uaccess.h 10 KB

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  1. #ifndef __PARISC_UACCESS_H
  2. #define __PARISC_UACCESS_H
  3. /*
  4. * User space memory access functions
  5. */
  6. #include <linux/sched.h>
  7. #include <asm/page.h>
  8. #include <asm/system.h>
  9. #include <asm/cache.h>
  10. #include <asm-generic/uaccess.h>
  11. #define VERIFY_READ 0
  12. #define VERIFY_WRITE 1
  13. #define KERNEL_DS ((mm_segment_t){0})
  14. #define USER_DS ((mm_segment_t){1})
  15. #define segment_eq(a,b) ((a).seg == (b).seg)
  16. #define get_ds() (KERNEL_DS)
  17. #define get_fs() (current_thread_info()->addr_limit)
  18. #define set_fs(x) (current_thread_info()->addr_limit = (x))
  19. /*
  20. * Note that since kernel addresses are in a separate address space on
  21. * parisc, we don't need to do anything for access_ok().
  22. * We just let the page fault handler do the right thing. This also means
  23. * that put_user is the same as __put_user, etc.
  24. */
  25. extern int __get_kernel_bad(void);
  26. extern int __get_user_bad(void);
  27. extern int __put_kernel_bad(void);
  28. extern int __put_user_bad(void);
  29. static inline long access_ok(int type, const void __user * addr,
  30. unsigned long size)
  31. {
  32. return 1;
  33. }
  34. #define put_user __put_user
  35. #define get_user __get_user
  36. #if BITS_PER_LONG == 32
  37. #define LDD_KERNEL(ptr) __get_kernel_bad();
  38. #define LDD_USER(ptr) __get_user_bad();
  39. #define STD_KERNEL(x, ptr) __put_kernel_asm64(x,ptr)
  40. #define STD_USER(x, ptr) __put_user_asm64(x,ptr)
  41. #else
  42. #define LDD_KERNEL(ptr) __get_kernel_asm("ldd",ptr)
  43. #define LDD_USER(ptr) __get_user_asm("ldd",ptr)
  44. #define STD_KERNEL(x, ptr) __put_kernel_asm("std",x,ptr)
  45. #define STD_USER(x, ptr) __put_user_asm("std",x,ptr)
  46. #endif
  47. /*
  48. * The exception table contains two values: the first is an address
  49. * for an instruction that is allowed to fault, and the second is
  50. * the address to the fixup routine.
  51. */
  52. struct exception_table_entry {
  53. unsigned long insn; /* address of insn that is allowed to fault. */
  54. long fixup; /* fixup routine */
  55. };
  56. /*
  57. * The page fault handler stores, in a per-cpu area, the following information
  58. * if a fixup routine is available.
  59. */
  60. struct exception_data {
  61. unsigned long fault_ip;
  62. unsigned long fault_space;
  63. unsigned long fault_addr;
  64. };
  65. #define __get_user(x,ptr) \
  66. ({ \
  67. register long __gu_err __asm__ ("r8") = 0; \
  68. register long __gu_val __asm__ ("r9") = 0; \
  69. \
  70. if (segment_eq(get_fs(),KERNEL_DS)) { \
  71. switch (sizeof(*(ptr))) { \
  72. case 1: __get_kernel_asm("ldb",ptr); break; \
  73. case 2: __get_kernel_asm("ldh",ptr); break; \
  74. case 4: __get_kernel_asm("ldw",ptr); break; \
  75. case 8: LDD_KERNEL(ptr); break; \
  76. default: __get_kernel_bad(); break; \
  77. } \
  78. } \
  79. else { \
