1 #ifndef _ARCH_POWERPC_UACCESS_H 2 #define _ARCH_POWERPC_UACCESS_H 3 4 #ifdef __KERNEL__ 5 #ifndef __ASSEMBLY__ 6 7 #include <linux/sched.h> 8 #include <linux/errno.h> 9 #include <asm/asm-compat.h> 10 #include <asm/processor.h> 11 #include <asm/page.h> 12 13 #define VERIFY_READ 0 14 #define VERIFY_WRITE 1 15 16 /* 17 * The fs value determines whether argument validity checking should be 18 * performed or not. If get_fs() == USER_DS, checking is performed, with 19 * get_fs() == KERNEL_DS, checking is bypassed. 20 * 21 * For historical reasons, these macros are grossly misnamed. 22 * 23 * The fs/ds values are now the highest legal address in the "segment". 24 * This simplifies the checking in the routines below. 25 */ 26 27 #define MAKE_MM_SEG(s) ((mm_segment_t) { (s) }) 28 29 #define KERNEL_DS MAKE_MM_SEG(~0UL) 30 #ifdef __powerpc64__ 31 /* We use TASK_SIZE_USER64 as TASK_SIZE is not constant */ 32 #define USER_DS MAKE_MM_SEG(TASK_SIZE_USER64 - 1) 33 #else 34 #define USER_DS MAKE_MM_SEG(TASK_SIZE - 1) 35 #endif 36 37 #define get_ds() (KERNEL_DS) 38 #define get_fs() (current->thread.fs) 39 #define set_fs(val) (current->thread.fs = (val)) 40 41 #define segment_eq(a, b) ((a).seg == (b).seg) 42 43 #define user_addr_max() (get_fs().seg) 44 45 #ifdef __powerpc64__ 46 /* 47 * This check is sufficient because there is a large enough 48 * gap between user addresses and the kernel addresses 49 */ 50 #define __access_ok(addr, size, segment) \ 51 (((addr) <= (segment).seg) && ((size) <= (segment).seg)) 52 53 #else 54 55 #define __access_ok(addr, size, segment) \ 56 (((addr) <= (segment).seg) && \ 57 (((size) == 0) || (((size) - 1) <= ((segment).seg - (addr))))) 58 59 #endif 60 61 #define access_ok(type, addr, size) \ 62 (__chk_user_ptr(addr), \ 63 __access_ok((__force unsigned long)(addr), (size), get_fs())) 64 65 /* 66 * The exception table consists of pairs of addresses: the first is the 67 * address of an instruction that is allowed to fault, and the second is 68 * the address at which the program should continue. No registers are 69 * modified, so it is entirely up to the continuation code to figure out 70 * what to do. 71 * 72 * All the routines below use bits of fixup code that are out of line 73 * with the main instruction path. This means when everything is well, 74 * we don't even have to jump over them. Further, they do not intrude 75 * on our cache or tlb entries. 76 */ 77 78 struct exception_table_entry { 79 unsigned long insn; 80 unsigned long fixup; 81 }; 82 83 /* 84 * These are the main single-value transfer routines. They automatically 85 * use the right size if we just have the right pointer type. 86 * 87 * This gets kind of ugly. We want to return _two_ values in "get_user()" 88 * and yet we don't want to do any pointers, because that is too much 89 * of a performance impact. Thus we have a few rather ugly macros here, 90 * and hide all the ugliness from the user. 91 * 92 * The "__xxx" versions of the user access functions are versions that 93 * do not verify the address space, that must have been done previously 94 * with a separate "access_ok()" call (this is used when we do multiple 95 * accesses to the same area of user memory). 96 * 97 * As we use the same address space for kernel and user data on the 98 * PowerPC, we can just do these as direct assignments. (Of course, the 99 * exception handling means that it's no longer "just"...) 