1 /* 2 * core.c - Kernel Live Patching Core 3 * 4 * Copyright (C) 2014 Seth Jennings <sjenning@redhat.com> 5 * Copyright (C) 2014 SUSE 6 * 7 * This program is free software; you can redistribute it and/or 8 * modify it under the terms of the GNU General Public License 9 * as published by the Free Software Foundation; either version 2 10 * of the License, or (at your option) any later version. 11 * 12 * This program is distributed in the hope that it will be useful, 13 * but WITHOUT ANY WARRANTY; without even the implied warranty of 14 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 15 * GNU General Public License for more details. 16 * 17 * You should have received a copy of the GNU General Public License 18 * along with this program; if not, see <http://www.gnu.org/licenses/>. 19 */ 20 21 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 22 23 #include <linux/module.h> 24 #include <linux/kernel.h> 25 #include <linux/mutex.h> 26 #include <linux/slab.h> 27 #include <linux/list.h> 28 #include <linux/kallsyms.h> 29 #include <linux/livepatch.h> 30 #include <linux/elf.h> 31 #include <linux/moduleloader.h> 32 #include <linux/completion.h> 33 #include <asm/cacheflush.h> 34 #include "core.h" 35 #include "patch.h" 36 #include "transition.h" 37 38 /* 39 * klp_mutex is a coarse lock which serializes access to klp data. All 40 * accesses to klp-related variables and structures must have mutex protection, 41 * except within the following functions which carefully avoid the need for it: 42 * 43 * - klp_ftrace_handler() 44 * - klp_update_patch_state() 45 */ 46 DEFINE_MUTEX(klp_mutex); 47 48 /* 49 * Actively used patches: enabled or in transition. Note that replaced 50 * or disabled patches are not listed even though the related kernel 51 * module still can be loaded. 52 */ 53 LIST_HEAD(klp_patches); 54 55 static struct kobject *klp_root_kobj; 56 57 static bool klp_is_module(struct klp_object *obj) 58 { 59 return obj->name; 60 } 61 62 /* sets obj->mod if object is not vmlinux and module is found */ 63 static void klp_find_object_module(struct klp_object *obj) 64 { 65 struct module *mod; 66 67 if (!klp_is_module(obj)) 68 return; 69 70 mutex_lock(&module_mutex); 71 /* 72 * We do not want to block removal of patched modules and therefore 73 * we do not take a reference here. The patches are removed by 74 * klp_module_going() instead. 75 */ 76 mod = find_module(obj->name); 77 /* 78 * Do not mess work of klp_module_coming() and klp_module_going(). 79 * Note that the patch might still be needed before klp_module_going() 80 * is called. Module functions can be called even in the GOING state 81 * until mod->exit() finishes. This is especially important for 82 * patches that modify semantic of the functions. 83 */ 84 if (mod && mod->klp_alive) 85 obj->mod = mod; 86 87 mutex_unlock(&module_mutex); 88 } 89 90 static bool klp_initialized(void) 91 { 92 return !!klp_root_kobj; 93 } 94 95 static struct klp_func *klp_find_func(struct klp_object *obj, 96 struct klp_func *old_func) 97 { 98 struct klp_func *func; 99 100 klp_for_each_func(obj, func) { 101 if ((strcmp(old_func->old_name, func->old_name) == 0) && 102 (old_func->old_sympos == func->old_sympos)) { 103 return func; 104 } 105 } 106 107 return NULL; 108 } 109 110 static struct klp_object *klp_find_object(struct klp_patch *patch, 111 struct klp_object *old_obj) 112 { 113 struct klp_object *obj; 114 115 klp_for_each_object(patch, obj) { 116 if (klp_is_module(old_obj)) { 117 if (klp_is_module(obj) && 118 strcmp(old_obj->name, obj->name) == 0) { 119 return obj; 120 } 121 } else if (!klp_is_module(obj)) { 122 return obj; 123 } 124 } 125 126 return NULL; 127 } 128 129 struct klp_find_arg { 130 const char *objname; 131 const char *name; 132 unsigned long addr; 133 unsigned long count; 134 unsigned long pos; 135 }; 136 137 static int klp_find_callback(void *data, const char *name, 138 struct module *mod, unsigned long addr) 139 { 140 struct klp_find_arg *args = data; 141 142 if ((mod && !args->objname) || (!mod && args->objname)) 143 return 0; 144 145 if (strcmp(args->name, name)) 146 return 0; 147 148 if (args->objname && strcmp(args->objname, mod->name)) 149 return 0; 150 151 args->addr = addr; 152 args->count++; 153 154 /* 155 * Finish the search when the symbol is found for the desired position 156 * or the position is not defined for a non-unique symbol. 