1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * mm/percpu.c - percpu memory allocator
4 *
5 * Copyright (C) 2009 SUSE Linux Products GmbH
6 * Copyright (C) 2009 Tejun Heo <tj@kernel.org>
7 *
8 * Copyright (C) 2017 Facebook Inc.
9 * Copyright (C) 2017 Dennis Zhou <dennis@kernel.org>
10 *
11 * The percpu allocator handles both static and dynamic areas. Percpu
12 * areas are allocated in chunks which are divided into units. There is
13 * a 1-to-1 mapping for units to possible cpus. These units are grouped
14 * based on NUMA properties of the machine.
15 *
16 * c0 c1 c2
17 * ------------------- ------------------- ------------
18 * | u0 | u1 | u2 | u3 | | u0 | u1 | u2 | u3 | | u0 | u1 | u
19 * ------------------- ...... ------------------- .... ------------
20 *
21 * Allocation is done by offsets into a unit's address space. Ie., an
22 * area of 512 bytes at 6k in c1 occupies 512 bytes at 6k in c1:u0,
23 * c1:u1, c1:u2, etc. On NUMA machines, the mapping may be non-linear
24 * and even sparse. Access is handled by configuring percpu base
25 * registers according to the cpu to unit mappings and offsetting the
26 * base address using pcpu_unit_size.
27 *
28 * There is special consideration for the first chunk which must handle
29 * the static percpu variables in the kernel image as allocation services
30 * are not online yet. In short, the first chunk is structured like so:
31 *
32 * <Static | [Reserved] | Dynamic>
33 *
34 * The static data is copied from the original section managed by the
35 * linker. The reserved section, if non-zero, primarily manages static
36 * percpu variables from kernel modules. Finally, the dynamic section
37 * takes care of normal allocations.
38 *
39 * The allocator organizes chunks into lists according to free size and
40 * memcg-awareness. To make a percpu allocation memcg-aware the __GFP_ACCOUNT
41 * flag should be passed. All memcg-aware allocations are sharing one set
42 * of chunks and all unaccounted allocations and allocations performed
43 * by processes belonging to the root memory cgroup are using the second set.
44 *
45 * The allocator tries to allocate from the fullest chunk first. Each chunk
46 * is managed by a bitmap with metadata blocks. The allocation map is updated
47 * on every allocation and free to reflect the current state while the boundary
48 * map is only updated on allocation. Each metadata block contains
49 * information to help mitigate the need to iterate over large portions
50 * of the bitmap. The reverse mapping from page to chunk is stored in
51 * the page's index. Lastly, units are lazily backed and grow in unison.
52 *
53 * There is a unique conversion that goes on here between bytes and bits.
54 * Each bit represents a fragment of size PCPU_MIN_ALLOC_SIZE. The chunk
55 * tracks the number of pages it is responsible for in nr_pages. Helper
56 * functions are used to convert from between the bytes, bits, and blocks.
57 * All hints are managed in bits unless explicitly stated.
58 *
59 * To use this allocator, arch code should do the following:
60 *
61 * - define __addr_to_pcpu_ptr() and __pcpu_ptr_to_addr() to translate
62 * regular address to percpu pointer and back if they need to be
63 * different from the default
64 *
65 * - use pcpu_setup_first_chunk() during percpu area initialization to
66 * setup the first chunk containing the kernel static percpu area
67 */
68
69 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
70
71 #include <linux/bitmap.h>
72 #include <linux/cpumask.h>
73 #include <linux/memblock.h>
74 #include <linux/err.h>
75 #include <linux/list.h>
76 #include <linux/log2.h>
77 #include <linux/mm.h>
78 #include <linux/module.h>
79 #include <linux/mutex.h>
80 #include <linux/percpu.h>
81 #include <linux/pfn.h>
82 #include <linux/slab.h>
83 #include <linux/spinlock.h>
84 #include <linux/vmalloc.h>
85 #include <linux/workqueue.h>
86 #include <linux/kmemleak.h>
87 #include <linux/sched.h>
88 #include <linux/sched/mm.h>
89 #include <linux/memcontrol.h>
90
91 #include <asm/cacheflush.h>
92 #include <asm/sections.h>
93 #include <asm/tlbflush.h>
94 #include <asm/io.h>
95
96 #define CREATE_TRACE_POINTS
97 #include <trace/events/percpu.h>
98
99 #include "percpu-internal.h"
100
101 /*
102 * The slots are sorted by the size of the biggest continuous free area.
103 * 1-31 bytes share the same slot.
104 */
105 #define PCPU_SLOT_BASE_SHIFT 5
106 /* chunks in slots below this are subject to being sidelined on failed alloc */
107 #define PCPU_SLOT_FAIL_THRESHOLD 3
108
109 #define PCPU_EMPTY_POP_PAGES_LOW 2
110 #define PCPU_EMPTY_POP_PAGES_HIGH 4
111
112 #ifdef CONFIG_SMP
113 /* default addr <-> pcpu_ptr mapping, override in asm/percpu.h if necessary */
114 #ifndef __addr_to_pcpu_ptr
115 #define __addr_to_pcpu_ptr(addr) \
116 (void __percpu *)((unsigned long)(addr) - \
117 (unsigned long)pcpu_base_addr + \
118 (unsigned long)__per_cpu_start)
119 #endif
120 #ifndef __pcpu_ptr_to_addr
121 #define __pcpu_ptr_to_addr(ptr) \
122 (void __force *)((unsigned long)(ptr) + \
123 (unsigned long)pcpu_base_addr - \
124 (unsigned long)__per_cpu_start)
125 #endif
126 #else /* CONFIG_SMP */
127 /* on UP, it's always identity mapped */
128 #define __addr_to_pcpu_ptr(addr) (void __percpu *)(addr)
129 #define __pcpu_ptr_to_addr(ptr) (void __force *)(ptr)
130 #endif /* CONFIG_SMP */
131
132 static int pcpu_unit_pages __ro_after_init;
133 static int pcpu_unit_size __ro_after_init;
134 static int pcpu_nr_units __ro_after_init;
135 static int pcpu_atom_size __ro_after_init;
136 int pcpu_nr_slots __ro_after_init;
137 static int pcpu_free_slot __ro_after_init;
138 int pcpu_sidelined_slot __ro_after_init;
139 int pcpu_to_depopulate_slot __ro_after_init;
140 static size_t pcpu_chunk_struct_size __ro_after_init;
141
142 /* cpus with the lowest and highest unit addresses */
143 static unsigned int pcpu_low_unit_cpu __ro_after_init;
144 static unsigned int pcpu_high_unit_cpu __ro_after_init;
145
146 /* the address of the first chunk which starts with the kernel static area */
147 void *pcpu_base_addr __ro_after_init;
148
149 static const int *pcpu_unit_map __ro_after_init; /* cpu -> unit */
150 const unsigned long *pcpu_unit_offsets __ro_after_init; /* cpu -> unit offset */
151
152 /* group information, used for vm allocation */
153 static int pcpu_nr_groups __ro_after_init;
154 static const unsigned long *pcpu_group_offsets __ro_after_init;
155 static const size_t *pcpu_group_sizes __ro_after_init;
156
157 /*
158 * The first chunk which always exists. Note that unlike other
159 * chunks, this one can be allocated and mapped in several different
160 * ways and thus often doesn't live in the vmalloc area.
161 */
162 struct pcpu_chunk *pcpu_first_chunk __ro_after_init;
163
164 /*
165 * Optional reserved chunk. This chunk reserves part of the first
166 * chunk and serves it for reserved allocations. When the reserved
167 * region doesn't exist, the following variable is NULL.
168 */
169 struct pcpu_chunk *pcpu_reserved_chunk __ro_after_init;
170
171 DEFINE_SPINLOCK(pcpu_lock); /* all internal data structures */
172 static DEFINE_MUTEX(pcpu_alloc_mutex); /* chunk create/destroy, [de]pop, map ext */
173
174 struct list_head *pcpu_chunk_lists __ro_after_init; /* chunk list slots */
175
176 /*
177 * The number of empty populated pages, protected by pcpu_lock.
178 * The reserved chunk doesn't contribute to the count.
179 */
180 int pcpu_nr_empty_pop_pages;
181
182 /*
183 * The number of populated pages in use by the allocator, protected by
184 * pcpu_lock. This number is kept per a unit per chunk (i.e. when a page gets
185 * allocated/deallocated, it is allocated/deallocated in all units of a chunk
186 * and increments/decrements this count by 1).
187 */
188 static unsigned long pcpu_nr_populated;
189
190 /*
191 * Balance work is used to populate or destroy chunks asynchronously. We
192 * try to keep the number of populated free pages between
193 * PCPU_EMPTY_POP_PAGES_LOW and HIGH for atomic allocations and at most one
194 * empty chunk.
195 */
196 static void pcpu_balance_workfn(struct work_struct *work);
197 static DECLARE_WORK(pcpu_balance_work, pcpu_balance_workfn);
198 static bool pcpu_async_enabled __read_mostly;
199 static bool pcpu_atomic_alloc_failed;
200
pcpu_schedule_balance_work(void)201 static void pcpu_schedule_balance_work(void)
202 {
203 if (pcpu_async_enabled)
204 schedule_work(&pcpu_balance_work);
205 }
206
207 /**
208 * pcpu_addr_in_chunk - check if the address is served from this chunk
209 * @chunk: chunk of interest
210 * @addr: percpu address
211 *
212 * RETURNS:
213 * True if the address is served from this chunk.
214 */
pcpu_addr_in_chunk(struct pcpu_chunk * chunk,void * addr)215 static bool pcpu_addr_in_chunk(struct pcpu_chunk *chunk, void *addr)
216 {
217 void *start_addr, *end_addr;
218
219 if (!chunk)
220 return false;
221
222 start_addr = chunk->base_addr + chunk->start_offset;
223 end_addr = chunk->base_addr + chunk->nr_pages * PAGE_SIZE -
224 chunk->end_offset;
225
226 return addr >= start_addr && addr < end_addr;
227 }
228
__pcpu_size_to_slot(int size)229 static int __pcpu_size_to_slot(int size)
230 {
231 int highbit = fls(size); /* size is in bytes */
232 return max(highbit - PCPU_SLOT_BASE_SHIFT + 2, 1);
233 }
234
pcpu_size_to_slot(int size)235 static int pcpu_size_to_slot(int size)
236 {
237 if (size == pcpu_unit_size)
238 return pcpu_free_slot;
239 return __pcpu_size_to_slot(size);
240 }
241
pcpu_chunk_slot(const struct pcpu_chunk * chunk)242 static int pcpu_chunk_slot(const struct pcpu_chunk *chunk)
243 {
244 const struct pcpu_block_md *chunk_md = &chunk->chunk_md;
245
246 if (chunk->free_bytes < PCPU_MIN_ALLOC_SIZE ||
247 chunk_md->contig_hint == 0)
248 return 0;
249
250 return pcpu_size_to_slot(chunk_md->contig_hint * PCPU_MIN_ALLOC_SIZE);
251 }
252
253 /* set the pointer to a chunk in a page struct */
pcpu_set_page_chunk(struct page * page,struct pcpu_chunk * pcpu)254 static void pcpu_set_page_chunk(struct page *page, struct pcpu_chunk *pcpu)
255 {
256 page->private = (unsigned long)pcpu;
257 }
258
259 /* obtain pointer to a chunk from a page struct */
pcpu_get_page_chunk(struct page * page)260 static struct pcpu_chunk *pcpu_get_page_chunk(struct page *page)
261 {
262 return (struct pcpu_chunk *)page->private;
263 }
264
pcpu_page_idx(unsigned int cpu,int page_idx)265 static int __maybe_unused pcpu_page_idx(unsigned int cpu, int page_idx)
266 {
267 return pcpu_unit_map[cpu] * pcpu_unit_pages + page_idx;
268 }
269
pcpu_unit_page_offset(unsigned int cpu,int page_idx)270 static unsigned long pcpu_unit_page_offset(unsigned int cpu, int page_idx)
271 {
272 return pcpu_unit_offsets[cpu] + (page_idx << PAGE_SHIFT);
273 }
274
pcpu_chunk_addr(struct pcpu_chunk * chunk,unsigned int cpu,int page_idx)275 static unsigned long pcpu_chunk_addr(struct pcpu_chunk *chunk,
276 unsigned int cpu, int page_idx)
277 {
278 return (unsigned long)chunk->base_addr +
279 pcpu_unit_page_offset(cpu, page_idx);
280 }
281
282 /*
283 * The following are helper functions to help access bitmaps and convert
284 * between bitmap offsets to address offsets.
285 */
pcpu_index_alloc_map(struct pcpu_chunk * chunk,int index)286 static unsigned long *pcpu_index_alloc_map(struct pcpu_chunk *chunk, int index)
287 {
288 return chunk->alloc_map +
289 (index * PCPU_BITMAP_BLOCK_BITS / BITS_PER_LONG);
290 }
291
pcpu_off_to_block_index(int off)292 static unsigned long pcpu_off_to_block_index(int off)
293 {
294 return off / PCPU_BITMAP_BLOCK_BITS;
295 }
296
pcpu_off_to_block_off(int off)297 static unsigned long pcpu_off_to_block_off(int off)
298 {
299 return off & (PCPU_BITMAP_BLOCK_BITS - 1);
300 }
301
pcpu_block_off_to_off(int index,int off)302 static unsigned long pcpu_block_off_to_off(int index, int off)
303 {
304 return index * PCPU_BITMAP_BLOCK_BITS + off;
305 }
306
307 /**
308 * pcpu_check_block_hint - check against the contig hint
309 * @block: block of interest
310 * @bits: size of allocation
311 * @align: alignment of area (max PAGE_SIZE)
312 *
313 * Check to see if the allocation can fit in the block's contig hint.
314 * Note, a chunk uses the same hints as a block so this can also check against
315 * the chunk's contig hint.
316 */
pcpu_check_block_hint(struct pcpu_block_md * block,int bits,size_t align)317 static bool pcpu_check_block_hint(struct pcpu_block_md *block, int bits,
318 size_t align)
319 {
320 int bit_off = ALIGN(block->contig_hint_start, align) -
321 block->contig_hint_start;
322
323 return bit_off + bits <= block->contig_hint;
324 }
325
326 /*
327 * pcpu_next_hint - determine which hint to use
328 * @block: block of interest
329 * @alloc_bits: size of allocation
330 *
331 * This determines if we should scan based on the scan_hint or first_free.
332 * In general, we want to scan from first_free to fulfill allocations by
333 * first fit. However, if we know a scan_hint at position scan_hint_start
334 * cannot fulfill an allocation, we can begin scanning from there knowing
335 * the contig_hint will be our fallback.
336 */
pcpu_next_hint(struct pcpu_block_md * block,int alloc_bits)337 static int pcpu_next_hint(struct pcpu_block_md *block, int alloc_bits)
338 {
339 /*
340 * The three conditions below determine if we can skip past the
341 * scan_hint. First, does the scan hint exist. Second, is the
342 * contig_hint after the scan_hint (possibly not true iff
343 * contig_hint == scan_hint). Third, is the allocation request
344 * larger than the scan_hint.
345 */
346 if (block->scan_hint &&
347 block->contig_hint_start > block->scan_hint_start &&
348 alloc_bits > block->scan_hint)
349 return block->scan_hint_start + block->scan_hint;
350
351 return block->first_free;
352 }
353
354 /**
355 * pcpu_next_md_free_region - finds the next hint free area
356 * @chunk: chunk of interest
357 * @bit_off: chunk offset
358 * @bits: size of free area
359 *
360 * Helper function for pcpu_for_each_md_free_region. It checks
361 * block->contig_hint and performs aggregation across blocks to find the
362 * next hint. It modifies bit_off and bits in-place to be consumed in the
363 * loop.
364 */
pcpu_next_md_free_region(struct pcpu_chunk * chunk,int * bit_off,int * bits)365 static void pcpu_next_md_free_region(struct pcpu_chunk *chunk, int *bit_off,
366 int *bits)
367 {
368 int i = pcpu_off_to_block_index(*bit_off);
369 int block_off = pcpu_off_to_block_off(*bit_off);
370 struct pcpu_block_md *block;
371
372 *bits = 0;
373 for (block = chunk->md_blocks + i; i < pcpu_chunk_nr_blocks(chunk);
374 block++, i++) {
375 /* handles contig area across blocks */
376 if (*bits) {
377 *bits += block->left_free;
378 if (block->left_free == PCPU_BITMAP_BLOCK_BITS)
379 continue;
380 return;
381 }
382
383 /*
384 * This checks three things. First is there a contig_hint to
385 * check. Second, have we checked this hint before by
386 * comparing the block_off. Third, is this the same as the
387 * right contig hint. In the last case, it spills over into
388 * the next block and should be handled by the contig area
389 * across blocks code.
390 */
391 *bits = block->contig_hint;
392 if (*bits && block->contig_hint_start >= block_off &&
393 *bits + block->contig_hint_start < PCPU_BITMAP_BLOCK_BITS) {
394 *bit_off = pcpu_block_off_to_off(i,
395 block->contig_hint_start);
396 return;
397 }
398 /* reset to satisfy the second predicate above */
399 block_off = 0;
400
401 *bits = block->right_free;
402 *bit_off = (i + 1) * PCPU_BITMAP_BLOCK_BITS - block->right_free;
403 }
404 }
405
406 /**
407 * pcpu_next_fit_region - finds fit areas for a given allocation request
408 * @chunk: chunk of interest
409 * @alloc_bits: size of allocation
410 * @align: alignment of area (max PAGE_SIZE)
411 * @bit_off: chunk offset
412 * @bits: size of free area
413 *
414 * Finds the next free region that is viable for use with a given size and
415 * alignment. This only returns if there is a valid area to be used for this
416 * allocation. block->first_free is returned if the allocation request fits
417 * within the block to see if the request can be fulfilled prior to the contig
418 * hint.