  80. switch (sizeof(*(ptr))) { \
  81. case 1: __get_user_asm("ldb",ptr); break; \
  82. case 2: __get_user_asm("ldh",ptr); break; \
  83. case 4: __get_user_asm("ldw",ptr); break; \
  84. case 8: LDD_USER(ptr); break; \
  85. default: __get_user_bad(); break; \
  86. } \
  87. } \
  88. \
  89. (x) = (__typeof__(*(ptr))) __gu_val; \
  90. __gu_err; \
  91. })
  92. #ifdef __LP64__
  93. #define __get_kernel_asm(ldx,ptr) \
  94. __asm__("\n1:\t" ldx "\t0(%2),%0\n" \
  95. "\t.section __ex_table,\"aw\"\n" \
  96. "\t.dword\t1b,fixup_get_user_skip_1\n" \
  97. "\t.previous" \
  98. : "=r"(__gu_val), "=r"(__gu_err) \
  99. : "r"(ptr), "1"(__gu_err) \
  100. : "r1");
  101. #define __get_user_asm(ldx,ptr) \
  102. __asm__("\n1:\t" ldx "\t0(%%sr3,%2),%0\n" \
  103. "\t.section __ex_table,\"aw\"\n" \
  104. "\t.dword\t1b,fixup_get_user_skip_1\n" \
  105. "\t.previous" \
  106. : "=r"(__gu_val), "=r"(__gu_err) \
  107. : "r"(ptr), "1"(__gu_err) \
  108. : "r1");
  109. #else
  110. #define __get_kernel_asm(ldx,ptr) \
  111. __asm__("\n1:\t" ldx "\t0(%2),%0\n" \
  112. "\t.section __ex_table,\"aw\"\n" \
  113. "\t.word\t1b,fixup_get_user_skip_1\n" \
  114. "\t.previous" \
  115. : "=r"(__gu_val), "=r"(__gu_err) \
  116. : "r"(ptr), "1"(__gu_err) \
  117. : "r1");
  118. #define __get_user_asm(ldx,ptr) \
  119. __asm__("\n1:\t" ldx "\t0(%%sr3,%2),%0\n" \
  120. "\t.section __ex_table,\"aw\"\n" \
  121. "\t.word\t1b,fixup_get_user_skip_1\n" \
  122. "\t.previous" \
  123. : "=r"(__gu_val), "=r"(__gu_err) \
  124. : "r"(ptr), "1"(__gu_err) \
  125. : "r1");
  126. #endif /* !__LP64__ */
  127. #define __put_user(x,ptr) \
  128. ({ \
  129. register long __pu_err __asm__ ("r8") = 0; \
  130. __typeof__(*(ptr)) __x = (__typeof__(*(ptr)))(x); \
  131. \
  132. if (segment_eq(get_fs(),KERNEL_DS)) { \
  133. switch (sizeof(*(ptr))) { \
  134. case 1: __put_kernel_asm("stb",__x,ptr); break; \
  135. case 2: __put_kernel_asm("sth",__x,ptr); break; \
  136. case 4: __put_kernel_asm("stw",__x,ptr); break; \
  137. case 8: STD_KERNEL(__x,ptr); break; \
  138. default: __put_kernel_bad(); break; \
  139. } \
  140. } \
  141. else { \
  142. switch (sizeof(*(ptr))) { \
  143. case 1: __put_user_asm("stb",__x,ptr); break; \
  144. case 2: __put_user_asm("sth",__x,ptr); break; \
  145. case 4: __put_user_asm("stw",__x,ptr); break; \
  146. case 8: STD_USER(__x,ptr); break; \
  147. default: __put_user_bad(); break; \
  148. } \
  149. } \
  150. \
  151. __pu_err; \
  152. })
  153. /*
  154. * The "__put_user/kernel_asm()" macros tell gcc they read from memory
  155. * instead of writing. This is because they do not write to any memory
  156. * gcc knows about, so there are no aliasing issues. These macros must
  157. * also be aware that "fixup_put_user_skip_[12]" are executed in the
  158. * context of the fault, and any registers used there must be listed
  159. * as clobbers. In this case only "r1" is used by the current routines.
  160. * r8/r9 are already listed as err/val.
