(t->u.user.name, name, sizeof(t->u.user.name));
1243 
1244 	*size += off;
1245 	*dstptr += tsize;
1246 }
1247 EXPORT_SYMBOL_GPL(xt_compat_target_from_user);
1248 
1249 int xt_compat_target_to_user(const struct xt_entry_target *t,
1250 			     void __user **dstptr, unsigned int *size)
1251 {
1252 	const struct xt_target *target = t->u.kernel.target;
1253 	struct compat_xt_entry_target __user *ct = *dstptr;
1254 	int off = xt_compat_target_offset(target);
1255 	u_int16_t tsize = t->u.user.target_size - off;
1256 
1257 	if (XT_OBJ_TO_USER(ct, t, target, tsize))
1258 		return -EFAULT;
1259 
1260 	if (target->compat_to_user) {
1261 		if (target->compat_to_user((void __user *)ct->data, t->data))
1262 			return -EFAULT;
1263 	} else {
1264 		if (COMPAT_XT_DATA_TO_USER(ct, t, target, tsize - sizeof(*ct)))
1265 			return -EFAULT;
1266 	}
1267 
1268 	*size -= off;
1269 	*dstptr += tsize;
1270 	return 0;
1271 }
1272 EXPORT_SYMBOL_GPL(xt_compat_target_to_user);
1273 #endif
1274 
1275 struct xt_table_info *xt_alloc_table_info(unsigned int size)
1276 {
1277 	struct xt_table_info *info = NULL;
1278 	size_t sz = sizeof(*info) + size;
1279 
1280 	if (sz < sizeof(*info) || sz >= XT_MAX_TABLE_SIZE)
1281 		return NULL;
1282 
1283 	info = kvmalloc(sz, GFP_KERNEL_ACCOUNT);
1284 	if (!info)
1285 		return NULL;
1286 
1287 	memset(info, 0, sizeof(*info));
1288 	info->size = size;
1289 	return info;
1290 }
1291 EXPORT_SYMBOL(xt_alloc_table_info);
1292 
1293 void xt_free_table_info(struct xt_table_info *info)
1294 {
1295 	int cpu;
1296 
1297 	if (info->jumpstack != NULL) {
1298 		for_each_possible_cpu(cpu)
1299 			kvfree(info->jumpstack[cpu]);
1300 		kvfree(info->jumpstack);
1301 	}
1302 
1303 	kvfree(info);
1304 }
1305 EXPORT_SYMBOL(xt_free_table_info);
1306 
1307 struct xt_table *xt_find_table(struct net *net, u8 af, const char *name)
1308 {
1309 	struct xt_pernet *xt_net = net_generic(net, xt_pernet_id);
1310 	struct xt_table *t;
1311 
1312 	mutex_lock(&xt[af].mutex);
1313 	list_for_each_entry(t, &xt_net->tables[af], list) {
1314 		if (strcmp(t->name, name) == 0) {
1315 			mutex_unlock(&xt[af].mutex);
1316 			return t;
1317 		}
1318 	}
1319 	mutex_unlock(&xt[af].mutex);
1320 	return NULL;
1321 }
1322 EXPORT_SYMBOL(xt_find_table);
1323 
1324 /* Find table by name, grabs mutex & ref.  Returns ERR_PTR on error. */
1325 struct xt_table *xt_find_table_lock(struct net *net, u_int8_t af,
1326 				    const char *name)
1327 {
1328 	struct xt_pernet *xt_net = net_generic(net, xt_pernet_id);
1329 	struct module *owner = NULL;
1330 	struct xt_template *tmpl;
1331 	struct xt_table *t;
1332 
1333 	mutex_lock(&xt[af].mutex);
1334 	list_for_each_entry(t, &xt_net->tables[af], list)
1335 		if (strcmp(t->name, name) == 0 && try_module_get(t->me))
1336 			return t;
1337 
1338 	/* Table doesn't exist in this netns, check larval list */
1339 	list_for_each_entry(tmpl, &xt_templates[af], list) {
1340 		int err;
1341 
1342 		if (strcmp(tmpl->name, name))
1343 			continue;
1344 		if (!try_module_get(tmpl->me))
1345 			goto out;
1346 
1347 		owner = tmpl->me;
1348 