419 */
pcpu_next_fit_region(struct pcpu_chunk * chunk,int alloc_bits,int align,int * bit_off,int * bits)420 static void pcpu_next_fit_region(struct pcpu_chunk *chunk, int alloc_bits,
421 int align, int *bit_off, int *bits)
422 {
423 int i = pcpu_off_to_block_index(*bit_off);
424 int block_off = pcpu_off_to_block_off(*bit_off);
425 struct pcpu_block_md *block;
426
427 *bits = 0;
428 for (block = chunk->md_blocks + i; i < pcpu_chunk_nr_blocks(chunk);
429 block++, i++) {
430 /* handles contig area across blocks */
431 if (*bits) {
432 *bits += block->left_free;
433 if (*bits >= alloc_bits)
434 return;
435 if (block->left_free == PCPU_BITMAP_BLOCK_BITS)
436 continue;
437 }
438
439 /* check block->contig_hint */
440 *bits = ALIGN(block->contig_hint_start, align) -
441 block->contig_hint_start;
442 /*
443 * This uses the block offset to determine if this has been
444 * checked in the prior iteration.
445 */
446 if (block->contig_hint &&
447 block->contig_hint_start >= block_off &&
448 block->contig_hint >= *bits + alloc_bits) {
449 int start = pcpu_next_hint(block, alloc_bits);
450
451 *bits += alloc_bits + block->contig_hint_start -
452 start;
453 *bit_off = pcpu_block_off_to_off(i, start);
454 return;
455 }
456 /* reset to satisfy the second predicate above */
457 block_off = 0;
458
459 *bit_off = ALIGN(PCPU_BITMAP_BLOCK_BITS - block->right_free,
460 align);
461 *bits = PCPU_BITMAP_BLOCK_BITS - *bit_off;
462 *bit_off = pcpu_block_off_to_off(i, *bit_off);
463 if (*bits >= alloc_bits)
464 return;
465 }
466
467 /* no valid offsets were found - fail condition */
468 *bit_off = pcpu_chunk_map_bits(chunk);
469 }
470
471 /*
472 * Metadata free area iterators. These perform aggregation of free areas
473 * based on the metadata blocks and return the offset @bit_off and size in
474 * bits of the free area @bits. pcpu_for_each_fit_region only returns when
475 * a fit is found for the allocation request.
476 */
477 #define pcpu_for_each_md_free_region(chunk, bit_off, bits) \
478 for (pcpu_next_md_free_region((chunk), &(bit_off), &(bits)); \
479 (bit_off) < pcpu_chunk_map_bits((chunk)); \
480 (bit_off) += (bits) + 1, \
481 pcpu_next_md_free_region((chunk), &(bit_off), &(bits)))
482
483 #define pcpu_for_each_fit_region(chunk, alloc_bits, align, bit_off, bits) \
484 for (pcpu_next_fit_region((chunk), (alloc_bits), (align), &(bit_off), \
485 &(bits)); \
486 (bit_off) < pcpu_chunk_map_bits((chunk)); \
487 (bit_off) += (bits), \
488 pcpu_next_fit_region((chunk), (alloc_bits), (align), &(bit_off), \
489 &(bits)))
490
491 /**
492 * pcpu_mem_zalloc - allocate memory
493 * @size: bytes to allocate
494 * @gfp: allocation flags
495 *
496 * Allocate @size bytes. If @size is smaller than PAGE_SIZE,
497 * kzalloc() is used; otherwise, the equivalent of vzalloc() is used.
498 * This is to facilitate passing through whitelisted flags. The
499 * returned memory is always zeroed.
500 *
501 * RETURNS:
502 * Pointer to the allocated area on success, NULL on failure.
503 */
pcpu_mem_zalloc(size_t size,gfp_t gfp)504 static void *pcpu_mem_zalloc(size_t size, gfp_t gfp)
505 {
506 if (WARN_ON_ONCE(!slab_is_available()))
507 return NULL;
508
509 if (size <= PAGE_SIZE)
510 return kzalloc(size, gfp);
511 else
512 return __vmalloc(size, gfp | __GFP_ZERO);
513 }
514
515 /**
516 * pcpu_mem_free - free memory
517 * @ptr: memory to free
518 *
519 * Free @ptr. @ptr should have been allocated using pcpu_mem_zalloc().
520 */
pcpu_mem_free(void * ptr)521 static void pcpu_mem_free(void *ptr)
522 {
523 kvfree(ptr);
524 }
525
__pcpu_chunk_move(struct pcpu_chunk * chunk,int slot,bool move_front)526 static void __pcpu_chunk_move(struct pcpu_chunk *chunk, int slot,
527 bool move_front)
528 {
529 if (chunk != pcpu_reserved_chunk) {
530 if (move_front)
531 list_move(&chunk->list, &pcpu_chunk_lists[slot]);
532 else
533 list_move_tail(&chunk->list, &pcpu_chunk_lists[slot]);
534 }
535 }
536
pcpu_chunk_move(struct pcpu_chunk * chunk,int slot)537 static void pcpu_chunk_move(struct pcpu_chunk *chunk, int slot)
538 {
539 __pcpu_chunk_move(chunk, slot, true);
540 }
541
542 /**
543 * pcpu_chunk_relocate - put chunk in the appropriate chunk slot
544 * @chunk: chunk of interest
545 * @oslot: the previous slot it was on
546 *
547 * This function is called after an allocation or free changed @chunk.
548 * New slot according to the changed state is determined and @chunk is
549 * moved to the slot. Note that the reserved chunk is never put on
550 * chunk slots.
551 *
552 * CONTEXT:
553 * pcpu_lock.
554 */
pcpu_chunk_relocate(struct pcpu_chunk * chunk,int oslot)555 static void pcpu_chunk_relocate(struct pcpu_chunk *chunk, int oslot)
556 {
557 int nslot = pcpu_chunk_slot(chunk);
558
559 /* leave isolated chunks in-place */
560 if (chunk->isolated)
561 return;
562
563 if (oslot != nslot)
564 __pcpu_chunk_move(chunk, nslot, oslot < nslot);
565 }
566
pcpu_isolate_chunk(struct pcpu_chunk * chunk)567 static void pcpu_isolate_chunk(struct pcpu_chunk *chunk)
568 {
569 lockdep_assert_held(&pcpu_lock);
570
571 if (!chunk->isolated) {
572 chunk->isolated = true;
573 pcpu_nr_empty_pop_pages -= chunk->nr_empty_pop_pages;
574 }
575 list_move(&chunk->list, &pcpu_chunk_lists[pcpu_to_depopulate_slot]);
576 }
577
pcpu_reintegrate_chunk(struct pcpu_chunk * chunk)578 static void pcpu_reintegrate_chunk(struct pcpu_chunk *chunk)
579 {
580 lockdep_assert_held(&pcpu_lock);
581
582 if (chunk->isolated) {
583 chunk->isolated = false;
584 pcpu_nr_empty_pop_pages += chunk->nr_empty_pop_pages;
585 pcpu_chunk_relocate(chunk, -1);
586 }
587 }
588
589 /*
590 * pcpu_update_empty_pages - update empty page counters
591 * @chunk: chunk of interest
592 * @nr: nr of empty pages
593 *
594 * This is used to keep track of the empty pages now based on the premise
595 * a md_block covers a page. The hint update functions recognize if a block
596 * is made full or broken to calculate deltas for keeping track of free pages.
597 */
pcpu_update_empty_pages(struct pcpu_chunk * chunk,int nr)598 static inline void pcpu_update_empty_pages(struct pcpu_chunk *chunk, int nr)
599 {
600 chunk->nr_empty_pop_pages += nr;
601 if (chunk != pcpu_reserved_chunk && !chunk->isolated)
602 pcpu_nr_empty_pop_pages += nr;
603 }
604
605 /*
606 * pcpu_region_overlap - determines if two regions overlap
607 * @a: start of first region, inclusive
608 * @b: end of first region, exclusive
609 * @x: start of second region, inclusive
610 * @y: end of second region, exclusive
611 *
612 * This is used to determine if the hint region [a, b) overlaps with the
613 * allocated region [x, y).
614 */
pcpu_region_overlap(int a,int b,int x,int y)615 static inline bool pcpu_region_overlap(int a, int b, int x, int y)
616 {
617 return (a < y) && (x < b);
618 }
619
620 /**
621 * pcpu_block_update - updates a block given a free area
622 * @block: block of interest
623 * @start: start offset in block
624 * @end: end offset in block
625 *
626 * Updates a block given a known free area. The region [start, end) is
627 * expected to be the entirety of the free area within a block. Chooses
628 * the best starting offset if the contig hints are equal.
629 */
pcpu_block_update(struct pcpu_block_md * block,int start,int end)630 static void pcpu_block_update(struct pcpu_block_md *block, int start, int end)
631 {
632 int contig = end - start;
633
634 block->first_free = min(block->first_free, start);
635 if (start == 0)
636 block->left_free = contig;
637
638 if (end == block->nr_bits)
639 block->right_free = contig;
640
641 if (contig > block->contig_hint) {
642 /* promote the old contig_hint to be the new scan_hint */
643 if (start > block->contig_hint_start) {
644 if (block->contig_hint > block->scan_hint) {
645 block->scan_hint_start =
646 block->contig_hint_start;
647 block->scan_hint = block->contig_hint;
648 } else if (start < block->scan_hint_start) {
649 /*
650 * The old contig_hint == scan_hint. But, the
651 * new contig is larger so hold the invariant
652 * scan_hint_start < contig_hint_start.
653 */
654 block->scan_hint = 0;
655 }
656 } else {
657 block->scan_hint = 0;
658 }
659 block->contig_hint_start = start;
660 block->contig_hint = contig;
661 } else if (contig == block->contig_hint) {
662 if (block->contig_hint_start &&
663 (!start ||
664 __ffs(start) > __ffs(block->contig_hint_start))) {
665 /* start has a better alignment so use it */
666 block->contig_hint_start = start;
667 if (start < block->scan_hint_start &&
668 block->contig_hint > block->scan_hint)
669 block->scan_hint = 0;
670 } else if (start > block->scan_hint_start ||
671 block->contig_hint > block->scan_hint) {
672 /*
673 * Knowing contig == contig_hint, update the scan_hint
674 * if it is farther than or larger than the current
675 * scan_hint.
676 */
677 block->scan_hint_start = start;
678 block->scan_hint = contig;
679 }
680 } else {
681 /*
682 * The region is smaller than the contig_hint. So only update
683 * the scan_hint if it is larger than or equal and farther than
684 * the current scan_hint.
685 */
686 if ((start < block->contig_hint_start &&
687 (contig > block->scan_hint ||
688 (contig == block->scan_hint &&
689 start > block->scan_hint_start)))) {
690 block->scan_hint_start = start;
691 block->scan_hint = contig;
692 }
693 }
694 }
695
696 /*
697 * pcpu_block_update_scan - update a block given a free area from a scan
698 * @chunk: chunk of interest
699 * @bit_off: chunk offset
700 * @bits: size of free area
701 *
702 * Finding the final allocation spot first goes through pcpu_find_block_fit()
703 * to find a block that can hold the allocation and then pcpu_alloc_area()
704 * where a scan is used. When allocations require specific alignments,
705 * we can inadvertently create holes which will not be seen in the alloc
706 * or free paths.
707 *
708 * This takes a given free area hole and updates a block as it may change the
709 * scan_hint. We need to scan backwards to ensure we don't miss free bits
710 * from alignment.
711 */
pcpu_block_update_scan(struct pcpu_chunk * chunk,int bit_off,int bits)712 static void pcpu_block_update_scan(struct pcpu_chunk *chunk, int bit_off,
713 int bits)
714 {
715 int s_off = pcpu_off_to_block_off(bit_off);
716 int e_off = s_off + bits;
717 int s_index, l_bit;
718 struct pcpu_block_md *block;
719
720 if (e_off > PCPU_BITMAP_BLOCK_BITS)
721 return;
722
723 s_index = pcpu_off_to_block_index(bit_off);
724 block = chunk->md_blocks + s_index;
725
726 /* scan backwards in case of alignment skipping free bits */
727 l_bit = find_last_bit(pcpu_index_alloc_map(chunk, s_index), s_off);
728 s_off = (s_off == l_bit) ? 0 : l_bit + 1;
729
730 pcpu_block_update(block, s_off, e_off);
731 }
732
733 /**
734 * pcpu_chunk_refresh_hint - updates metadata about a chunk
735 * @chunk: chunk of interest
736 * @full_scan: if we should scan from the beginning
737 *
738 * Iterates over the metadata blocks to find the largest contig area.
739 * A full scan can be avoided on the allocation path as this is triggered
740 * if we broke the contig_hint. In doing so, the scan_hint will be before
741 * the contig_hint or after if the scan_hint == contig_hint. This cannot
742 * be prevented on freeing as we want to find the largest area possibly
743 * spanning blocks.
744 */
pcpu_chunk_refresh_hint(struct pcpu_chunk * chunk,bool full_scan)745 static void pcpu_chunk_refresh_hint(struct pcpu_chunk *chunk, bool full_scan)
746 {
747 struct pcpu_block_md *chunk_md = &chunk->chunk_md;
748 int bit_off, bits;
749
750 /* promote scan_hint to contig_hint */
751 if (!full_scan && chunk_md->scan_hint) {
752 bit_off = chunk_md->scan_hint_start + chunk_md->scan_hint;
753 chunk_md->contig_hint_start = chunk_md->scan_hint_start;
754 chunk_md->contig_hint = chunk_md->scan_hint;
755 chunk_md->scan_hint = 0;
756 } else {
757 bit_off = chunk_md->first_free;
758 chunk_md->contig_hint = 0;
759 }
760
761 bits = 0;
762 pcpu_for_each_md_free_region(chunk, bit_off, bits)
763 pcpu_block_update(chunk_md, bit_off, bit_off + bits);
764 }
765
766 /**
767 * pcpu_block_refresh_hint
768 * @chunk: chunk of interest
769 * @index: index of the metadata block
770 *
771 * Scans over the block beginning at first_free and updates the block
772 * metadata accordingly.
773 */
pcpu_block_refresh_hint(struct pcpu_chunk * chunk,int index)774 static void pcpu_block_refresh_hint(struct pcpu_chunk *chunk, int index)
775 {
776 struct pcpu_block_md *block = chunk->md_blocks + index;
777 unsigned long *alloc_map = pcpu_index_alloc_map(chunk, index);
778 unsigned int start, end; /* region start, region end */
779
780 /* promote scan_hint to contig_hint */
781 if (block->scan_hint) {
782 start = block->scan_hint_start + block->scan_hint;
783 block->contig_hint_start = block->scan_hint_start;
784 block->contig_hint = block->scan_hint;
785 block->scan_hint = 0;
786 } else {
787 start = block->first_free;
788 block->contig_hint = 0;
789 }
790
791 block->right_free = 0;
792
793 /* iterate over free areas and update the contig hints */
794 for_each_clear_bitrange_from(start, end, alloc_map, PCPU_BITMAP_BLOCK_BITS)
795 pcpu_block_update(block, start, end);
796 }
797
798 /**
799 * pcpu_block_update_hint_alloc - update hint on allocation path
800 * @chunk: chunk of interest
801 * @bit_off: chunk offset
802 * @bits: size of request
803 *
804 * Updates metadata for the allocation path. The metadata only has to be
805 * refreshed by a full scan iff the chunk's contig hint is broken. Block level
806 * scans are required if the block's contig hint is broken.
807 */
pcpu_block_update_hint_alloc(struct pcpu_chunk * chunk,int bit_off,int bits)808 static void pcpu_block_update_hint_alloc(struct pcpu_chunk *chunk, int bit_off,
809 int bits)
810 {
811 struct pcpu_block_md *chunk_md = &chunk->chunk_md;
812 int nr_empty_pages = 0;
813 struct pcpu_block_md *s_block, *e_block, *block;
814 int s_index, e_index; /* block indexes of the freed allocation */
815 int s_off, e_off; /* block offsets of the freed allocation */
816
817 /*
818 * Calculate per block offsets.
819 * The calculation uses an inclusive range, but the resulting offsets
820 * are [start, end). e_index always points to the last block in the
821 * range.
822 */
823 s_index = pcpu_off_to_block_index(bit_off);
824 e_index = pcpu_off_to_block_index(bit_off + bits - 1);
825 s_off = pcpu_off_to_block_off(bit_off);
826 e_off = pcpu_off_to_block_off(bit_off + bits - 1) + 1;
827
828 s_block = chunk->md_blocks + s_index;
829 e_block = chunk->md_blocks + e_index;
830
831 /*
832 * Update s_block.
833 */
834 if (s_block->contig_hint == PCPU_BITMAP_BLOCK_BITS)
835 nr_empty_pages++;
836
837 /*
838 * block->first_free must be updated if the allocation takes its place.
839 * If the allocation breaks the contig_hint, a scan is required to
840 * restore this hint.
841 */
842 if (s_off == s_block->first_free)
843 s_block->first_free = find_next_zero_bit(
844 pcpu_index_alloc_map(chunk, s_index),
845 PCPU_BITMAP_BLOCK_BITS,
846 s_off + bits);
847
848 if (pcpu_region_overlap(s_block->scan_hint_start,
849 s_block->scan_hint_start + s_block->scan_hint,
850 s_off,
851 s_off + bits))
852 s_block->scan_hint = 0;
853
854 if (pcpu_region_overlap(s_block->contig_hint_start,
855 s_block->contig_hint_start +
856 s_block->contig_hint,
857 s_off,
858 s_off + bits)) {
859 /* block contig hint is broken - scan to fix it */
860 if (!s_off)
861 s_block->left_free = 0;
862 pcpu_block_refresh_hint(chunk, s_index);
863 } else {
864 /* update left and right contig manually */
865 s_block->left_free = min(s_block->left_free, s_off);
866 if (s_index == e_index)
867 s_block->right_free = min_t(int, s_block->right_free,
868 PCPU_BITMAP_BLOCK_BITS - e_off);
869 else
870 s_block->right_free = 0;
871 }
872
873 /*
874 * Update e_block.
875 */
876 if (s_index != e_index) {
877 if (e_block->contig_hint == PCPU_BITMAP_BLOCK_BITS)
878 nr_empty_pages++;
879
880 /*
881 * When the allocation is across blocks, the end is along
882 * the left part of the e_block.
