vm86_32.c 23 KB

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  1. /*
  2. * Copyright (C) 1994 Linus Torvalds
  3. *
  4. * 29 dec 2001 - Fixed oopses caused by unchecked access to the vm86
  5. * stack - Manfred Spraul <manfred@colorfullife.com>
  6. *
  7. * 22 mar 2002 - Manfred detected the stackfaults, but didn't handle
  8. * them correctly. Now the emulation will be in a
  9. * consistent state after stackfaults - Kasper Dupont
  10. * <kasperd@daimi.au.dk>
  11. *
  12. * 22 mar 2002 - Added missing clear_IF in set_vflags_* Kasper Dupont
  13. * <kasperd@daimi.au.dk>
  14. *
  15. * ?? ??? 2002 - Fixed premature returns from handle_vm86_fault
  16. * caused by Kasper Dupont's changes - Stas Sergeev
  17. *
  18. * 4 apr 2002 - Fixed CHECK_IF_IN_TRAP broken by Stas' changes.
  19. * Kasper Dupont <kasperd@daimi.au.dk>
  20. *
  21. * 9 apr 2002 - Changed syntax of macros in handle_vm86_fault.
  22. * Kasper Dupont <kasperd@daimi.au.dk>
  23. *
  24. * 9 apr 2002 - Changed stack access macros to jump to a label
  25. * instead of returning to userspace. This simplifies
  26. * do_int, and is needed by handle_vm6_fault. Kasper
  27. * Dupont <kasperd@daimi.au.dk>
  28. *
  29. */
  30. #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  31. #include <linux/capability.h>
  32. #include <linux/errno.h>
  33. #include <linux/interrupt.h>
  34. #include <linux/syscalls.h>
  35. #include <linux/sched.h>
  36. #include <linux/kernel.h>
  37. #include <linux/signal.h>
  38. #include <linux/string.h>
  39. #include <linux/mm.h>
  40. #include <linux/smp.h>
  41. #include <linux/highmem.h>
  42. #include <linux/ptrace.h>
  43. #include <linux/audit.h>
  44. #include <linux/stddef.h>
  45. #include <linux/slab.h>
  46. #include <linux/security.h>
  47. #include <asm/uaccess.h>
  48. #include <asm/io.h>
  49. #include <asm/tlbflush.h>
  50. #include <asm/irq.h>
  51. #include <asm/traps.h>
  52. #include <asm/vm86.h>
  53. /*
  54. * Known problems:
  55. *
  56. * Interrupt handling is not guaranteed:
  57. * - a real x86 will disable all interrupts for one instruction
  58. * after a "mov ss,xx" to make stack handling atomic even without
  59. * the 'lss' instruction. We can't guarantee this in v86 mode,
  60. * as the next instruction might result in a page fault or similar.
  61. * - a real x86 will have interrupts disabled for one instruction
  62. * past the 'sti' that enables them. We don't bother with all the
  63. * details yet.
  64. *
  65. * Let's hope these problems do not actually matter for anything.
  66. */
  67. /*
  68. * 8- and 16-bit register defines..
  69. */
  70. #define AL(regs) (((unsigned char *)&((regs)->pt.ax))[0])
  71. #define AH(regs) (((unsigned char *)&((regs)->pt.ax))[1])
  72. #define IP(regs) (*(unsigned short *)&((regs)->pt.ip))
  73. #define SP(regs) (*(unsigned short *)&((regs)->pt.sp))
  74. /*
  75. * virtual flags (16 and 32-bit versions)
  76. */
  77. #define VFLAGS (*(unsigned short *)&(current->thread.vm86->veflags))
  78. #define VEFLAGS (current->thread.vm86->veflags)
  79. #define set_flags(X, new, mask) \
  80. ((X) = ((X) & ~(mask)) | ((new) & (mask)))
  81. #define SAFE_MASK (0xDD5)
  82. #define RETURN_MASK (0xDFF)
  83. void save_v86_state(struct kernel_vm86_regs *regs, int retval)
  84. {
  85. struct tss_struct *tss;
  86. struct task_struct *tsk = current;
  87. struct vm86plus_struct __user *user;
  88. struct vm86 *vm86 = current->thread.vm86;
  89. long err = 0;
  90. /*
  91. * This gets called from entry.S with interrupts disabled, but
  92. * from process context. Enable interrupts here, before trying
  93. * to access user space.
