uaccess.h 14 KB

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  1. #ifndef _ARCH_POWERPC_UACCESS_H
  2. #define _ARCH_POWERPC_UACCESS_H
  3. #ifdef __KERNEL__
  4. #ifndef __ASSEMBLY__
  5. #include <linux/sched.h>
  6. #include <linux/errno.h>
  7. #include <asm/processor.h>
  8. #include <asm/page.h>
  9. #define VERIFY_READ 0
  10. #define VERIFY_WRITE 1
  11. /*
  12. * The fs value determines whether argument validity checking should be
  13. * performed or not. If get_fs() == USER_DS, checking is performed, with
  14. * get_fs() == KERNEL_DS, checking is bypassed.
  15. *
  16. * For historical reasons, these macros are grossly misnamed.
  17. *
  18. * The fs/ds values are now the highest legal address in the "segment".
  19. * This simplifies the checking in the routines below.
  20. */
  21. #define MAKE_MM_SEG(s) ((mm_segment_t) { (s) })
  22. #define KERNEL_DS MAKE_MM_SEG(~0UL)
  23. #ifdef __powerpc64__
  24. /* We use TASK_SIZE_USER64 as TASK_SIZE is not constant */
  25. #define USER_DS MAKE_MM_SEG(TASK_SIZE_USER64 - 1)
  26. #else
  27. #define USER_DS MAKE_MM_SEG(TASK_SIZE - 1)
  28. #endif
  29. #define get_ds() (KERNEL_DS)
  30. #define get_fs() (current->thread.fs)
  31. #define set_fs(val) (current->thread.fs = (val))
  32. #define segment_eq(a, b) ((a).seg == (b).seg)
  33. #ifdef __powerpc64__
  34. /*
  35. * This check is sufficient because there is a large enough
  36. * gap between user addresses and the kernel addresses
  37. */
  38. #define __access_ok(addr, size, segment) \
  39. (((addr) <= (segment).seg) && ((size) <= (segment).seg))
  40. #else
  41. #define __access_ok(addr, size, segment) \
  42. (((addr) <= (segment).seg) && \
  43. (((size) == 0) || (((size) - 1) <= ((segment).seg - (addr)))))
  44. #endif
  45. #define access_ok(type, addr, size) \
  46. (__chk_user_ptr(addr), \
  47. __access_ok((__force unsigned long)(addr), (size), get_fs()))
  48. /*
  49. * The exception table consists of pairs of addresses: the first is the
  50. * address of an instruction that is allowed to fault, and the second is
  51. * the address at which the program should continue. No registers are
  52. * modified, so it is entirely up to the continuation code to figure out
  53. * what to do.
  54. *
  55. * All the routines below use bits of fixup code that are out of line
  56. * with the main instruction path. This means when everything is well,
  57. * we don't even have to jump over them. Further, they do not intrude
  58. * on our cache or tlb entries.
  59. */
  60. struct exception_table_entry {
  61. unsigned long insn;
  62. unsigned long fixup;
  63. };
  64. /*
  65. * These are the main single-value transfer routines. They automatically
  66. * use the right size if we just have the right pointer type.
  67. *
  68. * This gets kind of ugly. We want to return _two_ values in "get_user()"
  69. * and yet we don't want to do any pointers, because that is too much
  70. * of a performance impact. Thus we have a few rather ugly macros here,
  71. * and hide all the ugliness from the user.
  72. *
  73. * The "__xxx" versions of the user access functions are versions that
  74. * do not verify the address space, that must have been done previously
  75. * with a separate "access_ok()" call (this is used when we do multiple
  76. * accesses to the same area of user memory).
  77. *
  78. * As we use the same address space for kernel and user data on the
  79. * PowerPC, we can just do these as direct assignments. (Of course, the
  80. * exception handling means that it's no longer "just"...)
  81. *
  82. * The "user64" versions of the user access functions are versions that
  83. * allow access of 64-bit data. The "get_user" functions do not
  84. * properly handle 64-bit data because the value gets down cast to a long.
