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Tejun Heofbf59bc2009-02-20 16:29:08 +09001/*
2 * linux/mm/percpu.c - percpu memory allocator
3 *
4 * Copyright (C) 2009 SUSE Linux Products GmbH
5 * Copyright (C) 2009 Tejun Heo <tj@kernel.org>
6 *
7 * This file is released under the GPLv2.
8 *
9 * This is percpu allocator which can handle both static and dynamic
10 * areas. Percpu areas are allocated in chunks in vmalloc area. Each
11 * chunk is consisted of num_possible_cpus() units and the first chunk
12 * is used for static percpu variables in the kernel image (special
13 * boot time alloc/init handling necessary as these areas need to be
14 * brought up before allocation services are running). Unit grows as
15 * necessary and all units grow or shrink in unison. When a chunk is
16 * filled up, another chunk is allocated. ie. in vmalloc area
17 *
18 * c0 c1 c2
19 * ------------------- ------------------- ------------
20 * | u0 | u1 | u2 | u3 | | u0 | u1 | u2 | u3 | | u0 | u1 | u
21 * ------------------- ...... ------------------- .... ------------
22 *
23 * Allocation is done in offset-size areas of single unit space. Ie,
24 * an area of 512 bytes at 6k in c1 occupies 512 bytes at 6k of c1:u0,
25 * c1:u1, c1:u2 and c1:u3. Percpu access can be done by configuring
Christoph Lametere1b9aa32009-04-02 13:21:44 +090026 * percpu base registers pcpu_unit_size apart.
Tejun Heofbf59bc2009-02-20 16:29:08 +090027 *
28 * There are usually many small percpu allocations many of them as
29 * small as 4 bytes. The allocator organizes chunks into lists
30 * according to free size and tries to allocate from the fullest one.
31 * Each chunk keeps the maximum contiguous area size hint which is
32 * guaranteed to be eqaul to or larger than the maximum contiguous
33 * area in the chunk. This helps the allocator not to iterate the
34 * chunk maps unnecessarily.
35 *
36 * Allocation state in each chunk is kept using an array of integers
37 * on chunk->map. A positive value in the map represents a free
38 * region and negative allocated. Allocation inside a chunk is done
39 * by scanning this map sequentially and serving the first matching
40 * entry. This is mostly copied from the percpu_modalloc() allocator.
Christoph Lametere1b9aa32009-04-02 13:21:44 +090041 * Chunks can be determined from the address using the index field
42 * in the page struct. The index field contains a pointer to the chunk.
Tejun Heofbf59bc2009-02-20 16:29:08 +090043 *
44 * To use this allocator, arch code should do the followings.
45 *
Tejun Heoe74e3962009-03-30 19:07:44 +090046 * - drop CONFIG_HAVE_LEGACY_PER_CPU_AREA
Tejun Heofbf59bc2009-02-20 16:29:08 +090047 *
48 * - define __addr_to_pcpu_ptr() and __pcpu_ptr_to_addr() to translate
Tejun Heoe0100982009-03-10 16:27:48 +090049 * regular address to percpu pointer and back if they need to be
50 * different from the default
Tejun Heofbf59bc2009-02-20 16:29:08 +090051 *
Tejun Heo8d408b42009-02-24 11:57:21 +090052 * - use pcpu_setup_first_chunk() during percpu area initialization to
53 * setup the first chunk containing the kernel static percpu area
Tejun Heofbf59bc2009-02-20 16:29:08 +090054 */
55
56#include <linux/bitmap.h>
57#include <linux/bootmem.h>
58#include <linux/list.h>
59#include <linux/mm.h>
60#include <linux/module.h>
61#include <linux/mutex.h>
62#include <linux/percpu.h>
63#include <linux/pfn.h>
Tejun Heofbf59bc2009-02-20 16:29:08 +090064#include <linux/slab.h>
Tejun Heoccea34b2009-03-07 00:44:13 +090065#include <linux/spinlock.h>
Tejun Heofbf59bc2009-02-20 16:29:08 +090066#include <linux/vmalloc.h>
Tejun Heoa56dbdd2009-03-07 00:44:11 +090067#include <linux/workqueue.h>
Tejun Heofbf59bc2009-02-20 16:29:08 +090068
69#include <asm/cacheflush.h>
Tejun Heoe0100982009-03-10 16:27:48 +090070#include <asm/sections.h>
Tejun Heofbf59bc2009-02-20 16:29:08 +090071#include <asm/tlbflush.h>
72
Tejun Heofbf59bc2009-02-20 16:29:08 +090073#define PCPU_SLOT_BASE_SHIFT 5 /* 1-31 shares the same slot */
74#define PCPU_DFL_MAP_ALLOC 16 /* start a map with 16 ents */
75
Tejun Heoe0100982009-03-10 16:27:48 +090076/* default addr <-> pcpu_ptr mapping, override in asm/percpu.h if necessary */
77#ifndef __addr_to_pcpu_ptr
78#define __addr_to_pcpu_ptr(addr) \
79 (void *)((unsigned long)(addr) - (unsigned long)pcpu_base_addr \
80 + (unsigned long)__per_cpu_start)
81#endif
82#ifndef __pcpu_ptr_to_addr
83#define __pcpu_ptr_to_addr(ptr) \
84 (void *)((unsigned long)(ptr) + (unsigned long)pcpu_base_addr \
85 - (unsigned long)__per_cpu_start)
86#endif
87
Tejun Heofbf59bc2009-02-20 16:29:08 +090088struct pcpu_chunk {
89 struct list_head list; /* linked to pcpu_slot lists */
Tejun Heofbf59bc2009-02-20 16:29:08 +090090 int free_size; /* free bytes in the chunk */
91 int contig_hint; /* max contiguous size hint */
92 struct vm_struct *vm; /* mapped vmalloc region */
93 int map_used; /* # of map entries used */
94 int map_alloc; /* # of map entries allocated */
95 int *map; /* allocation map */
Tejun Heo8d408b42009-02-24 11:57:21 +090096 bool immutable; /* no [de]population allowed */
Tejun Heo3e24aa52009-03-06 14:33:59 +090097 struct page **page; /* points to page array */
98 struct page *page_ar[]; /* #cpus * UNIT_PAGES */
Tejun Heofbf59bc2009-02-20 16:29:08 +090099};
100
Tejun Heo40150d32009-02-24 12:32:28 +0900101static int pcpu_unit_pages __read_mostly;
102static int pcpu_unit_size __read_mostly;
103static int pcpu_chunk_size __read_mostly;
104static int pcpu_nr_slots __read_mostly;
105static size_t pcpu_chunk_struct_size __read_mostly;
Tejun Heofbf59bc2009-02-20 16:29:08 +0900106
107/* the address of the first chunk which starts with the kernel static area */
Tejun Heo40150d32009-02-24 12:32:28 +0900108void *pcpu_base_addr __read_mostly;
Tejun Heofbf59bc2009-02-20 16:29:08 +0900109EXPORT_SYMBOL_GPL(pcpu_base_addr);
110
Tejun Heoae9e6bc92009-04-02 13:19:54 +0900111/*
112 * The first chunk which always exists. Note that unlike other
113 * chunks, this one can be allocated and mapped in several different
114 * ways and thus often doesn't live in the vmalloc area.
115 */
116static struct pcpu_chunk *pcpu_first_chunk;
117
118/*
119 * Optional reserved chunk. This chunk reserves part of the first
120 * chunk and serves it for reserved allocations. The amount of
121 * reserved offset is in pcpu_reserved_chunk_limit. When reserved
122 * area doesn't exist, the following variables contain NULL and 0
123 * respectively.
124 */
Tejun Heoedcb4632009-03-06 14:33:59 +0900125static struct pcpu_chunk *pcpu_reserved_chunk;
Tejun Heoedcb4632009-03-06 14:33:59 +0900126static int pcpu_reserved_chunk_limit;
127
Tejun Heofbf59bc2009-02-20 16:29:08 +0900128/*
Tejun Heoccea34b2009-03-07 00:44:13 +0900129 * Synchronization rules.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900130 *
Tejun Heoccea34b2009-03-07 00:44:13 +0900131 * There are two locks - pcpu_alloc_mutex and pcpu_lock. The former
132 * protects allocation/reclaim paths, chunks and chunk->page arrays.
133 * The latter is a spinlock and protects the index data structures -
Christoph Lametere1b9aa32009-04-02 13:21:44 +0900134 * chunk slots, chunks and area maps in chunks.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900135 *
Tejun Heoccea34b2009-03-07 00:44:13 +0900136 * During allocation, pcpu_alloc_mutex is kept locked all the time and
137 * pcpu_lock is grabbed and released as necessary. All actual memory
138 * allocations are done using GFP_KERNEL with pcpu_lock released.
