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