883 */
884 e_block->first_free = find_next_zero_bit(
885 pcpu_index_alloc_map(chunk, e_index),
886 PCPU_BITMAP_BLOCK_BITS, e_off);
887
888 if (e_off == PCPU_BITMAP_BLOCK_BITS) {
889 /* reset the block */
890 e_block++;
891 } else {
892 if (e_off > e_block->scan_hint_start)
893 e_block->scan_hint = 0;
894
895 e_block->left_free = 0;
896 if (e_off > e_block->contig_hint_start) {
897 /* contig hint is broken - scan to fix it */
898 pcpu_block_refresh_hint(chunk, e_index);
899 } else {
900 e_block->right_free =
901 min_t(int, e_block->right_free,
902 PCPU_BITMAP_BLOCK_BITS - e_off);
903 }
904 }
905
906 /* update in-between md_blocks */
907 nr_empty_pages += (e_index - s_index - 1);
908 for (block = s_block + 1; block < e_block; block++) {
909 block->scan_hint = 0;
910 block->contig_hint = 0;
911 block->left_free = 0;
912 block->right_free = 0;
913 }
914 }
915
916 /*
917 * If the allocation is not atomic, some blocks may not be
918 * populated with pages, while we account it here. The number
919 * of pages will be added back with pcpu_chunk_populated()
920 * when populating pages.
921 */
922 if (nr_empty_pages)
923 pcpu_update_empty_pages(chunk, -nr_empty_pages);
924
925 if (pcpu_region_overlap(chunk_md->scan_hint_start,
926 chunk_md->scan_hint_start +
927 chunk_md->scan_hint,
928 bit_off,
929 bit_off + bits))
930 chunk_md->scan_hint = 0;
931
932 /*
933 * The only time a full chunk scan is required is if the chunk
934 * contig hint is broken. Otherwise, it means a smaller space
935 * was used and therefore the chunk contig hint is still correct.
936 */
937 if (pcpu_region_overlap(chunk_md->contig_hint_start,
938 chunk_md->contig_hint_start +
939 chunk_md->contig_hint,
940 bit_off,
941 bit_off + bits))
942 pcpu_chunk_refresh_hint(chunk, false);
943 }
944
945 /**
946 * pcpu_block_update_hint_free - updates the block hints on the free path
947 * @chunk: chunk of interest
948 * @bit_off: chunk offset
949 * @bits: size of request
950 *
951 * Updates metadata for the allocation path. This avoids a blind block
952 * refresh by making use of the block contig hints. If this fails, it scans
953 * forward and backward to determine the extent of the free area. This is
954 * capped at the boundary of blocks.
955 *
956 * A chunk update is triggered if a page becomes free, a block becomes free,
957 * or the free spans across blocks. This tradeoff is to minimize iterating
958 * over the block metadata to update chunk_md->contig_hint.
959 * chunk_md->contig_hint may be off by up to a page, but it will never be more
960 * than the available space. If the contig hint is contained in one block, it
961 * will be accurate.
962 */
pcpu_block_update_hint_free(struct pcpu_chunk * chunk,int bit_off,int bits)963 static void pcpu_block_update_hint_free(struct pcpu_chunk *chunk, int bit_off,
964 int bits)
965 {
966 int nr_empty_pages = 0;
967 struct pcpu_block_md *s_block, *e_block, *block;
968 int s_index, e_index; /* block indexes of the freed allocation */
969 int s_off, e_off; /* block offsets of the freed allocation */
970 int start, end; /* start and end of the whole free area */
971
972 /*
973 * Calculate per block offsets.
974 * The calculation uses an inclusive range, but the resulting offsets
975 * are [start, end). e_index always points to the last block in the
976 * range.
977 */
978 s_index = pcpu_off_to_block_index(bit_off);
979 e_index = pcpu_off_to_block_index(bit_off + bits - 1);
980 s_off = pcpu_off_to_block_off(bit_off);
981 e_off = pcpu_off_to_block_off(bit_off + bits - 1) + 1;
982
983 s_block = chunk->md_blocks + s_index;
984 e_block = chunk->md_blocks + e_index;
985
986 /*
987 * Check if the freed area aligns with the block->contig_hint.
988 * If it does, then the scan to find the beginning/end of the
989 * larger free area can be avoided.
990 *
991 * start and end refer to beginning and end of the free area
992 * within each their respective blocks. This is not necessarily
993 * the entire free area as it may span blocks past the beginning
994 * or end of the block.
995 */
996 start = s_off;
997 if (s_off == s_block->contig_hint + s_block->contig_hint_start) {
998 start = s_block->contig_hint_start;
999 } else {
1000 /*
1001 * Scan backwards to find the extent of the free area.
1002 * find_last_bit returns the starting bit, so if the start bit
1003 * is returned, that means there was no last bit and the
1004 * remainder of the chunk is free.
1005 */
1006 int l_bit = find_last_bit(pcpu_index_alloc_map(chunk, s_index),
1007 start);
1008 start = (start == l_bit) ? 0 : l_bit + 1;
1009 }
1010
1011 end = e_off;
1012 if (e_off == e_block->contig_hint_start)
1013 end = e_block->contig_hint_start + e_block->contig_hint;
1014 else
1015 end = find_next_bit(pcpu_index_alloc_map(chunk, e_index),
1016 PCPU_BITMAP_BLOCK_BITS, end);
1017
1018 /* update s_block */
1019 e_off = (s_index == e_index) ? end : PCPU_BITMAP_BLOCK_BITS;
1020 if (!start && e_off == PCPU_BITMAP_BLOCK_BITS)
1021 nr_empty_pages++;
1022 pcpu_block_update(s_block, start, e_off);
1023
1024 /* freeing in the same block */
1025 if (s_index != e_index) {
1026 /* update e_block */
1027 if (end == PCPU_BITMAP_BLOCK_BITS)
1028 nr_empty_pages++;
1029 pcpu_block_update(e_block, 0, end);
1030
1031 /* reset md_blocks in the middle */
1032 nr_empty_pages += (e_index - s_index - 1);
1033 for (block = s_block + 1; block < e_block; block++) {
1034 block->first_free = 0;
1035 block->scan_hint = 0;
1036 block->contig_hint_start = 0;
1037 block->contig_hint = PCPU_BITMAP_BLOCK_BITS;
1038 block->left_free = PCPU_BITMAP_BLOCK_BITS;
1039 block->right_free = PCPU_BITMAP_BLOCK_BITS;
1040 }
1041 }
1042
1043 if (nr_empty_pages)
1044 pcpu_update_empty_pages(chunk, nr_empty_pages);
1045
1046 /*
1047 * Refresh chunk metadata when the free makes a block free or spans
1048 * across blocks. The contig_hint may be off by up to a page, but if
1049 * the contig_hint is contained in a block, it will be accurate with
1050 * the else condition below.
1051 */
1052 if (((end - start) >= PCPU_BITMAP_BLOCK_BITS) || s_index != e_index)
1053 pcpu_chunk_refresh_hint(chunk, true);
1054 else
1055 pcpu_block_update(&chunk->chunk_md,
1056 pcpu_block_off_to_off(s_index, start),
1057 end);
1058 }
1059
1060 /**
1061 * pcpu_is_populated - determines if the region is populated
1062 * @chunk: chunk of interest
1063 * @bit_off: chunk offset
1064 * @bits: size of area
1065 * @next_off: return value for the next offset to start searching
1066 *
1067 * For atomic allocations, check if the backing pages are populated.
1068 *
1069 * RETURNS:
1070 * Bool if the backing pages are populated.
1071 * next_index is to skip over unpopulated blocks in pcpu_find_block_fit.
1072 */
pcpu_is_populated(struct pcpu_chunk * chunk,int bit_off,int bits,int * next_off)1073 static bool pcpu_is_populated(struct pcpu_chunk *chunk, int bit_off, int bits,
1074 int *next_off)
1075 {
1076 unsigned int start, end;
1077
1078 start = PFN_DOWN(bit_off * PCPU_MIN_ALLOC_SIZE);
1079 end = PFN_UP((bit_off + bits) * PCPU_MIN_ALLOC_SIZE);
1080
1081 start = find_next_zero_bit(chunk->populated, end, start);
1082 if (start >= end)
1083 return true;
1084
1085 end = find_next_bit(chunk->populated, end, start + 1);
1086
1087 *next_off = end * PAGE_SIZE / PCPU_MIN_ALLOC_SIZE;
1088 return false;
1089 }
1090
1091 /**
1092 * pcpu_find_block_fit - finds the block index to start searching
1093 * @chunk: chunk of interest
1094 * @alloc_bits: size of request in allocation units
1095 * @align: alignment of area (max PAGE_SIZE bytes)
1096 * @pop_only: use populated regions only
1097 *
1098 * Given a chunk and an allocation spec, find the offset to begin searching
1099 * for a free region. This iterates over the bitmap metadata blocks to
1100 * find an offset that will be guaranteed to fit the requirements. It is
1101 * not quite first fit as if the allocation does not fit in the contig hint
1102 * of a block or chunk, it is skipped. This errs on the side of caution
1103 * to prevent excess iteration. Poor alignment can cause the allocator to
1104 * skip over blocks and chunks that have valid free areas.
1105 *
1106 * RETURNS:
1107 * The offset in the bitmap to begin searching.
1108 * -1 if no offset is found.
1109 */
pcpu_find_block_fit(struct pcpu_chunk * chunk,int alloc_bits,size_t align,bool pop_only)1110 static int pcpu_find_block_fit(struct pcpu_chunk *chunk, int alloc_bits,
1111 size_t align, bool pop_only)
1112 {
1113 struct pcpu_block_md *chunk_md = &chunk->chunk_md;
1114 int bit_off, bits, next_off;
1115
1116 /*
1117 * This is an optimization to prevent scanning by assuming if the
1118 * allocation cannot fit in the global hint, there is memory pressure
1119 * and creating a new chunk would happen soon.
1120 */
1121 if (!pcpu_check_block_hint(chunk_md, alloc_bits, align))
1122 return -1;
1123
1124 bit_off = pcpu_next_hint(chunk_md, alloc_bits);
1125 bits = 0;
1126 pcpu_for_each_fit_region(chunk, alloc_bits, align, bit_off, bits) {
1127 if (!pop_only || pcpu_is_populated(chunk, bit_off, bits,
1128 &next_off))
1129 break;
1130
1131 bit_off = next_off;
1132 bits = 0;
1133 }
1134
1135 if (bit_off == pcpu_chunk_map_bits(chunk))
1136 return -1;
1137
1138 return bit_off;
1139 }
1140
1141 /*
1142 * pcpu_find_zero_area - modified from bitmap_find_next_zero_area_off()
1143 * @map: the address to base the search on
1144 * @size: the bitmap size in bits
1145 * @start: the bitnumber to start searching at
1146 * @nr: the number of zeroed bits we're looking for
1147 * @align_mask: alignment mask for zero area
1148 * @largest_off: offset of the largest area skipped
1149 * @largest_bits: size of the largest area skipped
1150 *
1151 * The @align_mask should be one less than a power of 2.
1152 *
1153 * This is a modified version of bitmap_find_next_zero_area_off() to remember
1154 * the largest area that was skipped. This is imperfect, but in general is
1155 * good enough. The largest remembered region is the largest failed region
1156 * seen. This does not include anything we possibly skipped due to alignment.
1157 * pcpu_block_update_scan() does scan backwards to try and recover what was
1158 * lost to alignment. While this can cause scanning to miss earlier possible
1159 * free areas, smaller allocations will eventually fill those holes.
1160 */
pcpu_find_zero_area(unsigned long * map,unsigned long size,unsigned long start,unsigned long nr,unsigned long align_mask,unsigned long * largest_off,unsigned long * largest_bits)1161 static unsigned long pcpu_find_zero_area(unsigned long *map,
1162 unsigned long size,
1163 unsigned long start,
1164 unsigned long nr,
1165 unsigned long align_mask,
1166 unsigned long *largest_off,
1167 unsigned long *largest_bits)
1168 {
1169 unsigned long index, end, i, area_off, area_bits;
1170 again:
1171 index = find_next_zero_bit(map, size, start);
1172
1173 /* Align allocation */
1174 index = __ALIGN_MASK(index, align_mask);
1175 area_off = index;
1176
1177 end = index + nr;
1178 if (end > size)
1179 return end;
1180 i = find_next_bit(map, end, index);
1181 if (i < end) {
1182 area_bits = i - area_off;
1183 /* remember largest unused area with best alignment */
1184 if (area_bits > *largest_bits ||
1185 (area_bits == *largest_bits && *largest_off &&
1186 (!area_off || __ffs(area_off) > __ffs(*largest_off)))) {
1187 *largest_off = area_off;
1188 *largest_bits = area_bits;
1189 }
1190
1191 start = i + 1;
1192 goto again;
1193 }
1194 return index;
1195 }
1196
1197 /**
1198 * pcpu_alloc_area - allocates an area from a pcpu_chunk
1199 * @chunk: chunk of interest
1200 * @alloc_bits: size of request in allocation units
1201 * @align: alignment of area (max PAGE_SIZE)
1202 * @start: bit_off to start searching
1203 *
1204 * This function takes in a @start offset to begin searching to fit an
1205 * allocation of @alloc_bits with alignment @align. It needs to scan
1206 * the allocation map because if it fits within the block's contig hint,
1207 * @start will be block->first_free. This is an attempt to fill the
1208 * allocation prior to breaking the contig hint. The allocation and
1209 * boundary maps are updated accordingly if it confirms a valid
1210 * free area.
1211 *
1212 * RETURNS:
1213 * Allocated addr offset in @chunk on success.
1214 * -1 if no matching area is found.
1215 */
pcpu_alloc_area(struct pcpu_chunk * chunk,int alloc_bits,size_t align,int start)1216 static int pcpu_alloc_area(struct pcpu_chunk *chunk, int alloc_bits,
1217 size_t align, int start)
1218 {
1219 struct pcpu_block_md *chunk_md = &chunk->chunk_md;
1220 size_t align_mask = (align) ? (align - 1) : 0;
1221 unsigned long area_off = 0, area_bits = 0;
1222 int bit_off, end, oslot;
1223
1224 lockdep_assert_held(&pcpu_lock);
1225
1226 oslot = pcpu_chunk_slot(chunk);
1227
1228 /*
1229 * Search to find a fit.
1230 */
1231 end = min_t(int, start + alloc_bits + PCPU_BITMAP_BLOCK_BITS,
1232 pcpu_chunk_map_bits(chunk));
1233 bit_off = pcpu_find_zero_area(chunk->alloc_map, end, start, alloc_bits,
1234 align_mask, &area_off, &area_bits);
1235 if (bit_off >= end)
1236 return -1;
1237
1238 if (area_bits)
1239 pcpu_block_update_scan(chunk, area_off, area_bits);
1240
1241 /* update alloc map */
1242 bitmap_set(chunk->alloc_map, bit_off, alloc_bits);
1243
1244 /* update boundary map */
1245 set_bit(bit_off, chunk->bound_map);
1246 bitmap_clear(chunk->bound_map, bit_off + 1, alloc_bits - 1);
1247 set_bit(bit_off + alloc_bits, chunk->bound_map);
1248
1249 chunk->free_bytes -= alloc_bits * PCPU_MIN_ALLOC_SIZE;
1250
1251 /* update first free bit */
1252 if (bit_off == chunk_md->first_free)
1253 chunk_md->first_free = find_next_zero_bit(
1254 chunk->alloc_map,
1255 pcpu_chunk_map_bits(chunk),
1256 bit_off + alloc_bits);
1257
1258 pcpu_block_update_hint_alloc(chunk, bit_off, alloc_bits);
1259
1260 pcpu_chunk_relocate(chunk, oslot);
1261
1262 return bit_off * PCPU_MIN_ALLOC_SIZE;
1263 }
1264
1265 /**
1266 * pcpu_free_area - frees the corresponding offset
1267 * @chunk: chunk of interest
1268 * @off: addr offset into chunk
1269 *
1270 * This function determines the size of an allocation to free using
1271 * the boundary bitmap and clears the allocation map.
1272 *
1273 * RETURNS:
1274 * Number of freed bytes.
1275 */
pcpu_free_area(struct pcpu_chunk * chunk,int off)1276 static int pcpu_free_area(struct pcpu_chunk *chunk, int off)
1277 {
1278 struct pcpu_block_md *chunk_md = &chunk->chunk_md;
1279 int bit_off, bits, end, oslot, freed;
1280
1281 lockdep_assert_held(&pcpu_lock);
1282
1283 oslot = pcpu_chunk_slot(chunk);
1284
1285 bit_off = off / PCPU_MIN_ALLOC_SIZE;
1286
1287 /* check invalid free */
1288 if (!test_bit(bit_off, chunk->alloc_map) ||
1289 !test_bit(bit_off, chunk->bound_map))
1290 return 0;
1291
1292 /* find end index */
1293 end = find_next_bit(chunk->bound_map, pcpu_chunk_map_bits(chunk),
1294 bit_off + 1);
1295 bits = end - bit_off;
1296 bitmap_clear(chunk->alloc_map, bit_off, bits);
1297
1298 freed = bits * PCPU_MIN_ALLOC_SIZE;
1299
1300 /* update metadata */
1301 chunk->free_bytes += freed;
1302
1303 /* update first free bit */
1304 chunk_md->first_free = min(chunk_md->first_free, bit_off);
1305
1306 pcpu_block_update_hint_free(chunk, bit_off, bits);
1307
1308 pcpu_chunk_relocate(chunk, oslot);
1309
1310 pcpu_stats_area_dealloc(chunk);
1311
1312 return freed;
1313 }
1314
pcpu_init_md_block(struct pcpu_block_md * block,int nr_bits)1315 static void pcpu_init_md_block(struct pcpu_block_md *block, int nr_bits)
1316 {
1317 block->scan_hint = 0;
1318 block->contig_hint = nr_bits;
1319 block->left_free = nr_bits;
1320 block->right_free = nr_bits;
1321 block->first_free = 0;
1322 block->nr_bits = nr_bits;
1323 }
1324
pcpu_init_md_blocks(struct pcpu_chunk * chunk)1325 static void pcpu_init_md_blocks(struct pcpu_chunk *chunk)
1326 {
1327 struct pcpu_block_md *md_block;
1328
1329 /* init the chunk's block */
1330 pcpu_init_md_block(&chunk->chunk_md, pcpu_chunk_map_bits(chunk));
1331
1332 for (md_block = chunk->md_blocks;
1333 md_block != chunk->md_blocks + pcpu_chunk_nr_blocks(chunk);
1334 md_block++)
1335 pcpu_init_md_block(md_block, PCPU_BITMAP_BLOCK_BITS);
1336 }
1337
1338 /**
1339 * pcpu_alloc_first_chunk - creates chunks that serve the first chunk
1340 * @tmp_addr: the start of the region served
1341 * @map_size: size of the region served
1342 *
1343 * This is responsible for creating the chunks that serve the first chunk. The
1344 * base_addr is page aligned down of @tmp_addr while the region end is page
1345 * aligned up. Offsets are kept track of to determine the region served. All
1346 * this is done to appease the bitmap allocator in avoiding partial blocks.