139 *
140 * Free path accesses and alters only the index data structures, so it
141 * can be safely called from atomic context. When memory needs to be
142 * returned to the system, free path schedules reclaim_work which
143 * grabs both pcpu_alloc_mutex and pcpu_lock, unlinks chunks to be
144 * reclaimed, release both locks and frees the chunks. Note that it's
145 * necessary to grab both locks to remove a chunk from circulation as
146 * allocation path might be referencing the chunk with only
147 * pcpu_alloc_mutex locked.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900148 */
Tejun Heoccea34b2009-03-07 00:44:13 +0900149static DEFINE_MUTEX(pcpu_alloc_mutex); /* protects whole alloc and reclaim */
150static DEFINE_SPINLOCK(pcpu_lock); /* protects index data structures */
Tejun Heofbf59bc2009-02-20 16:29:08 +0900151
Tejun Heo40150d32009-02-24 12:32:28 +0900152static struct list_head *pcpu_slot __read_mostly; /* chunk list slots */
Tejun Heofbf59bc2009-02-20 16:29:08 +0900153
Tejun Heoa56dbdd2009-03-07 00:44:11 +0900154/* reclaim work to release fully free chunks, scheduled from free path */
155static void pcpu_reclaim(struct work_struct *work);
156static DECLARE_WORK(pcpu_reclaim_work, pcpu_reclaim);
157
Tejun Heod9b55ee2009-02-24 11:57:21 +0900158static int __pcpu_size_to_slot(int size)
Tejun Heofbf59bc2009-02-20 16:29:08 +0900159{
Tejun Heocae3aeb2009-02-21 16:56:23 +0900160 int highbit = fls(size); /* size is in bytes */
Tejun Heofbf59bc2009-02-20 16:29:08 +0900161 return max(highbit - PCPU_SLOT_BASE_SHIFT + 2, 1);
162}
163
Tejun Heod9b55ee2009-02-24 11:57:21 +0900164static int pcpu_size_to_slot(int size)
165{
166 if (size == pcpu_unit_size)
167 return pcpu_nr_slots - 1;
168 return __pcpu_size_to_slot(size);
169}
170
Tejun Heofbf59bc2009-02-20 16:29:08 +0900171static int pcpu_chunk_slot(const struct pcpu_chunk *chunk)
172{
173 if (chunk->free_size < sizeof(int) || chunk->contig_hint < sizeof(int))
174 return 0;
175
176 return pcpu_size_to_slot(chunk->free_size);
177}
178
179static int pcpu_page_idx(unsigned int cpu, int page_idx)
180{
Tejun Heod9b55ee2009-02-24 11:57:21 +0900181 return cpu * pcpu_unit_pages + page_idx;
Tejun Heofbf59bc2009-02-20 16:29:08 +0900182}
183
184static struct page **pcpu_chunk_pagep(struct pcpu_chunk *chunk,
185 unsigned int cpu, int page_idx)
186{
187 return &chunk->page[pcpu_page_idx(cpu, page_idx)];
188}
189
190static unsigned long pcpu_chunk_addr(struct pcpu_chunk *chunk,
191 unsigned int cpu, int page_idx)
192{
193 return (unsigned long)chunk->vm->addr +
194 (pcpu_page_idx(cpu, page_idx) << PAGE_SHIFT);
195}
196
197static bool pcpu_chunk_page_occupied(struct pcpu_chunk *chunk,
198 int page_idx)
199{
200 return *pcpu_chunk_pagep(chunk, 0, page_idx) != NULL;
201}
202
Christoph Lametere1b9aa32009-04-02 13:21:44 +0900203/* set the pointer to a chunk in a page struct */
204static void pcpu_set_page_chunk(struct page *page, struct pcpu_chunk *pcpu)
205{
206 page->index = (unsigned long)pcpu;
207}
208
209/* obtain pointer to a chunk from a page struct */
210static struct pcpu_chunk *pcpu_get_page_chunk(struct page *page)
211{
212 return (struct pcpu_chunk *)page->index;
213}
214
Tejun Heofbf59bc2009-02-20 16:29:08 +0900215/**
Tejun Heo1880d932009-03-07 00:44:09 +0900216 * pcpu_mem_alloc - allocate memory
217 * @size: bytes to allocate
Tejun Heofbf59bc2009-02-20 16:29:08 +0900218 *
Tejun Heo1880d932009-03-07 00:44:09 +0900219 * Allocate @size bytes. If @size is smaller than PAGE_SIZE,
220 * kzalloc() is used; otherwise, vmalloc() is used. The returned
221 * memory is always zeroed.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900222 *
Tejun Heoccea34b2009-03-07 00:44:13 +0900223 * CONTEXT:
224 * Does GFP_KERNEL allocation.
225 *
Tejun Heofbf59bc2009-02-20 16:29:08 +0900226 * RETURNS:
Tejun Heo1880d932009-03-07 00:44:09 +0900227 * Pointer to the allocated area on success, NULL on failure.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900228 */
Tejun Heo1880d932009-03-07 00:44:09 +0900229static void *pcpu_mem_alloc(size_t size)
Tejun Heofbf59bc2009-02-20 16:29:08 +0900230{
Tejun Heofbf59bc2009-02-20 16:29:08 +0900231 if (size <= PAGE_SIZE)
Tejun Heo1880d932009-03-07 00:44:09 +0900232 return kzalloc(size, GFP_KERNEL);
233 else {
234 void *ptr = vmalloc(size);
235 if (ptr)
236 memset(ptr, 0, size);
237 return ptr;
238 }
239}
Tejun Heofbf59bc2009-02-20 16:29:08 +0900240
Tejun Heo1880d932009-03-07 00:44:09 +0900241/**
242 * pcpu_mem_free - free memory
243 * @ptr: memory to free
244 * @size: size of the area
245 *
246 * Free @ptr. @ptr should have been allocated using pcpu_mem_alloc().
247 */
248static void pcpu_mem_free(void *ptr, size_t size)
249{
250 if (size <= PAGE_SIZE)
251 kfree(ptr);
252 else
253 vfree(ptr);
Tejun Heofbf59bc2009-02-20 16:29:08 +0900254}
255
256/**
257 * pcpu_chunk_relocate - put chunk in the appropriate chunk slot
258 * @chunk: chunk of interest
259 * @oslot: the previous slot it was on
260 *
261 * This function is called after an allocation or free changed @chunk.
262 * New slot according to the changed state is determined and @chunk is
Tejun Heoedcb4632009-03-06 14:33:59 +0900263 * moved to the slot. Note that the reserved chunk is never put on
264 * chunk slots.
Tejun Heoccea34b2009-03-07 00:44:13 +0900265 *
266 * CONTEXT:
267 * pcpu_lock.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900268 */
269static void pcpu_chunk_relocate(struct pcpu_chunk *chunk, int oslot)
270{
271 int nslot = pcpu_chunk_slot(chunk);
272
Tejun Heoedcb4632009-03-06 14:33:59 +0900273 if (chunk != pcpu_reserved_chunk && oslot != nslot) {
Tejun Heofbf59bc2009-02-20 16:29:08 +0900274 if (oslot < nslot)
275 list_move(&chunk->list, &pcpu_slot[nslot]);
276 else
277 list_move_tail(&chunk->list, &pcpu_slot[nslot]);
278 }
279}
280
Tejun Heofbf59bc2009-02-20 16:29:08 +0900281/**
Christoph Lametere1b9aa32009-04-02 13:21:44 +0900282 * pcpu_chunk_addr_search - determine chunk containing specified address
283 * @addr: address for which the chunk needs to be determined.
Tejun Heoccea34b2009-03-07 00:44:13 +0900284 *
Tejun Heofbf59bc2009-02-20 16:29:08 +0900285 * RETURNS:
286 * The address of the found chunk.
287 */
288static struct pcpu_chunk *pcpu_chunk_addr_search(void *addr)
289{
Tejun Heoae9e6bc92009-04-02 13:19:54 +0900290 void *first_start = pcpu_first_chunk->vm->addr;
Tejun Heofbf59bc2009-02-20 16:29:08 +0900291
Tejun Heoae9e6bc92009-04-02 13:19:54 +0900292 /* is it in the first chunk? */
Tejun Heo79ba6ac2009-07-04 08:10:58 +0900293 if (addr >= first_start && addr < first_start + pcpu_unit_size) {
Tejun Heoae9e6bc92009-04-02 13:19:54 +0900294 /* is it in the reserved area? */
295 if (addr < first_start + pcpu_reserved_chunk_limit)
Tejun Heoedcb4632009-03-06 14:33:59 +0900296 return pcpu_reserved_chunk;
Tejun Heoae9e6bc92009-04-02 13:19:54 +0900297 return pcpu_first_chunk;
Tejun Heoedcb4632009-03-06 14:33:59 +0900298 }
299
Christoph Lametere1b9aa32009-04-02 13:21:44 +0900300 return pcpu_get_page_chunk(vmalloc_to_page(addr));
Tejun Heofbf59bc2009-02-20 16:29:08 +0900301}
302
303/**
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900304 * pcpu_extend_area_map - extend area map for allocation
305 * @chunk: target chunk
306 *
307 * Extend area map of @chunk so that it can accomodate an allocation.
308 * A single allocation can split an area into three areas, so this
309 * function makes sure that @chunk->map has at least two extra slots.
310 *
Tejun Heoccea34b2009-03-07 00:44:13 +0900311 * CONTEXT:
312 * pcpu_alloc_mutex, pcpu_lock. pcpu_lock is released and reacquired
313 * if area map is extended.
314 *
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900315 * RETURNS:
316 * 0 if noop, 1 if successfully extended, -errno on failure.
317 */
318static int pcpu_extend_area_map(struct pcpu_chunk *chunk)
319{
320 int new_alloc;
321 int *new;
322 size_t size;
323
324 /* has enough? */
325 if (chunk->map_alloc >= chunk->map_used + 2)
326 return 0;
327
Tejun Heoccea34b2009-03-07 00:44:13 +0900328 spin_unlock_irq(&pcpu_lock);
329
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900330 new_alloc = PCPU_DFL_MAP_ALLOC;
331 while (new_alloc < chunk->map_used + 2)
332 new_alloc *= 2;
333
334 new = pcpu_mem_alloc(new_alloc * sizeof(new[0]));
Tejun Heoccea34b2009-03-07 00:44:13 +0900335 if (!new) {
336 spin_lock_irq(&pcpu_lock);
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900337 return -ENOMEM;
Tejun Heoccea34b2009-03-07 00:44:13 +0900338 }
339
340 /*
341 * Acquire pcpu_lock and switch to new area map. Only free
342 * could have happened inbetween, so map_used couldn't have
343 * grown.