  94. */
  95. local_irq_enable();
  96. if (!vm86 || !vm86->user_vm86) {
  97. pr_alert("no user_vm86: BAD\n");
  98. do_exit(SIGSEGV);
  99. }
  100. set_flags(regs->pt.flags, VEFLAGS, X86_EFLAGS_VIF | vm86->veflags_mask);
  101. user = vm86->user_vm86;
  102. if (!access_ok(VERIFY_WRITE, user, vm86->vm86plus.is_vm86pus ?
  103. sizeof(struct vm86plus_struct) :
  104. sizeof(struct vm86_struct))) {
  105. pr_alert("could not access userspace vm86 info\n");
  106. do_exit(SIGSEGV);
  107. }
  108. put_user_try {
  109. put_user_ex(regs->pt.bx, &user->regs.ebx);
  110. put_user_ex(regs->pt.cx, &user->regs.ecx);
  111. put_user_ex(regs->pt.dx, &user->regs.edx);
  112. put_user_ex(regs->pt.si, &user->regs.esi);
  113. put_user_ex(regs->pt.di, &user->regs.edi);
  114. put_user_ex(regs->pt.bp, &user->regs.ebp);
  115. put_user_ex(regs->pt.ax, &user->regs.eax);
  116. put_user_ex(regs->pt.ip, &user->regs.eip);
  117. put_user_ex(regs->pt.cs, &user->regs.cs);
  118. put_user_ex(regs->pt.flags, &user->regs.eflags);
  119. put_user_ex(regs->pt.sp, &user->regs.esp);
  120. put_user_ex(regs->pt.ss, &user->regs.ss);
  121. put_user_ex(regs->es, &user->regs.es);
  122. put_user_ex(regs->ds, &user->regs.ds);
  123. put_user_ex(regs->fs, &user->regs.fs);
  124. put_user_ex(regs->gs, &user->regs.gs);
  125. put_user_ex(vm86->screen_bitmap, &user->screen_bitmap);
  126. } put_user_catch(err);
  127. if (err) {
  128. pr_alert("could not access userspace vm86 info\n");
  129. do_exit(SIGSEGV);
  130. }
  131. tss = &per_cpu(cpu_tss, get_cpu());
  132. tsk->thread.sp0 = vm86->saved_sp0;
  133. tsk->thread.sysenter_cs = __KERNEL_CS;
  134. load_sp0(tss, &tsk->thread);
  135. vm86->saved_sp0 = 0;
  136. put_cpu();
  137. memcpy(&regs->pt, &vm86->regs32, sizeof(struct pt_regs));
  138. lazy_load_gs(vm86->regs32.gs);
  139. regs->pt.ax = retval;
  140. }
  141. static void mark_screen_rdonly(struct mm_struct *mm)
  142. {
  143. pgd_t *pgd;
  144. pud_t *pud;
  145. pmd_t *pmd;
  146. pte_t *pte;
  147. spinlock_t *ptl;
  148. int i;
  149. down_write(&mm->mmap_sem);
  150. pgd = pgd_offset(mm, 0xA0000);
  151. if (pgd_none_or_clear_bad(pgd))
  152. goto out;
  153. pud = pud_offset(pgd, 0xA0000);
  154. if (pud_none_or_clear_bad(pud))
  155. goto out;
  156. pmd = pmd_offset(pud, 0xA0000);
  157. if (pmd_trans_huge(*pmd)) {
  158. struct vm_area_struct *vma = find_vma(mm, 0xA0000);
  159. split_huge_pmd(vma, pmd, 0xA0000);
  160. }
  161. if (pmd_none_or_clear_bad(pmd))
  162. goto out;
  163. pte = pte_offset_map_lock(mm, pmd, 0xA0000, &ptl);
  164. for (i = 0; i < 32; i++) {
  165. if (pte_present(*pte))
  166. set_pte(pte, pte_wrprotect(*pte));
  167. pte++;
  168. }
  169. pte_unmap_unlock(pte, ptl);
  170. out:
  171. up_write(&mm->mmap_sem);
  172. flush_tlb();
  173. }
  174. static int do_vm86_irq_handling(int subfunction, int irqnumber);
  175. static long do_sys_vm86(struct vm86plus_struct __user *user_vm86, bool plus);
  176. SYSCALL_DEFINE1(vm86old, struct vm86_struct __user *, user_vm86)
  177. {
  178. return do_sys_vm86((struct vm86plus_struct __user *) user_vm86, false);
  179. }
  180. SYSCALL_DEFINE2(vm86, unsigned long, cmd, unsigned long, arg)
  181. {
  182. switch (cmd) {
  183. case VM86_REQUEST_IRQ:
  184. case VM86_FREE_IRQ:
  185. case VM86_GET_IRQ_BITS:
  186. case VM86_GET_AND_RESET_IRQ:
  187. return do_vm86_irq_handling(cmd, (int)arg);
  188. case VM86_PLUS_INSTALL_CHECK:
  189. /*
  190. * NOTE: on old vm86 stuff this will return the error
  191. * from access_ok(), because the subfunction is
  192. * interpreted as (invalid) address to vm86_struct.