1349 		mutex_unlock(&xt[af].mutex);
1350 		err = tmpl->table_init(net);
1351 		if (err < 0) {
1352 			module_put(owner);
1353 			return ERR_PTR(err);
1354 		}
1355 
1356 		mutex_lock(&xt[af].mutex);
1357 		break;
1358 	}
1359 
1360 	/* and once again: */
1361 	list_for_each_entry(t, &xt_net->tables[af], list)
1362 		if (strcmp(t->name, name) == 0 && owner == t->me)
1363 			return t;
1364 
1365 	module_put(owner);
1366  out:
1367 	mutex_unlock(&xt[af].mutex);
1368 	return ERR_PTR(-ENOENT);
1369 }
1370 EXPORT_SYMBOL_GPL(xt_find_table_lock);
1371 
1372 struct xt_table *xt_request_find_table_lock(struct net *net, u_int8_t af,
1373 					    const char *name)
1374 {
1375 	struct xt_table *t = xt_find_table_lock(net, af, name);
1376 
1377 #ifdef CONFIG_MODULES
1378 	if (IS_ERR(t)) {
1379 		int err = request_module("%stable_%s", xt_prefix[af], name);
1380 		if (err < 0)
1381 			return ERR_PTR(err);
1382 		t = xt_find_table_lock(net, af, name);
1383 	}
1384 #endif
1385 
1386 	return t;
1387 }
1388 EXPORT_SYMBOL_GPL(xt_request_find_table_lock);
1389 
1390 void xt_table_unlock(struct xt_table *table)
1391 {
1392 	mutex_unlock(&xt[table->af].mutex);
1393 }
1394 EXPORT_SYMBOL_GPL(xt_table_unlock);
1395 
1396 #ifdef CONFIG_NETFILTER_XTABLES_COMPAT
1397 void xt_compat_lock(u_int8_t af)
1398 {
1399 	mutex_lock(&xt[af].compat_mutex);
1400 }
1401 EXPORT_SYMBOL_GPL(xt_compat_lock);
1402 
1403 void xt_compat_unlock(u_int8_t af)
1404 {
1405 	mutex_unlock(&xt[af].compat_mutex);
1406 }
1407 EXPORT_SYMBOL_GPL(xt_compat_unlock);
1408 #endif
1409 
1410 struct static_key xt_tee_enabled __read_mostly;
1411 EXPORT_SYMBOL_GPL(xt_tee_enabled);
1412 
1413 #ifdef CONFIG_NETFILTER_XTABLES_LEGACY
1414 DEFINE_PER_CPU(seqcount_t, xt_recseq);
1415 EXPORT_PER_CPU_SYMBOL_GPL(xt_recseq);
1416 
1417 static int xt_jumpstack_alloc(struct xt_table_info *i)
1418 {
1419 	unsigned int size;
1420 	int cpu;
1421 
1422 	size = sizeof(void **) * nr_cpu_ids;
1423 	if (size > PAGE_SIZE)
1424 		i->jumpstack = kvzalloc(size, GFP_KERNEL);
1425 	else
1426 		i->jumpstack = kzalloc(size, GFP_KERNEL);
1427 	if (i->jumpstack == NULL)
1428 		return -ENOMEM;
1429 
1430 	/* ruleset without jumps -- no stack needed */
1431 	if (i->stacksize == 0)
1432 		return 0;
1433 
1434 	/* Jumpstack needs to be able to record two full callchains, one
1435 	 * from the first rule set traversal, plus one table reentrancy
1436 	 * via -j TEE without clobbering the callchain that brought us to
1437 	 * TEE target.
1438 	 *
1439 	 * This is done by allocating two jumpstacks per cpu, on reentry
1440 	 * the upper half of the stack is used.
1441 	 *
1442 	 * see the jumpstack setup in ipt_do_table() for more details.
1443 	 */
1444 	size = sizeof(void *) * i->stacksize * 2u;
1445 	for_each_possible_cpu(cpu) {
1446 		i->jumpstack[cpu] = kvmalloc_node(size, GFP_KERNEL,
1447 			cpu_to_node(cpu));
1448 		if (i->jumpstack[cpu] == NULL)
1449 			/*
1450 			 * Freeing will be done later on by the callers. The
1451 			 * chain is: xt_replace_table -> __do_replace ->
1452 			 * do_replace -> xt_free_table_info.
