xref: /linux-6.15/include/linux/bitmap.h (revision 7733aa89)
1 /* SPDX-License-Identifier: GPL-2.0 */
2 #ifndef __LINUX_BITMAP_H
3 #define __LINUX_BITMAP_H
4 
5 #ifndef __ASSEMBLY__
6 
7 #include <linux/align.h>
8 #include <linux/bitops.h>
9 #include <linux/find.h>
10 #include <linux/limits.h>
11 #include <linux/string.h>
12 #include <linux/types.h>
13 
14 struct device;
15 
16 /*
17  * bitmaps provide bit arrays that consume one or more unsigned
18  * longs.  The bitmap interface and available operations are listed
19  * here, in bitmap.h
20  *
21  * Function implementations generic to all architectures are in
22  * lib/bitmap.c.  Functions implementations that are architecture
23  * specific are in various include/asm-<arch>/bitops.h headers
24  * and other arch/<arch> specific files.
25  *
26  * See lib/bitmap.c for more details.
27  */
28 
29 /**
30  * DOC: bitmap overview
31  *
32  * The available bitmap operations and their rough meaning in the
33  * case that the bitmap is a single unsigned long are thus:
34  *
35  * The generated code is more efficient when nbits is known at
36  * compile-time and at most BITS_PER_LONG.
37  *
38  * ::
39  *
40  *  bitmap_zero(dst, nbits)                     *dst = 0UL
41  *  bitmap_fill(dst, nbits)                     *dst = ~0UL
42  *  bitmap_copy(dst, src, nbits)                *dst = *src
43  *  bitmap_and(dst, src1, src2, nbits)          *dst = *src1 & *src2
44  *  bitmap_or(dst, src1, src2, nbits)           *dst = *src1 | *src2
45  *  bitmap_xor(dst, src1, src2, nbits)          *dst = *src1 ^ *src2
46  *  bitmap_andnot(dst, src1, src2, nbits)       *dst = *src1 & ~(*src2)
47  *  bitmap_complement(dst, src, nbits)          *dst = ~(*src)
48  *  bitmap_equal(src1, src2, nbits)             Are *src1 and *src2 equal?
49  *  bitmap_intersects(src1, src2, nbits)        Do *src1 and *src2 overlap?
50  *  bitmap_subset(src1, src2, nbits)            Is *src1 a subset of *src2?
51  *  bitmap_empty(src, nbits)                    Are all bits zero in *src?
52  *  bitmap_full(src, nbits)                     Are all bits set in *src?
53  *  bitmap_weight(src, nbits)                   Hamming Weight: number set bits
54  *  bitmap_weight_and(src1, src2, nbits)        Hamming Weight of and'ed bitmap
55  *  bitmap_set(dst, pos, nbits)                 Set specified bit area
56  *  bitmap_clear(dst, pos, nbits)               Clear specified bit area
57  *  bitmap_find_next_zero_area(buf, len, pos, n, mask)  Find bit free area
58  *  bitmap_find_next_zero_area_off(buf, len, pos, n, mask, mask_off)  as above
59  *  bitmap_shift_right(dst, src, n, nbits)      *dst = *src >> n
60  *  bitmap_shift_left(dst, src, n, nbits)       *dst = *src << n
61  *  bitmap_cut(dst, src, first, n, nbits)       Cut n bits from first, copy rest
62  *  bitmap_replace(dst, old, new, mask, nbits)  *dst = (*old & ~(*mask)) | (*new & *mask)
63  *  bitmap_remap(dst, src, old, new, nbits)     *dst = map(old, new)(src)
64  *  bitmap_bitremap(oldbit, old, new, nbits)    newbit = map(old, new)(oldbit)
65  *  bitmap_onto(dst, orig, relmap, nbits)       *dst = orig relative to relmap
66  *  bitmap_fold(dst, orig, sz, nbits)           dst bits = orig bits mod sz
67  *  bitmap_parse(buf, buflen, dst, nbits)       Parse bitmap dst from kernel buf
68  *  bitmap_parse_user(ubuf, ulen, dst, nbits)   Parse bitmap dst from user buf
69  *  bitmap_parselist(buf, dst, nbits)           Parse bitmap dst from kernel buf
70  *  bitmap_parselist_user(buf, dst, nbits)      Parse bitmap dst from user buf
71  *  bitmap_find_free_region(bitmap, bits, order)  Find and allocate bit region
72  *  bitmap_release_region(bitmap, pos, order)   Free specified bit region
73  *  bitmap_allocate_region(bitmap, pos, order)  Allocate specified bit region
74  *  bitmap_from_arr32(dst, buf, nbits)          Copy nbits from u32[] buf to dst
75  *  bitmap_from_arr64(dst, buf, nbits)          Copy nbits from u64[] buf to dst
76  *  bitmap_to_arr32(buf, src, nbits)            Copy nbits from buf to u32[] dst
77  *  bitmap_to_arr64(buf, src, nbits)            Copy nbits from buf to u64[] dst
78  *  bitmap_get_value8(map, start)               Get 8bit value from map at start
79  *  bitmap_set_value8(map, value, start)        Set 8bit value to map at start
80  *
81  * Note, bitmap_zero() and bitmap_fill() operate over the region of
82  * unsigned longs, that is, bits behind bitmap till the unsigned long
83  * boundary will be zeroed or filled as well. Consider to use
84  * bitmap_clear() or bitmap_set() to make explicit zeroing or filling
85  * respectively.
