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v3.5.6
   1/*
   2 * linux/kernel/power/swap.c
   3 *
   4 * This file provides functions for reading the suspend image from
   5 * and writing it to a swap partition.
   6 *
   7 * Copyright (C) 1998,2001-2005 Pavel Machek <pavel@ucw.cz>
   8 * Copyright (C) 2006 Rafael J. Wysocki <rjw@sisk.pl>
   9 * Copyright (C) 2010-2012 Bojan Smojver <bojan@rexursive.com>
  10 *
  11 * This file is released under the GPLv2.
  12 *
  13 */
  14
  15#include <linux/module.h>
  16#include <linux/file.h>
  17#include <linux/delay.h>
  18#include <linux/bitops.h>
  19#include <linux/genhd.h>
  20#include <linux/device.h>
  21#include <linux/bio.h>
  22#include <linux/blkdev.h>
  23#include <linux/swap.h>
  24#include <linux/swapops.h>
  25#include <linux/pm.h>
  26#include <linux/slab.h>
  27#include <linux/lzo.h>
  28#include <linux/vmalloc.h>
  29#include <linux/cpumask.h>
  30#include <linux/atomic.h>
  31#include <linux/kthread.h>
  32#include <linux/crc32.h>
 
  33
  34#include "power.h"
  35
  36#define HIBERNATE_SIG	"S1SUSPEND"
  37
  38/*
 
 
 
 
 
 
 
 
  39 *	The swap map is a data structure used for keeping track of each page
  40 *	written to a swap partition.  It consists of many swap_map_page
  41 *	structures that contain each an array of MAP_PAGE_ENTRIES swap entries.
  42 *	These structures are stored on the swap and linked together with the
  43 *	help of the .next_swap member.
  44 *
  45 *	The swap map is created during suspend.  The swap map pages are
  46 *	allocated and populated one at a time, so we only need one memory
  47 *	page to set up the entire structure.
  48 *
  49 *	During resume we pick up all swap_map_page structures into a list.
  50 */
  51
  52#define MAP_PAGE_ENTRIES	(PAGE_SIZE / sizeof(sector_t) - 1)
  53
  54/*
  55 * Number of free pages that are not high.
  56 */
  57static inline unsigned long low_free_pages(void)
  58{
  59	return nr_free_pages() - nr_free_highpages();
  60}
  61
  62/*
  63 * Number of pages required to be kept free while writing the image. Always
  64 * half of all available low pages before the writing starts.
  65 */
  66static inline unsigned long reqd_free_pages(void)
  67{
  68	return low_free_pages() / 2;
  69}
  70
  71struct swap_map_page {
  72	sector_t entries[MAP_PAGE_ENTRIES];
  73	sector_t next_swap;
  74};
  75
  76struct swap_map_page_list {
  77	struct swap_map_page *map;
  78	struct swap_map_page_list *next;
  79};
  80
  81/**
  82 *	The swap_map_handle structure is used for handling swap in
  83 *	a file-alike way
  84 */
  85
  86struct swap_map_handle {
  87	struct swap_map_page *cur;
  88	struct swap_map_page_list *maps;
  89	sector_t cur_swap;
  90	sector_t first_sector;
  91	unsigned int k;
  92	unsigned long reqd_free_pages;
  93	u32 crc32;
  94};
  95
  96struct swsusp_header {
  97	char reserved[PAGE_SIZE - 20 - sizeof(sector_t) - sizeof(int) -
  98	              sizeof(u32)];
  99	u32	crc32;
 100	sector_t image;
 101	unsigned int flags;	/* Flags to pass to the "boot" kernel */
 102	char	orig_sig[10];
 103	char	sig[10];
 104} __attribute__((packed));
 105
 106static struct swsusp_header *swsusp_header;
 107
 108/**
 109 *	The following functions are used for tracing the allocated
 110 *	swap pages, so that they can be freed in case of an error.
 111 */
 112
 113struct swsusp_extent {
 114	struct rb_node node;
 115	unsigned long start;
 116	unsigned long end;
 117};
 118
 119static struct rb_root swsusp_extents = RB_ROOT;
 120
 121static int swsusp_extents_insert(unsigned long swap_offset)
 122{
 123	struct rb_node **new = &(swsusp_extents.rb_node);
 124	struct rb_node *parent = NULL;
 125	struct swsusp_extent *ext;
 126
 127	/* Figure out where to put the new node */
 128	while (*new) {
 129		ext = container_of(*new, struct swsusp_extent, node);
 130		parent = *new;
 131		if (swap_offset < ext->start) {
 132			/* Try to merge */
 133			if (swap_offset == ext->start - 1) {
 134				ext->start--;
 135				return 0;
 136			}
 137			new = &((*new)->rb_left);
 138		} else if (swap_offset > ext->end) {
 139			/* Try to merge */
 140			if (swap_offset == ext->end + 1) {
 141				ext->end++;
 142				return 0;
 143			}
 144			new = &((*new)->rb_right);
 145		} else {
 146			/* It already is in the tree */
 147			return -EINVAL;
 148		}
 149	}
 150	/* Add the new node and rebalance the tree. */
 151	ext = kzalloc(sizeof(struct swsusp_extent), GFP_KERNEL);
 152	if (!ext)
 153		return -ENOMEM;
 154
 155	ext->start = swap_offset;
 156	ext->end = swap_offset;
 157	rb_link_node(&ext->node, parent, new);
 158	rb_insert_color(&ext->node, &swsusp_extents);
 159	return 0;
 160}
 161
 162/**
 163 *	alloc_swapdev_block - allocate a swap page and register that it has
 164 *	been allocated, so that it can be freed in case of an error.
 165 */
 166
 167sector_t alloc_swapdev_block(int swap)
 168{
 169	unsigned long offset;
 170
 171	offset = swp_offset(get_swap_page_of_type(swap));
 172	if (offset) {
 173		if (swsusp_extents_insert(offset))
 174			swap_free(swp_entry(swap, offset));
 175		else
 176			return swapdev_block(swap, offset);
 177	}
 178	return 0;
 179}
 180
 181/**
 182 *	free_all_swap_pages - free swap pages allocated for saving image data.
 183 *	It also frees the extents used to register which swap entries had been
 184 *	allocated.
 185 */
 186
 187void free_all_swap_pages(int swap)
 188{
 189	struct rb_node *node;
 190
 191	while ((node = swsusp_extents.rb_node)) {
 192		struct swsusp_extent *ext;
 193		unsigned long offset;
 194
 195		ext = container_of(node, struct swsusp_extent, node);
 196		rb_erase(node, &swsusp_extents);
 197		for (offset = ext->start; offset <= ext->end; offset++)
 198			swap_free(swp_entry(swap, offset));
 199
 200		kfree(ext);
 201	}
 202}
 203
 204int swsusp_swap_in_use(void)
 205{
 206	return (swsusp_extents.rb_node != NULL);
 207}
 208
 209/*
 210 * General things
 211 */
 212
 213static unsigned short root_swap = 0xffff;
 214struct block_device *hib_resume_bdev;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 215
 216/*
 217 * Saving part
 218 */
 219
 220static int mark_swapfiles(struct swap_map_handle *handle, unsigned int flags)
 221{
 222	int error;
 223
 224	hib_bio_read_page(swsusp_resume_block, swsusp_header, NULL);
 
 225	if (!memcmp("SWAP-SPACE",swsusp_header->sig, 10) ||
 226	    !memcmp("SWAPSPACE2",swsusp_header->sig, 10)) {
 227		memcpy(swsusp_header->orig_sig,swsusp_header->sig, 10);
 228		memcpy(swsusp_header->sig, HIBERNATE_SIG, 10);
 229		swsusp_header->image = handle->first_sector;
 230		swsusp_header->flags = flags;
 231		if (flags & SF_CRC32_MODE)
 232			swsusp_header->crc32 = handle->crc32;
 233		error = hib_bio_write_page(swsusp_resume_block,
 234					swsusp_header, NULL);
 235	} else {
 236		printk(KERN_ERR "PM: Swap header not found!\n");
 237		error = -ENODEV;
 238	}
 239	return error;
 240}
 241
 242/**
 243 *	swsusp_swap_check - check if the resume device is a swap device
 244 *	and get its index (if so)
 245 *
 246 *	This is called before saving image
 247 */
 248static int swsusp_swap_check(void)
 249{
 250	int res;
 251
 252	res = swap_type_of(swsusp_resume_device, swsusp_resume_block,
 253			&hib_resume_bdev);
 254	if (res < 0)
 255		return res;
 256
 257	root_swap = res;
 258	res = blkdev_get(hib_resume_bdev, FMODE_WRITE, NULL);
 259	if (res)
 260		return res;
 261
 262	res = set_blocksize(hib_resume_bdev, PAGE_SIZE);
 263	if (res < 0)
 264		blkdev_put(hib_resume_bdev, FMODE_WRITE);
 265
 
 
 
 
 
