Merge tag 'asoc-fix-v4.8-rc4' of git://git.kernel.org/pub/scm/linux/kernel/git/brooni...
[deliverable/linux.git] / kernel / power / snapshot.c
CommitLineData
25761b6e 1/*
96bc7aec 2 * linux/kernel/power/snapshot.c
25761b6e 3 *
8357376d 4 * This file provides system snapshot/restore functionality for swsusp.
25761b6e 5 *
a2531293 6 * Copyright (C) 1998-2005 Pavel Machek <pavel@ucw.cz>
8357376d 7 * Copyright (C) 2006 Rafael J. Wysocki <rjw@sisk.pl>
25761b6e 8 *
8357376d 9 * This file is released under the GPLv2.
25761b6e
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10 *
11 */
12
f577eb30 13#include <linux/version.h>
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14#include <linux/module.h>
15#include <linux/mm.h>
16#include <linux/suspend.h>
25761b6e 17#include <linux/delay.h>
25761b6e 18#include <linux/bitops.h>
25761b6e 19#include <linux/spinlock.h>
25761b6e 20#include <linux/kernel.h>
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21#include <linux/pm.h>
22#include <linux/device.h>
74dfd666 23#include <linux/init.h>
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24#include <linux/bootmem.h>
25#include <linux/syscalls.h>
26#include <linux/console.h>
27#include <linux/highmem.h>
846705de 28#include <linux/list.h>
5a0e3ad6 29#include <linux/slab.h>
52f5684c 30#include <linux/compiler.h>
db597605 31#include <linux/ktime.h>
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32
33#include <asm/uaccess.h>
34#include <asm/mmu_context.h>
35#include <asm/pgtable.h>
36#include <asm/tlbflush.h>
37#include <asm/io.h>
38
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39#include "power.h"
40
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41#ifdef CONFIG_DEBUG_RODATA
42static bool hibernate_restore_protection;
43static bool hibernate_restore_protection_active;
44
45void enable_restore_image_protection(void)
46{
47 hibernate_restore_protection = true;
48}
49
50static inline void hibernate_restore_protection_begin(void)
51{
52 hibernate_restore_protection_active = hibernate_restore_protection;
53}
54
55static inline void hibernate_restore_protection_end(void)
56{
57 hibernate_restore_protection_active = false;
58}
59
60static inline void hibernate_restore_protect_page(void *page_address)
61{
62 if (hibernate_restore_protection_active)
63 set_memory_ro((unsigned long)page_address, 1);
64}
65
66static inline void hibernate_restore_unprotect_page(void *page_address)
67{
68 if (hibernate_restore_protection_active)
69 set_memory_rw((unsigned long)page_address, 1);
70}
71#else
72static inline void hibernate_restore_protection_begin(void) {}
73static inline void hibernate_restore_protection_end(void) {}
74static inline void hibernate_restore_protect_page(void *page_address) {}
75static inline void hibernate_restore_unprotect_page(void *page_address) {}
76#endif /* CONFIG_DEBUG_RODATA */
77
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78static int swsusp_page_is_free(struct page *);
79static void swsusp_set_page_forbidden(struct page *);
80static void swsusp_unset_page_forbidden(struct page *);
81
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82/*
83 * Number of bytes to reserve for memory allocations made by device drivers
84 * from their ->freeze() and ->freeze_noirq() callbacks so that they don't
85 * cause image creation to fail (tunable via /sys/power/reserved_size).
86 */
87unsigned long reserved_size;
88
89void __init hibernate_reserved_size_init(void)
90{
91 reserved_size = SPARE_PAGES * PAGE_SIZE;
92}
93
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94/*
95 * Preferred image size in bytes (tunable via /sys/power/image_size).
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96 * When it is set to N, swsusp will do its best to ensure the image
97 * size will not exceed N bytes, but if that is impossible, it will
98 * try to create the smallest image possible.
fe419535 99 */
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100unsigned long image_size;
101
102void __init hibernate_image_size_init(void)
103{
1c1be3a9 104 image_size = ((totalram_pages * 2) / 5) * PAGE_SIZE;
ac5c24ec 105}
fe419535 106
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107/*
108 * List of PBEs needed for restoring the pages that were allocated before
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109 * the suspend and included in the suspend image, but have also been
110 * allocated by the "resume" kernel, so their contents cannot be written
111 * directly to their "original" page frames.
112 */
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113struct pbe *restore_pblist;
114
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115/* struct linked_page is used to build chains of pages */
116
117#define LINKED_PAGE_DATA_SIZE (PAGE_SIZE - sizeof(void *))
118
119struct linked_page {
120 struct linked_page *next;
121 char data[LINKED_PAGE_DATA_SIZE];
122} __packed;
123
124/*
125 * List of "safe" pages (ie. pages that were not used by the image kernel
126 * before hibernation) that may be used as temporary storage for image kernel
127 * memory contents.
128 */
129static struct linked_page *safe_pages_list;
130
8357376d 131/* Pointer to an auxiliary buffer (1 page) */
940864dd 132static void *buffer;
7088a5c0 133
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134#define PG_ANY 0
135#define PG_SAFE 1
136#define PG_UNSAFE_CLEAR 1
137#define PG_UNSAFE_KEEP 0
138
940864dd 139static unsigned int allocated_unsafe_pages;
f6143aa6 140
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141/**
142 * get_image_page - Allocate a page for a hibernation image.
143 * @gfp_mask: GFP mask for the allocation.
144 * @safe_needed: Get pages that were not used before hibernation (restore only)
145 *
146 * During image restoration, for storing the PBE list and the image data, we can
147 * only use memory pages that do not conflict with the pages used before
148 * hibernation. The "unsafe" pages have PageNosaveFree set and we count them
149 * using allocated_unsafe_pages.
150 *
151 * Each allocated image page is marked as PageNosave and PageNosaveFree so that
152 * swsusp_free() can release it.
153 */
8357376d 154static void *get_image_page(gfp_t gfp_mask, int safe_needed)
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155{
156 void *res;
157
158 res = (void *)get_zeroed_page(gfp_mask);
159 if (safe_needed)
7be98234 160 while (res && swsusp_page_is_free(virt_to_page(res))) {
f6143aa6 161 /* The page is unsafe, mark it for swsusp_free() */
7be98234 162 swsusp_set_page_forbidden(virt_to_page(res));
940864dd 163 allocated_unsafe_pages++;
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164 res = (void *)get_zeroed_page(gfp_mask);
165 }
166 if (res) {
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167 swsusp_set_page_forbidden(virt_to_page(res));
168 swsusp_set_page_free(virt_to_page(res));
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169 }
170 return res;
171}
172
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173static void *__get_safe_page(gfp_t gfp_mask)
174{
175 if (safe_pages_list) {
176 void *ret = safe_pages_list;
177
178 safe_pages_list = safe_pages_list->next;
179 memset(ret, 0, PAGE_SIZE);
180 return ret;
181 }
182 return get_image_page(gfp_mask, PG_SAFE);
183}
184
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185unsigned long get_safe_page(gfp_t gfp_mask)
186{
9c744481 187 return (unsigned long)__get_safe_page(gfp_mask);
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188}
189
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190static struct page *alloc_image_page(gfp_t gfp_mask)
191{
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192 struct page *page;
193
194 page = alloc_page(gfp_mask);
195 if (page) {
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196 swsusp_set_page_forbidden(page);
197 swsusp_set_page_free(page);
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198 }
199 return page;
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200}
201
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202static void recycle_safe_page(void *page_address)
203{
204 struct linked_page *lp = page_address;
205
206 lp->next = safe_pages_list;
207 safe_pages_list = lp;
208}
209
f6143aa6 210/**
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211 * free_image_page - Free a page allocated for hibernation image.
212 * @addr: Address of the page to free.
213 * @clear_nosave_free: If set, clear the PageNosaveFree bit for the page.
214 *
215 * The page to free should have been allocated by get_image_page() (page flags
216 * set by it are affected).
f6143aa6 217 */
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218static inline void free_image_page(void *addr, int clear_nosave_free)
219{
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220 struct page *page;
221
222 BUG_ON(!virt_addr_valid(addr));
223
224 page = virt_to_page(addr);
225
7be98234 226 swsusp_unset_page_forbidden(page);
f6143aa6 227 if (clear_nosave_free)
7be98234 228 swsusp_unset_page_free(page);
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229
230 __free_page(page);
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231}
232
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233static inline void free_list_of_pages(struct linked_page *list,
234 int clear_page_nosave)
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235{
236 while (list) {
237 struct linked_page *lp = list->next;
238
239 free_image_page(list, clear_page_nosave);
240 list = lp;
241 }
242}
243
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244/*
245 * struct chain_allocator is used for allocating small objects out of
246 * a linked list of pages called 'the chain'.
247 *
248 * The chain grows each time when there is no room for a new object in
249 * the current page. The allocated objects cannot be freed individually.
250 * It is only possible to free them all at once, by freeing the entire
251 * chain.
252 *
253 * NOTE: The chain allocator may be inefficient if the allocated objects
254 * are not much smaller than PAGE_SIZE.
255 */
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256struct chain_allocator {
257 struct linked_page *chain; /* the chain */
258 unsigned int used_space; /* total size of objects allocated out
ef96f639 259 of the current page */
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260 gfp_t gfp_mask; /* mask for allocating pages */
261 int safe_needed; /* if set, only "safe" pages are allocated */
262};
263
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264static void chain_init(struct chain_allocator *ca, gfp_t gfp_mask,
265 int safe_needed)
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266{
267 ca->chain = NULL;
268 ca->used_space = LINKED_PAGE_DATA_SIZE;
269 ca->gfp_mask = gfp_mask;
270 ca->safe_needed = safe_needed;
271}
272
273static void *chain_alloc(struct chain_allocator *ca, unsigned int size)
274{
275 void *ret;
276
277 if (LINKED_PAGE_DATA_SIZE - ca->used_space < size) {
278 struct linked_page *lp;
279
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280 lp = ca->safe_needed ? __get_safe_page(ca->gfp_mask) :
281 get_image_page(ca->gfp_mask, PG_ANY);
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282 if (!lp)
283 return NULL;
284
285 lp->next = ca->chain;
286 ca->chain = lp;
287 ca->used_space = 0;
288 }
289 ret = ca->chain->data + ca->used_space;
290 ca->used_space += size;
291 return ret;
292}
293
b788db79 294/**
ef96f639 295 * Data types related to memory bitmaps.
b788db79 296 *
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297 * Memory bitmap is a structure consiting of many linked lists of
298 * objects. The main list's elements are of type struct zone_bitmap
299 * and each of them corresonds to one zone. For each zone bitmap
300 * object there is a list of objects of type struct bm_block that
301 * represent each blocks of bitmap in which information is stored.
b788db79 302 *
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303 * struct memory_bitmap contains a pointer to the main list of zone
304 * bitmap objects, a struct bm_position used for browsing the bitmap,
305 * and a pointer to the list of pages used for allocating all of the
306 * zone bitmap objects and bitmap block objects.
b788db79 307 *
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308 * NOTE: It has to be possible to lay out the bitmap in memory
309 * using only allocations of order 0. Additionally, the bitmap is
310 * designed to work with arbitrary number of zones (this is over the
311 * top for now, but let's avoid making unnecessary assumptions ;-).
b788db79 312 *
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313 * struct zone_bitmap contains a pointer to a list of bitmap block
314 * objects and a pointer to the bitmap block object that has been
315 * most recently used for setting bits. Additionally, it contains the
316 * PFNs that correspond to the start and end of the represented zone.
b788db79 317 *
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318 * struct bm_block contains a pointer to the memory page in which
319 * information is stored (in the form of a block of bitmap)
320 * It also contains the pfns that correspond to the start and end of
321 * the represented memory area.
f469f02d 322 *
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323 * The memory bitmap is organized as a radix tree to guarantee fast random
324 * access to the bits. There is one radix tree for each zone (as returned
325 * from create_mem_extents).
f469f02d 326 *
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327 * One radix tree is represented by one struct mem_zone_bm_rtree. There are
328 * two linked lists for the nodes of the tree, one for the inner nodes and
329 * one for the leave nodes. The linked leave nodes are used for fast linear
330 * access of the memory bitmap.
f469f02d 331 *
ef96f639 332 * The struct rtree_node represents one node of the radix tree.
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333 */
334
335#define BM_END_OF_MAP (~0UL)
336
8de03073 337#define BM_BITS_PER_BLOCK (PAGE_SIZE * BITS_PER_BYTE)
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338#define BM_BLOCK_SHIFT (PAGE_SHIFT + 3)
339#define BM_BLOCK_MASK ((1UL << BM_BLOCK_SHIFT) - 1)
b788db79 340
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341/*
342 * struct rtree_node is a wrapper struct to link the nodes
343 * of the rtree together for easy linear iteration over
344 * bits and easy freeing
345 */
346struct rtree_node {
347 struct list_head list;
348 unsigned long *data;
349};
350
351/*
352 * struct mem_zone_bm_rtree represents a bitmap used for one
353 * populated memory zone.