  193. * So the installation check works.
  194. */
  195. return 0;
  196. }
  197. /* we come here only for functions VM86_ENTER, VM86_ENTER_NO_BYPASS */
  198. return do_sys_vm86((struct vm86plus_struct __user *) arg, true);
  199. }
  200. static long do_sys_vm86(struct vm86plus_struct __user *user_vm86, bool plus)
  201. {
  202. struct tss_struct *tss;
  203. struct task_struct *tsk = current;
  204. struct vm86 *vm86 = tsk->thread.vm86;
  205. struct kernel_vm86_regs vm86regs;
  206. struct pt_regs *regs = current_pt_regs();
  207. unsigned long err = 0;
  208. err = security_mmap_addr(0);
  209. if (err) {
  210. /*
  211. * vm86 cannot virtualize the address space, so vm86 users
  212. * need to manage the low 1MB themselves using mmap. Given
  213. * that BIOS places important data in the first page, vm86
  214. * is essentially useless if mmap_min_addr != 0. DOSEMU,
  215. * for example, won't even bother trying to use vm86 if it
  216. * can't map a page at virtual address 0.
  217. *
  218. * To reduce the available kernel attack surface, simply
  219. * disallow vm86(old) for users who cannot mmap at va 0.
  220. *
  221. * The implementation of security_mmap_addr will allow
  222. * suitably privileged users to map va 0 even if
  223. * vm.mmap_min_addr is set above 0, and we want this
  224. * behavior for vm86 as well, as it ensures that legacy
  225. * tools like vbetool will not fail just because of
  226. * vm.mmap_min_addr.
  227. */
  228. pr_info_once("Denied a call to vm86(old) from %s[%d] (uid: %d). Set the vm.mmap_min_addr sysctl to 0 and/or adjust LSM mmap_min_addr policy to enable vm86 if you are using a vm86-based DOS emulator.\n",
  229. current->comm, task_pid_nr(current),
  230. from_kuid_munged(&init_user_ns, current_uid()));
  231. return -EPERM;
  232. }
  233. if (!vm86) {
  234. if (!(vm86 = kzalloc(sizeof(*vm86), GFP_KERNEL)))
  235. return -ENOMEM;
  236. tsk->thread.vm86 = vm86;
  237. }
  238. if (vm86->saved_sp0)
  239. return -EPERM;
  240. if (!access_ok(VERIFY_READ, user_vm86, plus ?
  241. sizeof(struct vm86_struct) :
  242. sizeof(struct vm86plus_struct)))
  243. return -EFAULT;
  244. memset(&vm86regs, 0, sizeof(vm86regs));
  245. get_user_try {
  246. unsigned short seg;
  247. get_user_ex(vm86regs.pt.bx, &user_vm86->regs.ebx);
  248. get_user_ex(vm86regs.pt.cx, &user_vm86->regs.ecx);
  249. get_user_ex(vm86regs.pt.dx, &user_vm86->regs.edx);
  250. get_user_ex(vm86regs.pt.si, &user_vm86->regs.esi);
  251. get_user_ex(vm86regs.pt.di, &user_vm86->regs.edi);
  252. get_user_ex(vm86regs.pt.bp, &user_vm86->regs.ebp);
  253. get_user_ex(vm86regs.pt.ax, &user_vm86->regs.eax);
  254. get_user_ex(vm86regs.pt.ip, &user_vm86->regs.eip);
  255. get_user_ex(seg, &user_vm86->regs.cs);
  256. vm86regs.pt.cs = seg;
  257. get_user_ex(vm86regs.pt.flags, &user_vm86->regs.eflags);
  258. get_user_ex(vm86regs.pt.sp, &user_vm86->regs.esp);
  259. get_user_ex(seg, &user_vm86->regs.ss);
  260. vm86regs.pt.ss = seg;
  261. get_user_ex(vm86regs.es, &user_vm86->regs.es);
  262. get_user_ex(vm86regs.ds, &user_vm86->regs.ds);
