fault.c 25 KB

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  1. /*
  2. * Copyright (C) 1995 Linus Torvalds
  3. * Copyright (C) 2001,2002 Andi Kleen, SuSE Labs.
  4. */
  5. #include <linux/signal.h>
  6. #include <linux/sched.h>
  7. #include <linux/kernel.h>
  8. #include <linux/errno.h>
  9. #include <linux/string.h>
  10. #include <linux/types.h>
  11. #include <linux/ptrace.h>
  12. #include <linux/mman.h>
  13. #include <linux/mm.h>
  14. #include <linux/smp.h>
  15. #include <linux/interrupt.h>
  16. #include <linux/init.h>
  17. #include <linux/tty.h>
  18. #include <linux/vt_kern.h> /* For unblank_screen() */
  19. #include <linux/compiler.h>
  20. #include <linux/highmem.h>
  21. #include <linux/bootmem.h> /* for max_low_pfn */
  22. #include <linux/vmalloc.h>
  23. #include <linux/module.h>
  24. #include <linux/kprobes.h>
  25. #include <linux/uaccess.h>
  26. #include <linux/kdebug.h>
  27. #include <asm/system.h>
  28. #include <asm/desc.h>
  29. #include <asm/segment.h>
  30. #include <asm/pgalloc.h>
  31. #include <asm/smp.h>
  32. #include <asm/tlbflush.h>
  33. #include <asm/proto.h>
  34. #include <asm-generic/sections.h>
  35. /*
  36. * Page fault error code bits
  37. * bit 0 == 0 means no page found, 1 means protection fault
  38. * bit 1 == 0 means read, 1 means write
  39. * bit 2 == 0 means kernel, 1 means user-mode
  40. * bit 3 == 1 means use of reserved bit detected
  41. * bit 4 == 1 means fault was an instruction fetch
  42. */
  43. #define PF_PROT (1<<0)
  44. #define PF_WRITE (1<<1)
  45. #define PF_USER (1<<2)
  46. #define PF_RSVD (1<<3)
  47. #define PF_INSTR (1<<4)
  48. static inline int notify_page_fault(struct pt_regs *regs)
  49. {
  50. #ifdef CONFIG_KPROBES
  51. int ret = 0;
  52. /* kprobe_running() needs smp_processor_id() */
  53. #ifdef CONFIG_X86_32
  54. if (!user_mode_vm(regs)) {
  55. #else
  56. if (!user_mode(regs)) {
  57. #endif
  58. preempt_disable();
  59. if (kprobe_running() && kprobe_fault_handler(regs, 14))
  60. ret = 1;
  61. preempt_enable();
  62. }
  63. return ret;
  64. #else
  65. return 0;
  66. #endif
  67. }
  68. /*
  69. * X86_32
  70. * Sometimes AMD Athlon/Opteron CPUs report invalid exceptions on prefetch.
  71. * Check that here and ignore it.
  72. *
  73. * X86_64
  74. * Sometimes the CPU reports invalid exceptions on prefetch.
  75. * Check that here and ignore it.
  76. *
  77. * Opcode checker based on code by Richard Brunner
  78. */
  79. static int is_prefetch(struct pt_regs *regs, unsigned long addr,
  80. unsigned long error_code)
  81. {
  82. unsigned char *instr;
  83. int scan_more = 1;
  84. int prefetch = 0;
  85. unsigned char *max_instr;
  86. #ifdef CONFIG_X86_32
  87. if (!(__supported_pte_mask & _PAGE_NX))
  88. return 0;
  89. #endif
  90. /* If it was a exec fault on NX page, ignore */
  91. if (error_code & PF_INSTR)
  92. return 0;
  93. instr = (unsigned char *)convert_ip_to_linear(current, regs);
  94. max_instr = instr + 15;
  95. if (user_mode(regs) && instr >= (unsigned char *)TASK_SIZE)
  96. return 0;
  97. while (scan_more && instr < max_instr) {
  98. unsigned char opcode;
  99. unsigned char instr_hi;
  100. unsigned char instr_lo;
  101. if (probe_kernel_address(instr, opcode))
  102. break;
  103. instr_hi = opcode & 0xf0;
  104. instr_lo = opcode & 0x0f;
  105. instr++;
  106. switch (instr_hi) {
  107. case 0x20:
  108. case 0x30:
  109. /*
  110. * Values 0x26,0x2E,0x36,0x3E are valid x86 prefixes.