344 */
345 spin_lock_irq(&pcpu_lock);
346 BUG_ON(new_alloc < chunk->map_used + 2);
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900347
348 size = chunk->map_alloc * sizeof(chunk->map[0]);
349 memcpy(new, chunk->map, size);
350
351 /*
352 * map_alloc < PCPU_DFL_MAP_ALLOC indicates that the chunk is
353 * one of the first chunks and still using static map.
354 */
355 if (chunk->map_alloc >= PCPU_DFL_MAP_ALLOC)
356 pcpu_mem_free(chunk->map, size);
357
358 chunk->map_alloc = new_alloc;
359 chunk->map = new;
360 return 0;
361}
362
363/**
Tejun Heofbf59bc2009-02-20 16:29:08 +0900364 * pcpu_split_block - split a map block
365 * @chunk: chunk of interest
366 * @i: index of map block to split
Tejun Heocae3aeb2009-02-21 16:56:23 +0900367 * @head: head size in bytes (can be 0)
368 * @tail: tail size in bytes (can be 0)
Tejun Heofbf59bc2009-02-20 16:29:08 +0900369 *
370 * Split the @i'th map block into two or three blocks. If @head is
371 * non-zero, @head bytes block is inserted before block @i moving it
372 * to @i+1 and reducing its size by @head bytes.
373 *
374 * If @tail is non-zero, the target block, which can be @i or @i+1
375 * depending on @head, is reduced by @tail bytes and @tail byte block
376 * is inserted after the target block.
377 *
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900378 * @chunk->map must have enough free slots to accomodate the split.
Tejun Heoccea34b2009-03-07 00:44:13 +0900379 *
380 * CONTEXT:
381 * pcpu_lock.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900382 */
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900383static void pcpu_split_block(struct pcpu_chunk *chunk, int i,
384 int head, int tail)
Tejun Heofbf59bc2009-02-20 16:29:08 +0900385{
386 int nr_extra = !!head + !!tail;
Tejun Heofbf59bc2009-02-20 16:29:08 +0900387
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900388 BUG_ON(chunk->map_alloc < chunk->map_used + nr_extra);
Tejun Heofbf59bc2009-02-20 16:29:08 +0900389
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900390 /* insert new subblocks */
Tejun Heofbf59bc2009-02-20 16:29:08 +0900391 memmove(&chunk->map[i + nr_extra], &chunk->map[i],
392 sizeof(chunk->map[0]) * (chunk->map_used - i));
393 chunk->map_used += nr_extra;
394
395 if (head) {
396 chunk->map[i + 1] = chunk->map[i] - head;
397 chunk->map[i++] = head;
398 }
399 if (tail) {
400 chunk->map[i++] -= tail;
401 chunk->map[i] = tail;
402 }
Tejun Heofbf59bc2009-02-20 16:29:08 +0900403}
404
405/**
406 * pcpu_alloc_area - allocate area from a pcpu_chunk
407 * @chunk: chunk of interest
Tejun Heocae3aeb2009-02-21 16:56:23 +0900408 * @size: wanted size in bytes
Tejun Heofbf59bc2009-02-20 16:29:08 +0900409 * @align: wanted align
410 *
411 * Try to allocate @size bytes area aligned at @align from @chunk.
412 * Note that this function only allocates the offset. It doesn't
413 * populate or map the area.
414 *
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900415 * @chunk->map must have at least two free slots.
416 *
Tejun Heoccea34b2009-03-07 00:44:13 +0900417 * CONTEXT:
418 * pcpu_lock.
419 *
Tejun Heofbf59bc2009-02-20 16:29:08 +0900420 * RETURNS:
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900421 * Allocated offset in @chunk on success, -1 if no matching area is
422 * found.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900423 */
424static int pcpu_alloc_area(struct pcpu_chunk *chunk, int size, int align)
425{
426 int oslot = pcpu_chunk_slot(chunk);
427 int max_contig = 0;
428 int i, off;
429
Tejun Heofbf59bc2009-02-20 16:29:08 +0900430 for (i = 0, off = 0; i < chunk->map_used; off += abs(chunk->map[i++])) {
431 bool is_last = i + 1 == chunk->map_used;
432 int head, tail;
433
434 /* extra for alignment requirement */
435 head = ALIGN(off, align) - off;
436 BUG_ON(i == 0 && head != 0);
437
438 if (chunk->map[i] < 0)
439 continue;
440 if (chunk->map[i] < head + size) {
441 max_contig = max(chunk->map[i], max_contig);
442 continue;
443 }
444
445 /*
446 * If head is small or the previous block is free,
447 * merge'em. Note that 'small' is defined as smaller
448 * than sizeof(int), which is very small but isn't too
449 * uncommon for percpu allocations.
450 */
451 if (head && (head < sizeof(int) || chunk->map[i - 1] > 0)) {
452 if (chunk->map[i - 1] > 0)
453 chunk->map[i - 1] += head;
454 else {
455 chunk->map[i - 1] -= head;
456 chunk->free_size -= head;
457 }
458 chunk->map[i] -= head;
459 off += head;
460 head = 0;
461 }
462
463 /* if tail is small, just keep it around */
464 tail = chunk->map[i] - head - size;
465 if (tail < sizeof(int))
466 tail = 0;
467
468 /* split if warranted */
469 if (head || tail) {
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900470 pcpu_split_block(chunk, i, head, tail);
Tejun Heofbf59bc2009-02-20 16:29:08 +0900471 if (head) {
472 i++;
473 off += head;
474 max_contig = max(chunk->map[i - 1], max_contig);
475 }
476 if (tail)
477 max_contig = max(chunk->map[i + 1], max_contig);
478 }
479
480 /* update hint and mark allocated */
481 if (is_last)
482 chunk->contig_hint = max_contig; /* fully scanned */
483 else
484 chunk->contig_hint = max(chunk->contig_hint,
485 max_contig);
486
487 chunk->free_size -= chunk->map[i];
488 chunk->map[i] = -chunk->map[i];
489
490 pcpu_chunk_relocate(chunk, oslot);
491 return off;
492 }
493
494 chunk->contig_hint = max_contig; /* fully scanned */
495 pcpu_chunk_relocate(chunk, oslot);
496
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900497 /* tell the upper layer that this chunk has no matching area */
498 return -1;
Tejun Heofbf59bc2009-02-20 16:29:08 +0900499}
500
501/**
502 * pcpu_free_area - free area to a pcpu_chunk
503 * @chunk: chunk of interest
504 * @freeme: offset of area to free
505 *
506 * Free area starting from @freeme to @chunk. Note that this function
507 * only modifies the allocation map. It doesn't depopulate or unmap
508 * the area.
Tejun Heoccea34b2009-03-07 00:44:13 +0900509 *
510 * CONTEXT:
511 * pcpu_lock.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900512 */
513static void pcpu_free_area(struct pcpu_chunk *chunk, int freeme)
514{
515 int oslot = pcpu_chunk_slot(chunk);
516 int i, off;
517
518 for (i = 0, off = 0; i < chunk->map_used; off += abs(chunk->map[i++]))
519 if (off == freeme)
520 break;
521 BUG_ON(off != freeme);
522 BUG_ON(chunk->map[i] > 0);
523
524 chunk->map[i] = -chunk->map[i];
525 chunk->free_size += chunk->map[i];
526
527 /* merge with previous? */
528 if (i > 0 && chunk->map[i - 1] >= 0) {
529 chunk->map[i - 1] += chunk->map[i];
530 chunk->map_used--;
531 memmove(&chunk->map[i], &chunk->map[i + 1],
532 (chunk->map_used - i) * sizeof(chunk->map[0]));
533 i--;
534 }
535 /* merge with next? */
536 if (i + 1 < chunk->map_used && chunk->map[i + 1] >= 0) {
537 chunk->map[i] += chunk->map[i + 1];
538 chunk->map_used--;
539 memmove(&chunk->map[i + 1], &chunk->map[i + 2],
540 (chunk->map_used - (i + 1)) * sizeof(chunk->map[0]));
541 }
542
543 chunk->contig_hint = max(chunk->map[i], chunk->contig_hint);
544 pcpu_chunk_relocate(chunk, oslot);
545}
546
547/**
548 * pcpu_unmap - unmap pages out of a pcpu_chunk
549 * @chunk: chunk of interest
550 * @page_start: page index of the first page to unmap
551 * @page_end: page index of the last page to unmap + 1
Tejun Heo85ae87c2009-06-22 11:56:23 +0900552 * @flush_tlb: whether to flush tlb or not
Tejun Heofbf59bc2009-02-20 16:29:08 +0900553 *
554 * For each cpu, unmap pages [@page_start,@page_end) out of @chunk.
555 * If @flush is true, vcache is flushed before unmapping and tlb
556 * after.
557 */
558static void pcpu_unmap(struct pcpu_chunk *chunk, int page_start, int page_end,
Tejun Heo85ae87c2009-06-22 11:56:23 +0900559 bool flush_tlb)
Tejun Heofbf59bc2009-02-20 16:29:08 +0900560{
561 unsigned int last = num_possible_cpus() - 1;
562 unsigned int cpu;
563
Tejun Heo8d408b42009-02-24 11:57:21 +0900564 /* unmap must not be done on immutable chunk */
565 WARN_ON(chunk->immutable);
566
Tejun Heofbf59bc2009-02-20 16:29:08 +0900567 /*
568 * Each flushing trial can be very expensive, issue flush on
569 * the whole region at once rather than doing it for each cpu.
570 * This could be an overkill but is more scalable.