 
 266	return res;
 267}
 268
 269/**
 270 *	write_page - Write one page to given swap location.
 271 *	@buf:		Address we're writing.
 272 *	@offset:	Offset of the swap page we're writing to.
 273 *	@bio_chain:	Link the next write BIO here
 274 */
 275
 276static int write_page(void *buf, sector_t offset, struct bio **bio_chain)
 277{
 278	void *src;
 279	int ret;
 280
 281	if (!offset)
 282		return -ENOSPC;
 283
 284	if (bio_chain) {
 285		src = (void *)__get_free_page(__GFP_WAIT | __GFP_NOWARN |
 286		                              __GFP_NORETRY);
 287		if (src) {
 288			copy_page(src, buf);
 289		} else {
 290			ret = hib_wait_on_bio_chain(bio_chain); /* Free pages */
 291			if (ret)
 292				return ret;
 293			src = (void *)__get_free_page(__GFP_WAIT |
 294			                              __GFP_NOWARN |
 295			                              __GFP_NORETRY);
 296			if (src) {
 297				copy_page(src, buf);
 298			} else {
 299				WARN_ON_ONCE(1);
 300				bio_chain = NULL;	/* Go synchronous */
 301				src = buf;
 302			}
 303		}
 304	} else {
 305		src = buf;
 306	}
 307	return hib_bio_write_page(offset, src, bio_chain);
 308}
 309
 310static void release_swap_writer(struct swap_map_handle *handle)
 311{
 312	if (handle->cur)
 313		free_page((unsigned long)handle->cur);
 314	handle->cur = NULL;
 315}
 316
 317static int get_swap_writer(struct swap_map_handle *handle)
 318{
 319	int ret;
 320
 321	ret = swsusp_swap_check();
 322	if (ret) {
 323		if (ret != -ENOSPC)
 324			printk(KERN_ERR "PM: Cannot find swap device, try "
 325					"swapon -a.\n");
 326		return ret;
 327	}
 328	handle->cur = (struct swap_map_page *)get_zeroed_page(GFP_KERNEL);
 329	if (!handle->cur) {
 330		ret = -ENOMEM;
 331		goto err_close;
 332	}
 333	handle->cur_swap = alloc_swapdev_block(root_swap);
 334	if (!handle->cur_swap) {
 335		ret = -ENOSPC;
 336		goto err_rel;
 337	}
 338	handle->k = 0;
 339	handle->reqd_free_pages = reqd_free_pages();
 340	handle->first_sector = handle->cur_swap;
 341	return 0;
 342err_rel:
 343	release_swap_writer(handle);
 344err_close:
 345	swsusp_close(FMODE_WRITE);
 346	return ret;
 347}
 348
 349static int swap_write_page(struct swap_map_handle *handle, void *buf,
 350				struct bio **bio_chain)
 351{
 352	int error = 0;
 353	sector_t offset;
 354
 355	if (!handle->cur)
 356		return -EINVAL;
 357	offset = alloc_swapdev_block(root_swap);
 358	error = write_page(buf, offset, bio_chain);
 359	if (error)
 360		return error;
 361	handle->cur->entries[handle->k++] = offset;
 362	if (handle->k >= MAP_PAGE_ENTRIES) {
 363		offset = alloc_swapdev_block(root_swap);
 364		if (!offset)
 365			return -ENOSPC;
 366		handle->cur->next_swap = offset;
 367		error = write_page(handle->cur, handle->cur_swap, bio_chain);
 368		if (error)
 369			goto out;
 370		clear_page(handle->cur);
 371		handle->cur_swap = offset;
 372		handle->k = 0;
 373
 374		if (bio_chain && low_free_pages() <= handle->reqd_free_pages) {
 375			error = hib_wait_on_bio_chain(bio_chain);
 376			if (error)
 377				goto out;
 378			/*
 379			 * Recalculate the number of required free pages, to
 380			 * make sure we never take more than half.
 381			 */
 382			handle->reqd_free_pages = reqd_free_pages();
 383		}
 384	}
 385 out:
 386	return error;
 387}
 388
 389static int flush_swap_writer(struct swap_map_handle *handle)
 390{
 391	if (handle->cur && handle->cur_swap)
 392		return write_page(handle->cur, handle->cur_swap, NULL);
 393	else
 394		return -EINVAL;
 395}
 396
 397static int swap_writer_finish(struct swap_map_handle *handle,
 398		unsigned int flags, int error)
 399{
 400	if (!error) {
 401		flush_swap_writer(handle);
 402		printk(KERN_INFO "PM: S");
 403		error = mark_swapfiles(handle, flags);
 404		printk("|\n");
 405	}
 406
 407	if (error)
 408		free_all_swap_pages(root_swap);
 409	release_swap_writer(handle);
 410	swsusp_close(FMODE_WRITE);
 411
 412	return error;
 413}
 414
 415/* We need to remember how much compressed data we need to read. */
 416#define LZO_HEADER	sizeof(size_t)
 417
 418/* Number of pages/bytes we'll compress at one time. */
 419#define LZO_UNC_PAGES	32
 420#define LZO_UNC_SIZE	(LZO_UNC_PAGES * PAGE_SIZE)
 421
 422/* Number of pages/bytes we need for compressed data (worst case). */
 423#define LZO_CMP_PAGES	DIV_ROUND_UP(lzo1x_worst_compress(LZO_UNC_SIZE) + \
 424			             LZO_HEADER, PAGE_SIZE)
 425#define LZO_CMP_SIZE	(LZO_CMP_PAGES * PAGE_SIZE)
 426
 427/* Maximum number of threads for compression/decompression. */
 428#define LZO_THREADS	3
 429
 430/* Minimum/maximum number of pages for read buffering. */
 431#define LZO_MIN_RD_PAGES	1024
 432#define LZO_MAX_RD_PAGES	8192
 433
 434
 435/**
 436 *	save_image - save the suspend image data
 437 */
 438
 439static int save_image(struct swap_map_handle *handle,
 440                      struct snapshot_handle *snapshot,
 441                      unsigned int nr_to_write)
 442{
 443	unsigned int m;
 444	int ret;
 445	int nr_pages;
 446	int err2;
 447	struct bio *bio;
 448	struct timeval start;
 449	struct timeval stop;
 
 
 450
 451	printk(KERN_INFO "PM: Saving image data pages (%u pages) ...     ",
 452		nr_to_write);
 453	m = nr_to_write / 100;
 454	if (!m)
 455		m = 1;
 456	nr_pages = 0;
 457	bio = NULL;
 458	do_gettimeofday(&start);
 459	while (1) {
 460		ret = snapshot_read_next(snapshot);
 461		if (ret <= 0)
 462			break;
 463		ret = swap_write_page(handle, data_of(*snapshot), &bio);
 464		if (ret)
 465			break;
 466		if (!(nr_pages % m))
 467			printk(KERN_CONT "\b\b\b\b%3d%%", nr_pages / m);
 
 468		nr_pages++;
 469	}
 470	err2 = hib_wait_on_bio_chain(&bio);
 471	do_gettimeofday(&stop);
 472	if (!ret)
 473		ret = err2;
 474	if (!ret)
 475		printk(KERN_CONT "\b\b\b\bdone\n");
 476	else
 477		printk(KERN_CONT "\n");
 478	swsusp_show_speed(&start, &stop, nr_to_write, "Wrote");
 479	return ret;
 480}
 481
 482/**
 483 * Structure used for CRC32.
 484 */
 485struct crc_data {
 486	struct task_struct *thr;                  /* thread */
 487	atomic_t ready;                           /* ready to start flag */
 488	atomic_t stop;                            /* ready to stop flag */
 489	unsigned run_threads;                     /* nr current threads */
 490	wait_queue_head_t go;                     /* start crc update */
 491	wait_queue_head_t done;                   /* crc update done */
 492	u32 *crc32;                               /* points to handle's crc32 */
 493	size_t *unc_len[LZO_THREADS];             /* uncompressed lengths */
 494	unsigned char *unc[LZO_THREADS];          /* uncompressed data */
 495};
 496
 497/**
 498 * CRC32 update function that runs in its own thread.
 499 */
 500static int crc32_threadfn(void *data)
 501{
 502	struct crc_data *d = data;
 503	unsigned i;
 504
 505	while (1) {
 506		wait_event(d->go, atomic_read(&d->ready) ||
 507		                  kthread_should_stop());
 508		if (kthread_should_stop()) {
 509			d->thr = NULL;
 510			atomic_set(&d->stop, 1);
 511			wake_up(&d->done);
 512			break;
 513		}
 514		atomic_set(&d->ready, 0);
 515
 516		for (i = 0; i < d->run_threads; i++)
 517			*d->crc32 = crc32_le(*d->crc32,
 518			                     d->unc[i], *d->unc_len[i]);
 519		atomic_set(&d->stop, 1);
 520		wake_up(&d->done);
 521	}
 522	return 0;
 523}
 524/**
 525 * Structure used for LZO data compression.
 526 */
 527struct cmp_data {
 528	struct task_struct *thr;                  /* thread */
 529	atomic_t ready;                           /* ready to start flag */
 530	atomic_t stop;                            /* ready to stop flag */
 531	int ret;                                  /* return code */
 532	wait_queue_head_t go;                     /* start compression */
 533	wait_queue_head_t done;                   /* compression done */
 534	size_t unc_len;                           /* uncompressed length */
 535	size_t cmp_len;                           /* compressed length */
 536	unsigned char unc[LZO_UNC_SIZE];          /* uncompressed buffer */
 537	unsigned char cmp[LZO_CMP_SIZE];          /* compressed buffer */
 538	unsigned char wrk[LZO1X_1_MEM_COMPRESS];  /* compression workspace */
 539};
 540
 541/**
 542 * Compression function that runs in its own thread.
 543 */
 544static int lzo_compress_threadfn(void *data)
 545{
 546	struct cmp_data *d = data;
 547
 548	while (1) {
 549		wait_event(d->go, atomic_read(&d->ready) ||
 550		                  kthread_should_stop());
 551		if (kthread_should_stop()) {
 552			d->thr = NULL;
 553			d->ret = -1;
 554			atomic_set(&d->stop, 1);
 555			wake_up(&d->done);
 556			break;
 557		}
 558		atomic_set(&d->ready, 0);
 559
 560		d->ret = lzo1x_1_compress(d->unc, d->unc_len,
 561		                          d->cmp + LZO_HEADER, &d->cmp_len,
 562		                          d->wrk);
 563		atomic_set(&d->stop, 1);
 564		wake_up(&d->done);
 565	}
 566	return 0;
 567}
 568
 569/**
 570 * save_image_lzo - Save the suspend image data compressed with LZO.
 571 * @handle: Swap mam handle to use for saving the image.
 572 * @snapshot: Image to read data from.
 573 * @nr_to_write: Number of pages to save.
 574 */
 575static int save_image_lzo(struct swap_map_handle *handle,
 576                          struct snapshot_handle *snapshot,
 577                          unsigned int nr_to_write)
 578{
 579	unsigned int m;
 580	int ret = 0;
 581	int nr_pages;
 582	int err2;
 583	struct bio *bio;
 584	struct timeval start;
 585	struct timeval stop;
 586	size_t off;
 587	unsigned thr, run_threads, nr_threads;
 588	unsigned char *page = NULL;
 589	struct cmp_data *data = NULL;
 590	struct crc_data *crc = NULL;
 591
 
