1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * Kernel Probes (KProbes) 4 * 5 * Copyright (C) IBM Corporation, 2002, 2004 6 * 7 * 2002-Oct Created by Vamsi Krishna S <vamsi_krishna@in.ibm.com> Kernel 8 * Probes initial implementation (includes suggestions from 9 * Rusty Russell). 10 * 2004-Aug Updated by Prasanna S Panchamukhi <prasanna@in.ibm.com> with 11 * hlists and exceptions notifier as suggested by Andi Kleen. 12 * 2004-July Suparna Bhattacharya <suparna@in.ibm.com> added jumper probes 13 * interface to access function arguments. 14 * 2004-Sep Prasanna S Panchamukhi <prasanna@in.ibm.com> Changed Kprobes 15 * exceptions notifier to be first on the priority list. 16 * 2005-May Hien Nguyen <hien@us.ibm.com>, Jim Keniston 17 * <jkenisto@us.ibm.com> and Prasanna S Panchamukhi 18 * <prasanna@in.ibm.com> added function-return probes. 19 */ 20 21 #define pr_fmt(fmt) "kprobes: " fmt 22 23 #include <linux/kprobes.h> 24 #include <linux/hash.h> 25 #include <linux/init.h> 26 #include <linux/slab.h> 27 #include <linux/stddef.h> 28 #include <linux/export.h> 29 #include <linux/kallsyms.h> 30 #include <linux/freezer.h> 31 #include <linux/seq_file.h> 32 #include <linux/debugfs.h> 33 #include <linux/sysctl.h> 34 #include <linux/kdebug.h> 35 #include <linux/kthread.h> 36 #include <linux/memory.h> 37 #include <linux/ftrace.h> 38 #include <linux/cpu.h> 39 #include <linux/jump_label.h> 40 #include <linux/static_call.h> 41 #include <linux/perf_event.h> 42 #include <linux/execmem.h> 43 #include <linux/cleanup.h> 44 #include <linux/wait.h> 45 #include <linux/wait_bit.h> 46 47 #include <asm/sections.h> 48 #include <asm/cacheflush.h> 49 #include <asm/errno.h> 50 #include <linux/uaccess.h> 51 52 #define KPROBE_HASH_BITS 6 53 #define KPROBE_TABLE_SIZE (1 << KPROBE_HASH_BITS) 54 55 #if !defined(CONFIG_OPTPROBES) || !defined(CONFIG_SYSCTL) 56 #define kprobe_sysctls_init() do { } while (0) 57 #endif 58 59 static int kprobes_initialized; 60 /* kprobe_table can be accessed by 61 * - Normal hlist traversal and RCU add/del under 'kprobe_mutex' is held. 62 * Or 63 * - RCU hlist traversal under disabling preempt (breakpoint handlers) 64 */ 65 static struct hlist_head kprobe_table[KPROBE_TABLE_SIZE]; 66 67 /* NOTE: change this value only with 'kprobe_mutex' held */ 68 static bool kprobes_all_disarmed; 69 70 /* This protects 'kprobe_table' and 'optimizing_list' */ 71 static DEFINE_MUTEX(kprobe_mutex); 72 static DEFINE_PER_CPU(struct kprobe *, kprobe_instance); 73 74 kprobe_opcode_t * __weak kprobe_lookup_name(const char *name, 75 unsigned int __unused) 76 { 77 return ((kprobe_opcode_t *)(kallsyms_lookup_name(name))); 78 } 79 80 /* 81 * Blacklist -- list of 'struct kprobe_blacklist_entry' to store info where 82 * kprobes can not probe. 83 */ 84 static LIST_HEAD(kprobe_blacklist); 85 86 #ifdef __ARCH_WANT_KPROBES_INSN_SLOT 87 /* 88 * 'kprobe::ainsn.insn' points to the copy of the instruction to be 89 * single-stepped. x86_64, POWER4 and above have no-exec support and 90 * stepping on the instruction on a vmalloced/kmalloced/data page 91 * is a recipe for disaster 92 */ 93 struct kprobe_insn_page { 94 struct list_head list; 95 kprobe_opcode_t *insns; /* Page of instruction slots */ 96 struct kprobe_insn_cache *cache; 97 int nused; 98 int ngarbage; 99 char slot_used[]; 100 }; 101 102 static int slots_per_page(struct kprobe_insn_cache *c) 103 { 104 return PAGE_SIZE/(c->insn_size * sizeof(kprobe_opcode_t)); 105 } 106 107 enum kprobe_slot_state { 108 SLOT_CLEAN = 0, 109 SLOT_DIRTY = 1, 110 SLOT_USED = 2, 111 }; 112 113 void __weak *alloc_insn_page(void) 114 { 115 /* 116 * Use execmem_alloc() so this page is within +/- 2GB of where the 117 * kernel image and loaded module images reside. This is required 118 * for most of the architectures. 119 * (e.g. x86-64 needs this to handle the %rip-relative fixups.) 120 */ 121 return execmem_alloc(EXECMEM_KPROBES, PAGE_SIZE); 122 } 123 124 static void free_insn_page(void *page) 125 { 126 execmem_free(page); 127 } 128 129 struct kprobe_insn_cache kprobe_insn_slots = { 130 .mutex = __MUTEX_INITIALIZER(kprobe_insn_slots.mutex), 131 .alloc = alloc_insn_page, 132 .free = free_insn_page, 133 .sym = KPROBE_INSN_PAGE_SYM, 134 .pages = LIST_HEAD_INIT(kprobe_insn_slots.pages), 135 .insn_size = MAX_INSN_SIZE, 136 .nr_garbage = 0, 137 }; 138 static int collect_garbage_slots(struct kprobe_insn_cache *c); 139 140 /** 141 * __get_insn_slot - Find a slot on an executable page for an instruction. 142 * @c: Pointer to kprobe instruction cache 143 * 144 * Description: Locates available slot on existing executable pages, 145 * allocates an executable page if there's no room on existing ones. 146 * Return: Pointer to instruction slot on success, NULL on failure. 147 */ 148 kprobe_opcode_t *__get_insn_slot(struct kprobe_insn_cache *c) 149 { 150 struct kprobe_insn_page *kip; 151 152 /* Since the slot array is not protected by rcu, we need a mutex */ 153 guard(mutex)(&c->mutex); 154 do { 155 guard(rcu)(); 156 list_for_each_entry_rcu(kip, &c->pages, list) { 157 if (kip->nused < slots_per_page(c)) { 158 int i; 159 160 for (i = 0; i < slots_per_page(c); i++) { 161 if (kip->slot_used[i] == SLOT_CLEAN) { 162 kip->slot_used[i] = SLOT_USED; 163 kip->nused++; 164 return kip->insns + (i * c->insn_size); 165 } 166 } 167 /* kip->nused is broken. Fix it. */ 168 kip->nused = slots_per_page(c); 169 WARN_ON(1); 170 } 171 } 172 /* If there are any garbage slots, collect it and try again. */ 173 } while (c->nr_garbage && collect_garbage_slots(c) == 0); 174 175 /* All out of space. Need to allocate a new page. */ 176 kip = kmalloc_flex(*kip, slot_used, slots_per_page(c)); 177 if (!kip) 178 return NULL; 179 180 kip->insns = c->alloc(); 181 if (!kip->insns) { 182 kfree(kip); 183 return NULL; 184 } 185 INIT_LIST_HEAD(&kip->list); 186 memset(kip->slot_used, SLOT_CLEAN, slots_per_page(c)); 187 kip->slot_used[0] = SLOT_USED; 188 kip->nused = 1; 189 kip->ngarbage = 0; 190 kip->cache = c; 191 list_add_rcu(&kip->list, &c->pages); 192 193 /* Record the perf ksymbol register event after adding the page */ 194 perf_event_ksymbol(PERF_RECORD_KSYMBOL_TYPE_OOL, (unsigned long)kip->insns, 195 PAGE_SIZE, false, c->sym); 196 197 return kip->insns; 198 } 199 200 /* Return true if all garbages are collected, otherwise false. */ 201 static bool collect_one_slot(struct kprobe_insn_page *kip, int idx) 202 { 203 kip->slot_used[idx] = SLOT_CLEAN; 204 kip->nused--; 205 if (kip->nused != 0) 206 return false; 207 208 /* 209 * Page is no longer in use. Free it unless 210 * it's the last one. We keep the last one 211 * so as not to have to set it up again the 212 * next time somebody inserts a probe. 213 */ 214 if (!list_is_singular(&kip->list)) { 215 /* 216 * Record perf ksymbol unregister event before removing 217 * the page. 218 */ 219 perf_event_ksymbol(PERF_RECORD_KSYMBOL_TYPE_OOL, 220 (unsigned long)kip->insns, PAGE_SIZE, true, 221 kip->cache->sym); 222 list_del_rcu(&kip->list); 223 synchronize_rcu(); 224 kip->cache->free(kip->insns); 225 kfree(kip); 226 } 227 return true; 228 } 229 230 static int collect_garbage_slots(struct kprobe_insn_cache *c) 231 { 232 struct kprobe_insn_page *kip, *next; 233 234 /* Ensure no-one is interrupted on the garbages */ 235 synchronize_rcu(); 236 237 list_for_each_entry_safe(kip, next, &c->pages, list) { 238 int i; 239 240 if (kip->ngarbage == 0) 241 continue; 242 kip->ngarbage = 0; /* we will collect all garbages */ 243 for (i = 0; i < slots_per_page(c); i++) { 244 if (kip->slot_used[i] == SLOT_DIRTY && collect_one_slot(kip, i)) 245 break; 246 } 247 } 248 c->nr_garbage = 0; 249 return 0; 250 } 251 252 static long __find_insn_page(struct kprobe_insn_cache *c, 253 kprobe_opcode_t *slot, struct kprobe_insn_page **pkip) 254 { 255 struct kprobe_insn_page *kip = NULL; 256 long idx; 257 258 guard(rcu)(); 259 list_for_each_entry_rcu(kip, &c->pages, list) { 260 idx = ((long)slot - (long)kip->insns) / 261 (c->insn_size * sizeof(kprobe_opcode_t)); 262 if (idx >= 0 && idx < slots_per_page(c)) { 263 *pkip = kip; 264 return idx; 265 } 266 } 267 /* Could not find this slot. */ 268 WARN_ON(1); 269 *pkip = NULL; 270 return -1; 271 } 272 273 void __free_insn_slot(struct kprobe_insn_cache *c, 274 kprobe_opcode_t *slot, int dirty) 275 { 276 struct kprobe_insn_page *kip = NULL; 277 long idx; 278 279 guard(mutex)(&c->mutex); 280 idx = __find_insn_page(c, slot, &kip); 281 /* Mark and sweep: this may sleep */ 282 if (kip) { 283 /* Check double free */ 284 WARN_ON(kip->slot_used[idx] != SLOT_USED); 285 if (dirty) { 286 kip->slot_used[idx] = SLOT_DIRTY; 287 kip->ngarbage++; 288 if (++c->nr_garbage > slots_per_page(c)) 289 collect_garbage_slots(c); 290 } else { 291 collect_one_slot(kip, idx); 292 } 293 } 294 } 295 296 /* 297 * Check given address is on the page of kprobe instruction slots. 298 * This will be used for checking whether the address on a stack 299 * is on a text area or not. 300 */ 301 bool __is_insn_slot_addr(struct kprobe_insn_cache *c, unsigned long addr) 302 { 303 struct kprobe_insn_page *kip; 304 bool ret = false; 305 306 rcu_read_lock(); 307 list_for_each_entry_rcu(kip, &c->pages, list) { 308 if (addr >= (unsigned long)kip->insns && 309 addr < (unsigned long)kip->insns + PAGE_SIZE) { 310 ret = true; 311 break; 312 } 313 } 314 rcu_read_unlock(); 315 316 return ret; 317 } 318 319 int kprobe_cache_get_kallsym(struct kprobe_insn_cache *c, unsigned int *symnum, 320 unsigned long *value, char *type, char *sym) 321 { 322 struct kprobe_insn_page *kip; 323 int ret = -ERANGE; 324 325 rcu_read_lock(); 326 list_for_each_entry_rcu(kip, &c->pages, list) { 327 if ((*symnum)--) 328 continue; 329 strscpy(sym, c->sym, KSYM_NAME_LEN); 330 *type = 't'; 331 *value = (unsigned long)kip->insns; 332 ret = 0; 333 break; 334 } 335 rcu_read_unlock(); 336 337 return ret; 338 } 339 340 #ifdef CONFIG_OPTPROBES 341 void __weak *alloc_optinsn_page(void) 342 { 343 return alloc_insn_page(); 344 } 345 346 void __weak free_optinsn_page(void *page) 347 { 348 free_insn_page(page); 349 } 350 351 /* For optimized_kprobe buffer */ 352 struct kprobe_insn_cache kprobe_optinsn_slots = { 353 .mutex = __MUTEX_INITIALIZER(kprobe_optinsn_slots.mutex), 354 .alloc = alloc_optinsn_page, 355 .free = free_optinsn_page, 356 .sym = KPROBE_OPTINSN_PAGE_SYM, 357 .pages = LIST_HEAD_INIT(kprobe_optinsn_slots.pages), 358 /* .insn_size is initialized later */ 359 .nr_garbage = 0, 360 }; 361 #endif /* CONFIG_OPTPROBES */ 362 #endif /* __ARCH_WANT_KPROBES_INSN_SLOT */ 363 364 /* We have preemption disabled.. so it is safe to use __ versions */ 365 static inline void set_kprobe_instance(struct kprobe *kp) 366 { 367 __this_cpu_write(kprobe_instance, kp); 368 } 369 370 static inline void reset_kprobe_instance(void) 371 { 372 __this_cpu_write(kprobe_instance, NULL); 373 } 374 375 /* 376 * This routine is called either: 377 * - under the 'kprobe_mutex' - during kprobe_[un]register(). 