100 * 101 * The "user64" versions of the user access functions are versions that 102 * allow access of 64-bit data. The "get_user" functions do not 103 * properly handle 64-bit data because the value gets down cast to a long. 104 * The "put_user" functions already handle 64-bit data properly but we add 105 * "user64" versions for completeness 106 */ 107 #define get_user(x, ptr) \ 108 __get_user_check((x), (ptr), sizeof(*(ptr))) 109 #define put_user(x, ptr) \ 110 __put_user_check((__typeof__(*(ptr)))(x), (ptr), sizeof(*(ptr))) 111 112 #define __get_user(x, ptr) \ 113 __get_user_nocheck((x), (ptr), sizeof(*(ptr))) 114 #define __put_user(x, ptr) \ 115 __put_user_nocheck((__typeof__(*(ptr)))(x), (ptr), sizeof(*(ptr))) 116 117 #ifndef __powerpc64__ 118 #define __get_user64(x, ptr) \ 119 __get_user64_nocheck((x), (ptr), sizeof(*(ptr))) 120 #define __put_user64(x, ptr) __put_user(x, ptr) 121 #endif 122 123 #define __get_user_inatomic(x, ptr) \ 124 __get_user_nosleep((x), (ptr), sizeof(*(ptr))) 125 #define __put_user_inatomic(x, ptr) \ 126 __put_user_nosleep((__typeof__(*(ptr)))(x), (ptr), sizeof(*(ptr))) 127 128 #define __get_user_unaligned __get_user 129 #define __put_user_unaligned __put_user 130 131 extern long __put_user_bad(void); 132 133 /* 134 * We don't tell gcc that we are accessing memory, but this is OK 135 * because we do not write to any memory gcc knows about, so there 136 * are no aliasing issues. 137 */ 138 #define __put_user_asm(x, addr, err, op) \ 139 __asm__ __volatile__( \ 140 "1: " op " %1,0(%2) # put_user\n" \ 141 "2:\n" \ 142 ".section .fixup,\"ax\"\n" \ 143 "3: li %0,%3\n" \ 144 " b 2b\n" \ 145 ".previous\n" \ 146 ".section __ex_table,\"a\"\n" \ 147 PPC_LONG_ALIGN "\n" \ 148 PPC_LONG "1b,3b\n" \ 149 ".previous" \ 150 : "=r" (err) \ 151 : "r" (x), "b" (addr), "i" (-EFAULT), "0" (err)) 152 153 #ifdef __powerpc64__ 154 #define __put_user_asm2(x, ptr, retval) \ 155 __put_user_asm(x, ptr, retval, "std") 156 #else /* __powerpc64__ */ 157 #define __put_user_asm2(x, addr, err) \ 158 __asm__ __volatile__( \ 159 "1: stw %1,0(%2)\n" \ 160 "2: stw %1+1,4(%2)\n" \ 161 "3:\n" \ 162 ".section .fixup,\"ax\"\n" \ 163 "4: li %0,%3\n" \ 164 " b 3b\n" \ 165 ".previous\n" \ 166 ".section __ex_table,\"a\"\n" \ 167 PPC_LONG_ALIGN "\n" \ 168 PPC_LONG "1b,4b\n" \ 169 PPC_LONG "2b,4b\n" \ 170 ".previous" \ 171 : "=r" (err) \ 172 : "r" (x), "b" (addr), "i" (-EFAULT), "0" (err)) 173 #endif /* __powerpc64__ */ 174 175 #define __put_user_size(x, ptr, size, retval) \ 176 do { \ 177 retval = 0; \ 178 switch (size) { \ 179 case 1: __put_user_asm(x, ptr, retval, "stb"); break; \ 180 case 2: __put_user_asm(x, ptr, retval, "sth"); break; \ 181 case 4: __put_user_asm(x, ptr, retval, "stw"); break; \ 182 case 8: __put_user_asm2(x, ptr, retval); break; \ 183 default: __put_user_bad(); \ 184 } \ 185 } while (0) 186 187 #define __put_user_nocheck(x, ptr, size) \ 188 ({ \ 189 long __pu_err; \ 190 __typeof__(*(ptr)) __user *__pu_addr = (ptr); \ 191 if (!is_kernel_addr((unsigned long)__pu_addr)) \ 192 might_sleep(); \ 193 __chk_user_ptr(ptr); \ 194 __put_user_size((x), __pu_addr, (size), __pu_err); \ 195 __pu_err; \ 196 }) 197 198 #define __put_user_check(x, ptr, size) \ 199 ({ \ 200 long __pu_err = -EFAULT; \ 201 __typeof__(*(ptr)) __user *__pu_addr = (ptr); \ 202 might_sleep(); \ 203 if (access_ok(VERIFY_WRITE, __pu_addr, size)) \ 204 __put_user_size((x), __pu_addr, (size), __pu_err); \ 205 __pu_err; \ 206 }) 207 208 #define __put_user_nosleep(x, ptr, size) \ 209 ({ \ 210 long __pu_err; \ 211 __typeof__(*(ptr)) __user *__pu_addr = (ptr); \ 212 __chk_user_ptr(ptr); \ 213 __put_user_size((x), __pu_addr, (size), __pu_err); \ 214 __pu_err; \ 215 }) 216 217 218 extern long __get_user_bad(void); 