 
 592	/*
 593	 * We'll limit the number of threads for compression to limit memory
 594	 * footprint.
 595	 */
 596	nr_threads = num_online_cpus() - 1;
 597	nr_threads = clamp_val(nr_threads, 1, LZO_THREADS);
 598
 599	page = (void *)__get_free_page(__GFP_WAIT | __GFP_HIGH);
 600	if (!page) {
 601		printk(KERN_ERR "PM: Failed to allocate LZO page\n");
 602		ret = -ENOMEM;
 603		goto out_clean;
 604	}
 605
 606	data = vmalloc(sizeof(*data) * nr_threads);
 607	if (!data) {
 608		printk(KERN_ERR "PM: Failed to allocate LZO data\n");
 609		ret = -ENOMEM;
 610		goto out_clean;
 611	}
 612	for (thr = 0; thr < nr_threads; thr++)
 613		memset(&data[thr], 0, offsetof(struct cmp_data, go));
 614
 615	crc = kmalloc(sizeof(*crc), GFP_KERNEL);
 616	if (!crc) {
 617		printk(KERN_ERR "PM: Failed to allocate crc\n");
 618		ret = -ENOMEM;
 619		goto out_clean;
 620	}
 621	memset(crc, 0, offsetof(struct crc_data, go));
 622
 623	/*
 624	 * Start the compression threads.
 625	 */
 626	for (thr = 0; thr < nr_threads; thr++) {
 627		init_waitqueue_head(&data[thr].go);
 628		init_waitqueue_head(&data[thr].done);
 629
 630		data[thr].thr = kthread_run(lzo_compress_threadfn,
 631		                            &data[thr],
 632		                            "image_compress/%u", thr);
 633		if (IS_ERR(data[thr].thr)) {
 634			data[thr].thr = NULL;
 635			printk(KERN_ERR
 636			       "PM: Cannot start compression threads\n");
 637			ret = -ENOMEM;
 638			goto out_clean;
 639		}
 640	}
 641
 642	/*
 643	 * Start the CRC32 thread.
 644	 */
 645	init_waitqueue_head(&crc->go);
 646	init_waitqueue_head(&crc->done);
 647
 648	handle->crc32 = 0;
 649	crc->crc32 = &handle->crc32;
 650	for (thr = 0; thr < nr_threads; thr++) {
 651		crc->unc[thr] = data[thr].unc;
 652		crc->unc_len[thr] = &data[thr].unc_len;
 653	}
 654
 655	crc->thr = kthread_run(crc32_threadfn, crc, "image_crc32");
 656	if (IS_ERR(crc->thr)) {
 657		crc->thr = NULL;
 658		printk(KERN_ERR "PM: Cannot start CRC32 thread\n");
 659		ret = -ENOMEM;
 660		goto out_clean;
 661	}
 662
 663	/*
 664	 * Adjust the number of required free pages after all allocations have
 665	 * been done. We don't want to run out of pages when writing.
 666	 */
 667	handle->reqd_free_pages = reqd_free_pages();
 668
 669	printk(KERN_INFO
 670		"PM: Using %u thread(s) for compression.\n"
 671		"PM: Compressing and saving image data (%u pages) ...     ",
 672		nr_threads, nr_to_write);
 673	m = nr_to_write / 100;
 674	if (!m)
 675		m = 1;
 676	nr_pages = 0;
 677	bio = NULL;
 678	do_gettimeofday(&start);
 679	for (;;) {
 680		for (thr = 0; thr < nr_threads; thr++) {
 681			for (off = 0; off < LZO_UNC_SIZE; off += PAGE_SIZE) {
 682				ret = snapshot_read_next(snapshot);
 683				if (ret < 0)
 684					goto out_finish;
 685
 686				if (!ret)
 687					break;
 688
 689				memcpy(data[thr].unc + off,
 690				       data_of(*snapshot), PAGE_SIZE);
 691
 692				if (!(nr_pages % m))
 693					printk(KERN_CONT "\b\b\b\b%3d%%",
 694				               nr_pages / m);
 
 
 695				nr_pages++;
 696			}
 697			if (!off)
 698				break;
 699
 700			data[thr].unc_len = off;
 701
 702			atomic_set(&data[thr].ready, 1);
 703			wake_up(&data[thr].go);
 704		}
 705
 706		if (!thr)
 707			break;
 708
 709		crc->run_threads = thr;
 710		atomic_set(&crc->ready, 1);
 711		wake_up(&crc->go);
 712
 713		for (run_threads = thr, thr = 0; thr < run_threads; thr++) {
 714			wait_event(data[thr].done,
 715			           atomic_read(&data[thr].stop));
 716			atomic_set(&data[thr].stop, 0);
 717
 718			ret = data[thr].ret;
 719
 720			if (ret < 0) {
 721				printk(KERN_ERR "PM: LZO compression failed\n");
 722				goto out_finish;
 723			}
 724
 725			if (unlikely(!data[thr].cmp_len ||
 726			             data[thr].cmp_len >
 727			             lzo1x_worst_compress(data[thr].unc_len))) {
 728				printk(KERN_ERR
 729				       "PM: Invalid LZO compressed length\n");
 730				ret = -1;
 731				goto out_finish;
 732			}
 733
 734			*(size_t *)data[thr].cmp = data[thr].cmp_len;
 735
 736			/*
 737			 * Given we are writing one page at a time to disk, we
 738			 * copy that much from the buffer, although the last
 739			 * bit will likely be smaller than full page. This is
 740			 * OK - we saved the length of the compressed data, so
 741			 * any garbage at the end will be discarded when we
 742			 * read it.
 743			 */
 744			for (off = 0;
 745			     off < LZO_HEADER + data[thr].cmp_len;
 746			     off += PAGE_SIZE) {
 747				memcpy(page, data[thr].cmp + off, PAGE_SIZE);
 748
 749				ret = swap_write_page(handle, page, &bio);
 750				if (ret)
 751					goto out_finish;
 752			}
 753		}
 754
 755		wait_event(crc->done, atomic_read(&crc->stop));
 756		atomic_set(&crc->stop, 0);
 757	}
 758
 759out_finish:
 760	err2 = hib_wait_on_bio_chain(&bio);
 761	do_gettimeofday(&stop);
 762	if (!ret)
 763		ret = err2;
 764	if (!ret) {
 765		printk(KERN_CONT "\b\b\b\bdone\n");
 766	} else {
 767		printk(KERN_CONT "\n");
 768	}
 769	swsusp_show_speed(&start, &stop, nr_to_write, "Wrote");
 770out_clean:
 771	if (crc) {
 772		if (crc->thr)
 773			kthread_stop(crc->thr);
 774		kfree(crc);
 775	}
 776	if (data) {
 777		for (thr = 0; thr < nr_threads; thr++)
 778			if (data[thr].thr)
 779				kthread_stop(data[thr].thr);
 780		vfree(data);
 781	}
 782	if (page) free_page((unsigned long)page);
 783
 784	return ret;
 785}
 786
 787/**
 788 *	enough_swap - Make sure we have enough swap to save the image.
 789 *
 790 *	Returns TRUE or FALSE after checking the total amount of swap
 791 *	space avaiable from the resume partition.
 792 */
 793
 794static int enough_swap(unsigned int nr_pages, unsigned int flags)
 795{
 796	unsigned int free_swap = count_swap_pages(root_swap, 1);
 797	unsigned int required;
 798
 799	pr_debug("PM: Free swap pages: %u\n", free_swap);
 800
 801	required = PAGES_FOR_IO + nr_pages;
 802	return free_swap > required;
 803}
 804
 805/**
 806 *	swsusp_write - Write entire image and metadata.
 807 *	@flags: flags to pass to the "boot" kernel in the image header
 808 *
 809 *	It is important _NOT_ to umount filesystems at this point. We want
 810 *	them synced (in case something goes wrong) but we DO not want to mark
 811 *	filesystem clean: it is not. (And it does not matter, if we resume
 812 *	correctly, we'll mark system clean, anyway.)
 813 */
 814
 815int swsusp_write(unsigned int flags)
 816{
 817	struct swap_map_handle handle;
 818	struct snapshot_handle snapshot;
 819	struct swsusp_info *header;
 820	unsigned long pages;
 821	int error;
 822
 823	pages = snapshot_get_image_size();
 824	error = get_swap_writer(&handle);
 825	if (error) {
 826		printk(KERN_ERR "PM: Cannot get swap writer\n");
 827		return error;
 828	}
 829	if (flags & SF_NOCOMPRESS_MODE) {
 830		if (!enough_swap(pages, flags)) {
 831			printk(KERN_ERR "PM: Not enough free swap\n");
 832			error = -ENOSPC;
 833			goto out_finish;
 834		}
 835	}
 836	memset(&snapshot, 0, sizeof(struct snapshot_handle));
 837	error = snapshot_read_next(&snapshot);
 838	if (error < PAGE_SIZE) {
 839		if (error >= 0)
 840			error = -EFAULT;
 841
 842		goto out_finish;
 843	}
 844	header = (struct swsusp_info *)data_of(snapshot);
 845	error = swap_write_page(&handle, header, NULL);
 846	if (!error) {
 847		error = (flags & SF_NOCOMPRESS_MODE) ?
 848			save_image(&handle, &snapshot, pages - 1) :
 849			save_image_lzo(&handle, &snapshot, pages - 1);
 850	}
 851out_finish:
 852	error = swap_writer_finish(&handle, flags, error);
 853	return error;
 854}
 855
 856/**
 857 *	The following functions allow us to read data using a swap map
 858 *	in a file-alike way
 859 */
 860
 861static void release_swap_reader(struct swap_map_handle *handle)
 862{
 863	struct swap_map_page_list *tmp;
 864
 865	while (handle->maps) {
 866		if (handle->maps->map)
 867			free_page((unsigned long)handle->maps->map);
 868		tmp = handle->maps;
 869		handle->maps = handle->maps->next;
 870		kfree(tmp);
 871	}
 872	handle->cur = NULL;
 873}
 874
 875static int get_swap_reader(struct swap_map_handle *handle,
 876		unsigned int *flags_p)
 877{
 878	int error;
 879	struct swap_map_page_list *tmp, *last;
 880	sector_t offset;
 881
 882	*flags_p = swsusp_header->flags;
 883
 884	if (!swsusp_header->image) /* how can this happen? */
 885		return -EINVAL;
 886
 887	handle->cur = NULL;
 888	last = handle->maps = NULL;
 889	offset = swsusp_header->image;
 890	while (offset) {
 891		tmp = kmalloc(sizeof(*handle->maps), GFP_KERNEL);
 892		if (!tmp) {
 893			release_swap_reader(handle);
 894			return -ENOMEM;
 895		}
 896		memset(tmp, 0, sizeof(*tmp));
 897		if (!handle->maps)
 898			handle->maps = tmp;
 899		if (last)
 900			last->next = tmp;
 901		last = tmp;
 902
 903		tmp->map = (struct swap_map_page *)
 904		           __get_free_page(__GFP_WAIT | __GFP_HIGH);
 905		if (!tmp->map) {
 906			release_swap_reader(handle);
 907			return -ENOMEM;
 908		}
 909
 910		error = hib_bio_read_page(offset, tmp->map, NULL);
 911		if (error) {
 912			release_swap_reader(handle);
 913			return error;
 914		}
 915		offset = tmp->map->next_swap;
 916	}
 917	handle->k = 0;
 918	handle->cur = handle->maps->map;
 919	return 0;
 920}
 921
 922static int swap_read_page(struct swap_map_handle *handle, void *buf,
 923				struct bio **bio_chain)
 924{
 925	sector_t offset;
 926	int error;
 927	struct swap_map_page_list *tmp;
 928
 929	if (!handle->cur)
 930		return -EINVAL;
 931	offset = handle->cur->entries[handle->k];
 932	if (!offset)
 933		return -EFAULT;
 934	error = hib_bio_read_page(offset, buf, bio_chain);
 935	if (error)
 936		return error;
 937	if (++handle->k >= MAP_PAGE_ENTRIES) {
 938		handle->k = 0;
 939		free_page((unsigned long)handle->maps->map);
 940		tmp = handle->maps;
 941		handle->maps = handle->maps->next;
 942		kfree(tmp);
 943		if (!handle->maps)
 944			release_swap_reader(handle);
 945		else
 946			handle->cur = handle->maps->map;
 947	}
 948	return error;
 949}
 950
 951static int swap_reader_finish(struct swap_map_handle *handle)
 952{
 953	release_swap_reader(handle);
 954
 955	return 0;
 956}
 957
 958/**
 959 *	load_image - load the image using the swap map handle
 960 *	@handle and the snapshot handle @snapshot
 961 *	(assume there are @nr_pages pages to load)
 962 */
 963
 964static int load_image(struct swap_map_handle *handle,
 965                      struct snapshot_handle *snapshot,
 966                      unsigned int nr_to_read)
 967{
 968	unsigned int m;
 969	int ret = 0;
 970	struct timeval start;
 971	struct timeval stop;
 972	struct bio *bio;
 973	int err2;
 974	unsigned nr_pages;
 975
 976	printk(KERN_INFO "PM: Loading image data pages (%u pages) ...     ",
 