378 * OR 379 * - with preemption disabled - from architecture specific code. 380 */ 381 struct kprobe *get_kprobe(void *addr) 382 { 383 struct hlist_head *head; 384 struct kprobe *p; 385 386 head = &kprobe_table[hash_ptr(addr, KPROBE_HASH_BITS)]; 387 hlist_for_each_entry_rcu(p, head, hlist, 388 lockdep_is_held(&kprobe_mutex)) { 389 if (p->addr == addr) 390 return p; 391 } 392 393 return NULL; 394 } 395 NOKPROBE_SYMBOL(get_kprobe); 396 397 static int aggr_pre_handler(struct kprobe *p, struct pt_regs *regs); 398 399 /* Return true if 'p' is an aggregator */ 400 static inline bool kprobe_aggrprobe(struct kprobe *p) 401 { 402 return p->pre_handler == aggr_pre_handler; 403 } 404 405 /* Return true if 'p' is unused */ 406 static inline bool kprobe_unused(struct kprobe *p) 407 { 408 return kprobe_aggrprobe(p) && kprobe_disabled(p) && 409 list_empty(&p->list); 410 } 411 412 /* Keep all fields in the kprobe consistent. */ 413 static inline void copy_kprobe(struct kprobe *ap, struct kprobe *p) 414 { 415 memcpy(&p->opcode, &ap->opcode, sizeof(kprobe_opcode_t)); 416 memcpy(&p->ainsn, &ap->ainsn, sizeof(struct arch_specific_insn)); 417 } 418 419 #ifdef CONFIG_OPTPROBES 420 /* NOTE: This is protected by 'kprobe_mutex'. */ 421 static bool kprobes_allow_optimization; 422 423 /* 424 * Call all 'kprobe::pre_handler' on the list, but ignores its return value. 425 * This must be called from arch-dep optimized caller. 426 */ 427 void opt_pre_handler(struct kprobe *p, struct pt_regs *regs) 428 { 429 struct kprobe *kp; 430 431 list_for_each_entry_rcu(kp, &p->list, list) { 432 if (kp->pre_handler && likely(!kprobe_disabled(kp))) { 433 set_kprobe_instance(kp); 434 kp->pre_handler(kp, regs); 435 } 436 reset_kprobe_instance(); 437 } 438 } 439 NOKPROBE_SYMBOL(opt_pre_handler); 440 441 /* Free optimized instructions and optimized_kprobe */ 442 static void free_aggr_kprobe(struct kprobe *p) 443 { 444 struct optimized_kprobe *op; 445 446 op = container_of(p, struct optimized_kprobe, kp); 447 arch_remove_optimized_kprobe(op); 448 arch_remove_kprobe(p); 449 kfree(op); 450 } 451 452 /* Return true if the kprobe is ready for optimization. */ 453 static inline int kprobe_optready(struct kprobe *p) 454 { 455 struct optimized_kprobe *op; 456 457 if (kprobe_aggrprobe(p)) { 458 op = container_of(p, struct optimized_kprobe, kp); 459 return arch_prepared_optinsn(&op->optinsn); 460 } 461 462 return 0; 463 } 464 465 /* Return true if the kprobe is disarmed. Note: p must be on hash list */ 466 bool kprobe_disarmed(struct kprobe *p) 467 { 468 struct optimized_kprobe *op; 469 470 /* If kprobe is not aggr/opt probe, just return kprobe is disabled */ 471 if (!kprobe_aggrprobe(p)) 472 return kprobe_disabled(p); 473 474 op = container_of(p, struct optimized_kprobe, kp); 475 476 return kprobe_disabled(p) && list_empty(&op->list); 477 } 478 479 /* Return true if the probe is queued on (un)optimizing lists */ 480 static bool kprobe_queued(struct kprobe *p) 481 { 482 struct optimized_kprobe *op; 483 484 if (kprobe_aggrprobe(p)) { 485 op = container_of(p, struct optimized_kprobe, kp); 486 if (!list_empty(&op->list)) 487 return true; 488 } 489 return false; 490 } 491 492 /* 493 * Return an optimized kprobe whose optimizing code replaces 494 * instructions including 'addr' (exclude breakpoint). 495 */ 496 static struct kprobe *get_optimized_kprobe(kprobe_opcode_t *addr) 497 { 498 int i; 499 struct kprobe *p = NULL; 500 struct optimized_kprobe *op; 501 502 /* Don't check i == 0, since that is a breakpoint case. */ 503 for (i = 1; !p && i < MAX_OPTIMIZED_LENGTH / sizeof(kprobe_opcode_t); i++) 504 p = get_kprobe(addr - i); 505 506 if (p && kprobe_optready(p)) { 507 op = container_of(p, struct optimized_kprobe, kp); 508 if (arch_within_optimized_kprobe(op, addr)) 509 return p; 510 } 511 512 return NULL; 513 } 514 515 /* Optimization staging list, protected by 'kprobe_mutex' */ 516 static LIST_HEAD(optimizing_list); 517 static LIST_HEAD(unoptimizing_list); 518 static LIST_HEAD(freeing_list); 519 520 static void optimize_kprobe(struct kprobe *p); 521 static struct task_struct *kprobe_optimizer_task; 522 static wait_queue_head_t kprobe_optimizer_wait; 523 static atomic_t optimizer_state; 524 enum { 525 OPTIMIZER_ST_IDLE = 0, 526 OPTIMIZER_ST_KICKED = 1, 527 OPTIMIZER_ST_FLUSHING = 2, 528 }; 529 530 /* Bumped at the end of each kprobe_optimizer() pass, under 'kprobe_mutex' */ 531 static unsigned long optimizer_passes; 532 533 #define OPTIMIZE_DELAY 5 534 535 /* 536 * Optimize (replace a breakpoint with a jump) kprobes listed on 537 * 'optimizing_list'. 538 */ 539 static void do_optimize_kprobes(void) 540 { 541 lockdep_assert_held(&text_mutex); 542 /* 543 * The optimization/unoptimization refers 'online_cpus' via 544 * stop_machine() and cpu-hotplug modifies the 'online_cpus'. 545 * And same time, 'text_mutex' will be held in cpu-hotplug and here. 546 * This combination can cause a deadlock (cpu-hotplug tries to lock 547 * 'text_mutex' but stop_machine() can not be done because 548 * the 'online_cpus' has been changed) 549 * To avoid this deadlock, caller must have locked cpu-hotplug 550 * for preventing cpu-hotplug outside of 'text_mutex' locking. 551 */ 552 lockdep_assert_cpus_held(); 553 554 /* Optimization never be done when disarmed */ 555 if (kprobes_all_disarmed || !kprobes_allow_optimization || 556 list_empty(&optimizing_list)) 557 return; 558 559 arch_optimize_kprobes(&optimizing_list); 560 } 561 562 /* 563 * Unoptimize (replace a jump with a breakpoint and remove the breakpoint 564 * if need) kprobes listed on 'unoptimizing_list'. 565 */ 566 static void do_unoptimize_kprobes(void) 567 { 568 struct optimized_kprobe *op, *tmp; 569 570 lockdep_assert_held(&text_mutex); 571 /* See comment in do_optimize_kprobes() */ 572 lockdep_assert_cpus_held(); 573 574 if (!list_empty(&unoptimizing_list)) 575 arch_unoptimize_kprobes(&unoptimizing_list, &freeing_list); 576 577 /* Loop on 'freeing_list' for disarming and removing from kprobe hash list */ 578 list_for_each_entry_safe(op, tmp, &freeing_list, list) { 579 /* Switching from detour code to origin */ 580 op->kp.flags &= ~KPROBE_FLAG_OPTIMIZED; 581 /* Disarm probes if marked disabled and not gone */ 582 if (kprobe_disabled(&op->kp) && !kprobe_gone(&op->kp)) 583 arch_disarm_kprobe(&op->kp); 584 if (kprobe_unused(&op->kp)) { 585 /* 586 * Remove unused probes from hash list. After waiting 587 * for synchronization, these probes are reclaimed. 588 * (reclaiming is done by do_free_cleaned_kprobes().) 589 */ 590 hlist_del_rcu(&op->kp.hlist); 591 } else 592 list_del_init(&op->list); 593 } 594 } 595 596 /* Reclaim all kprobes on the 'freeing_list' */ 597 static void do_free_cleaned_kprobes(void) 598 { 599 struct optimized_kprobe *op, *tmp; 600 601 list_for_each_entry_safe(op, tmp, &freeing_list, list) { 602 list_del_init(&op->list); 603 if (WARN_ON_ONCE(!kprobe_unused(&op->kp))) { 604 /* 605 * This must not happen, but if there is a kprobe 606 * still in use, keep it on kprobes hash list. 607 */ 608 continue; 609 } 610 611 /* 612 * The aggregator was holding back another probe while it sat on the 613 * unoptimizing/freeing lists. Now that the aggregator has been fully 614 * reverted we can safely retry the optimization of that sibling. 615 */ 616 617 struct kprobe *_p = get_optimized_kprobe(op->kp.addr); 618 if (unlikely(_p)) 619 optimize_kprobe(_p); 620 621 free_aggr_kprobe(&op->kp); 622 } 623 } 624 625 static void kick_kprobe_optimizer(void); 626 627 /* Kprobe jump optimizer */ 628 static void kprobe_optimizer(void) 629 { 630 guard(mutex)(&kprobe_mutex); 631 632 scoped_guard(cpus_read_lock) { 633 guard(mutex)(&text_mutex); 634 635 /* 636 * Step 1: Unoptimize kprobes and collect cleaned (unused and disarmed) 637 * kprobes before waiting for quiesence period. 638 */ 639 do_unoptimize_kprobes(); 640 641 /* 642 * Step 2: Wait for quiesence period to ensure all potentially 643 * preempted tasks to have normally scheduled. Because optprobe 644 * may modify multiple instructions, there is a chance that Nth 645 * instruction is preempted. In that case, such tasks can return 646 * to 2nd-Nth byte of jump instruction. This wait is for avoiding it. 647 * Note that on non-preemptive kernel, this is transparently converted 648 * to synchronoze_sched() to wait for all interrupts to have completed. 649 */ 650 synchronize_rcu_tasks(); 651 652 /* Step 3: Optimize kprobes after quiesence period */ 653 do_optimize_kprobes(); 654 655 /* Step 4: Free cleaned kprobes after quiesence period */ 656 do_free_cleaned_kprobes(); 657 } 658 659 /* Step 5: Wake up flushers, and kick optimizer again if needed. */ 660 optimizer_passes++; 661 wake_up_var_locked(&optimizer_passes, &kprobe_mutex); 662 663 if (!list_empty(&optimizing_list) || !list_empty(&unoptimizing_list)) 664 kick_kprobe_optimizer(); /*normal kick*/ 665 } 666 667 static int kprobe_optimizer_thread(void *data) 668 { 669 while (!kthread_should_stop()) { 670 /* To avoid hung_task, wait in interruptible state. */ 671 wait_event_interruptible(kprobe_optimizer_wait, 672 atomic_read(&optimizer_state) != OPTIMIZER_ST_IDLE || 673 kthread_should_stop()); 674 675 if (kthread_should_stop()) 676 break; 677 678 /* 679 * If it was a normal kick, wait for OPTIMIZE_DELAY. 680 * This wait can be interrupted by a flush request. 681 */ 682 if (atomic_read(&optimizer_state) == 1) 683 wait_event_interruptible_timeout( 684 kprobe_optimizer_wait, 685 atomic_read(&optimizer_state) == OPTIMIZER_ST_FLUSHING || 686 kthread_should_stop(), 687 OPTIMIZE_DELAY); 688 689 if (kthread_should_stop()) 690 break; 691 692 atomic_set(&optimizer_state, OPTIMIZER_ST_IDLE); 693 694 kprobe_optimizer(); 695 } 696 return 0; 697 } 698 699 /* Start optimizer after OPTIMIZE_DELAY passed */ 700 static void kick_kprobe_optimizer(void) 701 { 702 lockdep_assert_held(&kprobe_mutex); 703 if (atomic_cmpxchg(&optimizer_state, 704 OPTIMIZER_ST_IDLE, OPTIMIZER_ST_KICKED) == OPTIMIZER_ST_IDLE) 705 wake_up(&kprobe_optimizer_wait); 706 } 707 708 static void wait_for_kprobe_optimizer_locked(void) 709 { 710 lockdep_assert_held(&kprobe_mutex); 711 712 while (!list_empty(&optimizing_list) || !list_empty(&unoptimizing_list)) { 713 unsigned long passes = optimizer_passes; 714 715 /* 716 * Set state to OPTIMIZER_ST_FLUSHING and wake up the thread if it's 717 * idle. If it's already kicked, it will see the state change. 