86  */
87 
88 /**
89  * DOC: bitmap bitops
90  *
91  * Also the following operations in asm/bitops.h apply to bitmaps.::
92  *
93  *  set_bit(bit, addr)                  *addr |= bit
94  *  clear_bit(bit, addr)                *addr &= ~bit
95  *  change_bit(bit, addr)               *addr ^= bit
96  *  test_bit(bit, addr)                 Is bit set in *addr?
97  *  test_and_set_bit(bit, addr)         Set bit and return old value
98  *  test_and_clear_bit(bit, addr)       Clear bit and return old value
99  *  test_and_change_bit(bit, addr)      Change bit and return old value
100  *  find_first_zero_bit(addr, nbits)    Position first zero bit in *addr
101  *  find_first_bit(addr, nbits)         Position first set bit in *addr
102  *  find_next_zero_bit(addr, nbits, bit)
103  *                                      Position next zero bit in *addr >= bit
104  *  find_next_bit(addr, nbits, bit)     Position next set bit in *addr >= bit
105  *  find_next_and_bit(addr1, addr2, nbits, bit)
106  *                                      Same as find_next_bit, but in
107  *                                      (*addr1 & *addr2)
108  *
109  */
110 
111 /**
112  * DOC: declare bitmap
113  * The DECLARE_BITMAP(name,bits) macro, in linux/types.h, can be used
114  * to declare an array named 'name' of just enough unsigned longs to
115  * contain all bit positions from 0 to 'bits' - 1.
116  */
117 
118 /*
119  * Allocation and deallocation of bitmap.
120  * Provided in lib/bitmap.c to avoid circular dependency.
121  */
122 unsigned long *bitmap_alloc(unsigned int nbits, gfp_t flags);
123 unsigned long *bitmap_zalloc(unsigned int nbits, gfp_t flags);
124 unsigned long *bitmap_alloc_node(unsigned int nbits, gfp_t flags, int node);
125 unsigned long *bitmap_zalloc_node(unsigned int nbits, gfp_t flags, int node);
126 void bitmap_free(const unsigned long *bitmap);
127 
128 /* Managed variants of the above. */
129 unsigned long *devm_bitmap_alloc(struct device *dev,
130 				 unsigned int nbits, gfp_t flags);
131 unsigned long *devm_bitmap_zalloc(struct device *dev,
132 				  unsigned int nbits, gfp_t flags);
133 
134 /*
135  * lib/bitmap.c provides these functions:
136  */
137 
138 bool __bitmap_equal(const unsigned long *bitmap1,
139 		    const unsigned long *bitmap2, unsigned int nbits);
140 bool __pure __bitmap_or_equal(const unsigned long *src1,
141 			      const unsigned long *src2,
142 			      const unsigned long *src3,
143 			      unsigned int nbits);
144 void __bitmap_complement(unsigned long *dst, const unsigned long *src,
145 			 unsigned int nbits);
146 void __bitmap_shift_right(unsigned long *dst, const unsigned long *src,
147 			  unsigned int shift, unsigned int nbits);
148 void __bitmap_shift_left(unsigned long *dst, const unsigned long *src,
149 			 unsigned int shift, unsigned int nbits);
150 void bitmap_cut(unsigned long *dst, const unsigned long *src,
151 		unsigned int first, unsigned int cut, unsigned int nbits);
152 bool __bitmap_and(unsigned long *dst, const unsigned long *bitmap1,
153 		 const unsigned long *bitmap2, unsigned int nbits);
154 void __bitmap_or(unsigned long *dst, const unsigned long *bitmap1,