 
 
 977		nr_to_read);
 978	m = nr_to_read / 100;
 979	if (!m)
 980		m = 1;
 981	nr_pages = 0;
 982	bio = NULL;
 983	do_gettimeofday(&start);
 984	for ( ; ; ) {
 985		ret = snapshot_write_next(snapshot);
 986		if (ret <= 0)
 987			break;
 988		ret = swap_read_page(handle, data_of(*snapshot), &bio);
 989		if (ret)
 990			break;
 991		if (snapshot->sync_read)
 992			ret = hib_wait_on_bio_chain(&bio);
 993		if (ret)
 994			break;
 995		if (!(nr_pages % m))
 996			printk("\b\b\b\b%3d%%", nr_pages / m);
 
 997		nr_pages++;
 998	}
 999	err2 = hib_wait_on_bio_chain(&bio);
1000	do_gettimeofday(&stop);
1001	if (!ret)
1002		ret = err2;
1003	if (!ret) {
1004		printk("\b\b\b\bdone\n");
1005		snapshot_write_finalize(snapshot);
1006		if (!snapshot_image_loaded(snapshot))
1007			ret = -ENODATA;
1008	} else
1009		printk("\n");
1010	swsusp_show_speed(&start, &stop, nr_to_read, "Read");
1011	return ret;
1012}
1013
1014/**
1015 * Structure used for LZO data decompression.
1016 */
1017struct dec_data {
1018	struct task_struct *thr;                  /* thread */
1019	atomic_t ready;                           /* ready to start flag */
1020	atomic_t stop;                            /* ready to stop flag */
1021	int ret;                                  /* return code */
1022	wait_queue_head_t go;                     /* start decompression */
1023	wait_queue_head_t done;                   /* decompression done */
1024	size_t unc_len;                           /* uncompressed length */
1025	size_t cmp_len;                           /* compressed length */
1026	unsigned char unc[LZO_UNC_SIZE];          /* uncompressed buffer */
1027	unsigned char cmp[LZO_CMP_SIZE];          /* compressed buffer */
1028};
1029
1030/**
1031 * Deompression function that runs in its own thread.
1032 */
1033static int lzo_decompress_threadfn(void *data)
1034{
1035	struct dec_data *d = data;
1036
1037	while (1) {
1038		wait_event(d->go, atomic_read(&d->ready) ||
1039		                  kthread_should_stop());
1040		if (kthread_should_stop()) {
1041			d->thr = NULL;
1042			d->ret = -1;
1043			atomic_set(&d->stop, 1);
1044			wake_up(&d->done);
1045			break;
1046		}
1047		atomic_set(&d->ready, 0);
1048
1049		d->unc_len = LZO_UNC_SIZE;
1050		d->ret = lzo1x_decompress_safe(d->cmp + LZO_HEADER, d->cmp_len,
1051		                               d->unc, &d->unc_len);
 
 
 
 
1052		atomic_set(&d->stop, 1);
1053		wake_up(&d->done);
1054	}
1055	return 0;
1056}
1057
1058/**
1059 * load_image_lzo - Load compressed image data and decompress them with LZO.
1060 * @handle: Swap map handle to use for loading data.
1061 * @snapshot: Image to copy uncompressed data into.
1062 * @nr_to_read: Number of pages to load.
1063 */
1064static int load_image_lzo(struct swap_map_handle *handle,
1065                          struct snapshot_handle *snapshot,
1066                          unsigned int nr_to_read)
1067{
1068	unsigned int m;
1069	int ret = 0;
1070	int eof = 0;
1071	struct bio *bio;
1072	struct timeval start;
1073	struct timeval stop;
1074	unsigned nr_pages;
1075	size_t off;
1076	unsigned i, thr, run_threads, nr_threads;
1077	unsigned ring = 0, pg = 0, ring_size = 0,
1078	         have = 0, want, need, asked = 0;
1079	unsigned long read_pages = 0;
1080	unsigned char **page = NULL;
1081	struct dec_data *data = NULL;
1082	struct crc_data *crc = NULL;
1083
 
 
1084	/*
1085	 * We'll limit the number of threads for decompression to limit memory
1086	 * footprint.
1087	 */
1088	nr_threads = num_online_cpus() - 1;
1089	nr_threads = clamp_val(nr_threads, 1, LZO_THREADS);
1090
1091	page = vmalloc(sizeof(*page) * LZO_MAX_RD_PAGES);
1092	if (!page) {
1093		printk(KERN_ERR "PM: Failed to allocate LZO page\n");
1094		ret = -ENOMEM;
1095		goto out_clean;
1096	}
1097
1098	data = vmalloc(sizeof(*data) * nr_threads);
1099	if (!data) {
1100		printk(KERN_ERR "PM: Failed to allocate LZO data\n");
1101		ret = -ENOMEM;
1102		goto out_clean;
1103	}
1104	for (thr = 0; thr < nr_threads; thr++)
1105		memset(&data[thr], 0, offsetof(struct dec_data, go));
1106
1107	crc = kmalloc(sizeof(*crc), GFP_KERNEL);
1108	if (!crc) {
1109		printk(KERN_ERR "PM: Failed to allocate crc\n");
1110		ret = -ENOMEM;
1111		goto out_clean;
1112	}
1113	memset(crc, 0, offsetof(struct crc_data, go));
1114
 