718 */ 719 if (atomic_xchg_acquire(&optimizer_state, 720 OPTIMIZER_ST_FLUSHING) != OPTIMIZER_ST_FLUSHING) 721 wake_up(&kprobe_optimizer_wait); 722 723 /* 724 * kprobe_optimizer() holds 'kprobe_mutex' for a whole pass, which 725 * this drops while sleeping, so a new count means a full pass ran. 726 */ 727 wait_var_event_mutex(&optimizer_passes, 728 optimizer_passes != passes, &kprobe_mutex); 729 } 730 } 731 732 /* Wait for completing optimization and unoptimization */ 733 void wait_for_kprobe_optimizer(void) 734 { 735 guard(mutex)(&kprobe_mutex); 736 737 wait_for_kprobe_optimizer_locked(); 738 } 739 740 bool optprobe_queued_unopt(struct optimized_kprobe *op) 741 { 742 struct optimized_kprobe *_op; 743 744 list_for_each_entry(_op, &unoptimizing_list, list) { 745 if (op == _op) 746 return true; 747 } 748 749 return false; 750 } 751 752 /* Optimize kprobe if p is ready to be optimized */ 753 static void optimize_kprobe(struct kprobe *p) 754 { 755 struct optimized_kprobe *op; 756 757 /* Check if the kprobe is disabled or not ready for optimization. */ 758 if (!kprobe_optready(p) || !kprobes_allow_optimization || 759 (kprobe_disabled(p) || kprobes_all_disarmed)) 760 return; 761 762 /* kprobes with 'post_handler' can not be optimized */ 763 if (p->post_handler) 764 return; 765 766 op = container_of(p, struct optimized_kprobe, kp); 767 768 /* Check there is no other kprobes at the optimized instructions */ 769 if (arch_check_optimized_kprobe(op) < 0) 770 return; 771 772 /* Check if it is already optimized. */ 773 if (op->kp.flags & KPROBE_FLAG_OPTIMIZED) { 774 if (optprobe_queued_unopt(op)) { 775 /* This is under unoptimizing. Just dequeue the probe */ 776 list_del_init(&op->list); 777 } 778 return; 779 } 780 op->kp.flags |= KPROBE_FLAG_OPTIMIZED; 781 782 /* 783 * On the 'unoptimizing_list' and 'optimizing_list', 784 * 'op' must have OPTIMIZED flag 785 */ 786 if (WARN_ON_ONCE(!list_empty(&op->list))) 787 return; 788 789 list_add(&op->list, &optimizing_list); 790 kick_kprobe_optimizer(); 791 } 792 793 /* Short cut to direct unoptimizing */ 794 static void force_unoptimize_kprobe(struct optimized_kprobe *op) 795 { 796 lockdep_assert_cpus_held(); 797 arch_unoptimize_kprobe(op); 798 op->kp.flags &= ~KPROBE_FLAG_OPTIMIZED; 799 } 800 801 /* Unoptimize a kprobe if p is optimized */ 802 static void unoptimize_kprobe(struct kprobe *p, bool force) 803 { 804 struct optimized_kprobe *op; 805 806 if (!kprobe_aggrprobe(p) || kprobe_disarmed(p)) 807 return; /* This is not an optprobe nor optimized */ 808 809 op = container_of(p, struct optimized_kprobe, kp); 810 if (!kprobe_optimized(p)) 811 return; 812 813 if (!list_empty(&op->list)) { 814 if (optprobe_queued_unopt(op)) { 815 /* Queued in unoptimizing queue */ 816 if (force) { 817 /* 818 * Forcibly unoptimize the kprobe here, and queue it 819 * in the freeing list for release afterwards. 820 */ 821 force_unoptimize_kprobe(op); 822 list_move(&op->list, &freeing_list); 823 } 824 } else { 825 /* Dequeue from the optimizing queue */ 826 list_del_init(&op->list); 827 op->kp.flags &= ~KPROBE_FLAG_OPTIMIZED; 828 } 829 return; 830 } 831 832 /* Optimized kprobe case */ 833 if (force) { 834 /* Forcibly update the code: this is a special case */ 835 force_unoptimize_kprobe(op); 836 } else { 837 list_add(&op->list, &unoptimizing_list); 838 kick_kprobe_optimizer(); 839 } 840 } 841 842 /* Cancel unoptimizing for reusing */ 843 static int reuse_unused_kprobe(struct kprobe *ap) 844 { 845 struct optimized_kprobe *op; 846 847 /* 848 * Unused kprobe MUST be on the way of delayed unoptimizing (means 849 * there is still a relative jump) and disabled. 850 */ 851 op = container_of(ap, struct optimized_kprobe, kp); 852 WARN_ON_ONCE(list_empty(&op->list)); 853 /* Enable the probe again */ 854 ap->flags &= ~KPROBE_FLAG_DISABLED; 855 /* Optimize it again. (remove from 'op->list') */ 856 if (!kprobe_optready(ap)) 857 return -EINVAL; 858 859 optimize_kprobe(ap); 860 return 0; 861 } 862 863 /* Remove optimized instructions */ 864 static void kill_optimized_kprobe(struct kprobe *p) 865 { 866 struct optimized_kprobe *op; 867 868 op = container_of(p, struct optimized_kprobe, kp); 869 if (!list_empty(&op->list)) 870 /* Dequeue from the (un)optimization queue */ 871 list_del_init(&op->list); 872 op->kp.flags &= ~KPROBE_FLAG_OPTIMIZED; 873 874 if (kprobe_unused(p)) { 875 /* 876 * Unused kprobe is on unoptimizing or freeing list. We move it 877 * to freeing_list and let the kprobe_optimizer() remove it from 878 * the kprobe hash list and free it. 879 */ 880 if (optprobe_queued_unopt(op)) 881 list_move(&op->list, &freeing_list); 882 } 883 884 /* Don't touch the code, because it is already freed. */ 885 arch_remove_optimized_kprobe(op); 886 } 887 888 static inline 889 void __prepare_optimized_kprobe(struct optimized_kprobe *op, struct kprobe *p) 890 { 891 if (!kprobe_ftrace(p)) 892 arch_prepare_optimized_kprobe(op, p); 893 } 894 895 /* Try to prepare optimized instructions */ 896 static void prepare_optimized_kprobe(struct kprobe *p) 897 { 898 struct optimized_kprobe *op; 899 900 op = container_of(p, struct optimized_kprobe, kp); 901 __prepare_optimized_kprobe(op, p); 902 } 903 904 /* Allocate new optimized_kprobe and try to prepare optimized instructions. */ 905 static struct kprobe *alloc_aggr_kprobe(struct kprobe *p) 906 { 907 struct optimized_kprobe *op; 908 909 op = kzalloc_obj(struct optimized_kprobe); 910 if (!op) 911 return NULL; 912 913 INIT_LIST_HEAD(&op->list); 914 op->kp.addr = p->addr; 915 __prepare_optimized_kprobe(op, p); 916 917 return &op->kp; 918 } 919 920 static void init_aggr_kprobe(struct kprobe *ap, struct kprobe *p); 921 922 /* 923 * Prepare an optimized_kprobe and optimize it. 924 * NOTE: 'p' must be a normal registered kprobe. 925 */ 926 static void try_to_optimize_kprobe(struct kprobe *p) 927 { 928 struct kprobe *ap; 929 struct optimized_kprobe *op; 930 931 /* Impossible to optimize ftrace-based kprobe. */ 932 if (kprobe_ftrace(p)) 933 return; 934 935 /* For preparing optimization, jump_label_text_reserved() is called. */ 936 guard(cpus_read_lock)(); 937 guard(jump_label_lock)(); 938 guard(mutex)(&text_mutex); 939 940 ap = alloc_aggr_kprobe(p); 941 if (!ap) 942 return; 943 944 op = container_of(ap, struct optimized_kprobe, kp); 945 if (!arch_prepared_optinsn(&op->optinsn)) { 946 /* If failed to setup optimizing, fallback to kprobe. */ 947 arch_remove_optimized_kprobe(op); 948 kfree(op); 949 return; 950 } 951 952 init_aggr_kprobe(ap, p); 953 optimize_kprobe(ap); /* This just kicks optimizer thread. */ 954 } 955 956 static void optimize_all_kprobes(void) 957 { 958 struct hlist_head *head; 959 struct kprobe *p; 960 unsigned int i; 961 962 guard(mutex)(&kprobe_mutex); 963 /* If optimization is already allowed, just return. */ 964 if (kprobes_allow_optimization) 965 return; 966 967 cpus_read_lock(); 968 kprobes_allow_optimization = true; 969 for (i = 0; i < KPROBE_TABLE_SIZE; i++) { 970 head = &kprobe_table[i]; 971 hlist_for_each_entry(p, head, hlist) 972 if (!kprobe_disabled(p)) 973 optimize_kprobe(p); 974 } 975 cpus_read_unlock(); 976 pr_info("kprobe jump-optimization is enabled. All kprobes are optimized if possible.\n"); 977 } 978 979 #ifdef CONFIG_SYSCTL 980 static void unoptimize_all_kprobes(void) 981 { 982 struct hlist_head *head; 983 struct kprobe *p; 984 unsigned int i; 985 986 guard(mutex)(&kprobe_mutex); 987 /* If optimization is already prohibited, just return. */ 988 if (!kprobes_allow_optimization) 989 return; 990 991 cpus_read_lock(); 992 kprobes_allow_optimization = false; 993 for (i = 0; i < KPROBE_TABLE_SIZE; i++) { 994 head = &kprobe_table[i]; 995 hlist_for_each_entry(p, head, hlist) { 996 if (!kprobe_disabled(p)) 997 unoptimize_kprobe(p, false); 998 } 999 } 1000 cpus_read_unlock(); 1001 /* Wait for unoptimizing completion. */ 1002 wait_for_kprobe_optimizer_locked(); 1003 pr_info("kprobe jump-optimization is disabled. All kprobes are based on software breakpoint.\n"); 1004 } 1005 1006 static DEFINE_MUTEX(kprobe_sysctl_mutex); 1007 static int sysctl_kprobes_optimization; 1008 static int proc_kprobes_optimization_handler(const struct ctl_table *table, 1009 int write, void *buffer, 1010 size_t *length, loff_t *ppos) 1011 { 1012 int ret; 1013 1014 guard(mutex)(&kprobe_sysctl_mutex); 1015 sysctl_kprobes_optimization = kprobes_allow_optimization ? 1 : 0; 1016 ret = proc_dointvec_minmax(table, write, buffer, length, ppos); 1017 1018 if (sysctl_kprobes_optimization) 1019 optimize_all_kprobes(); 1020 else 1021 unoptimize_all_kprobes(); 1022 1023 return ret; 1024 } 1025 1026 static const struct ctl_table kprobe_sysctls[] = { 1027 { 1028 .procname = "kprobes-optimization", 1029 .data = &sysctl_kprobes_optimization, 1030 .maxlen = sizeof(int), 1031 .mode = 0644, 1032 .proc_handler = proc_kprobes_optimization_handler, 1033 .extra1 = SYSCTL_ZERO, 1034 .extra2 = SYSCTL_ONE, 1035 }, 1036 }; 1037 1038 static void __init kprobe_sysctls_init(void) 1039 { 1040 register_sysctl_init("debug", kprobe_sysctls); 1041 } 1042 #endif /* CONFIG_SYSCTL */ 1043 1044 /* Put a breakpoint for a probe. */ 1045 static void __arm_kprobe(struct kprobe *p) 1046 { 1047 struct kprobe *_p; 1048 1049 lockdep_assert_held(&text_mutex); 1050 1051 /* Find the overlapping optimized kprobes. */ 1052 _p = get_optimized_kprobe(p->addr); 1053 if (unlikely(_p)) 1054 /* Fallback to unoptimized kprobe */ 1055 unoptimize_kprobe(_p, true); 1056 1057 arch_arm_kprobe(p); 1058 optimize_kprobe(p); /* Try to optimize (add kprobe to a list) */ 1059 } 1060 1061 /* Remove the breakpoint of a probe. */ 1062 static void __disarm_kprobe(struct kprobe *p, bool reopt) 1063 { 1064 struct kprobe *_p; 1065 1066 lockdep_assert_held(&text_mutex); 1067 1068 /* Try to unoptimize */ 1069 unoptimize_kprobe(p, kprobes_all_disarmed); 1070 1071 if (!kprobe_queued(p)) { 1072 arch_disarm_kprobe(p); 1073 /* If another kprobe was blocked, re-optimize it. */ 1074 _p = get_optimized_kprobe(p->addr); 1075 if (unlikely(_p) && reopt) 1076 optimize_kprobe(_p); 1077 } 1078 } 1079 1080 static void __init init_optprobe(void) 1081 { 1082 #ifdef __ARCH_WANT_KPROBES_INSN_SLOT 1083 /* Init 'kprobe_optinsn_slots' for allocation */ 1084 kprobe_optinsn_slots.insn_size = MAX_OPTINSN_SIZE; 1085 #endif 1086 1087 init_waitqueue_head(&kprobe_optimizer_wait); 1088 atomic_set(&optimizer_state, OPTIMIZER_ST_IDLE); 1089 kprobe_optimizer_task = kthread_run(kprobe_optimizer_thread, NULL, 1090 "kprobe-optimizer"); 1091 } 1092 #else /* !CONFIG_OPTPROBES */ 1093 1094 #define init_optprobe() do {} while (0) 1095 #define optimize_kprobe(p) do {} while (0) 1096 #define unoptimize_kprobe(p, f) do {} while (0) 1097 #define kill_optimized_kprobe(p) do {} while (0) 1098 #define prepare_optimized_kprobe(p) do {} while (0) 1099 #define try_to_optimize_kprobe(p) do {} while (0) 1100 #define __arm_kprobe(p) arch_arm_kprobe(p) 1101 #define __disarm_kprobe(p, o) arch_disarm_kprobe(p) 1102 #define kprobe_disarmed(p) kprobe_disabled(p) 1103 #define wait_for_kprobe_optimizer_locked() \ 1104 lockdep_assert_held(&kprobe_mutex) 1105 1106 static int reuse_unused_kprobe(struct kprobe *ap) 1107 { 1108 /* 1109 * If the optimized kprobe is NOT supported, the aggr kprobe is 1110 * released at the same time that the last aggregated kprobe is 1111 * unregistered. 1112 * Thus there should be no chance to reuse unused kprobe. 