xref: /openbmc/linux/include/linux/bitops.h (revision 0fdbbe7e)
1 /* SPDX-License-Identifier: GPL-2.0 */
2 #ifndef _LINUX_BITOPS_H
3 #define _LINUX_BITOPS_H
4 
5 #include <asm/types.h>
6 #include <linux/bits.h>
7 #include <linux/typecheck.h>
8 
9 #include <uapi/linux/kernel.h>
10 
11 /* Set bits in the first 'n' bytes when loaded from memory */
12 #ifdef __LITTLE_ENDIAN
13 #  define aligned_byte_mask(n) ((1UL << 8*(n))-1)
14 #else
15 #  define aligned_byte_mask(n) (~0xffUL << (BITS_PER_LONG - 8 - 8*(n)))
16 #endif
17 
18 #define BITS_PER_TYPE(type)	(sizeof(type) * BITS_PER_BYTE)
19 #define BITS_TO_LONGS(nr)	__KERNEL_DIV_ROUND_UP(nr, BITS_PER_TYPE(long))
20 #define BITS_TO_U64(nr)		__KERNEL_DIV_ROUND_UP(nr, BITS_PER_TYPE(u64))
21 #define BITS_TO_U32(nr)		__KERNEL_DIV_ROUND_UP(nr, BITS_PER_TYPE(u32))
22 #define BITS_TO_BYTES(nr)	__KERNEL_DIV_ROUND_UP(nr, BITS_PER_TYPE(char))
23 
24 extern unsigned int __sw_hweight8(unsigned int w);
25 extern unsigned int __sw_hweight16(unsigned int w);
26 extern unsigned int __sw_hweight32(unsigned int w);
27 extern unsigned long __sw_hweight64(__u64 w);
28 
29 /*
30  * Defined here because those may be needed by architecture-specific static
31  * inlines.
32  */
33 
34 #include <asm-generic/bitops/generic-non-atomic.h>
35 
36 /*
37  * Many architecture-specific non-atomic bitops contain inline asm code and due
38  * to that the compiler can't optimize them to compile-time expressions or
39  * constants. In contrary, generic_*() helpers are defined in pure C and
40  * compilers optimize them just well.
41  * Therefore, to make `unsigned long foo = 0; __set_bit(BAR, &foo)` effectively
42  * equal to `unsigned long foo = BIT(BAR)`, pick the generic C alternative when
43  * the arguments can be resolved at compile time. That expression itself is a
44  * constant and doesn't bring any functional changes to the rest of cases.
45  * The casts to `uintptr_t` are needed to mitigate `-Waddress` warnings when
46  * passing a bitmap from .bss or .data (-> `!!addr` is always true).
47  */
48 #define bitop(op, nr, addr)						\
49 	((__builtin_constant_p(nr) &&					\
50 	  __builtin_constant_p((uintptr_t)(addr) != (uintptr_t)NULL) &&	\
51 	  (uintptr_t)(addr) != (uintptr_t)NULL &&			\
52 	  __builtin_constant_p(*(const unsigned long *)(addr))) ?	\
53 	 const##op(nr, addr) : op(nr, addr))
54 
55 #define __set_bit(nr, addr)		bitop(___set_bit, nr, addr)
56 #define __clear_bit(nr, addr)		bitop(___clear_bit, nr, addr)
57 #define __change_bit(nr, addr)		bitop(___change_bit, nr, addr)
58 #define __test_and_set_bit(nr, addr)	bitop(___test_and_set_bit, nr, addr)
59 #define __test_and_clear_bit(nr, addr)	bitop(___test_and_clear_bit, nr, addr)
60 #define __test_and_change_bit(nr, addr)	bitop(___test_and_change_bit, nr, addr)
61 #define test_bit(nr, addr)		bitop(_test_bit, nr, addr)
62 #define test_bit_acquire(nr, addr)	bitop(_test_bit_acquire, nr, addr)
63 
64 /*
65  * Include this here because some architectures need generic_ffs/fls in
66  * scope
67  */
68 #include <asm/bitops.h>
69 
70 /* Check that the bitops prototypes are sane */
71 #define __check_bitop_pr(name)						\
72 	static_assert(__same_type(arch_##name, generic_##name) &&	\
73 		      __same_type(const_##name, generic_##name) &&	\
74 		      __same_type(_##name, generic_##name))
75 
76 __check_bitop_pr(__set_bit);
77 __check_bitop_pr(__clear_bit);
78 __check_bitop_pr(__change_bit);
79 __check_bitop_pr(__test_and_set_bit);
80 __check_bitop_pr(__test_and_clear_bit);
81 __check_bitop_pr(__test_and_change_bit);
82 __check_bitop_pr(test_bit);
83 __check_bitop_pr(test_bit_acquire);
84 
85 #undef __check_bitop_pr
86 
get_bitmask_order(unsigned int count)87 static inline int get_bitmask_order(unsigned int count)
88 {
89 	int order;
90 
91 	order = fls(count);
92 	return order;	/* We could be slightly more clever with -1 here... */
93 }
94 
hweight_long(unsigned long w)95 static __always_inline unsigned long hweight_long(unsigned long w)
96 {
97 	return sizeof(w) == 4 ? hweight32(w) : hweight64((__u64)w);
98 }
99 
100 /**
101  * rol64 - rotate a 64-bit value left