 
1115	/*
1116	 * Start the decompression threads.
1117	 */
1118	for (thr = 0; thr < nr_threads; thr++) {
1119		init_waitqueue_head(&data[thr].go);
1120		init_waitqueue_head(&data[thr].done);
1121
1122		data[thr].thr = kthread_run(lzo_decompress_threadfn,
1123		                            &data[thr],
1124		                            "image_decompress/%u", thr);
1125		if (IS_ERR(data[thr].thr)) {
1126			data[thr].thr = NULL;
1127			printk(KERN_ERR
1128			       "PM: Cannot start decompression threads\n");
1129			ret = -ENOMEM;
1130			goto out_clean;
1131		}
1132	}
1133
1134	/*
1135	 * Start the CRC32 thread.
1136	 */
1137	init_waitqueue_head(&crc->go);
1138	init_waitqueue_head(&crc->done);
1139
1140	handle->crc32 = 0;
1141	crc->crc32 = &handle->crc32;
1142	for (thr = 0; thr < nr_threads; thr++) {
1143		crc->unc[thr] = data[thr].unc;
1144		crc->unc_len[thr] = &data[thr].unc_len;
1145	}
1146
1147	crc->thr = kthread_run(crc32_threadfn, crc, "image_crc32");
1148	if (IS_ERR(crc->thr)) {
1149		crc->thr = NULL;
1150		printk(KERN_ERR "PM: Cannot start CRC32 thread\n");
1151		ret = -ENOMEM;
1152		goto out_clean;
1153	}
1154
1155	/*
1156	 * Set the number of pages for read buffering.
1157	 * This is complete guesswork, because we'll only know the real
1158	 * picture once prepare_image() is called, which is much later on
1159	 * during the image load phase. We'll assume the worst case and
1160	 * say that none of the image pages are from high memory.
1161	 */
1162	if (low_free_pages() > snapshot_get_image_size())
1163		read_pages = (low_free_pages() - snapshot_get_image_size()) / 2;
1164	read_pages = clamp_val(read_pages, LZO_MIN_RD_PAGES, LZO_MAX_RD_PAGES);
1165
1166	for (i = 0; i < read_pages; i++) {
1167		page[i] = (void *)__get_free_page(i < LZO_CMP_PAGES ?
1168		                                  __GFP_WAIT | __GFP_HIGH :
1169		                                  __GFP_WAIT | __GFP_NOWARN |
1170		                                  __GFP_NORETRY);
1171
1172		if (!page[i]) {
1173			if (i < LZO_CMP_PAGES) {
1174				ring_size = i;
1175				printk(KERN_ERR
1176				       "PM: Failed to allocate LZO pages\n");
1177				ret = -ENOMEM;
1178				goto out_clean;
1179			} else {
1180				break;
1181			}
1182		}
1183	}
1184	want = ring_size = i;
1185
1186	printk(KERN_INFO
1187		"PM: Using %u thread(s) for decompression.\n"
1188		"PM: Loading and decompressing image data (%u pages) ...     ",
1189		nr_threads, nr_to_read);
1190	m = nr_to_read / 100;
1191	if (!m)
1192		m = 1;
1193	nr_pages = 0;
1194	bio = NULL;
1195	do_gettimeofday(&start);
1196
1197	ret = snapshot_write_next(snapshot);
1198	if (ret <= 0)
1199		goto out_finish;
1200
1201	for(;;) {
1202		for (i = 0; !eof && i < want; i++) {
1203			ret = swap_read_page(handle, page[ring], &bio);
1204			if (ret) {
1205				/*
1206				 * On real read error, finish. On end of data,
1207				 * set EOF flag and just exit the read loop.
1208				 */
1209				if (handle->cur &&
1210				    handle->cur->entries[handle->k]) {
1211					goto out_finish;
1212				} else {
1213					eof = 1;
1214					break;
1215				}
1216			}
1217			if (++ring >= ring_size)
1218				ring = 0;
1219		}
1220		asked += i;
1221		want -= i;
1222
1223		/*
1224		 * We are out of data, wait for some more.
1225		 */
1226		if (!have) {
1227			if (!asked)
1228				break;
1229
1230			ret = hib_wait_on_bio_chain(&bio);
1231			if (ret)
1232				goto out_finish;
1233			have += asked;
1234			asked = 0;
1235			if (eof)
1236				eof = 2;
1237		}
1238
1239		if (crc->run_threads) {
1240			wait_event(crc->done, atomic_read(&crc->stop));
1241			atomic_set(&crc->stop, 0);
1242			crc->run_threads = 0;
1243		}
1244
1245		for (thr = 0; have && thr < nr_threads; thr++) {
1246			data[thr].cmp_len = *(size_t *)page[pg];
1247			if (unlikely(!data[thr].cmp_len ||
1248			             data[thr].cmp_len >
1249			             lzo1x_worst_compress(LZO_UNC_SIZE))) {
1250				printk(KERN_ERR
1251				       "PM: Invalid LZO compressed length\n");
1252				ret = -1;
1253				goto out_finish;
1254			}
1255
1256			need = DIV_ROUND_UP(data[thr].cmp_len + LZO_HEADER,
1257			                    PAGE_SIZE);
1258			if (need > have) {
1259				if (eof > 1) {
1260					ret = -1;
1261					goto out_finish;
1262				}
1263				break;
1264			}
1265
1266			for (off = 0;
1267			     off < LZO_HEADER + data[thr].cmp_len;
1268			     off += PAGE_SIZE) {
1269				memcpy(data[thr].cmp + off,
1270				       page[pg], PAGE_SIZE);
1271				have--;
1272				want++;
1273				if (++pg >= ring_size)
1274					pg = 0;
1275			}
1276
1277			atomic_set(&data[thr].ready, 1);
1278			wake_up(&data[thr].go);
1279		}
1280
1281		/*
1282		 * Wait for more data while we are decompressing.
1283		 */
1284		if (have < LZO_CMP_PAGES && asked) {
1285			ret = hib_wait_on_bio_chain(&bio);
1286			if (ret)
1287				goto out_finish;
1288			have += asked;
1289			asked = 0;
1290			if (eof)
1291				eof = 2;
1292		}
1293
1294		for (run_threads = thr, thr = 0; thr < run_threads; thr++) {
1295			wait_event(data[thr].done,
1296			           atomic_read(&data[thr].stop));
1297			atomic_set(&data[thr].stop, 0);
1298
1299			ret = data[thr].ret;
1300
1301			if (ret < 0) {
1302				printk(KERN_ERR
1303				       "PM: LZO decompression failed\n");
1304				goto out_finish;
1305			}
1306
1307			if (unlikely(!data[thr].unc_len ||
1308			             data[thr].unc_len > LZO_UNC_SIZE ||
1309			             data[thr].unc_len & (PAGE_SIZE - 1))) {
1310				printk(KERN_ERR
1311				       "PM: Invalid LZO uncompressed length\n");
1312				ret = -1;
1313				goto out_finish;
1314			}
1315
1316			for (off = 0;
1317			     off < data[thr].unc_len; off += PAGE_SIZE) {
1318				memcpy(data_of(*snapshot),
1319				       data[thr].unc + off, PAGE_SIZE);
1320
1321				if (!(nr_pages % m))
1322					printk("\b\b\b\b%3d%%", nr_pages / m);
 
 
 
1323				nr_pages++;
1324
1325				ret = snapshot_write_next(snapshot);
1326				if (ret <= 0) {
1327					crc->run_threads = thr + 1;
1328					atomic_set(&crc->ready, 1);
1329					wake_up(&crc->go);
1330					goto out_finish;
1331				}
1332			}
1333		}
1334
1335		crc->run_threads = thr;
1336		atomic_set(&crc->ready, 1);
1337		wake_up(&crc->go);
1338	}
1339
1340out_finish:
1341	if (crc->run_threads) {
1342		wait_event(crc->done, atomic_read(&crc->stop));
1343		atomic_set(&crc->stop, 0);
1344	}
1345	do_gettimeofday(&stop);
1346	if (!ret) {
1347		printk("\b\b\b\bdone\n");
1348		snapshot_write_finalize(snapshot);
1349		if (!snapshot_image_loaded(snapshot))
1350			ret = -ENODATA;
1351		if (!ret) {
1352			if (swsusp_header->flags & SF_CRC32_MODE) {
1353				if(handle->crc32 != swsusp_header->crc32) {
1354					printk(KERN_ERR
1355					       "PM: Invalid image CRC32!\n");
1356					ret = -ENODATA;
1357				}
1358			}
1359		}
1360	} else
1361		printk("\n");
1362	swsusp_show_speed(&start, &stop, nr_to_read, "Read");
1363out_clean:
1364	for (i = 0; i < ring_size; i++)
1365		free_page((unsigned long)page[i]);
1366	if (crc) {
1367		if (crc->thr)
1368			kthread_stop(crc->thr);
1369		kfree(crc);
1370	}
1371	if (data) {
1372		for (thr = 0; thr < nr_threads; thr++)
1373			if (data[thr].thr)
1374				kthread_stop(data[thr].thr);
1375		vfree(data);
1376	}
1377	if (page) vfree(page);
1378
1379	return ret;
1380}
1381
1382/**
1383 *	swsusp_read - read the hibernation image.
1384 *	@flags_p: flags passed by the "frozen" kernel in the image header should
1385 *		  be written into this memory location
1386 */
1387
1388int swsusp_read(unsigned int *flags_p)
1389{
1390	int error;
1391	struct swap_map_handle handle;
1392	struct snapshot_handle snapshot;
1393	struct swsusp_info *header;
1394
1395	memset(&snapshot, 0, sizeof(struct snapshot_handle));
1396	error = snapshot_write_next(&snapshot);
1397	if (error < PAGE_SIZE)
1398		return error < 0 ? error : -EFAULT;
1399	header = (struct swsusp_info *)data_of(snapshot);
1400	error = get_swap_reader(&handle, flags_p);
1401	if (error)
1402		goto end;
1403	if (!error)
1404		error = swap_read_page(&handle, header, NULL);
1405	if (!error) {
1406		error = (*flags_p & SF_NOCOMPRESS_MODE) ?
1407			load_image(&handle, &snapshot, header->pages - 1) :
1408			load_image_lzo(&handle, &snapshot, header->pages - 1);
1409	}
1410	swap_reader_finish(&handle);
1411end:
1412	if (!error)
1413		pr_debug("PM: Image successfully loaded\n");
1414	else
1415		pr_debug("PM: Error %d resuming\n", error);
1416	return error;
1417}
1418
1419/**
1420 *      swsusp_check - Check for swsusp signature in the resume device
1421 */
1422
1423int swsusp_check(void)
1424{
1425	int error;
1426
1427	hib_resume_bdev = blkdev_get_by_dev(swsusp_resume_device,
1428					    FMODE_READ, NULL);
1429	if (!IS_ERR(hib_resume_bdev)) {
1430		set_blocksize(hib_resume_bdev, PAGE_SIZE);
1431		clear_page(swsusp_header);
1432		error = hib_bio_read_page(swsusp_resume_block,
 
1433					swsusp_header, NULL);
1434		if (error)
1435			goto put;
1436
1437		if (!memcmp(HIBERNATE_SIG, swsusp_header->sig, 10)) {
1438			memcpy(swsusp_header->sig, swsusp_header->orig_sig, 10);
1439			/* Reset swap signature now */
1440			error = hib_bio_write_page(swsusp_resume_block,
 