354 */
355struct mem_zone_bm_rtree {
356 struct list_head list; /* Link Zones together */
357 struct list_head nodes; /* Radix Tree inner nodes */
358 struct list_head leaves; /* Radix Tree leaves */
359 unsigned long start_pfn; /* Zone start page frame */
360 unsigned long end_pfn; /* Zone end page frame + 1 */
361 struct rtree_node *rtree; /* Radix Tree Root */
362 int levels; /* Number of Radix Tree Levels */
363 unsigned int blocks; /* Number of Bitmap Blocks */
364};
365
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366/* strcut bm_position is used for browsing memory bitmaps */
367
368struct bm_position {
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369 struct mem_zone_bm_rtree *zone;
370 struct rtree_node *node;
371 unsigned long node_pfn;
372 int node_bit;
b788db79
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373};
374
375struct memory_bitmap {
f469f02d 376 struct list_head zones;
b788db79 377 struct linked_page *p_list; /* list of pages used to store zone
ef96f639
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378 bitmap objects and bitmap block
379 objects */
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380 struct bm_position cur; /* most recently used bit position */
381};
382
383/* Functions that operate on memory bitmaps */
384
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385#define BM_ENTRIES_PER_LEVEL (PAGE_SIZE / sizeof(unsigned long))
386#if BITS_PER_LONG == 32
387#define BM_RTREE_LEVEL_SHIFT (PAGE_SHIFT - 2)
388#else
389#define BM_RTREE_LEVEL_SHIFT (PAGE_SHIFT - 3)
390#endif
391#define BM_RTREE_LEVEL_MASK ((1UL << BM_RTREE_LEVEL_SHIFT) - 1)
392
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393/**
394 * alloc_rtree_node - Allocate a new node and add it to the radix tree.
f469f02d 395 *
ef96f639
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396 * This function is used to allocate inner nodes as well as the
397 * leave nodes of the radix tree. It also adds the node to the
398 * corresponding linked list passed in by the *list parameter.
f469f02d
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399 */
400static struct rtree_node *alloc_rtree_node(gfp_t gfp_mask, int safe_needed,
401 struct chain_allocator *ca,
402 struct list_head *list)
403{
404 struct rtree_node *node;
405
406 node = chain_alloc(ca, sizeof(struct rtree_node));
407 if (!node)
408 return NULL;
409
410 node->data = get_image_page(gfp_mask, safe_needed);
411 if (!node->data)
412 return NULL;
413
414 list_add_tail(&node->list, list);
415
416 return node;
417}
418
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419/**
420 * add_rtree_block - Add a new leave node to the radix tree.
f469f02d 421 *
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422 * The leave nodes need to be allocated in order to keep the leaves
423 * linked list in order. This is guaranteed by the zone->blocks
424 * counter.
f469f02d
JR
425 */
426static int add_rtree_block(struct mem_zone_bm_rtree *zone, gfp_t gfp_mask,
427 int safe_needed, struct chain_allocator *ca)
428{
429 struct rtree_node *node, *block, **dst;
430 unsigned int levels_needed, block_nr;
431 int i;
432
433 block_nr = zone->blocks;
434 levels_needed = 0;
435
436 /* How many levels do we need for this block nr? */
437 while (block_nr) {
438 levels_needed += 1;
439 block_nr >>= BM_RTREE_LEVEL_SHIFT;
440 }
441
442 /* Make sure the rtree has enough levels */
443 for (i = zone->levels; i < levels_needed; i++) {
444 node = alloc_rtree_node(gfp_mask, safe_needed, ca,
445 &zone->nodes);
446 if (!node)
447 return -ENOMEM;
448
449 node->data[0] = (unsigned long)zone->rtree;
450 zone->rtree = node;
451 zone->levels += 1;
452 }
453
454 /* Allocate new block */
455 block = alloc_rtree_node(gfp_mask, safe_needed, ca, &zone->leaves);
456 if (!block)
457 return -ENOMEM;
458
459 /* Now walk the rtree to insert the block */
460 node = zone->rtree;
461 dst = &zone->rtree;
462 block_nr = zone->blocks;
463 for (i = zone->levels; i > 0; i--) {
464 int index;
465
466 if (!node) {
467 node = alloc_rtree_node(gfp_mask, safe_needed, ca,
468 &zone->nodes);
469 if (!node)
470 return -ENOMEM;
471 *dst = node;
472 }
473
474 index = block_nr >> ((i - 1) * BM_RTREE_LEVEL_SHIFT);
475 index &= BM_RTREE_LEVEL_MASK;
476 dst = (struct rtree_node **)&((*dst)->data[index]);
477 node = *dst;
478 }
479
480 zone->blocks += 1;
481 *dst = block;
482
483 return 0;
484}
485
486static void free_zone_bm_rtree(struct mem_zone_bm_rtree *zone,
487 int clear_nosave_free);
488
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489/**
490 * create_zone_bm_rtree - Create a radix tree for one zone.
f469f02d 491 *
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492 * Allocated the mem_zone_bm_rtree structure and initializes it.
493 * This function also allocated and builds the radix tree for the
494 * zone.
f469f02d 495 */
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496static struct mem_zone_bm_rtree *create_zone_bm_rtree(gfp_t gfp_mask,
497 int safe_needed,
498 struct chain_allocator *ca,
499 unsigned long start,
500 unsigned long end)
f469f02d
JR
501{
502 struct mem_zone_bm_rtree *zone;
503 unsigned int i, nr_blocks;
504 unsigned long pages;
505
506 pages = end - start;
507 zone = chain_alloc(ca, sizeof(struct mem_zone_bm_rtree));
508 if (!zone)
509 return NULL;
510
511 INIT_LIST_HEAD(&zone->nodes);
512 INIT_LIST_HEAD(&zone->leaves);
513 zone->start_pfn = start;
514 zone->end_pfn = end;
515 nr_blocks = DIV_ROUND_UP(pages, BM_BITS_PER_BLOCK);
516
517 for (i = 0; i < nr_blocks; i++) {
518 if (add_rtree_block(zone, gfp_mask, safe_needed, ca)) {
519 free_zone_bm_rtree(zone, PG_UNSAFE_CLEAR);
520 return NULL;
521 }
522 }
523
524 return zone;
525}
526
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527/**
528 * free_zone_bm_rtree - Free the memory of the radix tree.
f469f02d 529 *
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530 * Free all node pages of the radix tree. The mem_zone_bm_rtree
531 * structure itself is not freed here nor are the rtree_node
532 * structs.
f469f02d
JR
533 */
534static void free_zone_bm_rtree(struct mem_zone_bm_rtree *zone,
535 int clear_nosave_free)
536{
537 struct rtree_node *node;
538
539 list_for_each_entry(node, &zone->nodes, list)
540 free_image_page(node->data, clear_nosave_free);
541
542 list_for_each_entry(node, &zone->leaves, list)
543 free_image_page(node->data, clear_nosave_free);
544}
545
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546static void memory_bm_position_reset(struct memory_bitmap *bm)
547{
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548 bm->cur.zone = list_entry(bm->zones.next, struct mem_zone_bm_rtree,
549 list);
550 bm->cur.node = list_entry(bm->cur.zone->leaves.next,
551 struct rtree_node, list);
552 bm->cur.node_pfn = 0;
553 bm->cur.node_bit = 0;
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554}
555
556static void memory_bm_free(struct memory_bitmap *bm, int clear_nosave_free);
557
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558struct mem_extent {
559 struct list_head hook;
560 unsigned long start;
561 unsigned long end;
562};
563
b788db79 564/**
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565 * free_mem_extents - Free a list of memory extents.
566 * @list: List of extents to free.
b788db79 567 */
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568static void free_mem_extents(struct list_head *list)
569{
570 struct mem_extent *ext, *aux;
b788db79 571
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572 list_for_each_entry_safe(ext, aux, list, hook) {
573 list_del(&ext->hook);
574 kfree(ext);
575 }
576}
577
578/**
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579 * create_mem_extents - Create a list of memory extents.
580 * @list: List to put the extents into.
581 * @gfp_mask: Mask to use for memory allocations.
582 *
583 * The extents represent contiguous ranges of PFNs.
846705de
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584 */
585static int create_mem_extents(struct list_head *list, gfp_t gfp_mask)
b788db79 586{
846705de 587 struct zone *zone;
b788db79 588
846705de 589 INIT_LIST_HEAD(list);
b788db79 590
ee99c71c 591 for_each_populated_zone(zone) {
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592 unsigned long zone_start, zone_end;
593 struct mem_extent *ext, *cur, *aux;
594
846705de 595 zone_start = zone->zone_start_pfn;
c33bc315 596 zone_end = zone_end_pfn(zone);
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597
598 list_for_each_entry(ext, list, hook)
599 if (zone_start <= ext->end)
600 break;
b788db79 601
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602 if (&ext->hook == list || zone_end < ext->start) {
603 /* New extent is necessary */
604 struct mem_extent *new_ext;
605
606 new_ext = kzalloc(sizeof(struct mem_extent), gfp_mask);
607 if (!new_ext) {
608 free_mem_extents(list);
609 return -ENOMEM;
610 }
611 new_ext->start = zone_start;
612 new_ext->end = zone_end;
613 list_add_tail(&new_ext->hook, &ext->hook);
614 continue;
615 }
616
617 /* Merge this zone's range of PFNs with the existing one */
618 if (zone_start < ext->start)
619 ext->start = zone_start;
620 if (zone_end > ext->end)
621 ext->end = zone_end;
622
623 /* More merging may be possible */
624 cur = ext;
625 list_for_each_entry_safe_continue(cur, aux, list, hook) {
626 if (zone_end < cur->start)
627 break;
628 if (zone_end < cur->end)
629 ext->end = cur->end;
630 list_del(&cur->hook);
631 kfree(cur);
632 }
b788db79 633 }
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634
635 return 0;
b788db79
RW
636}
637
638/**
ef96f639
RW
639 * memory_bm_create - Allocate memory for a memory bitmap.
640 */
efd5a852
RW
641static int memory_bm_create(struct memory_bitmap *bm, gfp_t gfp_mask,
642 int safe_needed)
b788db79
RW
643{
644 struct chain_allocator ca;
846705de
RW
645 struct list_head mem_extents;
646 struct mem_extent *ext;
647 int error;
b788db79
RW
648
649 chain_init(&ca, gfp_mask, safe_needed);
f469f02d 650 INIT_LIST_HEAD(&bm->zones);
b788db79 651
846705de
RW
652 error = create_mem_extents(&mem_extents, gfp_mask);
653 if (error)
654 return error;
b788db79 655
846705de 656 list_for_each_entry(ext, &mem_extents, hook) {
f469f02d 657 struct mem_zone_bm_rtree *zone;
f469f02d
JR
658
659 zone = create_zone_bm_rtree(gfp_mask, safe_needed, &ca,
660 ext->start, ext->end);
9047eb62
JR
661 if (!zone) {
662 error = -ENOMEM;
f469f02d 663 goto Error;
9047eb62 664 }
f469f02d 665 list_add_tail(&zone->list, &bm->zones);
b788db79 666 }
846705de 667
b788db79
RW
668 bm->p_list = ca.chain;
669 memory_bm_position_reset(bm);
846705de
RW
670 Exit:
671 free_mem_extents(&mem_extents);
672 return error;
b788db79 673
846705de 674 Error:
b788db79
RW
675 bm->p_list = ca.chain;
676 memory_bm_free(bm, PG_UNSAFE_CLEAR);
846705de 677 goto Exit;
b788db79
RW
678}
679
680/**
ef96f639
RW
681 * memory_bm_free - Free memory occupied by the memory bitmap.
682 * @bm: Memory bitmap.
683 */
b788db79
RW
684static void memory_bm_free(struct memory_bitmap *bm, int clear_nosave_free)
685{
f469f02d 686 struct mem_zone_bm_rtree *zone;
b788db79 687
f469f02d
JR
688 list_for_each_entry(zone, &bm->zones, list)
689 free_zone_bm_rtree(zone, clear_nosave_free);
690
b788db79 691 free_list_of_pages(bm->p_list, clear_nosave_free);
846705de 692
f469f02d 693 INIT_LIST_HEAD(&bm->zones);
b788db79
RW
694}
695
696/**
ef96f639 697 * memory_bm_find_bit - Find the bit for a given PFN in a memory bitmap.
07a33823 698 *
ef96f639
RW
699 * Find the bit in memory bitmap @bm that corresponds to the given PFN.
700 * The cur.zone, cur.block and cur.node_pfn members of @bm are updated.
701 *
702 * Walk the radix tree to find the page containing the bit that represents @pfn
703 * and return the position of the bit in @addr and @bit_nr.
07a33823 704 */
9047eb62
JR
705static int memory_bm_find_bit(struct memory_bitmap *bm, unsigned long pfn,
706 void **addr, unsigned int *bit_nr)
07a33823
JR
707{
708 struct mem_zone_bm_rtree *curr, *zone;
709 struct rtree_node *node;
710 int i, block_nr;
711
3a20cb17
JR
712 zone = bm->cur.zone;
713
714 if (pfn >= zone->start_pfn && pfn < zone->end_pfn)
715 goto zone_found;
716
07a33823
JR
717 zone = NULL;
718
719 /* Find the right zone */
720 list_for_each_entry(curr, &bm->zones, list) {
721 if (pfn >= curr->start_pfn && pfn < curr->end_pfn) {
722 zone = curr;
723 break;
724 }
725 }
726
727 if (!zone)
728 return -EFAULT;
729
3a20cb17 730zone_found:
07a33823 731 /*
ef96f639
RW
732 * We have found the zone. Now walk the radix tree to find the leaf node
733 * for our PFN.