  161. */
  162. #ifdef __LP64__
  163. #define __put_kernel_asm(stx,x,ptr) \
  164. __asm__ __volatile__ ( \
  165. "\n1:\t" stx "\t%2,0(%1)\n" \
  166. "\t.section __ex_table,\"aw\"\n" \
  167. "\t.dword\t1b,fixup_put_user_skip_1\n" \
  168. "\t.previous" \
  169. : "=r"(__pu_err) \
  170. : "r"(ptr), "r"(x), "0"(__pu_err) \
  171. : "r1")
  172. #define __put_user_asm(stx,x,ptr) \
  173. __asm__ __volatile__ ( \
  174. "\n1:\t" stx "\t%2,0(%%sr3,%1)\n" \
  175. "\t.section __ex_table,\"aw\"\n" \
  176. "\t.dword\t1b,fixup_put_user_skip_1\n" \
  177. "\t.previous" \
  178. : "=r"(__pu_err) \
  179. : "r"(ptr), "r"(x), "0"(__pu_err) \
  180. : "r1")
  181. #else
  182. #define __put_kernel_asm(stx,x,ptr) \
  183. __asm__ __volatile__ ( \
  184. "\n1:\t" stx "\t%2,0(%1)\n" \
  185. "\t.section __ex_table,\"aw\"\n" \
  186. "\t.word\t1b,fixup_put_user_skip_1\n" \
  187. "\t.previous" \
  188. : "=r"(__pu_err) \
  189. : "r"(ptr), "r"(x), "0"(__pu_err) \
  190. : "r1")
  191. #define __put_user_asm(stx,x,ptr) \
  192. __asm__ __volatile__ ( \
  193. "\n1:\t" stx "\t%2,0(%%sr3,%1)\n" \
  194. "\t.section __ex_table,\"aw\"\n" \
  195. "\t.word\t1b,fixup_put_user_skip_1\n" \
  196. "\t.previous" \
  197. : "=r"(__pu_err) \
  198. : "r"(ptr), "r"(x), "0"(__pu_err) \
  199. : "r1")
  200. #define __put_kernel_asm64(__val,ptr) do { \
  201. u64 __val64 = (u64)(__val); \
  202. u32 hi = (__val64) >> 32; \
  203. u32 lo = (__val64) & 0xffffffff; \
  204. __asm__ __volatile__ ( \
  205. "\n1:\tstw %2,0(%1)\n" \
  206. "\n2:\tstw %3,4(%1)\n" \
  207. "\t.section __ex_table,\"aw\"\n" \
  208. "\t.word\t1b,fixup_put_user_skip_2\n" \
  209. "\t.word\t2b,fixup_put_user_skip_1\n" \
  210. "\t.previous" \
  211. : "=r"(__pu_err) \
  212. : "r"(ptr), "r"(hi), "r"(lo), "0"(__pu_err) \
  213. : "r1"); \
  214. } while (0)
  215. #define __put_user_asm64(__val,ptr) do { \
  216. u64 __val64 = (u64)__val; \
  217. u32 hi = (__val64) >> 32; \
  218. u32 lo = (__val64) & 0xffffffff; \
  219. __asm__ __volatile__ ( \
  220. "\n1:\tstw %2,0(%%sr3,%1)\n" \
  221. "\n2:\tstw %3,4(%%sr3,%1)\n" \
  222. "\t.section __ex_table,\"aw\"\n" \
  223. "\t.word\t1b,fixup_get_user_skip_2\n" \
  224. "\t.word\t2b,fixup_get_user_skip_1\n" \
  225. "\t.previous" \
  226. : "=r"(__pu_err) \
  227. : "r"(ptr), "r"(hi), "r"(lo), "0"(__pu_err) \
  228. : "r1"); \
  229. } while (0)
  230. #endif /* !__LP64__ */
  231. /*
  232. * Complex access routines -- external declarations
  233. */
  234. extern unsigned long lcopy_to_user(void __user *, const void *, unsigned long);
  235. extern unsigned long lcopy_from_user(void *, const void __user *, unsigned long);
  236. extern unsigned long lcopy_in_user(void __user *, const void __user *, unsigned long);
  237. extern long lstrncpy_from_user(char *, const char __user *, long);
  238. extern unsigned lclear_user(void __user *,unsigned long);
  239. extern long lstrnlen_user(const char __user *,long);
  240. /*
  241. * Complex access routines -- macros
  242. */
  243. #define strncpy_from_user lstrncpy_from_user
  244. #define strnlen_user lstrnlen_user
  245. #define strlen_user(str) lstrnlen_user(str, 0x7fffffffL)
  246. #define clear_user lclear_user
  247. #define __clear_user lclear_user
  248. unsigned long copy_to_user(void __user *dst, const void *src, unsigned long len);
  249. #define __copy_to_user copy_to_user
  250. unsigned long copy_from_user(void *dst, const void __user *src, unsigned long len);
  251. #define __copy_from_user copy_from_user
  252. unsigned long copy_in_user(void __user *dst, const void __user *src, unsigned long len);
  253. #define __copy_in_user copy_in_user
  254. #define __copy_to_user_inatomic __copy_to_user
  255. #define __copy_from_user_inatomic __copy_from_user
  256. #endif /* __PARISC_UACCESS_H */