155 		 const unsigned long *bitmap2, unsigned int nbits);
156 void __bitmap_xor(unsigned long *dst, const unsigned long *bitmap1,
157 		  const unsigned long *bitmap2, unsigned int nbits);
158 bool __bitmap_andnot(unsigned long *dst, const unsigned long *bitmap1,
159 		    const unsigned long *bitmap2, unsigned int nbits);
160 void __bitmap_replace(unsigned long *dst,
161 		      const unsigned long *old, const unsigned long *new,
162 		      const unsigned long *mask, unsigned int nbits);
163 bool __bitmap_intersects(const unsigned long *bitmap1,
164 			 const unsigned long *bitmap2, unsigned int nbits);
165 bool __bitmap_subset(const unsigned long *bitmap1,
166 		     const unsigned long *bitmap2, unsigned int nbits);
167 unsigned int __bitmap_weight(const unsigned long *bitmap, unsigned int nbits);
168 unsigned int __bitmap_weight_and(const unsigned long *bitmap1,
169 				 const unsigned long *bitmap2, unsigned int nbits);
170 void __bitmap_set(unsigned long *map, unsigned int start, int len);
171 void __bitmap_clear(unsigned long *map, unsigned int start, int len);
172 
173 unsigned long bitmap_find_next_zero_area_off(unsigned long *map,
174 					     unsigned long size,
175 					     unsigned long start,
176 					     unsigned int nr,
177 					     unsigned long align_mask,
178 					     unsigned long align_offset);
179 
180 /**
181  * bitmap_find_next_zero_area - find a contiguous aligned zero area
182  * @map: The address to base the search on
183  * @size: The bitmap size in bits
184  * @start: The bitnumber to start searching at
185  * @nr: The number of zeroed bits we're looking for
186  * @align_mask: Alignment mask for zero area
187  *
188  * The @align_mask should be one less than a power of 2; the effect is that
189  * the bit offset of all zero areas this function finds is multiples of that
190  * power of 2. A @align_mask of 0 means no alignment is required.
191  */
192 static inline unsigned long
193 bitmap_find_next_zero_area(unsigned long *map,
194 			   unsigned long size,
195 			   unsigned long start,
196 			   unsigned int nr,
197 			   unsigned long align_mask)
198 {
199 	return bitmap_find_next_zero_area_off(map, size, start, nr,
200 					      align_mask, 0);
201 }
202 
203 int bitmap_parse(const char *buf, unsigned int buflen,
204 			unsigned long *dst, int nbits);
205 int bitmap_parse_user(const char __user *ubuf, unsigned int ulen,
206 			unsigned long *dst, int nbits);
207 int bitmap_parselist(const char *buf, unsigned long *maskp,
208 			int nmaskbits);
209 int bitmap_parselist_user(const char __user *ubuf, unsigned int ulen,
210 			unsigned long *dst, int nbits);
211 void bitmap_remap(unsigned long *dst, const unsigned long *src,
212 		const unsigned long *old, const unsigned long *new, unsigned int nbits);
213 int bitmap_bitremap(int oldbit,
214 		const unsigned long *old, const unsigned long *new, int bits);
215 void bitmap_onto(unsigned long *dst, const unsigned long *orig,
216 		const unsigned long *relmap, unsigned int bits);
217 void bitmap_fold(unsigned long *dst, const unsigned long *orig,
218 		unsigned int sz, unsigned int nbits);
