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0fc479b1 | 1 | // SPDX-License-Identifier: GPL-2.0-only |
88459642 OS |
2 | /* |
3 | * Copyright (C) 2016 Facebook | |
4 | * Copyright (C) 2013-2014 Jens Axboe | |
88459642 OS |
5 | */ |
6 | ||
af8601ad | 7 | #include <linux/sched.h> |
98d95416 | 8 | #include <linux/random.h> |
88459642 | 9 | #include <linux/sbitmap.h> |
24af1ccf | 10 | #include <linux/seq_file.h> |
88459642 | 11 | |
c548e62b | 12 | static int init_alloc_hint(struct sbitmap *sb, gfp_t flags) |
bf2c4282 | 13 | { |
c548e62b | 14 | unsigned depth = sb->depth; |
bf2c4282 | 15 | |
c548e62b ML |
16 | sb->alloc_hint = alloc_percpu_gfp(unsigned int, flags); |
17 | if (!sb->alloc_hint) | |
bf2c4282 ML |
18 | return -ENOMEM; |
19 | ||
c548e62b | 20 | if (depth && !sb->round_robin) { |
bf2c4282 ML |
21 | int i; |
22 | ||
23 | for_each_possible_cpu(i) | |
8032bf12 | 24 | *per_cpu_ptr(sb->alloc_hint, i) = get_random_u32_below(depth); |
bf2c4282 | 25 | } |
bf2c4282 ML |
26 | return 0; |
27 | } | |
28 | ||
c548e62b | 29 | static inline unsigned update_alloc_hint_before_get(struct sbitmap *sb, |
bf2c4282 ML |
30 | unsigned int depth) |
31 | { | |
32 | unsigned hint; | |
33 | ||
c548e62b | 34 | hint = this_cpu_read(*sb->alloc_hint); |
bf2c4282 | 35 | if (unlikely(hint >= depth)) { |
8032bf12 | 36 | hint = depth ? get_random_u32_below(depth) : 0; |
c548e62b | 37 | this_cpu_write(*sb->alloc_hint, hint); |
bf2c4282 ML |
38 | } |
39 | ||
40 | return hint; | |
41 | } | |
42 | ||
c548e62b | 43 | static inline void update_alloc_hint_after_get(struct sbitmap *sb, |
bf2c4282 ML |
44 | unsigned int depth, |
45 | unsigned int hint, | |
46 | unsigned int nr) | |
47 | { | |
48 | if (nr == -1) { | |
49 | /* If the map is full, a hint won't do us much good. */ | |
c548e62b ML |
50 | this_cpu_write(*sb->alloc_hint, 0); |
51 | } else if (nr == hint || unlikely(sb->round_robin)) { | |
bf2c4282 ML |
52 | /* Only update the hint if we used it. */ |
53 | hint = nr + 1; | |
54 | if (hint >= depth - 1) | |
55 | hint = 0; | |
c548e62b | 56 | this_cpu_write(*sb->alloc_hint, hint); |
bf2c4282 ML |
57 | } |
58 | } | |
59 | ||
b2dbff1b JA |
60 | /* |
61 | * See if we have deferred clears that we can batch move | |
62 | */ | |
b78beea0 | 63 | static inline bool sbitmap_deferred_clear(struct sbitmap_word *map) |
b2dbff1b | 64 | { |
c3250c8d | 65 | unsigned long mask; |
b2dbff1b | 66 | |
661d4f55 PB |
67 | if (!READ_ONCE(map->cleared)) |
68 | return false; | |
b2dbff1b JA |
69 | |
70 | /* | |
71 | * First get a stable cleared mask, setting the old mask to 0. | |
72 | */ | |
b78beea0 | 73 | mask = xchg(&map->cleared, 0); |
b2dbff1b JA |
74 | |
75 | /* | |
76 | * Now clear the masked bits in our free word | |
77 | */ | |
c3250c8d PB |
78 | atomic_long_andnot(mask, (atomic_long_t *)&map->word); |
79 | BUILD_BUG_ON(sizeof(atomic_long_t) != sizeof(map->word)); | |
661d4f55 | 80 | return true; |
b2dbff1b JA |
81 | } |
82 | ||
88459642 | 83 | int sbitmap_init_node(struct sbitmap *sb, unsigned int depth, int shift, |
c548e62b ML |
84 | gfp_t flags, int node, bool round_robin, |
85 | bool alloc_hint) | |
88459642 OS |
86 | { |
87 | unsigned int bits_per_word; | |
88459642 | 88 | |
2d13b1ea ML |
89 | if (shift < 0) |
90 | shift = sbitmap_calculate_shift(depth); | |
91 | ||
88459642 OS |
92 | bits_per_word = 1U << shift; |
93 | if (bits_per_word > BITS_PER_LONG) | |
94 | return -EINVAL; | |
95 | ||
96 | sb->shift = shift; | |