07a33823 734 */
3a20cb17
JR
735 node = bm->cur.node;
736 if (((pfn - zone->start_pfn) & ~BM_BLOCK_MASK) == bm->cur.node_pfn)
737 goto node_found;
738
07a33823
JR
739 node = zone->rtree;
740 block_nr = (pfn - zone->start_pfn) >> BM_BLOCK_SHIFT;
741
742 for (i = zone->levels; i > 0; i--) {
743 int index;
744
745 index = block_nr >> ((i - 1) * BM_RTREE_LEVEL_SHIFT);
746 index &= BM_RTREE_LEVEL_MASK;
747 BUG_ON(node->data[index] == 0);
748 node = (struct rtree_node *)node->data[index];
749 }
750
3a20cb17
JR
751node_found:
752 /* Update last position */
753 bm->cur.zone = zone;
754 bm->cur.node = node;
755 bm->cur.node_pfn = (pfn - zone->start_pfn) & ~BM_BLOCK_MASK;
756
07a33823
JR
757 /* Set return values */
758 *addr = node->data;
759 *bit_nr = (pfn - zone->start_pfn) & BM_BLOCK_MASK;
760
761 return 0;
762}
763
74dfd666
RW
764static void memory_bm_set_bit(struct memory_bitmap *bm, unsigned long pfn)
765{
766 void *addr;
767 unsigned int bit;
a82f7119 768 int error;
74dfd666 769
a82f7119
RW
770 error = memory_bm_find_bit(bm, pfn, &addr, &bit);
771 BUG_ON(error);
74dfd666
RW
772 set_bit(bit, addr);
773}
774
a82f7119
RW
775static int mem_bm_set_bit_check(struct memory_bitmap *bm, unsigned long pfn)
776{
777 void *addr;
778 unsigned int bit;
779 int error;
780
781 error = memory_bm_find_bit(bm, pfn, &addr, &bit);
07a33823
JR
782 if (!error)
783 set_bit(bit, addr);
784
a82f7119
RW
785 return error;
786}
787
74dfd666
RW
788static void memory_bm_clear_bit(struct memory_bitmap *bm, unsigned long pfn)
789{
790 void *addr;
791 unsigned int bit;
a82f7119 792 int error;
74dfd666 793
a82f7119
RW
794 error = memory_bm_find_bit(bm, pfn, &addr, &bit);
795 BUG_ON(error);
74dfd666
RW
796 clear_bit(bit, addr);
797}
798
fdd64ed5
JR
799static void memory_bm_clear_current(struct memory_bitmap *bm)
800{
801 int bit;
802
803 bit = max(bm->cur.node_bit - 1, 0);
804 clear_bit(bit, bm->cur.node->data);
805}
806
74dfd666
RW
807static int memory_bm_test_bit(struct memory_bitmap *bm, unsigned long pfn)
808{
809 void *addr;
810 unsigned int bit;
9047eb62 811 int error;
74dfd666 812
a82f7119
RW
813 error = memory_bm_find_bit(bm, pfn, &addr, &bit);
814 BUG_ON(error);
9047eb62 815 return test_bit(bit, addr);
b788db79
RW
816}
817
69643279
RW
818static bool memory_bm_pfn_present(struct memory_bitmap *bm, unsigned long pfn)
819{
820 void *addr;
821 unsigned int bit;
07a33823 822
9047eb62 823 return !memory_bm_find_bit(bm, pfn, &addr, &bit);
b788db79
RW
824}
825
3a20cb17 826/*
ef96f639 827 * rtree_next_node - Jump to the next leaf node.
3a20cb17 828 *
ef96f639
RW
829 * Set the position to the beginning of the next node in the
830 * memory bitmap. This is either the next node in the current
831 * zone's radix tree or the first node in the radix tree of the
832 * next zone.
3a20cb17 833 *
ef96f639 834 * Return true if there is a next node, false otherwise.
3a20cb17
JR
835 */
836static bool rtree_next_node(struct memory_bitmap *bm)
837{
924d8696
JM
838 if (!list_is_last(&bm->cur.node->list, &bm->cur.zone->leaves)) {
839 bm->cur.node = list_entry(bm->cur.node->list.next,
840 struct rtree_node, list);
3a20cb17
JR
841 bm->cur.node_pfn += BM_BITS_PER_BLOCK;
842 bm->cur.node_bit = 0;
0f7d83e8 843 touch_softlockup_watchdog();
3a20cb17
JR
844 return true;
845 }
846
847 /* No more nodes, goto next zone */
924d8696
JM
848 if (!list_is_last(&bm->cur.zone->list, &bm->zones)) {
849 bm->cur.zone = list_entry(bm->cur.zone->list.next,
3a20cb17 850 struct mem_zone_bm_rtree, list);
3a20cb17
JR
851 bm->cur.node = list_entry(bm->cur.zone->leaves.next,
852 struct rtree_node, list);
853 bm->cur.node_pfn = 0;
854 bm->cur.node_bit = 0;
855 return true;
856 }
857
858 /* No more zones */
859 return false;
860}
861
9047eb62 862/**
ef96f639
RW
863 * memory_bm_rtree_next_pfn - Find the next set bit in a memory bitmap.
864 * @bm: Memory bitmap.
3a20cb17 865 *
ef96f639
RW
866 * Starting from the last returned position this function searches for the next
867 * set bit in @bm and returns the PFN represented by it. If no more bits are
868 * set, BM_END_OF_MAP is returned.
9047eb62 869 *
ef96f639
RW
870 * It is required to run memory_bm_position_reset() before the first call to
871 * this function for the given memory bitmap.
3a20cb17 872 */
9047eb62 873static unsigned long memory_bm_next_pfn(struct memory_bitmap *bm)
3a20cb17
JR
874{
875 unsigned long bits, pfn, pages;
876 int bit;
877
878 do {
879 pages = bm->cur.zone->end_pfn - bm->cur.zone->start_pfn;
880 bits = min(pages - bm->cur.node_pfn, BM_BITS_PER_BLOCK);
881 bit = find_next_bit(bm->cur.node->data, bits,
882 bm->cur.node_bit);
883 if (bit < bits) {
884 pfn = bm->cur.zone->start_pfn + bm->cur.node_pfn + bit;
885 bm->cur.node_bit = bit + 1;
886 return pfn;
887 }
888 } while (rtree_next_node(bm));
889
890 return BM_END_OF_MAP;
891}
892
ef96f639
RW
893/*
894 * This structure represents a range of page frames the contents of which
895 * should not be saved during hibernation.
74dfd666 896 */
74dfd666
RW
897struct nosave_region {
898 struct list_head list;
899 unsigned long start_pfn;
900 unsigned long end_pfn;
901};
902
903static LIST_HEAD(nosave_regions);
904
307c5971
RW
905static void recycle_zone_bm_rtree(struct mem_zone_bm_rtree *zone)
906{
907 struct rtree_node *node;
908
909 list_for_each_entry(node, &zone->nodes, list)
910 recycle_safe_page(node->data);
911
912 list_for_each_entry(node, &zone->leaves, list)
913 recycle_safe_page(node->data);
914}
915
916static void memory_bm_recycle(struct memory_bitmap *bm)
917{
918 struct mem_zone_bm_rtree *zone;
919 struct linked_page *p_list;
920
921 list_for_each_entry(zone, &bm->zones, list)
922 recycle_zone_bm_rtree(zone);
923
924 p_list = bm->p_list;
925 while (p_list) {
926 struct linked_page *lp = p_list;
927
928 p_list = lp->next;
929 recycle_safe_page(lp);
930 }
931}
932
74dfd666 933/**
ef96f639
RW
934 * register_nosave_region - Register a region of unsaveable memory.
935 *
936 * Register a range of page frames the contents of which should not be saved
937 * during hibernation (to be used in the early initialization code).
74dfd666 938 */
efd5a852
RW
939void __init __register_nosave_region(unsigned long start_pfn,
940 unsigned long end_pfn, int use_kmalloc)
74dfd666
RW
941{
942 struct nosave_region *region;
943
944 if (start_pfn >= end_pfn)
945 return;
946
947 if (!list_empty(&nosave_regions)) {
948 /* Try to extend the previous region (they should be sorted) */
949 region = list_entry(nosave_regions.prev,
950 struct nosave_region, list);
951 if (region->end_pfn == start_pfn) {
952 region->end_pfn = end_pfn;
953 goto Report;
954 }
955 }
940d67f6 956 if (use_kmalloc) {
ef96f639 957 /* During init, this shouldn't fail */
940d67f6
JB
958 region = kmalloc(sizeof(struct nosave_region), GFP_KERNEL);
959 BUG_ON(!region);
d5f32af3 960 } else {
940d67f6 961 /* This allocation cannot fail */
c2f69cda 962 region = memblock_virt_alloc(sizeof(struct nosave_region), 0);
d5f32af3 963 }
74dfd666
RW
964 region->start_pfn = start_pfn;
965 region->end_pfn = end_pfn;
966 list_add_tail(&region->list, &nosave_regions);
967 Report:
cd38ca85
BH
968 printk(KERN_INFO "PM: Registered nosave memory: [mem %#010llx-%#010llx]\n",
969 (unsigned long long) start_pfn << PAGE_SHIFT,
970 ((unsigned long long) end_pfn << PAGE_SHIFT) - 1);
74dfd666
RW
971}
972
973/*
974 * Set bits in this map correspond to the page frames the contents of which
975 * should not be saved during the suspend.
976 */
977static struct memory_bitmap *forbidden_pages_map;
978
979/* Set bits in this map correspond to free page frames. */
980static struct memory_bitmap *free_pages_map;
981
982/*
983 * Each page frame allocated for creating the image is marked by setting the
984 * corresponding bits in forbidden_pages_map and free_pages_map simultaneously
985 */
986
987void swsusp_set_page_free(struct page *page)
988{
989 if (free_pages_map)
990 memory_bm_set_bit(free_pages_map, page_to_pfn(page));
991}
992
993static int swsusp_page_is_free(struct page *page)
994{
995 return free_pages_map ?
996 memory_bm_test_bit(free_pages_map, page_to_pfn(page)) : 0;
997}
998
999void swsusp_unset_page_free(struct page *page)
1000{
1001 if (free_pages_map)
1002 memory_bm_clear_bit(free_pages_map, page_to_pfn(page));
1003}
1004
1005static void swsusp_set_page_forbidden(struct page *page)
1006{
1007 if (forbidden_pages_map)
1008 memory_bm_set_bit(forbidden_pages_map, page_to_pfn(page));
1009}
1010
1011int swsusp_page_is_forbidden(struct page *page)
1012{
1013 return forbidden_pages_map ?
1014 memory_bm_test_bit(forbidden_pages_map, page_to_pfn(page)) : 0;
1015}
1016
1017static void swsusp_unset_page_forbidden(struct page *page)
1018{
1019 if (forbidden_pages_map)
1020 memory_bm_clear_bit(forbidden_pages_map, page_to_pfn(page));
1021}
1022
1023/**
ef96f639
RW
1024 * mark_nosave_pages - Mark pages that should not be saved.
1025 * @bm: Memory bitmap.
1026 *
1027 * Set the bits in @bm that correspond to the page frames the contents of which
1028 * should not be saved.
74dfd666 1029 */
74dfd666
RW
1030static void mark_nosave_pages(struct memory_bitmap *bm)
1031{
1032 struct nosave_region *region;
1033
1034 if (list_empty(&nosave_regions))
1035 return;
1036
1037 list_for_each_entry(region, &nosave_regions, list) {
1038 unsigned long pfn;
1039
69f1d475
BH
1040 pr_debug("PM: Marking nosave pages: [mem %#010llx-%#010llx]\n",
1041 (unsigned long long) region->start_pfn << PAGE_SHIFT,
1042 ((unsigned long long) region->end_pfn << PAGE_SHIFT)
1043 - 1);
74dfd666
RW
1044
1045 for (pfn = region->start_pfn; pfn < region->end_pfn; pfn++)
a82f7119
RW
1046 if (pfn_valid(pfn)) {
1047 /*
1048 * It is safe to ignore the result of
1049 * mem_bm_set_bit_check() here, since we won't
1050 * touch the PFNs for which the error is
1051 * returned anyway.
1052 */
1053 mem_bm_set_bit_check(bm, pfn);
1054 }
74dfd666
RW
1055 }
1056}
1057
1058/**
ef96f639
RW
1059 * create_basic_memory_bitmaps - Create bitmaps to hold basic page information.
1060 *
1061 * Create bitmaps needed for marking page frames that should not be saved and
1062 * free page frames. The forbidden_pages_map and free_pages_map pointers are
1063 * only modified if everything goes well, because we don't want the bits to be
1064 * touched before both bitmaps are set up.
74dfd666 1065 */
74dfd666
RW
1066int create_basic_memory_bitmaps(void)
1067{
1068 struct memory_bitmap *bm1, *bm2;
1069 int error = 0;
1070
aab17289
RW
1071 if (forbidden_pages_map && free_pages_map)
1072 return 0;
1073 else
1074 BUG_ON(forbidden_pages_map || free_pages_map);
74dfd666 1075
0709db60 1076 bm1 = kzalloc(sizeof(struct memory_bitmap), GFP_KERNEL);
74dfd666
RW
1077 if (!bm1)
1078 return -ENOMEM;
1079
0709db60 1080 error = memory_bm_create(bm1, GFP_KERNEL, PG_ANY);
74dfd666
RW
1081 if (error)
1082 goto Free_first_object;
1083
0709db60 1084 bm2 = kzalloc(sizeof(struct memory_bitmap), GFP_KERNEL);
74dfd666
RW
1085 if (!bm2)
1086 goto Free_first_bitmap;
1087
0709db60 1088 error = memory_bm_create(bm2, GFP_KERNEL, PG_ANY);
74dfd666
RW
1089 if (error)
1090 goto Free_second_object;
1091
1092 forbidden_pages_map = bm1;
1093 free_pages_map = bm2;
1094 mark_nosave_pages(forbidden_pages_map);
1095
23976728 1096 pr_debug("PM: Basic memory bitmaps created\n");
74dfd666
RW
1097
1098 return 0;
1099
1100 Free_second_object:
1101 kfree(bm2);
1102 Free_first_bitmap:
1103 memory_bm_free(bm1, PG_UNSAFE_CLEAR);
1104 Free_first_object:
1105 kfree(bm1);
1106 return -ENOMEM;
1107}
1108
1109/**
ef96f639
RW
1110 * free_basic_memory_bitmaps - Free memory bitmaps holding basic information.
1111 *
1112 * Free memory bitmaps allocated by create_basic_memory_bitmaps(). The
1113 * auxiliary pointers are necessary so that the bitmaps themselves are not
1114 * referred to while they are being freed.