  85. * The "put_user" functions already handle 64-bit data properly but we add
  86. * "user64" versions for completeness
  87. */
  88. #define get_user(x, ptr) \
  89. __get_user_check((x), (ptr), sizeof(*(ptr)))
  90. #define put_user(x, ptr) \
  91. __put_user_check((__typeof__(*(ptr)))(x), (ptr), sizeof(*(ptr)))
  92. #define __get_user(x, ptr) \
  93. __get_user_nocheck((x), (ptr), sizeof(*(ptr)))
  94. #define __put_user(x, ptr) \
  95. __put_user_nocheck((__typeof__(*(ptr)))(x), (ptr), sizeof(*(ptr)))
  96. #ifndef __powerpc64__
  97. #define __get_user64(x, ptr) \
  98. __get_user64_nocheck((x), (ptr), sizeof(*(ptr)))
  99. #define __put_user64(x, ptr) __put_user(x, ptr)
  100. #endif
  101. #define __get_user_inatomic(x, ptr) \
  102. __get_user_nosleep((x), (ptr), sizeof(*(ptr)))
  103. #define __put_user_inatomic(x, ptr) \
  104. __put_user_nosleep((__typeof__(*(ptr)))(x), (ptr), sizeof(*(ptr)))
  105. #define __get_user_unaligned __get_user
  106. #define __put_user_unaligned __put_user
  107. extern long __put_user_bad(void);
  108. /*
  109. * We don't tell gcc that we are accessing memory, but this is OK
  110. * because we do not write to any memory gcc knows about, so there
  111. * are no aliasing issues.
  112. */
  113. #define __put_user_asm(x, addr, err, op) \
  114. __asm__ __volatile__( \
  115. "1: " op " %1,0(%2) # put_user\n" \
  116. "2:\n" \
  117. ".section .fixup,\"ax\"\n" \
  118. "3: li %0,%3\n" \
  119. " b 2b\n" \
  120. ".previous\n" \
  121. ".section __ex_table,\"a\"\n" \
  122. " .balign %5\n" \
  123. PPC_LONG "1b,3b\n" \
  124. ".previous" \
  125. : "=r" (err) \
  126. : "r" (x), "b" (addr), "i" (-EFAULT), "0" (err),\
  127. "i"(sizeof(unsigned long)))
  128. #ifdef __powerpc64__
  129. #define __put_user_asm2(x, ptr, retval) \
  130. __put_user_asm(x, ptr, retval, "std")
  131. #else /* __powerpc64__ */
  132. #define __put_user_asm2(x, addr, err) \
  133. __asm__ __volatile__( \
  134. "1: stw %1,0(%2)\n" \
  135. "2: stw %1+1,4(%2)\n" \
  136. "3:\n" \
  137. ".section .fixup,\"ax\"\n" \
  138. "4: li %0,%3\n" \
  139. " b 3b\n" \
  140. ".previous\n" \
  141. ".section __ex_table,\"a\"\n" \
  142. " .balign %5\n" \
  143. PPC_LONG "1b,4b\n" \
  144. PPC_LONG "2b,4b\n" \
  145. ".previous" \
  146. : "=r" (err) \
  147. : "r" (x), "b" (addr), "i" (-EFAULT), "0" (err),\
  148. "i"(sizeof(unsigned long)))
  149. #endif /* __powerpc64__ */
  150. #define __put_user_size(x, ptr, size, retval) \
  151. do { \
  152. retval = 0; \
  153. switch (size) { \
  154. case 1: __put_user_asm(x, ptr, retval, "stb"); break; \
  155. case 2: __put_user_asm(x, ptr, retval, "sth"); break; \
  156. case 4: __put_user_asm(x, ptr, retval, "stw"); break; \
  157. case 8: __put_user_asm2(x, ptr, retval); break; \
  158. default: __put_user_bad(); \
  159. } \
  160. } while (0)
  161. #define __put_user_nocheck(x, ptr, size) \
  162. ({ \
  163. long __pu_err; \
  164. __typeof__(*(ptr)) __user *__pu_addr = (ptr); \
  165. if (!is_kernel_addr((unsigned long)__pu_addr)) \
  166. might_sleep(); \
  167. __chk_user_ptr(ptr); \