1347 *
1348 * RETURNS:
1349 * Chunk serving the region at @tmp_addr of @map_size.
1350 */
pcpu_alloc_first_chunk(unsigned long tmp_addr,int map_size)1351 static struct pcpu_chunk * __init pcpu_alloc_first_chunk(unsigned long tmp_addr,
1352 int map_size)
1353 {
1354 struct pcpu_chunk *chunk;
1355 unsigned long aligned_addr;
1356 int start_offset, offset_bits, region_size, region_bits;
1357 size_t alloc_size;
1358
1359 /* region calculations */
1360 aligned_addr = tmp_addr & PAGE_MASK;
1361
1362 start_offset = tmp_addr - aligned_addr;
1363 region_size = ALIGN(start_offset + map_size, PAGE_SIZE);
1364
1365 /* allocate chunk */
1366 alloc_size = struct_size(chunk, populated,
1367 BITS_TO_LONGS(region_size >> PAGE_SHIFT));
1368 chunk = memblock_alloc_or_panic(alloc_size, SMP_CACHE_BYTES);
1369
1370 INIT_LIST_HEAD(&chunk->list);
1371
1372 chunk->base_addr = (void *)aligned_addr;
1373 chunk->start_offset = start_offset;
1374 chunk->end_offset = region_size - chunk->start_offset - map_size;
1375
1376 chunk->nr_pages = region_size >> PAGE_SHIFT;
1377 region_bits = pcpu_chunk_map_bits(chunk);
1378
1379 alloc_size = BITS_TO_LONGS(region_bits) * sizeof(chunk->alloc_map[0]);
1380 chunk->alloc_map = memblock_alloc_or_panic(alloc_size, SMP_CACHE_BYTES);
1381
1382 alloc_size =
1383 BITS_TO_LONGS(region_bits + 1) * sizeof(chunk->bound_map[0]);
1384 chunk->bound_map = memblock_alloc_or_panic(alloc_size, SMP_CACHE_BYTES);
1385
1386 alloc_size = pcpu_chunk_nr_blocks(chunk) * sizeof(chunk->md_blocks[0]);
1387 chunk->md_blocks = memblock_alloc_or_panic(alloc_size, SMP_CACHE_BYTES);
1388 #ifdef NEED_PCPUOBJ_EXT
1389 /* first chunk is free to use */
1390 chunk->obj_exts = NULL;
1391 #endif
1392 pcpu_init_md_blocks(chunk);
1393
1394 /* manage populated page bitmap */
1395 chunk->immutable = true;
1396 bitmap_fill(chunk->populated, chunk->nr_pages);
1397 chunk->nr_populated = chunk->nr_pages;
1398 chunk->nr_empty_pop_pages = chunk->nr_pages;
1399
1400 chunk->free_bytes = map_size;
1401
1402 if (chunk->start_offset) {
1403 /* hide the beginning of the bitmap */
1404 offset_bits = chunk->start_offset / PCPU_MIN_ALLOC_SIZE;
1405 bitmap_set(chunk->alloc_map, 0, offset_bits);
1406 set_bit(0, chunk->bound_map);
1407 set_bit(offset_bits, chunk->bound_map);
1408
1409 chunk->chunk_md.first_free = offset_bits;
1410
1411 pcpu_block_update_hint_alloc(chunk, 0, offset_bits);
1412 }
1413
1414 if (chunk->end_offset) {
1415 /* hide the end of the bitmap */
1416 offset_bits = chunk->end_offset / PCPU_MIN_ALLOC_SIZE;
1417 bitmap_set(chunk->alloc_map,
1418 pcpu_chunk_map_bits(chunk) - offset_bits,
1419 offset_bits);
1420 set_bit((start_offset + map_size) / PCPU_MIN_ALLOC_SIZE,
1421 chunk->bound_map);
1422 set_bit(region_bits, chunk->bound_map);
1423
1424 pcpu_block_update_hint_alloc(chunk, pcpu_chunk_map_bits(chunk)
1425 - offset_bits, offset_bits);
1426 }
1427
1428 return chunk;
1429 }
1430
pcpu_alloc_chunk(gfp_t gfp)1431 static struct pcpu_chunk *pcpu_alloc_chunk(gfp_t gfp)
1432 {
1433 struct pcpu_chunk *chunk;
1434 int region_bits;
1435
1436 chunk = pcpu_mem_zalloc(pcpu_chunk_struct_size, gfp);
1437 if (!chunk)
1438 return NULL;
1439
1440 INIT_LIST_HEAD(&chunk->list);
1441 chunk->nr_pages = pcpu_unit_pages;
1442 region_bits = pcpu_chunk_map_bits(chunk);
1443
1444 chunk->alloc_map = pcpu_mem_zalloc(BITS_TO_LONGS(region_bits) *
1445 sizeof(chunk->alloc_map[0]), gfp);
1446 if (!chunk->alloc_map)
1447 goto alloc_map_fail;
1448
1449 chunk->bound_map = pcpu_mem_zalloc(BITS_TO_LONGS(region_bits + 1) *
1450 sizeof(chunk->bound_map[0]), gfp);
1451 if (!chunk->bound_map)
1452 goto bound_map_fail;
1453
1454 chunk->md_blocks = pcpu_mem_zalloc(pcpu_chunk_nr_blocks(chunk) *
1455 sizeof(chunk->md_blocks[0]), gfp);
1456 if (!chunk->md_blocks)
1457 goto md_blocks_fail;
1458
1459 #ifdef NEED_PCPUOBJ_EXT
1460 if (need_pcpuobj_ext()) {
1461 chunk->obj_exts =
1462 pcpu_mem_zalloc(pcpu_chunk_map_bits(chunk) *
1463 sizeof(struct pcpuobj_ext), gfp);
1464 if (!chunk->obj_exts)
1465 goto objcg_fail;
1466 }
1467 #endif
1468
1469 pcpu_init_md_blocks(chunk);
1470
1471 /* init metadata */
1472 chunk->free_bytes = chunk->nr_pages * PAGE_SIZE;
1473
1474 return chunk;
1475
1476 #ifdef NEED_PCPUOBJ_EXT
1477 objcg_fail:
1478 pcpu_mem_free(chunk->md_blocks);
1479 #endif
1480 md_blocks_fail:
1481 pcpu_mem_free(chunk->bound_map);
1482 bound_map_fail:
1483 pcpu_mem_free(chunk->alloc_map);
1484 alloc_map_fail:
1485 pcpu_mem_free(chunk);
1486
1487 return NULL;
1488 }
1489
pcpu_free_chunk(struct pcpu_chunk * chunk)1490 static void pcpu_free_chunk(struct pcpu_chunk *chunk)
1491 {
1492 if (!chunk)
1493 return;
1494 #ifdef NEED_PCPUOBJ_EXT
1495 pcpu_mem_free(chunk->obj_exts);
1496 #endif
1497 pcpu_mem_free(chunk->md_blocks);
1498 pcpu_mem_free(chunk->bound_map);
1499 pcpu_mem_free(chunk->alloc_map);
1500 pcpu_mem_free(chunk);
1501 }
1502
1503 /**
1504 * pcpu_chunk_populated - post-population bookkeeping
1505 * @chunk: pcpu_chunk which got populated
1506 * @page_start: the start page
1507 * @page_end: the end page
1508 *
1509 * Pages in [@page_start,@page_end) have been populated to @chunk. Update
1510 * the bookkeeping information accordingly. Must be called after each
1511 * successful population.
1512 */
pcpu_chunk_populated(struct pcpu_chunk * chunk,int page_start,int page_end)1513 static void pcpu_chunk_populated(struct pcpu_chunk *chunk, int page_start,
1514 int page_end)
1515 {
1516 int nr = page_end - page_start;
1517
1518 lockdep_assert_held(&pcpu_lock);
1519
1520 bitmap_set(chunk->populated, page_start, nr);
1521 chunk->nr_populated += nr;
1522 pcpu_nr_populated += nr;
1523
1524 pcpu_update_empty_pages(chunk, nr);
1525 }
1526
1527 /**
1528 * pcpu_chunk_depopulated - post-depopulation bookkeeping
1529 * @chunk: pcpu_chunk which got depopulated
1530 * @page_start: the start page
1531 * @page_end: the end page
1532 *
1533 * Pages in [@page_start,@page_end) have been depopulated from @chunk.
1534 * Update the bookkeeping information accordingly. Must be called after
1535 * each successful depopulation.
1536 */
pcpu_chunk_depopulated(struct pcpu_chunk * chunk,int page_start,int page_end)1537 static void pcpu_chunk_depopulated(struct pcpu_chunk *chunk,
1538 int page_start, int page_end)
1539 {
1540 int nr = page_end - page_start;
1541
1542 lockdep_assert_held(&pcpu_lock);
1543
1544 bitmap_clear(chunk->populated, page_start, nr);
1545 chunk->nr_populated -= nr;
1546 pcpu_nr_populated -= nr;
1547
1548 pcpu_update_empty_pages(chunk, -nr);
1549 }
1550
1551 /*
1552 * Chunk management implementation.
1553 *
1554 * To allow different implementations, chunk alloc/free and
1555 * [de]population are implemented in a separate file which is pulled
1556 * into this file and compiled together. The following functions
1557 * should be implemented.
1558 *
1559 * pcpu_populate_chunk - populate the specified range of a chunk
1560 * pcpu_depopulate_chunk - depopulate the specified range of a chunk
1561 * pcpu_post_unmap_tlb_flush - flush tlb for the specified range of a chunk
1562 * pcpu_create_chunk - create a new chunk
1563 * pcpu_destroy_chunk - destroy a chunk, always preceded by full depop
1564 * pcpu_addr_to_page - translate address to physical address
1565 * pcpu_verify_alloc_info - check alloc_info is acceptable during init
1566 */
1567 static int pcpu_populate_chunk(struct pcpu_chunk *chunk,
1568 int page_start, int page_end, gfp_t gfp);
1569 static void pcpu_depopulate_chunk(struct pcpu_chunk *chunk,
1570 int page_start, int page_end);
1571 static void pcpu_post_unmap_tlb_flush(struct pcpu_chunk *chunk,
1572 int page_start, int page_end);
1573 static struct pcpu_chunk *pcpu_create_chunk(gfp_t gfp);
1574 static void pcpu_destroy_chunk(struct pcpu_chunk *chunk);
1575 static struct page *pcpu_addr_to_page(void *addr);
1576 static int __init pcpu_verify_alloc_info(const struct pcpu_alloc_info *ai);
1577
1578 #ifdef CONFIG_NEED_PER_CPU_KM
1579 #include "percpu-km.c"
1580 #else
1581 #include "percpu-vm.c"
1582 #endif
1583
1584 /**
1585 * pcpu_chunk_addr_search - determine chunk containing specified address
1586 * @addr: address for which the chunk needs to be determined.
1587 *
1588 * This is an internal function that handles all but static allocations.
1589 * Static percpu address values should never be passed into the allocator.
1590 *
1591 * RETURNS:
1592 * The address of the found chunk.
1593 */
pcpu_chunk_addr_search(void * addr)1594 static struct pcpu_chunk *pcpu_chunk_addr_search(void *addr)
1595 {
1596 /* is it in the dynamic region (first chunk)? */
1597 if (pcpu_addr_in_chunk(pcpu_first_chunk, addr))
1598 return pcpu_first_chunk;
1599
1600 /* is it in the reserved region? */
1601 if (pcpu_addr_in_chunk(pcpu_reserved_chunk, addr))
1602 return pcpu_reserved_chunk;
1603
1604 /*
1605 * The address is relative to unit0 which might be unused and
1606 * thus unmapped. Offset the address to the unit space of the
1607 * current processor before looking it up in the vmalloc
1608 * space. Note that any possible cpu id can be used here, so
1609 * there's no need to worry about preemption or cpu hotplug.
1610 */
1611 addr += pcpu_unit_offsets[raw_smp_processor_id()];
1612 return pcpu_get_page_chunk(pcpu_addr_to_page(addr));
1613 }
1614
1615 #ifdef CONFIG_MEMCG
pcpu_memcg_pre_alloc_hook(size_t size,gfp_t gfp,struct obj_cgroup ** objcgp)1616 static bool pcpu_memcg_pre_alloc_hook(size_t size, gfp_t gfp,
1617 struct obj_cgroup **objcgp)
1618 {
1619 struct obj_cgroup *objcg;
1620
1621 if (!memcg_kmem_online() || !(gfp & __GFP_ACCOUNT))
1622 return true;
1623
1624 objcg = current_obj_cgroup();
1625 if (!objcg)
1626 return true;
1627
1628 if (obj_cgroup_charge(objcg, gfp, pcpu_obj_full_size(size)))
1629 return false;
1630
1631 *objcgp = objcg;
1632 return true;
1633 }
1634
pcpu_memcg_post_alloc_hook(struct obj_cgroup * objcg,struct pcpu_chunk * chunk,int off,size_t size)1635 static void pcpu_memcg_post_alloc_hook(struct obj_cgroup *objcg,
1636 struct pcpu_chunk *chunk, int off,
1637 size_t size)
1638 {
1639 if (!objcg)
1640 return;
1641
1642 if (likely(chunk && chunk->obj_exts)) {
1643 obj_cgroup_get(objcg);
1644 chunk->obj_exts[off >> PCPU_MIN_ALLOC_SHIFT].cgroup = objcg;
1645
1646 rcu_read_lock();
1647 mod_memcg_state(obj_cgroup_memcg(objcg), MEMCG_PERCPU_B,
1648 pcpu_obj_full_size(size));
1649 rcu_read_unlock();
1650 } else {
1651 obj_cgroup_uncharge(objcg, pcpu_obj_full_size(size));
1652 }
1653 }
1654
pcpu_memcg_free_hook(struct pcpu_chunk * chunk,int off,size_t size)1655 static void pcpu_memcg_free_hook(struct pcpu_chunk *chunk, int off, size_t size)
1656 {
1657 struct obj_cgroup *objcg;
1658
1659 if (unlikely(!chunk->obj_exts))
1660 return;
1661
1662 objcg = chunk->obj_exts[off >> PCPU_MIN_ALLOC_SHIFT].cgroup;
1663 if (!objcg)
1664 return;
1665 chunk->obj_exts[off >> PCPU_MIN_ALLOC_SHIFT].cgroup = NULL;
1666
1667 obj_cgroup_uncharge(objcg, pcpu_obj_full_size(size));
1668
1669 rcu_read_lock();
1670 mod_memcg_state(obj_cgroup_memcg(objcg), MEMCG_PERCPU_B,
1671 -pcpu_obj_full_size(size));
1672 rcu_read_unlock();
1673
1674 obj_cgroup_put(objcg);
1675 }
1676
1677 #else /* CONFIG_MEMCG */
1678 static bool
pcpu_memcg_pre_alloc_hook(size_t size,gfp_t gfp,struct obj_cgroup ** objcgp)1679 pcpu_memcg_pre_alloc_hook(size_t size, gfp_t gfp, struct obj_cgroup **objcgp)
1680 {
1681 return true;
1682 }
1683
pcpu_memcg_post_alloc_hook(struct obj_cgroup * objcg,struct pcpu_chunk * chunk,int off,size_t size)1684 static void pcpu_memcg_post_alloc_hook(struct obj_cgroup *objcg,
1685 struct pcpu_chunk *chunk, int off,
1686 size_t size)
1687 {
1688 }
1689
pcpu_memcg_free_hook(struct pcpu_chunk * chunk,int off,size_t size)1690 static void pcpu_memcg_free_hook(struct pcpu_chunk *chunk, int off, size_t size)
1691 {
1692 }
1693 #endif /* CONFIG_MEMCG */
1694
1695 #ifdef CONFIG_MEM_ALLOC_PROFILING
pcpu_alloc_tag_alloc_hook(struct pcpu_chunk * chunk,int off,size_t size)1696 static void pcpu_alloc_tag_alloc_hook(struct pcpu_chunk *chunk, int off,
1697 size_t size)
1698 {
1699 if (mem_alloc_profiling_enabled() && likely(chunk->obj_exts)) {
1700 alloc_tag_add(&chunk->obj_exts[off >> PCPU_MIN_ALLOC_SHIFT].tag,
1701 current->alloc_tag, size);
1702 }
1703 }
1704
pcpu_alloc_tag_free_hook(struct pcpu_chunk * chunk,int off,size_t size)1705 static void pcpu_alloc_tag_free_hook(struct pcpu_chunk *chunk, int off, size_t size)
1706 {
1707 if (mem_alloc_profiling_enabled() && likely(chunk->obj_exts))
1708 alloc_tag_sub(&chunk->obj_exts[off >> PCPU_MIN_ALLOC_SHIFT].tag, size);
1709 }
1710 #else
pcpu_alloc_tag_alloc_hook(struct pcpu_chunk * chunk,int off,size_t size)1711 static void pcpu_alloc_tag_alloc_hook(struct pcpu_chunk *chunk, int off,
1712 size_t size)
1713 {
1714 }
1715
pcpu_alloc_tag_free_hook(struct pcpu_chunk * chunk,int off,size_t size)1716 static void pcpu_alloc_tag_free_hook(struct pcpu_chunk *chunk, int off, size_t size)
1717 {
1718 }
1719 #endif
1720
1721 /**
1722 * pcpu_alloc - the percpu allocator
1723 * @size: size of area to allocate in bytes
1724 * @align: alignment of area (max PAGE_SIZE)
1725 * @reserved: allocate from the reserved chunk if available
1726 * @gfp: allocation flags
1727 *
1728 * Allocate percpu area of @size bytes aligned at @align. If @gfp doesn't
1729 * contain %GFP_KERNEL, the allocation is atomic. If @gfp has __GFP_NOWARN
1730 * then no warning will be triggered on invalid or failed allocation
1731 * requests.