74dfd666 1115 */
74dfd666
RW
1116void free_basic_memory_bitmaps(void)
1117{
1118 struct memory_bitmap *bm1, *bm2;
1119
6a0c7cd3
RW
1120 if (WARN_ON(!(forbidden_pages_map && free_pages_map)))
1121 return;
74dfd666
RW
1122
1123 bm1 = forbidden_pages_map;
1124 bm2 = free_pages_map;
1125 forbidden_pages_map = NULL;
1126 free_pages_map = NULL;
1127 memory_bm_free(bm1, PG_UNSAFE_CLEAR);
1128 kfree(bm1);
1129 memory_bm_free(bm2, PG_UNSAFE_CLEAR);
1130 kfree(bm2);
1131
23976728 1132 pr_debug("PM: Basic memory bitmaps freed\n");
74dfd666
RW
1133}
1134
b788db79 1135/**
ef96f639
RW
1136 * snapshot_additional_pages - Estimate the number of extra pages needed.
1137 * @zone: Memory zone to carry out the computation for.
1138 *
1139 * Estimate the number of additional pages needed for setting up a hibernation
1140 * image data structures for @zone (usually, the returned value is greater than
1141 * the exact number).
b788db79 1142 */
b788db79
RW
1143unsigned int snapshot_additional_pages(struct zone *zone)
1144{
f469f02d 1145 unsigned int rtree, nodes;
b788db79 1146
f469f02d
JR
1147 rtree = nodes = DIV_ROUND_UP(zone->spanned_pages, BM_BITS_PER_BLOCK);
1148 rtree += DIV_ROUND_UP(rtree * sizeof(struct rtree_node),
1149 LINKED_PAGE_DATA_SIZE);
1150 while (nodes > 1) {
1151 nodes = DIV_ROUND_UP(nodes, BM_ENTRIES_PER_LEVEL);
1152 rtree += nodes;
1153 }
1154
9047eb62 1155 return 2 * rtree;
b788db79
RW
1156}
1157
8357376d
RW
1158#ifdef CONFIG_HIGHMEM
1159/**
ef96f639
RW
1160 * count_free_highmem_pages - Compute the total number of free highmem pages.
1161 *
1162 * The returned number is system-wide.
8357376d 1163 */
8357376d
RW
1164static unsigned int count_free_highmem_pages(void)
1165{
1166 struct zone *zone;
1167 unsigned int cnt = 0;
1168
ee99c71c
KM
1169 for_each_populated_zone(zone)
1170 if (is_highmem(zone))
d23ad423 1171 cnt += zone_page_state(zone, NR_FREE_PAGES);
8357376d
RW
1172
1173 return cnt;
1174}
1175
1176/**
ef96f639
RW
1177 * saveable_highmem_page - Check if a highmem page is saveable.
1178 *
1179 * Determine whether a highmem page should be included in a hibernation image.
8357376d 1180 *
ef96f639
RW
1181 * We should save the page if it isn't Nosave or NosaveFree, or Reserved,
1182 * and it isn't part of a free chunk of pages.
8357376d 1183 */
846705de 1184static struct page *saveable_highmem_page(struct zone *zone, unsigned long pfn)
8357376d
RW
1185{
1186 struct page *page;
1187
1188 if (!pfn_valid(pfn))
1189 return NULL;
1190
1191 page = pfn_to_page(pfn);
846705de
RW
1192 if (page_zone(page) != zone)
1193 return NULL;
8357376d
RW
1194
1195 BUG_ON(!PageHighMem(page));
1196
7be98234
RW
1197 if (swsusp_page_is_forbidden(page) || swsusp_page_is_free(page) ||
1198 PageReserved(page))
8357376d
RW
1199 return NULL;
1200
c6968e73
SG
1201 if (page_is_guard(page))
1202 return NULL;
1203
8357376d
RW
1204 return page;
1205}
1206
1207/**
ef96f639 1208 * count_highmem_pages - Compute the total number of saveable highmem pages.
8357376d 1209 */
fe419535 1210static unsigned int count_highmem_pages(void)
8357376d
RW
1211{
1212 struct zone *zone;
1213 unsigned int n = 0;
1214
98e73dc5 1215 for_each_populated_zone(zone) {
8357376d
RW
1216 unsigned long pfn, max_zone_pfn;
1217
1218 if (!is_highmem(zone))
1219 continue;
1220
1221 mark_free_pages(zone);
c33bc315 1222 max_zone_pfn = zone_end_pfn(zone);
8357376d 1223 for (pfn = zone->zone_start_pfn; pfn < max_zone_pfn; pfn++)
846705de 1224 if (saveable_highmem_page(zone, pfn))
8357376d
RW
1225 n++;
1226 }
1227 return n;
1228}
1229#else
846705de
RW
1230static inline void *saveable_highmem_page(struct zone *z, unsigned long p)
1231{
1232 return NULL;
1233}
8357376d
RW
1234#endif /* CONFIG_HIGHMEM */
1235
25761b6e 1236/**
ef96f639
RW
1237 * saveable_page - Check if the given page is saveable.
1238 *
1239 * Determine whether a non-highmem page should be included in a hibernation
1240 * image.
25761b6e 1241 *
ef96f639
RW
1242 * We should save the page if it isn't Nosave, and is not in the range
1243 * of pages statically defined as 'unsaveable', and it isn't part of
1244 * a free chunk of pages.
25761b6e 1245 */
846705de 1246static struct page *saveable_page(struct zone *zone, unsigned long pfn)
25761b6e 1247{
de491861 1248 struct page *page;
25761b6e
RW
1249
1250 if (!pfn_valid(pfn))
ae83c5ee 1251 return NULL;
25761b6e
RW
1252
1253 page = pfn_to_page(pfn);
846705de
RW
1254 if (page_zone(page) != zone)
1255 return NULL;
ae83c5ee 1256
8357376d
RW
1257 BUG_ON(PageHighMem(page));
1258
7be98234 1259 if (swsusp_page_is_forbidden(page) || swsusp_page_is_free(page))
ae83c5ee 1260 return NULL;
8357376d 1261
8a235efa
RW
1262 if (PageReserved(page)
1263 && (!kernel_page_present(page) || pfn_is_nosave(pfn)))
ae83c5ee 1264 return NULL;
25761b6e 1265
c6968e73
SG
1266 if (page_is_guard(page))
1267 return NULL;
1268
ae83c5ee 1269 return page;
25761b6e
RW
1270}
1271
8357376d 1272/**
ef96f639 1273 * count_data_pages - Compute the total number of saveable non-highmem pages.
8357376d 1274 */
fe419535 1275static unsigned int count_data_pages(void)
25761b6e
RW
1276{
1277 struct zone *zone;
ae83c5ee 1278 unsigned long pfn, max_zone_pfn;
dc19d507 1279 unsigned int n = 0;
25761b6e 1280
98e73dc5 1281 for_each_populated_zone(zone) {
25761b6e
RW
1282 if (is_highmem(zone))
1283 continue;
8357376d 1284
25761b6e 1285 mark_free_pages(zone);
c33bc315 1286 max_zone_pfn = zone_end_pfn(zone);
ae83c5ee 1287 for (pfn = zone->zone_start_pfn; pfn < max_zone_pfn; pfn++)
846705de 1288 if (saveable_page(zone, pfn))
8357376d 1289 n++;
25761b6e 1290 }
a0f49651 1291 return n;
25761b6e
RW
1292}
1293
ef96f639
RW
1294/*
1295 * This is needed, because copy_page and memcpy are not usable for copying
8357376d
RW
1296 * task structs.
1297 */
1298static inline void do_copy_page(long *dst, long *src)
f623f0db
RW
1299{
1300 int n;
1301
f623f0db
RW
1302 for (n = PAGE_SIZE / sizeof(long); n; n--)
1303 *dst++ = *src++;
1304}
1305
8a235efa 1306/**
ef96f639
RW
1307 * safe_copy_page - Copy a page in a safe way.
1308 *
1309 * Check if the page we are going to copy is marked as present in the kernel
1310 * page tables (this always is the case if CONFIG_DEBUG_PAGEALLOC is not set
1311 * and in that case kernel_page_present() always returns 'true').
8a235efa
RW
1312 */
1313static void safe_copy_page(void *dst, struct page *s_page)
1314{
1315 if (kernel_page_present(s_page)) {
1316 do_copy_page(dst, page_address(s_page));
1317 } else {
1318 kernel_map_pages(s_page, 1, 1);
1319 do_copy_page(dst, page_address(s_page));
1320 kernel_map_pages(s_page, 1, 0);
1321 }
1322}
1323
8357376d 1324#ifdef CONFIG_HIGHMEM
efd5a852 1325static inline struct page *page_is_saveable(struct zone *zone, unsigned long pfn)
8357376d
RW
1326{
1327 return is_highmem(zone) ?
846705de 1328 saveable_highmem_page(zone, pfn) : saveable_page(zone, pfn);
8357376d
RW
1329}
1330
8a235efa 1331static void copy_data_page(unsigned long dst_pfn, unsigned long src_pfn)
8357376d
RW
1332{
1333 struct page *s_page, *d_page;
1334 void *src, *dst;
1335
1336 s_page = pfn_to_page(src_pfn);
1337 d_page = pfn_to_page(dst_pfn);
1338 if (PageHighMem(s_page)) {
0de9a1e2
CW
1339 src = kmap_atomic(s_page);
1340 dst = kmap_atomic(d_page);
8357376d 1341 do_copy_page(dst, src);
0de9a1e2
CW
1342 kunmap_atomic(dst);
1343 kunmap_atomic(src);
8357376d 1344 } else {
8357376d 1345 if (PageHighMem(d_page)) {
ef96f639
RW
1346 /*
1347 * The page pointed to by src may contain some kernel
8357376d
RW
1348 * data modified by kmap_atomic()
1349 */
8a235efa 1350 safe_copy_page(buffer, s_page);
0de9a1e2 1351 dst = kmap_atomic(d_page);
3ecb01df 1352 copy_page(dst, buffer);
0de9a1e2 1353 kunmap_atomic(dst);
8357376d 1354 } else {
8a235efa 1355 safe_copy_page(page_address(d_page), s_page);
8357376d
RW
1356 }
1357 }
1358}
1359#else
846705de 1360#define page_is_saveable(zone, pfn) saveable_page(zone, pfn)
8357376d 1361
8a235efa 1362static inline void copy_data_page(unsigned long dst_pfn, unsigned long src_pfn)
8357376d 1363{
8a235efa
RW
1364 safe_copy_page(page_address(pfn_to_page(dst_pfn)),
1365 pfn_to_page(src_pfn));
8357376d
RW
1366}
1367#endif /* CONFIG_HIGHMEM */
1368
efd5a852
RW
1369static void copy_data_pages(struct memory_bitmap *copy_bm,
1370 struct memory_bitmap *orig_bm)
25761b6e
RW
1371{
1372 struct zone *zone;
b788db79 1373 unsigned long pfn;
25761b6e 1374
98e73dc5 1375 for_each_populated_zone(zone) {
b788db79
RW
1376 unsigned long max_zone_pfn;
1377
25761b6e 1378 mark_free_pages(zone);
c33bc315 1379 max_zone_pfn = zone_end_pfn(zone);
b788db79 1380 for (pfn = zone->zone_start_pfn; pfn < max_zone_pfn; pfn++)
8357376d 1381 if (page_is_saveable(zone, pfn))
b788db79 1382 memory_bm_set_bit(orig_bm, pfn);
25761b6e 1383 }
b788db79
RW
1384 memory_bm_position_reset(orig_bm);
1385 memory_bm_position_reset(copy_bm);
df7c4872 1386 for(;;) {
b788db79 1387 pfn = memory_bm_next_pfn(orig_bm);
df7c4872
FW
1388 if (unlikely(pfn == BM_END_OF_MAP))
1389 break;
1390 copy_data_page(memory_bm_next_pfn(copy_bm), pfn);
1391 }
25761b6e
RW
1392}
1393
8357376d
RW
1394/* Total number of image pages */
1395static unsigned int nr_copy_pages;
1396/* Number of pages needed for saving the original pfns of the image pages */
1397static unsigned int nr_meta_pages;
64a473cb
RW
1398/*
1399 * Numbers of normal and highmem page frames allocated for hibernation image
1400 * before suspending devices.
1401 */
1402unsigned int alloc_normal, alloc_highmem;
1403/*
1404 * Memory bitmap used for marking saveable pages (during hibernation) or
1405 * hibernation image pages (during restore)
1406 */
1407static struct memory_bitmap orig_bm;
1408/*
1409 * Memory bitmap used during hibernation for marking allocated page frames that
1410 * will contain copies of saveable pages. During restore it is initially used
1411 * for marking hibernation image pages, but then the set bits from it are
1412 * duplicated in @orig_bm and it is released. On highmem systems it is next
1413 * used for marking "safe" highmem pages, but it has to be reinitialized for
1414 * this purpose.
1415 */
1416static struct memory_bitmap copy_bm;
8357376d 1417
25761b6e 1418/**
ef96f639 1419 * swsusp_free - Free pages allocated for hibernation image.
cd560bb2 1420 *
ef96f639
RW
1421 * Image pages are alocated before snapshot creation, so they need to be
1422 * released after resume.
25761b6e 1423 */
25761b6e
RW
1424void swsusp_free(void)
1425{
fdd64ed5 1426 unsigned long fb_pfn, fr_pfn;
6efde38f 1427
fdd64ed5
JR
1428 if (!forbidden_pages_map || !free_pages_map)
1429 goto out;
1430
1431 memory_bm_position_reset(forbidden_pages_map);
1432 memory_bm_position_reset(free_pages_map);
1433
1434loop:
1435 fr_pfn = memory_bm_next_pfn(free_pages_map);
1436 fb_pfn = memory_bm_next_pfn(forbidden_pages_map);
1437
1438 /*
1439 * Find the next bit set in both bitmaps. This is guaranteed to
1440 * terminate when fb_pfn == fr_pfn == BM_END_OF_MAP.