  168. __put_user_size((x), __pu_addr, (size), __pu_err); \
  169. __pu_err; \
  170. })
  171. #define __put_user_check(x, ptr, size) \
  172. ({ \
  173. long __pu_err = -EFAULT; \
  174. __typeof__(*(ptr)) __user *__pu_addr = (ptr); \
  175. might_sleep(); \
  176. if (access_ok(VERIFY_WRITE, __pu_addr, size)) \
  177. __put_user_size((x), __pu_addr, (size), __pu_err); \
  178. __pu_err; \
  179. })
  180. #define __put_user_nosleep(x, ptr, size) \
  181. ({ \
  182. long __pu_err; \
  183. __typeof__(*(ptr)) __user *__pu_addr = (ptr); \
  184. __chk_user_ptr(ptr); \
  185. __put_user_size((x), __pu_addr, (size), __pu_err); \
  186. __pu_err; \
  187. })
  188. extern long __get_user_bad(void);
  189. #define __get_user_asm(x, addr, err, op) \
  190. __asm__ __volatile__( \
  191. "1: "op" %1,0(%2) # get_user\n" \
  192. "2:\n" \
  193. ".section .fixup,\"ax\"\n" \
  194. "3: li %0,%3\n" \
  195. " li %1,0\n" \
  196. " b 2b\n" \
  197. ".previous\n" \
  198. ".section __ex_table,\"a\"\n" \
  199. " .balign %5\n" \
  200. PPC_LONG "1b,3b\n" \
  201. ".previous" \
  202. : "=r" (err), "=r" (x) \
  203. : "b" (addr), "i" (-EFAULT), "0" (err), \
  204. "i"(sizeof(unsigned long)))
  205. #ifdef __powerpc64__
  206. #define __get_user_asm2(x, addr, err) \
  207. __get_user_asm(x, addr, err, "ld")
  208. #else /* __powerpc64__ */
  209. #define __get_user_asm2(x, addr, err) \
  210. __asm__ __volatile__( \
  211. "1: lwz %1,0(%2)\n" \
  212. "2: lwz %1+1,4(%2)\n" \
  213. "3:\n" \
  214. ".section .fixup,\"ax\"\n" \
  215. "4: li %0,%3\n" \
  216. " li %1,0\n" \
  217. " li %1+1,0\n" \
  218. " b 3b\n" \
  219. ".previous\n" \
  220. ".section __ex_table,\"a\"\n" \
  221. " .balign %5\n" \
  222. PPC_LONG "1b,4b\n" \
  223. PPC_LONG "2b,4b\n" \
  224. ".previous" \
  225. : "=r" (err), "=&r" (x) \
  226. : "b" (addr), "i" (-EFAULT), "0" (err), \
  227. "i"(sizeof(unsigned long)))
  228. #endif /* __powerpc64__ */
  229. #define __get_user_size(x, ptr, size, retval) \
  230. do { \
  231. retval = 0; \
  232. __chk_user_ptr(ptr); \
  233. if (size > sizeof(x)) \
  234. (x) = __get_user_bad(); \
  235. switch (size) { \
  236. case 1: __get_user_asm(x, ptr, retval, "lbz"); break; \
  237. case 2: __get_user_asm(x, ptr, retval, "lhz"); break; \
  238. case 4: __get_user_asm(x, ptr, retval, "lwz"); break; \
  239. case 8: __get_user_asm2(x, ptr, retval); break; \
  240. default: (x) = __get_user_bad(); \
  241. } \
  242. } while (0)
  243. #define __get_user_nocheck(x, ptr, size) \
  244. ({ \
  245. long __gu_err; \
  246. unsigned long __gu_val; \
  247. const __typeof__(*(ptr)) __user *__gu_addr = (ptr); \
  248. __chk_user_ptr(ptr); \
  249. if (!is_kernel_addr((unsigned long)__gu_addr)) \
  250. might_sleep(); \
  251. __get_user_size(__gu_val, __gu_addr, (size), __gu_err); \
  252. (x) = (__typeof__(*(ptr)))__gu_val; \
  253. __gu_err; \
  254. })
  255. #ifndef __powerpc64__
  256. #define __get_user64_nocheck(x, ptr, size) \
  257. ({ \
  258. long __gu_err; \
  259. long long __gu_val; \
  260. const __typeof__(*(ptr)) __user *__gu_addr = (ptr); \
  261. __chk_user_ptr(ptr); \