  263. get_user_ex(vm86regs.fs, &user_vm86->regs.fs);
  264. get_user_ex(vm86regs.gs, &user_vm86->regs.gs);
  265. get_user_ex(vm86->flags, &user_vm86->flags);
  266. get_user_ex(vm86->screen_bitmap, &user_vm86->screen_bitmap);
  267. get_user_ex(vm86->cpu_type, &user_vm86->cpu_type);
  268. } get_user_catch(err);
  269. if (err)
  270. return err;
  271. if (copy_from_user(&vm86->int_revectored,
  272. &user_vm86->int_revectored,
  273. sizeof(struct revectored_struct)))
  274. return -EFAULT;
  275. if (copy_from_user(&vm86->int21_revectored,
  276. &user_vm86->int21_revectored,
  277. sizeof(struct revectored_struct)))
  278. return -EFAULT;
  279. if (plus) {
  280. if (copy_from_user(&vm86->vm86plus, &user_vm86->vm86plus,
  281. sizeof(struct vm86plus_info_struct)))
  282. return -EFAULT;
  283. vm86->vm86plus.is_vm86pus = 1;
  284. } else
  285. memset(&vm86->vm86plus, 0,
  286. sizeof(struct vm86plus_info_struct));
  287. memcpy(&vm86->regs32, regs, sizeof(struct pt_regs));
  288. vm86->user_vm86 = user_vm86;
  289. /*
  290. * The flags register is also special: we cannot trust that the user
  291. * has set it up safely, so this makes sure interrupt etc flags are
  292. * inherited from protected mode.
  293. */
  294. VEFLAGS = vm86regs.pt.flags;
  295. vm86regs.pt.flags &= SAFE_MASK;
  296. vm86regs.pt.flags |= regs->flags & ~SAFE_MASK;
  297. vm86regs.pt.flags |= X86_VM_MASK;
  298. vm86regs.pt.orig_ax = regs->orig_ax;
  299. switch (vm86->cpu_type) {
  300. case CPU_286:
  301. vm86->veflags_mask = 0;
  302. break;
  303. case CPU_386:
  304. vm86->veflags_mask = X86_EFLAGS_NT | X86_EFLAGS_IOPL;
  305. break;
  306. case CPU_486:
  307. vm86->veflags_mask = X86_EFLAGS_AC | X86_EFLAGS_NT | X86_EFLAGS_IOPL;
  308. break;
  309. default:
  310. vm86->veflags_mask = X86_EFLAGS_ID | X86_EFLAGS_AC | X86_EFLAGS_NT | X86_EFLAGS_IOPL;
  311. break;
  312. }
  313. /*
  314. * Save old state
  315. */
  316. vm86->saved_sp0 = tsk->thread.sp0;
  317. lazy_save_gs(vm86->regs32.gs);
  318. tss = &per_cpu(cpu_tss, get_cpu());
  319. /* make room for real-mode segments */
  320. tsk->thread.sp0 += 16;
  321. if (static_cpu_has(X86_FEATURE_SEP))
  322. tsk->thread.sysenter_cs = 0;
  323. load_sp0(tss, &tsk->thread);
  324. put_cpu();
  325. if (vm86->flags & VM86_SCREEN_BITMAP)
  326. mark_screen_rdonly(tsk->mm);
  327. memcpy((struct kernel_vm86_regs *)regs, &vm86regs, sizeof(vm86regs));
  328. force_iret();
  329. return regs->ax;
  330. }
  331. static inline void set_IF(struct kernel_vm86_regs *regs)
  332. {
  333. VEFLAGS |= X86_EFLAGS_VIF;
  334. }
  335. static inline void clear_IF(struct kernel_vm86_regs *regs)
  336. {
  337. VEFLAGS &= ~X86_EFLAGS_VIF;
  338. }
  339. static inline void clear_TF(struct kernel_vm86_regs *regs)
  340. {
  341. regs->pt.flags &= ~X86_EFLAGS_TF;
  342. }
  343. static inline void clear_AC(struct kernel_vm86_regs *regs)
  344. {
  345. regs->pt.flags &= ~X86_EFLAGS_AC;
  346. }
  347. /*
  348. * It is correct to call set_IF(regs) from the set_vflags_*
  349. * functions. However someone forgot to call clear_IF(regs)
  350. * in the opposite case.