102  * @word: value to rotate
103  * @shift: bits to roll
104  */
rol64(__u64 word,unsigned int shift)105 static inline __u64 rol64(__u64 word, unsigned int shift)
106 {
107 	return (word << (shift & 63)) | (word >> ((-shift) & 63));
108 }
109 
110 /**
111  * ror64 - rotate a 64-bit value right
112  * @word: value to rotate
113  * @shift: bits to roll
114  */
ror64(__u64 word,unsigned int shift)115 static inline __u64 ror64(__u64 word, unsigned int shift)
116 {
117 	return (word >> (shift & 63)) | (word << ((-shift) & 63));
118 }
119 
120 /**
121  * rol32 - rotate a 32-bit value left
122  * @word: value to rotate
123  * @shift: bits to roll
124  */
rol32(__u32 word,unsigned int shift)125 static inline __u32 rol32(__u32 word, unsigned int shift)
126 {
127 	return (word << (shift & 31)) | (word >> ((-shift) & 31));
128 }
129 
130 /**
131  * ror32 - rotate a 32-bit value right
132  * @word: value to rotate
133  * @shift: bits to roll
134  */
ror32(__u32 word,unsigned int shift)135 static inline __u32 ror32(__u32 word, unsigned int shift)
136 {
137 	return (word >> (shift & 31)) | (word << ((-shift) & 31));
138 }
139 
140 /**
141  * rol16 - rotate a 16-bit value left
142  * @word: value to rotate
143  * @shift: bits to roll
144  */
rol16(__u16 word,unsigned int shift)145 static inline __u16 rol16(__u16 word, unsigned int shift)
146 {
147 	return (word << (shift & 15)) | (word >> ((-shift) & 15));
148 }
149 
150 /**
151  * ror16 - rotate a 16-bit value right
152  * @word: value to rotate
153  * @shift: bits to roll
154  */
ror16(__u16 word,unsigned int shift)155 static inline __u16 ror16(__u16 word, unsigned int shift)
156 {
157 	return (word >> (shift & 15)) | (word << ((-shift) & 15));
158 }
159 
160 /**
161  * rol8 - rotate an 8-bit value left
162  * @word: value to rotate
163  * @shift: bits to roll
164  */
rol8(__u8 word,unsigned int shift)165 static inline __u8 rol8(__u8 word, unsigned int shift)
166 {
167 	return (word << (shift & 7)) | (word >> ((-shift) & 7));
168 }
169 
170 /**
171  * ror8 - rotate an 8-bit value right
172  * @word: value to rotate
173  * @shift: bits to roll
174  */
ror8(__u8 word,unsigned int shift)175 static inline __u8 ror8(__u8 word, unsigned int shift)
176 {
177 	return (word >> (shift & 7)) | (word << ((-shift) & 7));
178 }
179 
180 /**
181  * sign_extend32 - sign extend a 32-bit value using specified bit as sign-bit
182  * @value: value to sign extend
183  * @index: 0 based bit index (0<=index<32) to sign bit
184  *
185  * This is safe to use for 16- and 8-bit types as well.
186  */
sign_extend32(__u32 value,int index)187 static __always_inline __s32 sign_extend32(__u32 value, int index)
188 {
189 	__u8 shift = 31 - index;
190 	return (__s32)(value << shift) >> shift;
191 }
192 
193 /**
194  * sign_extend64 - sign extend a 64-bit value using specified bit as sign-bit
195  * @value: value to sign extend
196  * @index: 0 based bit index (0<=index<64) to sign bit
197  */
sign_extend64(__u64 value,int index)198 static __always_inline __s64 sign_extend64(__u64 value, int index)
199 {
200 	__u8 shift = 63 - index;
201 	return (__s64)(value << shift) >> shift;
202 }
203 
fls_long(unsigned long l)204 static inline unsigned fls_long(unsigned long l)
205 {
206 	if (sizeof(l) == 4)
207 		return fls(l);
208 	return fls64(l);
209 }
210 
get_count_order(unsigned int count)211 static inline int get_count_order(unsigned int count)
212 {
213 	if (count == 0)
214 		return -1;
215 
216 	return fls(--count);
217 }
218 
219 /**
220  * get_count_order_long - get order after rounding @l up to power of 2
221  * @l: parameter
222  *
223  * it is same as get_count_order() but with long type parameter
224  */
get_count_order_long(unsigned long l)225 static inline int get_count_order_long(unsigned long l)
226 {
227 	if (l == 0UL)
228 		return -1;
229 	return (int)fls_long(--l);
230 }
231 
232 /**
233  * __ffs64 - find first set bit in a 64 bit word
234  * @word: The 64 bit word
235  *
236  * On 64 bit arches this is a synonym for __ffs
237  * The result is not defined if no bits are set, so check that @word
238  * is non-zero before calling this.