1441 */
1442 do {
1443 if (fb_pfn < fr_pfn)
1444 fb_pfn = memory_bm_next_pfn(forbidden_pages_map);
1445 if (fr_pfn < fb_pfn)
1446 fr_pfn = memory_bm_next_pfn(free_pages_map);
1447 } while (fb_pfn != fr_pfn);
1448
1449 if (fr_pfn != BM_END_OF_MAP && pfn_valid(fr_pfn)) {
1450 struct page *page = pfn_to_page(fr_pfn);
1451
1452 memory_bm_clear_current(forbidden_pages_map);
1453 memory_bm_clear_current(free_pages_map);
4c0b6c10 1454 hibernate_restore_unprotect_page(page_address(page));
fdd64ed5
JR
1455 __free_page(page);
1456 goto loop;
25761b6e 1457 }
fdd64ed5
JR
1458
1459out:
f577eb30
RW
1460 nr_copy_pages = 0;
1461 nr_meta_pages = 0;
75534b50 1462 restore_pblist = NULL;
6e1819d6 1463 buffer = NULL;
64a473cb
RW
1464 alloc_normal = 0;
1465 alloc_highmem = 0;
4c0b6c10 1466 hibernate_restore_protection_end();
25761b6e
RW
1467}
1468
4bb33435
RW
1469/* Helper functions used for the shrinking of memory. */
1470
1471#define GFP_IMAGE (GFP_KERNEL | __GFP_NOWARN)
1472
fe419535 1473/**
ef96f639 1474 * preallocate_image_pages - Allocate a number of pages for hibernation image.
4bb33435
RW
1475 * @nr_pages: Number of page frames to allocate.
1476 * @mask: GFP flags to use for the allocation.
fe419535 1477 *
4bb33435
RW
1478 * Return value: Number of page frames actually allocated
1479 */
1480static unsigned long preallocate_image_pages(unsigned long nr_pages, gfp_t mask)
1481{
1482 unsigned long nr_alloc = 0;
1483
1484 while (nr_pages > 0) {
64a473cb
RW
1485 struct page *page;
1486
1487 page = alloc_image_page(mask);
1488 if (!page)
4bb33435 1489 break;
64a473cb
RW
1490 memory_bm_set_bit(&copy_bm, page_to_pfn(page));
1491 if (PageHighMem(page))
1492 alloc_highmem++;
1493 else
1494 alloc_normal++;
4bb33435
RW
1495 nr_pages--;
1496 nr_alloc++;
1497 }
1498
1499 return nr_alloc;
1500}
1501
6715045d
RW
1502static unsigned long preallocate_image_memory(unsigned long nr_pages,
1503 unsigned long avail_normal)
4bb33435 1504{
6715045d
RW
1505 unsigned long alloc;
1506
1507 if (avail_normal <= alloc_normal)
1508 return 0;
1509
1510 alloc = avail_normal - alloc_normal;
1511 if (nr_pages < alloc)
1512 alloc = nr_pages;
1513
1514 return preallocate_image_pages(alloc, GFP_IMAGE);
4bb33435
RW
1515}
1516
1517#ifdef CONFIG_HIGHMEM
1518static unsigned long preallocate_image_highmem(unsigned long nr_pages)
1519{
1520 return preallocate_image_pages(nr_pages, GFP_IMAGE | __GFP_HIGHMEM);
1521}
1522
1523/**
ef96f639 1524 * __fraction - Compute (an approximation of) x * (multiplier / base).
fe419535 1525 */
4bb33435
RW
1526static unsigned long __fraction(u64 x, u64 multiplier, u64 base)
1527{
1528 x *= multiplier;
1529 do_div(x, base);
1530 return (unsigned long)x;
1531}
fe419535 1532
4bb33435 1533static unsigned long preallocate_highmem_fraction(unsigned long nr_pages,
efd5a852
RW
1534 unsigned long highmem,
1535 unsigned long total)
fe419535 1536{
4bb33435
RW
1537 unsigned long alloc = __fraction(nr_pages, highmem, total);
1538
1539 return preallocate_image_pages(alloc, GFP_IMAGE | __GFP_HIGHMEM);
fe419535 1540}
4bb33435
RW
1541#else /* CONFIG_HIGHMEM */
1542static inline unsigned long preallocate_image_highmem(unsigned long nr_pages)
1543{
1544 return 0;
1545}
1546
1547static inline unsigned long preallocate_highmem_fraction(unsigned long nr_pages,
efd5a852
RW
1548 unsigned long highmem,
1549 unsigned long total)
4bb33435
RW
1550{
1551 return 0;
1552}
1553#endif /* CONFIG_HIGHMEM */
fe419535 1554
4bb33435 1555/**
ef96f639 1556 * free_unnecessary_pages - Release preallocated pages not needed for the image.
64a473cb 1557 */
a64fc82c 1558static unsigned long free_unnecessary_pages(void)
64a473cb 1559{
a64fc82c 1560 unsigned long save, to_free_normal, to_free_highmem, free;
64a473cb 1561
6715045d
RW
1562 save = count_data_pages();
1563 if (alloc_normal >= save) {
1564 to_free_normal = alloc_normal - save;
1565 save = 0;
1566 } else {
1567 to_free_normal = 0;
1568 save -= alloc_normal;
1569 }
1570 save += count_highmem_pages();
1571 if (alloc_highmem >= save) {
1572 to_free_highmem = alloc_highmem - save;
64a473cb
RW
1573 } else {
1574 to_free_highmem = 0;
4d4cf23c
RW
1575 save -= alloc_highmem;
1576 if (to_free_normal > save)
1577 to_free_normal -= save;
1578 else
1579 to_free_normal = 0;
64a473cb 1580 }
a64fc82c 1581 free = to_free_normal + to_free_highmem;
64a473cb
RW
1582
1583 memory_bm_position_reset(&copy_bm);
1584
a9c9b442 1585 while (to_free_normal > 0 || to_free_highmem > 0) {
64a473cb
RW
1586 unsigned long pfn = memory_bm_next_pfn(&copy_bm);
1587 struct page *page = pfn_to_page(pfn);
1588
1589 if (PageHighMem(page)) {
1590 if (!to_free_highmem)
1591 continue;
1592 to_free_highmem--;
1593 alloc_highmem--;
1594 } else {
1595 if (!to_free_normal)
1596 continue;
1597 to_free_normal--;
1598 alloc_normal--;
1599 }
1600 memory_bm_clear_bit(&copy_bm, pfn);
1601 swsusp_unset_page_forbidden(page);
1602 swsusp_unset_page_free(page);
1603 __free_page(page);
1604 }
a64fc82c
WK
1605
1606 return free;
64a473cb
RW
1607}
1608
ef4aede3 1609/**
ef96f639 1610 * minimum_image_size - Estimate the minimum acceptable size of an image.
ef4aede3
RW
1611 * @saveable: Number of saveable pages in the system.
1612 *
1613 * We want to avoid attempting to free too much memory too hard, so estimate the
1614 * minimum acceptable size of a hibernation image to use as the lower limit for
1615 * preallocating memory.
1616 *
1617 * We assume that the minimum image size should be proportional to
1618 *
1619 * [number of saveable pages] - [number of pages that can be freed in theory]
1620 *
1621 * where the second term is the sum of (1) reclaimable slab pages, (2) active
4d434820 1622 * and (3) inactive anonymous pages, (4) active and (5) inactive file pages,
ef4aede3
RW
1623 * minus mapped file pages.
1624 */
1625static unsigned long minimum_image_size(unsigned long saveable)
1626{
1627 unsigned long size;
1628
1629 size = global_page_state(NR_SLAB_RECLAIMABLE)
599d0c95
MG
1630 + global_node_page_state(NR_ACTIVE_ANON)
1631 + global_node_page_state(NR_INACTIVE_ANON)
1632 + global_node_page_state(NR_ACTIVE_FILE)
1633 + global_node_page_state(NR_INACTIVE_FILE)
1634 - global_node_page_state(NR_FILE_MAPPED);
ef4aede3
RW
1635
1636 return saveable <= size ? 0 : saveable - size;
1637}
1638
64a473cb 1639/**
ef96f639 1640 * hibernate_preallocate_memory - Preallocate memory for hibernation image.
4bb33435
RW
1641 *
1642 * To create a hibernation image it is necessary to make a copy of every page
1643 * frame in use. We also need a number of page frames to be free during
1644 * hibernation for allocations made while saving the image and for device
1645 * drivers, in case they need to allocate memory from their hibernation
ddeb6487
RW
1646 * callbacks (these two numbers are given by PAGES_FOR_IO (which is a rough
1647 * estimate) and reserverd_size divided by PAGE_SIZE (which is tunable through
1648 * /sys/power/reserved_size, respectively). To make this happen, we compute the
1649 * total number of available page frames and allocate at least
4bb33435 1650 *
ddeb6487
RW
1651 * ([page frames total] + PAGES_FOR_IO + [metadata pages]) / 2
1652 * + 2 * DIV_ROUND_UP(reserved_size, PAGE_SIZE)
4bb33435
RW
1653 *
1654 * of them, which corresponds to the maximum size of a hibernation image.
1655 *
1656 * If image_size is set below the number following from the above formula,
1657 * the preallocation of memory is continued until the total number of saveable
ef4aede3
RW
1658 * pages in the system is below the requested image size or the minimum
1659 * acceptable image size returned by minimum_image_size(), whichever is greater.
4bb33435 1660 */
64a473cb 1661int hibernate_preallocate_memory(void)
fe419535 1662{
fe419535 1663 struct zone *zone;
4bb33435 1664 unsigned long saveable, size, max_size, count, highmem, pages = 0;
6715045d 1665 unsigned long alloc, save_highmem, pages_highmem, avail_normal;
db597605 1666 ktime_t start, stop;
64a473cb 1667 int error;
fe419535 1668
64a473cb 1669 printk(KERN_INFO "PM: Preallocating image memory... ");
db597605 1670 start = ktime_get();
fe419535 1671
64a473cb
RW
1672 error = memory_bm_create(&orig_bm, GFP_IMAGE, PG_ANY);
1673 if (error)
1674 goto err_out;
1675
1676 error = memory_bm_create(&copy_bm, GFP_IMAGE, PG_ANY);
1677 if (error)
1678 goto err_out;
1679
1680 alloc_normal = 0;
1681 alloc_highmem = 0;
1682
4bb33435 1683 /* Count the number of saveable data pages. */
64a473cb 1684 save_highmem = count_highmem_pages();
4bb33435 1685 saveable = count_data_pages();
fe419535 1686
4bb33435
RW
1687 /*
1688 * Compute the total number of page frames we can use (count) and the
1689 * number of pages needed for image metadata (size).
1690 */
1691 count = saveable;
64a473cb
RW
1692 saveable += save_highmem;
1693 highmem = save_highmem;
4bb33435
RW
1694 size = 0;
1695 for_each_populated_zone(zone) {
1696 size += snapshot_additional_pages(zone);
1697 if (is_highmem(zone))
1698 highmem += zone_page_state(zone, NR_FREE_PAGES);
1699 else
1700 count += zone_page_state(zone, NR_FREE_PAGES);
1701 }
6715045d 1702 avail_normal = count;
4bb33435
RW
1703 count += highmem;
1704 count -= totalreserve_pages;
1705
85055dd8
MS
1706 /* Add number of pages required for page keys (s390 only). */
1707 size += page_key_additional_pages(saveable);
1708
4bb33435 1709 /* Compute the maximum number of saveable pages to leave in memory. */
ddeb6487
RW
1710 max_size = (count - (size + PAGES_FOR_IO)) / 2
1711 - 2 * DIV_ROUND_UP(reserved_size, PAGE_SIZE);
266f1a25 1712 /* Compute the desired number of image pages specified by image_size. */
4bb33435
RW
1713 size = DIV_ROUND_UP(image_size, PAGE_SIZE);
1714 if (size > max_size)
1715 size = max_size;
1716 /*
266f1a25
RW
1717 * If the desired number of image pages is at least as large as the
1718 * current number of saveable pages in memory, allocate page frames for
1719 * the image and we're done.
4bb33435 1720 */
64a473cb
RW
1721 if (size >= saveable) {
1722 pages = preallocate_image_highmem(save_highmem);
6715045d 1723 pages += preallocate_image_memory(saveable - pages, avail_normal);
4bb33435 1724 goto out;
64a473cb 1725 }
4bb33435 1726
ef4aede3
RW
1727 /* Estimate the minimum size of the image. */
1728 pages = minimum_image_size(saveable);
6715045d
RW
1729 /*
1730 * To avoid excessive pressure on the normal zone, leave room in it to
1731 * accommodate an image of the minimum size (unless it's already too
1732 * small, in which case don't preallocate pages from it at all).
1733 */
1734 if (avail_normal > pages)
1735 avail_normal -= pages;
1736 else
1737 avail_normal = 0;
ef4aede3
RW
1738 if (size < pages)
1739 size = min_t(unsigned long, pages, max_size);
1740
4bb33435
RW
1741 /*
1742 * Let the memory management subsystem know that we're going to need a
1743 * large number of page frames to allocate and make it free some memory.
1744 * NOTE: If this is not done, performance will be hurt badly in some
1745 * test cases.
1746 */
1747 shrink_all_memory(saveable - size);
1748
1749 /*
1750 * The number of saveable pages in memory was too high, so apply some
1751 * pressure to decrease it. First, make room for the largest possible
1752 * image and fail if that doesn't work. Next, try to decrease the size
ef4aede3
RW
1753 * of the image as much as indicated by 'size' using allocations from
1754 * highmem and non-highmem zones separately.