97 | sb->depth = depth; | |
98 | sb->map_nr = DIV_ROUND_UP(sb->depth, bits_per_word); | |
efe1f3a1 | 99 | sb->round_robin = round_robin; |
88459642 OS |
100 | |
101 | if (depth == 0) { | |
102 | sb->map = NULL; | |
103 | return 0; | |
104 | } | |
105 | ||
c548e62b ML |
106 | if (alloc_hint) { |
107 | if (init_alloc_hint(sb, flags)) | |
108 | return -ENOMEM; | |
109 | } else { | |
110 | sb->alloc_hint = NULL; | |
111 | } | |
112 | ||
863a66cd | 113 | sb->map = kvzalloc_node(sb->map_nr * sizeof(*sb->map), flags, node); |
c548e62b ML |
114 | if (!sb->map) { |
115 | free_percpu(sb->alloc_hint); | |
88459642 | 116 | return -ENOMEM; |
c548e62b | 117 | } |
88459642 | 118 | |
88459642 OS |
119 | return 0; |
120 | } | |
121 | EXPORT_SYMBOL_GPL(sbitmap_init_node); | |
122 | ||
123 | void sbitmap_resize(struct sbitmap *sb, unsigned int depth) | |
124 | { | |
125 | unsigned int bits_per_word = 1U << sb->shift; | |
126 | unsigned int i; | |
127 | ||
b2dbff1b | 128 | for (i = 0; i < sb->map_nr; i++) |
b78beea0 | 129 | sbitmap_deferred_clear(&sb->map[i]); |
b2dbff1b | 130 | |
88459642 OS |
131 | sb->depth = depth; |
132 | sb->map_nr = DIV_ROUND_UP(sb->depth, bits_per_word); | |
88459642 OS |
133 | } |
134 | EXPORT_SYMBOL_GPL(sbitmap_resize); | |
135 | ||
c05e6673 OS |
136 | static int __sbitmap_get_word(unsigned long *word, unsigned long depth, |
137 | unsigned int hint, bool wrap) | |
88459642 | 138 | { |
88459642 OS |
139 | int nr; |
140 | ||
0eff1f1a PB |
141 | /* don't wrap if starting from 0 */ |
142 | wrap = wrap && hint; | |
143 | ||
88459642 | 144 | while (1) { |
c05e6673 OS |
145 | nr = find_next_zero_bit(word, depth, hint); |
146 | if (unlikely(nr >= depth)) { | |
88459642 OS |
147 | /* |
148 | * We started with an offset, and we didn't reset the | |
149 | * offset to 0 in a failure case, so start from 0 to | |
150 | * exhaust the map. | |
151 | */ | |
0eff1f1a PB |
152 | if (hint && wrap) { |
153 | hint = 0; | |
88459642 OS |
154 | continue; |
155 | } | |
156 | return -1; | |
157 | } | |
158 | ||
4ace53f1 | 159 | if (!test_and_set_bit_lock(nr, word)) |
88459642 OS |
160 | break; |
161 | ||
162 | hint = nr + 1; | |
c05e6673 | 163 | if (hint >= depth - 1) |
88459642 OS |
164 | hint = 0; |
165 | } | |
166 | ||
167 | return nr; | |
168 | } | |
169 | ||
08470a98 KS |
170 | static int sbitmap_find_bit_in_word(struct sbitmap_word *map, |
171 | unsigned int depth, | |
172 | unsigned int alloc_hint, | |
173 | bool wrap) | |
ea86ea2c JA |
174 | { |
175 | int nr; | |
176 | ||
177 | do { | |
08470a98 KS |
178 | nr = __sbitmap_get_word(&map->word, depth, |
179 | alloc_hint, wrap); | |
ea86ea2c JA |
180 | if (nr != -1) |
181 | break; | |
b78beea0 | 182 | if (!sbitmap_deferred_clear(map)) |
ea86ea2c JA |
183 | break; |
184 | } while (1); | |
185 | ||
186 | return nr; | |
187 | } | |
188 | ||
678418c6 KS |
189 | static int sbitmap_find_bit(struct sbitmap *sb, |
190 | unsigned int depth, | |
191 | unsigned int index, | |
192 | unsigned int alloc_hint, | |
193 | bool wrap) | |
88459642 | 194 | { |
678418c6 | 195 | unsigned int i; |
88459642 OS |
196 | int nr = -1; |
197 | ||
88459642 | 198 | for (i = 0; i < sb->map_nr; i++) { |
08470a98 | 199 | nr = sbitmap_find_bit_in_word(&sb->map[index], |
678418c6 KS |
200 | min_t(unsigned int, |
201 | __map_depth(sb, index), | |
202 | depth), | |
203 | alloc_hint, wrap); | |
204 | ||
88459642 OS |
205 | if (nr != -1) { |
206 | nr += index << sb->shift; | |
207 | break; | |
208 | } | |
