kprobes.c 15 KB

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  1. /*
  2. * Kernel probes (kprobes) for SuperH
  3. *
  4. * Copyright (C) 2007 Chris Smith <chris.smith@st.com>
  5. * Copyright (C) 2006 Lineo Solutions, Inc.
  6. *
  7. * This file is subject to the terms and conditions of the GNU General Public
  8. * License. See the file "COPYING" in the main directory of this archive
  9. * for more details.
  10. */
  11. #include <linux/kprobes.h>
  12. #include <linux/module.h>
  13. #include <linux/ptrace.h>
  14. #include <linux/preempt.h>
  15. #include <linux/kdebug.h>
  16. #include <asm/cacheflush.h>
  17. #include <asm/uaccess.h>
  18. DEFINE_PER_CPU(struct kprobe *, current_kprobe) = NULL;
  19. DEFINE_PER_CPU(struct kprobe_ctlblk, kprobe_ctlblk);
  20. static struct kprobe saved_current_opcode;
  21. static struct kprobe saved_next_opcode;
  22. static struct kprobe saved_next_opcode2;
  23. #define OPCODE_JMP(x) (((x) & 0xF0FF) == 0x402b)
  24. #define OPCODE_JSR(x) (((x) & 0xF0FF) == 0x400b)
  25. #define OPCODE_BRA(x) (((x) & 0xF000) == 0xa000)
  26. #define OPCODE_BRAF(x) (((x) & 0xF0FF) == 0x0023)
  27. #define OPCODE_BSR(x) (((x) & 0xF000) == 0xb000)
  28. #define OPCODE_BSRF(x) (((x) & 0xF0FF) == 0x0003)
  29. #define OPCODE_BF_S(x) (((x) & 0xFF00) == 0x8f00)
  30. #define OPCODE_BT_S(x) (((x) & 0xFF00) == 0x8d00)
  31. #define OPCODE_BF(x) (((x) & 0xFF00) == 0x8b00)
  32. #define OPCODE_BT(x) (((x) & 0xFF00) == 0x8900)
  33. #define OPCODE_RTS(x) (((x) & 0x000F) == 0x000b)
  34. #define OPCODE_RTE(x) (((x) & 0xFFFF) == 0x002b)
  35. int __kprobes arch_prepare_kprobe(struct kprobe *p)
  36. {
  37. kprobe_opcode_t opcode = *(kprobe_opcode_t *) (p->addr);
  38. if (OPCODE_RTE(opcode))
  39. return -EFAULT; /* Bad breakpoint */
  40. p->opcode = opcode;
  41. return 0;
  42. }
  43. void __kprobes arch_copy_kprobe(struct kprobe *p)
  44. {
  45. memcpy(p->ainsn.insn, p->addr, MAX_INSN_SIZE * sizeof(kprobe_opcode_t));
  46. p->opcode = *p->addr;
  47. }
  48. void __kprobes arch_arm_kprobe(struct kprobe *p)
  49. {
  50. *p->addr = BREAKPOINT_INSTRUCTION;
  51. flush_icache_range((unsigned long)p->addr,
  52. (unsigned long)p->addr + sizeof(kprobe_opcode_t));
  53. }
  54. void __kprobes arch_disarm_kprobe(struct kprobe *p)
  55. {
  56. *p->addr = p->opcode;
  57. flush_icache_range((unsigned long)p->addr,
  58. (unsigned long)p->addr + sizeof(kprobe_opcode_t));
  59. }
  60. int __kprobes arch_trampoline_kprobe(struct kprobe *p)
  61. {
  62. if (*p->addr == BREAKPOINT_INSTRUCTION)
  63. return 1;
  64. return 0;
  65. }
  66. /**
  67. * If an illegal slot instruction exception occurs for an address
  68. * containing a kprobe, remove the probe.
  69. *
  70. * Returns 0 if the exception was handled successfully, 1 otherwise.
