xref: /linux/arch/powerpc/include/asm/uaccess.h (revision 95e9fd10f06cb5642028b6b851e32b8c8afb4571)
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