4bb33435
RW
1755 */
1756 pages_highmem = preallocate_image_highmem(highmem / 2);
fd432b9f
AL
1757 alloc = count - max_size;
1758 if (alloc > pages_highmem)
1759 alloc -= pages_highmem;
1760 else
1761 alloc = 0;
6715045d
RW
1762 pages = preallocate_image_memory(alloc, avail_normal);
1763 if (pages < alloc) {
1764 /* We have exhausted non-highmem pages, try highmem. */
1765 alloc -= pages;
1766 pages += pages_highmem;
1767 pages_highmem = preallocate_image_highmem(alloc);
1768 if (pages_highmem < alloc)
1769 goto err_out;
1770 pages += pages_highmem;
1771 /*
1772 * size is the desired number of saveable pages to leave in
1773 * memory, so try to preallocate (all memory - size) pages.
1774 */
1775 alloc = (count - pages) - size;
1776 pages += preallocate_image_highmem(alloc);
1777 } else {
1778 /*
1779 * There are approximately max_size saveable pages at this point
1780 * and we want to reduce this number down to size.
1781 */
1782 alloc = max_size - size;
1783 size = preallocate_highmem_fraction(alloc, highmem, count);
1784 pages_highmem += size;
1785 alloc -= size;
1786 size = preallocate_image_memory(alloc, avail_normal);
1787 pages_highmem += preallocate_image_highmem(alloc - size);
1788 pages += pages_highmem + size;
1789 }
4bb33435 1790
64a473cb
RW
1791 /*
1792 * We only need as many page frames for the image as there are saveable
1793 * pages in memory, but we have allocated more. Release the excessive
1794 * ones now.
1795 */
a64fc82c 1796 pages -= free_unnecessary_pages();
4bb33435
RW
1797
1798 out:
db597605 1799 stop = ktime_get();
64a473cb 1800 printk(KERN_CONT "done (allocated %lu pages)\n", pages);
db597605 1801 swsusp_show_speed(start, stop, pages, "Allocated");
fe419535
RW
1802
1803 return 0;
64a473cb
RW
1804
1805 err_out:
1806 printk(KERN_CONT "\n");
1807 swsusp_free();
1808 return -ENOMEM;
fe419535
RW
1809}
1810
8357376d
RW
1811#ifdef CONFIG_HIGHMEM
1812/**
ef96f639
RW
1813 * count_pages_for_highmem - Count non-highmem pages needed for copying highmem.
1814 *
1815 * Compute the number of non-highmem pages that will be necessary for creating
1816 * copies of highmem pages.
1817 */
8357376d
RW
1818static unsigned int count_pages_for_highmem(unsigned int nr_highmem)
1819{
64a473cb 1820 unsigned int free_highmem = count_free_highmem_pages() + alloc_highmem;
8357376d
RW
1821
1822 if (free_highmem >= nr_highmem)
1823 nr_highmem = 0;
1824 else
1825 nr_highmem -= free_highmem;
1826
1827 return nr_highmem;
1828}
1829#else
efd5a852 1830static unsigned int count_pages_for_highmem(unsigned int nr_highmem) { return 0; }
8357376d 1831#endif /* CONFIG_HIGHMEM */
25761b6e
RW
1832
1833/**
ef96f639 1834 * enough_free_mem - Check if there is enough free memory for the image.
25761b6e 1835 */
8357376d 1836static int enough_free_mem(unsigned int nr_pages, unsigned int nr_highmem)
25761b6e 1837{
e5e2fa78 1838 struct zone *zone;
64a473cb 1839 unsigned int free = alloc_normal;
e5e2fa78 1840
98e73dc5 1841 for_each_populated_zone(zone)
8357376d 1842 if (!is_highmem(zone))
d23ad423 1843 free += zone_page_state(zone, NR_FREE_PAGES);
940864dd 1844
8357376d 1845 nr_pages += count_pages_for_highmem(nr_highmem);
64a473cb
RW
1846 pr_debug("PM: Normal pages needed: %u + %u, available pages: %u\n",
1847 nr_pages, PAGES_FOR_IO, free);
940864dd 1848
64a473cb 1849 return free > nr_pages + PAGES_FOR_IO;
25761b6e
RW
1850}
1851
8357376d
RW
1852#ifdef CONFIG_HIGHMEM
1853/**
ef96f639
RW
1854 * get_highmem_buffer - Allocate a buffer for highmem pages.
1855 *
1856 * If there are some highmem pages in the hibernation image, we may need a
1857 * buffer to copy them and/or load their data.
8357376d 1858 */
8357376d
RW
1859static inline int get_highmem_buffer(int safe_needed)
1860{
1861 buffer = get_image_page(GFP_ATOMIC | __GFP_COLD, safe_needed);
1862 return buffer ? 0 : -ENOMEM;
1863}
1864
1865/**
ef96f639
RW
1866 * alloc_highmem_image_pages - Allocate some highmem pages for the image.
1867 *
1868 * Try to allocate as many pages as needed, but if the number of free highmem
1869 * pages is less than that, allocate them all.
8357376d 1870 */
efd5a852
RW
1871static inline unsigned int alloc_highmem_pages(struct memory_bitmap *bm,
1872 unsigned int nr_highmem)
8357376d
RW
1873{
1874 unsigned int to_alloc = count_free_highmem_pages();
1875
1876 if (to_alloc > nr_highmem)
1877 to_alloc = nr_highmem;
1878
1879 nr_highmem -= to_alloc;
1880 while (to_alloc-- > 0) {
1881 struct page *page;
1882
d0164adc 1883 page = alloc_image_page(__GFP_HIGHMEM|__GFP_KSWAPD_RECLAIM);
8357376d
RW
1884 memory_bm_set_bit(bm, page_to_pfn(page));
1885 }
1886 return nr_highmem;
1887}
1888#else
1889static inline int get_highmem_buffer(int safe_needed) { return 0; }
1890
efd5a852
RW
1891static inline unsigned int alloc_highmem_pages(struct memory_bitmap *bm,
1892 unsigned int n) { return 0; }
8357376d
RW
1893#endif /* CONFIG_HIGHMEM */
1894
1895/**
ef96f639 1896 * swsusp_alloc - Allocate memory for hibernation image.
8357376d 1897 *
ef96f639
RW
1898 * We first try to allocate as many highmem pages as there are
1899 * saveable highmem pages in the system. If that fails, we allocate
1900 * non-highmem pages for the copies of the remaining highmem ones.
8357376d 1901 *
ef96f639
RW
1902 * In this approach it is likely that the copies of highmem pages will
1903 * also be located in the high memory, because of the way in which
1904 * copy_data_pages() works.
8357376d 1905 */
efd5a852
RW
1906static int swsusp_alloc(struct memory_bitmap *orig_bm,
1907 struct memory_bitmap *copy_bm,
1908 unsigned int nr_pages, unsigned int nr_highmem)
054bd4c1 1909{
8357376d 1910 if (nr_highmem > 0) {
2e725a06 1911 if (get_highmem_buffer(PG_ANY))
64a473cb
RW
1912 goto err_out;
1913 if (nr_highmem > alloc_highmem) {
1914 nr_highmem -= alloc_highmem;
1915 nr_pages += alloc_highmem_pages(copy_bm, nr_highmem);
1916 }
8357376d 1917 }
64a473cb
RW
1918 if (nr_pages > alloc_normal) {
1919 nr_pages -= alloc_normal;
1920 while (nr_pages-- > 0) {
1921 struct page *page;
1922
1923 page = alloc_image_page(GFP_ATOMIC | __GFP_COLD);
1924 if (!page)
1925 goto err_out;
1926 memory_bm_set_bit(copy_bm, page_to_pfn(page));
1927 }
25761b6e 1928 }
64a473cb 1929
b788db79 1930 return 0;
25761b6e 1931
64a473cb 1932 err_out:
b788db79 1933 swsusp_free();
2e725a06 1934 return -ENOMEM;
25761b6e
RW
1935}
1936
722a9f92 1937asmlinkage __visible int swsusp_save(void)
25761b6e 1938{
8357376d 1939 unsigned int nr_pages, nr_highmem;
25761b6e 1940
07c3bb57 1941 printk(KERN_INFO "PM: Creating hibernation image:\n");
25761b6e 1942
9f8f2172 1943 drain_local_pages(NULL);
a0f49651 1944 nr_pages = count_data_pages();
8357376d 1945 nr_highmem = count_highmem_pages();
23976728 1946 printk(KERN_INFO "PM: Need to copy %u pages\n", nr_pages + nr_highmem);
25761b6e 1947
8357376d 1948 if (!enough_free_mem(nr_pages, nr_highmem)) {
23976728 1949 printk(KERN_ERR "PM: Not enough free memory\n");
25761b6e
RW
1950 return -ENOMEM;
1951 }
1952
8357376d 1953 if (swsusp_alloc(&orig_bm, &copy_bm, nr_pages, nr_highmem)) {
23976728 1954 printk(KERN_ERR "PM: Memory allocation failed\n");
a0f49651 1955 return -ENOMEM;
8357376d 1956 }
25761b6e 1957
ef96f639
RW
1958 /*
1959 * During allocating of suspend pagedir, new cold pages may appear.
25761b6e
RW
1960 * Kill them.
1961 */
9f8f2172 1962 drain_local_pages(NULL);
b788db79 1963 copy_data_pages(&copy_bm, &orig_bm);
25761b6e
RW
1964
1965 /*
1966 * End of critical section. From now on, we can write to memory,
1967 * but we should not touch disk. This specially means we must _not_
1968 * touch swap space! Except we must write out our image of course.
1969 */
1970
8357376d 1971 nr_pages += nr_highmem;
a0f49651 1972 nr_copy_pages = nr_pages;
8357376d 1973 nr_meta_pages = DIV_ROUND_UP(nr_pages * sizeof(long), PAGE_SIZE);
a0f49651 1974
23976728
RW
1975 printk(KERN_INFO "PM: Hibernation image created (%d pages copied)\n",
1976 nr_pages);
8357376d 1977
25761b6e
RW
1978 return 0;
1979}
f577eb30 1980
d307c4a8
RW
1981#ifndef CONFIG_ARCH_HIBERNATION_HEADER
1982static int init_header_complete(struct swsusp_info *info)
f577eb30 1983{
d307c4a8 1984 memcpy(&info->uts, init_utsname(), sizeof(struct new_utsname));
f577eb30 1985 info->version_code = LINUX_VERSION_CODE;
d307c4a8
RW
1986 return 0;
1987}
1988
1989static char *check_image_kernel(struct swsusp_info *info)
1990{
1991 if (info->version_code != LINUX_VERSION_CODE)
1992 return "kernel version";
1993 if (strcmp(info->uts.sysname,init_utsname()->sysname))
1994 return "system type";
1995 if (strcmp(info->uts.release,init_utsname()->release))
1996 return "kernel release";
1997 if (strcmp(info->uts.version,init_utsname()->version))
1998 return "version";
1999 if (strcmp(info->uts.machine,init_utsname()->machine))
2000 return "machine";
2001 return NULL;
2002}
2003#endif /* CONFIG_ARCH_HIBERNATION_HEADER */
2004
af508b34
RW
2005unsigned long snapshot_get_image_size(void)
2006{
2007 return nr_copy_pages + nr_meta_pages + 1;
2008}
2009
d307c4a8
RW
2010static int init_header(struct swsusp_info *info)
2011{
2012 memset(info, 0, sizeof(struct swsusp_info));
0ed5fd13 2013 info->num_physpages = get_num_physpages();
f577eb30 2014 info->image_pages = nr_copy_pages;
af508b34 2015 info->pages = snapshot_get_image_size();
6e1819d6
RW
2016 info->size = info->pages;
2017 info->size <<= PAGE_SHIFT;
d307c4a8 2018 return init_header_complete(info);
f577eb30
RW
2019}
2020
2021/**
ef96f639
RW
2022 * pack_pfns - Prepare PFNs for saving.
2023 * @bm: Memory bitmap.
2024 * @buf: Memory buffer to store the PFNs in.
2025 *
2026 * PFNs corresponding to set bits in @bm are stored in the area of memory
2027 * pointed to by @buf (1 page at a time).
f577eb30 2028 */
efd5a852 2029static inline void pack_pfns(unsigned long *buf, struct memory_bitmap *bm)
f577eb30
RW
2030{
2031 int j;
2032
b788db79 2033 for (j = 0; j < PAGE_SIZE / sizeof(long); j++) {
940864dd
RW
2034 buf[j] = memory_bm_next_pfn(bm);
2035 if (unlikely(buf[j] == BM_END_OF_MAP))
b788db79 2036 break;
85055dd8
MS
2037 /* Save page key for data page (s390 only). */
2038 page_key_read(buf + j);
f577eb30 2039 }
f577eb30
RW
2040}
2041
2042/**
ef96f639
RW
2043 * snapshot_read_next - Get the address to read the next image page from.
2044 * @handle: Snapshot handle to be used for the reading.
f577eb30 2045 *
ef96f639
RW
2046 * On the first call, @handle should point to a zeroed snapshot_handle
2047 * structure. The structure gets populated then and a pointer to it should be
2048 * passed to this function every next time.
f577eb30 2049 *
ef96f639
RW
2050 * On success, the function returns a positive number. Then, the caller
2051 * is allowed to read up to the returned number of bytes from the memory
2052 * location computed by the data_of() macro.
f577eb30 2053 *
ef96f639
RW
2054 * The function returns 0 to indicate the end of the data stream condition,
2055 * and negative numbers are returned on errors. If that happens, the structure
2056 * pointed to by @handle is not updated and should not be used any more.
f577eb30 2057 */
d3c1b24c 2058int snapshot_read_next(struct snapshot_handle *handle)
f577eb30 2059{
fb13a28b 2060 if (handle->cur > nr_meta_pages + nr_copy_pages)
f577eb30 2061 return 0;
b788db79 2062
f577eb30
RW
2063 if (!buffer) {
2064 /* This makes the buffer be freed by swsusp_free() */
8357376d 2065 buffer = get_image_page(GFP_ATOMIC, PG_ANY);
f577eb30
RW
2066 if (!buffer)
2067 return -ENOMEM;
2068 }
d3c1b24c 2069 if (!handle->cur) {
d307c4a8
RW
2070 int error;
2071
2072 error = init_header((struct swsusp_info *)buffer);
2073 if (error)
2074 return error;
f577eb30 2075 handle->buffer = buffer;
b788db79
RW
2076 memory_bm_position_reset(&orig_bm);
2077 memory_bm_position_reset(&copy_bm);
d3c1b24c 2078 } else if (handle->cur <= nr_meta_pages) {
3ecb01df 2079 clear_page(buffer);
d3c1b24c
JS
2080 pack_pfns(buffer, &orig_bm);
2081 } else {
2082 struct page *page;
b788db79 2083
d3c1b24c
JS
2084 page = pfn_to_page(memory_bm_next_pfn(&copy_bm));
2085 if (PageHighMem(page)) {
ef96f639
RW
2086 /*
2087 * Highmem pages are copied to the buffer,
d3c1b24c
JS
2088 * because we can't return with a kmapped
2089 * highmem page (we may not be called again).