571 */
Tejun Heo85ae87c2009-06-22 11:56:23 +0900572 flush_cache_vunmap(pcpu_chunk_addr(chunk, 0, page_start),
573 pcpu_chunk_addr(chunk, last, page_end));
Tejun Heofbf59bc2009-02-20 16:29:08 +0900574
575 for_each_possible_cpu(cpu)
576 unmap_kernel_range_noflush(
577 pcpu_chunk_addr(chunk, cpu, page_start),
578 (page_end - page_start) << PAGE_SHIFT);
579
580 /* ditto as flush_cache_vunmap() */
Tejun Heo85ae87c2009-06-22 11:56:23 +0900581 if (flush_tlb)
Tejun Heofbf59bc2009-02-20 16:29:08 +0900582 flush_tlb_kernel_range(pcpu_chunk_addr(chunk, 0, page_start),
583 pcpu_chunk_addr(chunk, last, page_end));
584}
585
586/**
587 * pcpu_depopulate_chunk - depopulate and unmap an area of a pcpu_chunk
588 * @chunk: chunk to depopulate
589 * @off: offset to the area to depopulate
Tejun Heocae3aeb2009-02-21 16:56:23 +0900590 * @size: size of the area to depopulate in bytes
Tejun Heofbf59bc2009-02-20 16:29:08 +0900591 * @flush: whether to flush cache and tlb or not
592 *
593 * For each cpu, depopulate and unmap pages [@page_start,@page_end)
594 * from @chunk. If @flush is true, vcache is flushed before unmapping
595 * and tlb after.
Tejun Heoccea34b2009-03-07 00:44:13 +0900596 *
597 * CONTEXT:
598 * pcpu_alloc_mutex.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900599 */
Tejun Heocae3aeb2009-02-21 16:56:23 +0900600static void pcpu_depopulate_chunk(struct pcpu_chunk *chunk, int off, int size,
601 bool flush)
Tejun Heofbf59bc2009-02-20 16:29:08 +0900602{
603 int page_start = PFN_DOWN(off);
604 int page_end = PFN_UP(off + size);
605 int unmap_start = -1;
606 int uninitialized_var(unmap_end);
607 unsigned int cpu;
608 int i;
609
610 for (i = page_start; i < page_end; i++) {
611 for_each_possible_cpu(cpu) {
612 struct page **pagep = pcpu_chunk_pagep(chunk, cpu, i);
613
614 if (!*pagep)
615 continue;
616
617 __free_page(*pagep);
618
619 /*
620 * If it's partial depopulation, it might get
621 * populated or depopulated again. Mark the
622 * page gone.
623 */
624 *pagep = NULL;
625
626 unmap_start = unmap_start < 0 ? i : unmap_start;
627 unmap_end = i + 1;
628 }
629 }
630
631 if (unmap_start >= 0)
632 pcpu_unmap(chunk, unmap_start, unmap_end, flush);
633}
634
Tejun Heo8f05a6a2009-07-04 08:10:59 +0900635static int __pcpu_map_pages(unsigned long addr, struct page **pages,
636 int nr_pages)
637{
638 return map_kernel_range_noflush(addr, nr_pages << PAGE_SHIFT,
639 PAGE_KERNEL, pages);
640}
641
Tejun Heofbf59bc2009-02-20 16:29:08 +0900642/**
643 * pcpu_map - map pages into a pcpu_chunk
644 * @chunk: chunk of interest
645 * @page_start: page index of the first page to map
646 * @page_end: page index of the last page to map + 1
647 *
648 * For each cpu, map pages [@page_start,@page_end) into @chunk.
649 * vcache is flushed afterwards.
650 */
651static int pcpu_map(struct pcpu_chunk *chunk, int page_start, int page_end)
652{
653 unsigned int last = num_possible_cpus() - 1;
654 unsigned int cpu;
655 int err;
656
Tejun Heo8d408b42009-02-24 11:57:21 +0900657 /* map must not be done on immutable chunk */
658 WARN_ON(chunk->immutable);
659
Tejun Heofbf59bc2009-02-20 16:29:08 +0900660 for_each_possible_cpu(cpu) {
Tejun Heo8f05a6a2009-07-04 08:10:59 +0900661 err = __pcpu_map_pages(pcpu_chunk_addr(chunk, cpu, page_start),
662 pcpu_chunk_pagep(chunk, cpu, page_start),
663 page_end - page_start);
Tejun Heofbf59bc2009-02-20 16:29:08 +0900664 if (err < 0)
665 return err;
666 }
667
668 /* flush at once, please read comments in pcpu_unmap() */
669 flush_cache_vmap(pcpu_chunk_addr(chunk, 0, page_start),
670 pcpu_chunk_addr(chunk, last, page_end));
671 return 0;
672}
673
674/**
675 * pcpu_populate_chunk - populate and map an area of a pcpu_chunk
676 * @chunk: chunk of interest
677 * @off: offset to the area to populate
Tejun Heocae3aeb2009-02-21 16:56:23 +0900678 * @size: size of the area to populate in bytes
Tejun Heofbf59bc2009-02-20 16:29:08 +0900679 *
680 * For each cpu, populate and map pages [@page_start,@page_end) into
681 * @chunk. The area is cleared on return.
Tejun Heoccea34b2009-03-07 00:44:13 +0900682 *
683 * CONTEXT:
684 * pcpu_alloc_mutex, does GFP_KERNEL allocation.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900685 */
686static int pcpu_populate_chunk(struct pcpu_chunk *chunk, int off, int size)
687{
688 const gfp_t alloc_mask = GFP_KERNEL | __GFP_HIGHMEM | __GFP_COLD;
689 int page_start = PFN_DOWN(off);
690 int page_end = PFN_UP(off + size);
691 int map_start = -1;
Tejun Heo02d51fdf2009-03-01 15:42:36 +0900692 int uninitialized_var(map_end);
Tejun Heofbf59bc2009-02-20 16:29:08 +0900693 unsigned int cpu;
694 int i;
695
696 for (i = page_start; i < page_end; i++) {
697 if (pcpu_chunk_page_occupied(chunk, i)) {
698 if (map_start >= 0) {
699 if (pcpu_map(chunk, map_start, map_end))
700 goto err;
701 map_start = -1;
702 }
703 continue;
704 }
705
706 map_start = map_start < 0 ? i : map_start;
707 map_end = i + 1;
708
709 for_each_possible_cpu(cpu) {
710 struct page **pagep = pcpu_chunk_pagep(chunk, cpu, i);
711
712 *pagep = alloc_pages_node(cpu_to_node(cpu),
713 alloc_mask, 0);
714 if (!*pagep)
715 goto err;
Christoph Lametere1b9aa32009-04-02 13:21:44 +0900716 pcpu_set_page_chunk(*pagep, chunk);
Tejun Heofbf59bc2009-02-20 16:29:08 +0900717 }
718 }
719
720 if (map_start >= 0 && pcpu_map(chunk, map_start, map_end))
721 goto err;
722
723 for_each_possible_cpu(cpu)
Tejun Heod9b55ee2009-02-24 11:57:21 +0900724 memset(chunk->vm->addr + cpu * pcpu_unit_size + off, 0,
Tejun Heofbf59bc2009-02-20 16:29:08 +0900725 size);
726
727 return 0;
728err:
729 /* likely under heavy memory pressure, give memory back */
730 pcpu_depopulate_chunk(chunk, off, size, true);
731 return -ENOMEM;
732}
733
734static void free_pcpu_chunk(struct pcpu_chunk *chunk)
735{
736 if (!chunk)
737 return;
738 if (chunk->vm)
739 free_vm_area(chunk->vm);
Tejun Heo1880d932009-03-07 00:44:09 +0900740 pcpu_mem_free(chunk->map, chunk->map_alloc * sizeof(chunk->map[0]));
Tejun Heofbf59bc2009-02-20 16:29:08 +0900741 kfree(chunk);
742}
743
744static struct pcpu_chunk *alloc_pcpu_chunk(void)
745{
746 struct pcpu_chunk *chunk;
747
748 chunk = kzalloc(pcpu_chunk_struct_size, GFP_KERNEL);
749 if (!chunk)
750 return NULL;
751
Tejun Heo1880d932009-03-07 00:44:09 +0900752 chunk->map = pcpu_mem_alloc(PCPU_DFL_MAP_ALLOC * sizeof(chunk->map[0]));
Tejun Heofbf59bc2009-02-20 16:29:08 +0900753 chunk->map_alloc = PCPU_DFL_MAP_ALLOC;
754 chunk->map[chunk->map_used++] = pcpu_unit_size;
Tejun Heo3e24aa52009-03-06 14:33:59 +0900755 chunk->page = chunk->page_ar;
Tejun Heofbf59bc2009-02-20 16:29:08 +0900756
757 chunk->vm = get_vm_area(pcpu_chunk_size, GFP_KERNEL);
758 if (!chunk->vm) {
759 free_pcpu_chunk(chunk);
760 return NULL;
761 }
762
763 INIT_LIST_HEAD(&chunk->list);
764 chunk->free_size = pcpu_unit_size;
765 chunk->contig_hint = pcpu_unit_size;
766
767 return chunk;
768}
769
770/**
Tejun Heoedcb4632009-03-06 14:33:59 +0900771 * pcpu_alloc - the percpu allocator
Tejun Heocae3aeb2009-02-21 16:56:23 +0900772 * @size: size of area to allocate in bytes
Tejun Heofbf59bc2009-02-20 16:29:08 +0900773 * @align: alignment of area (max PAGE_SIZE)
Tejun Heoedcb4632009-03-06 14:33:59 +0900774 * @reserved: allocate from the reserved chunk if available
Tejun Heofbf59bc2009-02-20 16:29:08 +0900775 *
Tejun Heoccea34b2009-03-07 00:44:13 +0900776 * Allocate percpu area of @size bytes aligned at @align.
777 *
778 * CONTEXT:
779 * Does GFP_KERNEL allocation.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900780 *
781 * RETURNS:
782 * Percpu pointer to the allocated area on success, NULL on failure.