  262. if (!is_kernel_addr((unsigned long)__gu_addr)) \
  263. might_sleep(); \
  264. __get_user_size(__gu_val, __gu_addr, (size), __gu_err); \
  265. (x) = (__typeof__(*(ptr)))__gu_val; \
  266. __gu_err; \
  267. })
  268. #endif /* __powerpc64__ */
  269. #define __get_user_check(x, ptr, size) \
  270. ({ \
  271. long __gu_err = -EFAULT; \
  272. unsigned long __gu_val = 0; \
  273. const __typeof__(*(ptr)) __user *__gu_addr = (ptr); \
  274. might_sleep(); \
  275. if (access_ok(VERIFY_READ, __gu_addr, (size))) \
  276. __get_user_size(__gu_val, __gu_addr, (size), __gu_err); \
  277. (x) = (__typeof__(*(ptr)))__gu_val; \
  278. __gu_err; \
  279. })
  280. #define __get_user_nosleep(x, ptr, size) \
  281. ({ \
  282. long __gu_err; \
  283. unsigned long __gu_val; \
  284. const __typeof__(*(ptr)) __user *__gu_addr = (ptr); \
  285. __chk_user_ptr(ptr); \
  286. __get_user_size(__gu_val, __gu_addr, (size), __gu_err); \
  287. (x) = (__typeof__(*(ptr)))__gu_val; \
  288. __gu_err; \
  289. })
  290. /* more complex routines */
  291. extern unsigned long __copy_tofrom_user(void __user *to,
  292. const void __user *from, unsigned long size);
  293. #ifndef __powerpc64__
  294. static inline unsigned long copy_from_user(void *to,
  295. const void __user *from, unsigned long n)
  296. {
  297. unsigned long over;
  298. if (access_ok(VERIFY_READ, from, n))
  299. return __copy_tofrom_user((__force void __user *)to, from, n);
  300. if ((unsigned long)from < TASK_SIZE) {
  301. over = (unsigned long)from + n - TASK_SIZE;
  302. return __copy_tofrom_user((__force void __user *)to, from,
  303. n - over) + over;
  304. }
  305. return n;
  306. }
  307. static inline unsigned long copy_to_user(void __user *to,
  308. const void *from, unsigned long n)
  309. {
  310. unsigned long over;
  311. if (access_ok(VERIFY_WRITE, to, n))
  312. return __copy_tofrom_user(to, (__force void __user *)from, n);
  313. if ((unsigned long)to < TASK_SIZE) {
  314. over = (unsigned long)to + n - TASK_SIZE;
  315. return __copy_tofrom_user(to, (__force void __user *)from,
  316. n - over) + over;
  317. }
  318. return n;
  319. }
  320. #else /* __powerpc64__ */
  321. #define __copy_in_user(to, from, size) \
  322. __copy_tofrom_user((to), (from), (size))
  323. extern unsigned long copy_from_user(void *to, const void __user *from,
  324. unsigned long n);
  325. extern unsigned long copy_to_user(void __user *to, const void *from,
  326. unsigned long n);
  327. extern unsigned long copy_in_user(void __user *to, const void __user *from,
  328. unsigned long n);
  329. #endif /* __powerpc64__ */
  330. static inline unsigned long __copy_from_user_inatomic(void *to,
  331. const void __user *from, unsigned long n)
  332. {
  333. if (__builtin_constant_p(n) && (n <= 8)) {
  334. unsigned long ret;
  335. switch (n) {
  336. case 1:
  337. __get_user_size(*(u8 *)to, from, 1, ret);
  338. break;
  339. case 2:
  340. __get_user_size(*(u16 *)to, from, 2, ret);
  341. break;
  342. case 4:
  343. __get_user_size(*(u32 *)to, from, 4, ret);
  344. break;
  345. case 8:
  346. __get_user_size(*(u64 *)to, from, 8, ret);