2090 */
2091 void *kaddr;
8357376d 2092
0de9a1e2 2093 kaddr = kmap_atomic(page);
3ecb01df 2094 copy_page(buffer, kaddr);
0de9a1e2 2095 kunmap_atomic(kaddr);
d3c1b24c
JS
2096 handle->buffer = buffer;
2097 } else {
2098 handle->buffer = page_address(page);
f577eb30 2099 }
f577eb30 2100 }
d3c1b24c
JS
2101 handle->cur++;
2102 return PAGE_SIZE;
f577eb30
RW
2103}
2104
6dbecfd3
RW
2105static void duplicate_memory_bitmap(struct memory_bitmap *dst,
2106 struct memory_bitmap *src)
2107{
2108 unsigned long pfn;
2109
2110 memory_bm_position_reset(src);
2111 pfn = memory_bm_next_pfn(src);
2112 while (pfn != BM_END_OF_MAP) {
2113 memory_bm_set_bit(dst, pfn);
2114 pfn = memory_bm_next_pfn(src);
2115 }
2116}
2117
f577eb30 2118/**
ef96f639
RW
2119 * mark_unsafe_pages - Mark pages that were used before hibernation.
2120 *
2121 * Mark the pages that cannot be used for storing the image during restoration,
2122 * because they conflict with the pages that had been used before hibernation.
f577eb30 2123 */
6dbecfd3 2124static void mark_unsafe_pages(struct memory_bitmap *bm)
f577eb30 2125{
6dbecfd3 2126 unsigned long pfn;
f577eb30 2127
6dbecfd3
RW
2128 /* Clear the "free"/"unsafe" bit for all PFNs */
2129 memory_bm_position_reset(free_pages_map);
2130 pfn = memory_bm_next_pfn(free_pages_map);
2131 while (pfn != BM_END_OF_MAP) {
2132 memory_bm_clear_current(free_pages_map);
2133 pfn = memory_bm_next_pfn(free_pages_map);
f577eb30
RW
2134 }
2135
6dbecfd3
RW
2136 /* Mark pages that correspond to the "original" PFNs as "unsafe" */
2137 duplicate_memory_bitmap(free_pages_map, bm);
f577eb30 2138
940864dd 2139 allocated_unsafe_pages = 0;
f577eb30
RW
2140}
2141
d307c4a8 2142static int check_header(struct swsusp_info *info)
f577eb30 2143{
d307c4a8 2144 char *reason;
f577eb30 2145
d307c4a8 2146 reason = check_image_kernel(info);
0ed5fd13 2147 if (!reason && info->num_physpages != get_num_physpages())
f577eb30 2148 reason = "memory size";
f577eb30 2149 if (reason) {
23976728 2150 printk(KERN_ERR "PM: Image mismatch: %s\n", reason);
f577eb30
RW
2151 return -EPERM;
2152 }
2153 return 0;
2154}
2155
2156/**
ef96f639 2157 * load header - Check the image header and copy the data from it.
f577eb30 2158 */
efd5a852 2159static int load_header(struct swsusp_info *info)
f577eb30
RW
2160{
2161 int error;
f577eb30 2162
940864dd 2163 restore_pblist = NULL;
f577eb30
RW
2164 error = check_header(info);
2165 if (!error) {
f577eb30
RW
2166 nr_copy_pages = info->image_pages;
2167 nr_meta_pages = info->pages - info->image_pages - 1;
2168 }
2169 return error;
2170}
2171
2172/**
ef96f639
RW
2173 * unpack_orig_pfns - Set bits corresponding to given PFNs in a memory bitmap.
2174 * @bm: Memory bitmap.
2175 * @buf: Area of memory containing the PFNs.
2176 *
2177 * For each element of the array pointed to by @buf (1 page at a time), set the
2178 * corresponding bit in @bm.
f577eb30 2179 */
69643279 2180static int unpack_orig_pfns(unsigned long *buf, struct memory_bitmap *bm)
f577eb30
RW
2181{
2182 int j;
2183
940864dd
RW
2184 for (j = 0; j < PAGE_SIZE / sizeof(long); j++) {
2185 if (unlikely(buf[j] == BM_END_OF_MAP))
2186 break;
2187
85055dd8
MS
2188 /* Extract and buffer page key for data page (s390 only). */
2189 page_key_memorize(buf + j);
2190
6dbecfd3 2191 if (pfn_valid(buf[j]) && memory_bm_pfn_present(bm, buf[j]))
69643279
RW
2192 memory_bm_set_bit(bm, buf[j]);
2193 else
2194 return -EFAULT;
f577eb30 2195 }
69643279
RW
2196
2197 return 0;
f577eb30
RW
2198}
2199
8357376d 2200#ifdef CONFIG_HIGHMEM
ef96f639
RW
2201/*
2202 * struct highmem_pbe is used for creating the list of highmem pages that
8357376d
RW
2203 * should be restored atomically during the resume from disk, because the page
2204 * frames they have occupied before the suspend are in use.
2205 */
2206struct highmem_pbe {
2207 struct page *copy_page; /* data is here now */
2208 struct page *orig_page; /* data was here before the suspend */
2209 struct highmem_pbe *next;
2210};
2211
ef96f639
RW
2212/*
2213 * List of highmem PBEs needed for restoring the highmem pages that were
8357376d
RW
2214 * allocated before the suspend and included in the suspend image, but have
2215 * also been allocated by the "resume" kernel, so their contents cannot be
2216 * written directly to their "original" page frames.
2217 */
2218static struct highmem_pbe *highmem_pblist;
2219
2220/**
ef96f639
RW
2221 * count_highmem_image_pages - Compute the number of highmem pages in the image.
2222 * @bm: Memory bitmap.
2223 *
2224 * The bits in @bm that correspond to image pages are assumed to be set.
8357376d 2225 */
8357376d
RW
2226static unsigned int count_highmem_image_pages(struct memory_bitmap *bm)
2227{
2228 unsigned long pfn;
2229 unsigned int cnt = 0;
2230
2231 memory_bm_position_reset(bm);
2232 pfn = memory_bm_next_pfn(bm);
2233 while (pfn != BM_END_OF_MAP) {
2234 if (PageHighMem(pfn_to_page(pfn)))
2235 cnt++;
2236
2237 pfn = memory_bm_next_pfn(bm);
2238 }
2239 return cnt;
2240}
2241
8357376d
RW
2242static unsigned int safe_highmem_pages;
2243
2244static struct memory_bitmap *safe_highmem_bm;
2245
ef96f639
RW
2246/**
2247 * prepare_highmem_image - Allocate memory for loading highmem data from image.
2248 * @bm: Pointer to an uninitialized memory bitmap structure.
2249 * @nr_highmem_p: Pointer to the number of highmem image pages.
2250 *
2251 * Try to allocate as many highmem pages as there are highmem image pages
2252 * (@nr_highmem_p points to the variable containing the number of highmem image
2253 * pages). The pages that are "safe" (ie. will not be overwritten when the
2254 * hibernation image is restored entirely) have the corresponding bits set in
2255 * @bm (it must be unitialized).
2256 *
2257 * NOTE: This function should not be called if there are no highmem image pages.
2258 */
efd5a852
RW
2259static int prepare_highmem_image(struct memory_bitmap *bm,
2260 unsigned int *nr_highmem_p)
8357376d
RW
2261{
2262 unsigned int to_alloc;
2263
2264 if (memory_bm_create(bm, GFP_ATOMIC, PG_SAFE))
2265 return -ENOMEM;
2266
2267 if (get_highmem_buffer(PG_SAFE))
2268 return -ENOMEM;
2269
2270 to_alloc = count_free_highmem_pages();
2271 if (to_alloc > *nr_highmem_p)
2272 to_alloc = *nr_highmem_p;
2273 else
2274 *nr_highmem_p = to_alloc;
2275
2276 safe_highmem_pages = 0;
2277 while (to_alloc-- > 0) {
2278 struct page *page;
2279
2280 page = alloc_page(__GFP_HIGHMEM);
7be98234 2281 if (!swsusp_page_is_free(page)) {
8357376d
RW
2282 /* The page is "safe", set its bit the bitmap */
2283 memory_bm_set_bit(bm, page_to_pfn(page));
2284 safe_highmem_pages++;
2285 }
2286 /* Mark the page as allocated */
7be98234
RW
2287 swsusp_set_page_forbidden(page);
2288 swsusp_set_page_free(page);
8357376d
RW
2289 }
2290 memory_bm_position_reset(bm);
2291 safe_highmem_bm = bm;
2292 return 0;
2293}
2294
ef96f639
RW
2295static struct page *last_highmem_page;
2296
8357376d 2297/**
ef96f639
RW
2298 * get_highmem_page_buffer - Prepare a buffer to store a highmem image page.
2299 *
2300 * For a given highmem image page get a buffer that suspend_write_next() should
2301 * return to its caller to write to.
8357376d 2302 *
ef96f639
RW
2303 * If the page is to be saved to its "original" page frame or a copy of
2304 * the page is to be made in the highmem, @buffer is returned. Otherwise,
2305 * the copy of the page is to be made in normal memory, so the address of
2306 * the copy is returned.
8357376d 2307 *
ef96f639
RW
2308 * If @buffer is returned, the caller of suspend_write_next() will write
2309 * the page's contents to @buffer, so they will have to be copied to the
2310 * right location on the next call to suspend_write_next() and it is done
2311 * with the help of copy_last_highmem_page(). For this purpose, if
2312 * @buffer is returned, @last_highmem_page is set to the page to which
2313 * the data will have to be copied from @buffer.
8357376d 2314 */
efd5a852
RW
2315static void *get_highmem_page_buffer(struct page *page,
2316 struct chain_allocator *ca)
8357376d
RW
2317{
2318 struct highmem_pbe *pbe;
2319 void *kaddr;
2320
7be98234 2321 if (swsusp_page_is_forbidden(page) && swsusp_page_is_free(page)) {
ef96f639
RW
2322 /*
2323 * We have allocated the "original" page frame and we can
8357376d
RW
2324 * use it directly to store the loaded page.
2325 */
2326 last_highmem_page = page;
2327 return buffer;
2328 }
ef96f639
RW
2329 /*
2330 * The "original" page frame has not been allocated and we have to
8357376d
RW
2331 * use a "safe" page frame to store the loaded page.
2332 */
2333 pbe = chain_alloc(ca, sizeof(struct highmem_pbe));
2334 if (!pbe) {
2335 swsusp_free();
69643279 2336 return ERR_PTR(-ENOMEM);
8357376d
RW
2337 }
2338 pbe->orig_page = page;
2339 if (safe_highmem_pages > 0) {
2340 struct page *tmp;
2341
2342 /* Copy of the page will be stored in high memory */
2343 kaddr = buffer;
2344 tmp = pfn_to_page(memory_bm_next_pfn(safe_highmem_bm));
2345 safe_highmem_pages--;
2346 last_highmem_page = tmp;
2347 pbe->copy_page = tmp;
2348 } else {
2349 /* Copy of the page will be stored in normal memory */
2350 kaddr = safe_pages_list;
2351 safe_pages_list = safe_pages_list->next;
2352 pbe->copy_page = virt_to_page(kaddr);
2353 }
2354 pbe->next = highmem_pblist;
2355 highmem_pblist = pbe;
2356 return kaddr;
2357}
2358
2359/**
ef96f639
RW
2360 * copy_last_highmem_page - Copy most the most recent highmem image page.
2361 *
2362 * Copy the contents of a highmem image from @buffer, where the caller of
2363 * snapshot_write_next() has stored them, to the right location represented by
2364 * @last_highmem_page .
8357376d 2365 */
8357376d
RW
2366static void copy_last_highmem_page(void)
2367{
2368 if (last_highmem_page) {
2369 void *dst;
2370
0de9a1e2 2371 dst = kmap_atomic(last_highmem_page);
3ecb01df 2372 copy_page(dst, buffer);
0de9a1e2 2373 kunmap_atomic(dst);
8357376d
RW
2374 last_highmem_page = NULL;
2375 }
2376}
2377
2378static inline int last_highmem_page_copied(void)
2379{
2380 return !last_highmem_page;
2381}
2382
2383static inline void free_highmem_data(void)
2384{
2385 if (safe_highmem_bm)
2386 memory_bm_free(safe_highmem_bm, PG_UNSAFE_CLEAR);
2387
2388 if (buffer)
2389 free_image_page(buffer, PG_UNSAFE_CLEAR);
2390}
2391#else
efd5a852 2392static unsigned int count_highmem_image_pages(struct memory_bitmap *bm) { return 0; }
8357376d 2393
efd5a852
RW
2394static inline int prepare_highmem_image(struct memory_bitmap *bm,
2395 unsigned int *nr_highmem_p) { return 0; }
8357376d 2396
efd5a852
RW
2397static inline void *get_highmem_page_buffer(struct page *page,
2398 struct chain_allocator *ca)
8357376d 2399{
69643279 2400 return ERR_PTR(-EINVAL);
8357376d
RW
2401}
2402
2403static inline void copy_last_highmem_page(void) {}
2404static inline int last_highmem_page_copied(void) { return 1; }
2405static inline void free_highmem_data(void) {}
2406#endif /* CONFIG_HIGHMEM */
2407
ef96f639
RW
2408#define PBES_PER_LINKED_PAGE (LINKED_PAGE_DATA_SIZE / sizeof(struct pbe))
2409
f577eb30 2410/**
ef96f639
RW
2411 * prepare_image - Make room for loading hibernation image.