1732 *
1733 * RETURNS:
1734 * Percpu pointer to the allocated area on success, NULL on failure.
1735 */
pcpu_alloc_noprof(size_t size,size_t align,bool reserved,gfp_t gfp)1736 void __percpu *pcpu_alloc_noprof(size_t size, size_t align, bool reserved,
1737 gfp_t gfp)
1738 {
1739 gfp_t pcpu_gfp;
1740 bool is_atomic;
1741 bool do_warn;
1742 struct obj_cgroup *objcg = NULL;
1743 static atomic_t warn_limit = ATOMIC_INIT(10);
1744 struct pcpu_chunk *chunk, *next;
1745 const char *err;
1746 int slot, off, cpu, ret;
1747 unsigned long flags;
1748 void __percpu *ptr;
1749 size_t bits, bit_align;
1750
1751 gfp = current_gfp_context(gfp);
1752 /* whitelisted flags that can be passed to the backing allocators */
1753 pcpu_gfp = gfp & (GFP_KERNEL | __GFP_NORETRY | __GFP_NOWARN);
1754 is_atomic = !gfpflags_allow_blocking(gfp);
1755 do_warn = !(gfp & __GFP_NOWARN);
1756
1757 /*
1758 * There is now a minimum allocation size of PCPU_MIN_ALLOC_SIZE,
1759 * therefore alignment must be a minimum of that many bytes.
1760 * An allocation may have internal fragmentation from rounding up
1761 * of up to PCPU_MIN_ALLOC_SIZE - 1 bytes.
1762 */
1763 if (unlikely(align < PCPU_MIN_ALLOC_SIZE))
1764 align = PCPU_MIN_ALLOC_SIZE;
1765
1766 size = ALIGN(size, PCPU_MIN_ALLOC_SIZE);
1767 bits = size >> PCPU_MIN_ALLOC_SHIFT;
1768 bit_align = align >> PCPU_MIN_ALLOC_SHIFT;
1769
1770 if (unlikely(!size || size > PCPU_MIN_UNIT_SIZE || align > PAGE_SIZE ||
1771 !is_power_of_2(align))) {
1772 WARN(do_warn, "illegal size (%zu) or align (%zu) for percpu allocation\n",
1773 size, align);
1774 return NULL;
1775 }
1776
1777 if (unlikely(!pcpu_memcg_pre_alloc_hook(size, gfp, &objcg)))
1778 return NULL;
1779
1780 if (!is_atomic) {
1781 /*
1782 * pcpu_balance_workfn() allocates memory under this mutex,
1783 * and it may wait for memory reclaim. Allow current task
1784 * to become OOM victim, in case of memory pressure.
1785 */
1786 if (gfp & __GFP_NOFAIL) {
1787 mutex_lock(&pcpu_alloc_mutex);
1788 } else if (mutex_lock_killable(&pcpu_alloc_mutex)) {
1789 pcpu_memcg_post_alloc_hook(objcg, NULL, 0, size);
1790 return NULL;
1791 }
1792 }
1793
1794 spin_lock_irqsave(&pcpu_lock, flags);
1795
1796 /* serve reserved allocations from the reserved chunk if available */
1797 if (reserved && pcpu_reserved_chunk) {
1798 chunk = pcpu_reserved_chunk;
1799
1800 off = pcpu_find_block_fit(chunk, bits, bit_align, is_atomic);
1801 if (off < 0) {
1802 err = "alloc from reserved chunk failed";
1803 goto fail_unlock;
1804 }
1805
1806 off = pcpu_alloc_area(chunk, bits, bit_align, off);
1807 if (off >= 0)
1808 goto area_found;
1809
1810 err = "alloc from reserved chunk failed";
1811 goto fail_unlock;
1812 }
1813
1814 restart:
1815 /* search through normal chunks */
1816 for (slot = pcpu_size_to_slot(size); slot <= pcpu_free_slot; slot++) {
1817 list_for_each_entry_safe(chunk, next, &pcpu_chunk_lists[slot],
1818 list) {
1819 off = pcpu_find_block_fit(chunk, bits, bit_align,
1820 is_atomic);
1821 if (off < 0) {
1822 if (slot < PCPU_SLOT_FAIL_THRESHOLD)
1823 pcpu_chunk_move(chunk, 0);
1824 continue;
1825 }
1826
1827 off = pcpu_alloc_area(chunk, bits, bit_align, off);
1828 if (off >= 0) {
1829 pcpu_reintegrate_chunk(chunk);
1830 goto area_found;
1831 }
1832 }
1833 }
1834
1835 spin_unlock_irqrestore(&pcpu_lock, flags);
1836
1837 if (is_atomic) {
1838 err = "atomic alloc failed, no space left";
1839 goto fail;
1840 }
1841
1842 /* No space left. Create a new chunk. */
1843 if (list_empty(&pcpu_chunk_lists[pcpu_free_slot])) {
1844 chunk = pcpu_create_chunk(pcpu_gfp);
1845 if (!chunk) {
1846 err = "failed to allocate new chunk";
1847 goto fail;
1848 }
1849
1850 spin_lock_irqsave(&pcpu_lock, flags);
1851 pcpu_chunk_relocate(chunk, -1);
1852 } else {
1853 spin_lock_irqsave(&pcpu_lock, flags);
1854 }
1855
1856 goto restart;
1857
1858 area_found:
1859 pcpu_stats_area_alloc(chunk, size);
1860
1861 if (pcpu_nr_empty_pop_pages < PCPU_EMPTY_POP_PAGES_LOW)
1862 pcpu_schedule_balance_work();
1863
1864 spin_unlock_irqrestore(&pcpu_lock, flags);
1865
1866 /* populate if not all pages are already there */
1867 if (!is_atomic) {
1868 unsigned int page_end, rs, re;
1869
1870 rs = PFN_DOWN(off);
1871 page_end = PFN_UP(off + size);
1872
1873 for_each_clear_bitrange_from(rs, re, chunk->populated, page_end) {
1874 WARN_ON(chunk->immutable);
1875
1876 ret = pcpu_populate_chunk(chunk, rs, re, pcpu_gfp);
1877
1878 spin_lock_irqsave(&pcpu_lock, flags);
1879 if (ret) {
1880 pcpu_free_area(chunk, off);
1881 err = "failed to populate";
1882 goto fail_unlock;
1883 }
1884 pcpu_chunk_populated(chunk, rs, re);
1885 spin_unlock_irqrestore(&pcpu_lock, flags);
1886 }
1887
1888 mutex_unlock(&pcpu_alloc_mutex);
1889 }
1890
1891 /* clear the areas and return address relative to base address */
1892 for_each_possible_cpu(cpu)
1893 memset((void *)pcpu_chunk_addr(chunk, cpu, 0) + off, 0, size);
1894
1895 ptr = __addr_to_pcpu_ptr(chunk->base_addr + off);
1896 kmemleak_alloc_percpu(ptr, size, gfp);
1897
1898 trace_percpu_alloc_percpu(_RET_IP_, reserved, is_atomic, size, align,
1899 chunk->base_addr, off, ptr,
1900 pcpu_obj_full_size(size), gfp);
1901
1902 pcpu_memcg_post_alloc_hook(objcg, chunk, off, size);
1903
1904 pcpu_alloc_tag_alloc_hook(chunk, off, size);
1905
1906 return ptr;
1907
1908 fail_unlock:
1909 spin_unlock_irqrestore(&pcpu_lock, flags);
1910 fail:
1911 trace_percpu_alloc_percpu_fail(reserved, is_atomic, size, align);
1912
1913 if (do_warn) {
1914 int remaining = atomic_dec_if_positive(&warn_limit);
1915
1916 if (remaining >= 0) {
1917 pr_warn("allocation failed, size=%zu align=%zu atomic=%d, %s\n",
1918 size, align, is_atomic, err);
1919 if (!is_atomic)
1920 dump_stack();
1921 if (remaining == 0)
1922 pr_info("limit reached, disable warning\n");
1923 }
1924 }
1925
1926 if (is_atomic) {
1927 /* see the flag handling in pcpu_balance_workfn() */
1928 pcpu_atomic_alloc_failed = true;
1929 pcpu_schedule_balance_work();
1930 } else {
1931 mutex_unlock(&pcpu_alloc_mutex);
1932 }
1933
1934 pcpu_memcg_post_alloc_hook(objcg, NULL, 0, size);
1935
1936 return NULL;
1937 }
1938 EXPORT_SYMBOL_GPL(pcpu_alloc_noprof);
1939
1940 /**
1941 * pcpu_balance_free - manage the amount of free chunks
1942 * @empty_only: free chunks only if there are no populated pages
1943 *
1944 * If empty_only is %false, reclaim all fully free chunks regardless of the
1945 * number of populated pages. Otherwise, only reclaim chunks that have no
1946 * populated pages.
1947 *
1948 * CONTEXT:
1949 * pcpu_lock (can be dropped temporarily)
1950 */
pcpu_balance_free(bool empty_only)1951 static void pcpu_balance_free(bool empty_only)
1952 {
1953 LIST_HEAD(to_free);
1954 struct list_head *free_head = &pcpu_chunk_lists[pcpu_free_slot];
1955 struct pcpu_chunk *chunk, *next;
1956
1957 lockdep_assert_held(&pcpu_lock);
1958
1959 /*
1960 * There's no reason to keep around multiple unused chunks and VM
1961 * areas can be scarce. Destroy all free chunks except for one.
1962 */
1963 list_for_each_entry_safe(chunk, next, free_head, list) {
1964 WARN_ON(chunk->immutable);
1965
1966 /* spare the first one */
1967 if (chunk == list_first_entry(free_head, struct pcpu_chunk, list))
1968 continue;
1969
1970 if (!empty_only || chunk->nr_empty_pop_pages == 0)
1971 list_move(&chunk->list, &to_free);
1972 }
1973
1974 if (list_empty(&to_free))
1975 return;
1976
1977 spin_unlock_irq(&pcpu_lock);
1978 list_for_each_entry_safe(chunk, next, &to_free, list) {
1979 unsigned int rs, re;
1980
1981 for_each_set_bitrange(rs, re, chunk->populated, chunk->nr_pages) {
1982 pcpu_depopulate_chunk(chunk, rs, re);
1983 spin_lock_irq(&pcpu_lock);
1984 pcpu_chunk_depopulated(chunk, rs, re);
1985 spin_unlock_irq(&pcpu_lock);
1986 }
1987 pcpu_destroy_chunk(chunk);
1988 cond_resched();
1989 }
1990 spin_lock_irq(&pcpu_lock);
1991 }
1992
1993 /**
1994 * pcpu_balance_populated - manage the amount of populated pages
1995 *
1996 * Maintain a certain amount of populated pages to satisfy atomic allocations.
1997 * It is possible that this is called when physical memory is scarce causing
1998 * OOM killer to be triggered. We should avoid doing so until an actual
1999 * allocation causes the failure as it is possible that requests can be
2000 * serviced from already backed regions.
2001 *
2002 * CONTEXT:
2003 * pcpu_lock (can be dropped temporarily)
2004 */
pcpu_balance_populated(void)2005 static void pcpu_balance_populated(void)
2006 {
2007 /* gfp flags passed to underlying allocators */
2008 const gfp_t gfp = GFP_KERNEL | __GFP_NORETRY | __GFP_NOWARN;
2009 struct pcpu_chunk *chunk;
2010 int slot, nr_to_pop, ret;
2011
2012 lockdep_assert_held(&pcpu_lock);
2013
2014 /*
2015 * Ensure there are certain number of free populated pages for
2016 * atomic allocs. Fill up from the most packed so that atomic
2017 * allocs don't increase fragmentation. If atomic allocation
2018 * failed previously, always populate the maximum amount. This
2019 * should prevent atomic allocs larger than PAGE_SIZE from keeping
2020 * failing indefinitely; however, large atomic allocs are not
2021 * something we support properly and can be highly unreliable and
2022 * inefficient.
2023 */
2024 retry_pop:
2025 if (pcpu_atomic_alloc_failed) {
2026 nr_to_pop = PCPU_EMPTY_POP_PAGES_HIGH;
2027 /* best effort anyway, don't worry about synchronization */
2028 pcpu_atomic_alloc_failed = false;
2029 } else {
2030 nr_to_pop = clamp(PCPU_EMPTY_POP_PAGES_HIGH -
2031 pcpu_nr_empty_pop_pages,
2032 0, PCPU_EMPTY_POP_PAGES_HIGH);
2033 }
2034
2035 for (slot = pcpu_size_to_slot(PAGE_SIZE); slot <= pcpu_free_slot; slot++) {
2036 unsigned int nr_unpop = 0, rs, re;
2037
2038 if (!nr_to_pop)
2039 break;
2040
2041 list_for_each_entry(chunk, &pcpu_chunk_lists[slot], list) {
2042 nr_unpop = chunk->nr_pages - chunk->nr_populated;
2043 if (nr_unpop)
2044 break;
2045 }
2046
2047 if (!nr_unpop)
2048 continue;
2049
2050 /* @chunk can't go away while pcpu_alloc_mutex is held */
2051 for_each_clear_bitrange(rs, re, chunk->populated, chunk->nr_pages) {
2052 int nr = min_t(int, re - rs, nr_to_pop);
2053
2054 spin_unlock_irq(&pcpu_lock);
2055 ret = pcpu_populate_chunk(chunk, rs, rs + nr, gfp);
2056 cond_resched();
2057 spin_lock_irq(&pcpu_lock);
2058 if (!ret) {
2059 nr_to_pop -= nr;
2060 pcpu_chunk_populated(chunk, rs, rs + nr);
2061 } else {
2062 nr_to_pop = 0;
2063 }
2064
2065 if (!nr_to_pop)
2066 break;
2067 }
2068 }
2069
2070 if (nr_to_pop) {
2071 /* ran out of chunks to populate, create a new one and retry */
2072 spin_unlock_irq(&pcpu_lock);
2073 chunk = pcpu_create_chunk(gfp);
2074 cond_resched();
2075 spin_lock_irq(&pcpu_lock);
2076 if (chunk) {
2077 pcpu_chunk_relocate(chunk, -1);
2078 goto retry_pop;
2079 }
2080 }
2081 }
2082
2083 /**
2084 * pcpu_reclaim_populated - scan over to_depopulate chunks and free empty pages
2085 *
2086 * Scan over chunks in the depopulate list and try to release unused populated
2087 * pages back to the system. Depopulated chunks are sidelined to prevent
2088 * repopulating these pages unless required. Fully free chunks are reintegrated
2089 * and freed accordingly (1 is kept around). If we drop below the empty
2090 * populated pages threshold, reintegrate the chunk if it has empty free pages.
2091 * Each chunk is scanned in the reverse order to keep populated pages close to
2092 * the beginning of the chunk.
2093 *
2094 * CONTEXT:
2095 * pcpu_lock (can be dropped temporarily)
2096 *
2097 */
pcpu_reclaim_populated(void)2098 static void pcpu_reclaim_populated(void)
2099 {
2100 struct pcpu_chunk *chunk;
2101 struct pcpu_block_md *block;
2102 int freed_page_start, freed_page_end;
2103 int i, end;
2104 bool reintegrate;
2105
2106 lockdep_assert_held(&pcpu_lock);
2107
2108 /*
2109 * Once a chunk is isolated to the to_depopulate list, the chunk is no
2110 * longer discoverable to allocations whom may populate pages. The only
2111 * other accessor is the free path which only returns area back to the
2112 * allocator not touching the populated bitmap.
2113 */
2114 while ((chunk = list_first_entry_or_null(
2115 &pcpu_chunk_lists[pcpu_to_depopulate_slot],
2116 struct pcpu_chunk, list))) {
2117 WARN_ON(chunk->immutable);
2118
2119 /*
2120 * Scan chunk's pages in the reverse order to keep populated
2121 * pages close to the beginning of the chunk.
2122 */
2123 freed_page_start = chunk->nr_pages;
2124 freed_page_end = 0;
2125 reintegrate = false;
2126 for (i = chunk->nr_pages - 1, end = -1; i >= 0; i--) {
2127 /* no more work to do */
2128 if (chunk->nr_empty_pop_pages == 0)
2129 break;
2130
2131 /* reintegrate chunk to prevent atomic alloc failures */
2132 if (pcpu_nr_empty_pop_pages < PCPU_EMPTY_POP_PAGES_HIGH) {
2133 reintegrate = true;
2134 break;
2135 }
2136
2137 /*
2138 * If the page is empty and populated, start or
2139 * extend the (i, end) range. If i == 0, decrease
2140 * i and perform the depopulation to cover the last
2141 * (first) page in the chunk.