1453 			 */
1454 			return -ENOMEM;
1455 	}
1456 
1457 	return 0;
1458 }
1459 
1460 struct xt_counters *xt_counters_alloc(unsigned int counters)
1461 {
1462 	struct xt_counters *mem;
1463 
1464 	if (counters == 0 || counters > INT_MAX / sizeof(*mem))
1465 		return NULL;
1466 
1467 	counters *= sizeof(*mem);
1468 	if (counters > XT_MAX_TABLE_SIZE)
1469 		return NULL;
1470 
1471 	return vzalloc(counters);
1472 }
1473 EXPORT_SYMBOL(xt_counters_alloc);
1474 
1475 struct xt_table_info *
1476 xt_replace_table(struct xt_table *table,
1477 	      unsigned int num_counters,
1478 	      struct xt_table_info *newinfo,
1479 	      int *error)
1480 {
1481 	struct xt_table_info *private;
1482 	unsigned int cpu;
1483 	int ret;
1484 
1485 	ret = xt_jumpstack_alloc(newinfo);
1486 	if (ret < 0) {
1487 		*error = ret;
1488 		return NULL;
1489 	}
1490 
1491 	/* Do the substitution. */
1492 	local_bh_disable();
1493 	private = table->private;
1494 
1495 	/* Check inside lock: is the old number correct? */
1496 	if (num_counters != private->number) {
1497 		pr_debug("num_counters != table->private->number (%u/%u)\n",
1498 			 num_counters, private->number);
1499 		local_bh_enable();
1500 		*error = -EAGAIN;
1501 		return NULL;
1502 	}
1503 
1504 	newinfo->initial_entries = private->initial_entries;
1505 	/*
1506 	 * Ensure contents of newinfo are visible before assigning to
1507 	 * private.
1508 	 */
1509 	smp_wmb();
1510 	table->private = newinfo;
1511 
1512 	/* make sure all cpus see new ->private value */
1513 	smp_mb();
1514 
1515 	/*
1516 	 * Even though table entries have now been swapped, other CPU's
1517 	 * may still be using the old entries...
1518 	 */
1519 	local_bh_enable();
1520 
1521 	/* ... so wait for even xt_recseq on all cpus */
1522 	for_each_possible_cpu(cpu) {
1523 		seqcount_t *s = &per_cpu(xt_recseq, cpu);
1524 		u32 seq = raw_read_seqcount(s);
1525 
1526 		if (seq & 1) {
1527 			do {
1528 				cond_resched();
1529 				cpu_relax();
1530 			} while (seq == raw_read_seqcount(s));
1531 		}
1532 	}
1533 
1534 	audit_log_nfcfg(table->name, table->af, private->number,
1535 			!private->number ? AUDIT_XT_OP_REGISTER :
1536 					   AUDIT_XT_OP_REPLACE,
1537 			GFP_KERNEL);
1538 	return private;
1539 }
1540 EXPORT_SYMBOL_GPL(xt_replace_table);
1541 
1542 struct xt_table *xt_register_table(struct net *net,
1543 				   const struct xt_table *input_table,
1544 				   struct xt_table_info *bootstrap,
1545 				   struct xt_table_info *newinfo)
1546 {
1547 	struct xt_pernet *xt_net = net_generic(net, xt_pernet_id);
1548 	struct xt_table_info *private;
1549 	struct xt_table *t, *table;
1550 	int ret;
1551 
1552 	/* Don't add one object to multiple lists. */
1553 	table = kmemdup(input_table, sizeof(struct xt_table), GFP_KERNEL);
1554 	if (!table) {
1555 		ret = -ENOMEM;
1556 		goto out;
1557 	}
1558 
1559 	mutex_lock(&xt[table->af].mutex);
1560 	/* Don't autoload: we'd eat our tail... */
1561 	list_for_each_entry(t, &xt_net->tables[table->af], list) {
1562 		if (strcmp(t->name, table->name) == 0) {
1563 			ret = -EEXIST;
1564 			goto unlock;
1565 		}
1566 	}
1567 
1568 	/* Simplifies replace_table code. */
1569 	table->private = bootstrap;
1570 
1571 	if (!xt_replace_table(table, 0, newinfo, &ret))
1572 		goto unlock;
1573 
1574 	private = table->private;