1113 */ 1114 WARN_ON_ONCE(1); 1115 return -EINVAL; 1116 } 1117 1118 static void free_aggr_kprobe(struct kprobe *p) 1119 { 1120 arch_remove_kprobe(p); 1121 kfree(p); 1122 } 1123 1124 static struct kprobe *alloc_aggr_kprobe(struct kprobe *p) 1125 { 1126 return kzalloc_obj(struct kprobe); 1127 } 1128 #endif /* CONFIG_OPTPROBES */ 1129 1130 #ifdef CONFIG_KPROBES_ON_FTRACE 1131 static struct ftrace_ops kprobe_ftrace_ops __read_mostly = { 1132 .func = kprobe_ftrace_handler, 1133 .flags = FTRACE_OPS_FL_SAVE_REGS, 1134 }; 1135 1136 static struct ftrace_ops kprobe_ipmodify_ops __read_mostly = { 1137 .func = kprobe_ftrace_handler, 1138 .flags = FTRACE_OPS_FL_SAVE_REGS | FTRACE_OPS_FL_IPMODIFY, 1139 }; 1140 1141 static int kprobe_ipmodify_enabled; 1142 static int kprobe_ftrace_enabled; 1143 bool kprobe_ftrace_disabled; 1144 1145 static int __arm_kprobe_ftrace(struct kprobe *p, struct ftrace_ops *ops, 1146 int *cnt) 1147 { 1148 int ret; 1149 1150 lockdep_assert_held(&kprobe_mutex); 1151 1152 ret = ftrace_set_filter_ip(ops, (unsigned long)p->addr, 0, 0); 1153 if (ret < 0) 1154 return ret; 1155 1156 if (*cnt == 0) { 1157 ret = register_ftrace_function(ops); 1158 if (ret < 0) { 1159 /* 1160 * At this point, sinec ops is not registered, we should be sefe from 1161 * registering empty filter. 1162 */ 1163 ftrace_set_filter_ip(ops, (unsigned long)p->addr, 1, 0); 1164 return ret; 1165 } 1166 } 1167 1168 (*cnt)++; 1169 return ret; 1170 } 1171 1172 static int arm_kprobe_ftrace(struct kprobe *p) 1173 { 1174 bool ipmodify = (p->post_handler != NULL); 1175 1176 return __arm_kprobe_ftrace(p, 1177 ipmodify ? &kprobe_ipmodify_ops : &kprobe_ftrace_ops, 1178 ipmodify ? &kprobe_ipmodify_enabled : &kprobe_ftrace_enabled); 1179 } 1180 1181 static int __disarm_kprobe_ftrace(struct kprobe *p, struct ftrace_ops *ops, 1182 int *cnt) 1183 { 1184 int ret; 1185 1186 lockdep_assert_held(&kprobe_mutex); 1187 if (unlikely(kprobe_ftrace_disabled)) { 1188 /* Now ftrace is disabled forever, disarm is already done. */ 1189 return 0; 1190 } 1191 1192 if (*cnt == 1) { 1193 ret = unregister_ftrace_function(ops); 1194 if (WARN(ret < 0, "Failed to unregister kprobe-ftrace (error %d)\n", ret)) 1195 return ret; 1196 } 1197 1198 (*cnt)--; 1199 1200 ret = ftrace_set_filter_ip(ops, (unsigned long)p->addr, 1, 0); 1201 WARN_ONCE(ret < 0, "Failed to disarm kprobe-ftrace at %pS (error %d)\n", 1202 p->addr, ret); 1203 return ret; 1204 } 1205 1206 static int disarm_kprobe_ftrace(struct kprobe *p) 1207 { 1208 bool ipmodify = (p->post_handler != NULL); 1209 1210 return __disarm_kprobe_ftrace(p, 1211 ipmodify ? &kprobe_ipmodify_ops : &kprobe_ftrace_ops, 1212 ipmodify ? &kprobe_ipmodify_enabled : &kprobe_ftrace_enabled); 1213 } 1214 1215 void kprobe_ftrace_kill(void) 1216 { 1217 kprobe_ftrace_disabled = true; 1218 } 1219 #else /* !CONFIG_KPROBES_ON_FTRACE */ 1220 static inline int arm_kprobe_ftrace(struct kprobe *p) 1221 { 1222 return -ENODEV; 1223 } 1224 1225 static inline int disarm_kprobe_ftrace(struct kprobe *p) 1226 { 1227 return -ENODEV; 1228 } 1229 #endif 1230 1231 static int prepare_kprobe(struct kprobe *p) 1232 { 1233 /* Must ensure p->addr is really on ftrace */ 1234 if (kprobe_ftrace(p)) 1235 return arch_prepare_kprobe_ftrace(p); 1236 1237 return arch_prepare_kprobe(p); 1238 } 1239 1240 static int arm_kprobe(struct kprobe *kp) 1241 { 1242 if (unlikely(kprobe_ftrace(kp))) 1243 return arm_kprobe_ftrace(kp); 1244 1245 guard(cpus_read_lock)(); 1246 guard(mutex)(&text_mutex); 1247 __arm_kprobe(kp); 1248 return 0; 1249 } 1250 1251 static int disarm_kprobe(struct kprobe *kp, bool reopt) 1252 { 1253 if (unlikely(kprobe_ftrace(kp))) 1254 return disarm_kprobe_ftrace(kp); 1255 1256 guard(cpus_read_lock)(); 1257 guard(mutex)(&text_mutex); 1258 __disarm_kprobe(kp, reopt); 1259 return 0; 1260 } 1261 1262 /* 1263 * Aggregate handlers for multiple kprobes support - these handlers 1264 * take care of invoking the individual kprobe handlers on p->list 1265 */ 1266 static int aggr_pre_handler(struct kprobe *p, struct pt_regs *regs) 1267 { 1268 struct kprobe *kp; 1269 1270 list_for_each_entry_rcu(kp, &p->list, list) { 1271 if (kp->pre_handler && likely(!kprobe_disabled(kp))) { 1272 set_kprobe_instance(kp); 1273 if (kp->pre_handler(kp, regs)) 1274 return 1; 1275 } 1276 reset_kprobe_instance(); 1277 } 1278 return 0; 1279 } 1280 NOKPROBE_SYMBOL(aggr_pre_handler); 1281 1282 static void aggr_post_handler(struct kprobe *p, struct pt_regs *regs, 1283 unsigned long flags) 1284 { 1285 struct kprobe *kp; 1286 1287 list_for_each_entry_rcu(kp, &p->list, list) { 1288 if (kp->post_handler && likely(!kprobe_disabled(kp))) { 1289 set_kprobe_instance(kp); 1290 kp->post_handler(kp, regs, flags); 1291 reset_kprobe_instance(); 1292 } 1293 } 1294 } 1295 NOKPROBE_SYMBOL(aggr_post_handler); 1296 1297 /* Walks the list and increments 'nmissed' if 'p' has child probes. */ 1298 void kprobes_inc_nmissed_count(struct kprobe *p) 1299 { 1300 struct kprobe *kp; 1301 1302 if (!kprobe_aggrprobe(p)) { 1303 p->nmissed++; 1304 } else { 1305 list_for_each_entry_rcu(kp, &p->list, list) 1306 kp->nmissed++; 1307 } 1308 } 1309 NOKPROBE_SYMBOL(kprobes_inc_nmissed_count); 1310 1311 static struct kprobe kprobe_busy = { 1312 .addr = (void *) get_kprobe, 1313 }; 1314 1315 void kprobe_busy_begin(void) 1316 { 1317 struct kprobe_ctlblk *kcb; 1318 1319 preempt_disable(); 1320 __this_cpu_write(current_kprobe, &kprobe_busy); 1321 kcb = get_kprobe_ctlblk(); 1322 kcb->kprobe_status = KPROBE_HIT_ACTIVE; 1323 } 1324 1325 void kprobe_busy_end(void) 1326 { 1327 __this_cpu_write(current_kprobe, NULL); 1328 preempt_enable(); 1329 } 1330 1331 /* Add the new probe to 'ap->list'. */ 1332 static int add_new_kprobe(struct kprobe *ap, struct kprobe *p) 1333 { 1334 if (p->post_handler) 1335 unoptimize_kprobe(ap, true); /* Fall back to normal kprobe */ 1336 1337 list_add_rcu(&p->list, &ap->list); 1338 if (p->post_handler && !ap->post_handler) 1339 ap->post_handler = aggr_post_handler; 1340 1341 return 0; 1342 } 1343 1344 /* 1345 * Fill in the required fields of the aggregator kprobe. Replace the 1346 * earlier kprobe in the hlist with the aggregator kprobe. 1347 */ 1348 static void init_aggr_kprobe(struct kprobe *ap, struct kprobe *p) 1349 { 1350 /* Copy the insn slot of 'p' to 'ap'. */ 1351 copy_kprobe(p, ap); 1352 flush_insn_slot(ap); 1353 ap->addr = p->addr; 1354 ap->flags = p->flags & ~KPROBE_FLAG_OPTIMIZED; 1355 ap->pre_handler = aggr_pre_handler; 1356 /* We don't care the kprobe which has gone. */ 1357 if (p->post_handler && !kprobe_gone(p)) 1358 ap->post_handler = aggr_post_handler; 1359 1360 INIT_LIST_HEAD(&ap->list); 1361 INIT_HLIST_NODE(&ap->hlist); 1362 1363 list_add_rcu(&p->list, &ap->list); 1364 hlist_replace_rcu(&p->hlist, &ap->hlist); 1365 } 1366 1367 /* 1368 * This registers the second or subsequent kprobe at the same address. 1369 */ 1370 static int register_aggr_kprobe(struct kprobe *orig_p, struct kprobe *p) 1371 { 1372 int ret = 0; 1373 struct kprobe *ap = orig_p; 1374 1375 scoped_guard(cpus_read_lock) { 1376 /* For preparing optimization, jump_label_text_reserved() is called */ 1377 guard(jump_label_lock)(); 1378 guard(mutex)(&text_mutex); 1379 1380 if (!kprobe_aggrprobe(orig_p)) { 1381 /* If 'orig_p' is not an 'aggr_kprobe', create new one. */ 1382 ap = alloc_aggr_kprobe(orig_p); 1383 if (!ap) 1384 return -ENOMEM; 1385 init_aggr_kprobe(ap, orig_p); 1386 } else if (kprobe_unused(ap)) { 1387 /* This probe is going to die. Rescue it */ 1388 ret = reuse_unused_kprobe(ap); 1389 if (ret) 1390 return ret; 1391 } 1392 1393 if (kprobe_gone(ap)) { 1394 /* 1395 * Attempting to insert new probe at the same location that 1396 * had a probe in the module vaddr area which already 1397 * freed. So, the instruction slot has already been 1398 * released. We need a new slot for the new probe. 1399 */ 1400 ret = arch_prepare_kprobe(ap); 1401 if (ret) 1402 /* 1403 * Even if fail to allocate new slot, don't need to 1404 * free the 'ap'. It will be used next time, or 1405 * freed by unregister_kprobe(). 1406 */ 1407 return ret; 1408 1409 /* Prepare optimized instructions if possible. */ 1410 prepare_optimized_kprobe(ap); 1411 1412 /* 1413 * Clear gone flag to prevent allocating new slot again, and 1414 * set disabled flag because it is not armed yet. 1415 */ 1416 ap->flags = (ap->flags & ~KPROBE_FLAG_GONE) 1417 | KPROBE_FLAG_DISABLED; 1418 } 1419 1420 /* Copy the insn slot of 'p' to 'ap'. */ 1421 copy_kprobe(ap, p); 1422 ret = add_new_kprobe(ap, p); 1423 } 1424 1425 if (ret == 0 && kprobe_disabled(ap) && !kprobe_disabled(p)) { 1426 ap->flags &= ~KPROBE_FLAG_DISABLED; 1427 if (!kprobes_all_disarmed) { 1428 /* Arm the breakpoint again. */ 1429 ret = arm_kprobe(ap); 1430 if (ret) { 1431 ap->flags |= KPROBE_FLAG_DISABLED; 1432 list_del_rcu(&p->list); 1433 synchronize_rcu(); 1434 } 1435 } 1436 } 1437 return ret; 1438 } 1439 1440 bool __weak arch_within_kprobe_blacklist(unsigned long addr) 1441 { 1442 /* The '__kprobes' functions and entry code must not be probed. */ 1443 return addr >= (unsigned long)__kprobes_text_start && 1444 addr < (unsigned long)__kprobes_text_end; 1445 } 1446 1447 static bool __within_kprobe_blacklist(unsigned long addr) 1448 { 1449 struct kprobe_blacklist_entry *ent; 1450 1451 if (arch_within_kprobe_blacklist(addr)) 1452 return true; 1453 /* 1454 * If 'kprobe_blacklist' is defined, check the address and 1455 * reject any probe registration in the prohibited area. 1456 * Note: this can return true during transition period where 1457 * (start_addr, end_addr) in the black list is shrinking 1458 * but old entry has not been removed yet. This is acceptable 1459 * because the worst case is that we reject more probes than 1460 * we should. 1461 */ 1462 guard(rcu)(); 1463 list_for_each_entry_rcu(ent, &kprobe_blacklist, list) { 1464 if (addr >= ent->start_addr && addr < ent->end_addr) 1465 return true; 1466 } 1467 return false; 1468 } 1469 1470 bool within_kprobe_blacklist(unsigned long addr) 1471 { 1472 char symname[KSYM_NAME_LEN], *p; 1473 1474 if (__within_kprobe_blacklist(addr)) 1475 return true; 1476 1477 /* Check if the address is on a suffixed-symbol */ 1478 if (!lookup_symbol_name(addr, symname)) { 1479 p = strchr(symname, '.'); 1480 if (!p) 1481 return false; 1482 *p = '\0'; 1483 addr = (unsigned long)kprobe_lookup_name(symname, 0); 1484 if (addr) 1485 return __within_kprobe_blacklist(addr); 1486 } 1487 return false; 1488 } 1489 1490 /* 1491 * arch_adjust_kprobe_addr - adjust the address 1492 * @addr: symbol base address 1493 * @offset: offset within the symbol 1494 * @on_func_entry: was this @addr+@offset on the function entry 1495 * 1496 * Typically returns @addr + @offset, except for special cases where the 1497 * function might be prefixed by a CFI landing pad, in that case any offset 1498 * inside the landing pad is mapped to the first 'real' instruction of the 1499 * symbol. 1500 * 1501 * Specifically, for things like IBT/BTI, skip the resp. ENDBR/BTI.C 1502 * instruction at +0. 1503 */ 1504 kprobe_opcode_t *__weak arch_adjust_kprobe_addr(unsigned long addr, 1505 unsigned long offset, 1506 bool *on_func_entry) 1507 { 1508 *on_func_entry = !offset; 1509 return (kprobe_opcode_t *)(addr + offset); 1510 } 1511 1512 /* 1513 * If 'symbol_name' is specified, look it up and add the 'offset' 1514 * to it. This way, we can specify a relative address to a symbol. 1515 * This returns encoded errors if it fails to look up symbol or invalid 1516 * combination of parameters. 