2412 * @new_bm: Unitialized memory bitmap structure.
2413 * @bm: Memory bitmap with unsafe pages marked.
2414 *
2415 * Use @bm to mark the pages that will be overwritten in the process of
2416 * restoring the system memory state from the suspend image ("unsafe" pages)
2417 * and allocate memory for the image.
968808b8 2418 *
ef96f639
RW
2419 * The idea is to allocate a new memory bitmap first and then allocate
2420 * as many pages as needed for image data, but without specifying what those
2421 * pages will be used for just yet. Instead, we mark them all as allocated and
2422 * create a lists of "safe" pages to be used later. On systems with high
2423 * memory a list of "safe" highmem pages is created too.
f577eb30 2424 */
efd5a852 2425static int prepare_image(struct memory_bitmap *new_bm, struct memory_bitmap *bm)
f577eb30 2426{
8357376d 2427 unsigned int nr_pages, nr_highmem;
9c744481 2428 struct linked_page *lp;
940864dd 2429 int error;
f577eb30 2430
8357376d
RW
2431 /* If there is no highmem, the buffer will not be necessary */
2432 free_image_page(buffer, PG_UNSAFE_CLEAR);
2433 buffer = NULL;
2434
2435 nr_highmem = count_highmem_image_pages(bm);
6dbecfd3 2436 mark_unsafe_pages(bm);
940864dd
RW
2437
2438 error = memory_bm_create(new_bm, GFP_ATOMIC, PG_SAFE);
2439 if (error)
2440 goto Free;
2441
2442 duplicate_memory_bitmap(new_bm, bm);
2443 memory_bm_free(bm, PG_UNSAFE_KEEP);
8357376d
RW
2444 if (nr_highmem > 0) {
2445 error = prepare_highmem_image(bm, &nr_highmem);
2446 if (error)
2447 goto Free;
2448 }
ef96f639
RW
2449 /*
2450 * Reserve some safe pages for potential later use.
940864dd
RW
2451 *
2452 * NOTE: This way we make sure there will be enough safe pages for the
2453 * chain_alloc() in get_buffer(). It is a bit wasteful, but
2454 * nr_copy_pages cannot be greater than 50% of the memory anyway.
9c744481
RW
2455 *
2456 * nr_copy_pages cannot be less than allocated_unsafe_pages too.
940864dd 2457 */
8357376d 2458 nr_pages = nr_copy_pages - nr_highmem - allocated_unsafe_pages;
940864dd
RW
2459 nr_pages = DIV_ROUND_UP(nr_pages, PBES_PER_LINKED_PAGE);
2460 while (nr_pages > 0) {
8357376d 2461 lp = get_image_page(GFP_ATOMIC, PG_SAFE);
940864dd 2462 if (!lp) {
f577eb30 2463 error = -ENOMEM;
940864dd
RW
2464 goto Free;
2465 }
9c744481
RW
2466 lp->next = safe_pages_list;
2467 safe_pages_list = lp;
940864dd 2468 nr_pages--;
f577eb30 2469 }
940864dd 2470 /* Preallocate memory for the image */
8357376d 2471 nr_pages = nr_copy_pages - nr_highmem - allocated_unsafe_pages;
940864dd
RW
2472 while (nr_pages > 0) {
2473 lp = (struct linked_page *)get_zeroed_page(GFP_ATOMIC);
2474 if (!lp) {
2475 error = -ENOMEM;
2476 goto Free;
2477 }
7be98234 2478 if (!swsusp_page_is_free(virt_to_page(lp))) {
940864dd
RW
2479 /* The page is "safe", add it to the list */
2480 lp->next = safe_pages_list;
2481 safe_pages_list = lp;
968808b8 2482 }
940864dd 2483 /* Mark the page as allocated */
7be98234
RW
2484 swsusp_set_page_forbidden(virt_to_page(lp));
2485 swsusp_set_page_free(virt_to_page(lp));
940864dd 2486 nr_pages--;
968808b8 2487 }
940864dd
RW
2488 return 0;
2489
59a49335 2490 Free:
940864dd 2491 swsusp_free();
f577eb30
RW
2492 return error;
2493}
2494
940864dd 2495/**
ef96f639
RW
2496 * get_buffer - Get the address to store the next image data page.
2497 *
2498 * Get the address that snapshot_write_next() should return to its caller to
2499 * write to.
940864dd 2500 */
940864dd 2501static void *get_buffer(struct memory_bitmap *bm, struct chain_allocator *ca)
968808b8 2502{
940864dd 2503 struct pbe *pbe;
69643279
RW
2504 struct page *page;
2505 unsigned long pfn = memory_bm_next_pfn(bm);
968808b8 2506
69643279
RW
2507 if (pfn == BM_END_OF_MAP)
2508 return ERR_PTR(-EFAULT);
2509
2510 page = pfn_to_page(pfn);
8357376d
RW
2511 if (PageHighMem(page))
2512 return get_highmem_page_buffer(page, ca);
2513
7be98234 2514 if (swsusp_page_is_forbidden(page) && swsusp_page_is_free(page))
ef96f639
RW
2515 /*
2516 * We have allocated the "original" page frame and we can
940864dd 2517 * use it directly to store the loaded page.
968808b8 2518 */
940864dd
RW
2519 return page_address(page);
2520
ef96f639
RW
2521 /*
2522 * The "original" page frame has not been allocated and we have to
940864dd 2523 * use a "safe" page frame to store the loaded page.
968808b8 2524 */
940864dd
RW
2525 pbe = chain_alloc(ca, sizeof(struct pbe));
2526 if (!pbe) {
2527 swsusp_free();
69643279 2528 return ERR_PTR(-ENOMEM);
940864dd 2529 }
8357376d
RW
2530 pbe->orig_address = page_address(page);
2531 pbe->address = safe_pages_list;
940864dd
RW
2532 safe_pages_list = safe_pages_list->next;
2533 pbe->next = restore_pblist;
2534 restore_pblist = pbe;
8357376d 2535 return pbe->address;
968808b8
RW
2536}
2537
f577eb30 2538/**
ef96f639
RW
2539 * snapshot_write_next - Get the address to store the next image page.
2540 * @handle: Snapshot handle structure to guide the writing.
f577eb30 2541 *
ef96f639
RW
2542 * On the first call, @handle should point to a zeroed snapshot_handle
2543 * structure. The structure gets populated then and a pointer to it should be
2544 * passed to this function every next time.
f577eb30 2545 *
ef96f639
RW
2546 * On success, the function returns a positive number. Then, the caller
2547 * is allowed to write up to the returned number of bytes to the memory
2548 * location computed by the data_of() macro.
f577eb30 2549 *
ef96f639
RW
2550 * The function returns 0 to indicate the "end of file" condition. Negative
2551 * numbers are returned on errors, in which cases the structure pointed to by
2552 * @handle is not updated and should not be used any more.
f577eb30 2553 */
d3c1b24c 2554int snapshot_write_next(struct snapshot_handle *handle)
f577eb30 2555{
940864dd 2556 static struct chain_allocator ca;
f577eb30
RW
2557 int error = 0;
2558
940864dd 2559 /* Check if we have already loaded the entire image */
d3c1b24c 2560 if (handle->cur > 1 && handle->cur > nr_meta_pages + nr_copy_pages)
f577eb30 2561 return 0;
940864dd 2562
d3c1b24c
JS
2563 handle->sync_read = 1;
2564
2565 if (!handle->cur) {
8357376d
RW
2566 if (!buffer)
2567 /* This makes the buffer be freed by swsusp_free() */
2568 buffer = get_image_page(GFP_ATOMIC, PG_ANY);
2569
f577eb30
RW
2570 if (!buffer)
2571 return -ENOMEM;
8357376d 2572
f577eb30 2573 handle->buffer = buffer;
d3c1b24c
JS
2574 } else if (handle->cur == 1) {
2575 error = load_header(buffer);
2576 if (error)
2577 return error;
940864dd 2578
9c744481
RW
2579 safe_pages_list = NULL;
2580
d3c1b24c
JS
2581 error = memory_bm_create(&copy_bm, GFP_ATOMIC, PG_ANY);
2582 if (error)
2583 return error;
2584
85055dd8
MS
2585 /* Allocate buffer for page keys. */
2586 error = page_key_alloc(nr_copy_pages);
2587 if (error)
2588 return error;
2589
4c0b6c10 2590 hibernate_restore_protection_begin();
d3c1b24c
JS
2591 } else if (handle->cur <= nr_meta_pages + 1) {
2592 error = unpack_orig_pfns(buffer, &copy_bm);
2593 if (error)
2594 return error;
940864dd 2595
d3c1b24c
JS
2596 if (handle->cur == nr_meta_pages + 1) {
2597 error = prepare_image(&orig_bm, &copy_bm);
69643279
RW
2598 if (error)
2599 return error;
2600
d3c1b24c
JS
2601 chain_init(&ca, GFP_ATOMIC, PG_SAFE);
2602 memory_bm_position_reset(&orig_bm);
2603 restore_pblist = NULL;
940864dd 2604 handle->buffer = get_buffer(&orig_bm, &ca);
d3c1b24c 2605 handle->sync_read = 0;
69643279
RW
2606 if (IS_ERR(handle->buffer))
2607 return PTR_ERR(handle->buffer);
f577eb30 2608 }
f577eb30 2609 } else {
d3c1b24c 2610 copy_last_highmem_page();
85055dd8
MS
2611 /* Restore page key for data page (s390 only). */
2612 page_key_write(handle->buffer);
4c0b6c10 2613 hibernate_restore_protect_page(handle->buffer);
d3c1b24c
JS
2614 handle->buffer = get_buffer(&orig_bm, &ca);
2615 if (IS_ERR(handle->buffer))
2616 return PTR_ERR(handle->buffer);
2617 if (handle->buffer != buffer)
2618 handle->sync_read = 0;
f577eb30 2619 }
d3c1b24c
JS
2620 handle->cur++;
2621 return PAGE_SIZE;
f577eb30
RW
2622}
2623
8357376d 2624/**
ef96f639
RW
2625 * snapshot_write_finalize - Complete the loading of a hibernation image.
2626 *
2627 * Must be called after the last call to snapshot_write_next() in case the last
2628 * page in the image happens to be a highmem page and its contents should be
2629 * stored in highmem. Additionally, it recycles bitmap memory that's not
2630 * necessary any more.
8357376d 2631 */
8357376d
RW
2632void snapshot_write_finalize(struct snapshot_handle *handle)
2633{
2634 copy_last_highmem_page();
85055dd8
MS
2635 /* Restore page key for data page (s390 only). */
2636 page_key_write(handle->buffer);
2637 page_key_free();
4c0b6c10 2638 hibernate_restore_protect_page(handle->buffer);
307c5971 2639 /* Do that only if we have loaded the image entirely */
d3c1b24c 2640 if (handle->cur > 1 && handle->cur > nr_meta_pages + nr_copy_pages) {
307c5971 2641 memory_bm_recycle(&orig_bm);
8357376d
RW
2642 free_highmem_data();
2643 }
2644}
2645
f577eb30
RW
2646int snapshot_image_loaded(struct snapshot_handle *handle)
2647{
8357376d 2648 return !(!nr_copy_pages || !last_highmem_page_copied() ||
940864dd
RW
2649 handle->cur <= nr_meta_pages + nr_copy_pages);
2650}
2651
8357376d
RW
2652#ifdef CONFIG_HIGHMEM
2653/* Assumes that @buf is ready and points to a "safe" page */
efd5a852
RW
2654static inline void swap_two_pages_data(struct page *p1, struct page *p2,
2655 void *buf)
940864dd 2656{
8357376d
RW
2657 void *kaddr1, *kaddr2;
2658
0de9a1e2
CW
2659 kaddr1 = kmap_atomic(p1);
2660 kaddr2 = kmap_atomic(p2);
3ecb01df
JB
2661 copy_page(buf, kaddr1);
2662 copy_page(kaddr1, kaddr2);
2663 copy_page(kaddr2, buf);
0de9a1e2
CW
2664 kunmap_atomic(kaddr2);
2665 kunmap_atomic(kaddr1);
8357376d
RW
2666}
2667
2668/**
ef96f639
RW
2669 * restore_highmem - Put highmem image pages into their original locations.
2670 *
2671 * For each highmem page that was in use before hibernation and is included in
2672 * the image, and also has been allocated by the "restore" kernel, swap its
2673 * current contents with the previous (ie. "before hibernation") ones.
8357376d 2674 *
ef96f639
RW
2675 * If the restore eventually fails, we can call this function once again and
2676 * restore the highmem state as seen by the restore kernel.
8357376d 2677 */
8357376d
RW
2678int restore_highmem(void)
2679{
2680 struct highmem_pbe *pbe = highmem_pblist;
2681 void *buf;
2682
2683 if (!pbe)
2684 return 0;
2685
2686 buf = get_image_page(GFP_ATOMIC, PG_SAFE);
2687 if (!buf)
2688 return -ENOMEM;
2689
2690 while (pbe) {
2691 swap_two_pages_data(pbe->copy_page, pbe->orig_page, buf);
2692 pbe = pbe->next;
2693 }
2694 free_image_page(buf, PG_UNSAFE_CLEAR);
2695 return 0;
f577eb30 2696}
8357376d 2697#endif /* CONFIG_HIGHMEM */
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