1441						swsusp_header, NULL);
1442		} else {
1443			error = -EINVAL;
1444		}
1445
1446put:
1447		if (error)
1448			blkdev_put(hib_resume_bdev, FMODE_READ);
1449		else
1450			pr_debug("PM: Image signature found, resuming\n");
1451	} else {
1452		error = PTR_ERR(hib_resume_bdev);
1453	}
1454
1455	if (error)
1456		pr_debug("PM: Image not found (code %d)\n", error);
1457
1458	return error;
1459}
1460
1461/**
1462 *	swsusp_close - close swap device.
1463 */
1464
1465void swsusp_close(fmode_t mode)
1466{
1467	if (IS_ERR(hib_resume_bdev)) {
1468		pr_debug("PM: Image device not initialised\n");
1469		return;
1470	}
1471
1472	blkdev_put(hib_resume_bdev, mode);
1473}
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1474
1475static int swsusp_header_init(void)
1476{
1477	swsusp_header = (struct swsusp_header*) __get_free_page(GFP_KERNEL);
1478	if (!swsusp_header)
1479		panic("Could not allocate memory for swsusp_header\n");
1480	return 0;
1481}
1482
1483core_initcall(swsusp_header_init);
v4.10.11
   1/*
   2 * linux/kernel/power/swap.c
   3 *
   4 * This file provides functions for reading the suspend image from
   5 * and writing it to a swap partition.
   6 *
   7 * Copyright (C) 1998,2001-2005 Pavel Machek <pavel@ucw.cz>
   8 * Copyright (C) 2006 Rafael J. Wysocki <rjw@sisk.pl>
   9 * Copyright (C) 2010-2012 Bojan Smojver <bojan@rexursive.com>
  10 *
  11 * This file is released under the GPLv2.
  12 *
  13 */
  14
  15#include <linux/module.h>
  16#include <linux/file.h>
  17#include <linux/delay.h>
  18#include <linux/bitops.h>
  19#include <linux/genhd.h>
  20#include <linux/device.h>
  21#include <linux/bio.h>
  22#include <linux/blkdev.h>
  23#include <linux/swap.h>
  24#include <linux/swapops.h>
  25#include <linux/pm.h>
  26#include <linux/slab.h>
  27#include <linux/lzo.h>
  28#include <linux/vmalloc.h>
  29#include <linux/cpumask.h>
  30#include <linux/atomic.h>
  31#include <linux/kthread.h>
  32#include <linux/crc32.h>
  33#include <linux/ktime.h>
  34
  35#include "power.h"
  36
  37#define HIBERNATE_SIG	"S1SUSPEND"
  38
  39/*
  40 * When reading an {un,}compressed image, we may restore pages in place,
  41 * in which case some architectures need these pages cleaning before they
  42 * can be executed. We don't know which pages these may be, so clean the lot.
  43 */
  44static bool clean_pages_on_read;
  45static bool clean_pages_on_decompress;
  46
  47/*
  48 *	The swap map is a data structure used for keeping track of each page
  49 *	written to a swap partition.  It consists of many swap_map_page
  50 *	structures that contain each an array of MAP_PAGE_ENTRIES swap entries.
  51 *	These structures are stored on the swap and linked together with the
  52 *	help of the .next_swap member.
  53 *
  54 *	The swap map is created during suspend.  The swap map pages are
  55 *	allocated and populated one at a time, so we only need one memory
  56 *	page to set up the entire structure.
  57 *
  58 *	During resume we pick up all swap_map_page structures into a list.
  59 */
  60
  61#define MAP_PAGE_ENTRIES	(PAGE_SIZE / sizeof(sector_t) - 1)
  62
  63/*
  64 * Number of free pages that are not high.
  65 */
  66static inline unsigned long low_free_pages(void)
  67{
  68	return nr_free_pages() - nr_free_highpages();
  69}
  70
  71/*
  72 * Number of pages required to be kept free while writing the image. Always
  73 * half of all available low pages before the writing starts.
  74 */
  75static inline unsigned long reqd_free_pages(void)
  76{
  77	return low_free_pages() / 2;
  78}
  79
  80struct swap_map_page {
  81	sector_t entries[MAP_PAGE_ENTRIES];
  82	sector_t next_swap;
  83};
  84
  85struct swap_map_page_list {
  86	struct swap_map_page *map;
  87	struct swap_map_page_list *next;
  88};
  89
  90/**
  91 *	The swap_map_handle structure is used for handling swap in
  92 *	a file-alike way
  93 */
  94
  95struct swap_map_handle {
  96	struct swap_map_page *cur;
  97	struct swap_map_page_list *maps;
  98	sector_t cur_swap;
  99	sector_t first_sector;
 100	unsigned int k;
 101	unsigned long reqd_free_pages;
 102	u32 crc32;
 103};
 104
 105struct swsusp_header {
 106	char reserved[PAGE_SIZE - 20 - sizeof(sector_t) - sizeof(int) -
 107	              sizeof(u32)];
 108	u32	crc32;
 109	sector_t image;
 110	unsigned int flags;	/* Flags to pass to the "boot" kernel */
 111	char	orig_sig[10];
 112	char	sig[10];
 113} __packed;
 114
 115static struct swsusp_header *swsusp_header;
 116
 117/**
 118 *	The following functions are used for tracing the allocated
 119 *	swap pages, so that they can be freed in case of an error.
 120 */
 121
 122struct swsusp_extent {
 123	struct rb_node node;
 124	unsigned long start;
 125	unsigned long end;
 126};
 127
 128static struct rb_root swsusp_extents = RB_ROOT;
 129
 130static int swsusp_extents_insert(unsigned long swap_offset)
 131{
 132	struct rb_node **new = &(swsusp_extents.rb_node);
 133	struct rb_node *parent = NULL;
 134	struct swsusp_extent *ext;
 135
 136	/* Figure out where to put the new node */
 137	while (*new) {
 138		ext = rb_entry(*new, struct swsusp_extent, node);
 139		parent = *new;
 140		if (swap_offset < ext->start) {
 141			/* Try to merge */
 142			if (swap_offset == ext->start - 1) {
 143				ext->start--;
 144				return 0;
 145			}
 146			new = &((*new)->rb_left);
 147		} else if (swap_offset > ext->end) {
 148			/* Try to merge */
 149			if (swap_offset == ext->end + 1) {
 150				ext->end++;
 151				return 0;
 152			}
 153			new = &((*new)->rb_right);
 154		} else {
 155			/* It already is in the tree */
 156			return -EINVAL;
 157		}
 158	}
 159	/* Add the new node and rebalance the tree. */
 160	ext = kzalloc(sizeof(struct swsusp_extent), GFP_KERNEL);
 161	if (!ext)
 162		return -ENOMEM;
 163
 164	ext->start = swap_offset;
 165	ext->end = swap_offset;
 166	rb_link_node(&ext->node, parent, new);
 167	rb_insert_color(&ext->node, &swsusp_extents);
 168	return 0;
 169}
 170
 171/**
 172 *	alloc_swapdev_block - allocate a swap page and register that it has
 173 *	been allocated, so that it can be freed in case of an error.
 174 */
 175
 176sector_t alloc_swapdev_block(int swap)
 177{
 178	unsigned long offset;
 179
 180	offset = swp_offset(get_swap_page_of_type(swap));
 181	if (offset) {
 182		if (swsusp_extents_insert(offset))
 183			swap_free(swp_entry(swap, offset));
 184		else
 185			return swapdev_block(swap, offset);
 186	}
 187	return 0;
 188}
 189
 190/**
 191 *	free_all_swap_pages - free swap pages allocated for saving image data.
 192 *	It also frees the extents used to register which swap entries had been
 193 *	allocated.
 194 */
 195
 196void free_all_swap_pages(int swap)
 197{
 198	struct rb_node *node;
 199
 200	while ((node = swsusp_extents.rb_node)) {
 201		struct swsusp_extent *ext;
 202		unsigned long offset;
 203
 204		ext = container_of(node, struct swsusp_extent, node);
 205		rb_erase(node, &swsusp_extents);
 206		for (offset = ext->start; offset <= ext->end; offset++)
 207			swap_free(swp_entry(swap, offset));
 208
 209		kfree(ext);
 210	}
 211}
 212
 213int swsusp_swap_in_use(void)
 214{
 215	return (swsusp_extents.rb_node != NULL);
 216}
 217
 218/*
 219 * General things
 220 */
 221
 222static unsigned short root_swap = 0xffff;
 223static struct block_device *hib_resume_bdev;
 224
 225struct hib_bio_batch {
 226	atomic_t		count;
 227	wait_queue_head_t	wait;
 228	int			error;
 229};
 230
 231static void hib_init_batch(struct hib_bio_batch *hb)
 232{
 233	atomic_set(&hb->count, 0);
 234	init_waitqueue_head(&hb->wait);
 235	hb->error = 0;
 236}
 237
 238static void hib_end_io(struct bio *bio)
 239{
 240	struct hib_bio_batch *hb = bio->bi_private;
 241	struct page *page = bio->bi_io_vec[0].bv_page;
 242
 243	if (bio->bi_error) {
 244		printk(KERN_ALERT "Read-error on swap-device (%u:%u:%Lu)\n",
 245				imajor(bio->bi_bdev->bd_inode),
 246				iminor(bio->bi_bdev->bd_inode),
 247				(unsigned long long)bio->bi_iter.bi_sector);
 248	}
 249
 250	if (bio_data_dir(bio) == WRITE)
 251		put_page(page);
 252	else if (clean_pages_on_read)
 253		flush_icache_range((unsigned long)page_address(page),
 254				   (unsigned long)page_address(page) + PAGE_SIZE);