1517 */ 1518 static kprobe_opcode_t * 1519 _kprobe_addr(kprobe_opcode_t *addr, const char *symbol_name, 1520 unsigned long offset, bool *on_func_entry) 1521 { 1522 if ((symbol_name && addr) || (!symbol_name && !addr)) 1523 return ERR_PTR(-EINVAL); 1524 1525 if (symbol_name) { 1526 /* 1527 * Input: @sym + @offset 1528 * Output: @addr + @offset 1529 * 1530 * NOTE: kprobe_lookup_name() does *NOT* fold the offset 1531 * argument into it's output! 1532 */ 1533 addr = kprobe_lookup_name(symbol_name, offset); 1534 if (!addr) 1535 return ERR_PTR(-ENOENT); 1536 } 1537 1538 /* 1539 * So here we have @addr + @offset, displace it into a new 1540 * @addr' + @offset' where @addr' is the symbol start address. 1541 */ 1542 addr = (void *)addr + offset; 1543 if (!kallsyms_lookup_size_offset((unsigned long)addr, NULL, &offset)) 1544 return ERR_PTR(-ENOENT); 1545 addr = (void *)addr - offset; 1546 1547 /* 1548 * Then ask the architecture to re-combine them, taking care of 1549 * magical function entry details while telling us if this was indeed 1550 * at the start of the function. 1551 */ 1552 addr = arch_adjust_kprobe_addr((unsigned long)addr, offset, on_func_entry); 1553 if (!addr) 1554 return ERR_PTR(-EINVAL); 1555 1556 return addr; 1557 } 1558 1559 static kprobe_opcode_t *kprobe_addr(struct kprobe *p) 1560 { 1561 bool on_func_entry; 1562 1563 return _kprobe_addr(p->addr, p->symbol_name, p->offset, &on_func_entry); 1564 } 1565 1566 /* 1567 * Check the 'p' is valid and return the aggregator kprobe 1568 * at the same address. 1569 */ 1570 static struct kprobe *__get_valid_kprobe(struct kprobe *p) 1571 { 1572 struct kprobe *ap, *list_p; 1573 1574 lockdep_assert_held(&kprobe_mutex); 1575 1576 ap = get_kprobe(p->addr); 1577 if (unlikely(!ap)) 1578 return NULL; 1579 1580 if (p == ap) 1581 return ap; 1582 1583 list_for_each_entry(list_p, &ap->list, list) 1584 if (list_p == p) 1585 /* kprobe p is a valid probe */ 1586 return ap; 1587 1588 return NULL; 1589 } 1590 1591 /* 1592 * Warn and return error if the kprobe is being re-registered since 1593 * there must be a software bug. 1594 */ 1595 static inline int warn_kprobe_rereg(struct kprobe *p) 1596 { 1597 guard(mutex)(&kprobe_mutex); 1598 1599 if (WARN_ON_ONCE(__get_valid_kprobe(p))) 1600 return -EINVAL; 1601 1602 return 0; 1603 } 1604 1605 static int check_ftrace_location(struct kprobe *p) 1606 { 1607 unsigned long addr = (unsigned long)p->addr; 1608 1609 if (ftrace_location(addr) == addr) { 1610 #ifdef CONFIG_KPROBES_ON_FTRACE 1611 p->flags |= KPROBE_FLAG_FTRACE; 1612 #else 1613 return -EINVAL; 1614 #endif 1615 } 1616 return 0; 1617 } 1618 1619 static bool is_cfi_preamble_symbol(unsigned long addr) 1620 { 1621 char symbuf[KSYM_NAME_LEN]; 1622 1623 if (lookup_symbol_name(addr, symbuf)) 1624 return false; 1625 1626 return str_has_prefix(symbuf, "__cfi_") || 1627 str_has_prefix(symbuf, "__pfx_"); 1628 } 1629 1630 static int check_kprobe_address_safe(struct kprobe *p, 1631 struct module **probed_mod) 1632 { 1633 int ret; 1634 1635 ret = check_ftrace_location(p); 1636 if (ret) 1637 return ret; 1638 1639 guard(jump_label_lock)(); 1640 1641 /* Ensure the address is in a text area, and find a module if exists. */ 1642 *probed_mod = NULL; 1643 if (!core_kernel_text((unsigned long) p->addr)) { 1644 guard(rcu)(); 1645 *probed_mod = __module_text_address((unsigned long) p->addr); 1646 if (!(*probed_mod)) 1647 return -EINVAL; 1648 1649 /* 1650 * We must hold a refcount of the probed module while updating 1651 * its code to prohibit unexpected unloading. 1652 */ 1653 if (unlikely(!try_module_get(*probed_mod))) 1654 return -ENOENT; 1655 } 1656 /* Ensure it is not in reserved area. */ 1657 if (in_gate_area_no_mm((unsigned long) p->addr) || 1658 within_kprobe_blacklist((unsigned long) p->addr) || 1659 jump_label_text_reserved(p->addr, p->addr) || 1660 static_call_text_reserved(p->addr, p->addr) || 1661 find_bug((unsigned long)p->addr) || 1662 is_cfi_preamble_symbol((unsigned long)p->addr)) { 1663 module_put(*probed_mod); 1664 return -EINVAL; 1665 } 1666 1667 /* Get module refcount and reject __init functions for loaded modules. */ 1668 if (IS_ENABLED(CONFIG_MODULES) && *probed_mod) { 1669 /* 1670 * If the module freed '.init.text', we couldn't insert 1671 * kprobes in there. 1672 */ 1673 if (within_module_init((unsigned long)p->addr, *probed_mod) && 1674 !module_is_coming(*probed_mod)) { 1675 module_put(*probed_mod); 1676 return -ENOENT; 1677 } 1678 } 1679 1680 return 0; 1681 } 1682 1683 static int __register_kprobe(struct kprobe *p) 1684 { 1685 int ret; 1686 struct kprobe *old_p; 1687 1688 guard(mutex)(&kprobe_mutex); 1689 1690 old_p = get_kprobe(p->addr); 1691 if (old_p) 1692 /* Since this may unoptimize 'old_p', locking 'text_mutex'. */ 1693 return register_aggr_kprobe(old_p, p); 1694 1695 scoped_guard(cpus_read_lock) { 1696 /* Prevent text modification */ 1697 guard(mutex)(&text_mutex); 1698 ret = prepare_kprobe(p); 1699 if (ret) 1700 return ret; 1701 } 1702 1703 INIT_HLIST_NODE(&p->hlist); 1704 hlist_add_head_rcu(&p->hlist, 1705 &kprobe_table[hash_ptr(p->addr, KPROBE_HASH_BITS)]); 1706 1707 if (!kprobes_all_disarmed && !kprobe_disabled(p)) { 1708 ret = arm_kprobe(p); 1709 if (ret) { 1710 hlist_del_rcu(&p->hlist); 1711 synchronize_rcu(); 1712 } 1713 } 1714 1715 /* Try to optimize kprobe */ 1716 try_to_optimize_kprobe(p); 1717 return 0; 1718 } 1719 1720 int register_kprobe(struct kprobe *p) 1721 { 1722 int ret; 1723 struct module *probed_mod; 1724 kprobe_opcode_t *addr; 1725 bool on_func_entry; 1726 1727 /* Canonicalize probe address from symbol */ 1728 addr = _kprobe_addr(p->addr, p->symbol_name, p->offset, &on_func_entry); 1729 if (IS_ERR(addr)) 1730 return PTR_ERR(addr); 1731 p->addr = addr; 1732 1733 ret = warn_kprobe_rereg(p); 1734 if (ret) 1735 return ret; 1736 1737 /* User can pass only KPROBE_FLAG_DISABLED to register_kprobe */ 1738 p->flags &= KPROBE_FLAG_DISABLED; 1739 if (on_func_entry) 1740 p->flags |= KPROBE_FLAG_ON_FUNC_ENTRY; 1741 p->nmissed = 0; 1742 INIT_LIST_HEAD(&p->list); 1743 1744 ret = check_kprobe_address_safe(p, &probed_mod); 1745 if (ret) 1746 return ret; 1747 1748 ret = __register_kprobe(p); 1749 1750 if (probed_mod) 1751 module_put(probed_mod); 1752 1753 return ret; 1754 } 1755 EXPORT_SYMBOL_GPL(register_kprobe); 1756 1757 /* Check if all probes on the 'ap' are disabled. */ 1758 static bool aggr_kprobe_disabled(struct kprobe *ap) 1759 { 1760 struct kprobe *kp; 1761 1762 lockdep_assert_held(&kprobe_mutex); 1763 1764 list_for_each_entry(kp, &ap->list, list) 1765 if (!kprobe_disabled(kp)) 1766 /* 1767 * Since there is an active probe on the list, 1768 * we can't disable this 'ap'. 1769 */ 1770 return false; 1771 1772 return true; 1773 } 1774 1775 static struct kprobe *__disable_kprobe(struct kprobe *p) 1776 { 1777 struct kprobe *orig_p; 1778 int ret; 1779 1780 lockdep_assert_held(&kprobe_mutex); 1781 1782 /* Get an original kprobe for return */ 1783 orig_p = __get_valid_kprobe(p); 1784 if (unlikely(orig_p == NULL)) 1785 return ERR_PTR(-EINVAL); 1786 1787 if (kprobe_disabled(p)) 1788 return orig_p; 1789 1790 /* Disable probe if it is a child probe */ 1791 if (p != orig_p) 1792 p->flags |= KPROBE_FLAG_DISABLED; 1793 1794 /* Try to disarm and disable this/parent probe */ 1795 if (p == orig_p || aggr_kprobe_disabled(orig_p)) { 1796 /* 1797 * Don't be lazy here. Even if 'kprobes_all_disarmed' 1798 * is false, 'orig_p' might not have been armed yet. 1799 * Note arm_all_kprobes() __tries__ to arm all kprobes 1800 * on the best effort basis. 1801 */ 1802 if (!kprobes_all_disarmed && !kprobe_disabled(orig_p)) { 1803 ret = disarm_kprobe(orig_p, true); 1804 if (ret) { 1805 p->flags &= ~KPROBE_FLAG_DISABLED; 1806 return ERR_PTR(ret); 1807 } 1808 } 1809 orig_p->flags |= KPROBE_FLAG_DISABLED; 1810 } 1811 1812 return orig_p; 1813 } 1814 1815 /* 1816 * Unregister a kprobe without a scheduler synchronization. 1817 */ 1818 static int __unregister_kprobe_top(struct kprobe *p) 1819 { 1820 struct kprobe *ap, *list_p; 1821 1822 /* Disable kprobe. This will disarm it if needed. */ 1823 ap = __disable_kprobe(p); 1824 if (IS_ERR(ap)) 1825 return PTR_ERR(ap); 1826 1827 WARN_ON(ap != p && !kprobe_aggrprobe(ap)); 1828 1829 /* 1830 * If the probe is an independent(and non-optimized) kprobe 1831 * (not an aggrprobe), the last kprobe on the aggrprobe, or 1832 * kprobe is already disarmed, just remove from the hash list. 1833 */ 1834 if (ap == p || 1835 (list_is_singular(&ap->list) && kprobe_disarmed(ap))) { 1836 /* 1837 * !disarmed could be happen if the probe is under delayed 1838 * unoptimizing. 1839 */ 1840 hlist_del_rcu(&ap->hlist); 1841 return 0; 1842 } 1843 1844 /* If disabling probe has special handlers, update aggrprobe */ 1845 if (p->post_handler && !kprobe_gone(p)) { 1846 list_for_each_entry(list_p, &ap->list, list) { 1847 if ((list_p != p) && (list_p->post_handler)) 1848 break; 1849 } 1850 /* No other probe has post_handler */ 1851 if (list_entry_is_head(list_p, &ap->list, list)) { 1852 /* 1853 * For the kprobe-on-ftrace case, we keep the 1854 * post_handler setting to identify this aggrprobe 1855 * armed with kprobe_ipmodify_ops. 1856 */ 1857 if (!kprobe_ftrace(ap)) 1858 ap->post_handler = NULL; 1859 } 1860 } 1861 1862 /* 1863 * Remove from the aggrprobe: this path will do nothing in 1864 * __unregister_kprobe_bottom(). 1865 */ 1866 list_del_rcu(&p->list); 1867 if (!kprobe_disabled(ap) && !kprobes_all_disarmed) 1868 /* 1869 * Try to optimize this probe again, because post 1870 * handler may have been changed. 