1575 	pr_debug("table->private->number = %u\n", private->number);
1576 
1577 	/* save number of initial entries */
1578 	private->initial_entries = private->number;
1579 
1580 	list_add(&table->list, &xt_net->tables[table->af]);
1581 	mutex_unlock(&xt[table->af].mutex);
1582 	return table;
1583 
1584 unlock:
1585 	mutex_unlock(&xt[table->af].mutex);
1586 	kfree(table);
1587 out:
1588 	return ERR_PTR(ret);
1589 }
1590 EXPORT_SYMBOL_GPL(xt_register_table);
1591 
1592 void *xt_unregister_table(struct xt_table *table)
1593 {
1594 	struct xt_table_info *private;
1595 
1596 	mutex_lock(&xt[table->af].mutex);
1597 	private = table->private;
1598 	list_del(&table->list);
1599 	mutex_unlock(&xt[table->af].mutex);
1600 	audit_log_nfcfg(table->name, table->af, private->number,
1601 			AUDIT_XT_OP_UNREGISTER, GFP_KERNEL);
1602 	kfree(table->ops);
1603 	kfree(table);
1604 
1605 	return private;
1606 }
1607 EXPORT_SYMBOL_GPL(xt_unregister_table);
1608 #endif
1609 
1610 #ifdef CONFIG_PROC_FS
1611 static void *xt_table_seq_start(struct seq_file *seq, loff_t *pos)
1612 {
1613 	u8 af = (unsigned long)pde_data(file_inode(seq->file));
1614 	struct net *net = seq_file_net(seq);
1615 	struct xt_pernet *xt_net;
1616 
1617 	xt_net = net_generic(net, xt_pernet_id);
1618 
1619 	mutex_lock(&xt[af].mutex);
1620 	return seq_list_start(&xt_net->tables[af], *pos);
1621 }
1622 
1623 static void *xt_table_seq_next(struct seq_file *seq, void *v, loff_t *pos)
1624 {
1625 	u8 af = (unsigned long)pde_data(file_inode(seq->file));
1626 	struct net *net = seq_file_net(seq);
1627 	struct xt_pernet *xt_net;
1628 
1629 	xt_net = net_generic(net, xt_pernet_id);
1630 
1631 	return seq_list_next(v, &xt_net->tables[af], pos);
1632 }
1633 
1634 static void xt_table_seq_stop(struct seq_file *seq, void *v)
1635 {
1636 	u_int8_t af = (unsigned long)pde_data(file_inode(seq->file));
1637 
1638 	mutex_unlock(&xt[af].mutex);
1639 }
1640 
1641 static int xt_table_seq_show(struct seq_file *seq, void *v)
1642 {
1643 	struct xt_table *table = list_entry(v, struct xt_table, list);
1644 
1645 	if (*table->name)
1646 		seq_printf(seq, "%s\n", table->name);
1647 	return 0;
1648 }
1649 
1650 static const struct seq_operations xt_table_seq_ops = {
1651 	.start	= xt_table_seq_start,
1652 	.next	= xt_table_seq_next,
1653 	.stop	= xt_table_seq_stop,
1654 	.show	= xt_table_seq_show,
1655 };
1656 
1657 /*
1658  * Traverse state for ip{,6}_{tables,matches} for helping crossing
1659  * the multi-AF mutexes.
1660  */
1661 struct nf_mttg_trav {
1662 	struct list_head *head, *curr;
1663 	uint8_t class;
1664 };
1665 
1666 enum {
1667 	MTTG_TRAV_INIT,
1668 	MTTG_TRAV_NFP_UNSPEC,
1669 	MTTG_TRAV_NFP_SPEC,
1670 	MTTG_TRAV_DONE,
1671 };
1672 
1673 static void *xt_mttg_seq_next(struct seq_file *seq, void *v, loff_t *ppos,
1674     bool is_target)
1675 {
1676 	static const uint8_t next_class[] = {
1677 		[MTTG_TRAV_NFP_UNSPEC] = MTTG_TRAV_NFP_SPEC,
1678 		[MTTG_TRAV_NFP_SPEC]   = MTTG_TRAV_DONE,
1679 	};
1680 	uint8_t nfproto = (unsigned long)pde_data(file_inode(seq->file));
1681 	struct nf_mttg_trav *trav = seq->private;
1682 
1683 	if (ppos != NULL)
1684 		++(*ppos);
1685 
1686 	switch (trav->class) {
1687 	case MTTG_TRAV_INIT:
1688 		trav->class = MTTG_TRAV_NFP_UNSPEC;
1689 		mutex_lock(&xt[NFPROTO_UNSPEC].mutex);
1690 		trav->head = trav->curr = is_target ?