239  */
__ffs64(u64 word)240 static inline unsigned long __ffs64(u64 word)
241 {
242 #if BITS_PER_LONG == 32
243 	if (((u32)word) == 0UL)
244 		return __ffs((u32)(word >> 32)) + 32;
245 #elif BITS_PER_LONG != 64
246 #error BITS_PER_LONG not 32 or 64
247 #endif
248 	return __ffs((unsigned long)word);
249 }
250 
251 /**
252  * fns - find N'th set bit in a word
253  * @word: The word to search
254  * @n: Bit to find
255  */
fns(unsigned long word,unsigned int n)256 static inline unsigned long fns(unsigned long word, unsigned int n)
257 {
258 	unsigned int bit;
259 
260 	while (word) {
261 		bit = __ffs(word);
262 		if (n-- == 0)
263 			return bit;
264 		__clear_bit(bit, &word);
265 	}
266 
267 	return BITS_PER_LONG;
268 }
269 
270 /**
271  * assign_bit - Assign value to a bit in memory
272  * @nr: the bit to set
273  * @addr: the address to start counting from
274  * @value: the value to assign
275  */
assign_bit(long nr,volatile unsigned long * addr,bool value)276 static __always_inline void assign_bit(long nr, volatile unsigned long *addr,
277 				       bool value)
278 {
279 	if (value)
280 		set_bit(nr, addr);
281 	else
282 		clear_bit(nr, addr);
283 }
284 
__assign_bit(long nr,volatile unsigned long * addr,bool value)285 static __always_inline void __assign_bit(long nr, volatile unsigned long *addr,
286 					 bool value)
287 {
288 	if (value)
289 		__set_bit(nr, addr);
290 	else
291 		__clear_bit(nr, addr);
292 }
293 
294 /**
295  * __ptr_set_bit - Set bit in a pointer's value
296  * @nr: the bit to set
297  * @addr: the address of the pointer variable
298  *
299  * Example:
300  *	void *p = foo();
301  *	__ptr_set_bit(bit, &p);
302  */
303 #define __ptr_set_bit(nr, addr)                         \
304 	({                                              \
305 		typecheck_pointer(*(addr));             \
306 		__set_bit(nr, (unsigned long *)(addr)); \
307 	})
308 
309 /**
310  * __ptr_clear_bit - Clear bit in a pointer's value
311  * @nr: the bit to clear
312  * @addr: the address of the pointer variable
313  *
314  * Example:
315  *	void *p = foo();
316  *	__ptr_clear_bit(bit, &p);
317  */
318 #define __ptr_clear_bit(nr, addr)                         \
319 	({                                                \
320 		typecheck_pointer(*(addr));               \
321 		__clear_bit(nr, (unsigned long *)(addr)); \
322 	})
323 
324 /**
325  * __ptr_test_bit - Test bit in a pointer's value
326  * @nr: the bit to test
327  * @addr: the address of the pointer variable
328  *
329  * Example:
330  *	void *p = foo();
331  *	if (__ptr_test_bit(bit, &p)) {
332  *	        ...
333  *	} else {
334  *		...
335  *	}
336  */
337 #define __ptr_test_bit(nr, addr)                       \
338 	({                                             \
339 		typecheck_pointer(*(addr));            \
340 		test_bit(nr, (unsigned long *)(addr)); \
341 	})
342 
343 #ifdef __KERNEL__
344 
345 #ifndef set_mask_bits
346 #define set_mask_bits(ptr, mask, bits)	\
347 ({								\
348 	const typeof(*(ptr)) mask__ = (mask), bits__ = (bits);	\
349 	typeof(*(ptr)) old__, new__;				\
350 								\
351 	old__ = READ_ONCE(*(ptr));				\
352 	do {							\
353 		new__ = (old__ & ~mask__) | bits__;		\
354 	} while (!try_cmpxchg(ptr, &old__, new__));		\
355 								\
356 	old__;							\
357 })
358 #endif
359 
360 #ifndef bit_clear_unless
361 #define bit_clear_unless(ptr, clear, test)	\
362 ({								\
363 	const typeof(*(ptr)) clear__ = (clear), test__ = (test);\
364 	typeof(*(ptr)) old__, new__;				\
365 								\
366 	old__ = READ_ONCE(*(ptr));				\
367 	do {							\
368 		if (old__ & test__)				\
369 			break;					\
370 		new__ = old__ & ~clear__;			\
371 	} while (!try_cmpxchg(ptr, &old__, new__));		\
372 								\
373 	!(old__ & test__);					\
374 })
375 #endif
376 
377 #endif /* __KERNEL__ */
378 #endif
379