783 */
Tejun Heoedcb4632009-03-06 14:33:59 +0900784static void *pcpu_alloc(size_t size, size_t align, bool reserved)
Tejun Heofbf59bc2009-02-20 16:29:08 +0900785{
Tejun Heofbf59bc2009-02-20 16:29:08 +0900786 struct pcpu_chunk *chunk;
787 int slot, off;
788
Tejun Heo8d408b42009-02-24 11:57:21 +0900789 if (unlikely(!size || size > PCPU_MIN_UNIT_SIZE || align > PAGE_SIZE)) {
Tejun Heofbf59bc2009-02-20 16:29:08 +0900790 WARN(true, "illegal size (%zu) or align (%zu) for "
791 "percpu allocation\n", size, align);
792 return NULL;
793 }
794
Tejun Heoccea34b2009-03-07 00:44:13 +0900795 mutex_lock(&pcpu_alloc_mutex);
796 spin_lock_irq(&pcpu_lock);
Tejun Heofbf59bc2009-02-20 16:29:08 +0900797
Tejun Heoedcb4632009-03-06 14:33:59 +0900798 /* serve reserved allocations from the reserved chunk if available */
799 if (reserved && pcpu_reserved_chunk) {
800 chunk = pcpu_reserved_chunk;
Tejun Heo9f7dcf22009-03-07 00:44:09 +0900801 if (size > chunk->contig_hint ||
802 pcpu_extend_area_map(chunk) < 0)
Tejun Heoccea34b2009-03-07 00:44:13 +0900803 goto fail_unlock;
Tejun Heoedcb4632009-03-06 14:33:59 +0900804 off = pcpu_alloc_area(chunk, size, align);
805 if (off >= 0)
806 goto area_found;
Tejun Heoccea34b2009-03-07 00:44:13 +0900807 goto fail_unlock;
Tejun Heoedcb4632009-03-06 14:33:59 +0900808 }
809
Tejun Heoccea34b2009-03-07 00:44:13 +0900810restart:
Tejun Heoedcb4632009-03-06 14:33:59 +0900811 /* search through normal chunks */
Tejun Heofbf59bc2009-02-20 16:29:08 +0900812 for (slot = pcpu_size_to_slot(size); slot < pcpu_nr_slots; slot++) {
813 list_for_each_entry(chunk, &pcpu_slot[slot], list) {
814 if (size > chunk->contig_hint)
815 continue;
Tejun Heoccea34b2009-03-07 00:44:13 +0900816
817 switch (pcpu_extend_area_map(chunk)) {
818 case 0:
819 break;
820 case 1:
821 goto restart; /* pcpu_lock dropped, restart */
822 default:
823 goto fail_unlock;
824 }
825
Tejun Heofbf59bc2009-02-20 16:29:08 +0900826 off = pcpu_alloc_area(chunk, size, align);
827 if (off >= 0)
828 goto area_found;
Tejun Heofbf59bc2009-02-20 16:29:08 +0900829 }
830 }
831
832 /* hmmm... no space left, create a new chunk */
Tejun Heoccea34b2009-03-07 00:44:13 +0900833 spin_unlock_irq(&pcpu_lock);
834
Tejun Heofbf59bc2009-02-20 16:29:08 +0900835 chunk = alloc_pcpu_chunk();
836 if (!chunk)
Tejun Heoccea34b2009-03-07 00:44:13 +0900837 goto fail_unlock_mutex;
838
839 spin_lock_irq(&pcpu_lock);
Tejun Heofbf59bc2009-02-20 16:29:08 +0900840 pcpu_chunk_relocate(chunk, -1);
Tejun Heoccea34b2009-03-07 00:44:13 +0900841 goto restart;
Tejun Heofbf59bc2009-02-20 16:29:08 +0900842
843area_found:
Tejun Heoccea34b2009-03-07 00:44:13 +0900844 spin_unlock_irq(&pcpu_lock);
845
Tejun Heofbf59bc2009-02-20 16:29:08 +0900846 /* populate, map and clear the area */
847 if (pcpu_populate_chunk(chunk, off, size)) {
Tejun Heoccea34b2009-03-07 00:44:13 +0900848 spin_lock_irq(&pcpu_lock);
Tejun Heofbf59bc2009-02-20 16:29:08 +0900849 pcpu_free_area(chunk, off);
Tejun Heoccea34b2009-03-07 00:44:13 +0900850 goto fail_unlock;
Tejun Heofbf59bc2009-02-20 16:29:08 +0900851 }
852
Tejun Heoccea34b2009-03-07 00:44:13 +0900853 mutex_unlock(&pcpu_alloc_mutex);
854
855 return __addr_to_pcpu_ptr(chunk->vm->addr + off);
856
857fail_unlock:
858 spin_unlock_irq(&pcpu_lock);
859fail_unlock_mutex:
860 mutex_unlock(&pcpu_alloc_mutex);
861 return NULL;
Tejun Heofbf59bc2009-02-20 16:29:08 +0900862}
Tejun Heoedcb4632009-03-06 14:33:59 +0900863
864/**
865 * __alloc_percpu - allocate dynamic percpu area
866 * @size: size of area to allocate in bytes
867 * @align: alignment of area (max PAGE_SIZE)
868 *
869 * Allocate percpu area of @size bytes aligned at @align. Might
870 * sleep. Might trigger writeouts.
871 *
Tejun Heoccea34b2009-03-07 00:44:13 +0900872 * CONTEXT:
873 * Does GFP_KERNEL allocation.
874 *
Tejun Heoedcb4632009-03-06 14:33:59 +0900875 * RETURNS:
876 * Percpu pointer to the allocated area on success, NULL on failure.
877 */
878void *__alloc_percpu(size_t size, size_t align)
879{
880 return pcpu_alloc(size, align, false);
881}
Tejun Heofbf59bc2009-02-20 16:29:08 +0900882EXPORT_SYMBOL_GPL(__alloc_percpu);
883
Tejun Heoedcb4632009-03-06 14:33:59 +0900884/**
885 * __alloc_reserved_percpu - allocate reserved percpu area
886 * @size: size of area to allocate in bytes
887 * @align: alignment of area (max PAGE_SIZE)
888 *
889 * Allocate percpu area of @size bytes aligned at @align from reserved
890 * percpu area if arch has set it up; otherwise, allocation is served
891 * from the same dynamic area. Might sleep. Might trigger writeouts.
892 *
Tejun Heoccea34b2009-03-07 00:44:13 +0900893 * CONTEXT:
894 * Does GFP_KERNEL allocation.
895 *
Tejun Heoedcb4632009-03-06 14:33:59 +0900896 * RETURNS:
897 * Percpu pointer to the allocated area on success, NULL on failure.
898 */
899void *__alloc_reserved_percpu(size_t size, size_t align)
900{
901 return pcpu_alloc(size, align, true);
902}
903
Tejun Heoa56dbdd2009-03-07 00:44:11 +0900904/**
905 * pcpu_reclaim - reclaim fully free chunks, workqueue function
906 * @work: unused
907 *
908 * Reclaim all fully free chunks except for the first one.
Tejun Heoccea34b2009-03-07 00:44:13 +0900909 *
910 * CONTEXT:
911 * workqueue context.
Tejun Heoa56dbdd2009-03-07 00:44:11 +0900912 */
913static void pcpu_reclaim(struct work_struct *work)
Tejun Heofbf59bc2009-02-20 16:29:08 +0900914{
Tejun Heoa56dbdd2009-03-07 00:44:11 +0900915 LIST_HEAD(todo);
916 struct list_head *head = &pcpu_slot[pcpu_nr_slots - 1];
917 struct pcpu_chunk *chunk, *next;
918
Tejun Heoccea34b2009-03-07 00:44:13 +0900919 mutex_lock(&pcpu_alloc_mutex);
920 spin_lock_irq(&pcpu_lock);
Tejun Heoa56dbdd2009-03-07 00:44:11 +0900921
922 list_for_each_entry_safe(chunk, next, head, list) {
923 WARN_ON(chunk->immutable);
924
925 /* spare the first one */
926 if (chunk == list_first_entry(head, struct pcpu_chunk, list))
927 continue;
928
Tejun Heoa56dbdd2009-03-07 00:44:11 +0900929 list_move(&chunk->list, &todo);
930 }
931
Tejun Heoccea34b2009-03-07 00:44:13 +0900932 spin_unlock_irq(&pcpu_lock);
933 mutex_unlock(&pcpu_alloc_mutex);
Tejun Heoa56dbdd2009-03-07 00:44:11 +0900934
935 list_for_each_entry_safe(chunk, next, &todo, list) {
936 pcpu_depopulate_chunk(chunk, 0, pcpu_unit_size, false);
937 free_pcpu_chunk(chunk);
938 }
Tejun Heofbf59bc2009-02-20 16:29:08 +0900939}
940
941/**
942 * free_percpu - free percpu area
943 * @ptr: pointer to area to free
944 *
Tejun Heoccea34b2009-03-07 00:44:13 +0900945 * Free percpu area @ptr.
946 *
947 * CONTEXT:
948 * Can be called from atomic context.