219 int bitmap_find_free_region(unsigned long *bitmap, unsigned int bits, int order);
220 void bitmap_release_region(unsigned long *bitmap, unsigned int pos, int order);
221 int bitmap_allocate_region(unsigned long *bitmap, unsigned int pos, int order);
222 
223 int bitmap_print_to_pagebuf(bool list, char *buf,
224 				   const unsigned long *maskp, int nmaskbits);
225 
226 extern int bitmap_print_bitmask_to_buf(char *buf, const unsigned long *maskp,
227 				      int nmaskbits, loff_t off, size_t count);
228 
229 extern int bitmap_print_list_to_buf(char *buf, const unsigned long *maskp,
230 				      int nmaskbits, loff_t off, size_t count);
231 
232 #define BITMAP_FIRST_WORD_MASK(start) (~0UL << ((start) & (BITS_PER_LONG - 1)))
233 #define BITMAP_LAST_WORD_MASK(nbits) (~0UL >> (-(nbits) & (BITS_PER_LONG - 1)))
234 
235 static inline void bitmap_zero(unsigned long *dst, unsigned int nbits)
236 {
237 	unsigned int len = BITS_TO_LONGS(nbits) * sizeof(unsigned long);
238 
239 	if (small_const_nbits(nbits))
240 		*dst = 0;
241 	else
242 		memset(dst, 0, len);
243 }
244 
245 static inline void bitmap_fill(unsigned long *dst, unsigned int nbits)
246 {
247 	unsigned int len = BITS_TO_LONGS(nbits) * sizeof(unsigned long);
248 
249 	if (small_const_nbits(nbits))
250 		*dst = ~0UL;
251 	else
252 		memset(dst, 0xff, len);
253 }
254 
255 static inline void bitmap_copy(unsigned long *dst, const unsigned long *src,
256 			unsigned int nbits)
257 {
258 	unsigned int len = BITS_TO_LONGS(nbits) * sizeof(unsigned long);
259 
260 	if (small_const_nbits(nbits))
261 		*dst = *src;
262 	else
263 		memcpy(dst, src, len);
264 }
265 
266 /*
267  * Copy bitmap and clear tail bits in last word.
268  */
269 static inline void bitmap_copy_clear_tail(unsigned long *dst,
270 		const unsigned long *src, unsigned int nbits)
271 {
272 	bitmap_copy(dst, src, nbits);
273 	if (nbits % BITS_PER_LONG)
274 		dst[nbits / BITS_PER_LONG] &= BITMAP_LAST_WORD_MASK(nbits);
275 }
276 
277 /*
278  * On 32-bit systems bitmaps are represented as u32 arrays internally. On LE64
279  * machines the order of hi and lo parts of numbers match the bitmap structure.
280  * In both cases conversion is not needed when copying data from/to arrays of
281  * u32. But in LE64 case, typecast in bitmap_copy_clear_tail() may lead
282  * to out-of-bound access. To avoid that, both LE and BE variants of 64-bit
283  * architectures are not using bitmap_copy_clear_tail().
284  */
285 #if BITS_PER_LONG == 64
286 void bitmap_from_arr32(unsigned long *bitmap, const u32 *buf,
287 							unsigned int nbits);
288 void bitmap_to_arr32(u32 *buf, const unsigned long *bitmap,
289 							unsigned int nbits);
290 #else
291 #define bitmap_from_arr32(bitmap, buf, nbits)			\
292 	bitmap_copy_clear_tail((unsigned long *) (bitmap),	\
293 			(const unsigned long *) (buf), (nbits))
294 #define bitmap_to_arr32(buf, bitmap, nbits)			\
295 	bitmap_copy_clear_tail((unsigned long *) (buf),		\
296 			(const unsigned long *) (bitmap), (nbits))
297 #endif
298 
299 /*
300  * On 64-bit systems bitmaps are represented as u64 arrays internally. So,
301  * the conversion is not needed when copying data from/to arrays of u64.