 255
 256	if (bio->bi_error && !hb->error)
 257		hb->error = bio->bi_error;
 258	if (atomic_dec_and_test(&hb->count))
 259		wake_up(&hb->wait);
 260
 261	bio_put(bio);
 262}
 263
 264static int hib_submit_io(int op, int op_flags, pgoff_t page_off, void *addr,
 265		struct hib_bio_batch *hb)
 266{
 267	struct page *page = virt_to_page(addr);
 268	struct bio *bio;
 269	int error = 0;
 270
 271	bio = bio_alloc(__GFP_RECLAIM | __GFP_HIGH, 1);
 272	bio->bi_iter.bi_sector = page_off * (PAGE_SIZE >> 9);
 273	bio->bi_bdev = hib_resume_bdev;
 274	bio_set_op_attrs(bio, op, op_flags);
 275
 276	if (bio_add_page(bio, page, PAGE_SIZE, 0) < PAGE_SIZE) {
 277		printk(KERN_ERR "PM: Adding page to bio failed at %llu\n",
 278			(unsigned long long)bio->bi_iter.bi_sector);
 279		bio_put(bio);
 280		return -EFAULT;
 281	}
 282
 283	if (hb) {
 284		bio->bi_end_io = hib_end_io;
 285		bio->bi_private = hb;
 286		atomic_inc(&hb->count);
 287		submit_bio(bio);
 288	} else {
 289		error = submit_bio_wait(bio);
 290		bio_put(bio);
 291	}
 292
 293	return error;
 294}
 295
 296static int hib_wait_io(struct hib_bio_batch *hb)
 297{
 298	wait_event(hb->wait, atomic_read(&hb->count) == 0);
 299	return hb->error;
 300}
 301
 302/*
 303 * Saving part
 304 */
 305
 306static int mark_swapfiles(struct swap_map_handle *handle, unsigned int flags)
 307{
 308	int error;
 309
 310	hib_submit_io(REQ_OP_READ, 0, swsusp_resume_block,
 311		      swsusp_header, NULL);
 312	if (!memcmp("SWAP-SPACE",swsusp_header->sig, 10) ||
 313	    !memcmp("SWAPSPACE2",swsusp_header->sig, 10)) {
 314		memcpy(swsusp_header->orig_sig,swsusp_header->sig, 10);
 315		memcpy(swsusp_header->sig, HIBERNATE_SIG, 10);
 316		swsusp_header->image = handle->first_sector;
 317		swsusp_header->flags = flags;
 318		if (flags & SF_CRC32_MODE)
 319			swsusp_header->crc32 = handle->crc32;
 320		error = hib_submit_io(REQ_OP_WRITE, REQ_SYNC,
 321				      swsusp_resume_block, swsusp_header, NULL);
 322	} else {
 323		printk(KERN_ERR "PM: Swap header not found!\n");
 324		error = -ENODEV;
 325	}
 326	return error;
 327}
 328
 329/**
 330 *	swsusp_swap_check - check if the resume device is a swap device
 331 *	and get its index (if so)
 332 *
 333 *	This is called before saving image
 334 */
 335static int swsusp_swap_check(void)
 336{
 337	int res;
 338
 339	res = swap_type_of(swsusp_resume_device, swsusp_resume_block,
 340			&hib_resume_bdev);
 341	if (res < 0)
 342		return res;
 343
 344	root_swap = res;
 345	res = blkdev_get(hib_resume_bdev, FMODE_WRITE, NULL);
 346	if (res)
 347		return res;
 348
 349	res = set_blocksize(hib_resume_bdev, PAGE_SIZE);
 350	if (res < 0)
 351		blkdev_put(hib_resume_bdev, FMODE_WRITE);
 352
 353	/*
 354	 * Update the resume device to the one actually used,
 355	 * so the test_resume mode can use it in case it is
 356	 * invoked from hibernate() to test the snapshot.
 357	 */
 358	swsusp_resume_device = hib_resume_bdev->bd_dev;
 359	return res;
 360}
 361
 362/**
 363 *	write_page - Write one page to given swap location.
 364 *	@buf:		Address we're writing.
 365 *	@offset:	Offset of the swap page we're writing to.
 366 *	@hb:		bio completion batch
 367 */
 368
 369static int write_page(void *buf, sector_t offset, struct hib_bio_batch *hb)
 370{
 371	void *src;
 372	int ret;
 373
 374	if (!offset)
 375		return -ENOSPC;
 376
 377	if (hb) {
 378		src = (void *)__get_free_page(__GFP_RECLAIM | __GFP_NOWARN |
 379		                              __GFP_NORETRY);
 380		if (src) {
 381			copy_page(src, buf);
 382		} else {
 383			ret = hib_wait_io(hb); /* Free pages */
 384			if (ret)
 385				return ret;
 386			src = (void *)__get_free_page(__GFP_RECLAIM |
 387			                              __GFP_NOWARN |
 388			                              __GFP_NORETRY);
 389			if (src) {
 390				copy_page(src, buf);
 391			} else {
 392				WARN_ON_ONCE(1);
 393				hb = NULL;	/* Go synchronous */
 394				src = buf;
 395			}
 396		}
 397	} else {
 398		src = buf;
 399	}
 400	return hib_submit_io(REQ_OP_WRITE, REQ_SYNC, offset, src, hb);
 401}
 402
 403static void release_swap_writer(struct swap_map_handle *handle)
 404{
 405	if (handle->cur)
 406		free_page((unsigned long)handle->cur);
 407	handle->cur = NULL;
 408}
 409
 410static int get_swap_writer(struct swap_map_handle *handle)
 411{
 412	int ret;
 413
 414	ret = swsusp_swap_check();
 415	if (ret) {
 416		if (ret != -ENOSPC)
 417			printk(KERN_ERR "PM: Cannot find swap device, try "
 418					"swapon -a.\n");
 419		return ret;
 420	}
 421	handle->cur = (struct swap_map_page *)get_zeroed_page(GFP_KERNEL);
 422	if (!handle->cur) {
 423		ret = -ENOMEM;
 424		goto err_close;
 425	}
 426	handle->cur_swap = alloc_swapdev_block(root_swap);
 427	if (!handle->cur_swap) {
 428		ret = -ENOSPC;
 429		goto err_rel;
 430	}
 431	handle->k = 0;
 432	handle->reqd_free_pages = reqd_free_pages();
 433	handle->first_sector = handle->cur_swap;
 434	return 0;
 435err_rel:
 436	release_swap_writer(handle);
 437err_close:
 438	swsusp_close(FMODE_WRITE);
 439	return ret;
 440}
 441
 442static int swap_write_page(struct swap_map_handle *handle, void *buf,
 443		struct hib_bio_batch *hb)
 444{
 445	int error = 0;
 446	sector_t offset;
 447
 448	if (!handle->cur)
 449		return -EINVAL;
 450	offset = alloc_swapdev_block(root_swap);
 451	error = write_page(buf, offset, hb);
 452	if (error)
 453		return error;
 454	handle->cur->entries[handle->k++] = offset;
 455	if (handle->k >= MAP_PAGE_ENTRIES) {
 456		offset = alloc_swapdev_block(root_swap);
 457		if (!offset)
 458			return -ENOSPC;
 459		handle->cur->next_swap = offset;
 460		error = write_page(handle->cur, handle->cur_swap, hb);
 461		if (error)
 462			goto out;
 463		clear_page(handle->cur);
 464		handle->cur_swap = offset;
 465		handle->k = 0;
 466
 467		if (hb && low_free_pages() <= handle->reqd_free_pages) {
 468			error = hib_wait_io(hb);
 469			if (error)
 470				goto out;
 471			/*
 472			 * Recalculate the number of required free pages, to
 473			 * make sure we never take more than half.
 474			 */
 475			handle->reqd_free_pages = reqd_free_pages();
 476		}
 477	}
 478 out:
 479	return error;
 480}
 481
 482static int flush_swap_writer(struct swap_map_handle *handle)
 483{
 484	if (handle->cur && handle->cur_swap)
 485		return write_page(handle->cur, handle->cur_swap, NULL);
 486	else
 487		return -EINVAL;
 488}
 489
 490static int swap_writer_finish(struct swap_map_handle *handle,
 491		unsigned int flags, int error)
 492{
 493	if (!error) {
 494		flush_swap_writer(handle);
 495		printk(KERN_INFO "PM: S");
 496		error = mark_swapfiles(handle, flags);
 497		printk("|\n");
 498	}
 499
 500	if (error)
 501		free_all_swap_pages(root_swap);
 502	release_swap_writer(handle);
 503	swsusp_close(FMODE_WRITE);
 504
 505	return error;
 506}
 507
 508/* We need to remember how much compressed data we need to read. */
 509#define LZO_HEADER	sizeof(size_t)
 510
 511/* Number of pages/bytes we'll compress at one time. */
 512#define LZO_UNC_PAGES	32
 513#define LZO_UNC_SIZE	(LZO_UNC_PAGES * PAGE_SIZE)
 514
 515/* Number of pages/bytes we need for compressed data (worst case). */
 516#define LZO_CMP_PAGES	DIV_ROUND_UP(lzo1x_worst_compress(LZO_UNC_SIZE) + \
 517			             LZO_HEADER, PAGE_SIZE)
 518#define LZO_CMP_SIZE	(LZO_CMP_PAGES * PAGE_SIZE)
 519
 520/* Maximum number of threads for compression/decompression. */
 521#define LZO_THREADS	3
 522
 523/* Minimum/maximum number of pages for read buffering. */
 524#define LZO_MIN_RD_PAGES	1024
 525#define LZO_MAX_RD_PAGES	8192
 526
 527
 528/**
 529 *	save_image - save the suspend image data
 530 */
 531
 532static int save_image(struct swap_map_handle *handle,
 533                      struct snapshot_handle *snapshot,
 534                      unsigned int nr_to_write)
 535{
 536	unsigned int m;
 537	int ret;
 538	int nr_pages;
 539	int err2;
 540	struct hib_bio_batch hb;
 541	ktime_t start;
 542	ktime_t stop;
 543
 544	hib_init_batch(&hb);
 545
 546	printk(KERN_INFO "PM: Saving image data pages (%u pages)...\n",
 547		nr_to_write);
 548	m = nr_to_write / 10;
 549	if (!m)
 550		m = 1;
 551	nr_pages = 0;
 552	start = ktime_get();
 