  351. * After the command sequence CLI PUSHF STI POPF you should
  352. * end up with interrupts disabled, but you ended up with
  353. * interrupts enabled.
  354. * ( I was testing my own changes, but the only bug I
  355. * could find was in a function I had not changed. )
  356. * [KD]
  357. */
  358. static inline void set_vflags_long(unsigned long flags, struct kernel_vm86_regs *regs)
  359. {
  360. set_flags(VEFLAGS, flags, current->thread.vm86->veflags_mask);
  361. set_flags(regs->pt.flags, flags, SAFE_MASK);
  362. if (flags & X86_EFLAGS_IF)
  363. set_IF(regs);
  364. else
  365. clear_IF(regs);
  366. }
  367. static inline void set_vflags_short(unsigned short flags, struct kernel_vm86_regs *regs)
  368. {
  369. set_flags(VFLAGS, flags, current->thread.vm86->veflags_mask);
  370. set_flags(regs->pt.flags, flags, SAFE_MASK);
  371. if (flags & X86_EFLAGS_IF)
  372. set_IF(regs);
  373. else
  374. clear_IF(regs);
  375. }
  376. static inline unsigned long get_vflags(struct kernel_vm86_regs *regs)
  377. {
  378. unsigned long flags = regs->pt.flags & RETURN_MASK;
  379. if (VEFLAGS & X86_EFLAGS_VIF)
  380. flags |= X86_EFLAGS_IF;
  381. flags |= X86_EFLAGS_IOPL;
  382. return flags | (VEFLAGS & current->thread.vm86->veflags_mask);
  383. }
  384. static inline int is_revectored(int nr, struct revectored_struct *bitmap)
  385. {
  386. return test_bit(nr, bitmap->__map);
  387. }
  388. #define val_byte(val, n) (((__u8 *)&val)[n])
  389. #define pushb(base, ptr, val, err_label) \
  390. do { \
  391. __u8 __val = val; \
  392. ptr--; \
  393. if (put_user(__val, base + ptr) < 0) \
  394. goto err_label; \
  395. } while (0)
  396. #define pushw(base, ptr, val, err_label) \
  397. do { \
  398. __u16 __val = val; \
  399. ptr--; \
  400. if (put_user(val_byte(__val, 1), base + ptr) < 0) \
  401. goto err_label; \
  402. ptr--; \
  403. if (put_user(val_byte(__val, 0), base + ptr) < 0) \
  404. goto err_label; \
  405. } while (0)
  406. #define pushl(base, ptr, val, err_label) \
  407. do { \
  408. __u32 __val = val; \
  409. ptr--; \
  410. if (put_user(val_byte(__val, 3), base + ptr) < 0) \
  411. goto err_label; \
  412. ptr--; \
  413. if (put_user(val_byte(__val, 2), base + ptr) < 0) \
  414. goto err_label; \
  415. ptr--; \
  416. if (put_user(val_byte(__val, 1), base + ptr) < 0) \
  417. goto err_label; \
  418. ptr--; \
  419. if (put_user(val_byte(__val, 0), base + ptr) < 0) \
  420. goto err_label; \
  421. } while (0)
  422. #define popb(base, ptr, err_label) \
  423. ({ \
  424. __u8 __res; \
  425. if (get_user(__res, base + ptr) < 0) \
  426. goto err_label; \
  427. ptr++; \
  428. __res; \
  429. })
  430. #define popw(base, ptr, err_label) \
  431. ({ \
  432. __u16 __res; \
  433. if (get_user(val_byte(__res, 0), base + ptr) < 0) \
  434. goto err_label; \
  435. ptr++; \
  436. if (get_user(val_byte(__res, 1), base + ptr) < 0) \
  437. goto err_label; \
  438. ptr++; \
  439. __res; \
  440. })
  441. #define popl(base, ptr, err_label) \
  442. ({ \
  443. __u32 __res; \
  444. if (get_user(val_byte(__res, 0), base + ptr) < 0) \
  445. goto err_label; \
  446. ptr++; \
  447. if (get_user(val_byte(__res, 1), base + ptr) < 0) \
  448. goto err_label; \
  449. ptr++; \
  450. if (get_user(val_byte(__res, 2), base + ptr) < 0) \