1691 			&xt[NFPROTO_UNSPEC].target : &xt[NFPROTO_UNSPEC].match;
1692  		break;
1693 	case MTTG_TRAV_NFP_UNSPEC:
1694 		trav->curr = trav->curr->next;
1695 		if (trav->curr != trav->head)
1696 			break;
1697 		mutex_unlock(&xt[NFPROTO_UNSPEC].mutex);
1698 		mutex_lock(&xt[nfproto].mutex);
1699 		trav->head = trav->curr = is_target ?
1700 			&xt[nfproto].target : &xt[nfproto].match;
1701 		trav->class = next_class[trav->class];
1702 		break;
1703 	case MTTG_TRAV_NFP_SPEC:
1704 		trav->curr = trav->curr->next;
1705 		if (trav->curr != trav->head)
1706 			break;
1707 		fallthrough;
1708 	default:
1709 		return NULL;
1710 	}
1711 	return trav;
1712 }
1713 
1714 static void *xt_mttg_seq_start(struct seq_file *seq, loff_t *pos,
1715     bool is_target)
1716 {
1717 	struct nf_mttg_trav *trav = seq->private;
1718 	unsigned int j;
1719 
1720 	trav->class = MTTG_TRAV_INIT;
1721 	for (j = 0; j < *pos; ++j)
1722 		if (xt_mttg_seq_next(seq, NULL, NULL, is_target) == NULL)
1723 			return NULL;
1724 	return trav;
1725 }
1726 
1727 static void xt_mttg_seq_stop(struct seq_file *seq, void *v)
1728 {
1729 	uint8_t nfproto = (unsigned long)pde_data(file_inode(seq->file));
1730 	struct nf_mttg_trav *trav = seq->private;
1731 
1732 	switch (trav->class) {
1733 	case MTTG_TRAV_NFP_UNSPEC:
1734 		mutex_unlock(&xt[NFPROTO_UNSPEC].mutex);
1735 		break;
1736 	case MTTG_TRAV_NFP_SPEC:
1737 		mutex_unlock(&xt[nfproto].mutex);
1738 		break;
1739 	}
1740 }
1741 
1742 static void *xt_match_seq_start(struct seq_file *seq, loff_t *pos)
1743 {
1744 	return xt_mttg_seq_start(seq, pos, false);
1745 }
1746 
1747 static void *xt_match_seq_next(struct seq_file *seq, void *v, loff_t *ppos)
1748 {
1749 	return xt_mttg_seq_next(seq, v, ppos, false);
1750 }
1751 
1752 static int xt_match_seq_show(struct seq_file *seq, void *v)
1753 {
1754 	const struct nf_mttg_trav *trav = seq->private;
1755 	const struct xt_match *match;
1756 
1757 	switch (trav->class) {
1758 	case MTTG_TRAV_NFP_UNSPEC:
1759 	case MTTG_TRAV_NFP_SPEC:
1760 		if (trav->curr == trav->head)
1761 			return 0;
1762 		match = list_entry(trav->curr, struct xt_match, list);
1763 		if (*match->name)
1764 			seq_printf(seq, "%s\n", match->name);
1765 	}
1766 	return 0;
1767 }
1768 
1769 static const struct seq_operations xt_match_seq_ops = {
1770 	.start	= xt_match_seq_start,
1771 	.next	= xt_match_seq_next,
1772 	.stop	= xt_mttg_seq_stop,
1773 	.show	= xt_match_seq_show,
1774 };
1775 
1776 static void *xt_target_seq_start(struct seq_file *seq, loff_t *pos)
1777 {
1778 	return xt_mttg_seq_start(seq, pos, true);
1779 }
1780 
1781 static void *xt_target_seq_next(struct seq_file *seq, void *v, loff_t *ppos)
1782 {
1783 	return xt_mttg_seq_next(seq, v, ppos, true);
1784 }
1785 
1786 static int xt_target_seq_show(struct seq_file *seq, void *v)
1787 {
1788 	const struct nf_mttg_trav *trav = seq->private;
1789 	const struct xt_target *target;
1790 
1791 	switch (trav->class) {
1792 	case MTTG_TRAV_NFP_UNSPEC:
1793 	case MTTG_TRAV_NFP_SPEC:
1794 		if (trav->curr == trav->head)
1795 			return 0;
1796 		target = list_entry(trav->curr, struct xt_target, list);
1797 		if (*target->name)
1798 			seq_printf(seq, "%s\n", target->name);
1799 	}
1800 	return 0;
1801 }
1802 
1803 static const struct seq_operations xt_target_seq_ops = {
1804 	.start	= xt_target_seq_start,
1805 	.next	= xt_target_seq_next,
1806 	.stop	= xt_mttg_seq_stop,
1807 	.show	= xt_target_seq_show,
1808 };
1809 
1810 #define FORMAT_TABLES	"_tables_names"
1811 #define	FORMAT_MATCHES	"_tables_matches"
1812 #define FORMAT_TARGETS 	"_tables_targets"
1813 
1814 #endif /* CONFIG_PROC_FS */
1815 
1816 /**
1817  * xt_hook_ops_alloc - set up hooks for a new table
1818  * @table:	table with metadata needed to set up hooks
1819  * @fn:		Hook function
1820  *
1821  * This function will create the nf_hook_ops that the x_table needs
1822  * to hand to xt_hook_link_net().