  71. */
  72. int __kprobes kprobe_handle_illslot(unsigned long pc)
  73. {
  74. struct kprobe *p = get_kprobe((kprobe_opcode_t *) pc + 1);
  75. if (p != NULL) {
  76. printk("Warning: removing kprobe from delay slot: 0x%.8x\n",
  77. (unsigned int)pc + 2);
  78. unregister_kprobe(p);
  79. return 0;
  80. }
  81. return 1;
  82. }
  83. void __kprobes arch_remove_kprobe(struct kprobe *p)
  84. {
  85. if (saved_next_opcode.addr != 0x0) {
  86. arch_disarm_kprobe(p);
  87. arch_disarm_kprobe(&saved_next_opcode);
  88. saved_next_opcode.addr = 0x0;
  89. saved_next_opcode.opcode = 0x0;
  90. if (saved_next_opcode2.addr != 0x0) {
  91. arch_disarm_kprobe(&saved_next_opcode2);
  92. saved_next_opcode2.addr = 0x0;
  93. saved_next_opcode2.opcode = 0x0;
  94. }
  95. }
  96. }
  97. static inline void save_previous_kprobe(struct kprobe_ctlblk *kcb)
  98. {
  99. kcb->prev_kprobe.kp = kprobe_running();
  100. kcb->prev_kprobe.status = kcb->kprobe_status;
  101. }
  102. static inline void restore_previous_kprobe(struct kprobe_ctlblk *kcb)
  103. {
  104. __get_cpu_var(current_kprobe) = kcb->prev_kprobe.kp;
  105. kcb->kprobe_status = kcb->prev_kprobe.status;
  106. }
  107. static inline void set_current_kprobe(struct kprobe *p, struct pt_regs *regs,
  108. struct kprobe_ctlblk *kcb)
  109. {
  110. __get_cpu_var(current_kprobe) = p;
  111. }
  112. /*
  113. * Singlestep is implemented by disabling the current kprobe and setting one
  114. * on the next instruction, following branches. Two probes are set if the
  115. * branch is conditional.
  116. */
  117. static inline void prepare_singlestep(struct kprobe *p, struct pt_regs *regs)
  118. {
  119. kprobe_opcode_t *addr = NULL;
  120. saved_current_opcode.addr = (kprobe_opcode_t *) (regs->pc);
  121. addr = saved_current_opcode.addr;
  122. if (p != NULL) {
  123. arch_disarm_kprobe(p);
  124. if (OPCODE_JSR(p->opcode) || OPCODE_JMP(p->opcode)) {
  125. unsigned int reg_nr = ((p->opcode >> 8) & 0x000F);
  126. saved_next_opcode.addr =
  127. (kprobe_opcode_t *) regs->regs[reg_nr];
  128. } else if (OPCODE_BRA(p->opcode) || OPCODE_BSR(p->opcode)) {
  129. unsigned long disp = (p->opcode & 0x0FFF);
  130. saved_next_opcode.addr =
  131. (kprobe_opcode_t *) (regs->pc + 4 + disp * 2);
  132. } else if (OPCODE_BRAF(p->opcode) || OPCODE_BSRF(p->opcode)) {
  133. unsigned int reg_nr = ((p->opcode >> 8) & 0x000F);
  134. saved_next_opcode.addr =
  135. (kprobe_opcode_t *) (regs->pc + 4 +
  136. regs->regs[reg_nr]);
  137. } else if (OPCODE_RTS(p->opcode)) {
  138. saved_next_opcode.addr = (kprobe_opcode_t *) regs->pr;
  139. } else if (OPCODE_BF(p->opcode) || OPCODE_BT(p->opcode)) {
  140. unsigned long disp = (p->opcode & 0x00FF);
  141. /* case 1 */
  142. saved_next_opcode.addr = p->addr + 1;
  143. /* case 2 */
  144. saved_next_opcode2.addr =
  145. (kprobe_opcode_t *) (regs->pc + 4 + disp * 2);
  146. saved_next_opcode2.opcode = *(saved_next_opcode2.addr);
  147. arch_arm_kprobe(&saved_next_opcode2);
  148. } else if (OPCODE_BF_S(p->opcode) || OPCODE_BT_S(p->opcode)) {
  149. unsigned long disp = (p->opcode & 0x00FF);
  150. /* case 1 */
  151. saved_next_opcode.addr = p->addr + 2;
  152. /* case 2 */
  153. saved_next_opcode2.addr =
  154. (kprobe_opcode_t *) (regs->pc + 4 + disp * 2);
  155. saved_next_opcode2.opcode = *(saved_next_opcode2.addr);
  156. arch_arm_kprobe(&saved_next_opcode2);
  157. } else {
  158. saved_next_opcode.addr = p->addr + 1;
  159. }
  160. saved_next_opcode.opcode = *(saved_next_opcode.addr);
  161. arch_arm_kprobe(&saved_next_opcode);
  162. }
  163. }
  164. /* Called with kretprobe_lock held */
  165. void __kprobes arch_prepare_kretprobe(struct kretprobe_instance *ri,
  166. struct pt_regs *regs)
  167. {
  168. ri->ret_addr = (kprobe_opcode_t *) regs->pr;
  169. /* Replace the return addr with trampoline addr */
  170. regs->pr = (unsigned long)kretprobe_trampoline;
  171. }
  172. static int __kprobes kprobe_handler(struct pt_regs *regs)
  173. {
  174. struct kprobe *p;
  175. int ret = 0;
  176. kprobe_opcode_t *addr = NULL;
  177. struct kprobe_ctlblk *kcb;
  178. /*
  179. * We don't want to be preempted for the entire
  180. * duration of kprobe processing
  181. */
  182. preempt_disable();
  183. kcb = get_kprobe_ctlblk();
  184. addr = (kprobe_opcode_t *) (regs->pc);
  185. /* Check we're not actually recursing */
  186. if (kprobe_running()) {
  187. p = get_kprobe(addr);
  188. if (p) {
  189. if (kcb->kprobe_status == KPROBE_HIT_SS &&
  190. *p->ainsn.insn == BREAKPOINT_INSTRUCTION) {
  191. goto no_kprobe;
  192. }
  193. /* We have reentered the kprobe_handler(), since
  194. * another probe was hit while within the handler.