  111. * In X86_64 long mode, the CPU will signal invalid
  112. * opcode if some of these prefixes are present so
  113. * X86_64 will never get here anyway
  114. */
  115. scan_more = ((instr_lo & 7) == 0x6);
  116. break;
  117. #ifdef CONFIG_X86_64
  118. case 0x40:
  119. /*
  120. * In AMD64 long mode 0x40..0x4F are valid REX prefixes
  121. * Need to figure out under what instruction mode the
  122. * instruction was issued. Could check the LDT for lm,
  123. * but for now it's good enough to assume that long
  124. * mode only uses well known segments or kernel.
  125. */
  126. scan_more = (!user_mode(regs)) || (regs->cs == __USER_CS);
  127. break;
  128. #endif
  129. case 0x60:
  130. /* 0x64 thru 0x67 are valid prefixes in all modes. */
  131. scan_more = (instr_lo & 0xC) == 0x4;
  132. break;
  133. case 0xF0:
  134. /* 0xF0, 0xF2, 0xF3 are valid prefixes in all modes. */
  135. scan_more = !instr_lo || (instr_lo>>1) == 1;
  136. break;
  137. case 0x00:
  138. /* Prefetch instruction is 0x0F0D or 0x0F18 */
  139. scan_more = 0;
  140. if (probe_kernel_address(instr, opcode))
  141. break;
  142. prefetch = (instr_lo == 0xF) &&
  143. (opcode == 0x0D || opcode == 0x18);
  144. break;
  145. default:
  146. scan_more = 0;
  147. break;
  148. }
  149. }
  150. return prefetch;
  151. }
  152. static void force_sig_info_fault(int si_signo, int si_code,
  153. unsigned long address, struct task_struct *tsk)
  154. {
  155. siginfo_t info;
  156. info.si_signo = si_signo;
  157. info.si_errno = 0;
  158. info.si_code = si_code;
  159. info.si_addr = (void __user *)address;
  160. force_sig_info(si_signo, &info, tsk);
  161. }
  162. #ifdef CONFIG_X86_64
  163. static int bad_address(void *p)
  164. {
  165. unsigned long dummy;
  166. return probe_kernel_address((unsigned long *)p, dummy);
  167. }
  168. #endif
  169. void dump_pagetable(unsigned long address)
  170. {
  171. #ifdef CONFIG_X86_32
  172. __typeof__(pte_val(__pte(0))) page;
  173. page = read_cr3();
  174. page = ((__typeof__(page) *) __va(page))[address >> PGDIR_SHIFT];
  175. #ifdef CONFIG_X86_PAE
  176. printk("*pdpt = %016Lx ", page);
  177. if ((page >> PAGE_SHIFT) < max_low_pfn
  178. && page & _PAGE_PRESENT) {
  179. page &= PAGE_MASK;
  180. page = ((__typeof__(page) *) __va(page))[(address >> PMD_SHIFT)
  181. & (PTRS_PER_PMD - 1)];
  182. printk(KERN_CONT "*pde = %016Lx ", page);
  183. page &= ~_PAGE_NX;
  184. }
  185. #else
  186. printk("*pde = %08lx ", page);
  187. #endif
  188. /*
  189. * We must not directly access the pte in the highpte
  190. * case if the page table is located in highmem.
  191. * And let's rather not kmap-atomic the pte, just in case
  192. * it's allocated already.
  193. */
  194. if ((page >> PAGE_SHIFT) < max_low_pfn
  195. && (page & _PAGE_PRESENT)
  196. && !(page & _PAGE_PSE)) {
  197. page &= PAGE_MASK;
  198. page = ((__typeof__(page) *) __va(page))[(address >> PAGE_SHIFT)
  199. & (PTRS_PER_PTE - 1)];
  200. printk("*pte = %0*Lx ", sizeof(page)*2, (u64)page);
  201. }
  202. printk("\n");
  203. #else /* CONFIG_X86_64 */
  204. pgd_t *pgd;
  205. pud_t *pud;
  206. pmd_t *pmd;
  207. pte_t *pte;
  208. pgd = (pgd_t *)read_cr3();
  209. pgd = __va((unsigned long)pgd & PHYSICAL_PAGE_MASK);
  210. pgd += pgd_index(address);
  211. if (bad_address(pgd)) goto bad;
  212. printk("PGD %lx ", pgd_val(*pgd));
  213. if (!pgd_present(*pgd)) goto ret;
  214. pud = pud_offset(pgd, address);
  215. if (bad_address(pud)) goto bad;
  216. printk("PUD %lx ", pud_val(*pud));
  217. if (!pud_present(*pud)) goto ret;
  218. pmd = pmd_offset(pud, address);
  219. if (bad_address(pmd)) goto bad;
  220. printk("PMD %lx ", pmd_val(*pmd));
  221. if (!pmd_present(*pmd) || pmd_large(*pmd)) goto ret;
  222. pte = pte_offset_kernel(pmd, address);
  223. if (bad_address(pte)) goto bad;
  224. printk("PTE %lx", pte_val(*pte));
  225. ret:
  226. printk("\n");
  227. return;
  228. bad:
  229. printk("BAD\n");
  230. #endif
  231. }
  232. #ifdef CONFIG_X86_32
  233. static inline pmd_t *vmalloc_sync_one(pgd_t *pgd, unsigned long address)
  234. {
  235. unsigned index = pgd_index(address);
  236. pgd_t *pgd_k;
  237. pud_t *pud, *pud_k;
  238. pmd_t *pmd, *pmd_k;
  239. pgd += index;
  240. pgd_k = init_mm.pgd + index;
  241. if (!pgd_present(*pgd_k))
  242. return NULL;
  243. /*
  244. * set_pgd(pgd, *pgd_k); here would be useless on PAE
  245. * and redundant with the set_pmd() on non-PAE. As would
  246. * set_pud.