209 | ||
210 | /* Jump to next index. */ | |
27fae429 JA |
211 | alloc_hint = 0; |
212 | if (++index >= sb->map_nr) | |
88459642 | 213 | index = 0; |
88459642 OS |
214 | } |
215 | ||
216 | return nr; | |
217 | } | |
c548e62b | 218 | |
678418c6 KS |
219 | static int __sbitmap_get(struct sbitmap *sb, unsigned int alloc_hint) |
220 | { | |
221 | unsigned int index; | |
222 | ||
223 | index = SB_NR_TO_INDEX(sb, alloc_hint); | |
224 | ||
225 | /* | |
226 | * Unless we're doing round robin tag allocation, just use the | |
227 | * alloc_hint to find the right word index. No point in looping | |
228 | * twice in find_next_zero_bit() for that case. | |
229 | */ | |
230 | if (sb->round_robin) | |
231 | alloc_hint = SB_NR_TO_BIT(sb, alloc_hint); | |
232 | else | |
233 | alloc_hint = 0; | |
234 | ||
235 | return sbitmap_find_bit(sb, UINT_MAX, index, alloc_hint, | |
236 | !sb->round_robin); | |
237 | } | |
238 | ||
c548e62b ML |
239 | int sbitmap_get(struct sbitmap *sb) |
240 | { | |
241 | int nr; | |
242 | unsigned int hint, depth; | |
243 | ||
244 | if (WARN_ON_ONCE(unlikely(!sb->alloc_hint))) | |
245 | return -1; | |
246 | ||
247 | depth = READ_ONCE(sb->depth); | |
248 | hint = update_alloc_hint_before_get(sb, depth); | |
249 | nr = __sbitmap_get(sb, hint); | |
250 | update_alloc_hint_after_get(sb, depth, hint, nr); | |
251 | ||
252 | return nr; | |
253 | } | |
88459642 OS |
254 | EXPORT_SYMBOL_GPL(sbitmap_get); |
255 | ||
c548e62b ML |
256 | static int __sbitmap_get_shallow(struct sbitmap *sb, |
257 | unsigned int alloc_hint, | |
258 | unsigned long shallow_depth) | |
c05e6673 | 259 | { |
678418c6 | 260 | unsigned int index; |
c05e6673 OS |
261 | |
262 | index = SB_NR_TO_INDEX(sb, alloc_hint); | |
f1591a8b | 263 | alloc_hint = SB_NR_TO_BIT(sb, alloc_hint); |
c05e6673 | 264 | |
678418c6 | 265 | return sbitmap_find_bit(sb, shallow_depth, index, alloc_hint, true); |
c05e6673 | 266 | } |
c548e62b ML |
267 | |
268 | int sbitmap_get_shallow(struct sbitmap *sb, unsigned long shallow_depth) | |
269 | { | |
270 | int nr; | |
271 | unsigned int hint, depth; | |
272 | ||
273 | if (WARN_ON_ONCE(unlikely(!sb->alloc_hint))) | |
274 | return -1; | |
275 | ||
276 | depth = READ_ONCE(sb->depth); | |
277 | hint = update_alloc_hint_before_get(sb, depth); | |
278 | nr = __sbitmap_get_shallow(sb, hint, shallow_depth); | |
279 | update_alloc_hint_after_get(sb, depth, hint, nr); | |
280 | ||
281 | return nr; | |
282 | } | |
c05e6673 OS |
283 | EXPORT_SYMBOL_GPL(sbitmap_get_shallow); |
284 | ||
88459642 OS |
285 | bool sbitmap_any_bit_set(const struct sbitmap *sb) |
286 | { | |
287 | unsigned int i; | |
288 | ||
289 | for (i = 0; i < sb->map_nr; i++) { | |
b2dbff1b | 290 | if (sb->map[i].word & ~sb->map[i].cleared) |
88459642 OS |
291 | return true; |
292 | } | |
293 | return false; | |
294 | } | |
295 | EXPORT_SYMBOL_GPL(sbitmap_any_bit_set); | |
296 | ||
ea86ea2c | 297 | static unsigned int __sbitmap_weight(const struct sbitmap *sb, bool set) |
88459642 | 298 | { |
60658e0d | 299 | unsigned int i, weight = 0; |
88459642 OS |
300 | |
301 | for (i = 0; i < sb->map_nr; i++) { | |
302 | const struct sbitmap_word *word = &sb->map[i]; | |
3301bc53 | 303 | unsigned int word_depth = __map_depth(sb, i); |
88459642 | 304 | |
ea86ea2c | 305 | if (set) |
3301bc53 | 306 | weight += bitmap_weight(&word->word, word_depth); |
ea86ea2c | 307 | else |
3301bc53 | 308 | weight += bitmap_weight(&word->cleared, word_depth); |
88459642 OS |
309 | } |