157 */ 158 if ((args->pos && (args->count == args->pos)) || 159 (!args->pos && (args->count > 1))) 160 return 1; 161 162 return 0; 163 } 164 165 static int klp_find_object_symbol(const char *objname, const char *name, 166 unsigned long sympos, unsigned long *addr) 167 { 168 struct klp_find_arg args = { 169 .objname = objname, 170 .name = name, 171 .addr = 0, 172 .count = 0, 173 .pos = sympos, 174 }; 175 176 mutex_lock(&module_mutex); 177 if (objname) 178 module_kallsyms_on_each_symbol(klp_find_callback, &args); 179 else 180 kallsyms_on_each_symbol(klp_find_callback, &args); 181 mutex_unlock(&module_mutex); 182 183 /* 184 * Ensure an address was found. If sympos is 0, ensure symbol is unique; 185 * otherwise ensure the symbol position count matches sympos. 186 */ 187 if (args.addr == 0) 188 pr_err("symbol '%s' not found in symbol table\n", name); 189 else if (args.count > 1 && sympos == 0) { 190 pr_err("unresolvable ambiguity for symbol '%s' in object '%s'\n", 191 name, objname); 192 } else if (sympos != args.count && sympos > 0) { 193 pr_err("symbol position %lu for symbol '%s' in object '%s' not found\n", 194 sympos, name, objname ? objname : "vmlinux"); 195 } else { 196 *addr = args.addr; 197 return 0; 198 } 199 200 *addr = 0; 201 return -EINVAL; 202 } 203 204 static int klp_resolve_symbols(Elf_Shdr *relasec, struct module *pmod) 205 { 206 int i, cnt, vmlinux, ret; 207 char objname[MODULE_NAME_LEN]; 208 char symname[KSYM_NAME_LEN]; 209 char *strtab = pmod->core_kallsyms.strtab; 210 Elf_Rela *relas; 211 Elf_Sym *sym; 212 unsigned long sympos, addr; 213 214 /* 215 * Since the field widths for objname and symname in the sscanf() 216 * call are hard-coded and correspond to MODULE_NAME_LEN and 217 * KSYM_NAME_LEN respectively, we must make sure that MODULE_NAME_LEN 218 * and KSYM_NAME_LEN have the values we expect them to have. 219 * 220 * Because the value of MODULE_NAME_LEN can differ among architectures, 221 * we use the smallest/strictest upper bound possible (56, based on 222 * the current definition of MODULE_NAME_LEN) to prevent overflows. 223 */ 224 BUILD_BUG_ON(MODULE_NAME_LEN < 56 || KSYM_NAME_LEN != 128); 225 226 relas = (Elf_Rela *) relasec->sh_addr; 227 /* For each rela in this klp relocation section */ 228 for (i = 0; i < relasec->sh_size / sizeof(Elf_Rela); i++) { 229 sym = pmod->core_kallsyms.symtab + ELF_R_SYM(relas[i].r_info); 230 if (sym->st_shndx != SHN_LIVEPATCH) { 231 pr_err("symbol %s is not marked as a livepatch symbol\n", 232 strtab + sym->st_name); 233 return -EINVAL; 234 } 235 236 /* Format: .klp.sym.objname.symname,sympos */ 237 cnt = sscanf(strtab + sym->st_name, 238 ".klp.sym.%55[^.].%127[^,],%lu", 239 objname, symname, &sympos); 240 if (cnt != 3) { 241 pr_err("symbol %s has an incorrectly formatted name\n", 242 strtab + sym->st_name); 243 return -EINVAL; 244 } 245 246 /* klp_find_object_symbol() treats a NULL objname as vmlinux */ 247 vmlinux = !strcmp(objname, "vmlinux"); 248 ret = klp_find_object_symbol(vmlinux ? NULL : objname, 249 symname, sympos, &addr); 250 if (ret) 251 return ret; 252 253 sym->st_value = addr; 254 } 255 256 return 0; 257 } 258 259 static int klp_write_object_relocations(struct module *pmod, 260 struct klp_object *obj) 261 { 262 int i, cnt, ret = 0; 263 const char *objname, *secname; 264 char sec_objname[MODULE_NAME_LEN]; 265 Elf_Shdr *sec; 266 267 if (WARN_ON(!klp_is_object_loaded(obj))) 268 return -EINVAL; 269 270 objname = klp_is_module(obj) ? obj->name : "vmlinux"; 271 272 /* For each klp relocation section */ 273 for (i = 1; i < pmod->klp_info->hdr.e_shnum; i++) { 274 sec = pmod->klp_info->sechdrs + i; 275 secname = pmod->klp_info->secstrings + sec->sh_name; 276 if (!