  247. */
  248. pud = pud_offset(pgd, address);
  249. pud_k = pud_offset(pgd_k, address);
  250. if (!pud_present(*pud_k))
  251. return NULL;
  252. pmd = pmd_offset(pud, address);
  253. pmd_k = pmd_offset(pud_k, address);
  254. if (!pmd_present(*pmd_k))
  255. return NULL;
  256. if (!pmd_present(*pmd)) {
  257. set_pmd(pmd, *pmd_k);
  258. arch_flush_lazy_mmu_mode();
  259. } else
  260. BUG_ON(pmd_page(*pmd) != pmd_page(*pmd_k));
  261. return pmd_k;
  262. }
  263. #endif
  264. #ifdef CONFIG_X86_64
  265. static const char errata93_warning[] =
  266. KERN_ERR "******* Your BIOS seems to not contain a fix for K8 errata #93\n"
  267. KERN_ERR "******* Working around it, but it may cause SEGVs or burn power.\n"
  268. KERN_ERR "******* Please consider a BIOS update.\n"
  269. KERN_ERR "******* Disabling USB legacy in the BIOS may also help.\n";
  270. #endif
  271. /* Workaround for K8 erratum #93 & buggy BIOS.
  272. BIOS SMM functions are required to use a specific workaround
  273. to avoid corruption of the 64bit RIP register on C stepping K8.
  274. A lot of BIOS that didn't get tested properly miss this.
  275. The OS sees this as a page fault with the upper 32bits of RIP cleared.
  276. Try to work around it here.
  277. Note we only handle faults in kernel here.
  278. Does nothing for X86_32
  279. */
  280. static int is_errata93(struct pt_regs *regs, unsigned long address)
  281. {
  282. #ifdef CONFIG_X86_64
  283. static int warned;
  284. if (address != regs->ip)
  285. return 0;
  286. if ((address >> 32) != 0)
  287. return 0;
  288. address |= 0xffffffffUL << 32;
  289. if ((address >= (u64)_stext && address <= (u64)_etext) ||
  290. (address >= MODULES_VADDR && address <= MODULES_END)) {
  291. if (!warned) {
  292. printk(errata93_warning);
  293. warned = 1;
  294. }
  295. regs->ip = address;
  296. return 1;
  297. }
  298. #endif
  299. return 0;
  300. }
  301. /*
  302. * Work around K8 erratum #100 K8 in compat mode occasionally jumps to illegal
  303. * addresses >4GB. We catch this in the page fault handler because these
  304. * addresses are not reachable. Just detect this case and return. Any code
  305. * segment in LDT is compatibility mode.
  306. */
  307. static int is_errata100(struct pt_regs *regs, unsigned long address)
  308. {
  309. #ifdef CONFIG_X86_64
  310. if ((regs->cs == __USER32_CS || (regs->cs & (1<<2))) &&
  311. (address >> 32))
  312. return 1;
  313. #endif
  314. return 0;
  315. }
  316. void do_invalid_op(struct pt_regs *, unsigned long);
  317. static int is_f00f_bug(struct pt_regs *regs, unsigned long address)
  318. {
  319. #ifdef CONFIG_X86_F00F_BUG
  320. unsigned long nr;
  321. /*
  322. * Pentium F0 0F C7 C8 bug workaround.