310 | return weight; | |
311 | } | |
ea86ea2c | 312 | |
cbb9950b | 313 | static unsigned int sbitmap_cleared(const struct sbitmap *sb) |
ea86ea2c | 314 | { |
cbb9950b | 315 | return __sbitmap_weight(sb, false); |
ea86ea2c JA |
316 | } |
317 | ||
cbb9950b | 318 | unsigned int sbitmap_weight(const struct sbitmap *sb) |
ea86ea2c | 319 | { |
cbb9950b | 320 | return __sbitmap_weight(sb, true) - sbitmap_cleared(sb); |
ea86ea2c | 321 | } |
cbb9950b | 322 | EXPORT_SYMBOL_GPL(sbitmap_weight); |
88459642 | 323 | |
24af1ccf OS |
324 | void sbitmap_show(struct sbitmap *sb, struct seq_file *m) |
325 | { | |
326 | seq_printf(m, "depth=%u\n", sb->depth); | |
cbb9950b | 327 | seq_printf(m, "busy=%u\n", sbitmap_weight(sb)); |
ea86ea2c | 328 | seq_printf(m, "cleared=%u\n", sbitmap_cleared(sb)); |
24af1ccf OS |
329 | seq_printf(m, "bits_per_word=%u\n", 1U << sb->shift); |
330 | seq_printf(m, "map_nr=%u\n", sb->map_nr); | |
331 | } | |
332 | EXPORT_SYMBOL_GPL(sbitmap_show); | |
333 | ||
334 | static inline void emit_byte(struct seq_file *m, unsigned int offset, u8 byte) | |
335 | { | |
336 | if ((offset & 0xf) == 0) { | |
337 | if (offset != 0) | |
338 | seq_putc(m, '\n'); | |
339 | seq_printf(m, "%08x:", offset); | |
340 | } | |
341 | if ((offset & 0x1) == 0) | |
342 | seq_putc(m, ' '); | |
343 | seq_printf(m, "%02x", byte); | |
344 | } | |
345 | ||
346 | void sbitmap_bitmap_show(struct sbitmap *sb, struct seq_file *m) | |
347 | { | |
348 | u8 byte = 0; | |
349 | unsigned int byte_bits = 0; | |
350 | unsigned int offset = 0; | |
351 | int i; | |
352 | ||
353 | for (i = 0; i < sb->map_nr; i++) { | |
354 | unsigned long word = READ_ONCE(sb->map[i].word); | |
6bf0eb55 | 355 | unsigned long cleared = READ_ONCE(sb->map[i].cleared); |
3301bc53 | 356 | unsigned int word_bits = __map_depth(sb, i); |
24af1ccf | 357 | |
6bf0eb55 JG |
358 | word &= ~cleared; |
359 | ||
24af1ccf OS |
360 | while (word_bits > 0) { |
361 | unsigned int bits = min(8 - byte_bits, word_bits); | |
362 | ||
363 | byte |= (word & (BIT(bits) - 1)) << byte_bits; | |
364 | byte_bits += bits; | |
365 | if (byte_bits == 8) { | |
366 | emit_byte(m, offset, byte); | |
367 | byte = 0; | |
368 | byte_bits = 0; | |
369 | offset++; | |
370 | } | |
371 | word >>= bits; | |
372 | word_bits -= bits; | |
373 | } | |
374 | } | |
375 | if (byte_bits) { | |
376 | emit_byte(m, offset, byte); | |
377 | offset++; | |
378 | } | |
379 | if (offset) | |
380 | seq_putc(m, '\n'); | |
381 | } | |
382 | EXPORT_SYMBOL_GPL(sbitmap_bitmap_show); | |
383 | ||
a3275539 OS |
384 | static unsigned int sbq_calc_wake_batch(struct sbitmap_queue *sbq, |
385 | unsigned int depth) | |
88459642 OS |
386 | { |
387 | unsigned int wake_batch; | |
a3275539 | 388 | unsigned int shallow_depth; |
88459642 OS |
389 | |
390 | /* | |
a3275539 OS |
391 | * Each full word of the bitmap has bits_per_word bits, and there might |
392 | * be a partial word. There are depth / bits_per_word full words and | |
393 | * depth % bits_per_word bits left over. In bitwise arithmetic: | |
394 | * | |
395 | * bits_per_word = 1 << shift | |
396 | * depth / bits_per_word = depth >> shift | |
397 | * depth % bits_per_word = depth & ((1 << shift) - 1) | |
398 | * | |
399 | * Each word can be limited to sbq->min_shallow_depth bits. | |
88459642 | 400 | */ |
a3275539 OS |
401 | shallow_depth = min(1U << sbq->sb.shift, sbq->min_shallow_depth); |
402 | depth = ((depth >> sbq->sb.shift) * shallow_depth + | |