302  */
303 #if BITS_PER_LONG == 32
304 void bitmap_from_arr64(unsigned long *bitmap, const u64 *buf, unsigned int nbits);
305 void bitmap_to_arr64(u64 *buf, const unsigned long *bitmap, unsigned int nbits);
306 #else
307 #define bitmap_from_arr64(bitmap, buf, nbits)			\
308 	bitmap_copy_clear_tail((unsigned long *)(bitmap), (const unsigned long *)(buf), (nbits))
309 #define bitmap_to_arr64(buf, bitmap, nbits)			\
310 	bitmap_copy_clear_tail((unsigned long *)(buf), (const unsigned long *)(bitmap), (nbits))
311 #endif
312 
313 static inline bool bitmap_and(unsigned long *dst, const unsigned long *src1,
314 			const unsigned long *src2, unsigned int nbits)
315 {
316 	if (small_const_nbits(nbits))
317 		return (*dst = *src1 & *src2 & BITMAP_LAST_WORD_MASK(nbits)) != 0;
318 	return __bitmap_and(dst, src1, src2, nbits);
319 }
320 
321 static inline void bitmap_or(unsigned long *dst, const unsigned long *src1,
322 			const unsigned long *src2, unsigned int nbits)
323 {
324 	if (small_const_nbits(nbits))
325 		*dst = *src1 | *src2;
326 	else
327 		__bitmap_or(dst, src1, src2, nbits);
328 }
329 
330 static inline void bitmap_xor(unsigned long *dst, const unsigned long *src1,
331 			const unsigned long *src2, unsigned int nbits)
332 {
333 	if (small_const_nbits(nbits))
334 		*dst = *src1 ^ *src2;
335 	else
336 		__bitmap_xor(dst, src1, src2, nbits);
337 }
338 
339 static inline bool bitmap_andnot(unsigned long *dst, const unsigned long *src1,
340 			const unsigned long *src2, unsigned int nbits)
341 {
342 	if (small_const_nbits(nbits))
343 		return (*dst = *src1 & ~(*src2) & BITMAP_LAST_WORD_MASK(nbits)) != 0;
344 	return __bitmap_andnot(dst, src1, src2, nbits);
345 }
346 
347 static inline void bitmap_complement(unsigned long *dst, const unsigned long *src,
348 			unsigned int nbits)
349 {
350 	if (small_const_nbits(nbits))
351 		*dst = ~(*src);
352 	else
353 		__bitmap_complement(dst, src, nbits);
354 }
355 
356 #ifdef __LITTLE_ENDIAN
357 #define BITMAP_MEM_ALIGNMENT 8
358 #else
359 #define BITMAP_MEM_ALIGNMENT (8 * sizeof(unsigned long))
360 #endif
361 #define BITMAP_MEM_MASK (BITMAP_MEM_ALIGNMENT - 1)
362 
363 static inline bool bitmap_equal(const unsigned long *src1,
364 				const unsigned long *src2, unsigned int nbits)
365 {
366 	if (small_const_nbits(nbits))
367 		return !((*src1 ^ *src2) & BITMAP_LAST_WORD_MASK(nbits));
368 	if (__builtin_constant_p(nbits & BITMAP_MEM_MASK) &&
369 	    IS_ALIGNED(nbits, BITMAP_MEM_ALIGNMENT))
370 		return !memcmp(src1, src2, nbits / 8);
371 	return __bitmap_equal(src1, src2, nbits);
372 }
373 
374 /**
375  * bitmap_or_equal - Check whether the or of two bitmaps is equal to a third
376  * @src1:	Pointer to bitmap 1
377  * @src2:	Pointer to bitmap 2 will be or'ed with bitmap 1
378  * @src3:	Pointer to bitmap 3. Compare to the result of *@src1 | *@src2
379  * @nbits:	number of bits in each of these bitmaps
380  *
381  * Returns: True if (*@src1 | *@src2) == *@src3, false otherwise
382  */
383 static inline bool bitmap_or_equal(const unsigned long *src1,
384 				   const unsigned long *src2,
385 				   const unsigned long *src3,
386 				   unsigned int nbits)
387 {
388 	if (!small_const_nbits(nbits))
389 		return __bitmap_or_equal(src1, src2, src3, nbits);
390 
391 	return !(((*src1 | *src2) ^ *src3) & BITMAP_LAST_WORD_MASK(nbits));
392 }
393 
394 static inline bool bitmap_intersects(const unsigned long *src1,
395 				     const unsigned long *src2,
396 				     unsigned int nbits)
397 {
398 	if (small_const_nbits(nbits))
399 		return ((*src1 & *src2) & BITMAP_LAST_WORD_MASK(nbits)) != 0;
400 	else
401 		return __bitmap_intersects(src1, src2, nbits);
402 }
403 
404 static inline bool bitmap_subset(const unsigned long *src1,
405 				 const unsigned long *src2, unsigned int nbits)
406 {
407 	if (small_const_nbits(nbits))