  323. */
  324. if (boot_cpu_data.f00f_bug) {
  325. nr = (address - idt_descr.address) >> 3;
  326. if (nr == 6) {
  327. do_invalid_op(regs, 0);
  328. return 1;
  329. }
  330. }
  331. #endif
  332. return 0;
  333. }
  334. static void show_fault_oops(struct pt_regs *regs, unsigned long error_code,
  335. unsigned long address)
  336. {
  337. #ifdef CONFIG_X86_32
  338. if (!oops_may_print())
  339. return;
  340. #ifdef CONFIG_X86_PAE
  341. if (error_code & PF_INSTR) {
  342. int level;
  343. pte_t *pte = lookup_address(address, &level);
  344. if (pte && pte_present(*pte) && !pte_exec(*pte))
  345. printk(KERN_CRIT "kernel tried to execute "
  346. "NX-protected page - exploit attempt? "
  347. "(uid: %d)\n", current->uid);
  348. }
  349. #endif
  350. printk(KERN_ALERT "BUG: unable to handle kernel ");
  351. if (address < PAGE_SIZE)
  352. printk(KERN_CONT "NULL pointer dereference");
  353. else
  354. printk(KERN_CONT "paging request");
  355. printk(KERN_CONT " at %08lx\n", address);
  356. printk(KERN_ALERT "IP:");
  357. printk_address(regs->ip, 1);
  358. dump_pagetable(address);
  359. #else /* CONFIG_X86_64 */
  360. printk(KERN_ALERT "BUG: unable to handle kernel ");
  361. if (address < PAGE_SIZE)
  362. printk(KERN_CONT "NULL pointer dereference");
  363. else
  364. printk(KERN_CONT "paging request");
  365. printk(KERN_CONT " at %016lx\n", address);
  366. printk(KERN_ALERT "IP:");
  367. printk_address(regs->ip, 1);
  368. dump_pagetable(address);
  369. #endif
  370. }
  371. #ifdef CONFIG_X86_64
  372. static noinline void pgtable_bad(unsigned long address, struct pt_regs *regs,
  373. unsigned long error_code)
  374. {
  375. unsigned long flags = oops_begin();
  376. struct task_struct *tsk;
  377. printk(KERN_ALERT "%s: Corrupted page table at address %lx\n",
  378. current->comm, address);
  379. dump_pagetable(address);
  380. tsk = current;
  381. tsk->thread.cr2 = address;
  382. tsk->thread.trap_no = 14;
  383. tsk->thread.error_code = error_code;
  384. if (__die("Bad pagetable", regs, error_code))
  385. regs = NULL;
  386. oops_end(flags, regs, SIGKILL);
  387. }
  388. #endif
  389. /*
  390. * Handle a spurious fault caused by a stale TLB entry. This allows
  391. * us to lazily refresh the TLB when increasing the permissions of a
  392. * kernel page (RO -> RW or NX -> X). Doing it eagerly is very
  393. * expensive since that implies doing a full cross-processor TLB
  394. * flush, even if no stale TLB entries exist on other processors.
  395. * There are no security implications to leaving a stale TLB when
  396. * increasing the permissions on a page.
  397. */
  398. static int spurious_fault(unsigned long address,
  399. unsigned long error_code)
  400. {
  401. pgd_t *pgd;
  402. pud_t *pud;
  403. pmd_t *pmd;
  404. pte_t *pte;
  405. /* Reserved-bit violation or user access to kernel space? */
  406. if (error_code & (PF_USER | PF_RSVD))
  407. return 0;
  408. pgd = init_mm.pgd + pgd_index(address);
  409. if (!pgd_present(*pgd))
  410. return 0;
  411. pud = pud_offset(pgd, address);
  412. if (!pud_present(*pud))
  413. return 0;
  414. pmd = pmd_offset(pud, address);
  415. if (!pmd_present(*pmd))
  416. return 0;
  417. pte = pte_offset_kernel(pmd, address);
  418. if (!pte_present(*pte))
  419. return 0;
  420. if ((error_code & PF_WRITE) && !pte_write(*pte))
  421. return 0;
  422. if ((error_code & PF_INSTR) && !pte_exec(*pte))
  423. return 0;
  424. return 1;
  425. }
  426. /*
  427. * X86_32
  428. * Handle a fault on the vmalloc or module mapping area
  429. *
  430. * X86_64
  431. * Handle a fault on the vmalloc area
  432. *
  433. * This assumes no large pages in there.
  434. */
  435. static int vmalloc_fault(unsigned long address)
  436. {
  437. #ifdef CONFIG_X86_32
  438. unsigned long pgd_paddr;
  439. pmd_t *pmd_k;
  440. pte_t *pte_k;
  441. /*
  442. * Synchronize this task's top level page-table
  443. * with the 'reference' page table.
  444. *
  445. * Do _not_ use "current" here. We might be inside
  446. * an interrupt in the middle of a task switch..