2142 */
2143 block = chunk->md_blocks + i;
2144 if (block->contig_hint == PCPU_BITMAP_BLOCK_BITS &&
2145 test_bit(i, chunk->populated)) {
2146 if (end == -1)
2147 end = i;
2148 if (i > 0)
2149 continue;
2150 i--;
2151 }
2152
2153 /* depopulate if there is an active range */
2154 if (end == -1)
2155 continue;
2156
2157 spin_unlock_irq(&pcpu_lock);
2158 pcpu_depopulate_chunk(chunk, i + 1, end + 1);
2159 cond_resched();
2160 spin_lock_irq(&pcpu_lock);
2161
2162 pcpu_chunk_depopulated(chunk, i + 1, end + 1);
2163 freed_page_start = min(freed_page_start, i + 1);
2164 freed_page_end = max(freed_page_end, end + 1);
2165
2166 /* reset the range and continue */
2167 end = -1;
2168 }
2169
2170 /* batch tlb flush per chunk to amortize cost */
2171 if (freed_page_start < freed_page_end) {
2172 spin_unlock_irq(&pcpu_lock);
2173 pcpu_post_unmap_tlb_flush(chunk,
2174 freed_page_start,
2175 freed_page_end);
2176 cond_resched();
2177 spin_lock_irq(&pcpu_lock);
2178 }
2179
2180 if (reintegrate || chunk->free_bytes == pcpu_unit_size)
2181 pcpu_reintegrate_chunk(chunk);
2182 else
2183 list_move_tail(&chunk->list,
2184 &pcpu_chunk_lists[pcpu_sidelined_slot]);
2185 }
2186 }
2187
2188 /**
2189 * pcpu_balance_workfn - manage the amount of free chunks and populated pages
2190 * @work: unused
2191 *
2192 * For each chunk type, manage the number of fully free chunks and the number of
2193 * populated pages. An important thing to consider is when pages are freed and
2194 * how they contribute to the global counts.
2195 */
pcpu_balance_workfn(struct work_struct * work)2196 static void pcpu_balance_workfn(struct work_struct *work)
2197 {
2198 /*
2199 * pcpu_balance_free() is called twice because the first time we may
2200 * trim pages in the active pcpu_nr_empty_pop_pages which may cause us
2201 * to grow other chunks. This then gives pcpu_reclaim_populated() time
2202 * to move fully free chunks to the active list to be freed if
2203 * appropriate.
2204 *
2205 * Enforce GFP_NOIO allocations because we have pcpu_alloc users
2206 * constrained to GFP_NOIO/NOFS contexts and they could form lock
2207 * dependency through pcpu_alloc_mutex
2208 */
2209 unsigned int flags = memalloc_noio_save();
2210 mutex_lock(&pcpu_alloc_mutex);
2211 spin_lock_irq(&pcpu_lock);
2212
2213 pcpu_balance_free(false);
2214 pcpu_reclaim_populated();
2215 pcpu_balance_populated();
2216 pcpu_balance_free(true);
2217
2218 spin_unlock_irq(&pcpu_lock);
2219 mutex_unlock(&pcpu_alloc_mutex);
2220 memalloc_noio_restore(flags);
2221 }
2222
2223 /**
2224 * free_percpu - free percpu area
2225 * @ptr: pointer to area to free
2226 *
2227 * Free percpu area @ptr.
2228 *
2229 * CONTEXT:
2230 * Can be called from atomic context.
2231 */
free_percpu(void __percpu * ptr)2232 void free_percpu(void __percpu *ptr)
2233 {
2234 void *addr;
2235 struct pcpu_chunk *chunk;
2236 unsigned long flags;
2237 int size, off;
2238 bool need_balance = false;
2239
2240 if (!ptr)
2241 return;
2242
2243 kmemleak_free_percpu(ptr);
2244
2245 addr = __pcpu_ptr_to_addr(ptr);
2246 chunk = pcpu_chunk_addr_search(addr);
2247 off = addr - chunk->base_addr;
2248
2249 spin_lock_irqsave(&pcpu_lock, flags);
2250 size = pcpu_free_area(chunk, off);
2251 if (size == 0) {
2252 spin_unlock_irqrestore(&pcpu_lock, flags);
2253
2254 /* invalid percpu free */
2255 WARN_ON_ONCE(1);
2256 return;
2257 }
2258
2259 pcpu_alloc_tag_free_hook(chunk, off, size);
2260
2261 pcpu_memcg_free_hook(chunk, off, size);
2262
2263 /*
2264 * If there are more than one fully free chunks, wake up grim reaper.
2265 * If the chunk is isolated, it may be in the process of being
2266 * reclaimed. Let reclaim manage cleaning up of that chunk.
2267 */
2268 if (!chunk->isolated && chunk->free_bytes == pcpu_unit_size) {
2269 struct pcpu_chunk *pos;
2270
2271 list_for_each_entry(pos, &pcpu_chunk_lists[pcpu_free_slot], list)
2272 if (pos != chunk) {
2273 need_balance = true;
2274 break;
2275 }
2276 } else if (pcpu_should_reclaim_chunk(chunk)) {
2277 pcpu_isolate_chunk(chunk);
2278 need_balance = true;
2279 }
2280
2281 trace_percpu_free_percpu(chunk->base_addr, off, ptr);
2282
2283 spin_unlock_irqrestore(&pcpu_lock, flags);
2284
2285 if (need_balance)
2286 pcpu_schedule_balance_work();
2287 }
2288 EXPORT_SYMBOL_GPL(free_percpu);
2289
__is_kernel_percpu_address(unsigned long addr,unsigned long * can_addr)2290 bool __is_kernel_percpu_address(unsigned long addr, unsigned long *can_addr)
2291 {
2292 #ifdef CONFIG_SMP
2293 const size_t static_size = __per_cpu_end - __per_cpu_start;
2294 void __percpu *base = __addr_to_pcpu_ptr(pcpu_base_addr);
2295 unsigned int cpu;
2296
2297 for_each_possible_cpu(cpu) {
2298 void *start = per_cpu_ptr(base, cpu);
2299 void *va = (void *)addr;
2300
2301 if (va >= start && va < start + static_size) {
2302 if (can_addr) {
2303 *can_addr = (unsigned long) (va - start);
2304 *can_addr += (unsigned long)
2305 per_cpu_ptr(base, get_boot_cpu_id());
2306 }
2307 return true;
2308 }
2309 }
2310 #endif
2311 /* on UP, can't distinguish from other static vars, always false */
2312 return false;
2313 }
2314
2315 /**
2316 * is_kernel_percpu_address - test whether address is from static percpu area
2317 * @addr: address to test
2318 *
2319 * Test whether @addr belongs to in-kernel static percpu area. Module
2320 * static percpu areas are not considered. For those, use
2321 * is_module_percpu_address().
2322 *
2323 * RETURNS:
2324 * %true if @addr is from in-kernel static percpu area, %false otherwise.
2325 */
is_kernel_percpu_address(unsigned long addr)2326 bool is_kernel_percpu_address(unsigned long addr)
2327 {
2328 return __is_kernel_percpu_address(addr, NULL);
2329 }
2330
2331 /**
2332 * per_cpu_ptr_to_phys - convert translated percpu address to physical address
2333 * @addr: the address to be converted to physical address
2334 *
2335 * Given @addr which is dereferenceable address obtained via one of
2336 * percpu access macros, this function translates it into its physical
2337 * address. The caller is responsible for ensuring @addr stays valid
2338 * until this function finishes.
2339 *
2340 * percpu allocator has special setup for the first chunk, which currently
2341 * supports either embedding in linear address space or vmalloc mapping,
2342 * and, from the second one, the backing allocator (currently either vm or
2343 * km) provides translation.
2344 *
2345 * The addr can be translated simply without checking if it falls into the
2346 * first chunk. But the current code reflects better how percpu allocator
2347 * actually works, and the verification can discover both bugs in percpu
2348 * allocator itself and per_cpu_ptr_to_phys() callers. So we keep current
2349 * code.
2350 *
2351 * RETURNS:
2352 * The physical address for @addr.
2353 */
per_cpu_ptr_to_phys(void * addr)2354 phys_addr_t per_cpu_ptr_to_phys(void *addr)
2355 {
2356 void __percpu *base = __addr_to_pcpu_ptr(pcpu_base_addr);
2357 bool in_first_chunk = false;
2358 unsigned long first_low, first_high;
2359 unsigned int cpu;
2360
2361 /*
2362 * The following test on unit_low/high isn't strictly
2363 * necessary but will speed up lookups of addresses which
2364 * aren't in the first chunk.
2365 *
2366 * The address check is against full chunk sizes. pcpu_base_addr
2367 * points to the beginning of the first chunk including the
2368 * static region. Assumes good intent as the first chunk may
2369 * not be full (ie. < pcpu_unit_pages in size).
2370 */
2371 first_low = (unsigned long)pcpu_base_addr +
2372 pcpu_unit_page_offset(pcpu_low_unit_cpu, 0);
2373 first_high = (unsigned long)pcpu_base_addr +
2374 pcpu_unit_page_offset(pcpu_high_unit_cpu, pcpu_unit_pages);
2375 if ((unsigned long)addr >= first_low &&
2376 (unsigned long)addr < first_high) {
2377 for_each_possible_cpu(cpu) {
2378 void *start = per_cpu_ptr(base, cpu);
2379
2380 if (addr >= start && addr < start + pcpu_unit_size) {
2381 in_first_chunk = true;
2382 break;
2383 }
2384 }
2385 }
2386
2387 if (in_first_chunk) {
2388 if (!is_vmalloc_addr(addr))
2389 return __pa(addr);
2390 else
2391 return page_to_phys(vmalloc_to_page(addr)) +
2392 offset_in_page(addr);
2393 } else
2394 return page_to_phys(pcpu_addr_to_page(addr)) +
2395 offset_in_page(addr);
2396 }
2397
2398 /**
2399 * pcpu_alloc_alloc_info - allocate percpu allocation info
2400 * @nr_groups: the number of groups
2401 * @nr_units: the number of units
2402 *
2403 * Allocate ai which is large enough for @nr_groups groups containing
2404 * @nr_units units. The returned ai's groups[0].cpu_map points to the
2405 * cpu_map array which is long enough for @nr_units and filled with
2406 * NR_CPUS. It's the caller's responsibility to initialize cpu_map
2407 * pointer of other groups.
2408 *
2409 * RETURNS:
2410 * Pointer to the allocated pcpu_alloc_info on success, NULL on
2411 * failure.
2412 */
pcpu_alloc_alloc_info(int nr_groups,int nr_units)2413 struct pcpu_alloc_info * __init pcpu_alloc_alloc_info(int nr_groups,
2414 int nr_units)
2415 {
2416 struct pcpu_alloc_info *ai;
2417 size_t base_size, ai_size;
2418 void *ptr;
2419 int unit;
2420
2421 base_size = ALIGN(struct_size(ai, groups, nr_groups),
2422 __alignof__(ai->groups[0].cpu_map[0]));
2423 ai_size = base_size + nr_units * sizeof(ai->groups[0].cpu_map[0]);
2424
2425 ptr = memblock_alloc(PFN_ALIGN(ai_size), PAGE_SIZE);
2426 if (!ptr)
2427 return NULL;
2428 ai = ptr;
2429 ptr += base_size;
2430
2431 ai->groups[0].cpu_map = ptr;
2432
2433 for (unit = 0; unit < nr_units; unit++)
2434 ai->groups[0].cpu_map[unit] = NR_CPUS;
2435
2436 ai->nr_groups = nr_groups;
2437 ai->__ai_size = PFN_ALIGN(ai_size);
2438
2439 return ai;
2440 }
2441
2442 /**
2443 * pcpu_free_alloc_info - free percpu allocation info
2444 * @ai: pcpu_alloc_info to free
2445 *
2446 * Free @ai which was allocated by pcpu_alloc_alloc_info().
2447 */
pcpu_free_alloc_info(struct pcpu_alloc_info * ai)2448 void __init pcpu_free_alloc_info(struct pcpu_alloc_info *ai)
2449 {
2450 memblock_free(ai, ai->__ai_size);
2451 }
2452
2453 /**
2454 * pcpu_dump_alloc_info - print out information about pcpu_alloc_info
2455 * @lvl: loglevel
2456 * @ai: allocation info to dump
2457 *
2458 * Print out information about @ai using loglevel @lvl.
2459 */
pcpu_dump_alloc_info(const char * lvl,const struct pcpu_alloc_info * ai)2460 static void pcpu_dump_alloc_info(const char *lvl,
2461 const struct pcpu_alloc_info *ai)
2462 {
2463 int group_width = 1, cpu_width = 1, width;
2464 char empty_str[] = "--------";
2465 int alloc = 0, alloc_end = 0;
2466 int group, v;
2467 int upa, apl; /* units per alloc, allocs per line */
2468
2469 v = ai->nr_groups;
2470 while (v /= 10)
2471 group_width++;
2472
2473 v = num_possible_cpus();
2474 while (v /= 10)
2475 cpu_width++;
2476 empty_str[min_t(int, cpu_width, sizeof(empty_str) - 1)] = '\0';
2477
2478 upa = ai->alloc_size / ai->unit_size;
2479 width = upa * (cpu_width + 1) + group_width + 3;
2480 apl = rounddown_pow_of_two(max(60 / width, 1));
2481
2482 printk("%spcpu-alloc: s%zu r%zu d%zu u%zu alloc=%zu*%zu",
2483 lvl, ai->static_size, ai->reserved_size, ai->dyn_size,
2484 ai->unit_size, ai->alloc_size / ai->atom_size, ai->atom_size);
2485
2486 for (group = 0; group < ai->nr_groups; group++) {
2487 const struct pcpu_group_info *gi = &ai->groups[group];
2488 int unit = 0, unit_end = 0;
2489
2490 BUG_ON(gi->nr_units % upa);
2491 for (alloc_end += gi->nr_units / upa;
2492 alloc < alloc_end; alloc++) {
2493 if (!(alloc % apl)) {
2494 pr_cont("\n");
2495 printk("%spcpu-alloc: ", lvl);
2496 }
2497 pr_cont("[%0*d] ", group_width, group);
2498
2499 for (unit_end += upa; unit < unit_end; unit++)
2500 if (gi->cpu_map[unit] != NR_CPUS)
2501 pr_cont("%0*d ",
2502 cpu_width, gi->cpu_map[unit]);
2503 else
2504 pr_cont("%s ", empty_str);
2505 }
2506 }
2507 pr_cont("\n");
2508 }
2509
2510 /**
2511 * pcpu_setup_first_chunk - initialize the first percpu chunk
2512 * @ai: pcpu_alloc_info describing how to percpu area is shaped
2513 * @base_addr: mapped address
2514 *
2515 * Initialize the first percpu chunk which contains the kernel static
2516 * percpu area. This function is to be called from arch percpu area
2517 * setup path.
2518 *
2519 * @ai contains all information necessary to initialize the first
2520 * chunk and prime the dynamic percpu allocator.
2521 *
2522 * @ai->static_size is the size of static percpu area.
2523 *
2524 * @ai->reserved_size, if non-zero, specifies the amount of bytes to
2525 * reserve after the static area in the first chunk. This reserves
2526 * the first chunk such that it's available only through reserved
2527 * percpu allocation. This is primarily used to serve module percpu
2528 * static areas on architectures where the addressing model has
2529 * limited offset range for symbol relocations to guarantee module
2530 * percpu symbols fall inside the relocatable range.
2531 *
2532 * @ai->dyn_size determines the number of bytes available for dynamic
2533 * allocation in the first chunk. The area between @ai->static_size +
2534 * @ai->reserved_size + @ai->dyn_size and @ai->unit_size is unused.
2535 *
2536 * @ai->unit_size specifies unit size and must be aligned to PAGE_SIZE
2537 * and equal to or larger than @ai->static_size + @ai->reserved_size +
2538 * @ai->dyn_size.
2539 *
2540 * @ai->atom_size is the allocation atom size and used as alignment
2541 * for vm areas.
2542 *
2543 * @ai->alloc_size is the allocation size and always multiple of
2544 * @ai->atom_size. This is larger than @ai->atom_size if
2545 * @ai->unit_size is larger than @ai->atom_size.
2546 *
2547 * @ai->nr_groups and @ai->groups describe virtual memory layout of
2548 * percpu areas. Units which should be colocated are put into the
2549 * same group. Dynamic VM areas will be allocated according to these
2550 * groupings. If @ai->nr_groups is zero, a single group containing
2551 * all units is assumed.
2552 *
2553 * The caller should have mapped the first chunk at @base_addr and
2554 * copied static data to each unit.
2555 *
2556 * The first chunk will always contain a static and a dynamic region.
2557 * However, the static region is not managed by any chunk. If the first
2558 * chunk also contains a reserved region, it is served by two chunks -
2559 * one for the reserved region and one for the dynamic region. They
2560 * share the same vm, but use offset regions in the area allocation map.
2561 * The chunk serving the dynamic region is circulated in the chunk slots
2562 * and available for dynamic allocation like any other chunk.