(sec->sh_flags & SHF_RELA_LIVEPATCH)) 277 continue; 278 279 /* 280 * Format: .klp.rela.sec_objname.section_name 281 * See comment in klp_resolve_symbols() for an explanation 282 * of the selected field width value. 283 */ 284 cnt = sscanf(secname, ".klp.rela.%55[^.]", sec_objname); 285 if (cnt != 1) { 286 pr_err("section %s has an incorrectly formatted name\n", 287 secname); 288 ret = -EINVAL; 289 break; 290 } 291 292 if (strcmp(objname, sec_objname)) 293 continue; 294 295 ret = klp_resolve_symbols(sec, pmod); 296 if (ret) 297 break; 298 299 ret = apply_relocate_add(pmod->klp_info->sechdrs, 300 pmod->core_kallsyms.strtab, 301 pmod->klp_info->symndx, i, pmod); 302 if (ret) 303 break; 304 } 305 306 return ret; 307 } 308 309 /* 310 * Sysfs Interface 311 * 312 * /sys/kernel/livepatch 313 * /sys/kernel/livepatch/<patch> 314 * /sys/kernel/livepatch/<patch>/enabled 315 * /sys/kernel/livepatch/<patch>/transition 316 * /sys/kernel/livepatch/<patch>/force 317 * /sys/kernel/livepatch/<patch>/<object> 318 * /sys/kernel/livepatch/<patch>/<object>/<function,sympos> 319 */ 320 static int __klp_disable_patch(struct klp_patch *patch); 321 322 static ssize_t enabled_store(struct kobject *kobj, struct kobj_attribute *attr, 323 const char *buf, size_t count) 324 { 325 struct klp_patch *patch; 326 int ret; 327 bool enabled; 328 329 ret = kstrtobool(buf, &enabled); 330 if (ret) 331 return ret; 332 333 patch = container_of(kobj, struct klp_patch, kobj); 334 335 mutex_lock(&klp_mutex); 336 337 if (patch->enabled == enabled) { 338 /* already in requested state */ 339 ret = -EINVAL; 340 goto out; 341 } 342 343 /* 344 * Allow to reverse a pending transition in both ways. It might be 345 * necessary to complete the transition without forcing and breaking 346 * the system integrity. 347 * 348 * Do not allow to re-enable a disabled patch. 349 */ 350 if (patch == klp_transition_patch) 351 klp_reverse_transition(); 352 else if (!enabled) 353 ret = __klp_disable_patch(patch); 354 else 355 ret = -EINVAL; 356 357 out: 358 mutex_unlock(&klp_mutex); 359 360 if (ret) 361 return ret; 362 return count; 363 } 364 365 static ssize_t enabled_show(struct kobject *kobj, 366 struct kobj_attribute *attr, char *buf) 367 { 368 struct klp_patch *patch; 369 370 patch = container_of(kobj, struct klp_patch, kobj); 371 return snprintf(buf, PAGE_SIZE-1, "%d\n", patch->enabled); 372 } 373 374 static ssize_t transition_show(struct kobject *kobj, 375 struct kobj_attribute *attr, char *buf) 376 { 377 struct klp_patch *patch; 378 379 patch = container_of(kobj, struct klp_patch, kobj); 380 return snprintf(buf, PAGE_SIZE-1, "%d\n", 381 patch == klp_transition_patch); 382 } 383 384 static ssize_t force_store(struct kobject *kobj, struct kobj_attribute *attr, 385 const char *buf, size_t count) 386 { 387 struct klp_patch *patch; 388 int ret; 389 bool val; 390 391 ret = kstrtobool(buf, &val); 392 if (ret) 393 return ret; 394 395 if (!val) 396 return count; 397 398 mutex_lock(&klp_mutex); 399 400 patch = container_of(kobj, struct klp_patch, kobj); 401 if (patch != klp_transition_patch) { 402 mutex_unlock(&klp_mutex); 403 return -EINVAL; 404 } 405 406 klp_force_transition(); 407 408 mutex_unlock(&klp_mutex); 409 410 return count; 411 } 412 413 static struct kobj_attribute enabled_kobj_attr = __ATTR_RW(enabled); 414 static struct kobj_attribute transition_kobj_attr = __ATTR_RO(transition); 415 static struct kobj_attribute force_kobj_attr = __ATTR_WO(force); 416 static struct attribute *klp_patch_attrs[] = { 417 &enabled_kobj_attr.attr, 418 &transition_kobj_attr.attr, 419 &force_kobj_attr.attr, 420 NULL 421 }; 422 ATTRIBUTE_GROUPS(klp_patch); 423 424 static void klp_free_object_dynamic(struct klp_object *obj) 425 { 426 kfree(obj->name); 427 kfree(obj); 428 } 429 430 static void klp_init_func_early(struct klp_object *obj, 431 struct klp_func *func); 432 static void klp_init_object_early(struct klp_patch *patch, 433 struct klp_object *obj); 434 435 static struct klp_object *klp_alloc_object_dynamic(const char *name, 436 struct klp_patch *patch) 437 { 438 struct klp_object *obj; 439 440 obj = kzalloc(sizeof(*obj), GFP_KERNEL); 441 if (!obj) 442 return NULL; 443 444 if (name) { 445 obj->name = kstrdup(name, GFP_KERNEL); 446 if (!obj->name) { 447 kfree(obj); 448 return NULL; 449 } 450 } 451 452 klp_init_object_early(patch, obj); 453 obj->dynamic = true; 454 455 return obj; 456 } 457 458 static void klp_free_func_nop(struct klp_func *func) 459 { 460 kfree(func->old_name); 461 kfree(func); 462 } 463 464 static struct klp_func *klp_alloc_func_nop(struct klp_func *old_func, 465 struct klp_object *obj) 466 { 467 struct klp_func *func; 468 469 func = kzalloc(sizeof(*func), GFP_KERNEL); 470 if (!func) 471 return NULL; 472 473 if (old_func->old_name) { 474 func->old_name = kstrdup(old_func->old_name, GFP_KERNEL); 475 if (!func->old_name) { 476 kfree(func); 477 return NULL; 478 } 479 } 480 481 klp_init_func_early(obj, func); 482 /* 483 * func->new_func is same as func->old_func. These addresses are 484 * set when the object is loaded, see klp_init_object_loaded(). 485 */ 486 func->old_sympos = old_func->old_sympos; 487 func->nop = true; 488 489 return func; 490 } 491 492 static int klp_add_object_nops(struct klp_patch *patch, 493 struct klp_object *old_obj) 494 { 495 struct klp_object *obj; 496 struct klp_func *func, *old_func; 497 498 obj = klp_find_object(patch, old_obj); 499 500 if (!obj) { 501 obj = klp_alloc_object_dynamic(old_obj->name, patch); 502 if (!obj) 503 return -ENOMEM; 504 } 505 506 klp_for_each_func(old_obj, old_func) { 507 func = klp_find_func(obj, old_func); 508 if (func) 509 continue; 510 511 func = klp_alloc_func_nop(old_func, obj); 512 if (!func) 513 return -ENOMEM; 514 } 515 516 return 0; 517 } 518 519 /* 520 * Add 'nop' functions which simply return to the caller to run 521 * the original function. The 'nop' functions are added to a 522 * patch to facilitate a 'replace' mode. 523 */ 524 static int klp_add_nops(struct klp_patch *patch) 525 { 526 struct klp_patch *old_patch; 527 struct klp_object *old_obj; 528 529 klp_for_each_patch(old_patch) { 530 klp_for_each_object(old_patch, old_obj) { 531 int err; 532 533 err = klp_add_object_nops(patch, old_obj); 534 if (err) 535 return err; 536 } 537 } 538 539 return 0; 540 } 541 542 static void klp_kobj_release_patch(struct kobject *kobj) 543 { 544 struct klp_patch *patch; 545 546 patch = container_of(kobj, struct klp_patch, kobj); 547 complete(&patch->finish); 548 } 549 550 static struct kobj_type klp_ktype_patch = { 551 .release = klp_kobj_release_patch, 552 .sysfs_ops = &kobj_sysfs_ops, 553 .default_groups = klp_patch_groups, 554 }; 555 556 static void klp_kobj_release_object(struct kobject *kobj) 557 { 558 struct klp_object *obj; 559 560 obj = container_of(kobj, struct klp_object, kobj); 561 562 if (obj->dynamic) 563 klp_free_object_dynamic(obj); 564 } 565 566 static struct kobj_type klp_ktype_object = { 567 .release = klp_kobj_release_object, 568 .sysfs_ops = &kobj_sysfs_ops, 569 }; 570 571 static void klp_kobj_release_func(struct kobject *kobj) 572 { 573 struct klp_func *func; 574 575 func = container_of(kobj, struct klp_func, kobj); 576 577 if (func->nop) 578 klp_free_func_nop(func); 579 } 580 581 static struct kobj_type klp_ktype_func = { 582 .release = klp_kobj_release_func, 583 .sysfs_ops = &kobj_sysfs_ops, 584 }; 585 586 static void __klp_free_funcs(struct klp_object *obj, bool nops_only) 587 { 588 struct klp_func *func, *tmp_func; 589 590 klp_for_each_func_safe(obj, func, tmp_func) { 591 if (nops_only && !func->nop) 592 continue; 593 594 list_del(&func->node); 595 kobject_put(&func->kobj); 596 } 597 } 598 599 /* Clean up when a patched object is unloaded */ 600 static void klp_free_object_loaded(struct klp_object *obj) 601 { 602 struct klp_func *func; 603 604 obj->mod = NULL; 605 606 klp_for_each_func(obj, func) { 607 func->old_func = NULL; 608 609 if (func->nop) 610 func->new_func = NULL; 611 } 612 } 613 614 static void __klp_free_objects(struct klp_patch *patch, bool nops_only) 615 { 616 struct klp_object *obj, *tmp_obj; 617 618 klp_for_each_object_safe(patch, obj, tmp_obj) { 619 __klp_free_funcs(obj, nops_only); 620 621 if (nops_only && !obj->dynamic) 622 continue; 623 624 list_del(&obj->node); 625 kobject_put(&obj->kobj); 626 } 627 } 628 629 static void klp_free_objects(struct klp_patch *patch) 630 { 631 __klp_free_objects(patch, false); 632 } 633 634 static void klp_free_objects_dynamic(struct klp_patch *patch) 635 { 636 __klp_free_objects(patch, true); 637 } 638 639 /* 640 * This function implements the free operations that can be called safely 641 * under klp_mutex. 