  447. */
  448. pgd_paddr = read_cr3();
  449. pmd_k = vmalloc_sync_one(__va(pgd_paddr), address);
  450. if (!pmd_k)
  451. return -1;
  452. pte_k = pte_offset_kernel(pmd_k, address);
  453. if (!pte_present(*pte_k))
  454. return -1;
  455. return 0;
  456. #else
  457. pgd_t *pgd, *pgd_ref;
  458. pud_t *pud, *pud_ref;
  459. pmd_t *pmd, *pmd_ref;
  460. pte_t *pte, *pte_ref;
  461. /* Copy kernel mappings over when needed. This can also
  462. happen within a race in page table update. In the later
  463. case just flush. */
  464. pgd = pgd_offset(current->mm ?: &init_mm, address);
  465. pgd_ref = pgd_offset_k(address);
  466. if (pgd_none(*pgd_ref))
  467. return -1;
  468. if (pgd_none(*pgd))
  469. set_pgd(pgd, *pgd_ref);
  470. else
  471. BUG_ON(pgd_page_vaddr(*pgd) != pgd_page_vaddr(*pgd_ref));
  472. /* Below here mismatches are bugs because these lower tables
  473. are shared */
  474. pud = pud_offset(pgd, address);
  475. pud_ref = pud_offset(pgd_ref, address);
  476. if (pud_none(*pud_ref))
  477. return -1;
  478. if (pud_none(*pud) || pud_page_vaddr(*pud) != pud_page_vaddr(*pud_ref))
  479. BUG();
  480. pmd = pmd_offset(pud, address);
  481. pmd_ref = pmd_offset(pud_ref, address);
  482. if (pmd_none(*pmd_ref))
  483. return -1;
  484. if (pmd_none(*pmd) || pmd_page(*pmd) != pmd_page(*pmd_ref))
  485. BUG();
  486. pte_ref = pte_offset_kernel(pmd_ref, address);
  487. if (!pte_present(*pte_ref))
  488. return -1;
  489. pte = pte_offset_kernel(pmd, address);
  490. /* Don't use pte_page here, because the mappings can point
  491. outside mem_map, and the NUMA hash lookup cannot handle
  492. that. */
  493. if (!pte_present(*pte) || pte_pfn(*pte) != pte_pfn(*pte_ref))
  494. BUG();
  495. return 0;
  496. #endif
  497. }
  498. int show_unhandled_signals = 1;
  499. /*
  500. * This routine handles page faults. It determines the address,
  501. * and the problem, and then passes it off to one of the appropriate
  502. * routines.
  503. */
  504. #ifdef CONFIG_X86_64
  505. asmlinkage
  506. #endif
  507. void __kprobes do_page_fault(struct pt_regs *regs, unsigned long error_code)
  508. {
  509. struct task_struct *tsk;
  510. struct mm_struct *mm;
  511. struct vm_area_struct *vma;
  512. unsigned long address;
  513. int write, si_code;
  514. int fault;
  515. #ifdef CONFIG_X86_64
  516. unsigned long flags;
  517. #endif
  518. /*
  519. * We can fault from pretty much anywhere, with unknown IRQ state.
  520. */
  521. trace_hardirqs_fixup();
  522. tsk = current;
  523. mm = tsk->mm;
  524. prefetchw(&mm->mmap_sem);
  525. /* get the address */
  526. address = read_cr2();
  527. si_code = SEGV_MAPERR;
  528. if (notify_page_fault(regs))
  529. return;
  530. /*
  531. * We fault-in kernel-space virtual memory on-demand. The
  532. * 'reference' page table is init_mm.pgd.
  533. *
  534. * NOTE! We MUST NOT take any locks for this case. We may
  535. * be in an interrupt or a critical region, and should
  536. * only copy the information from the master page table,
  537. * nothing more.
  538. *
  539. * This verifies that the fault happens in kernel space
  540. * (error_code & 4) == 0, and that the fault was not a
  541. * protection error (error_code & 9) == 0.
  542. */
  543. #ifdef CONFIG_X86_32
  544. if (unlikely(address >= TASK_SIZE)) {
  545. if (!(error_code & (PF_RSVD|PF_USER|PF_PROT)) &&
  546. vmalloc_fault(address) >= 0)
  547. return;
  548. /* Can handle a stale RO->RW TLB */
  549. if (spurious_fault(address, error_code))
  550. return;
  551. /*
  552. * Don't take the mm semaphore here. If we fixup a prefetch
  553. * fault we could otherwise deadlock.
  554. */
  555. goto bad_area_nosemaphore;
  556. }
  557. /* It's safe to allow irq's after cr2 has been saved and the vmalloc
  558. fault has been handled. */
  559. if (regs->flags & (X86_EFLAGS_IF|VM_MASK))
  560. local_irq_enable();
  561. /*
  562. * If we're in an interrupt, have no user context or are running in an
  563. * atomic region then we must not take the fault.