1871 */ 1872 optimize_kprobe(ap); 1873 return 0; 1874 1875 } 1876 1877 static void __unregister_kprobe_bottom(struct kprobe *p) 1878 { 1879 struct kprobe *ap; 1880 1881 if (list_empty(&p->list)) 1882 /* This is an independent kprobe */ 1883 arch_remove_kprobe(p); 1884 else if (list_is_singular(&p->list)) { 1885 /* This is the last child of an aggrprobe */ 1886 ap = list_entry(p->list.next, struct kprobe, list); 1887 list_del(&p->list); 1888 free_aggr_kprobe(ap); 1889 } 1890 /* Otherwise, do nothing. */ 1891 } 1892 1893 int register_kprobes(struct kprobe **kps, int num) 1894 { 1895 int i, ret = 0; 1896 1897 if (num <= 0) 1898 return -EINVAL; 1899 for (i = 0; i < num; i++) { 1900 ret = register_kprobe(kps[i]); 1901 if (ret < 0) { 1902 if (i > 0) 1903 unregister_kprobes(kps, i); 1904 break; 1905 } 1906 } 1907 return ret; 1908 } 1909 EXPORT_SYMBOL_GPL(register_kprobes); 1910 1911 void unregister_kprobe(struct kprobe *p) 1912 { 1913 unregister_kprobes(&p, 1); 1914 } 1915 EXPORT_SYMBOL_GPL(unregister_kprobe); 1916 1917 void unregister_kprobes(struct kprobe **kps, int num) 1918 { 1919 int i; 1920 1921 if (num <= 0) 1922 return; 1923 scoped_guard(mutex, &kprobe_mutex) { 1924 for (i = 0; i < num; i++) 1925 if (__unregister_kprobe_top(kps[i]) < 0) 1926 kps[i]->addr = NULL; 1927 } 1928 synchronize_rcu(); 1929 for (i = 0; i < num; i++) 1930 if (kps[i]->addr) 1931 __unregister_kprobe_bottom(kps[i]); 1932 } 1933 EXPORT_SYMBOL_GPL(unregister_kprobes); 1934 1935 int __weak kprobe_exceptions_notify(struct notifier_block *self, 1936 unsigned long val, void *data) 1937 { 1938 return NOTIFY_DONE; 1939 } 1940 NOKPROBE_SYMBOL(kprobe_exceptions_notify); 1941 1942 static struct notifier_block kprobe_exceptions_nb = { 1943 .notifier_call = kprobe_exceptions_notify, 1944 .priority = 0x7fffffff /* we need to be notified first */ 1945 }; 1946 1947 #ifdef CONFIG_KRETPROBES 1948 1949 #if !defined(CONFIG_KRETPROBE_ON_RETHOOK) 1950 1951 /* callbacks for objpool of kretprobe instances */ 1952 static int kretprobe_init_inst(void *nod, void *context) 1953 { 1954 struct kretprobe_instance *ri = nod; 1955 1956 ri->rph = context; 1957 return 0; 1958 } 1959 static int kretprobe_fini_pool(struct objpool_head *head, void *context) 1960 { 1961 kfree(context); 1962 return 0; 1963 } 1964 1965 static void free_rp_inst_rcu(struct rcu_head *head) 1966 { 1967 struct kretprobe_instance *ri = container_of(head, struct kretprobe_instance, rcu); 1968 struct kretprobe_holder *rph = ri->rph; 1969 1970 objpool_drop(ri, &rph->pool); 1971 } 1972 NOKPROBE_SYMBOL(free_rp_inst_rcu); 1973 1974 static void recycle_rp_inst(struct kretprobe_instance *ri) 1975 { 1976 struct kretprobe *rp = get_kretprobe(ri); 1977 1978 if (likely(rp)) 1979 objpool_push(ri, &rp->rph->pool); 1980 else 1981 call_rcu(&ri->rcu, free_rp_inst_rcu); 1982 } 1983 NOKPROBE_SYMBOL(recycle_rp_inst); 1984 1985 /* 1986 * This function is called from delayed_put_task_struct() when a task is 1987 * dead and cleaned up to recycle any kretprobe instances associated with 1988 * this task. These left over instances represent probed functions that 1989 * have been called but will never return. 1990 */ 1991 void kprobe_flush_task(struct task_struct *tk) 1992 { 1993 struct kretprobe_instance *ri; 1994 struct llist_node *node; 1995 1996 /* Early boot, not yet initialized. */ 1997 if (unlikely(!kprobes_initialized)) 1998 return; 1999 2000 kprobe_busy_begin(); 2001 2002 node = __llist_del_all(&tk->kretprobe_instances); 2003 while (node) { 2004 ri = container_of(node, struct kretprobe_instance, llist); 2005 node = node->next; 2006 2007 recycle_rp_inst(ri); 2008 } 2009 2010 kprobe_busy_end(); 2011 } 2012 NOKPROBE_SYMBOL(kprobe_flush_task); 2013 2014 static inline void free_rp_inst(struct kretprobe *rp) 2015 { 2016 struct kretprobe_holder *rph = rp->rph; 2017 2018 if (!rph) 2019 return; 2020 rp->rph = NULL; 2021 objpool_fini(&rph->pool); 2022 } 2023 2024 /* This assumes the 'tsk' is the current task or the is not running. */ 2025 static kprobe_opcode_t *__kretprobe_find_ret_addr(struct task_struct *tsk, 2026 struct llist_node **cur) 2027 { 2028 struct kretprobe_instance *ri = NULL; 2029 struct llist_node *node = *cur; 2030 2031 if (!node) 2032 node = tsk->kretprobe_instances.first; 2033 else 2034 node = node->next; 2035 2036 while (node) { 2037 ri = container_of(node, struct kretprobe_instance, llist); 2038 if (ri->ret_addr != kretprobe_trampoline_addr()) { 2039 *cur = node; 2040 return ri->ret_addr; 2041 } 2042 node = node->next; 2043 } 2044 return NULL; 2045 } 2046 NOKPROBE_SYMBOL(__kretprobe_find_ret_addr); 2047 2048 /** 2049 * kretprobe_find_ret_addr -- Find correct return address modified by kretprobe 2050 * @tsk: Target task 2051 * @fp: A frame pointer 2052 * @cur: a storage of the loop cursor llist_node pointer for next call 2053 * 2054 * Find the correct return address modified by a kretprobe on @tsk in unsigned 2055 * long type. If it finds the return address, this returns that address value, 2056 * or this returns 0. 2057 * The @tsk must be 'current' or a task which is not running. @fp is a hint 2058 * to get the currect return address - which is compared with the 2059 * kretprobe_instance::fp field. The @cur is a loop cursor for searching the 2060 * kretprobe return addresses on the @tsk. The '*@cur' should be NULL at the 2061 * first call, but '@cur' itself must NOT NULL. 2062 */ 2063 unsigned long kretprobe_find_ret_addr(struct task_struct *tsk, void *fp, 2064 struct llist_node **cur) 2065 { 2066 struct kretprobe_instance *ri; 2067 kprobe_opcode_t *ret; 2068 2069 if (WARN_ON_ONCE(!cur)) 2070 return 0; 2071 2072 do { 2073 ret = __kretprobe_find_ret_addr(tsk, cur); 2074 if (!ret) 2075 break; 2076 ri = container_of(*cur, struct kretprobe_instance, llist); 2077 } while (ri->fp != fp); 2078 2079 return (unsigned long)ret; 2080 } 2081 NOKPROBE_SYMBOL(kretprobe_find_ret_addr); 2082 2083 void __weak arch_kretprobe_fixup_return(struct pt_regs *regs, 2084 kprobe_opcode_t *correct_ret_addr) 2085 { 2086 /* 2087 * Do nothing by default. Please fill this to update the fake return 2088 * address on the stack with the correct one on each arch if possible. 2089 */ 2090 } 2091 2092 unsigned long __kretprobe_trampoline_handler(struct pt_regs *regs, 2093 void *frame_pointer) 2094 { 2095 struct kretprobe_instance *ri = NULL; 2096 struct llist_node *first, *node = NULL; 2097 kprobe_opcode_t *correct_ret_addr; 2098 struct kretprobe *rp; 2099 2100 /* Find correct address and all nodes for this frame. */ 2101 correct_ret_addr = __kretprobe_find_ret_addr(current, &node); 2102 if (!correct_ret_addr) { 2103 pr_err("kretprobe: Return address not found, not execute handler. Maybe there is a bug in the kernel.\n"); 2104 BUG_ON(1); 2105 } 2106 2107 /* 2108 * Set the return address as the instruction pointer, because if the 2109 * user handler calls stack_trace_save_regs() with this 'regs', 2110 * the stack trace will start from the instruction pointer. 2111 */ 2112 instruction_pointer_set(regs, (unsigned long)correct_ret_addr); 2113 2114 /* Run the user handler of the nodes. */ 2115 first = current->kretprobe_instances.first; 2116 while (first) { 2117 ri = container_of(first, struct kretprobe_instance, llist); 2118 2119 if (WARN_ON_ONCE(ri->fp != frame_pointer)) 2120 break; 2121 2122 rp = get_kretprobe(ri); 2123 if (rp && rp->handler) { 2124 struct kprobe *prev = kprobe_running(); 2125 2126 __this_cpu_write(current_kprobe, &rp->kp); 2127 ri->ret_addr = correct_ret_addr; 2128 rp->handler(ri, regs); 2129 __this_cpu_write(current_kprobe, prev); 2130 } 2131 if (first == node) 2132 break; 2133 2134 first = first->next; 2135 } 2136 2137 arch_kretprobe_fixup_return(regs, correct_ret_addr); 2138 2139 /* Unlink all nodes for this frame. */ 2140 first = current->kretprobe_instances.first; 2141 current->kretprobe_instances.first = node->next; 2142 node->next = NULL; 2143 2144 /* Recycle free instances. */ 2145 while (first) { 2146 ri = container_of(first, struct kretprobe_instance, llist); 2147 first = first->next; 2148 2149 recycle_rp_inst(ri); 2150 } 2151 2152 return (unsigned long)correct_ret_addr; 2153 } 2154 NOKPROBE_SYMBOL(__kretprobe_trampoline_handler) 2155 2156 /* 2157 * This kprobe pre_handler is registered with every kretprobe. When probe 2158 * hits it will set up the return probe. 2159 */ 2160 static int pre_handler_kretprobe(struct kprobe *p, struct pt_regs *regs) 2161 { 2162 struct kretprobe *rp = container_of(p, struct kretprobe, kp); 2163 struct kretprobe_holder *rph = rp->rph; 2164 struct kretprobe_instance *ri; 2165 2166 ri = objpool_pop(&rph->pool); 2167 if (!ri) { 2168 rp->nmissed++; 2169 return 0; 2170 } 2171 2172 if (rp->entry_handler && rp->entry_handler(ri, regs)) { 2173 objpool_push(ri, &rph->pool); 2174 return 0; 2175 } 2176 2177 arch_prepare_kretprobe(ri, regs); 2178 2179 __llist_add(&ri->llist, ¤t->kretprobe_instances); 2180 2181 return 0; 2182 } 2183 NOKPROBE_SYMBOL(pre_handler_kretprobe); 2184 #else /* CONFIG_KRETPROBE_ON_RETHOOK */ 2185 /* 2186 * This kprobe pre_handler is registered with every kretprobe. When probe 2187 * hits it will set up the return probe. 2188 */ 2189 static int pre_handler_kretprobe(struct kprobe *p, struct pt_regs *regs) 2190 { 2191 struct kretprobe *rp = container_of(p, struct kretprobe, kp); 2192 struct kretprobe_instance *ri; 2193 struct rethook_node *rhn; 2194 2195 rhn = rethook_try_get(rp->rh); 2196 if (!rhn) { 2197 rp->nmissed++; 2198 return 0; 2199 } 2200 2201 ri = container_of(rhn, struct kretprobe_instance, node); 2202 2203 if (rp->entry_handler && rp->entry_handler(ri, regs)) 2204 rethook_recycle(rhn); 2205 else 2206 rethook_hook(rhn, regs, kprobe_ftrace(p)); 2207 2208 return 0; 2209 } 2210 NOKPROBE_SYMBOL(pre_handler_kretprobe); 2211 2212 static void kretprobe_rethook_handler(struct rethook_node *rh, void *data, 2213 unsigned long ret_addr, 2214 struct pt_regs *regs) 2215 { 2216 struct kretprobe *rp = (struct kretprobe *)data; 2217 struct kretprobe_instance *ri; 2218 struct kprobe_ctlblk *kcb; 2219 2220 /* The data must NOT be null. This means rethook data structure is broken. */ 2221 if (WARN_ON_ONCE(!data) || !rp->handler) 2222 return; 2223 2224 __this_cpu_write(current_kprobe, &rp->kp); 2225 kcb = get_kprobe_ctlblk(); 2226 kcb->kprobe_status = KPROBE_HIT_ACTIVE; 2227 2228 ri = container_of(rh, struct kretprobe_instance, node); 2229 rp->handler(ri, regs); 2230 2231 __this_cpu_write(current_kprobe, NULL); 2232 } 2233 NOKPROBE_SYMBOL(kretprobe_rethook_handler); 2234 2235 #endif /* !CONFIG_KRETPROBE_ON_RETHOOK */ 2236 2237 /** 2238 * kprobe_on_func_entry() -- check whether given address is function entry 2239 * @addr: Target address 2240 * @sym: Target symbol name 2241 * @offset: The offset from the symbol or the address 2242 * 2243 * This checks whether the given @addr+@offset or @sym+@offset is on the 2244 * function entry address or not. 2245 * This returns 0 if it is the function entry, or -EINVAL if it is not. 2246 * And also it returns -ENOENT if it fails the symbol or address lookup. 2247 * Caller must pass @addr or @sym (either one must be NULL), or this 2248 * returns -EINVAL. 