1823  */
1824 struct nf_hook_ops *
1825 xt_hook_ops_alloc(const struct xt_table *table, nf_hookfn *fn)
1826 {
1827 	unsigned int hook_mask = table->valid_hooks;
1828 	uint8_t i, num_hooks = hweight32(hook_mask);
1829 	uint8_t hooknum;
1830 	struct nf_hook_ops *ops;
1831 
1832 	if (!num_hooks)
1833 		return ERR_PTR(-EINVAL);
1834 
1835 	ops = kzalloc_objs(*ops, num_hooks);
1836 	if (ops == NULL)
1837 		return ERR_PTR(-ENOMEM);
1838 
1839 	for (i = 0, hooknum = 0; i < num_hooks && hook_mask != 0;
1840 	     hook_mask >>= 1, ++hooknum) {
1841 		if (!(hook_mask & 1))
1842 			continue;
1843 		ops[i].hook     = fn;
1844 		ops[i].pf       = table->af;
1845 		ops[i].hooknum  = hooknum;
1846 		ops[i].priority = table->priority;
1847 		++i;
1848 	}
1849 
1850 	return ops;
1851 }
1852 EXPORT_SYMBOL_GPL(xt_hook_ops_alloc);
1853 
1854 int xt_register_template(const struct xt_table *table,
1855 			 int (*table_init)(struct net *net))
1856 {
1857 	int ret = -EBUSY, af = table->af;
1858 	struct xt_template *t;
1859 
1860 	mutex_lock(&xt[af].mutex);
1861 
1862 	list_for_each_entry(t, &xt_templates[af], list) {
1863 		if (WARN_ON_ONCE(strcmp(table->name, t->name) == 0))
1864 			goto out_unlock;
1865 	}
1866 
1867 	ret = -ENOMEM;
1868 	t = kzalloc_obj(*t);
1869 	if (!t)
1870 		goto out_unlock;
1871 
1872 	BUILD_BUG_ON(sizeof(t->name) != sizeof(table->name));
1873 
1874 	strscpy(t->name, table->name, sizeof(t->name));
1875 	t->table_init = table_init;
1876 	t->me = table->me;
1877 	list_add(&t->list, &xt_templates[af]);
1878 	ret = 0;
1879 out_unlock:
1880 	mutex_unlock(&xt[af].mutex);
1881 	return ret;
1882 }
1883 EXPORT_SYMBOL_GPL(xt_register_template);
1884 
1885 void xt_unregister_template(const struct xt_table *table)
1886 {
1887 	struct xt_template *t;
1888 	int af = table->af;
1889 
1890 	mutex_lock(&xt[af].mutex);
1891 	list_for_each_entry(t, &xt_templates[af], list) {
1892 		if (strcmp(table->name, t->name))
1893 			continue;
1894 
1895 		list_del(&t->list);
1896 		mutex_unlock(&xt[af].mutex);
1897 		kfree(t);
1898 		return;
1899 	}
1900 
1901 	mutex_unlock(&xt[af].mutex);
1902 	WARN_ON_ONCE(1);
1903 }
1904 EXPORT_SYMBOL_GPL(xt_unregister_template);
1905 
1906 int xt_proto_init(struct net *net, u_int8_t af)
1907 {
1908 #ifdef CONFIG_PROC_FS
1909 	char buf[XT_FUNCTION_MAXNAMELEN];
1910 	struct proc_dir_entry *proc;
1911 	kuid_t root_uid;
1912 	kgid_t root_gid;
1913 #endif
1914 
1915 	if (af >= ARRAY_SIZE(xt_prefix))
1916 		return -EINVAL;
1917 
1918 
1919 #ifdef CONFIG_PROC_FS
1920 	root_uid = make_kuid(net->user_ns, 0);
1921 	root_gid = make_kgid(net->user_ns, 0);
1922 
1923 	strscpy(buf, xt_prefix[af], sizeof(buf));
1924 	strlcat(buf, FORMAT_TABLES, sizeof(buf));
1925 	proc = proc_create_net_data(buf, 0440, net->proc_net, &xt_table_seq_ops,