  564. */
  565. if (in_atomic() || !mm)
  566. goto bad_area_nosemaphore;
  567. #else /* CONFIG_X86_64 */
  568. if (unlikely(address >= TASK_SIZE64)) {
  569. /*
  570. * Don't check for the module range here: its PML4
  571. * is always initialized because it's shared with the main
  572. * kernel text. Only vmalloc may need PML4 syncups.
  573. */
  574. if (!(error_code & (PF_RSVD|PF_USER|PF_PROT)) &&
  575. ((address >= VMALLOC_START && address < VMALLOC_END))) {
  576. if (vmalloc_fault(address) >= 0)
  577. return;
  578. }
  579. /* Can handle a stale RO->RW TLB */
  580. if (spurious_fault(address, error_code))
  581. return;
  582. /*
  583. * Don't take the mm semaphore here. If we fixup a prefetch
  584. * fault we could otherwise deadlock.
  585. */
  586. goto bad_area_nosemaphore;
  587. }
  588. if (likely(regs->flags & X86_EFLAGS_IF))
  589. local_irq_enable();
  590. if (unlikely(error_code & PF_RSVD))
  591. pgtable_bad(address, regs, error_code);
  592. /*
  593. * If we're in an interrupt, have no user context or are running in an
  594. * atomic region then we must not take the fault.
  595. */
  596. if (unlikely(in_atomic() || !mm))
  597. goto bad_area_nosemaphore;
  598. /*
  599. * User-mode registers count as a user access even for any
  600. * potential system fault or CPU buglet.
  601. */
  602. if (user_mode_vm(regs))
  603. error_code |= PF_USER;
  604. again:
  605. #endif
  606. /* When running in the kernel we expect faults to occur only to
  607. * addresses in user space. All other faults represent errors in the
  608. * kernel and should generate an OOPS. Unfortunately, in the case of an
  609. * erroneous fault occurring in a code path which already holds mmap_sem
  610. * we will deadlock attempting to validate the fault against the
  611. * address space. Luckily the kernel only validly references user
  612. * space from well defined areas of code, which are listed in the
  613. * exceptions table.
  614. *
  615. * As the vast majority of faults will be valid we will only perform
  616. * the source reference check when there is a possibility of a deadlock.
  617. * Attempt to lock the address space, if we cannot we then validate the
  618. * source. If this is invalid we can skip the address space check,
  619. * thus avoiding the deadlock.
  620. */
  621. if (!down_read_trylock(&mm->mmap_sem)) {
  622. if ((error_code & PF_USER) == 0 &&
  623. !search_exception_tables(regs->ip))
  624. goto bad_area_nosemaphore;
  625. down_read(&mm->mmap_sem);
  626. }
  627. vma = find_vma(mm, address);
  628. if (!vma)
  629. goto bad_area;
  630. #ifdef CONFIG_X86_32
  631. if (vma->vm_start <= address)
  632. #else
  633. if (likely(vma->vm_start <= address))
  634. #endif
  635. goto good_area;
  636. if (!(vma->vm_flags & VM_GROWSDOWN))
  637. goto bad_area;
  638. if (error_code & PF_USER) {
  639. /*
  640. * Accessing the stack below %sp is always a bug.
  641. * The large cushion allows instructions like enter
  642. * and pusha to work. ("enter $65535,$31" pushes
  643. * 32 pointers and then decrements %sp by 65535.)
  644. */
  645. if (address + 65536 + 32 * sizeof(unsigned long) < regs->sp)
  646. goto bad_area;
  647. }
  648. if (expand_stack(vma, address))
  649. goto bad_area;
  650. /*
  651. * Ok, we have a good vm_area for this memory access, so
  652. * we can handle it..
  653. */
  654. good_area:
  655. si_code = SEGV_ACCERR;
  656. write = 0;
  657. switch (error_code & (PF_PROT|PF_WRITE)) {
  658. default: /* 3: write, present */
  659. /* fall through */
  660. case PF_WRITE: /* write, not present */
  661. if (!(vma->vm_flags & VM_WRITE))
  662. goto bad_area;
  663. write++;
  664. break;
  665. case PF_PROT: /* read, present */
  666. goto bad_area;
  667. case 0: /* read, not present */
  668. if (!(vma->vm_flags & (VM_READ | VM_EXEC | VM_WRITE)))
  669. goto bad_area;
  670. }
  671. #ifdef CONFIG_X86_32
  672. survive:
  673. #endif
  674. /*
  675. * If for any reason at all we couldn't handle the fault,
  676. * make sure we exit gracefully rather than endlessly redo
  677. * the fault.