  347. break;
  348. }
  349. if (ret == 0)
  350. return 0;
  351. }
  352. return __copy_tofrom_user((__force void __user *)to, from, n);
  353. }
  354. static inline unsigned long __copy_to_user_inatomic(void __user *to,
  355. const void *from, unsigned long n)
  356. {
  357. if (__builtin_constant_p(n) && (n <= 8)) {
  358. unsigned long ret;
  359. switch (n) {
  360. case 1:
  361. __put_user_size(*(u8 *)from, (u8 __user *)to, 1, ret);
  362. break;
  363. case 2:
  364. __put_user_size(*(u16 *)from, (u16 __user *)to, 2, ret);
  365. break;
  366. case 4:
  367. __put_user_size(*(u32 *)from, (u32 __user *)to, 4, ret);
  368. break;
  369. case 8:
  370. __put_user_size(*(u64 *)from, (u64 __user *)to, 8, ret);
  371. break;
  372. }
  373. if (ret == 0)
  374. return 0;
  375. }
  376. return __copy_tofrom_user(to, (__force const void __user *)from, n);
  377. }
  378. static inline unsigned long __copy_from_user(void *to,
  379. const void __user *from, unsigned long size)
  380. {
  381. might_sleep();
  382. return __copy_from_user_inatomic(to, from, size);
  383. }
  384. static inline unsigned long __copy_to_user(void __user *to,
  385. const void *from, unsigned long size)
  386. {
  387. might_sleep();
  388. return __copy_to_user_inatomic(to, from, size);
  389. }
  390. extern unsigned long __clear_user(void __user *addr, unsigned long size);
  391. static inline unsigned long clear_user(void __user *addr, unsigned long size)
  392. {
  393. might_sleep();
  394. if (likely(access_ok(VERIFY_WRITE, addr, size)))
  395. return __clear_user(addr, size);
  396. if ((unsigned long)addr < TASK_SIZE) {
  397. unsigned long over = (unsigned long)addr + size - TASK_SIZE;
  398. return __clear_user(addr, size - over) + over;
  399. }
  400. return size;
  401. }
  402. extern int __strncpy_from_user(char *dst, const char __user *src, long count);
  403. static inline long strncpy_from_user(char *dst, const char __user *src,
  404. long count)
  405. {
  406. might_sleep();
  407. if (likely(access_ok(VERIFY_READ, src, 1)))
  408. return __strncpy_from_user(dst, src, count);
  409. return -EFAULT;
  410. }
  411. /*
  412. * Return the size of a string (including the ending 0)
  413. *
  414. * Return 0 for error
  415. */
  416. extern int __strnlen_user(const char __user *str, long len, unsigned long top);
  417. /*
  418. * Returns the length of the string at str (including the null byte),
  419. * or 0 if we hit a page we can't access,
  420. * or something > len if we didn't find a null byte.
  421. *
  422. * The `top' parameter to __strnlen_user is to make sure that
  423. * we can never overflow from the user area into kernel space.
  424. */
  425. static inline int strnlen_user(const char __user *str, long len)
  426. {
  427. unsigned long top = current->thread.fs.seg;
  428. if ((unsigned long)str > top)
  429. return 0;
  430. return __strnlen_user(str, len, top);
  431. }
  432. #define strlen_user(str) strnlen_user((str), 0x7ffffffe)
  433. #endif /* __ASSEMBLY__ */
  434. #endif /* __KERNEL__ */
  435. #endif /* _ARCH_POWERPC_UACCESS_H */