  451. goto err_label; \
  452. ptr++; \
  453. if (get_user(val_byte(__res, 3), base + ptr) < 0) \
  454. goto err_label; \
  455. ptr++; \
  456. __res; \
  457. })
  458. /* There are so many possible reasons for this function to return
  459. * VM86_INTx, so adding another doesn't bother me. We can expect
  460. * userspace programs to be able to handle it. (Getting a problem
  461. * in userspace is always better than an Oops anyway.) [KD]
  462. */
  463. static void do_int(struct kernel_vm86_regs *regs, int i,
  464. unsigned char __user *ssp, unsigned short sp)
  465. {
  466. unsigned long __user *intr_ptr;
  467. unsigned long segoffs;
  468. struct vm86 *vm86 = current->thread.vm86;
  469. if (regs->pt.cs == BIOSSEG)
  470. goto cannot_handle;
  471. if (is_revectored(i, &vm86->int_revectored))
  472. goto cannot_handle;
  473. if (i == 0x21 && is_revectored(AH(regs), &vm86->int21_revectored))
  474. goto cannot_handle;
  475. intr_ptr = (unsigned long __user *) (i << 2);
  476. if (get_user(segoffs, intr_ptr))
  477. goto cannot_handle;
  478. if ((segoffs >> 16) == BIOSSEG)
  479. goto cannot_handle;
  480. pushw(ssp, sp, get_vflags(regs), cannot_handle);
  481. pushw(ssp, sp, regs->pt.cs, cannot_handle);
  482. pushw(ssp, sp, IP(regs), cannot_handle);
  483. regs->pt.cs = segoffs >> 16;
  484. SP(regs) -= 6;
  485. IP(regs) = segoffs & 0xffff;
  486. clear_TF(regs);
  487. clear_IF(regs);
  488. clear_AC(regs);
  489. return;
  490. cannot_handle:
  491. save_v86_state(regs, VM86_INTx + (i << 8));
  492. }
  493. int handle_vm86_trap(struct kernel_vm86_regs *regs, long error_code, int trapno)
  494. {
  495. struct vm86 *vm86 = current->thread.vm86;
  496. if (vm86->vm86plus.is_vm86pus) {
  497. if ((trapno == 3) || (trapno == 1)) {
  498. save_v86_state(regs, VM86_TRAP + (trapno << 8));
  499. return 0;
  500. }
  501. do_int(regs, trapno, (unsigned char __user *) (regs->pt.ss << 4), SP(regs));
  502. return 0;
  503. }
  504. if (trapno != 1)
  505. return 1; /* we let this handle by the calling routine */
  506. current->thread.trap_nr = trapno;
  507. current->thread.error_code = error_code;
  508. force_sig(SIGTRAP, current);
  509. return 0;
  510. }
  511. void handle_vm86_fault(struct kernel_vm86_regs *regs, long error_code)
  512. {
  513. unsigned char opcode;
  514. unsigned char __user *csp;
  515. unsigned char __user *ssp;
  516. unsigned short ip, sp, orig_flags;
  517. int data32, pref_done;
  518. struct vm86plus_info_struct *vmpi = &current->thread.vm86->vm86plus;
  519. #define CHECK_IF_IN_TRAP \
  520. if (vmpi->vm86dbg_active && vmpi->vm86dbg_TFpendig) \
  521. newflags |= X86_EFLAGS_TF
  522. orig_flags = *(unsigned short *)&regs->pt.flags;
  523. csp = (unsigned char __user *) (regs->pt.cs << 4);
  524. ssp = (unsigned char __user *) (regs->pt.ss << 4);
  525. sp = SP(regs);
  526. ip = IP(regs);
  527. data32 = 0;
  528. pref_done = 0;
  529. do {
  530. switch (opcode = popb(csp, ip, simulate_sigsegv)) {
  531. case 0x66: /* 32-bit data */ data32 = 1; break;
  532. case 0x67: /* 32-bit address */ break;
  533. case 0x2e: /* CS */ break;
  534. case 0x3e: /* DS */ break;
  535. case 0x26: /* ES */ break;
  536. case 0x36: /* SS */ break;
  537. case 0x65: /* GS */ break;
  538. case 0x64: /* FS */ break;
  539. case 0xf2: /* repnz */ break;