  195. * We here save the original kprobes variables and
  196. * just single step on the instruction of the new probe
  197. * without calling any user handlers.
  198. */
  199. save_previous_kprobe(kcb);
  200. set_current_kprobe(p, regs, kcb);
  201. kprobes_inc_nmissed_count(p);
  202. prepare_singlestep(p, regs);
  203. kcb->kprobe_status = KPROBE_REENTER;
  204. return 1;
  205. } else {
  206. p = __get_cpu_var(current_kprobe);
  207. if (p->break_handler && p->break_handler(p, regs)) {
  208. goto ss_probe;
  209. }
  210. }
  211. goto no_kprobe;
  212. }
  213. p = get_kprobe(addr);
  214. if (!p) {
  215. /* Not one of ours: let kernel handle it */
  216. goto no_kprobe;
  217. }
  218. set_current_kprobe(p, regs, kcb);
  219. kcb->kprobe_status = KPROBE_HIT_ACTIVE;
  220. if (p->pre_handler && p->pre_handler(p, regs))
  221. /* handler has already set things up, so skip ss setup */
  222. return 1;
  223. ss_probe:
  224. prepare_singlestep(p, regs);
  225. kcb->kprobe_status = KPROBE_HIT_SS;
  226. return 1;
  227. no_kprobe:
  228. preempt_enable_no_resched();
  229. return ret;
  230. }
  231. /*
  232. * For function-return probes, init_kprobes() establishes a probepoint
  233. * here. When a retprobed function returns, this probe is hit and
  234. * trampoline_probe_handler() runs, calling the kretprobe's handler.
  235. */
  236. void kretprobe_trampoline_holder(void)
  237. {
  238. asm volatile ("kretprobe_trampoline: \n" "nop\n");
  239. }
  240. /*
  241. * Called when we hit the probe point at kretprobe_trampoline
  242. */
  243. int __kprobes trampoline_probe_handler(struct kprobe *p, struct pt_regs *regs)
  244. {
  245. struct kretprobe_instance *ri = NULL;
  246. struct hlist_head *head, empty_rp;
  247. struct hlist_node *node, *tmp;
  248. unsigned long flags, orig_ret_address = 0;
  249. unsigned long trampoline_address = (unsigned long)&kretprobe_trampoline;
  250. INIT_HLIST_HEAD(&empty_rp);
  251. kretprobe_hash_lock(current, &head, &flags);
  252. /*
  253. * It is possible to have multiple instances associated with a given
  254. * task either because an multiple functions in the call path
  255. * have a return probe installed on them, and/or more then one return
  256. * return probe was registered for a target function.