642 * 643 * The operation must be completed by calling klp_free_patch_finish() 644 * outside klp_mutex. 645 */ 646 void klp_free_patch_start(struct klp_patch *patch) 647 { 648 if (!list_empty(&patch->list)) 649 list_del(&patch->list); 650 651 klp_free_objects(patch); 652 } 653 654 /* 655 * This function implements the free part that must be called outside 656 * klp_mutex. 657 * 658 * It must be called after klp_free_patch_start(). And it has to be 659 * the last function accessing the livepatch structures when the patch 660 * gets disabled. 661 */ 662 static void klp_free_patch_finish(struct klp_patch *patch) 663 { 664 /* 665 * Avoid deadlock with enabled_store() sysfs callback by 666 * calling this outside klp_mutex. It is safe because 667 * this is called when the patch gets disabled and it 668 * cannot get enabled again. 669 */ 670 kobject_put(&patch->kobj); 671 wait_for_completion(&patch->finish); 672 673 /* Put the module after the last access to struct klp_patch. */ 674 if (!patch->forced) 675 module_put(patch->mod); 676 } 677 678 /* 679 * The livepatch might be freed from sysfs interface created by the patch. 680 * This work allows to wait until the interface is destroyed in a separate 681 * context. 682 */ 683 static void klp_free_patch_work_fn(struct work_struct *work) 684 { 685 struct klp_patch *patch = 686 container_of(work, struct klp_patch, free_work); 687 688 klp_free_patch_finish(patch); 689 } 690 691 static int klp_init_func(struct klp_object *obj, struct klp_func *func) 692 { 693 if (!func->old_name) 694 return -EINVAL; 695 696 /* 697 * NOPs get the address later. The patched module must be loaded, 698 * see klp_init_object_loaded(). 699 */ 700 if (!func->new_func && !func->nop) 701 return -EINVAL; 702 703 if (strlen(func->old_name) >= KSYM_NAME_LEN) 704 return -EINVAL; 705 706 INIT_LIST_HEAD(&func->stack_node); 707 func->patched = false; 708 func->transition = false; 709 710 /* The format for the sysfs directory is <function,sympos> where sympos 711 * is the nth occurrence of this symbol in kallsyms for the patched 712 * object. If the user selects 0 for old_sympos, then 1 will be used 713 * since a unique symbol will be the first occurrence. 714 */ 715 return kobject_add(&func->kobj, &obj->kobj, "%s,%lu", 716 func->old_name, 717 func->old_sympos ? func->old_sympos : 1); 718 } 719 720 /* Arches may override this to finish any remaining arch-specific tasks */ 721 void __weak arch_klp_init_object_loaded(struct klp_patch *patch, 722 struct klp_object *obj) 723 { 724 } 725 726 /* parts of the initialization that is done only when the object is loaded */ 727 static int klp_init_object_loaded(struct klp_patch *patch, 728 struct klp_object *obj) 729 { 730 struct klp_func *func; 731 int ret; 732 733 module_disable_ro(patch->mod); 734 ret = klp_write_object_relocations(patch->mod, obj); 735 if (ret) { 736 module_enable_ro(patch->mod, true); 737 return ret; 738 } 739 740 arch_klp_init_object_loaded(patch, obj); 741 module_enable_ro(patch->mod, true); 742 743 klp_for_each_func(obj, func) { 744 ret = klp_find_object_symbol(obj->name, func->old_name, 745 func->old_sympos, 746 (unsigned long *)&func->old_func); 747 if (ret) 748 return ret; 749 750 ret = kallsyms_lookup_size_offset((unsigned long)func->old_func, 751 &func->old_size, NULL); 752 if (!ret) { 753 pr_err("kallsyms size lookup failed for '%s'\n", 754 func->old_name); 755 return -ENOENT; 756 } 757 758 if (func->nop) 759 func->new_func = func->old_func; 760 761 ret = kallsyms_lookup_size_offset((unsigned