1926 			sizeof(struct seq_net_private),
1927 			(void *)(unsigned long)af);
1928 	if (!proc)
1929 		goto out;
1930 	if (uid_valid(root_uid) && gid_valid(root_gid))
1931 		proc_set_user(proc, root_uid, root_gid);
1932 
1933 	strscpy(buf, xt_prefix[af], sizeof(buf));
1934 	strlcat(buf, FORMAT_MATCHES, sizeof(buf));
1935 	proc = proc_create_seq_private(buf, 0440, net->proc_net,
1936 			&xt_match_seq_ops, sizeof(struct nf_mttg_trav),
1937 			(void *)(unsigned long)af);
1938 	if (!proc)
1939 		goto out_remove_tables;
1940 	if (uid_valid(root_uid) && gid_valid(root_gid))
1941 		proc_set_user(proc, root_uid, root_gid);
1942 
1943 	strscpy(buf, xt_prefix[af], sizeof(buf));
1944 	strlcat(buf, FORMAT_TARGETS, sizeof(buf));
1945 	proc = proc_create_seq_private(buf, 0440, net->proc_net,
1946 			 &xt_target_seq_ops, sizeof(struct nf_mttg_trav),
1947 			 (void *)(unsigned long)af);
1948 	if (!proc)
1949 		goto out_remove_matches;
1950 	if (uid_valid(root_uid) && gid_valid(root_gid))
1951 		proc_set_user(proc, root_uid, root_gid);
1952 #endif
1953 
1954 	return 0;
1955 
1956 #ifdef CONFIG_PROC_FS
1957 out_remove_matches:
1958 	strscpy(buf, xt_prefix[af], sizeof(buf));
1959 	strlcat(buf, FORMAT_MATCHES, sizeof(buf));
1960 	remove_proc_entry(buf, net->proc_net);
1961 
1962 out_remove_tables:
1963 	strscpy(buf, xt_prefix[af], sizeof(buf));
1964 	strlcat(buf, FORMAT_TABLES, sizeof(buf));
1965 	remove_proc_entry(buf, net->proc_net);
1966 out:
1967 	return -1;
1968 #endif
1969 }
1970 EXPORT_SYMBOL_GPL(xt_proto_init);
1971 
1972 void xt_proto_fini(struct net *net, u_int8_t af)
1973 {
1974 #ifdef CONFIG_PROC_FS
1975 	char buf[XT_FUNCTION_MAXNAMELEN];
1976 
1977 	strscpy(buf, xt_prefix[af], sizeof(buf));
1978 	strlcat(buf, FORMAT_TABLES, sizeof(buf));
1979 	remove_proc_entry(buf, net->proc_net);
1980 
1981 	strscpy(buf, xt_prefix[af], sizeof(buf));
1982 	strlcat(buf, FORMAT_TARGETS, sizeof(buf));
1983 	remove_proc_entry(buf, net->proc_net);
1984 
1985 	strscpy(buf, xt_prefix[af], sizeof(buf));
1986 	strlcat(buf, FORMAT_MATCHES, sizeof(buf));
1987 	remove_proc_entry(buf, net->proc_net);
1988 #endif /*CONFIG_PROC_FS*/
1989 }
1990 EXPORT_SYMBOL_GPL(xt_proto_fini);
1991 
1992 #ifdef CONFIG_NETFILTER_XTABLES_LEGACY
1993 /**
1994  * xt_percpu_counter_alloc - allocate x_tables rule counter
1995  *
1996  * @state: pointer to xt_percpu allocation state
1997  * @counter: pointer to counter struct inside the ip(6)/arpt_entry struct
1998  *
1999  * On SMP, the packet counter [ ip(6)t_entry->counters.pcnt ] will then
2000  * contain the address of the real (percpu) counter.
2001  *
2002  * Rule evaluation needs to use xt_get_this_cpu_counter() helper
2003  * to fetch the real percpu counter.