  257. *
  258. * We can handle this because:
  259. * - instances are always inserted at the head of the list
  260. * - when multiple return probes are registered for the same
  261. * function, the first instance's ret_addr will point to the
  262. * real return address, and all the rest will point to
  263. * kretprobe_trampoline
  264. */
  265. hlist_for_each_entry_safe(ri, node, tmp, head, hlist) {
  266. if (ri->task != current)
  267. /* another task is sharing our hash bucket */
  268. continue;
  269. if (ri->rp && ri->rp->handler) {
  270. __get_cpu_var(current_kprobe) = &ri->rp->kp;
  271. ri->rp->handler(ri, regs);
  272. __get_cpu_var(current_kprobe) = NULL;
  273. }
  274. orig_ret_address = (unsigned long)ri->ret_addr;
  275. recycle_rp_inst(ri, &empty_rp);
  276. if (orig_ret_address != trampoline_address)
  277. /*
  278. * This is the real return address. Any other
  279. * instances associated with this task are for
  280. * other calls deeper on the call stack
  281. */
  282. break;
  283. }
  284. kretprobe_assert(ri, orig_ret_address, trampoline_address);
  285. regs->pc = orig_ret_address;
  286. kretprobe_hash_unlock(current, &flags);
  287. preempt_enable_no_resched();
  288. hlist_for_each_entry_safe(ri, node, tmp, &empty_rp, hlist) {
  289. hlist_del(&ri->hlist);
  290. kfree(ri);
  291. }
  292. return orig_ret_address;
  293. }
  294. static inline int post_kprobe_handler(struct pt_regs *regs)
  295. {
  296. struct kprobe *cur = kprobe_running();
  297. struct kprobe_ctlblk *kcb = get_kprobe_ctlblk();
  298. kprobe_opcode_t *addr = NULL;
  299. struct kprobe *p = NULL;
  300. if (!cur)
  301. return 0;
  302. if ((kcb->kprobe_status != KPROBE_REENTER) && cur->post_handler) {
  303. kcb->kprobe_status = KPROBE_HIT_SSDONE;
  304. cur->post_handler(cur, regs, 0);
  305. }
  306. if (saved_next_opcode.addr != 0x0) {
  307. arch_disarm_kprobe(&saved_next_opcode);
  308. saved_next_opcode.addr = 0x0;
  309. saved_next_opcode.opcode = 0x0;
  310. addr = saved_current_opcode.addr;
  311. saved_current_opcode.addr = 0x0;
  312. p = get_kprobe(addr);
  313. arch_arm_kprobe(p);
  314. if (saved_next_opcode2.addr != 0x0) {
  315. arch_disarm_kprobe(&saved_next_opcode2);
  316. saved_next_opcode2.addr = 0x0;
  317. saved_next_opcode2.opcode = 0x0;
  318. }
  319. }
  320. /*Restore back the original saved kprobes variables and continue. */
  321. if (kcb->kprobe_status == KPROBE_REENTER) {
  322. restore_previous_kprobe(kcb);
  323. goto out;
  324. }
  325. reset_current_kprobe();
  326. out:
  327. preempt_enable_no_resched();
  328. return 1;
  329. }
  330. static inline int kprobe_fault_handler(struct pt_regs *regs, int trapnr)
  331. {
  332. struct kprobe *cur = kprobe_running();
  333. struct kprobe_ctlblk *kcb = get_kprobe_ctlblk();
  334. const struct exception_table_entry *entry;
  335. switch (kcb->kprobe_status) {
  336. case KPROBE_HIT_SS:
  337. case KPROBE_REENTER:
  338. /*
  339. * We are here because the instruction being single
  340. * stepped caused a page fault. We reset the current
  341. * kprobe, point the pc back to the probe address
  342. * and allow the page fault handler to continue as a
  343. * normal page fault.
  344. */
  345. regs->pc = (unsigned long)cur->addr;
  346. if (kcb->kprobe_status == KPROBE_REENTER)
  347. restore_previous_kprobe(kcb);
  348. else
  349. reset_current_kprobe();
  350. preempt_enable_no_resched();
  351. break;
  352. case KPROBE_HIT_ACTIVE:
  353. case KPROBE_HIT_SSDONE:
  354. /*
  355. * We increment the nmissed count for accounting,
  356. * we can also use npre/npostfault count for accounting
  357. * these specific fault cases.
  358. */
  359. kprobes_inc_nmissed_count(cur);
  360. /*
  361. * We come here because instructions in the pre/post
  362. * handler caused the page_fault, this could happen
  363. * if handler tries to access user space by
  364. * copy_from_user(), get_user() etc. Let the
  365. * user-specified handler try to fix it first.
  366. */
  367. if (cur->fault_handler && cur->fault_handler(cur, regs, trapnr))
  368. return 1;
  369. /*
  370. * In case the user-specified fault handler returned
  371. * zero, try to fix up.
  372. */
  373. if ((entry = search_exception_tables(regs->pc)) != NULL) {
  374. regs->pc = entry->fixup;
  375. return 1;
  376. }
  377. /*
  378. * fixup_exception() could not handle it,
  379. * Let do_page_fault() fix it.