2563 */
pcpu_setup_first_chunk(const struct pcpu_alloc_info * ai,void * base_addr)2564 void __init pcpu_setup_first_chunk(const struct pcpu_alloc_info *ai,
2565 void *base_addr)
2566 {
2567 size_t size_sum = ai->static_size + ai->reserved_size + ai->dyn_size;
2568 size_t static_size, dyn_size;
2569 unsigned long *group_offsets;
2570 size_t *group_sizes;
2571 unsigned long *unit_off;
2572 unsigned int cpu;
2573 int *unit_map;
2574 int group, unit, i;
2575 unsigned long tmp_addr;
2576 size_t alloc_size;
2577
2578 #define PCPU_SETUP_BUG_ON(cond) do { \
2579 if (unlikely(cond)) { \
2580 pr_emerg("failed to initialize, %s\n", #cond); \
2581 pr_emerg("cpu_possible_mask=%*pb\n", \
2582 cpumask_pr_args(cpu_possible_mask)); \
2583 pcpu_dump_alloc_info(KERN_EMERG, ai); \
2584 BUG(); \
2585 } \
2586 } while (0)
2587
2588 /* sanity checks */
2589 PCPU_SETUP_BUG_ON(ai->nr_groups <= 0);
2590 #ifdef CONFIG_SMP
2591 PCPU_SETUP_BUG_ON(!ai->static_size);
2592 PCPU_SETUP_BUG_ON(offset_in_page(__per_cpu_start));
2593 #endif
2594 PCPU_SETUP_BUG_ON(!base_addr);
2595 PCPU_SETUP_BUG_ON(offset_in_page(base_addr));
2596 PCPU_SETUP_BUG_ON(ai->unit_size < size_sum);
2597 PCPU_SETUP_BUG_ON(offset_in_page(ai->unit_size));
2598 PCPU_SETUP_BUG_ON(ai->unit_size < PCPU_MIN_UNIT_SIZE);
2599 PCPU_SETUP_BUG_ON(!IS_ALIGNED(ai->unit_size, PCPU_BITMAP_BLOCK_SIZE));
2600 PCPU_SETUP_BUG_ON(ai->dyn_size < PERCPU_DYNAMIC_EARLY_SIZE);
2601 PCPU_SETUP_BUG_ON(!IS_ALIGNED(ai->reserved_size, PCPU_MIN_ALLOC_SIZE));
2602 PCPU_SETUP_BUG_ON(!(IS_ALIGNED(PCPU_BITMAP_BLOCK_SIZE, PAGE_SIZE) ||
2603 IS_ALIGNED(PAGE_SIZE, PCPU_BITMAP_BLOCK_SIZE)));
2604 PCPU_SETUP_BUG_ON(pcpu_verify_alloc_info(ai) < 0);
2605
2606 /* process group information and build config tables accordingly */
2607 alloc_size = ai->nr_groups * sizeof(group_offsets[0]);
2608 group_offsets = memblock_alloc_or_panic(alloc_size, SMP_CACHE_BYTES);
2609
2610 alloc_size = ai->nr_groups * sizeof(group_sizes[0]);
2611 group_sizes = memblock_alloc_or_panic(alloc_size, SMP_CACHE_BYTES);
2612
2613 alloc_size = nr_cpu_ids * sizeof(unit_map[0]);
2614 unit_map = memblock_alloc_or_panic(alloc_size, SMP_CACHE_BYTES);
2615
2616 alloc_size = nr_cpu_ids * sizeof(unit_off[0]);
2617 unit_off = memblock_alloc_or_panic(alloc_size, SMP_CACHE_BYTES);
2618
2619 for (cpu = 0; cpu < nr_cpu_ids; cpu++)
2620 unit_map[cpu] = UINT_MAX;
2621
2622 pcpu_low_unit_cpu = NR_CPUS;
2623 pcpu_high_unit_cpu = NR_CPUS;
2624
2625 for (group = 0, unit = 0; group < ai->nr_groups; group++, unit += i) {
2626 const struct pcpu_group_info *gi = &ai->groups[group];
2627
2628 group_offsets[group] = gi->base_offset;
2629 group_sizes[group] = gi->nr_units * ai->unit_size;
2630
2631 for (i = 0; i < gi->nr_units; i++) {
2632 cpu = gi->cpu_map[i];
2633 if (cpu == NR_CPUS)
2634 continue;
2635
2636 PCPU_SETUP_BUG_ON(cpu >= nr_cpu_ids);
2637 PCPU_SETUP_BUG_ON(!cpu_possible(cpu));
2638 PCPU_SETUP_BUG_ON(unit_map[cpu] != UINT_MAX);
2639
2640 unit_map[cpu] = unit + i;
2641 unit_off[cpu] = gi->base_offset + i * ai->unit_size;
2642
2643 /* determine low/high unit_cpu */
2644 if (pcpu_low_unit_cpu == NR_CPUS ||
2645 unit_off[cpu] < unit_off[pcpu_low_unit_cpu])
2646 pcpu_low_unit_cpu = cpu;
2647 if (pcpu_high_unit_cpu == NR_CPUS ||
2648 unit_off[cpu] > unit_off[pcpu_high_unit_cpu])
2649 pcpu_high_unit_cpu = cpu;
2650 }
2651 }
2652 pcpu_nr_units = unit;
2653
2654 for_each_possible_cpu(cpu)
2655 PCPU_SETUP_BUG_ON(unit_map[cpu] == UINT_MAX);
2656
2657 /* we're done parsing the input, undefine BUG macro and dump config */
2658 #undef PCPU_SETUP_BUG_ON
2659 pcpu_dump_alloc_info(KERN_DEBUG, ai);
2660
2661 pcpu_nr_groups = ai->nr_groups;
2662 pcpu_group_offsets = group_offsets;
2663 pcpu_group_sizes = group_sizes;
2664 pcpu_unit_map = unit_map;
2665 pcpu_unit_offsets = unit_off;
2666
2667 /* determine basic parameters */
2668 pcpu_unit_pages = ai->unit_size >> PAGE_SHIFT;
2669 pcpu_unit_size = pcpu_unit_pages << PAGE_SHIFT;
2670 pcpu_atom_size = ai->atom_size;
2671 pcpu_chunk_struct_size = struct_size((struct pcpu_chunk *)0, populated,
2672 BITS_TO_LONGS(pcpu_unit_pages));
2673
2674 pcpu_stats_save_ai(ai);
2675
2676 /*
2677 * Allocate chunk slots. The slots after the active slots are:
2678 * sidelined_slot - isolated, depopulated chunks
2679 * free_slot - fully free chunks
2680 * to_depopulate_slot - isolated, chunks to depopulate
2681 */
2682 pcpu_sidelined_slot = __pcpu_size_to_slot(pcpu_unit_size) + 1;
2683 pcpu_free_slot = pcpu_sidelined_slot + 1;
2684 pcpu_to_depopulate_slot = pcpu_free_slot + 1;
2685 pcpu_nr_slots = pcpu_to_depopulate_slot + 1;
2686 pcpu_chunk_lists = memblock_alloc_or_panic(pcpu_nr_slots *
2687 sizeof(pcpu_chunk_lists[0]),
2688 SMP_CACHE_BYTES);
2689
2690 for (i = 0; i < pcpu_nr_slots; i++)
2691 INIT_LIST_HEAD(&pcpu_chunk_lists[i]);
2692
2693 /*
2694 * The end of the static region needs to be aligned with the
2695 * minimum allocation size as this offsets the reserved and
2696 * dynamic region. The first chunk ends page aligned by
2697 * expanding the dynamic region, therefore the dynamic region
2698 * can be shrunk to compensate while still staying above the
2699 * configured sizes.
2700 */
2701 static_size = ALIGN(ai->static_size, PCPU_MIN_ALLOC_SIZE);
2702 dyn_size = ai->dyn_size - (static_size - ai->static_size);
2703
2704 /*
2705 * Initialize first chunk:
2706 * This chunk is broken up into 3 parts:
2707 * < static | [reserved] | dynamic >
2708 * - static - there is no backing chunk because these allocations can
2709 * never be freed.
2710 * - reserved (pcpu_reserved_chunk) - exists primarily to serve
2711 * allocations from module load.
2712 * - dynamic (pcpu_first_chunk) - serves the dynamic part of the first
2713 * chunk.
2714 */
2715 tmp_addr = (unsigned long)base_addr + static_size;
2716 if (ai->reserved_size)
2717 pcpu_reserved_chunk = pcpu_alloc_first_chunk(tmp_addr,
2718 ai->reserved_size);
2719 tmp_addr = (unsigned long)base_addr + static_size + ai->reserved_size;
2720 pcpu_first_chunk = pcpu_alloc_first_chunk(tmp_addr, dyn_size);
2721
2722 pcpu_nr_empty_pop_pages = pcpu_first_chunk->nr_empty_pop_pages;
2723 pcpu_chunk_relocate(pcpu_first_chunk, -1);
2724
2725 /* include all regions of the first chunk */
2726 pcpu_nr_populated += PFN_DOWN(size_sum);
2727
2728 pcpu_stats_chunk_alloc();
2729 trace_percpu_create_chunk(base_addr);
2730
2731 /* we're done */
2732 pcpu_base_addr = base_addr;
2733 }
2734
2735 #ifdef CONFIG_SMP
2736
2737 const char * const pcpu_fc_names[PCPU_FC_NR] __initconst = {
2738 [PCPU_FC_AUTO] = "auto",
2739 [PCPU_FC_EMBED] = "embed",
2740 [PCPU_FC_PAGE] = "page",
2741 };
2742
2743 enum pcpu_fc pcpu_chosen_fc __initdata = PCPU_FC_AUTO;
2744
percpu_alloc_setup(char * str)2745 static int __init percpu_alloc_setup(char *str)
2746 {
2747 if (!str)
2748 return -EINVAL;
2749
2750 if (0)
2751 /* nada */;
2752 #ifdef CONFIG_NEED_PER_CPU_EMBED_FIRST_CHUNK
2753 else if (!strcmp(str, "embed"))
2754 pcpu_chosen_fc = PCPU_FC_EMBED;
2755 #endif
2756 #ifdef CONFIG_NEED_PER_CPU_PAGE_FIRST_CHUNK
2757 else if (!strcmp(str, "page"))
2758 pcpu_chosen_fc = PCPU_FC_PAGE;
2759 #endif
2760 else
2761 pr_warn("unknown allocator %s specified\n", str);
2762
2763 return 0;
2764 }
2765 early_param("percpu_alloc", percpu_alloc_setup);
2766
2767 /*
2768 * pcpu_embed_first_chunk() is used by the generic percpu setup.
2769 * Build it if needed by the arch config or the generic setup is going
2770 * to be used.
2771 */
2772 #if defined(CONFIG_NEED_PER_CPU_EMBED_FIRST_CHUNK) || \
2773 !defined(CONFIG_HAVE_SETUP_PER_CPU_AREA)
2774 #define BUILD_EMBED_FIRST_CHUNK
2775 #endif
2776
2777 /* build pcpu_page_first_chunk() iff needed by the arch config */
2778 #if defined(CONFIG_NEED_PER_CPU_PAGE_FIRST_CHUNK)
2779 #define BUILD_PAGE_FIRST_CHUNK
2780 #endif
2781
2782 /* pcpu_build_alloc_info() is used by both embed and page first chunk */
2783 #if defined(BUILD_EMBED_FIRST_CHUNK) || defined(BUILD_PAGE_FIRST_CHUNK)
2784 /**
2785 * pcpu_build_alloc_info - build alloc_info considering distances between CPUs
2786 * @reserved_size: the size of reserved percpu area in bytes
2787 * @dyn_size: minimum free size for dynamic allocation in bytes
2788 * @atom_size: allocation atom size
2789 * @cpu_distance_fn: callback to determine distance between cpus, optional
2790 *
2791 * This function determines grouping of units, their mappings to cpus
2792 * and other parameters considering needed percpu size, allocation
2793 * atom size and distances between CPUs.
2794 *
2795 * Groups are always multiples of atom size and CPUs which are of
2796 * LOCAL_DISTANCE both ways are grouped together and share space for
2797 * units in the same group. The returned configuration is guaranteed
2798 * to have CPUs on different nodes on different groups and >=75% usage
2799 * of allocated virtual address space.
2800 *
2801 * RETURNS:
2802 * On success, pointer to the new allocation_info is returned. On
2803 * failure, ERR_PTR value is returned.
2804 */
pcpu_build_alloc_info(size_t reserved_size,size_t dyn_size,size_t atom_size,pcpu_fc_cpu_distance_fn_t cpu_distance_fn)2805 static struct pcpu_alloc_info * __init __flatten pcpu_build_alloc_info(
2806 size_t reserved_size, size_t dyn_size,
2807 size_t atom_size,
2808 pcpu_fc_cpu_distance_fn_t cpu_distance_fn)
2809 {
2810 static int group_map[NR_CPUS] __initdata;
2811 static int group_cnt[NR_CPUS] __initdata;
2812 static struct cpumask mask __initdata;
2813 const size_t static_size = __per_cpu_end - __per_cpu_start;
2814 int nr_groups = 1, nr_units = 0;
2815 size_t size_sum, min_unit_size, alloc_size;
2816 int upa, max_upa, best_upa; /* units_per_alloc */
2817 int last_allocs, group, unit;
2818 unsigned int cpu, tcpu;
2819 struct pcpu_alloc_info *ai;
2820 unsigned int *cpu_map;
2821
2822 /* this function may be called multiple times */
2823 memset(group_map, 0, sizeof(group_map));
2824 memset(group_cnt, 0, sizeof(group_cnt));
2825 cpumask_clear(&mask);
2826
2827 /* calculate size_sum and ensure dyn_size is enough for early alloc */
2828 size_sum = PFN_ALIGN(static_size + reserved_size +
2829 max_t(size_t, dyn_size, PERCPU_DYNAMIC_EARLY_SIZE));
2830 dyn_size = size_sum - static_size - reserved_size;
2831
2832 /*
2833 * Determine min_unit_size, alloc_size and max_upa such that
2834 * alloc_size is multiple of atom_size and is the smallest
2835 * which can accommodate 4k aligned segments which are equal to
2836 * or larger than min_unit_size.
2837 */
2838 min_unit_size = max_t(size_t, size_sum, PCPU_MIN_UNIT_SIZE);
2839
2840 /* determine the maximum # of units that can fit in an allocation */
2841 alloc_size = roundup(min_unit_size, atom_size);
2842 upa = alloc_size / min_unit_size;
2843 while (alloc_size % upa || (offset_in_page(alloc_size / upa)))
2844 upa--;
2845 max_upa = upa;
2846
2847 cpumask_copy(&mask, cpu_possible_mask);
2848
2849 /* group cpus according to their proximity */
2850 for (group = 0; !cpumask_empty(&mask); group++) {
2851 /* pop the group's first cpu */
2852 cpu = cpumask_first(&mask);
2853 group_map[cpu] = group;
2854 group_cnt[group]++;
2855 cpumask_clear_cpu(cpu, &mask);
2856
2857 for_each_cpu(tcpu, &mask) {
2858 if (!cpu_distance_fn ||
2859 (cpu_distance_fn(cpu, tcpu) == LOCAL_DISTANCE &&
2860 cpu_distance_fn(tcpu, cpu) == LOCAL_DISTANCE)) {
2861 group_map[tcpu] = group;
2862 group_cnt[group]++;
2863 cpumask_clear_cpu(tcpu, &mask);
2864 }
2865 }
2866 }
2867 nr_groups = group;
2868
2869 /*
2870 * Wasted space is caused by a ratio imbalance of upa to group_cnt.
2871 * Expand the unit_size until we use >= 75% of the units allocated.
2872 * Related to atom_size, which could be much larger than the unit_size.
2873 */
2874 last_allocs = INT_MAX;
2875 best_upa = 0;
2876 for (upa = max_upa; upa; upa--) {
2877 int allocs = 0, wasted = 0;
2878
2879 if (alloc_size % upa || (offset_in_page(alloc_size / upa)))
2880 continue;
2881
2882 for (group = 0; group < nr_groups; group++) {
2883 int this_allocs = DIV_ROUND_UP(group_cnt[group], upa);
2884 allocs += this_allocs;
2885 wasted += this_allocs * upa - group_cnt[group];
2886 }
2887
2888 /*
2889 * Don't accept if wastage is over 1/3. The
2890 * greater-than comparison ensures upa==1 always
2891 * passes the following check.
2892 */
2893 if (wasted > num_possible_cpus() / 3)
2894 continue;
2895
2896 /* and then don't consume more memory */
2897 if (allocs > last_allocs)
2898 break;
2899 last_allocs = allocs;
2900 best_upa = upa;
2901 }
2902 BUG_ON(!best_upa);
2903 upa = best_upa;
2904
2905 /* allocate and fill alloc_info */
2906 for (group = 0; group < nr_groups; group++)
2907 nr_units += roundup(group_cnt[group], upa);
2908
2909 ai = pcpu_alloc_alloc_info(nr_groups, nr_units);
2910 if (!ai)
2911 return ERR_PTR(-ENOMEM);
2912 cpu_map = ai->groups[0].cpu_map;
2913
2914 for (group = 0; group < nr_groups; group++) {
2915 ai->groups[group].cpu_map = cpu_map;
2916 cpu_map += roundup(group_cnt[group], upa);
2917 }
2918
2919 ai->static_size = static_size;
2920 ai->reserved_size = reserved_size;
2921 ai->dyn_size = dyn_size;
2922 ai->unit_size = alloc_size / upa;
2923 ai->atom_size = atom_size;
2924 ai->alloc_size = alloc_size;
2925
2926 for (group = 0, unit = 0; group < nr_groups; group++) {
2927 struct pcpu_group_info *gi = &ai->groups[group];
2928
2929 /*
2930 * Initialize base_offset as if all groups are located
2931 * back-to-back. The caller should update this to
2932 * reflect actual allocation.
2933 */
2934 gi->base_offset = unit * ai->unit_size;
2935
2936 for_each_possible_cpu(cpu)
2937 if (group_map[cpu] == group)
2938 gi->cpu_map[gi->nr_units++] = cpu;
2939 gi->nr_units = roundup(gi->nr_units, upa);
2940 unit += gi->nr_units;
2941 }
2942 BUG_ON(unit != nr_units);
2943
2944 return ai;
2945 }
2946
pcpu_fc_alloc(unsigned int cpu,size_t size,size_t align,pcpu_fc_cpu_to_node_fn_t cpu_to_nd_fn)2947 static void * __init pcpu_fc_alloc(unsigned int cpu, size_t size, size_t align,
2948 pcpu_fc_cpu_to_node_fn_t cpu_to_nd_fn)
2949 {
2950 const unsigned long goal = __pa(MAX_DMA_ADDRESS);
2951 #ifdef CONFIG_NUMA
2952 int node = NUMA_NO_NODE;
2953 void *ptr;
2954
2955 if (cpu_to_nd_fn)
2956 node = cpu_to_nd_fn(cpu);
2957
2958 if (node == NUMA_NO_NODE || !node_online(node) || !NODE_DATA(node)) {
2959 ptr = memblock_alloc_from(size, align, goal);
2960 pr_info("cpu %d has no node %d or node-local memory\n",
2961 cpu, node);
2962 pr_debug("per cpu data for cpu%d %zu bytes at 0x%llx\n",
2963 cpu, size, (u64)__pa(ptr));
2964 } else {
2965 ptr = memblock_alloc_try_nid(size, align, goal,
2966 MEMBLOCK_ALLOC_ACCESSIBLE,
2967 node);
2968
2969 pr_debug("per cpu data for cpu%d %zu bytes on node%d at 0x%llx\n",
2970 cpu, size, node, (u64)__pa(ptr));
2971 }
2972 return ptr;
2973 #else
2974 return memblock_alloc_from(size, align, goal);
2975 #endif
2976 }
2977
pcpu_fc_free(void * ptr,size_t size)2978 static void __init pcpu_fc_free(void *ptr, size_t size)
2979 {
2980 memblock_free(ptr, size);
2981 }
2982 #endif /* BUILD_EMBED_FIRST_CHUNK || BUILD_PAGE_FIRST_CHUNK */
2983
2984 #if defined(BUILD_EMBED_FIRST_CHUNK)
2985 /**
2986 * pcpu_embed_first_chunk - embed the first percpu chunk into bootmem
2987 * @reserved_size: the size of reserved percpu area in bytes
2988 * @dyn_size: minimum free size for dynamic allocation in bytes
2989 * @atom_size: allocation atom size
2990 * @cpu_distance_fn: callback to determine distance between cpus, optional
2991 * @cpu_to_nd_fn: callback to convert cpu to it's node, optional
2992 *
2993 * This is a helper to ease setting up embedded first percpu chunk and
2994 * can be called where pcpu_setup_first_chunk() is expected.