long)func->new_func, 762 &func->new_size, NULL); 763 if (!ret) { 764 pr_err("kallsyms size lookup failed for '%s' replacement\n", 765 func->old_name); 766 return -ENOENT; 767 } 768 } 769 770 return 0; 771 } 772 773 static int klp_init_object(struct klp_patch *patch, struct klp_object *obj) 774 { 775 struct klp_func *func; 776 int ret; 777 const char *name; 778 779 if (klp_is_module(obj) && strlen(obj->name) >= MODULE_NAME_LEN) 780 return -EINVAL; 781 782 obj->patched = false; 783 obj->mod = NULL; 784 785 klp_find_object_module(obj); 786 787 name = klp_is_module(obj) ? obj->name : "vmlinux"; 788 ret = kobject_add(&obj->kobj, &patch->kobj, "%s", name); 789 if (ret) 790 return ret; 791 792 klp_for_each_func(obj, func) { 793 ret = klp_init_func(obj, func); 794 if (ret) 795 return ret; 796 } 797 798 if (klp_is_object_loaded(obj)) 799 ret = klp_init_object_loaded(patch, obj); 800 801 return ret; 802 } 803 804 static void klp_init_func_early(struct klp_object *obj, 805 struct klp_func *func) 806 { 807 kobject_init(&func->kobj, &klp_ktype_func); 808 list_add_tail(&func->node, &obj->func_list); 809 } 810 811 static void klp_init_object_early(struct klp_patch *patch, 812 struct klp_object *obj) 813 { 814 INIT_LIST_HEAD(&obj->func_list); 815 kobject_init(&obj->kobj, &klp_ktype_object); 816 list_add_tail(&obj->node, &patch->obj_list); 817 } 818 819 static int klp_init_patch_early(struct klp_patch *patch) 820 { 821 struct klp_object *obj; 822 struct klp_func *func; 823 824 if (!patch->objs) 825 return -EINVAL; 826 827 INIT_LIST_HEAD(&patch->list); 828 INIT_LIST_HEAD(&patch->obj_list); 829 kobject_init(&patch->kobj, &klp_ktype_patch); 830 patch->enabled = false; 831 patch->forced = false; 832 INIT_WORK(&patch->free_work, klp_free_patch_work_fn); 833 init_completion(&patch->finish); 834 835 klp_for_each_object_static(patch, obj) { 836 if (!obj->funcs) 837 return -EINVAL; 838 839 klp_init_object_early(patch, obj); 840 841 klp_for_each_func_static(obj, func) { 842 klp_init_func_early(obj, func); 843 } 844 } 845 846 if (!try_module_get(patch->mod)) 847 return -ENODEV; 848 849 return 0; 850 } 851 852 static int klp_init_patch(struct klp_patch *patch) 853 { 854 struct klp_object *obj; 855 int ret; 856 857 ret = kobject_add(&patch->kobj, klp_root_kobj, "%s", patch->mod->name); 858 if (ret) 859 return ret; 860 861 if (patch->replace) { 862 ret = klp_add_nops(patch); 863 if (ret) 864 return ret; 865 } 866 867 klp_for_each_object(patch, obj) { 868 ret = klp_init_object(patch, obj); 869 if (ret) 870 return ret; 871 } 872 873 list_add_tail(&patch->list, &klp_patches); 874 875 return 0; 876 } 877 878 static int __klp_disable_patch(struct klp_patch *patch) 879 { 880 struct klp_object *obj; 881 882 if (WARN_ON(!patch->enabled)) 883 return -EINVAL; 884 885 if (klp_transition_patch) 886 return -EBUSY; 887 888 klp_init_transition(patch, KLP_UNPATCHED); 889 890 klp_for_each_object(patch, obj) 891 if (obj->patched) 892 klp_pre_unpatch_callback(obj); 893 894 /* 895 * Enforce the order of the func->transition writes in 896 * klp_init_transition() and the TIF_PATCH_PENDING writes in 897 * klp_start_transition(). In the rare case where klp_ftrace_handler() 898 * is called shortly after klp_update_patch_state() switches the task, 899 * this ensures the handler sees that func->transition is set. 900 */ 901 smp_wmb(); 902 903 klp_start_transition(); 904 patch->enabled = false; 905 klp_try_complete_transition(); 906 907 return 0; 908 } 909 910 static int __klp_enable_patch(struct klp_patch *patch) 911 { 912 struct klp_object *obj; 913 int ret; 914 915 if (klp_transition_patch) 916 return -EBUSY; 917 918 if (WARN_ON(patch->enabled)) 919 return -EINVAL; 920 921 pr_notice("enabling patch '%s'\n", patch->mod->name); 922 923 klp_init_transition(patch, KLP_PATCHED); 924 925 /* 926 * Enforce the order of the func->transition writes in 927 * klp_init_transition() and the ops->func_stack writes in 928 * klp_patch_object(), so that klp_ftrace_handler() will see the 929 * func->transition updates before the handler is registered and the 930 * new funcs become visible to the handler. 