  380. */
  381. break;
  382. default:
  383. break;
  384. }
  385. return 0;
  386. }
  387. /*
  388. * Wrapper routine to for handling exceptions.
  389. */
  390. int __kprobes kprobe_exceptions_notify(struct notifier_block *self,
  391. unsigned long val, void *data)
  392. {
  393. struct kprobe *p = NULL;
  394. struct die_args *args = (struct die_args *)data;
  395. int ret = NOTIFY_DONE;
  396. kprobe_opcode_t *addr = NULL;
  397. struct kprobe_ctlblk *kcb = get_kprobe_ctlblk();
  398. addr = (kprobe_opcode_t *) (args->regs->pc);
  399. if (val == DIE_TRAP) {
  400. if (!kprobe_running()) {
  401. if (kprobe_handler(args->regs)) {
  402. ret = NOTIFY_STOP;
  403. } else {
  404. /* Not a kprobe trap */
  405. force_sig(SIGTRAP, current);
  406. }
  407. } else {
  408. p = get_kprobe(addr);
  409. if ((kcb->kprobe_status == KPROBE_HIT_SS) ||
  410. (kcb->kprobe_status == KPROBE_REENTER)) {
  411. if (post_kprobe_handler(args->regs))
  412. ret = NOTIFY_STOP;
  413. } else {
  414. if (kprobe_handler(args->regs)) {
  415. ret = NOTIFY_STOP;
  416. } else {
  417. p = __get_cpu_var(current_kprobe);
  418. if (p->break_handler
  419. && p->break_handler(p, args->regs))
  420. ret = NOTIFY_STOP;
  421. }
  422. }
  423. }
  424. }
  425. return ret;
  426. }
  427. int __kprobes setjmp_pre_handler(struct kprobe *p, struct pt_regs *regs)
  428. {
  429. struct jprobe *jp = container_of(p, struct jprobe, kp);
  430. unsigned long addr;
  431. struct kprobe_ctlblk *kcb = get_kprobe_ctlblk();
  432. kcb->jprobe_saved_regs = *regs;
  433. kcb->jprobe_saved_r15 = regs->regs[15];
  434. addr = kcb->jprobe_saved_r15;
  435. /*
  436. * TBD: As Linus pointed out, gcc assumes that the callee
  437. * owns the argument space and could overwrite it, e.g.
  438. * tailcall optimization. So, to be absolutely safe
  439. * we also save and restore enough stack bytes to cover
  440. * the argument area.
  441. */
  442. memcpy(kcb->jprobes_stack, (kprobe_opcode_t *) addr,
  443. MIN_STACK_SIZE(addr));
  444. regs->pc = (unsigned long)(jp->entry);
  445. return 1;
  446. }
  447. void __kprobes jprobe_return(void)
  448. {
  449. __asm("trapa #-1\n\t" "jprobe_return_end:\n\t" "nop\n\t");
  450. }
  451. int __kprobes longjmp_break_handler(struct kprobe *p, struct pt_regs *regs)
  452. {
  453. struct kprobe_ctlblk *kcb = get_kprobe_ctlblk();
  454. u8 *addr = (u8 *) regs->pc;
  455. unsigned long stack_addr = kcb->jprobe_saved_r15;
  456. if ((addr >= (u8 *) jprobe_return)
  457. && (addr <= (u8 *) jprobe_return_end)) {
  458. *regs = kcb->jprobe_saved_regs;
  459. memcpy((kprobe_opcode_t *) stack_addr, kcb->jprobes_stack,
  460. MIN_STACK_SIZE(stack_addr));
  461. kcb->kprobe_status = KPROBE_HIT_SS;
  462. return 1;
  463. }
  464. return 0;
  465. }
  466. static struct kprobe trampoline_p = {
  467. .addr = (kprobe_opcode_t *) &kretprobe_trampoline,
  468. .pre_handler = trampoline_probe_handler
  469. };
  470. int __init arch_init_kprobes(void)
  471. {
  472. saved_next_opcode.addr = 0x0;
  473. saved_next_opcode.opcode = 0x0;
  474. saved_current_opcode.addr = 0x0;
  475. saved_current_opcode.opcode = 0x0;
  476. saved_next_opcode2.addr = 0x0;
  477. saved_next_opcode2.opcode = 0x0;
  478. return register_kprobe(&trampoline_p);
  479. }