Tejun Heofbf59bc2009-02-20 16:29:08 +0900949 */
950void free_percpu(void *ptr)
951{
952 void *addr = __pcpu_ptr_to_addr(ptr);
953 struct pcpu_chunk *chunk;
Tejun Heoccea34b2009-03-07 00:44:13 +0900954 unsigned long flags;
Tejun Heofbf59bc2009-02-20 16:29:08 +0900955 int off;
956
957 if (!ptr)
958 return;
959
Tejun Heoccea34b2009-03-07 00:44:13 +0900960 spin_lock_irqsave(&pcpu_lock, flags);
Tejun Heofbf59bc2009-02-20 16:29:08 +0900961
962 chunk = pcpu_chunk_addr_search(addr);
963 off = addr - chunk->vm->addr;
964
965 pcpu_free_area(chunk, off);
966
Tejun Heoa56dbdd2009-03-07 00:44:11 +0900967 /* if there are more than one fully free chunks, wake up grim reaper */
Tejun Heofbf59bc2009-02-20 16:29:08 +0900968 if (chunk->free_size == pcpu_unit_size) {
969 struct pcpu_chunk *pos;
970
Tejun Heoa56dbdd2009-03-07 00:44:11 +0900971 list_for_each_entry(pos, &pcpu_slot[pcpu_nr_slots - 1], list)
Tejun Heofbf59bc2009-02-20 16:29:08 +0900972 if (pos != chunk) {
Tejun Heoa56dbdd2009-03-07 00:44:11 +0900973 schedule_work(&pcpu_reclaim_work);
Tejun Heofbf59bc2009-02-20 16:29:08 +0900974 break;
975 }
976 }
977
Tejun Heoccea34b2009-03-07 00:44:13 +0900978 spin_unlock_irqrestore(&pcpu_lock, flags);
Tejun Heofbf59bc2009-02-20 16:29:08 +0900979}
980EXPORT_SYMBOL_GPL(free_percpu);
981
982/**
Tejun Heo8d408b42009-02-24 11:57:21 +0900983 * pcpu_setup_first_chunk - initialize the first percpu chunk
984 * @get_page_fn: callback to fetch page pointer
985 * @static_size: the size of static percpu area in bytes
Tejun Heoedcb4632009-03-06 14:33:59 +0900986 * @reserved_size: the size of reserved percpu area in bytes
Tejun Heocafe8812009-03-06 14:33:59 +0900987 * @dyn_size: free size for dynamic allocation in bytes, -1 for auto
Tejun Heo6074d5b2009-03-10 16:27:48 +0900988 * @unit_size: unit size in bytes, must be multiple of PAGE_SIZE, -1 for auto
Tejun Heo8d408b42009-02-24 11:57:21 +0900989 * @base_addr: mapped address, NULL for auto
990 * @populate_pte_fn: callback to allocate pagetable, NULL if unnecessary
Tejun Heofbf59bc2009-02-20 16:29:08 +0900991 *
Tejun Heo8d408b42009-02-24 11:57:21 +0900992 * Initialize the first percpu chunk which contains the kernel static
993 * perpcu area. This function is to be called from arch percpu area
994 * setup path. The first two parameters are mandatory. The rest are
995 * optional.
996 *
997 * @get_page_fn() should return pointer to percpu page given cpu
998 * number and page number. It should at least return enough pages to
999 * cover the static area. The returned pages for static area should
1000 * have been initialized with valid data. If @unit_size is specified,
1001 * it can also return pages after the static area. NULL return
1002 * indicates end of pages for the cpu. Note that @get_page_fn() must
1003 * return the same number of pages for all cpus.
1004 *
Tejun Heoedcb4632009-03-06 14:33:59 +09001005 * @reserved_size, if non-zero, specifies the amount of bytes to
1006 * reserve after the static area in the first chunk. This reserves
1007 * the first chunk such that it's available only through reserved
1008 * percpu allocation. This is primarily used to serve module percpu
1009 * static areas on architectures where the addressing model has
1010 * limited offset range for symbol relocations to guarantee module
1011 * percpu symbols fall inside the relocatable range.
1012 *
Tejun Heo6074d5b2009-03-10 16:27:48 +09001013 * @dyn_size, if non-negative, determines the number of bytes
1014 * available for dynamic allocation in the first chunk. Specifying
1015 * non-negative value makes percpu leave alone the area beyond
1016 * @static_size + @reserved_size + @dyn_size.
1017 *
Tejun Heocafe8812009-03-06 14:33:59 +09001018 * @unit_size, if non-negative, specifies unit size and must be
1019 * aligned to PAGE_SIZE and equal to or larger than @static_size +
Tejun Heo6074d5b2009-03-10 16:27:48 +09001020 * @reserved_size + if non-negative, @dyn_size.
Tejun Heo8d408b42009-02-24 11:57:21 +09001021 *
1022 * Non-null @base_addr means that the caller already allocated virtual
1023 * region for the first chunk and mapped it. percpu must not mess
1024 * with the chunk. Note that @base_addr with 0 @unit_size or non-NULL
1025 * @populate_pte_fn doesn't make any sense.
1026 *
1027 * @populate_pte_fn is used to populate the pagetable. NULL means the
1028 * caller already populated the pagetable.
Tejun Heofbf59bc2009-02-20 16:29:08 +09001029 *
Tejun Heoedcb4632009-03-06 14:33:59 +09001030 * If the first chunk ends up with both reserved and dynamic areas, it
1031 * is served by two chunks - one to serve the core static and reserved
1032 * areas and the other for the dynamic area. They share the same vm
1033 * and page map but uses different area allocation map to stay away
1034 * from each other. The latter chunk is circulated in the chunk slots
1035 * and available for dynamic allocation like any other chunks.
1036 *
Tejun Heofbf59bc2009-02-20 16:29:08 +09001037 * RETURNS:
1038 * The determined pcpu_unit_size which can be used to initialize
1039 * percpu access.
1040 */
Tejun Heo8d408b42009-02-24 11:57:21 +09001041size_t __init pcpu_setup_first_chunk(pcpu_get_page_fn_t get_page_fn,
Tejun Heoedcb4632009-03-06 14:33:59 +09001042 size_t static_size, size_t reserved_size,
Tejun Heo6074d5b2009-03-10 16:27:48 +09001043 ssize_t dyn_size, ssize_t unit_size,
Tejun Heocafe8812009-03-06 14:33:59 +09001044 void *base_addr,
Tejun Heod4b95f82009-07-04 08:10:59 +09001045 pcpu_fc_populate_pte_fn_t populate_pte_fn)
Tejun Heofbf59bc2009-02-20 16:29:08 +09001046{
Tejun Heo2441d152009-03-06 14:33:59 +09001047 static struct vm_struct first_vm;
Tejun Heoedcb4632009-03-06 14:33:59 +09001048 static int smap[2], dmap[2];
Tejun Heo6074d5b2009-03-10 16:27:48 +09001049 size_t size_sum = static_size + reserved_size +
1050 (dyn_size >= 0 ? dyn_size : 0);
Tejun Heoedcb4632009-03-06 14:33:59 +09001051 struct pcpu_chunk *schunk, *dchunk = NULL;
Tejun Heofbf59bc2009-02-20 16:29:08 +09001052 unsigned int cpu;
Tejun Heo8d408b42009-02-24 11:57:21 +09001053 int nr_pages;
Tejun Heofbf59bc2009-02-20 16:29:08 +09001054 int err, i;
1055
Tejun Heo8d408b42009-02-24 11:57:21 +09001056 /* santiy checks */
Tejun Heoedcb4632009-03-06 14:33:59 +09001057 BUILD_BUG_ON(ARRAY_SIZE(smap) >= PCPU_DFL_MAP_ALLOC ||
1058 ARRAY_SIZE(dmap) >= PCPU_DFL_MAP_ALLOC);
Tejun Heo8d408b42009-02-24 11:57:21 +09001059 BUG_ON(!static_size);
Tejun Heocafe8812009-03-06 14:33:59 +09001060 if (unit_size >= 0) {
Tejun Heo6074d5b2009-03-10 16:27:48 +09001061 BUG_ON(unit_size < size_sum);
Tejun Heocafe8812009-03-06 14:33:59 +09001062 BUG_ON(unit_size & ~PAGE_MASK);
Tejun Heo6074d5b2009-03-10 16:27:48 +09001063 BUG_ON(unit_size < PCPU_MIN_UNIT_SIZE);
1064 } else
Tejun Heocafe8812009-03-06 14:33:59 +09001065 BUG_ON(base_addr);
Tejun Heo8d408b42009-02-24 11:57:21 +09001066 BUG_ON(base_addr && populate_pte_fn);
Tejun Heofbf59bc2009-02-20 16:29:08 +09001067
Tejun Heocafe8812009-03-06 14:33:59 +09001068 if (unit_size >= 0)
Tejun Heo8d408b42009-02-24 11:57:21 +09001069 pcpu_unit_pages = unit_size >> PAGE_SHIFT;
1070 else
1071 pcpu_unit_pages = max_t(int, PCPU_MIN_UNIT_SIZE >> PAGE_SHIFT,
Tejun Heo6074d5b2009-03-10 16:27:48 +09001072 PFN_UP(size_sum));
Tejun Heo8d408b42009-02-24 11:57:21 +09001073
Tejun Heod9b55ee2009-02-24 11:57:21 +09001074 pcpu_unit_size = pcpu_unit_pages << PAGE_SHIFT;
Tejun Heofbf59bc2009-02-20 16:29:08 +09001075 pcpu_chunk_size = num_possible_cpus() * pcpu_unit_size;
Tejun Heofbf59bc2009-02-20 16:29:08 +09001076 pcpu_chunk_struct_size = sizeof(struct pcpu_chunk)
Tejun Heocb83b422009-02-24 11:57:20 +09001077 + num_possible_cpus() * pcpu_unit_pages * sizeof(struct page *);
Tejun Heofbf59bc2009-02-20 16:29:08 +09001078
Tejun Heocafe8812009-03-06 14:33:59 +09001079 if (dyn_size < 0)
Tejun Heoedcb4632009-03-06 14:33:59 +09001080 dyn_size = pcpu_unit_size - static_size - reserved_size;
Tejun Heocafe8812009-03-06 14:33:59 +09001081
Tejun Heod9b55ee2009-02-24 11:57:21 +09001082 /*
1083 * Allocate chunk slots. The additional last slot is for
1084 * empty chunks.