2249 */ 2250 int kprobe_on_func_entry(kprobe_opcode_t *addr, const char *sym, unsigned long offset) 2251 { 2252 bool on_func_entry; 2253 kprobe_opcode_t *kp_addr = _kprobe_addr(addr, sym, offset, &on_func_entry); 2254 2255 if (IS_ERR(kp_addr)) 2256 return PTR_ERR(kp_addr); 2257 2258 if (!on_func_entry) 2259 return -EINVAL; 2260 2261 return 0; 2262 } 2263 2264 int register_kretprobe(struct kretprobe *rp) 2265 { 2266 int ret; 2267 int i; 2268 void *addr; 2269 2270 ret = kprobe_on_func_entry(rp->kp.addr, rp->kp.symbol_name, rp->kp.offset); 2271 if (ret) 2272 return ret; 2273 2274 /* If only 'rp->kp.addr' is specified, check reregistering kprobes */ 2275 if (rp->kp.addr && warn_kprobe_rereg(&rp->kp)) 2276 return -EINVAL; 2277 2278 if (kretprobe_blacklist_size) { 2279 addr = kprobe_addr(&rp->kp); 2280 if (IS_ERR(addr)) 2281 return PTR_ERR(addr); 2282 2283 for (i = 0; kretprobe_blacklist[i].name != NULL; i++) { 2284 if (kretprobe_blacklist[i].addr == addr) 2285 return -EINVAL; 2286 } 2287 } 2288 2289 if (rp->data_size > KRETPROBE_MAX_DATA_SIZE) 2290 return -E2BIG; 2291 2292 rp->kp.pre_handler = pre_handler_kretprobe; 2293 rp->kp.post_handler = NULL; 2294 2295 /* Pre-allocate memory for max kretprobe instances */ 2296 if (rp->maxactive <= 0) 2297 rp->maxactive = max_t(unsigned int, 10, 2*num_possible_cpus()); 2298 2299 #ifdef CONFIG_KRETPROBE_ON_RETHOOK 2300 rp->rh = rethook_alloc((void *)rp, kretprobe_rethook_handler, 2301 sizeof(struct kretprobe_instance) + 2302 rp->data_size, rp->maxactive); 2303 if (IS_ERR(rp->rh)) 2304 return PTR_ERR(rp->rh); 2305 2306 rp->nmissed = 0; 2307 /* Establish function entry probe point */ 2308 ret = register_kprobe(&rp->kp); 2309 if (ret != 0) { 2310 rethook_free(rp->rh); 2311 rp->rh = NULL; 2312 } 2313 #else /* !CONFIG_KRETPROBE_ON_RETHOOK */ 2314 rp->rph = kzalloc_obj(struct kretprobe_holder); 2315 if (!rp->rph) 2316 return -ENOMEM; 2317 2318 if (objpool_init(&rp->rph->pool, rp->maxactive, rp->data_size + 2319 sizeof(struct kretprobe_instance), GFP_KERNEL, 2320 rp->rph, kretprobe_init_inst, kretprobe_fini_pool)) { 2321 kfree(rp->rph); 2322 rp->rph = NULL; 2323 return -ENOMEM; 2324 } 2325 rcu_assign_pointer(rp->rph->rp, rp); 2326 rp->nmissed = 0; 2327 /* Establish function entry probe point */ 2328 ret = register_kprobe(&rp->kp); 2329 if (ret != 0) 2330 free_rp_inst(rp); 2331 #endif 2332 return ret; 2333 } 2334 EXPORT_SYMBOL_GPL(register_kretprobe); 2335 2336 int register_kretprobes(struct kretprobe **rps, int num) 2337 { 2338 int ret = 0, i; 2339 2340 if (num <= 0) 2341 return -EINVAL; 2342 for (i = 0; i < num; i++) { 2343 ret = register_kretprobe(rps[i]); 2344 if (ret < 0) { 2345 if (i > 0) 2346 unregister_kretprobes(rps, i); 2347 break; 2348 } 2349 } 2350 return ret; 2351 } 2352 EXPORT_SYMBOL_GPL(register_kretprobes); 2353 2354 void unregister_kretprobe(struct kretprobe *rp) 2355 { 2356 unregister_kretprobes(&rp, 1); 2357 } 2358 EXPORT_SYMBOL_GPL(unregister_kretprobe); 2359 2360 void unregister_kretprobes(struct kretprobe **rps, int num) 2361 { 2362 int i; 2363 2364 if (num <= 0) 2365 return; 2366 for (i = 0; i < num; i++) { 2367 guard(mutex)(&kprobe_mutex); 2368 2369 if (__unregister_kprobe_top(&rps[i]->kp) < 0) 2370 rps[i]->kp.addr = NULL; 2371 #ifdef CONFIG_KRETPROBE_ON_RETHOOK 2372 rethook_free(rps[i]->rh); 2373 #else 2374 rcu_assign_pointer(rps[i]->rph->rp, NULL); 2375 #endif 2376 } 2377 2378 synchronize_rcu(); 2379 for (i = 0; i < num; i++) { 2380 if (rps[i]->kp.addr) { 2381 __unregister_kprobe_bottom(&rps[i]->kp); 2382 #ifndef CONFIG_KRETPROBE_ON_RETHOOK 2383 free_rp_inst(rps[i]); 2384 #endif 2385 } 2386 } 2387 } 2388 EXPORT_SYMBOL_GPL(unregister_kretprobes); 2389 2390 #else /* CONFIG_KRETPROBES */ 2391 int register_kretprobe(struct kretprobe *rp) 2392 { 2393 return -EOPNOTSUPP; 2394 } 2395 EXPORT_SYMBOL_GPL(register_kretprobe); 2396 2397 int register_kretprobes(struct kretprobe **rps, int num) 2398 { 2399 return -EOPNOTSUPP; 2400 } 2401 EXPORT_SYMBOL_GPL(register_kretprobes); 2402 2403 void unregister_kretprobe(struct kretprobe *rp) 2404 { 2405 } 2406 EXPORT_SYMBOL_GPL(unregister_kretprobe); 2407 2408 void unregister_kretprobes(struct kretprobe **rps, int num) 2409 { 2410 } 2411 EXPORT_SYMBOL_GPL(unregister_kretprobes); 2412 2413 static int pre_handler_kretprobe(struct kprobe *p, struct pt_regs *regs) 2414 { 2415 return 0; 2416 } 2417 NOKPROBE_SYMBOL(pre_handler_kretprobe); 2418 2419 #endif /* CONFIG_KRETPROBES */ 2420 2421 /* Set the kprobe gone and remove its instruction buffer. */ 2422 static void kill_kprobe(struct kprobe *p) 2423 { 2424 struct kprobe *kp; 2425 2426 lockdep_assert_held(&kprobe_mutex); 2427 2428 /* 2429 * The module is going away. We should disarm the kprobe which 2430 * is using ftrace, because ftrace framework is still available at 2431 * 'MODULE_STATE_GOING' notification. 2432 */ 2433 if (kprobe_ftrace(p) && !kprobe_disabled(p) && !kprobes_all_disarmed) 2434 disarm_kprobe_ftrace(p); 2435 2436 p->flags |= KPROBE_FLAG_GONE; 2437 if (kprobe_aggrprobe(p)) { 2438 /* 2439 * If this is an aggr_kprobe, we have to list all the 2440 * chained probes and mark them GONE. 2441 */ 2442 list_for_each_entry(kp, &p->list, list) 2443 kp->flags |= KPROBE_FLAG_GONE; 2444 p->post_handler = NULL; 2445 kill_optimized_kprobe(p); 2446 } 2447 /* 2448 * Here, we can remove insn_slot safely, because no thread calls 2449 * the original probed function (which will be freed soon) any more. 2450 */ 2451 arch_remove_kprobe(p); 2452 } 2453 2454 /* Disable one kprobe */ 2455 int disable_kprobe(struct kprobe *kp) 2456 { 2457 struct kprobe *p; 2458 2459 guard(mutex)(&kprobe_mutex); 2460 2461 /* Disable this kprobe */ 2462 p = __disable_kprobe(kp); 2463 2464 return IS_ERR(p) ? PTR_ERR(p) : 0; 2465 } 2466 EXPORT_SYMBOL_GPL(disable_kprobe); 2467 2468 /* Enable one kprobe */ 2469 int enable_kprobe(struct kprobe *kp) 2470 { 2471 int ret = 0; 2472 struct kprobe *p; 2473 2474 guard(mutex)(&kprobe_mutex); 2475 2476 /* Check whether specified probe is valid. */ 2477 p = __get_valid_kprobe(kp); 2478 if (unlikely(p == NULL)) 2479 return -EINVAL; 2480 2481 if (kprobe_gone(kp)) 2482 /* This kprobe has gone, we couldn't enable it. */ 2483 return -EINVAL; 2484 2485 if (p != kp) 2486 kp->flags &= ~KPROBE_FLAG_DISABLED; 2487 2488 if (!kprobes_all_disarmed && kprobe_disabled(p)) { 2489 p->flags &= ~KPROBE_FLAG_DISABLED; 2490 ret = arm_kprobe(p); 2491 if (ret) { 2492 p->flags |= KPROBE_FLAG_DISABLED; 2493 if (p != kp) 2494 kp->flags |= KPROBE_FLAG_DISABLED; 2495 } 2496 } 2497 return ret; 2498 } 2499 EXPORT_SYMBOL_GPL(enable_kprobe); 2500 2501 /* Caller must NOT call this in usual path. This is only for critical case */ 2502 void dump_kprobe(struct kprobe *kp) 2503 { 2504 pr_err("Dump kprobe:\n.symbol_name = %s, .offset = %x, .addr = %pS\n", 2505 kp->symbol_name, kp->offset, kp->addr); 2506 } 2507 NOKPROBE_SYMBOL(dump_kprobe); 2508 2509 int kprobe_add_ksym_blacklist(unsigned long entry) 2510 { 2511 struct kprobe_blacklist_entry *ent; 2512 unsigned long offset = 0, size = 0; 2513 2514 if (!kernel_text_address(entry) || 2515 !kallsyms_lookup_size_offset(entry, &size, &offset)) 2516 return -EINVAL; 2517 2518 ent = kmalloc_obj(*ent); 2519 if (!ent) 2520 return -ENOMEM; 2521 ent->start_addr = entry; 2522 ent->end_addr = entry + size; 2523 INIT_LIST_HEAD(&ent->list); 2524 list_add_tail_rcu(&ent->list, &kprobe_blacklist); 2525 2526 return (int)size; 2527 } 2528 2529 /* Add all symbols in given area into kprobe blacklist */ 2530 int kprobe_add_area_blacklist(unsigned long start, unsigned long end) 2531 { 2532 unsigned long entry; 2533 int ret = 0; 2534 2535 for (entry = start; entry < end; entry += ret) { 2536 ret = kprobe_add_ksym_blacklist(entry); 2537 if (ret < 0) 2538 return ret; 2539 if (ret == 0) /* In case of alias symbol */ 2540 ret = 1; 2541 } 2542 return 0; 2543 } 2544 2545 int __weak arch_kprobe_get_kallsym(unsigned int *symnum, unsigned long *value, 2546 char *type, char *sym) 2547 { 2548 return -ERANGE; 2549 } 2550 2551 int kprobe_get_kallsym(unsigned int symnum, unsigned long *value, char *type, 2552 char *sym) 2553 { 2554 #ifdef __ARCH_WANT_KPROBES_INSN_SLOT 2555 if (!kprobe_cache_get_kallsym(&kprobe_insn_slots, &symnum, value, type, sym)) 2556 return 0; 2557 #ifdef CONFIG_OPTPROBES 2558 if (!kprobe_cache_get_kallsym(&kprobe_optinsn_slots, &symnum, value, type, sym)) 2559 return 0; 2560 #endif 2561 #endif 2562 if (!arch_kprobe_get_kallsym(&symnum, value, type, sym)) 2563 return 0; 2564 return -ERANGE; 2565 } 2566 2567 int __init __weak arch_populate_kprobe_blacklist(void) 2568 { 2569 return 0; 2570 } 2571 2572 /* 2573 * Lookup and populate the kprobe_blacklist. 2574 * 2575 * Unlike the kretprobe blacklist, we'll need to determine 2576 * the range of addresses that belong to the said functions, 2577 * since a kprobe need not necessarily be at the beginning 2578 * of a function. 2579 */ 2580 static int __init populate_kprobe_blacklist(unsigned long *start, 2581 unsigned long *end) 2582 { 2583 unsigned long entry; 2584 unsigned long *iter; 2585 int ret; 2586 2587 for (iter = start; iter < end; iter++) { 2588 entry = (unsigned long)dereference_symbol_descriptor((void *)*iter); 2589 ret = kprobe_add_ksym_blacklist(entry); 2590 if (ret == -EINVAL) 2591 continue; 2592 if (ret < 0) 2593 return ret; 2594 } 2595 2596 /* Symbols in '__kprobes_text' are blacklisted */ 2597 ret = kprobe_add_area_blacklist((unsigned long)__kprobes_text_start, 2598 (unsigned long)__kprobes_text_end); 2599 if (ret) 2600 return ret; 2601 2602 /* Symbols in 'noinstr' section are blacklisted */ 2603 ret = kprobe_add_area_blacklist((unsigned long)__noinstr_text_start, 2604 (unsigned long)__noinstr_text_end); 2605 2606 return ret ? : arch_populate_kprobe_blacklist(); 2607 } 2608 2609 #ifdef CONFIG_MODULES 2610 /* Remove all symbols in given area from kprobe blacklist */ 2611 static void kprobe_remove_area_blacklist(unsigned long start, unsigned long end) 2612 { 2613 struct kprobe_blacklist_entry *ent, *n; 2614 2615 list_for_each_entry_safe(ent, n, &kprobe_blacklist, list) { 2616 if (ent->start_addr < start || ent->start_addr >= end) 2617 continue; 2618 list_del_rcu(&ent->list); 2619 kfree_rcu(ent, rcu); 2620 } 2621 } 2622 2623 static void kprobe_remove_ksym_blacklist(unsigned long entry) 2624 { 2625 kprobe_remove_area_blacklist(entry, entry + 1); 2626 } 2627 2628 static void add_module_kprobe_blacklist(struct module *mod) 2629 { 2630 unsigned long start, end; 2631 int i; 2632 2633 if (mod->kprobe_blacklist) { 2634 for (i = 0; i < mod->num_kprobe_blacklist; i++) 2635 kprobe_add_ksym_blacklist(mod->kprobe_blacklist[i]); 2636 } 2637 2638 start = (unsigned long)mod->kprobes_text_start; 2639 if (start) { 2640 end = start + mod->kprobes_text_size; 2641 kprobe_add_area_blacklist(start, end); 2642 } 2643 2644 start = (unsigned long)mod->noinstr_text_start; 2645 if (start) { 2646 end = start + mod->noinstr_text_size; 2647 kprobe_add_area_blacklist(start, end); 2648 } 2649 } 2650 2651 static void remove_module_kprobe_blacklist(struct module *mod) 2652 { 2653 unsigned long start, end; 2654 int i; 2655 2656 if (mod->kprobe_blacklist) { 2657 for (i = 0; i < mod->num_kprobe_blacklist; i++) 2658 kprobe_remove_ksym_blacklist(mod->kprobe_blacklist[i]); 2659 } 2660 2661 start = (unsigned long)mod->kprobes_text_start; 2662 if (start) { 2663 end = start + mod->kprobes_text_size; 2664 kprobe_remove_area_blacklist(start, end); 2665 } 2666 2667 start = (unsigned long)mod->noinstr_text_start; 2668 if (start) { 2669 end = start + mod->noinstr_text_size; 2670 kprobe_remove_area_blacklist(start, end); 2671 } 2672 } 2673 2674 /* Module notifier call back, checking kprobes on the module */ 2675 static int kprobes_module_callback(struct notifier_block *nb, 2676 unsigned long val, void *data) 2677 { 2678 struct module *mod = data; 2679 struct hlist_head *head; 2680 struct kprobe *p; 2681 unsigned int i; 2682 int checkcore = (val == MODULE_STATE_GOING); 2683 2684 guard(mutex)(&kprobe_mutex); 2685 2686 if (val == MODULE_STATE_COMING) 2687 add_module_kprobe_blacklist(mod); 2688 2689 if (val != MODULE_STATE_GOING && val != MODULE_STATE_LIVE) 2690 return NOTIFY_DONE; 2691 2692 /* 2693 * When 'MODULE_STATE_GOING' was notified, both of module '.text' and 2694 * '.init.text' sections would be freed. When 'MODULE_STATE_LIVE' was 2695 * notified, only '.init.text' section would be freed. We need to 2696 * disable kprobes which have been inserted in the sections. 