403 | min(depth & ((1U << sbq->sb.shift) - 1), shallow_depth)); | |
404 | wake_batch = clamp_t(unsigned int, depth / SBQ_WAIT_QUEUES, 1, | |
405 | SBQ_WAKE_BATCH); | |
88459642 OS |
406 | |
407 | return wake_batch; | |
408 | } | |
409 | ||
410 | int sbitmap_queue_init_node(struct sbitmap_queue *sbq, unsigned int depth, | |
f4a644db | 411 | int shift, bool round_robin, gfp_t flags, int node) |
88459642 OS |
412 | { |
413 | int ret; | |
414 | int i; | |
415 | ||
efe1f3a1 | 416 | ret = sbitmap_init_node(&sbq->sb, depth, shift, flags, node, |
c548e62b | 417 | round_robin, true); |
88459642 OS |
418 | if (ret) |
419 | return ret; | |
420 | ||
a3275539 OS |
421 | sbq->min_shallow_depth = UINT_MAX; |
422 | sbq->wake_batch = sbq_calc_wake_batch(sbq, depth); | |
88459642 | 423 | atomic_set(&sbq->wake_index, 0); |
5d2ee712 | 424 | atomic_set(&sbq->ws_active, 0); |
4f8126bb GKB |
425 | atomic_set(&sbq->completion_cnt, 0); |
426 | atomic_set(&sbq->wakeup_cnt, 0); | |
88459642 | 427 | |
48e28166 | 428 | sbq->ws = kzalloc_node(SBQ_WAIT_QUEUES * sizeof(*sbq->ws), flags, node); |
88459642 OS |
429 | if (!sbq->ws) { |
430 | sbitmap_free(&sbq->sb); | |
431 | return -ENOMEM; | |
432 | } | |
433 | ||
4f8126bb | 434 | for (i = 0; i < SBQ_WAIT_QUEUES; i++) |
88459642 | 435 | init_waitqueue_head(&sbq->ws[i].wait); |
f4a644db | 436 | |
88459642 OS |
437 | return 0; |
438 | } | |
439 | EXPORT_SYMBOL_GPL(sbitmap_queue_init_node); | |
440 | ||
180dccb0 LQ |
441 | static void sbitmap_queue_update_wake_batch(struct sbitmap_queue *sbq, |
442 | unsigned int depth) | |
443 | { | |
444 | unsigned int wake_batch; | |
445 | ||
446 | wake_batch = sbq_calc_wake_batch(sbq, depth); | |
4f8126bb GKB |
447 | if (sbq->wake_batch != wake_batch) |
448 | WRITE_ONCE(sbq->wake_batch, wake_batch); | |
180dccb0 LQ |
449 | } |
450 | ||
451 | void sbitmap_queue_recalculate_wake_batch(struct sbitmap_queue *sbq, | |
452 | unsigned int users) | |
453 | { | |
454 | unsigned int wake_batch; | |
10825410 | 455 | unsigned int depth = (sbq->sb.depth + users - 1) / users; |
180dccb0 | 456 | |
10825410 | 457 | wake_batch = clamp_val(depth / SBQ_WAIT_QUEUES, |
b5fcf787 | 458 | 1, SBQ_WAKE_BATCH); |
4f8126bb GKB |
459 | |
460 | WRITE_ONCE(sbq->wake_batch, wake_batch); | |
180dccb0 LQ |
461 | } |
462 | EXPORT_SYMBOL_GPL(sbitmap_queue_recalculate_wake_batch); | |
463 | ||
a3275539 OS |
464 | void sbitmap_queue_resize(struct sbitmap_queue *sbq, unsigned int depth) |
465 | { | |
466 | sbitmap_queue_update_wake_batch(sbq, depth); | |
88459642 OS |
467 | sbitmap_resize(&sbq->sb, depth); |
468 | } | |
469 | EXPORT_SYMBOL_GPL(sbitmap_queue_resize); | |
470 | ||
f4a644db | 471 | int __sbitmap_queue_get(struct sbitmap_queue *sbq) |
40aabb67 | 472 | { |
c548e62b | 473 | return sbitmap_get(&sbq->sb); |
40aabb67 OS |
474 | } |
475 | EXPORT_SYMBOL_GPL(__sbitmap_queue_get); | |
476 | ||
9672b0d4 JA |
477 | unsigned long __sbitmap_queue_get_batch(struct sbitmap_queue *sbq, int nr_tags, |
478 | unsigned int *offset) | |
479 | { | |
480 | struct sbitmap *sb = &sbq->sb; | |
481 | unsigned int hint, depth; | |
482 | unsigned long index, nr; | |
483 | int i; | |
484 | ||
485 | if (unlikely(sb->round_robin)) | |
486 | return 0; | |
487 | ||
488 | depth = READ_ONCE(sb->depth); | |
489 | hint = update_alloc_hint_before_get(sb, depth); | |
490 | ||
491 | index = SB_NR_TO_INDEX(sb, hint); | |
492 | ||
493 | for (i = 0; i < sb->map_nr; i++) { | |
494 | struct sbitmap_word *map = &sb->map[index]; | |