1085 */
1086 pcpu_nr_slots = __pcpu_size_to_slot(pcpu_unit_size) + 2;
Tejun Heofbf59bc2009-02-20 16:29:08 +09001087 pcpu_slot = alloc_bootmem(pcpu_nr_slots * sizeof(pcpu_slot[0]));
1088 for (i = 0; i < pcpu_nr_slots; i++)
1089 INIT_LIST_HEAD(&pcpu_slot[i]);
1090
Tejun Heoedcb4632009-03-06 14:33:59 +09001091 /*
1092 * Initialize static chunk. If reserved_size is zero, the
1093 * static chunk covers static area + dynamic allocation area
1094 * in the first chunk. If reserved_size is not zero, it
1095 * covers static area + reserved area (mostly used for module
1096 * static percpu allocation).
1097 */
Tejun Heo2441d152009-03-06 14:33:59 +09001098 schunk = alloc_bootmem(pcpu_chunk_struct_size);
1099 INIT_LIST_HEAD(&schunk->list);
1100 schunk->vm = &first_vm;
Tejun Heo61ace7f2009-03-06 14:33:59 +09001101 schunk->map = smap;
1102 schunk->map_alloc = ARRAY_SIZE(smap);
Tejun Heo3e24aa52009-03-06 14:33:59 +09001103 schunk->page = schunk->page_ar;
Tejun Heoedcb4632009-03-06 14:33:59 +09001104
1105 if (reserved_size) {
1106 schunk->free_size = reserved_size;
Tejun Heoae9e6bc92009-04-02 13:19:54 +09001107 pcpu_reserved_chunk = schunk;
1108 pcpu_reserved_chunk_limit = static_size + reserved_size;
Tejun Heoedcb4632009-03-06 14:33:59 +09001109 } else {
1110 schunk->free_size = dyn_size;
1111 dyn_size = 0; /* dynamic area covered */
1112 }
Tejun Heo2441d152009-03-06 14:33:59 +09001113 schunk->contig_hint = schunk->free_size;
Tejun Heofbf59bc2009-02-20 16:29:08 +09001114
Tejun Heo61ace7f2009-03-06 14:33:59 +09001115 schunk->map[schunk->map_used++] = -static_size;
1116 if (schunk->free_size)
1117 schunk->map[schunk->map_used++] = schunk->free_size;
1118
Tejun Heoedcb4632009-03-06 14:33:59 +09001119 /* init dynamic chunk if necessary */
1120 if (dyn_size) {
1121 dchunk = alloc_bootmem(sizeof(struct pcpu_chunk));
1122 INIT_LIST_HEAD(&dchunk->list);
1123 dchunk->vm = &first_vm;
1124 dchunk->map = dmap;
1125 dchunk->map_alloc = ARRAY_SIZE(dmap);
1126 dchunk->page = schunk->page_ar; /* share page map with schunk */
1127
1128 dchunk->contig_hint = dchunk->free_size = dyn_size;
1129 dchunk->map[dchunk->map_used++] = -pcpu_reserved_chunk_limit;
1130 dchunk->map[dchunk->map_used++] = dchunk->free_size;
1131 }
1132
Tejun Heo8d408b42009-02-24 11:57:21 +09001133 /* allocate vm address */
Tejun Heo2441d152009-03-06 14:33:59 +09001134 first_vm.flags = VM_ALLOC;
1135 first_vm.size = pcpu_chunk_size;
Tejun Heo8d408b42009-02-24 11:57:21 +09001136
1137 if (!base_addr)
Tejun Heo2441d152009-03-06 14:33:59 +09001138 vm_area_register_early(&first_vm, PAGE_SIZE);
Tejun Heo8d408b42009-02-24 11:57:21 +09001139 else {
1140 /*
1141 * Pages already mapped. No need to remap into
Tejun Heoedcb4632009-03-06 14:33:59 +09001142 * vmalloc area. In this case the first chunks can't
1143 * be mapped or unmapped by percpu and are marked
Tejun Heo8d408b42009-02-24 11:57:21 +09001144 * immutable.
1145 */
Tejun Heo2441d152009-03-06 14:33:59 +09001146 first_vm.addr = base_addr;
1147 schunk->immutable = true;
Tejun Heoedcb4632009-03-06 14:33:59 +09001148 if (dchunk)
1149 dchunk->immutable = true;
Tejun Heofbf59bc2009-02-20 16:29:08 +09001150 }
1151
Tejun Heo8d408b42009-02-24 11:57:21 +09001152 /* assign pages */
1153 nr_pages = -1;
1154 for_each_possible_cpu(cpu) {
1155 for (i = 0; i < pcpu_unit_pages; i++) {
1156 struct page *page = get_page_fn(cpu, i);
1157
1158 if (!page)
1159 break;
Tejun Heo2441d152009-03-06 14:33:59 +09001160 *pcpu_chunk_pagep(schunk, cpu, i) = page;
Tejun Heo8d408b42009-02-24 11:57:21 +09001161 }
1162
Tejun Heo61ace7f2009-03-06 14:33:59 +09001163 BUG_ON(i < PFN_UP(static_size));
Tejun Heo8d408b42009-02-24 11:57:21 +09001164
1165 if (nr_pages < 0)
1166 nr_pages = i;
1167 else
1168 BUG_ON(nr_pages != i);
1169 }
1170
1171 /* map them */
1172 if (populate_pte_fn) {
1173 for_each_possible_cpu(cpu)
1174 for (i = 0; i < nr_pages; i++)
Tejun Heo2441d152009-03-06 14:33:59 +09001175 populate_pte_fn(pcpu_chunk_addr(schunk,
Tejun Heo8d408b42009-02-24 11:57:21 +09001176 cpu, i));
1177
Tejun Heo2441d152009-03-06 14:33:59 +09001178 err = pcpu_map(schunk, 0, nr_pages);
Tejun Heo8d408b42009-02-24 11:57:21 +09001179 if (err)
1180 panic("failed to setup static percpu area, err=%d\n",
1181 err);
1182 }
Tejun Heofbf59bc2009-02-20 16:29:08 +09001183
Tejun Heo2441d152009-03-06 14:33:59 +09001184 /* link the first chunk in */
Tejun Heoae9e6bc92009-04-02 13:19:54 +09001185 pcpu_first_chunk = dchunk ?: schunk;
1186 pcpu_chunk_relocate(pcpu_first_chunk, -1);
Tejun Heofbf59bc2009-02-20 16:29:08 +09001187
1188 /* we're done */
Tejun Heo2441d152009-03-06 14:33:59 +09001189 pcpu_base_addr = (void *)pcpu_chunk_addr(schunk, 0, 0);
Tejun Heofbf59bc2009-02-20 16:29:08 +09001190 return pcpu_unit_size;
1191}
Tejun Heo66c3a752009-03-10 16:27:48 +09001192
1193/*
1194 * Embedding first chunk setup helper.
1195 */
1196static void *pcpue_ptr __initdata;
1197static size_t pcpue_size __initdata;
1198static size_t pcpue_unit_size __initdata;
1199
1200static struct page * __init pcpue_get_page(unsigned int cpu, int pageno)
1201{
1202 size_t off = (size_t)pageno << PAGE_SHIFT;
1203
1204 if (off >= pcpue_size)
1205 return NULL;
1206
1207 return virt_to_page(pcpue_ptr + cpu * pcpue_unit_size + off);
1208}
1209
1210/**
1211 * pcpu_embed_first_chunk - embed the first percpu chunk into bootmem
1212 * @static_size: the size of static percpu area in bytes
1213 * @reserved_size: the size of reserved percpu area in bytes
1214 * @dyn_size: free size for dynamic allocation in bytes, -1 for auto
Tejun Heo66c3a752009-03-10 16:27:48 +09001215 *
1216 * This is a helper to ease setting up embedded first percpu chunk and
1217 * can be called where pcpu_setup_first_chunk() is expected.
1218 *
1219 * If this function is used to setup the first chunk, it is allocated
1220 * as a contiguous area using bootmem allocator and used as-is without
1221 * being mapped into vmalloc area. This enables the first chunk to
1222 * piggy back on the linear physical mapping which often uses larger
1223 * page size.
1224 *
1225 * When @dyn_size is positive, dynamic area might be larger than
Tejun Heo788e5ab2009-07-04 08:10:58 +09001226 * specified to fill page alignment. When @dyn_size is auto,
1227 * @dyn_size is just big enough to fill page alignment after static
1228 * and reserved areas.
Tejun Heo66c3a752009-03-10 16:27:48 +09001229 *
1230 * If the needed size is smaller than the minimum or specified unit
1231 * size, the leftover is returned to the bootmem allocator.
1232 *
1233 * RETURNS:
1234 * The determined pcpu_unit_size which can be used to initialize
1235 * percpu access on success, -errno on failure.