  678. */
  679. fault = handle_mm_fault(mm, vma, address, write);
  680. if (unlikely(fault & VM_FAULT_ERROR)) {
  681. if (fault & VM_FAULT_OOM)
  682. goto out_of_memory;
  683. else if (fault & VM_FAULT_SIGBUS)
  684. goto do_sigbus;
  685. BUG();
  686. }
  687. if (fault & VM_FAULT_MAJOR)
  688. tsk->maj_flt++;
  689. else
  690. tsk->min_flt++;
  691. #ifdef CONFIG_X86_32
  692. /*
  693. * Did it hit the DOS screen memory VA from vm86 mode?
  694. */
  695. if (v8086_mode(regs)) {
  696. unsigned long bit = (address - 0xA0000) >> PAGE_SHIFT;
  697. if (bit < 32)
  698. tsk->thread.screen_bitmap |= 1 << bit;
  699. }
  700. #endif
  701. up_read(&mm->mmap_sem);
  702. return;
  703. /*
  704. * Something tried to access memory that isn't in our memory map..
  705. * Fix it, but check if it's kernel or user first..
  706. */
  707. bad_area:
  708. up_read(&mm->mmap_sem);
  709. bad_area_nosemaphore:
  710. /* User mode accesses just cause a SIGSEGV */
  711. if (error_code & PF_USER) {
  712. /*
  713. * It's possible to have interrupts off here.
  714. */
  715. local_irq_enable();
  716. /*
  717. * Valid to do another page fault here because this one came
  718. * from user space.
  719. */
  720. if (is_prefetch(regs, address, error_code))
  721. return;
  722. if (is_errata100(regs, address))
  723. return;
  724. if (show_unhandled_signals && unhandled_signal(tsk, SIGSEGV) &&
  725. printk_ratelimit()) {
  726. printk(
  727. #ifdef CONFIG_X86_32
  728. "%s%s[%d]: segfault at %lx ip %08lx sp %08lx error %lx",
  729. #else
  730. "%s%s[%d]: segfault at %lx ip %lx sp %lx error %lx",
  731. #endif
  732. task_pid_nr(tsk) > 1 ? KERN_INFO : KERN_EMERG,
  733. tsk->comm, task_pid_nr(tsk), address, regs->ip,
  734. regs->sp, error_code);
  735. print_vma_addr(" in ", regs->ip);
  736. printk("\n");
  737. }
  738. tsk->thread.cr2 = address;
  739. /* Kernel addresses are always protection faults */
  740. tsk->thread.error_code = error_code | (address >= TASK_SIZE);
  741. tsk->thread.trap_no = 14;
  742. force_sig_info_fault(SIGSEGV, si_code, address, tsk);
  743. return;
  744. }
  745. if (is_f00f_bug(regs, address))
  746. return;
  747. no_context:
  748. /* Are we prepared to handle this kernel fault? */
  749. if (fixup_exception(regs))
  750. return;
  751. /*
  752. * X86_32
  753. * Valid to do another page fault here, because if this fault
  754. * had been triggered by is_prefetch fixup_exception would have
  755. * handled it.
  756. *
  757. * X86_64
  758. * Hall of shame of CPU/BIOS bugs.
  759. */
  760. if (is_prefetch(regs, address, error_code))
  761. return;
  762. if (is_errata93(regs, address))
  763. return;
  764. /*
  765. * Oops. The kernel tried to access some bad page. We'll have to
  766. * terminate things with extreme prejudice.
  767. */
  768. #ifdef CONFIG_X86_32
  769. bust_spinlocks(1);
  770. show_fault_oops(regs, error_code, address);
  771. tsk->thread.cr2 = address;
  772. tsk->thread.trap_no = 14;
  773. tsk->thread.error_code = error_code;
  774. die("Oops", regs, error_code);
  775. bust_spinlocks(0);
  776. do_exit(SIGKILL);
  777. #else /* CONFIG_X86_64 */
  778. flags = oops_begin();
  779. show_fault_oops(regs, error_code, address);
  780. tsk->thread.cr2 = address;
  781. tsk->thread.trap_no = 14;
  782. tsk->thread.error_code = error_code;
  783. if (__die("Oops", regs, error_code))
  784. regs = NULL;
  785. /* Executive summary in case the body of the oops scrolled away */
  786. printk(KERN_EMERG "CR2: %016lx\n", address);
  787. oops_end(flags, regs, SIGKILL);
  788. #endif
  789. /*
  790. * We ran out of memory, or some other thing happened to us that made
  791. * us unable to handle the page fault gracefully.