408 		return ! ((*src1 & ~(*src2)) & BITMAP_LAST_WORD_MASK(nbits));
409 	else
410 		return __bitmap_subset(src1, src2, nbits);
411 }
412 
413 static inline bool bitmap_empty(const unsigned long *src, unsigned nbits)
414 {
415 	if (small_const_nbits(nbits))
416 		return ! (*src & BITMAP_LAST_WORD_MASK(nbits));
417 
418 	return find_first_bit(src, nbits) == nbits;
419 }
420 
421 static inline bool bitmap_full(const unsigned long *src, unsigned int nbits)
422 {
423 	if (small_const_nbits(nbits))
424 		return ! (~(*src) & BITMAP_LAST_WORD_MASK(nbits));
425 
426 	return find_first_zero_bit(src, nbits) == nbits;
427 }
428 
429 static __always_inline
430 unsigned int bitmap_weight(const unsigned long *src, unsigned int nbits)
431 {
432 	if (small_const_nbits(nbits))
433 		return hweight_long(*src & BITMAP_LAST_WORD_MASK(nbits));
434 	return __bitmap_weight(src, nbits);
435 }
436 
437 static __always_inline
438 unsigned long bitmap_weight_and(const unsigned long *src1,
439 				const unsigned long *src2, unsigned int nbits)
440 {
441 	if (small_const_nbits(nbits))
442 		return hweight_long(*src1 & *src2 & BITMAP_LAST_WORD_MASK(nbits));
443 	return __bitmap_weight_and(src1, src2, nbits);
444 }
445 
446 static __always_inline void bitmap_set(unsigned long *map, unsigned int start,
447 		unsigned int nbits)
448 {
449 	if (__builtin_constant_p(nbits) && nbits == 1)
450 		__set_bit(start, map);
451 	else if (small_const_nbits(start + nbits))
452 		*map |= GENMASK(start + nbits - 1, start);
453 	else if (__builtin_constant_p(start & BITMAP_MEM_MASK) &&
454 		 IS_ALIGNED(start, BITMAP_MEM_ALIGNMENT) &&
455 		 __builtin_constant_p(nbits & BITMAP_MEM_MASK) &&
456 		 IS_ALIGNED(nbits, BITMAP_MEM_ALIGNMENT))
457 		memset((char *)map + start / 8, 0xff, nbits / 8);
458 	else
459 		__bitmap_set(map, start, nbits);
460 }
461 
462 static __always_inline void bitmap_clear(unsigned long *map, unsigned int start,
463 		unsigned int nbits)
464 {
465 	if (__builtin_constant_p(nbits) && nbits == 1)
466 		__clear_bit(start, map);
467 	else if (small_const_nbits(start + nbits))
468 		*map &= ~GENMASK(start + nbits - 1, start);
469 	else if (__builtin_constant_p(start & BITMAP_MEM_MASK) &&
470 		 IS_ALIGNED(start, BITMAP_MEM_ALIGNMENT) &&
471 		 __builtin_constant_p(nbits & BITMAP_MEM_MASK) &&
472 		 IS_ALIGNED(nbits, BITMAP_MEM_ALIGNMENT))
473 		memset((char *)map + start / 8, 0, nbits / 8);
474 	else
475 		__bitmap_clear(map, start, nbits);
476 }
477 
478 static inline void bitmap_shift_right(unsigned long *dst, const unsigned long *src,
479 				unsigned int shift, unsigned int nbits)
480 {
481 	if (small_const_nbits(nbits))
482 		*dst = (*src & BITMAP_LAST_WORD_MASK(nbits)) >> shift;
483 	else
484 		__bitmap_shift_right(dst, src, shift, nbits);
485 }
486 
487 static inline void bitmap_shift_left(unsigned long *dst, const unsigned long *src,
488 				unsigned int shift, unsigned int nbits)
489 {
490 	if (small_const_nbits(nbits))
491 		*dst = (*src << shift) & BITMAP_LAST_WORD_MASK(nbits);
492 	else
493 		__bitmap_shift_left(dst, src, shift, nbits);
494 }
495 
496 static inline void bitmap_replace(unsigned long *dst,
497 				  const unsigned long *old,
498 				  const unsigned long *new,
499 				  const unsigned long *mask,
500 				  unsigned int nbits)
501 {
502 	if (small_const_nbits(nbits))
503 		*dst = (*old & ~(*mask)) | (*new & *mask);
504 	else
505 		__bitmap_replace(dst, old, new, mask, nbits);
506 }
507 
508 static inline void bitmap_next_set_region(unsigned long *bitmap,
509 					  unsigned int *rs, unsigned int *re,
510 					  unsigned int end)
511 {
512 	*rs = find_next_bit(bitmap, end, *rs);
513 	*re = find_next_zero_bit(bitmap, end, *rs + 1);
514 }
515 
516 /**
517  * BITMAP_FROM_U64() - Represent u64 value in the format suitable for bitmap.