219 220 #define __get_user_asm(x, addr, err, op) \ 221 __asm__ __volatile__( \ 222 "1: "op" %1,0(%2) # get_user\n" \ 223 "2:\n" \ 224 ".section .fixup,\"ax\"\n" \ 225 "3: li %0,%3\n" \ 226 " li %1,0\n" \ 227 " b 2b\n" \ 228 ".previous\n" \ 229 ".section __ex_table,\"a\"\n" \ 230 PPC_LONG_ALIGN "\n" \ 231 PPC_LONG "1b,3b\n" \ 232 ".previous" \ 233 : "=r" (err), "=r" (x) \ 234 : "b" (addr), "i" (-EFAULT), "0" (err)) 235 236 #ifdef __powerpc64__ 237 #define __get_user_asm2(x, addr, err) \ 238 __get_user_asm(x, addr, err, "ld") 239 #else /* __powerpc64__ */ 240 #define __get_user_asm2(x, addr, err) \ 241 __asm__ __volatile__( \ 242 "1: lwz %1,0(%2)\n" \ 243 "2: lwz %1+1,4(%2)\n" \ 244 "3:\n" \ 245 ".section .fixup,\"ax\"\n" \ 246 "4: li %0,%3\n" \ 247 " li %1,0\n" \ 248 " li %1+1,0\n" \ 249 " b 3b\n" \ 250 ".previous\n" \ 251 ".section __ex_table,\"a\"\n" \ 252 PPC_LONG_ALIGN "\n" \ 253 PPC_LONG "1b,4b\n" \ 254 PPC_LONG "2b,4b\n" \ 255 ".previous" \ 256 : "=r" (err), "=&r" (x) \ 257 : "b" (addr), "i" (-EFAULT), "0" (err)) 258 #endif /* __powerpc64__ */ 259 260 #define __get_user_size(x, ptr, size, retval) \ 261 do { \ 262 retval = 0; \ 263 __chk_user_ptr(ptr); \ 264 if (size > sizeof(x)) \ 265 (x) = __get_user_bad(); \ 266 switch (size) { \ 267 case 1: __get_user_asm(x, ptr, retval, "lbz"); break; \ 268 case 2: __get_user_asm(x, ptr, retval, "lhz"); break; \ 269 case 4: __get_user_asm(x, ptr, retval, "lwz"); break; \ 270 case 8: __get_user_asm2(x, ptr, retval); break; \ 271 default: (x) = __get_user_bad(); \ 272 } \ 273 } while (0) 274 275 #define __get_user_nocheck(x, ptr, size) \ 276 ({ \ 277 long __gu_err; \ 278 unsigned long __gu_val; \ 279 const __typeof__(*(ptr)) __user *__gu_addr = (ptr); \ 280 __chk_user_ptr(ptr); \ 281 if (!is_kernel_addr((unsigned long)__gu_addr)) \ 282 might_sleep(); \ 283 __get_user_size(__gu_val, __gu_addr, (size), __gu_err); \ 284 (x) = (__typeof__(*(ptr)))__gu_val; \ 285 __gu_err; \ 286 }) 287 288 #ifndef __powerpc64__ 289 #define __get_user64_nocheck(x, ptr, size) \ 290 ({ \ 291 long __gu_err; \ 292 long long __gu_val; \ 293 const __typeof__(*(ptr)) __user *__gu_addr = (ptr); \ 294 __chk_user_ptr(ptr); \ 295 if (!is_kernel_addr((unsigned long)__gu_addr)) \ 296 might_sleep(); \ 297 __get_user_size(__gu_val, __gu_addr, (size), __gu_err); \ 298 (x) = (__typeof__(*(ptr)))__gu_val; \ 299 __gu_err; \ 300 }) 301 #endif /* __powerpc64__ */ 302 303 #define __get_user_check(x, ptr, size) \ 304 ({ \ 305 long __gu_err = -EFAULT; \ 306 unsigned long __gu_val = 0; \ 307 const __typeof__(*(ptr)) __user *__gu_addr = (ptr); \ 308 might_sleep(); \ 309 if (access_ok(VERIFY_READ, __gu_addr, (size))) \ 310 __get_user_size(__gu_val, __gu_addr, (size), __gu_err); \ 311 (x) = (__typeof__(*(ptr)))__gu_val; \ 312 __gu_err; \ 313 }) 314 315 #define __get_user_nosleep(x, ptr, size) \ 316 ({ \ 317 long __gu_err; \ 318 unsigned long __gu_val; \ 319 const __typeof__(*(ptr)) __user *__gu_addr = (ptr); \ 320 __chk_user_ptr(ptr); \ 321 __get_user_size(__gu_val, __gu_addr, (size), __gu_err); \ 322 (x) = (__typeof__(*(ptr)))__gu_val; \ 323 __gu_err; \ 324 }) 325 326 327 /* more complex routines */ 328 329 extern unsigned long __copy_tofrom_user(void __user *to, 330 const void __user *from, unsigned long size); 331 332 #ifndef __powerpc64__ 333 334 static inline unsigned long copy_from_user(void *to, 335 const void __user *from, unsigned long n) 336 { 337 unsigned long over; 338 339 if (access_ok(VERIFY_READ, from, n)) 340 return __copy_tofrom_user((__force void __user *)to, from, n); 341 if ((unsigned long)from < TASK_SIZE) { 342 over = (unsigned long)from + n - TASK_SIZE; 343 return __copy_tofrom_user((__force void __user *)to, from, 344 n - over) + over; 345 } 346 return n; 347 } 348 349 static inline unsigned long copy_to_user(void __user *to, 350 const void *from, unsigned long n) 351 { 352 unsigned long over; 353 354 if (access_ok(VERIFY_WRITE, to, n)) 355 return __copy_tofrom_user(to, (__force void __user *)from, n); 356 if ((unsigned long)to < TASK_SIZE) { 357 over = (unsigned long)to + n - TASK_SIZE; 358 return __copy_tofrom_user(to, (__force void __user *)from, 359 n - over) + over; 360 } 361 return n; 362 } 363 364 #else /* __powerpc64__ */ 365 366 #define __copy_in_user(to, from, size) \ 367 __copy_tofrom_user((to), (from), (size)) 368 369 extern unsigned long copy_from_user(void *to, const void __user *from, 370 unsigned long n); 371 extern unsigned long copy_to_user(void __user *to, const void *from, 372 unsigned long n); 373 extern unsigned long copy_in_user(void __user *to, const void __user *from, 374 unsigned long n); 375 376 #endif /* __powerpc64__ */ 377 378 static inline unsigned long __copy_from_user_inatomic(void *to, 379 const void __user *from, unsigned long n) 380 { 381 if (__builtin_constant_p(n) && (n <= 8)) { 382 unsigned long ret = 1; 383 384 switch (n) { 385 case 1: 386 __get_user_size(*(u8 *)to, from, 1, ret); 387 break; 388 case 2: 389 __get_user_size(*(u16 *)to, from, 2, ret); 390 break; 391 case 4: 392 __get_user_size(*(u32 *)to, from, 4, ret); 393 break; 394 case 8: 395 __get_user_size(*(u64 *)to, from, 8, ret); 396 break; 397 } 398 if (ret == 0) 399 return 0; 400 } 401 return __copy_tofrom_user((__force void __user *)to, from, n); 402 } 403 404 static inline unsigned long __copy_to_user_inatomic(void __user *to, 405 const void *from, unsigned long n) 406 { 407 if (__builtin_constant_p(n) && (n <= 8)) { 408 unsigned long ret = 1; 409 410 switch (n) { 411 case 1: 412 __put_user_size(*(u8 *)from, (u8 __user *)to, 1, ret); 413 break; 414 case 2: 415 __put_user_size(*(u16 *)from, (u16 __user *)to, 2, ret); 416 break; 417 case 4: 418 __put_user_size(*(u32 *)from, (u32 __user *)to, 4, ret); 419 break; 420 case 8: 421 __put_user_size(*(u64 *)from, (u64 __user *)to, 8, ret); 422 break; 423 } 424 if (ret == 0) 425 return 0; 426 } 427 return __copy_tofrom_user(to, (__force const void __user *)from, n); 428 } 429 430 static inline unsigned long __copy_from_user(void *to, 431 const void __user *from, unsigned long size) 432 { 433 might_sleep(); 434 return __copy_from_user_inatomic(to, from, size); 435 } 436 437 static inline unsigned long __copy_to_user(void __user *to, 438 const void *from, unsigned long size) 439 { 440 might_sleep(); 441 return __copy_to_user_inatomic(to, from, size); 442 } 443 444 extern unsigned long __clear_user(void __user *addr, unsigned long size); 445 446 static inline unsigned long clear_user(void __user *addr, unsigned long size) 447 { 448 might_sleep(); 449 if (likely(access_ok(VERIFY_WRITE, addr, size))) 450 return __clear_user(addr, size); 451 if ((unsigned long)addr < TASK_SIZE) { 452 unsigned long over = (unsigned long)addr + size - TASK_SIZE; 453 return __clear_user(addr, size - over) + over; 454 } 455 return size; 456 } 457 458 extern long strncpy_from_user(char *dst, const char __user *src, long count); 459 extern __must_check long strlen_user(const char __user *str); 460 extern __must_check long strnlen_user(const char __user *str, long n); 461 462 #endif /* __ASSEMBLY__ */ 463 #endif /* __KERNEL__ */ 464 465 #endif /* _ARCH_POWERPC_UACCESS_H */ 466