  540. case 0xf3: /* rep */ break;
  541. default: pref_done = 1;
  542. }
  543. } while (!pref_done);
  544. switch (opcode) {
  545. /* pushf */
  546. case 0x9c:
  547. if (data32) {
  548. pushl(ssp, sp, get_vflags(regs), simulate_sigsegv);
  549. SP(regs) -= 4;
  550. } else {
  551. pushw(ssp, sp, get_vflags(regs), simulate_sigsegv);
  552. SP(regs) -= 2;
  553. }
  554. IP(regs) = ip;
  555. goto vm86_fault_return;
  556. /* popf */
  557. case 0x9d:
  558. {
  559. unsigned long newflags;
  560. if (data32) {
  561. newflags = popl(ssp, sp, simulate_sigsegv);
  562. SP(regs) += 4;
  563. } else {
  564. newflags = popw(ssp, sp, simulate_sigsegv);
  565. SP(regs) += 2;
  566. }
  567. IP(regs) = ip;
  568. CHECK_IF_IN_TRAP;
  569. if (data32)
  570. set_vflags_long(newflags, regs);
  571. else
  572. set_vflags_short(newflags, regs);
  573. goto check_vip;
  574. }
  575. /* int xx */
  576. case 0xcd: {
  577. int intno = popb(csp, ip, simulate_sigsegv);
  578. IP(regs) = ip;
  579. if (vmpi->vm86dbg_active) {
  580. if ((1 << (intno & 7)) & vmpi->vm86dbg_intxxtab[intno >> 3]) {
  581. save_v86_state(regs, VM86_INTx + (intno << 8));
  582. return;
  583. }
  584. }
  585. do_int(regs, intno, ssp, sp);
  586. return;
  587. }
  588. /* iret */
  589. case 0xcf:
  590. {
  591. unsigned long newip;
  592. unsigned long newcs;
  593. unsigned long newflags;
  594. if (data32) {
  595. newip = popl(ssp, sp, simulate_sigsegv);
  596. newcs = popl(ssp, sp, simulate_sigsegv);
  597. newflags = popl(ssp, sp, simulate_sigsegv);
  598. SP(regs) += 12;
  599. } else {
  600. newip = popw(ssp, sp, simulate_sigsegv);
  601. newcs = popw(ssp, sp, simulate_sigsegv);
  602. newflags = popw(ssp, sp, simulate_sigsegv);
  603. SP(regs) += 6;
  604. }
  605. IP(regs) = newip;
  606. regs->pt.cs = newcs;
  607. CHECK_IF_IN_TRAP;
  608. if (data32) {
  609. set_vflags_long(newflags, regs);
  610. } else {
  611. set_vflags_short(newflags, regs);
  612. }
  613. goto check_vip;
  614. }
  615. /* cli */
  616. case 0xfa:
  617. IP(regs) = ip;
  618. clear_IF(regs);
  619. goto vm86_fault_return;
  620. /* sti */
  621. /*
  622. * Damn. This is incorrect: the 'sti' instruction should actually
  623. * enable interrupts after the /next/ instruction. Not good.
  624. *
  625. * Probably needs some horsing around with the TF flag. Aiee..
  626. */
  627. case 0xfb:
  628. IP(regs) = ip;
  629. set_IF(regs);
  630. goto check_vip;
  631. default:
  632. save_v86_state(regs, VM86_UNKNOWN);
  633. }
  634. return;
  635. check_vip:
  636. if (VEFLAGS & X86_EFLAGS_VIP) {
  637. save_v86_state(regs, VM86_STI);
  638. return;
  639. }
  640. vm86_fault_return:
  641. if (vmpi->force_return_for_pic && (VEFLAGS & (X86_EFLAGS_IF | X86_EFLAGS_VIF))) {
  642. save_v86_state(regs, VM86_PICRETURN);
  643. return;
  644. }
  645. if (orig_flags & X86_EFLAGS_TF)
  646. handle_vm86_trap(regs, 0, X86_TRAP_DB);
  647. return;
  648. simulate_sigsegv:
  649. /* FIXME: After a long discussion with Stas we finally
  650. * agreed, that this is wrong. Here we should
  651. * really send a SIGSEGV to the user program.
  652. * But how do we create the correct context? We
  653. * are inside a general protection fault handler
  654. * and has just returned from a page fault handler.