495 | unsigned long get_mask; | |
3301bc53 | 496 | unsigned int map_depth = __map_depth(sb, index); |
6ad0d7e0 | 497 | unsigned long val; |
9672b0d4 JA |
498 | |
499 | sbitmap_deferred_clear(map); | |
6ad0d7e0 | 500 | val = READ_ONCE(map->word); |
501 | if (val == (1UL << (map_depth - 1)) - 1) | |
fbb564a5 | 502 | goto next; |
9672b0d4 | 503 | |
6ad0d7e0 | 504 | nr = find_first_zero_bit(&val, map_depth); |
3301bc53 | 505 | if (nr + nr_tags <= map_depth) { |
9672b0d4 | 506 | atomic_long_t *ptr = (atomic_long_t *) &map->word; |
9672b0d4 | 507 | |
ddbfc34f | 508 | get_mask = ((1UL << nr_tags) - 1) << nr; |
903e86f3 KS |
509 | while (!atomic_long_try_cmpxchg(ptr, &val, |
510 | get_mask | val)) | |
511 | ; | |
c35227d4 | 512 | get_mask = (get_mask & ~val) >> nr; |
9672b0d4 JA |
513 | if (get_mask) { |
514 | *offset = nr + (index << sb->shift); | |
515 | update_alloc_hint_after_get(sb, depth, hint, | |
ddbfc34f | 516 | *offset + nr_tags - 1); |
9672b0d4 JA |
517 | return get_mask; |
518 | } | |
519 | } | |
fbb564a5 | 520 | next: |
9672b0d4 JA |
521 | /* Jump to next index. */ |
522 | if (++index >= sb->map_nr) | |
523 | index = 0; | |
524 | } | |
525 | ||
526 | return 0; | |
527 | } | |
528 | ||
3f607293 JG |
529 | int sbitmap_queue_get_shallow(struct sbitmap_queue *sbq, |
530 | unsigned int shallow_depth) | |
c05e6673 | 531 | { |
61445b56 OS |
532 | WARN_ON_ONCE(shallow_depth < sbq->min_shallow_depth); |
533 | ||
c548e62b | 534 | return sbitmap_get_shallow(&sbq->sb, shallow_depth); |
c05e6673 | 535 | } |
3f607293 | 536 | EXPORT_SYMBOL_GPL(sbitmap_queue_get_shallow); |
c05e6673 | 537 | |
a3275539 OS |
538 | void sbitmap_queue_min_shallow_depth(struct sbitmap_queue *sbq, |
539 | unsigned int min_shallow_depth) | |
540 | { | |
541 | sbq->min_shallow_depth = min_shallow_depth; | |
542 | sbitmap_queue_update_wake_batch(sbq, sbq->sb.depth); | |
543 | } | |
544 | EXPORT_SYMBOL_GPL(sbitmap_queue_min_shallow_depth); | |
545 | ||
26edb30d | 546 | static void __sbitmap_queue_wake_up(struct sbitmap_queue *sbq, int nr) |
88459642 | 547 | { |
10639737 | 548 | int i, wake_index, woken; |
88459642 | 549 | |
5d2ee712 | 550 | if (!atomic_read(&sbq->ws_active)) |
26edb30d | 551 | return; |
5d2ee712 | 552 | |
88459642 OS |
553 | wake_index = atomic_read(&sbq->wake_index); |
554 | for (i = 0; i < SBQ_WAIT_QUEUES; i++) { | |
555 | struct sbq_wait_state *ws = &sbq->ws[wake_index]; | |
556 | ||
976570b4 GKB |
557 | /* |
558 | * Advance the index before checking the current queue. | |
559 | * It improves fairness, by ensuring the queue doesn't | |
560 | * need to be fully emptied before trying to wake up | |
561 | * from the next one. | |
562 | */ | |
88459642 | 563 | wake_index = sbq_index_inc(wake_index); |
976570b4 | 564 | |
10639737 DJ |
565 | if (waitqueue_active(&ws->wait)) { |
566 | woken = wake_up_nr(&ws->wait, nr); | |
567 | if (woken == nr) | |
568 | break; | |
569 | nr -= woken; | |
570 | } | |
88459642 OS |
571 | } |
572 | ||
26edb30d GKB |
573 | if (wake_index != atomic_read(&sbq->wake_index)) |
574 | atomic_set(&sbq->wake_index, wake_index); | |
88459642 OS |
575 | } |
576 | ||
4f8126bb | 577 | void sbitmap_queue_wake_up(struct sbitmap_queue *sbq, int nr) |
88459642 | 578 | { |
4f8126bb | 579 | unsigned int wake_batch = READ_ONCE(sbq->wake_batch); |
4f8126bb | 580 | unsigned int wakeups; |
88459642 | 581 | |
4f8126bb GKB |
582 | if (!atomic_read(&sbq->ws_active)) |
583 | return; | |
4acb8341 | 584 | |
4f8126bb GKB |