931 */ 932 smp_wmb(); 933 934 klp_for_each_object(patch, obj) { 935 if (!klp_is_object_loaded(obj)) 936 continue; 937 938 ret = klp_pre_patch_callback(obj); 939 if (ret) { 940 pr_warn("pre-patch callback failed for object '%s'\n", 941 klp_is_module(obj) ? obj->name : "vmlinux"); 942 goto err; 943 } 944 945 ret = klp_patch_object(obj); 946 if (ret) { 947 pr_warn("failed to patch object '%s'\n", 948 klp_is_module(obj) ? obj->name : "vmlinux"); 949 goto err; 950 } 951 } 952 953 klp_start_transition(); 954 patch->enabled = true; 955 klp_try_complete_transition(); 956 957 return 0; 958 err: 959 pr_warn("failed to enable patch '%s'\n", patch->mod->name); 960 961 klp_cancel_transition(); 962 return ret; 963 } 964 965 /** 966 * klp_enable_patch() - enable the livepatch 967 * @patch: patch to be enabled 968 * 969 * Initializes the data structure associated with the patch, creates the sysfs 970 * interface, performs the needed symbol lookups and code relocations, 971 * registers the patched functions with ftrace. 972 * 973 * This function is supposed to be called from the livepatch module_init() 974 * callback. 975 * 976 * Return: 0 on success, otherwise error 977 */ 978 int klp_enable_patch(struct klp_patch *patch) 979 { 980 int ret; 981 982 if (!patch || !patch->mod) 983 return -EINVAL; 984 985 if (!is_livepatch_module(patch->mod)) { 986 pr_err("module %s is not marked as a livepatch module\n", 987 patch->mod->name); 988 return -EINVAL; 989 } 990 991 if (!klp_initialized()) 992 return -ENODEV; 993 994 if (!klp_have_reliable_stack()) { 995 pr_warn("This architecture doesn't have support for the livepatch consistency model.\n"); 996 pr_warn("The livepatch transition may never complete.\n"); 997 } 998 999 mutex_lock(&klp_mutex); 1000 1001 ret = klp_init_patch_early(patch); 1002 if (ret) { 1003 mutex_unlock(&klp_mutex); 1004 return ret; 1005 } 1006 1007 ret = klp_init_patch(patch); 1008 if (ret) 1009 goto err; 1010 1011 ret = __klp_enable_patch(patch); 1012 if (ret) 1013 goto err; 1014 1015 mutex_unlock(&klp_mutex); 1016 1017 return 0; 1018 1019 err: 1020 klp_free_patch_start(patch); 1021 1022 mutex_unlock(&klp_mutex); 1023 1024 klp_free_patch_finish(patch); 1025 1026 return ret; 1027 } 1028 EXPORT_SYMBOL_GPL(klp_enable_patch); 1029 1030 /* 1031 * This function removes replaced patches. 1032 * 1033 * We could be pretty aggressive here. It is called in the situation where 1034 * these structures are no longer accessible. All functions are redirected 1035 * by the klp_transition_patch. They use either a new code or they are in 1036 * the original code because of the special nop function patches. 1037 * 1038 * The only exception is when the transition was forced. In this case, 1039 * klp_ftrace_handler() might still see the replaced patch on the stack. 1040 * Fortunately, it is carefully designed to work with removed functions 1041 * thanks to RCU. We only have to keep the patches on the system. Also 1042 * this is handled transparently by patch->module_put. 1043 */ 1044 void klp_discard_replaced_patches(struct klp_patch *new_patch) 1045 { 1046 struct klp_patch *old_patch, *tmp_patch; 1047 1048 klp_for_each_patch_safe(old_patch, tmp_patch) { 1049 if (old_patch == new_patch) 1050 return; 1051 1052 old_patch->enabled = false; 1053 klp_unpatch_objects(old_patch); 1054 klp_free_patch_start(old_patch); 1055 schedule_work(&old_patch->free_work); 1056 } 1057 } 1058 1059 /* 1060 * This function removes the dynamically allocated 'nop' functions. 1061 * 1062 * We could be pretty aggressive. NOPs do not change the existing 1063 * behavior except for adding unnecessary delay by the ftrace handler. 1064 * 1065 * It is safe even when the transition was forced. The ftrace handler 1066 * will see a valid ops->func_stack entry thanks to RCU. 1067 * 1068 * We could even free the NOPs structures. They must be the last entry 1069 * in ops->func_stack. Therefore unregister_ftrace_function() is called. 