2697 */ 2698 for (i = 0; i < KPROBE_TABLE_SIZE; i++) { 2699 head = &kprobe_table[i]; 2700 hlist_for_each_entry(p, head, hlist) 2701 if (within_module_init((unsigned long)p->addr, mod) || 2702 (checkcore && 2703 within_module_core((unsigned long)p->addr, mod))) { 2704 /* 2705 * The vaddr this probe is installed will soon 2706 * be vfreed buy not synced to disk. Hence, 2707 * disarming the breakpoint isn't needed. 2708 * 2709 * Note, this will also move any optimized probes 2710 * that are pending to be removed from their 2711 * corresponding lists to the 'freeing_list' and 2712 * will not be touched by the delayed 2713 * kprobe_optimizer() work handler. 2714 */ 2715 kill_kprobe(p); 2716 } 2717 } 2718 if (val == MODULE_STATE_GOING) 2719 remove_module_kprobe_blacklist(mod); 2720 return NOTIFY_DONE; 2721 } 2722 2723 static struct notifier_block kprobe_module_nb = { 2724 .notifier_call = kprobes_module_callback, 2725 .priority = 0 2726 }; 2727 2728 static int kprobe_register_module_notifier(void) 2729 { 2730 return register_module_notifier(&kprobe_module_nb); 2731 } 2732 #else 2733 static int kprobe_register_module_notifier(void) 2734 { 2735 return 0; 2736 } 2737 #endif /* CONFIG_MODULES */ 2738 2739 void kprobe_free_init_mem(void) 2740 { 2741 void *start = (void *)(&__init_begin); 2742 void *end = (void *)(&__init_end); 2743 struct hlist_head *head; 2744 struct kprobe *p; 2745 int i; 2746 2747 guard(mutex)(&kprobe_mutex); 2748 2749 /* Kill all kprobes on initmem because the target code has been freed. */ 2750 for (i = 0; i < KPROBE_TABLE_SIZE; i++) { 2751 head = &kprobe_table[i]; 2752 hlist_for_each_entry(p, head, hlist) { 2753 if (start <= (void *)p->addr && (void *)p->addr < end) 2754 kill_kprobe(p); 2755 } 2756 } 2757 } 2758 2759 static int __init init_kprobes(void) 2760 { 2761 int i, err; 2762 2763 /* FIXME allocate the probe table, currently defined statically */ 2764 /* initialize all list heads */ 2765 for (i = 0; i < KPROBE_TABLE_SIZE; i++) 2766 INIT_HLIST_HEAD(&kprobe_table[i]); 2767 2768 err = populate_kprobe_blacklist(__start_kprobe_blacklist, 2769 __stop_kprobe_blacklist); 2770 if (err) 2771 pr_err("Failed to populate blacklist (error %d), kprobes not restricted, be careful using them!\n", err); 2772 2773 if (kretprobe_blacklist_size) { 2774 /* lookup the function address from its name */ 2775 for (i = 0; kretprobe_blacklist[i].name != NULL; i++) { 2776 kretprobe_blacklist[i].addr = 2777 kprobe_lookup_name(kretprobe_blacklist[i].name, 0); 2778 if (!kretprobe_blacklist[i].addr) 2779 pr_err("Failed to lookup symbol '%s' for kretprobe blacklist. Maybe the target function is removed or renamed.\n", 2780 kretprobe_blacklist[i].name); 2781 } 2782 } 2783 2784 /* By default, kprobes are armed */ 2785 kprobes_all_disarmed = false; 2786 2787 /* Initialize the optimization infrastructure */ 2788 init_optprobe(); 2789 2790 err = arch_init_kprobes(); 2791 if (!err) 2792 err = register_die_notifier(&kprobe_exceptions_nb); 2793 if (!err) 2794 err = kprobe_register_module_notifier(); 2795 2796 kprobes_initialized = (err == 0); 2797 kprobe_sysctls_init(); 2798 return err; 2799 } 2800 early_initcall(init_kprobes); 2801 2802 #if defined(CONFIG_OPTPROBES) 2803 static int __init init_optprobes(void) 2804 { 2805 /* 2806 * Enable kprobe optimization - this kicks the optimizer which 2807 * depends on synchronize_rcu_tasks() and ksoftirqd, that is 2808 * not spawned in early initcall. So delay the optimization. 2809 */ 2810 optimize_all_kprobes(); 2811 2812 return 0; 2813 } 2814 subsys_initcall(init_optprobes); 2815 #endif 2816 2817 #ifdef CONFIG_DEBUG_FS 2818 static void report_probe(struct seq_file *pi, struct kprobe *p, 2819 const char *sym, int offset, char *modname, struct kprobe *pp) 2820 { 2821 char *kprobe_type; 2822 void *addr = p->addr; 2823 2824 if (p->pre_handler == pre_handler_kretprobe) 2825 kprobe_type = "r"; 2826 else 2827 kprobe_type = "k"; 2828 2829 if (!kallsyms_show_value(pi->file->f_cred)) 2830 addr = NULL; 2831 2832 if (sym) 2833 seq_printf(pi, "%px %s %s+0x%x %s ", 2834 addr, kprobe_type, sym, offset, 2835 (modname ? modname : " ")); 2836 else /* try to use %pS */ 2837 seq_printf(pi, "%px %s %pS ", 2838 addr, kprobe_type, p->addr); 2839 2840 if (!pp) 2841 pp = p; 2842 seq_printf(pi, "%s%s%s%s\n", 2843 (kprobe_gone(p) ? "[GONE]" : ""), 2844 ((kprobe_disabled(p) && !kprobe_gone(p)) ? "[DISABLED]" : ""), 2845 (kprobe_optimized(pp) ? "[OPTIMIZED]" : ""), 2846 (kprobe_ftrace(pp) ? "[FTRACE]" : "")); 2847 } 2848 2849 static void *kprobe_seq_start(struct seq_file *f, loff_t *pos) 2850 { 2851 return (*pos < KPROBE_TABLE_SIZE) ? pos : NULL; 2852 } 2853 2854 static void *kprobe_seq_next(struct seq_file *f, void *v, loff_t *pos) 2855 { 2856 (*pos)++; 2857 if (*pos >= KPROBE_TABLE_SIZE) 2858 return NULL; 2859 return pos; 2860 } 2861 2862 static void kprobe_seq_stop(struct seq_file *f, void *v) 2863 { 2864 /* Nothing to do */ 2865 } 2866 2867 static int show_kprobe_addr(struct seq_file *pi, void *v) 2868 { 2869 struct hlist_head *head; 2870 struct kprobe *p, *kp; 2871 const char *sym; 2872 unsigned int i = *(loff_t *) v; 2873 unsigned long offset = 0; 2874 char *modname, namebuf[KSYM_NAME_LEN]; 2875 2876 head = &kprobe_table[i]; 2877 preempt_disable(); 2878 hlist_for_each_entry_rcu(p, head, hlist) { 2879 sym = kallsyms_lookup((unsigned long)p->addr, NULL, 2880 &offset, &modname, namebuf); 2881 if (kprobe_aggrprobe(p)) { 2882 list_for_each_entry_rcu(kp, &p->list, list) 2883 report_probe(pi, kp, sym, offset, modname, p); 2884 } else 2885 report_probe(pi, p, sym, offset, modname, NULL); 2886 } 2887 preempt_enable(); 2888 return 0; 2889 } 2890 2891 static const struct seq_operations kprobes_sops = { 2892 .start = kprobe_seq_start, 2893 .next = kprobe_seq_next, 2894 .stop = kprobe_seq_stop, 2895 .show = show_kprobe_addr 2896 }; 2897 2898 DEFINE_SEQ_ATTRIBUTE(kprobes); 2899 2900 /* kprobes/blacklist -- shows which functions can not be probed */ 2901 static void *kprobe_blacklist_seq_start(struct seq_file *m, loff_t *pos) 2902 { 2903 mutex_lock(&kprobe_mutex); 2904 return seq_list_start(&kprobe_blacklist, *pos); 2905 } 2906 2907 static void *kprobe_blacklist_seq_next(struct seq_file *m, void *v, loff_t *pos) 2908 { 2909 return seq_list_next(v, &kprobe_blacklist, pos); 2910 } 2911 2912 static int kprobe_blacklist_seq_show(struct seq_file *m, void *v) 2913 { 2914 struct kprobe_blacklist_entry *ent = 2915 list_entry(v, struct kprobe_blacklist_entry, list); 2916 2917 /* 2918 * If '/proc/kallsyms' is not showing kernel address, we won't 2919 * show them here either. 2920 */ 2921 if (!kallsyms_show_value(m->file->f_cred)) 2922 seq_printf(m, "0x%px-0x%px\t%ps\n", NULL, NULL, 2923 (void *)ent->start_addr); 2924 else 2925 seq_printf(m, "0x%px-0x%px\t%ps\n", (void *)ent->start_addr, 2926 (void *)ent->end_addr, (void *)ent->start_addr); 2927 return 0; 2928 } 2929 2930 static void kprobe_blacklist_seq_stop(struct seq_file *f, void *v) 2931 { 2932 mutex_unlock(&kprobe_mutex); 2933 } 2934 2935 static const struct seq_operations kprobe_blacklist_sops = { 2936 .start = kprobe_blacklist_seq_start, 2937 .next = kprobe_blacklist_seq_next, 2938 .stop = kprobe_blacklist_seq_stop, 2939 .show = kprobe_blacklist_seq_show, 2940 }; 2941 DEFINE_SEQ_ATTRIBUTE(kprobe_blacklist); 2942 2943 static int arm_all_kprobes(void) 2944 { 2945 struct hlist_head *head; 2946 struct kprobe *p; 2947 unsigned int i, total = 0, errors = 0; 2948 int err, ret = 0; 2949 2950 guard(mutex)(&kprobe_mutex); 2951 2952 /* If kprobes are armed, just return */ 2953 if (!kprobes_all_disarmed) 2954 return 0; 2955 2956 /* 2957 * optimize_kprobe() called by arm_kprobe() checks 2958 * kprobes_all_disarmed, so set kprobes_all_disarmed before 2959 * arm_kprobe. 2960 */ 2961 kprobes_all_disarmed = false; 2962 /* Arming kprobes doesn't optimize kprobe itself */ 2963 for (i = 0; i < KPROBE_TABLE_SIZE; i++) { 2964 head = &kprobe_table[i]; 2965 /* Arm all kprobes on a best-effort basis */ 2966 hlist_for_each_entry(p, head, hlist) { 2967 if (!kprobe_disabled(p)) { 2968 err = arm_kprobe(p); 2969 if (err) { 2970 errors++; 2971 ret = err; 2972 } 2973 total++; 2974 } 2975 } 2976 } 2977 2978 if (errors) 2979 pr_warn("Kprobes globally enabled, but failed to enable %d out of %d probes. Please check which kprobes are kept disabled via debugfs.\n", 2980 errors, total); 2981 else 2982 pr_info("Kprobes globally enabled\n"); 2983 2984 return ret; 2985 } 2986 2987 static int disarm_all_kprobes(void) 2988 { 2989 struct hlist_head *head; 2990 struct kprobe *p; 2991 unsigned int i, total = 0, errors = 0; 2992 int err, ret = 0; 2993 2994 guard(mutex)(&kprobe_mutex); 2995 2996 /* If kprobes are already disarmed, just return */ 2997 if (kprobes_all_disarmed) 2998 return 0; 2999 3000 kprobes_all_disarmed = true; 3001 3002 for (i = 0; i < KPROBE_TABLE_SIZE; i++) { 3003 head = &kprobe_table[i]; 3004 /* Disarm all kprobes on a best-effort basis */ 3005 hlist_for_each_entry(p, head, hlist) { 3006 if (!arch_trampoline_kprobe(p) && !kprobe_disabled(p)) { 3007 err = disarm_kprobe(p, false); 3008 if (err) { 3009 errors++; 3010 ret = err; 3011 } 3012 total++; 3013 } 3014 } 3015 } 3016 3017 if (errors) 3018 pr_warn("Kprobes globally disabled, but failed to disable %d out of %d probes. Please check which kprobes are kept enabled via debugfs.\n", 3019 errors, total); 3020 else 3021 pr_info("Kprobes globally disabled\n"); 3022 3023 /* Wait for disarming all kprobes by optimizer */ 3024 wait_for_kprobe_optimizer_locked(); 3025 return ret; 3026 } 3027 3028 /* 3029 * XXX: The debugfs bool file interface doesn't allow for callbacks 3030 * when the bool state is switched. We can reuse that facility when 3031 * available 3032 */ 3033 static ssize_t read_enabled_file_bool(struct file *file, 3034 char __user *user_buf, size_t count, loff_t *ppos) 3035 { 3036 char buf[3]; 3037 3038 if (!kprobes_all_disarmed) 3039 buf[0] = '1'; 3040 else 3041 buf[0] = '0'; 3042 buf[1] = '\n'; 3043 buf[2] = 0x00; 3044 return simple_read_from_buffer(user_buf, count, ppos, buf, 2); 3045 } 3046 3047 static ssize_t write_enabled_file_bool(struct file *file, 3048 const char __user *user_buf, size_t count, loff_t *ppos) 3049 { 3050 bool enable; 3051 int ret; 3052 3053 ret = kstrtobool_from_user(user_buf, count, &enable); 3054 if (ret) 3055 return ret; 3056 3057 ret = enable ? arm_all_kprobes() : disarm_all_kprobes(); 3058 if (ret) 3059 return ret; 3060 3061 return count; 3062 } 3063 3064 static const struct file_operations fops_kp = { 3065 .read = read_enabled_file_bool, 3066 .write = write_enabled_file_bool, 3067 .llseek = default_llseek, 3068 }; 3069 3070 static int __init debugfs_kprobe_init(void) 3071 { 3072 struct dentry *dir; 3073 3074 dir = debugfs_create_dir("kprobes", NULL); 3075 3076 debugfs_create_file("list", 0400, dir, NULL, &kprobes_fops); 3077 3078 debugfs_create_file("enabled", 0600, dir, NULL, &fops_kp); 3079 3080 debugfs_create_file("blacklist", 0400, dir, NULL, 3081 &kprobe_blacklist_fops); 3082 3083 return 0; 3084 } 3085 3086 late_initcall(debugfs_kprobe_init); 3087 #endif /* CONFIG_DEBUG_FS */ 3088