  655. * The correct context for the signal handler
  656. * should be a mixture of the two, but how do we
  657. * get the information? [KD]
  658. */
  659. save_v86_state(regs, VM86_UNKNOWN);
  660. }
  661. /* ---------------- vm86 special IRQ passing stuff ----------------- */
  662. #define VM86_IRQNAME "vm86irq"
  663. static struct vm86_irqs {
  664. struct task_struct *tsk;
  665. int sig;
  666. } vm86_irqs[16];
  667. static DEFINE_SPINLOCK(irqbits_lock);
  668. static int irqbits;
  669. #define ALLOWED_SIGS (1 /* 0 = don't send a signal */ \
  670. | (1 << SIGUSR1) | (1 << SIGUSR2) | (1 << SIGIO) | (1 << SIGURG) \
  671. | (1 << SIGUNUSED))
  672. static irqreturn_t irq_handler(int intno, void *dev_id)
  673. {
  674. int irq_bit;
  675. unsigned long flags;
  676. spin_lock_irqsave(&irqbits_lock, flags);
  677. irq_bit = 1 << intno;
  678. if ((irqbits & irq_bit) || !vm86_irqs[intno].tsk)
  679. goto out;
  680. irqbits |= irq_bit;
  681. if (vm86_irqs[intno].sig)
  682. send_sig(vm86_irqs[intno].sig, vm86_irqs[intno].tsk, 1);
  683. /*
  684. * IRQ will be re-enabled when user asks for the irq (whether
  685. * polling or as a result of the signal)
  686. */
  687. disable_irq_nosync(intno);
  688. spin_unlock_irqrestore(&irqbits_lock, flags);
  689. return IRQ_HANDLED;
  690. out:
  691. spin_unlock_irqrestore(&irqbits_lock, flags);
  692. return IRQ_NONE;
  693. }
  694. static inline void free_vm86_irq(int irqnumber)
  695. {
  696. unsigned long flags;
  697. free_irq(irqnumber, NULL);
  698. vm86_irqs[irqnumber].tsk = NULL;
  699. spin_lock_irqsave(&irqbits_lock, flags);
  700. irqbits &= ~(1 << irqnumber);
  701. spin_unlock_irqrestore(&irqbits_lock, flags);
  702. }
  703. void release_vm86_irqs(struct task_struct *task)
  704. {
  705. int i;
  706. for (i = FIRST_VM86_IRQ ; i <= LAST_VM86_IRQ; i++)
  707. if (vm86_irqs[i].tsk == task)
  708. free_vm86_irq(i);
  709. }
  710. static inline int get_and_reset_irq(int irqnumber)
  711. {
  712. int bit;
  713. unsigned long flags;
  714. int ret = 0;
  715. if (invalid_vm86_irq(irqnumber)) return 0;
  716. if (vm86_irqs[irqnumber].tsk != current) return 0;
  717. spin_lock_irqsave(&irqbits_lock, flags);
  718. bit = irqbits & (1 << irqnumber);
  719. irqbits &= ~bit;
  720. if (bit) {
  721. enable_irq(irqnumber);
  722. ret = 1;
  723. }
  724. spin_unlock_irqrestore(&irqbits_lock, flags);
  725. return ret;
  726. }
  727. static int do_vm86_irq_handling(int subfunction, int irqnumber)
  728. {
  729. int ret;
  730. switch (subfunction) {
  731. case VM86_GET_AND_RESET_IRQ: {
  732. return get_and_reset_irq(irqnumber);
  733. }
  734. case VM86_GET_IRQ_BITS: {
  735. return irqbits;
  736. }
  737. case VM86_REQUEST_IRQ: {
  738. int sig = irqnumber >> 8;
  739. int irq = irqnumber & 255;
  740. if (!capable(CAP_SYS_ADMIN)) return -EPERM;
  741. if (!((1 << sig) & ALLOWED_SIGS)) return -EPERM;
  742. if (invalid_vm86_irq(irq)) return -EPERM;
  743. if (vm86_irqs[irq].tsk) return -EPERM;
  744. ret = request_irq(irq, &irq_handler, 0, VM86_IRQNAME, NULL);
  745. if (ret) return ret;
  746. vm86_irqs[irq].sig = sig;
  747. vm86_irqs[irq].tsk = current;
  748. return irq;
  749. }
  750. case VM86_FREE_IRQ: {
  751. if (invalid_vm86_irq(irqnumber)) return -EPERM;
  752. if (!vm86_irqs[irqnumber].tsk) return 0;
  753. if (vm86_irqs[irqnumber].tsk != current) return -EPERM;
  754. free_vm86_irq(irqnumber);
  755. return 0;
  756. }
  757. }
  758. return -EINVAL;
  759. }