1070 * It does the same as klp_synchronize_transition() to make sure that 1071 * nobody is inside the ftrace handler once the operation finishes. 1072 * 1073 * IMPORTANT: It must be called right after removing the replaced patches! 1074 */ 1075 void klp_discard_nops(struct klp_patch *new_patch) 1076 { 1077 klp_unpatch_objects_dynamic(klp_transition_patch); 1078 klp_free_objects_dynamic(klp_transition_patch); 1079 } 1080 1081 /* 1082 * Remove parts of patches that touch a given kernel module. The list of 1083 * patches processed might be limited. When limit is NULL, all patches 1084 * will be handled. 1085 */ 1086 static void klp_cleanup_module_patches_limited(struct module *mod, 1087 struct klp_patch *limit) 1088 { 1089 struct klp_patch *patch; 1090 struct klp_object *obj; 1091 1092 klp_for_each_patch(patch) { 1093 if (patch == limit) 1094 break; 1095 1096 klp_for_each_object(patch, obj) { 1097 if (!klp_is_module(obj) || strcmp(obj->name, mod->name)) 1098 continue; 1099 1100 if (patch != klp_transition_patch) 1101 klp_pre_unpatch_callback(obj); 1102 1103 pr_notice("reverting patch '%s' on unloading module '%s'\n", 1104 patch->mod->name, obj->mod->name); 1105 klp_unpatch_object(obj); 1106 1107 klp_post_unpatch_callback(obj); 1108 1109 klp_free_object_loaded(obj); 1110 break; 1111 } 1112 } 1113 } 1114 1115 int klp_module_coming(struct module *mod) 1116 { 1117 int ret; 1118 struct klp_patch *patch; 1119 struct klp_object *obj; 1120 1121 if (WARN_ON(mod->state != MODULE_STATE_COMING)) 1122 return -EINVAL; 1123 1124 mutex_lock(&klp_mutex); 1125 /* 1126 * Each module has to know that klp_module_coming() 1127 * has been called. We never know what module will 1128 * get patched by a new patch. 1129 */ 1130 mod->klp_alive = true; 1131 1132 klp_for_each_patch(patch) { 1133 klp_for_each_object(patch, obj) { 1134 if (!klp_is_module(obj) || strcmp(obj->name, mod->name)) 1135 continue; 1136 1137 obj->mod = mod; 1138 1139 ret = klp_init_object_loaded(patch, obj); 1140 if (ret) { 1141 pr_warn("failed to initialize patch '%s' for module '%s' (%d)\n", 1142 patch->mod->name, obj->mod->name, ret); 1143 goto err; 1144 } 1145 1146 pr_notice("applying patch '%s' to loading module '%s'\n", 1147 patch->mod->name, obj->mod->name); 1148 1149 ret = klp_pre_patch_callback(obj); 1150 if (ret) { 1151 pr_warn("pre-patch callback failed for object '%s'\n", 1152 obj->name); 1153 goto err; 1154 } 1155 1156 ret = klp_patch_object(obj); 1157 if (ret) { 1158 pr_warn("failed to apply patch '%s' to module '%s' (%d)\n", 1159 patch->mod->name, obj->mod->name, ret); 1160 1161 klp_post_unpatch_callback(obj); 1162 goto err; 1163 } 1164 1165 if (patch != klp_transition_patch) 1166 klp_post_patch_callback(obj); 1167 1168 break; 1169 } 1170 } 1171 1172 mutex_unlock(&klp_mutex); 1173 1174 return 0; 1175 1176 err: 1177 /* 1178 * If a patch is unsuccessfully applied, return 1179 * error to the module loader. 1180 */ 1181 pr_warn("patch '%s' failed for module '%s', refusing to load module '%s'\n", 1182 patch->mod->name, obj->mod->name, obj->mod->name); 1183 mod->klp_alive = false; 1184 klp_cleanup_module_patches_limited(mod, patch); 1185 mutex_unlock(&klp_mutex); 1186 1187 return ret; 1188 } 1189 1190 void klp_module_going(struct module *mod) 1191 { 1192 if (WARN_ON(mod->state != MODULE_STATE_GOING && 1193 mod->state != MODULE_STATE_COMING)) 1194 return; 1195 1196 mutex_lock(&klp_mutex); 1197 /* 1198 * Each module has to know that klp_module_going() 1199 * has been called. We never know what module will 1200 * get patched by a new patch. 1201 */ 1202 mod->klp_alive = false; 1203 1204 klp_cleanup_module_patches_limited(mod, NULL); 1205 1206 mutex_unlock(&klp_mutex); 1207 } 1208 1209 static int __init klp_init(void) 1210 { 1211 int ret; 1212 1213 ret = klp_check_compiler_support(); 1214 if (ret) { 1215 pr_info("Your compiler is too old; turning off.\n"); 1216 return -EINVAL; 1217 } 1218 1219 klp_root_kobj = kobject_create_and_add("livepatch", kernel_kobj); 1220 if (!klp_root_kobj) 1221 return -ENOMEM; 1222 1223 return 0; 1224 } 1225 1226 module_init(klp_init); 1227