1236 */
1237ssize_t __init pcpu_embed_first_chunk(size_t static_size, size_t reserved_size,
Tejun Heo788e5ab2009-07-04 08:10:58 +09001238 ssize_t dyn_size)
Tejun Heo66c3a752009-03-10 16:27:48 +09001239{
Tejun Heofa8a7092009-06-22 11:56:24 +09001240 size_t chunk_size;
Tejun Heo66c3a752009-03-10 16:27:48 +09001241 unsigned int cpu;
1242
1243 /* determine parameters and allocate */
1244 pcpue_size = PFN_ALIGN(static_size + reserved_size +
1245 (dyn_size >= 0 ? dyn_size : 0));
1246 if (dyn_size != 0)
1247 dyn_size = pcpue_size - static_size - reserved_size;
1248
Tejun Heo788e5ab2009-07-04 08:10:58 +09001249 pcpue_unit_size = max_t(size_t, pcpue_size, PCPU_MIN_UNIT_SIZE);
Tejun Heofa8a7092009-06-22 11:56:24 +09001250 chunk_size = pcpue_unit_size * num_possible_cpus();
1251
1252 pcpue_ptr = __alloc_bootmem_nopanic(chunk_size, PAGE_SIZE,
1253 __pa(MAX_DMA_ADDRESS));
1254 if (!pcpue_ptr) {
1255 pr_warning("PERCPU: failed to allocate %zu bytes for "
1256 "embedding\n", chunk_size);
Tejun Heo66c3a752009-03-10 16:27:48 +09001257 return -ENOMEM;
Tejun Heofa8a7092009-06-22 11:56:24 +09001258 }
Tejun Heo66c3a752009-03-10 16:27:48 +09001259
1260 /* return the leftover and copy */
1261 for_each_possible_cpu(cpu) {
1262 void *ptr = pcpue_ptr + cpu * pcpue_unit_size;
1263
1264 free_bootmem(__pa(ptr + pcpue_size),
1265 pcpue_unit_size - pcpue_size);
1266 memcpy(ptr, __per_cpu_load, static_size);
1267 }
1268
1269 /* we're ready, commit */
1270 pr_info("PERCPU: Embedded %zu pages at %p, static data %zu bytes\n",
1271 pcpue_size >> PAGE_SHIFT, pcpue_ptr, static_size);
1272
1273 return pcpu_setup_first_chunk(pcpue_get_page, static_size,
1274 reserved_size, dyn_size,
1275 pcpue_unit_size, pcpue_ptr, NULL);
1276}
Tejun Heoe74e3962009-03-30 19:07:44 +09001277
1278/*
Tejun Heod4b95f82009-07-04 08:10:59 +09001279 * 4k page first chunk setup helper.
1280 */
1281static struct page **pcpu4k_pages __initdata;
Tejun Heo8f05a6a2009-07-04 08:10:59 +09001282static int pcpu4k_unit_pages __initdata;
Tejun Heod4b95f82009-07-04 08:10:59 +09001283
1284static struct page * __init pcpu4k_get_page(unsigned int cpu, int pageno)
1285{
Tejun Heo8f05a6a2009-07-04 08:10:59 +09001286 if (pageno < pcpu4k_unit_pages)
1287 return pcpu4k_pages[cpu * pcpu4k_unit_pages + pageno];
Tejun Heod4b95f82009-07-04 08:10:59 +09001288 return NULL;
1289}
1290
1291/**
1292 * pcpu_4k_first_chunk - map the first chunk using PAGE_SIZE pages
1293 * @static_size: the size of static percpu area in bytes
1294 * @reserved_size: the size of reserved percpu area in bytes
1295 * @alloc_fn: function to allocate percpu page, always called with PAGE_SIZE
1296 * @free_fn: funtion to free percpu page, always called with PAGE_SIZE
1297 * @populate_pte_fn: function to populate pte
1298 *
1299 * This is a helper to ease setting up embedded first percpu chunk and
1300 * can be called where pcpu_setup_first_chunk() is expected.
1301 *
1302 * This is the basic allocator. Static percpu area is allocated
1303 * page-by-page into vmalloc area.
1304 *
1305 * RETURNS:
1306 * The determined pcpu_unit_size which can be used to initialize
1307 * percpu access on success, -errno on failure.
1308 */
1309ssize_t __init pcpu_4k_first_chunk(size_t static_size, size_t reserved_size,
1310 pcpu_fc_alloc_fn_t alloc_fn,
1311 pcpu_fc_free_fn_t free_fn,
1312 pcpu_fc_populate_pte_fn_t populate_pte_fn)
1313{
Tejun Heo8f05a6a2009-07-04 08:10:59 +09001314 static struct vm_struct vm;
Tejun Heod4b95f82009-07-04 08:10:59 +09001315 size_t pages_size;
1316 unsigned int cpu;
1317 int i, j;
1318 ssize_t ret;
1319
Tejun Heo8f05a6a2009-07-04 08:10:59 +09001320 pcpu4k_unit_pages = PFN_UP(max_t(size_t, static_size + reserved_size,
1321 PCPU_MIN_UNIT_SIZE));
Tejun Heod4b95f82009-07-04 08:10:59 +09001322
1323 /* unaligned allocations can't be freed, round up to page size */
Tejun Heo8f05a6a2009-07-04 08:10:59 +09001324 pages_size = PFN_ALIGN(pcpu4k_unit_pages * num_possible_cpus() *
Tejun Heod4b95f82009-07-04 08:10:59 +09001325 sizeof(pcpu4k_pages[0]));
1326 pcpu4k_pages = alloc_bootmem(pages_size);
1327
Tejun Heo8f05a6a2009-07-04 08:10:59 +09001328 /* allocate pages */
Tejun Heod4b95f82009-07-04 08:10:59 +09001329 j = 0;
1330 for_each_possible_cpu(cpu)
Tejun Heo8f05a6a2009-07-04 08:10:59 +09001331 for (i = 0; i < pcpu4k_unit_pages; i++) {
Tejun Heod4b95f82009-07-04 08:10:59 +09001332 void *ptr;
1333
1334 ptr = alloc_fn(cpu, PAGE_SIZE);
1335 if (!ptr) {
1336 pr_warning("PERCPU: failed to allocate "
1337 "4k page for cpu%u\n", cpu);
1338 goto enomem;
1339 }
Tejun Heod4b95f82009-07-04 08:10:59 +09001340 pcpu4k_pages[j++] = virt_to_page(ptr);
1341 }
1342
Tejun Heo8f05a6a2009-07-04 08:10:59 +09001343 /* allocate vm area, map the pages and copy static data */
1344 vm.flags = VM_ALLOC;
1345 vm.size = num_possible_cpus() * pcpu4k_unit_pages << PAGE_SHIFT;
1346 vm_area_register_early(&vm, PAGE_SIZE);
1347
1348 for_each_possible_cpu(cpu) {
1349 unsigned long unit_addr = (unsigned long)vm.addr +
1350 (cpu * pcpu4k_unit_pages << PAGE_SHIFT);
1351
1352 for (i = 0; i < pcpu4k_unit_pages; i++)
1353 populate_pte_fn(unit_addr + (i << PAGE_SHIFT));
1354
1355 /* pte already populated, the following shouldn't fail */
1356 ret = __pcpu_map_pages(unit_addr,
1357 &pcpu4k_pages[cpu * pcpu4k_unit_pages],
1358 pcpu4k_unit_pages);
1359 if (ret < 0)
1360 panic("failed to map percpu area, err=%zd\n", ret);
1361
1362 /*
1363 * FIXME: Archs with virtual cache should flush local
1364 * cache for the linear mapping here - something
1365 * equivalent to flush_cache_vmap() on the local cpu.
1366 * flush_cache_vmap() can't be used as most supporting
1367 * data structures are not set up yet.
1368 */
1369
1370 /* copy static data */
1371 memcpy((void *)unit_addr, __per_cpu_load, static_size);
1372 }
1373
Tejun Heod4b95f82009-07-04 08:10:59 +09001374 /* we're ready, commit */
Tejun Heo8f05a6a2009-07-04 08:10:59 +09001375 pr_info("PERCPU: %d 4k pages per cpu, static data %zu bytes\n",
1376 pcpu4k_unit_pages, static_size);
Tejun Heod4b95f82009-07-04 08:10:59 +09001377
1378 ret = pcpu_setup_first_chunk(pcpu4k_get_page, static_size,
1379 reserved_size, -1,
Tejun Heo8f05a6a2009-07-04 08:10:59 +09001380 pcpu4k_unit_pages << PAGE_SHIFT, vm.addr,
1381 NULL);
Tejun Heod4b95f82009-07-04 08:10:59 +09001382 goto out_free_ar;
1383
1384enomem:
1385 while (--j >= 0)
1386 free_fn(page_address(pcpu4k_pages[j]), PAGE_SIZE);
1387 ret = -ENOMEM;
1388out_free_ar:
1389 free_bootmem(__pa(pcpu4k_pages), pages_size);
1390 return ret;
1391}
1392
1393/*
Tejun Heoe74e3962009-03-30 19:07:44 +09001394 * Generic percpu area setup.
1395 *
1396 * The embedding helper is used because its behavior closely resembles
1397 * the original non-dynamic generic percpu area setup. This is
1398 * important because many archs have addressing restrictions and might
1399 * fail if the percpu area is located far away from the previous
1400 * location. As an added bonus, in non-NUMA cases, embedding is
1401 * generally a good idea TLB-wise because percpu area can piggy back
1402 * on the physical linear memory mapping which uses large page
1403 * mappings on applicable archs.
1404 */
1405#ifndef CONFIG_HAVE_SETUP_PER_CPU_AREA
1406unsigned long __per_cpu_offset[NR_CPUS] __read_mostly;
1407EXPORT_SYMBOL(__per_cpu_offset);
1408
1409void __init setup_per_cpu_areas(void)
1410{
1411 size_t static_size = __per_cpu_end - __per_cpu_start;
1412 ssize_t unit_size;
1413 unsigned long delta;
1414 unsigned int cpu;
1415
1416 /*
1417 * Always reserve area for module percpu variables. That's
1418 * what the legacy allocator did.
1419 */
1420 unit_size = pcpu_embed_first_chunk(static_size, PERCPU_MODULE_RESERVE,
Tejun Heo788e5ab2009-07-04 08:10:58 +09001421 PERCPU_DYNAMIC_RESERVE);
Tejun Heoe74e3962009-03-30 19:07:44 +09001422 if (unit_size < 0)
1423 panic("Failed to initialized percpu areas.");
1424
1425 delta = (unsigned long)pcpu_base_addr - (unsigned long)__per_cpu_start;
1426 for_each_possible_cpu(cpu)
1427 __per_cpu_offset[cpu] = delta + cpu * unit_size;
1428}
1429#endif /* CONFIG_HAVE_SETUP_PER_CPU_AREA */