518  * @n: u64 value
519  *
520  * Linux bitmaps are internally arrays of unsigned longs, i.e. 32-bit
521  * integers in 32-bit environment, and 64-bit integers in 64-bit one.
522  *
523  * There are four combinations of endianness and length of the word in linux
524  * ABIs: LE64, BE64, LE32 and BE32.
525  *
526  * On 64-bit kernels 64-bit LE and BE numbers are naturally ordered in
527  * bitmaps and therefore don't require any special handling.
528  *
529  * On 32-bit kernels 32-bit LE ABI orders lo word of 64-bit number in memory
530  * prior to hi, and 32-bit BE orders hi word prior to lo. The bitmap on the
531  * other hand is represented as an array of 32-bit words and the position of
532  * bit N may therefore be calculated as: word #(N/32) and bit #(N%32) in that
533  * word.  For example, bit #42 is located at 10th position of 2nd word.
534  * It matches 32-bit LE ABI, and we can simply let the compiler store 64-bit
535  * values in memory as it usually does. But for BE we need to swap hi and lo
536  * words manually.
537  *
538  * With all that, the macro BITMAP_FROM_U64() does explicit reordering of hi and
539  * lo parts of u64.  For LE32 it does nothing, and for BE environment it swaps
540  * hi and lo words, as is expected by bitmap.
541  */
542 #if __BITS_PER_LONG == 64
543 #define BITMAP_FROM_U64(n) (n)
544 #else
545 #define BITMAP_FROM_U64(n) ((unsigned long) ((u64)(n) & ULONG_MAX)), \
546 				((unsigned long) ((u64)(n) >> 32))
547 #endif
548 
549 /**
550  * bitmap_from_u64 - Check and swap words within u64.
551  *  @mask: source bitmap
552  *  @dst:  destination bitmap
553  *
554  * In 32-bit Big Endian kernel, when using ``(u32 *)(&val)[*]``
555  * to read u64 mask, we will get the wrong word.
556  * That is ``(u32 *)(&val)[0]`` gets the upper 32 bits,
557  * but we expect the lower 32-bits of u64.
558  */
559 static inline void bitmap_from_u64(unsigned long *dst, u64 mask)
560 {
561 	bitmap_from_arr64(dst, &mask, 64);
562 }
563 
564 /**
565  * bitmap_get_value8 - get an 8-bit value within a memory region
566  * @map: address to the bitmap memory region
567  * @start: bit offset of the 8-bit value; must be a multiple of 8
568  *
569  * Returns the 8-bit value located at the @start bit offset within the @src
570  * memory region.
571  */
572 static inline unsigned long bitmap_get_value8(const unsigned long *map,
573 					      unsigned long start)
574 {
575 	const size_t index = BIT_WORD(start);
576 	const unsigned long offset = start % BITS_PER_LONG;
577 
578 	return (map[index] >> offset) & 0xFF;
579 }
580 
581 /**
582  * bitmap_set_value8 - set an 8-bit value within a memory region
583  * @map: address to the bitmap memory region
584  * @value: the 8-bit value; values wider than 8 bits may clobber bitmap
585  * @start: bit offset of the 8-bit value; must be a multiple of 8
586  */
587 static inline void bitmap_set_value8(unsigned long *map, unsigned long value,
588 				     unsigned long start)
589 {
590 	const size_t index = BIT_WORD(start);
591 	const unsigned long offset = start % BITS_PER_LONG;
592 
593 	map[index] &= ~(0xFFUL << offset);
594 	map[index] |= value << offset;
595 }
596 
597 #endif /* __ASSEMBLY__ */
598 
599 #endif /* __LINUX_BITMAP_H */
600