585 | atomic_add(nr, &sbq->completion_cnt); |
586 | wakeups = atomic_read(&sbq->wakeup_cnt); | |
88459642 | 587 | |
4acb8341 | 588 | do { |
4f8126bb GKB |
589 | if (atomic_read(&sbq->completion_cnt) - wakeups < wake_batch) |
590 | return; | |
4f8126bb GKB |
591 | } while (!atomic_try_cmpxchg(&sbq->wakeup_cnt, |
592 | &wakeups, wakeups + wake_batch)); | |
c854ab57 | 593 | |
26edb30d | 594 | __sbitmap_queue_wake_up(sbq, wake_batch); |
88459642 | 595 | } |
bce1b56c | 596 | EXPORT_SYMBOL_GPL(sbitmap_queue_wake_up); |
88459642 | 597 | |
1aec5e4a JA |
598 | static inline void sbitmap_update_cpu_hint(struct sbitmap *sb, int cpu, int tag) |
599 | { | |
600 | if (likely(!sb->round_robin && tag < sb->depth)) | |
9f8b93a7 | 601 | data_race(*per_cpu_ptr(sb->alloc_hint, cpu) = tag); |
1aec5e4a JA |
602 | } |
603 | ||
604 | void sbitmap_queue_clear_batch(struct sbitmap_queue *sbq, int offset, | |
605 | int *tags, int nr_tags) | |
606 | { | |
607 | struct sbitmap *sb = &sbq->sb; | |
608 | unsigned long *addr = NULL; | |
609 | unsigned long mask = 0; | |
610 | int i; | |
611 | ||
612 | smp_mb__before_atomic(); | |
613 | for (i = 0; i < nr_tags; i++) { | |
614 | const int tag = tags[i] - offset; | |
615 | unsigned long *this_addr; | |
616 | ||
617 | /* since we're clearing a batch, skip the deferred map */ | |
618 | this_addr = &sb->map[SB_NR_TO_INDEX(sb, tag)].word; | |
619 | if (!addr) { | |
620 | addr = this_addr; | |
621 | } else if (addr != this_addr) { | |
622 | atomic_long_andnot(mask, (atomic_long_t *) addr); | |
623 | mask = 0; | |
624 | addr = this_addr; | |
625 | } | |
626 | mask |= (1UL << SB_NR_TO_BIT(sb, tag)); | |
627 | } | |
628 | ||
629 | if (mask) | |
630 | atomic_long_andnot(mask, (atomic_long_t *) addr); | |
631 | ||
632 | smp_mb__after_atomic(); | |
4acb8341 | 633 | sbitmap_queue_wake_up(sbq, nr_tags); |
1aec5e4a JA |
634 | sbitmap_update_cpu_hint(&sbq->sb, raw_smp_processor_id(), |
635 | tags[nr_tags - 1] - offset); | |
636 | } | |
637 | ||
40aabb67 | 638 | void sbitmap_queue_clear(struct sbitmap_queue *sbq, unsigned int nr, |
f4a644db | 639 | unsigned int cpu) |
88459642 | 640 | { |
e6d1fa58 ML |
641 | /* |
642 | * Once the clear bit is set, the bit may be allocated out. | |
643 | * | |
9dbbc3b9 | 644 | * Orders READ/WRITE on the associated instance(such as request |
e6d1fa58 ML |
645 | * of blk_mq) by this bit for avoiding race with re-allocation, |
646 | * and its pair is the memory barrier implied in __sbitmap_get_word. | |
647 | * | |
648 | * One invariant is that the clear bit has to be zero when the bit | |
649 | * is in use. | |
650 | */ | |
651 | smp_mb__before_atomic(); | |
ea86ea2c JA |
652 | sbitmap_deferred_clear_bit(&sbq->sb, nr); |
653 | ||
e6fc4649 ML |
654 | /* |
655 | * Pairs with the memory barrier in set_current_state() to ensure the | |
656 | * proper ordering of clear_bit_unlock()/waitqueue_active() in the waker | |
657 | * and test_and_set_bit_lock()/prepare_to_wait()/finish_wait() in the | |
658 | * waiter. See the comment on waitqueue_active(). | |
659 | */ | |
660 | smp_mb__after_atomic(); | |
4acb8341 | 661 | sbitmap_queue_wake_up(sbq, 1); |
1aec5e4a | 662 | sbitmap_update_cpu_hint(&sbq->sb, cpu, nr); |
88459642 OS |
663 | } |
664 | EXPORT_SYMBOL_GPL(sbitmap_queue_clear); | |
665 | ||
666 | void sbitmap_queue_wake_all(struct sbitmap_queue *sbq) | |
667 | { | |
668 | int i, wake_index; | |
669 | ||
670 | /* | |
f66227de | 671 | * Pairs with the memory barrier in set_current_state() like in |