2995 *
2996 * If this function is used to setup the first chunk, it is allocated
2997 * by calling pcpu_fc_alloc and used as-is without being mapped into
2998 * vmalloc area. Allocations are always whole multiples of @atom_size
2999 * aligned to @atom_size.
3000 *
3001 * This enables the first chunk to piggy back on the linear physical
3002 * mapping which often uses larger page size. Please note that this
3003 * can result in very sparse cpu->unit mapping on NUMA machines thus
3004 * requiring large vmalloc address space. Don't use this allocator if
3005 * vmalloc space is not orders of magnitude larger than distances
3006 * between node memory addresses (ie. 32bit NUMA machines).
3007 *
3008 * @dyn_size specifies the minimum dynamic area size.
3009 *
3010 * If the needed size is smaller than the minimum or specified unit
3011 * size, the leftover is returned using pcpu_fc_free.
3012 *
3013 * RETURNS:
3014 * 0 on success, -errno on failure.
3015 */
pcpu_embed_first_chunk(size_t reserved_size,size_t dyn_size,size_t atom_size,pcpu_fc_cpu_distance_fn_t cpu_distance_fn,pcpu_fc_cpu_to_node_fn_t cpu_to_nd_fn)3016 int __init pcpu_embed_first_chunk(size_t reserved_size, size_t dyn_size,
3017 size_t atom_size,
3018 pcpu_fc_cpu_distance_fn_t cpu_distance_fn,
3019 pcpu_fc_cpu_to_node_fn_t cpu_to_nd_fn)
3020 {
3021 void *base = (void *)ULONG_MAX;
3022 void **areas = NULL;
3023 struct pcpu_alloc_info *ai;
3024 size_t size_sum, areas_size;
3025 unsigned long max_distance;
3026 int group, i, highest_group, rc = 0;
3027
3028 ai = pcpu_build_alloc_info(reserved_size, dyn_size, atom_size,
3029 cpu_distance_fn);
3030 if (IS_ERR(ai))
3031 return PTR_ERR(ai);
3032
3033 size_sum = ai->static_size + ai->reserved_size + ai->dyn_size;
3034 areas_size = PFN_ALIGN(ai->nr_groups * sizeof(void *));
3035
3036 areas = memblock_alloc(areas_size, SMP_CACHE_BYTES);
3037 if (!areas) {
3038 rc = -ENOMEM;
3039 goto out_free;
3040 }
3041
3042 /* allocate, copy and determine base address & max_distance */
3043 highest_group = 0;
3044 for (group = 0; group < ai->nr_groups; group++) {
3045 struct pcpu_group_info *gi = &ai->groups[group];
3046 unsigned int cpu = NR_CPUS;
3047 void *ptr;
3048
3049 for (i = 0; i < gi->nr_units && cpu == NR_CPUS; i++)
3050 cpu = gi->cpu_map[i];
3051 BUG_ON(cpu == NR_CPUS);
3052
3053 /* allocate space for the whole group */
3054 ptr = pcpu_fc_alloc(cpu, gi->nr_units * ai->unit_size, atom_size, cpu_to_nd_fn);
3055 if (!ptr) {
3056 rc = -ENOMEM;
3057 goto out_free_areas;
3058 }
3059 /* kmemleak tracks the percpu allocations separately */
3060 kmemleak_ignore_phys(__pa(ptr));
3061 areas[group] = ptr;
3062
3063 base = min(ptr, base);
3064 if (ptr > areas[highest_group])
3065 highest_group = group;
3066 }
3067 max_distance = areas[highest_group] - base;
3068 max_distance += ai->unit_size * ai->groups[highest_group].nr_units;
3069
3070 /* warn if maximum distance is further than 75% of vmalloc space */
3071 if (max_distance > VMALLOC_TOTAL * 3 / 4) {
3072 pr_warn("max_distance=0x%lx too large for vmalloc space 0x%lx\n",
3073 max_distance, VMALLOC_TOTAL);
3074 #ifdef CONFIG_NEED_PER_CPU_PAGE_FIRST_CHUNK
3075 /* and fail if we have fallback */
3076 rc = -EINVAL;
3077 goto out_free_areas;
3078 #endif
3079 }
3080
3081 /*
3082 * Copy data and free unused parts. This should happen after all
3083 * allocations are complete; otherwise, we may end up with
3084 * overlapping groups.
3085 */
3086 for (group = 0; group < ai->nr_groups; group++) {
3087 struct pcpu_group_info *gi = &ai->groups[group];
3088 void *ptr = areas[group];
3089
3090 for (i = 0; i < gi->nr_units; i++, ptr += ai->unit_size) {
3091 if (gi->cpu_map[i] == NR_CPUS) {
3092 /* unused unit, free whole */
3093 pcpu_fc_free(ptr, ai->unit_size);
3094 continue;
3095 }
3096 /* copy and return the unused part */
3097 memcpy(ptr, __per_cpu_start, ai->static_size);
3098 pcpu_fc_free(ptr + size_sum, ai->unit_size - size_sum);
3099 }
3100 }
3101
3102 /* base address is now known, determine group base offsets */
3103 for (group = 0; group < ai->nr_groups; group++) {
3104 ai->groups[group].base_offset = areas[group] - base;
3105 }
3106
3107 pr_info("Embedded %zu pages/cpu s%zu r%zu d%zu u%zu\n",
3108 PFN_DOWN(size_sum), ai->static_size, ai->reserved_size,
3109 ai->dyn_size, ai->unit_size);
3110
3111 pcpu_setup_first_chunk(ai, base);
3112 goto out_free;
3113
3114 out_free_areas:
3115 for (group = 0; group < ai->nr_groups; group++)
3116 if (areas[group])
3117 pcpu_fc_free(areas[group],
3118 ai->groups[group].nr_units * ai->unit_size);
3119 out_free:
3120 pcpu_free_alloc_info(ai);
3121 if (areas)
3122 memblock_free(areas, areas_size);
3123 return rc;
3124 }
3125 #endif /* BUILD_EMBED_FIRST_CHUNK */
3126
3127 #ifdef BUILD_PAGE_FIRST_CHUNK
3128 #include <linux/pgalloc.h>
3129
3130 #ifndef P4D_TABLE_SIZE
3131 #define P4D_TABLE_SIZE PAGE_SIZE
3132 #endif
3133
3134 #ifndef PUD_TABLE_SIZE
3135 #define PUD_TABLE_SIZE PAGE_SIZE
3136 #endif
3137
3138 #ifndef PMD_TABLE_SIZE
3139 #define PMD_TABLE_SIZE PAGE_SIZE
3140 #endif
3141
3142 #ifndef PTE_TABLE_SIZE
3143 #define PTE_TABLE_SIZE PAGE_SIZE
3144 #endif
pcpu_populate_pte(unsigned long addr)3145 void __init __weak pcpu_populate_pte(unsigned long addr)
3146 {
3147 pgd_t *pgd = pgd_offset_k(addr);
3148 p4d_t *p4d;
3149 pud_t *pud;
3150 pmd_t *pmd;
3151
3152 if (pgd_none(*pgd)) {
3153 p4d = memblock_alloc_or_panic(P4D_TABLE_SIZE, P4D_TABLE_SIZE);
3154 pgd_populate_kernel(addr, pgd, p4d);
3155 }
3156
3157 p4d = p4d_offset(pgd, addr);
3158 if (p4d_none(*p4d)) {
3159 pud = memblock_alloc_or_panic(PUD_TABLE_SIZE, PUD_TABLE_SIZE);
3160 p4d_populate_kernel(addr, p4d, pud);
3161 }
3162
3163 pud = pud_offset(p4d, addr);
3164 if (pud_none(*pud)) {
3165 pmd = memblock_alloc_or_panic(PMD_TABLE_SIZE, PMD_TABLE_SIZE);
3166 pud_populate(&init_mm, pud, pmd);
3167 }
3168
3169 pmd = pmd_offset(pud, addr);
3170 if (!pmd_present(*pmd)) {
3171 pte_t *new;
3172
3173 new = memblock_alloc_or_panic(PTE_TABLE_SIZE, PTE_TABLE_SIZE);
3174 pmd_populate_kernel(&init_mm, pmd, new);
3175 }
3176
3177 return;
3178 }
3179
3180 /**
3181 * pcpu_page_first_chunk - map the first chunk using PAGE_SIZE pages
3182 * @reserved_size: the size of reserved percpu area in bytes
3183 * @cpu_to_nd_fn: callback to convert cpu to it's node, optional
3184 *
3185 * This is a helper to ease setting up page-remapped first percpu
3186 * chunk and can be called where pcpu_setup_first_chunk() is expected.
3187 *
3188 * This is the basic allocator. Static percpu area is allocated
3189 * page-by-page into vmalloc area.
3190 *
3191 * RETURNS:
3192 * 0 on success, -errno on failure.
3193 */
pcpu_page_first_chunk(size_t reserved_size,pcpu_fc_cpu_to_node_fn_t cpu_to_nd_fn)3194 int __init pcpu_page_first_chunk(size_t reserved_size, pcpu_fc_cpu_to_node_fn_t cpu_to_nd_fn)
3195 {
3196 static struct vm_struct vm;
3197 struct pcpu_alloc_info *ai;
3198 char psize_str[16];
3199 int unit_pages;
3200 size_t pages_size;
3201 struct page **pages;
3202 int unit, i, j, rc = 0;
3203 int upa;
3204 int nr_g0_units;
3205
3206 snprintf(psize_str, sizeof(psize_str), "%luK", PAGE_SIZE >> 10);
3207
3208 ai = pcpu_build_alloc_info(reserved_size, 0, PAGE_SIZE, NULL);
3209 if (IS_ERR(ai))
3210 return PTR_ERR(ai);
3211 BUG_ON(ai->nr_groups != 1);
3212 upa = ai->alloc_size/ai->unit_size;
3213 nr_g0_units = roundup(num_possible_cpus(), upa);
3214 if (WARN_ON(ai->groups[0].nr_units != nr_g0_units)) {
3215 pcpu_free_alloc_info(ai);
3216 return -EINVAL;
3217 }
3218
3219 unit_pages = ai->unit_size >> PAGE_SHIFT;
3220
3221 /* unaligned allocations can't be freed, round up to page size */
3222 pages_size = PFN_ALIGN(unit_pages * num_possible_cpus() *
3223 sizeof(pages[0]));
3224 pages = memblock_alloc_or_panic(pages_size, SMP_CACHE_BYTES);
3225
3226 /* allocate pages */
3227 j = 0;
3228 for (unit = 0; unit < num_possible_cpus(); unit++) {
3229 unsigned int cpu = ai->groups[0].cpu_map[unit];
3230 for (i = 0; i < unit_pages; i++) {
3231 void *ptr;
3232
3233 ptr = pcpu_fc_alloc(cpu, PAGE_SIZE, PAGE_SIZE, cpu_to_nd_fn);
3234 if (!ptr) {
3235 pr_warn("failed to allocate %s page for cpu%u\n",
3236 psize_str, cpu);
3237 goto enomem;
3238 }
3239 /* kmemleak tracks the percpu allocations separately */
3240 kmemleak_ignore_phys(__pa(ptr));
3241 pages[j++] = virt_to_page(ptr);
3242 }
3243 }
3244
3245 /* allocate vm area, map the pages and copy static data */
3246 vm.flags = VM_ALLOC;
3247 vm.size = num_possible_cpus() * ai->unit_size;
3248 vm_area_register_early(&vm, PAGE_SIZE);
3249
3250 for (unit = 0; unit < num_possible_cpus(); unit++) {
3251 unsigned long unit_addr =
3252 (unsigned long)vm.addr + unit * ai->unit_size;
3253
3254 for (i = 0; i < unit_pages; i++)
3255 pcpu_populate_pte(unit_addr + (i << PAGE_SHIFT));
3256
3257 /* pte already populated, the following shouldn't fail */
3258 rc = __pcpu_map_pages(unit_addr, &pages[unit * unit_pages],
3259 unit_pages);
3260 if (rc < 0)
3261 panic("failed to map percpu area, err=%d\n", rc);
3262
3263 flush_cache_vmap_early(unit_addr, unit_addr + ai->unit_size);
3264
3265 /* copy static data */
3266 memcpy((void *)unit_addr, __per_cpu_start, ai->static_size);
3267 }
3268
3269 /* we're ready, commit */
3270 pr_info("%d %s pages/cpu s%zu r%zu d%zu\n",
3271 unit_pages, psize_str, ai->static_size,
3272 ai->reserved_size, ai->dyn_size);
3273
3274 pcpu_setup_first_chunk(ai, vm.addr);
3275 goto out_free_ar;
3276
3277 enomem:
3278 while (--j >= 0)
3279 pcpu_fc_free(page_address(pages[j]), PAGE_SIZE);
3280 rc = -ENOMEM;
3281 out_free_ar:
3282 memblock_free(pages, pages_size);
3283 pcpu_free_alloc_info(ai);
3284 return rc;
3285 }
3286 #endif /* BUILD_PAGE_FIRST_CHUNK */
3287
3288 #ifndef CONFIG_HAVE_SETUP_PER_CPU_AREA
3289 /*
3290 * Generic SMP percpu area setup.
3291 *
3292 * The embedding helper is used because its behavior closely resembles
3293 * the original non-dynamic generic percpu area setup. This is
3294 * important because many archs have addressing restrictions and might
3295 * fail if the percpu area is located far away from the previous
3296 * location. As an added bonus, in non-NUMA cases, embedding is
3297 * generally a good idea TLB-wise because percpu area can piggy back
3298 * on the physical linear memory mapping which uses large page
3299 * mappings on applicable archs.
3300 */
3301 unsigned long __per_cpu_offset[NR_CPUS] __read_mostly;
3302 EXPORT_SYMBOL(__per_cpu_offset);
3303
setup_per_cpu_areas(void)3304 void __init setup_per_cpu_areas(void)
3305 {
3306 unsigned long delta;
3307 unsigned int cpu;
3308 int rc;
3309
3310 /*
3311 * Always reserve area for module percpu variables. That's
3312 * what the legacy allocator did.
3313 */
3314 rc = pcpu_embed_first_chunk(PERCPU_MODULE_RESERVE, PERCPU_DYNAMIC_RESERVE,
3315 PAGE_SIZE, NULL, NULL);
3316 if (rc < 0)
3317 panic("Failed to initialize percpu areas.");
3318
3319 delta = (unsigned long)pcpu_base_addr - (unsigned long)__per_cpu_start;
3320 for_each_possible_cpu(cpu)
3321 __per_cpu_offset[cpu] = delta + pcpu_unit_offsets[cpu];
3322 }
3323 #endif /* CONFIG_HAVE_SETUP_PER_CPU_AREA */
3324
3325 #else /* CONFIG_SMP */
3326
3327 /*
3328 * UP percpu area setup.
3329 *
3330 * UP always uses km-based percpu allocator with identity mapping.
3331 * Static percpu variables are indistinguishable from the usual static
3332 * variables and don't require any special preparation.
3333 */
setup_per_cpu_areas(void)3334 void __init setup_per_cpu_areas(void)
3335 {
3336 const size_t unit_size =
3337 roundup_pow_of_two(max_t(size_t, PCPU_MIN_UNIT_SIZE,
3338 PERCPU_DYNAMIC_RESERVE));
3339 struct pcpu_alloc_info *ai;
3340 void *fc;
3341
3342 ai = pcpu_alloc_alloc_info(1, 1);
3343 fc = memblock_alloc_from(unit_size, PAGE_SIZE, __pa(MAX_DMA_ADDRESS));
3344 if (!ai || !fc)
3345 panic("Failed to allocate memory for percpu areas.");
3346 /* kmemleak tracks the percpu allocations separately */
3347 kmemleak_ignore_phys(__pa(fc));
3348
3349 ai->dyn_size = unit_size;
3350 ai->unit_size = unit_size;
3351 ai->atom_size = unit_size;
3352 ai->alloc_size = unit_size;
3353 ai->groups[0].nr_units = 1;
3354 ai->groups[0].cpu_map[0] = 0;
3355
3356 pcpu_setup_first_chunk(ai, fc);
3357 pcpu_free_alloc_info(ai);
3358 }
3359
3360 #endif /* CONFIG_SMP */
3361
3362 /*
3363 * pcpu_nr_pages - calculate total number of populated backing pages
3364 *
3365 * This reflects the number of pages populated to back chunks. Metadata is
3366 * excluded in the number exposed in meminfo as the number of backing pages
3367 * scales with the number of cpus and can quickly outweigh the memory used for
3368 * metadata. It also keeps this calculation nice and simple.
3369 *
3370 * RETURNS:
3371 * Total number of populated backing pages in use by the allocator.
3372 */
pcpu_nr_pages(void)3373 unsigned long pcpu_nr_pages(void)
3374 {
3375 return data_race(READ_ONCE(pcpu_nr_populated)) * pcpu_nr_units;
3376 }
3377
3378 /*
3379 * Percpu allocator is initialized early during boot when neither slab or
3380 * workqueue is available. Plug async management until everything is up
3381 * and running.
3382 */
percpu_enable_async(void)3383 static int __init percpu_enable_async(void)
3384 {
3385 pcpu_async_enabled = true;
3386 return 0;
3387 }
3388 subsys_initcall(percpu_enable_async);
3389