2004  *
2005  * To speed up allocation and improve data locality, a 4kb block is
2006  * allocated.  Freeing any counter may free an entire block, so all
2007  * counters allocated using the same state must be freed at the same
2008  * time.
2009  *
2010  * xt_percpu_counter_alloc_state contains the base address of the
2011  * allocated page and the current sub-offset.
2012  *
2013  * returns false on error.
2014  */
2015 bool xt_percpu_counter_alloc(struct xt_percpu_counter_alloc_state *state,
2016 			     struct xt_counters *counter)
2017 {
2018 	BUILD_BUG_ON(XT_PCPU_BLOCK_SIZE < (sizeof(*counter) * 2));
2019 
2020 	if (nr_cpu_ids <= 1)
2021 		return true;
2022 
2023 	if (!state->mem) {
2024 		state->mem = __alloc_percpu(XT_PCPU_BLOCK_SIZE,
2025 					    XT_PCPU_BLOCK_SIZE);
2026 		if (!state->mem)
2027 			return false;
2028 	}
2029 	counter->pcnt = (__force unsigned long)(state->mem + state->off);
2030 	state->off += sizeof(*counter);
2031 	if (state->off > (XT_PCPU_BLOCK_SIZE - sizeof(*counter))) {
2032 		state->mem = NULL;
2033 		state->off = 0;
2034 	}
2035 	return true;
2036 }
2037 EXPORT_SYMBOL_GPL(xt_percpu_counter_alloc);
2038 
2039 void xt_percpu_counter_free(struct xt_counters *counters)
2040 {
2041 	unsigned long pcnt = counters->pcnt;
2042 
2043 	if (nr_cpu_ids > 1 && (pcnt & (XT_PCPU_BLOCK_SIZE - 1)) == 0)
2044 		free_percpu((void __percpu *)pcnt);
2045 }
2046 EXPORT_SYMBOL_GPL(xt_percpu_counter_free);
2047 #endif
2048 
2049 static int __net_init xt_net_init(struct net *net)
2050 {
2051 	struct xt_pernet *xt_net = net_generic(net, xt_pernet_id);
2052 	int i;
2053 
2054 	for (i = 0; i < NFPROTO_NUMPROTO; i++)
2055 		INIT_LIST_HEAD(&xt_net->tables[i]);
2056 	return 0;
2057 }
2058 
2059 static void __net_exit xt_net_exit(struct net *net)
2060 {
2061 	struct xt_pernet *xt_net = net_generic(net, xt_pernet_id);
2062 	int i;
2063 
2064 	for (i = 0; i < NFPROTO_NUMPROTO; i++)
2065 		WARN_ON_ONCE(!list_empty(&xt_net->tables[i]));
2066 }
2067 
2068 static struct pernet_operations xt_net_ops = {
2069 	.init = xt_net_init,
2070 	.exit = xt_net_exit,
2071 	.id   = &xt_pernet_id,
2072 	.size = sizeof(struct xt_pernet),
2073 };
2074 
2075 static int __init xt_init(void)
2076 {
2077 	unsigned int i;
2078 	int rv;
2079 
2080 	if (IS_ENABLED(CONFIG_NETFILTER_XTABLES_LEGACY)) {
2081 		for_each_possible_cpu(i) {
2082 			seqcount_init(&per_cpu(xt_recseq, i));
2083 		}
2084 	}
2085 
2086 	xt = kzalloc_objs(struct xt_af, NFPROTO_NUMPROTO);
2087 	if (!xt)
2088 		return -ENOMEM;
2089 
2090 	for (i = 0; i < NFPROTO_NUMPROTO; i++) {
2091 		mutex_init(&xt[i].mutex);
2092 #ifdef CONFIG_NETFILTER_XTABLES_COMPAT
2093 		mutex_init(&xt[i].compat_mutex);
2094 		xt[i].compat_tab = NULL;
2095 #endif
2096 		INIT_LIST_HEAD(&xt[i].target);
2097 		INIT_LIST_HEAD(&xt[i].match);
2098 		INIT_LIST_HEAD(&xt_templates[i]);
2099 	}
2100 	rv = register_pernet_subsys(&xt_net_ops);
2101 	if (rv < 0)
2102 		kfree(xt);
2103 	return rv;
2104 }
2105 
2106 static void __exit xt_fini(void)
2107 {
2108 	unregister_pernet_subsys(&xt_net_ops);
2109 	kfree(xt);
2110 }
2111 
2112 module_init(xt_init);
2113 module_exit(xt_fini);
2114