e6fc4649 | 672 | * sbitmap_queue_wake_up(). |
88459642 OS |
673 | */ |
674 | smp_mb(); | |
675 | wake_index = atomic_read(&sbq->wake_index); | |
676 | for (i = 0; i < SBQ_WAIT_QUEUES; i++) { | |
677 | struct sbq_wait_state *ws = &sbq->ws[wake_index]; | |
678 | ||
679 | if (waitqueue_active(&ws->wait)) | |
680 | wake_up(&ws->wait); | |
681 | ||
682 | wake_index = sbq_index_inc(wake_index); | |
683 | } | |
684 | } | |
685 | EXPORT_SYMBOL_GPL(sbitmap_queue_wake_all); | |
24af1ccf OS |
686 | |
687 | void sbitmap_queue_show(struct sbitmap_queue *sbq, struct seq_file *m) | |
688 | { | |
689 | bool first; | |
690 | int i; | |
691 | ||
692 | sbitmap_show(&sbq->sb, m); | |
693 | ||
694 | seq_puts(m, "alloc_hint={"); | |
695 | first = true; | |
696 | for_each_possible_cpu(i) { | |
697 | if (!first) | |
698 | seq_puts(m, ", "); | |
699 | first = false; | |
c548e62b | 700 | seq_printf(m, "%u", *per_cpu_ptr(sbq->sb.alloc_hint, i)); |
24af1ccf OS |
701 | } |
702 | seq_puts(m, "}\n"); | |
703 | ||
704 | seq_printf(m, "wake_batch=%u\n", sbq->wake_batch); | |
705 | seq_printf(m, "wake_index=%d\n", atomic_read(&sbq->wake_index)); | |
5d2ee712 | 706 | seq_printf(m, "ws_active=%d\n", atomic_read(&sbq->ws_active)); |
24af1ccf OS |
707 | |
708 | seq_puts(m, "ws={\n"); | |
709 | for (i = 0; i < SBQ_WAIT_QUEUES; i++) { | |
710 | struct sbq_wait_state *ws = &sbq->ws[i]; | |
4f8126bb | 711 | seq_printf(m, "\t{.wait=%s},\n", |
24af1ccf OS |
712 | waitqueue_active(&ws->wait) ? "active" : "inactive"); |
713 | } | |
714 | seq_puts(m, "}\n"); | |
715 | ||
efe1f3a1 | 716 | seq_printf(m, "round_robin=%d\n", sbq->sb.round_robin); |
a3275539 | 717 | seq_printf(m, "min_shallow_depth=%u\n", sbq->min_shallow_depth); |
24af1ccf OS |
718 | } |
719 | EXPORT_SYMBOL_GPL(sbitmap_queue_show); | |
5d2ee712 | 720 | |
9f6b7ef6 JA |
721 | void sbitmap_add_wait_queue(struct sbitmap_queue *sbq, |
722 | struct sbq_wait_state *ws, | |
723 | struct sbq_wait *sbq_wait) | |
724 | { | |
725 | if (!sbq_wait->sbq) { | |
726 | sbq_wait->sbq = sbq; | |
727 | atomic_inc(&sbq->ws_active); | |
df034c93 | 728 | add_wait_queue(&ws->wait, &sbq_wait->wait); |
9f6b7ef6 | 729 | } |
9f6b7ef6 JA |
730 | } |
731 | EXPORT_SYMBOL_GPL(sbitmap_add_wait_queue); | |
732 | ||
733 | void sbitmap_del_wait_queue(struct sbq_wait *sbq_wait) | |
734 | { | |
735 | list_del_init(&sbq_wait->wait.entry); | |
736 | if (sbq_wait->sbq) { | |
737 | atomic_dec(&sbq_wait->sbq->ws_active); | |
738 | sbq_wait->sbq = NULL; | |
739 | } | |
740 | } | |
741 | EXPORT_SYMBOL_GPL(sbitmap_del_wait_queue); | |
742 | ||
5d2ee712 JA |
743 | void sbitmap_prepare_to_wait(struct sbitmap_queue *sbq, |
744 | struct sbq_wait_state *ws, | |
745 | struct sbq_wait *sbq_wait, int state) | |
746 | { | |
9f6b7ef6 | 747 | if (!sbq_wait->sbq) { |
5d2ee712 | 748 | atomic_inc(&sbq->ws_active); |
9f6b7ef6 | 749 | sbq_wait->sbq = sbq; |
5d2ee712 JA |
750 | } |
751 | prepare_to_wait_exclusive(&ws->wait, &sbq_wait->wait, state); | |
752 | } | |
753 | EXPORT_SYMBOL_GPL(sbitmap_prepare_to_wait); | |
754 | ||
755 | void sbitmap_finish_wait(struct sbitmap_queue *sbq, struct sbq_wait_state *ws, | |
756 | struct sbq_wait *sbq_wait) | |
757 | { | |
758 | finish_wait(&ws->wait, &sbq_wait->wait); | |
9f6b7ef6 | 759 | if (sbq_wait->sbq) { |
5d2ee712 | 760 | atomic_dec(&sbq->ws_active); |
9f6b7ef6 | 761 | sbq_wait->sbq = NULL; |
5d2ee712 JA |
762 | } |
763 | } | |
764 | EXPORT_SYMBOL_GPL(sbitmap_finish_wait); |