  792. */
  793. out_of_memory:
  794. up_read(&mm->mmap_sem);
  795. #ifdef CONFIG_X86_32
  796. if (is_global_init(tsk)) {
  797. yield();
  798. down_read(&mm->mmap_sem);
  799. goto survive;
  800. }
  801. #else
  802. if (is_global_init(current)) {
  803. yield();
  804. goto again;
  805. }
  806. #endif
  807. printk("VM: killing process %s\n", tsk->comm);
  808. if (error_code & PF_USER)
  809. do_group_exit(SIGKILL);
  810. goto no_context;
  811. do_sigbus:
  812. up_read(&mm->mmap_sem);
  813. /* Kernel mode? Handle exceptions or die */
  814. if (!(error_code & PF_USER))
  815. goto no_context;
  816. #ifdef CONFIG_X86_32
  817. /* User space => ok to do another page fault */
  818. if (is_prefetch(regs, address, error_code))
  819. return;
  820. #endif
  821. tsk->thread.cr2 = address;
  822. tsk->thread.error_code = error_code;
  823. tsk->thread.trap_no = 14;
  824. force_sig_info_fault(SIGBUS, BUS_ADRERR, address, tsk);
  825. }
  826. #ifdef CONFIG_X86_64
  827. DEFINE_SPINLOCK(pgd_lock);
  828. LIST_HEAD(pgd_list);
  829. #endif
  830. void vmalloc_sync_all(void)
  831. {
  832. #ifdef CONFIG_X86_32
  833. /*
  834. * Note that races in the updates of insync and start aren't
  835. * problematic: insync can only get set bits added, and updates to
  836. * start are only improving performance (without affecting correctness
  837. * if undone).
  838. */
  839. static DECLARE_BITMAP(insync, PTRS_PER_PGD);
  840. static unsigned long start = TASK_SIZE;
  841. unsigned long address;
  842. if (SHARED_KERNEL_PMD)
  843. return;
  844. BUILD_BUG_ON(TASK_SIZE & ~PGDIR_MASK);
  845. for (address = start; address >= TASK_SIZE; address += PGDIR_SIZE) {
  846. if (!test_bit(pgd_index(address), insync)) {
  847. unsigned long flags;
  848. struct page *page;
  849. spin_lock_irqsave(&pgd_lock, flags);
  850. for (page = pgd_list; page; page =
  851. (struct page *)page->index)
  852. if (!vmalloc_sync_one(page_address(page),
  853. address)) {
  854. BUG_ON(page != pgd_list);
  855. break;
  856. }
  857. spin_unlock_irqrestore(&pgd_lock, flags);
  858. if (!page)
  859. set_bit(pgd_index(address), insync);
  860. }
  861. if (address == start && test_bit(pgd_index(address), insync))
  862. start = address + PGDIR_SIZE;
  863. }
  864. #else /* CONFIG_X86_64 */
  865. /*
  866. * Note that races in the updates of insync and start aren't
  867. * problematic: insync can only get set bits added, and updates to
  868. * start are only improving performance (without affecting correctness
  869. * if undone).
  870. */
  871. static DECLARE_BITMAP(insync, PTRS_PER_PGD);
  872. static unsigned long start = VMALLOC_START & PGDIR_MASK;
  873. unsigned long address;
  874. for (address = start; address <= VMALLOC_END; address += PGDIR_SIZE) {
  875. if (!test_bit(pgd_index(address), insync)) {
  876. const pgd_t *pgd_ref = pgd_offset_k(address);
  877. struct page *page;
  878. if (pgd_none(*pgd_ref))
  879. continue;
  880. spin_lock(&pgd_lock);
  881. list_for_each_entry(page, &pgd_list, lru) {
  882. pgd_t *pgd;
  883. pgd = (pgd_t *)page_address(page) + pgd_index(address);
  884. if (pgd_none(*pgd))
  885. set_pgd(pgd, *pgd_ref);
  886. else
  887. BUG_ON(pgd_page_vaddr(*pgd) != pgd_page_vaddr(*pgd_ref));
  888. }
  889. spin_unlock(&pgd_lock);
  890. set_bit(pgd_index(address), insync);
  891. }
  892. if (address == start)
  893. start = address + PGDIR_SIZE;
  894. }
  895. /* Check that there is no need to do the same for the modules area. */
  896. BUILD_BUG_ON(!(MODULES_VADDR > __START_KERNEL));
  897. BUILD_BUG_ON(!(((MODULES_END - 1) & PGDIR_MASK) ==
  898. (__START_KERNEL & PGDIR_MASK)));
  899. #endif
  900. }