 553	while (1) {
 554		ret = snapshot_read_next(snapshot);
 555		if (ret <= 0)
 556			break;
 557		ret = swap_write_page(handle, data_of(*snapshot), &hb);
 558		if (ret)
 559			break;
 560		if (!(nr_pages % m))
 561			printk(KERN_INFO "PM: Image saving progress: %3d%%\n",
 562			       nr_pages / m * 10);
 563		nr_pages++;
 564	}
 565	err2 = hib_wait_io(&hb);
 566	stop = ktime_get();
 567	if (!ret)
 568		ret = err2;
 569	if (!ret)
 570		printk(KERN_INFO "PM: Image saving done.\n");
 571	swsusp_show_speed(start, stop, nr_to_write, "Wrote");
 
 
 572	return ret;
 573}
 574
 575/**
 576 * Structure used for CRC32.
 577 */
 578struct crc_data {
 579	struct task_struct *thr;                  /* thread */
 580	atomic_t ready;                           /* ready to start flag */
 581	atomic_t stop;                            /* ready to stop flag */
 582	unsigned run_threads;                     /* nr current threads */
 583	wait_queue_head_t go;                     /* start crc update */
 584	wait_queue_head_t done;                   /* crc update done */
 585	u32 *crc32;                               /* points to handle's crc32 */
 586	size_t *unc_len[LZO_THREADS];             /* uncompressed lengths */
 587	unsigned char *unc[LZO_THREADS];          /* uncompressed data */
 588};
 589
 590/**
 591 * CRC32 update function that runs in its own thread.
 592 */
 593static int crc32_threadfn(void *data)
 594{
 595	struct crc_data *d = data;
 596	unsigned i;
 597
 598	while (1) {
 599		wait_event(d->go, atomic_read(&d->ready) ||
 600		                  kthread_should_stop());
 601		if (kthread_should_stop()) {
 602			d->thr = NULL;
 603			atomic_set(&d->stop, 1);
 604			wake_up(&d->done);
 605			break;
 606		}
 607		atomic_set(&d->ready, 0);
 608
 609		for (i = 0; i < d->run_threads; i++)
 610			*d->crc32 = crc32_le(*d->crc32,
 611			                     d->unc[i], *d->unc_len[i]);
 612		atomic_set(&d->stop, 1);
 613		wake_up(&d->done);
 614	}
 615	return 0;
 616}
 617/**
 618 * Structure used for LZO data compression.
 619 */
 620struct cmp_data {
 621	struct task_struct *thr;                  /* thread */
 622	atomic_t ready;                           /* ready to start flag */
 623	atomic_t stop;                            /* ready to stop flag */
 624	int ret;                                  /* return code */
 625	wait_queue_head_t go;                     /* start compression */
 626	wait_queue_head_t done;                   /* compression done */
 627	size_t unc_len;                           /* uncompressed length */
 628	size_t cmp_len;                           /* compressed length */
 629	unsigned char unc[LZO_UNC_SIZE];          /* uncompressed buffer */
 630	unsigned char cmp[LZO_CMP_SIZE];          /* compressed buffer */
 631	unsigned char wrk[LZO1X_1_MEM_COMPRESS];  /* compression workspace */
 632};
 633
 634/**
 635 * Compression function that runs in its own thread.
 636 */
 637static int lzo_compress_threadfn(void *data)
 638{
 639	struct cmp_data *d = data;
 640
 641	while (1) {
 642		wait_event(d->go, atomic_read(&d->ready) ||
 643		                  kthread_should_stop());
 644		if (kthread_should_stop()) {
 645			d->thr = NULL;
 646			d->ret = -1;
 647			atomic_set(&d->stop, 1);
 648			wake_up(&d->done);
 649			break;
 650		}
 651		atomic_set(&d->ready, 0);
 652
 653		d->ret = lzo1x_1_compress(d->unc, d->unc_len,
 654		                          d->cmp + LZO_HEADER, &d->cmp_len,
 655		                          d->wrk);
 656		atomic_set(&d->stop, 1);
 657		wake_up(&d->done);
 658	}
 659	return 0;
 660}
 661
 662/**
 663 * save_image_lzo - Save the suspend image data compressed with LZO.
 664 * @handle: Swap map handle to use for saving the image.
 665 * @snapshot: Image to read data from.
 666 * @nr_to_write: Number of pages to save.
 667 */
 668static int save_image_lzo(struct swap_map_handle *handle,
 669                          struct snapshot_handle *snapshot,
 670                          unsigned int nr_to_write)
 671{
 672	unsigned int m;
 673	int ret = 0;
 674	int nr_pages;
 675	int err2;
 676	struct hib_bio_batch hb;
 677	ktime_t start;
 678	ktime_t stop;
 679	size_t off;
 680	unsigned thr, run_threads, nr_threads;
 681	unsigned char *page = NULL;
 682	struct cmp_data *data = NULL;
 683	struct crc_data *crc = NULL;
 684
 685	hib_init_batch(&hb);
 686
 687	/*
 688	 * We'll limit the number of threads for compression to limit memory
 689	 * footprint.
 690	 */
 691	nr_threads = num_online_cpus() - 1;
 692	nr_threads = clamp_val(nr_threads, 1, LZO_THREADS);
 693
 694	page = (void *)__get_free_page(__GFP_RECLAIM | __GFP_HIGH);
 695	if (!page) {
 696		printk(KERN_ERR "PM: Failed to allocate LZO page\n");
 697		ret = -ENOMEM;
 698		goto out_clean;
 699	}
 700
 701	data = vmalloc(sizeof(*data) * nr_threads);
 702	if (!data) {
 703		printk(KERN_ERR "PM: Failed to allocate LZO data\n");
 704		ret = -ENOMEM;
 705		goto out_clean;
 706	}
 707	for (thr = 0; thr < nr_threads; thr++)
 708		memset(&data[thr], 0, offsetof(struct cmp_data, go));
 709
 710	crc = kmalloc(sizeof(*crc), GFP_KERNEL);
 711	if (!crc) {
 712		printk(KERN_ERR "PM: Failed to allocate crc\n");
 713		ret = -ENOMEM;
 714		goto out_clean;
 715	}
 716	memset(crc, 0, offsetof(struct crc_data, go));
 717
 718	/*
 719	 * Start the compression threads.
 720	 */
 721	for (thr = 0; thr < nr_threads; thr++) {
 722		init_waitqueue_head(&data[thr].go);
 723		init_waitqueue_head(&data[thr].done);
 724
 725		data[thr].thr = kthread_run(lzo_compress_threadfn,
 726		                            &data[thr],
 727		                            "image_compress/%u", thr);
 728		if (IS_ERR(data[thr].thr)) {
 729			data[thr].thr = NULL;
 730			printk(KERN_ERR
 731			       "PM: Cannot start compression threads\n");
 732			ret = -ENOMEM;
 733			goto out_clean;
 734		}
 735	}
 736
 737	/*
 738	 * Start the CRC32 thread.
 739	 */
 740	init_waitqueue_head(&crc->go);
 741	init_waitqueue_head(&crc->done);
 742
 743	handle->crc32 = 0;
 744	crc->crc32 = &handle->crc32;
 745	for (thr = 0; thr < nr_threads; thr++) {
 746		crc->unc[thr] = data[thr].unc;
 747		crc->unc_len[thr] = &data[thr].unc_len;
 748	}
 749
 750	crc->thr = kthread_run(crc32_threadfn, crc, "image_crc32");
 751	if (IS_ERR(crc->thr)) {
 752		crc->thr = NULL;
 753		printk(KERN_ERR "PM: Cannot start CRC32 thread\n");
 754		ret = -ENOMEM;
 755		goto out_clean;
 756	}
 757
 758	/*
 759	 * Adjust the number of required free pages after all allocations have
 760	 * been done. We don't want to run out of pages when writing.
 761	 */
 762	handle->reqd_free_pages = reqd_free_pages();
 763
 764	printk(KERN_INFO
 765		"PM: Using %u thread(s) for compression.\n"
 766		"PM: Compressing and saving image data (%u pages)...\n",
 767		nr_threads, nr_to_write);
 768	m = nr_to_write / 10;
 769	if (!m)
 770		m = 1;
 771	nr_pages = 0;
 772	start = ktime_get();
 
 773	for (;;) {
 774		for (thr = 0; thr < nr_threads; thr++) {
 775			for (off = 0; off < LZO_UNC_SIZE; off += PAGE_SIZE) {
 776				ret = snapshot_read_next(snapshot);
 777				if (ret < 0)
 778					goto out_finish;
 779
 780				if (!ret)
 781					break;
 782
 783				memcpy(data[thr].unc + off,
 784				       data_of(*snapshot), PAGE_SIZE);
 785
 786				if (!(nr_pages % m))
 787					printk(KERN_INFO
 788					       "PM: Image saving progress: "
 789					       "%3d%%\n",
 790				               nr_pages / m * 10);
 791				nr_pages++;
 792			}
 793			if (!off)
 794				break;
 795
 796			data[thr].unc_len = off;
 797
 798			atomic_set(&data[thr].ready, 1);
 799			wake_up(&data[thr].go);
 800		}
 801
 802		if (!thr)
 803			break;
 804
 805		crc->run_threads = thr;
 806		atomic_set(&crc->ready, 1);
 807		wake_up(&crc->go);
 808
 809		for (run_threads = thr, thr = 0; thr < run_threads; thr++) {
 810			wait_event(data[thr].done,
 811			           atomic_read(&data[thr].stop));
 812			atomic_set(&data[thr].stop, 0);
 813
 814			ret = data[thr].ret;
 815
 816			if (ret < 0) {
 817				printk(KERN_ERR "PM: LZO compression failed\n");
 818				goto out_finish;
 819			}
 820
 821			if (unlikely(!data[thr].cmp_len ||
 822			             data[thr].cmp_len >
 823			             lzo1x_worst_compress(data[thr].unc_len))) {
 824				printk(KERN_ERR
 825				       "PM: Invalid LZO compressed length\n");
 826				ret = -1;
 827				goto out_finish;
 828			}
 829
 830			*(size_t *)data[thr].cmp = data[thr].cmp_len;
 831
 832			/*
 833			 * Given we are writing one page at a time to disk, we
 834			 * copy that much from the buffer, although the last
 835			 * bit will likely be smaller than full page. This is
 836			 * OK - we saved the length of the compressed data, so
 837			 * any garbage at the end will be discarded when we
 838			 * read it.
 839			 */
 840			for (off = 0;
 841			     off < LZO_HEADER + data[thr].cmp_len;
 842			     off += PAGE_SIZE) {
 843				memcpy(page, data[thr].cmp + off, PAGE_SIZE);
 844
 845				ret = swap_write_page(handle, page, &hb);
 846				if (ret)
 847					goto out_finish;
 848			}
 849		}
 850
 851		wait_event(crc->done, atomic_read(&crc->stop));
 852		atomic_set(&crc->stop, 0);
 853	}
 854
 855out_finish:
 856	err2 = hib_wait_io(&hb);
 857	stop = ktime_get();
 858	if (!ret)
 859		ret = err2;
 860	if (!ret)
 861		printk(KERN_INFO "PM: Image saving done.\n");
 862	swsusp_show_speed(start, stop, nr_to_write, "Wrote");
 
 
 
 863out_clean:
 864	if (crc) {
 865		if (crc->thr)
 866			kthread_stop(crc->thr);
 867		kfree(crc);
 868	}
 869	if (data) {
 870		for (thr = 0; thr < nr_threads; thr++)
 871			if (data[thr].thr)
 872				kthread_stop(data[thr].thr);
 873		vfree(data);
 874	}
 875	if (page) free_page((unsigned long)page);
 876
 877	return ret;
 878}
 879
 880/**
 881 *	enough_swap - Make sure we have enough swap to save the image.
 882 *
 883 *	Returns TRUE or FALSE after checking the total amount of swap
 884 *	space avaiable from the resume partition.
 885 */
 886
 887static int enough_swap(unsigned int nr_pages, unsigned int flags)
 888{
 889	unsigned int free_swap = count_swap_pages(root_swap, 1);
 890	unsigned int required;
 891
 892	pr_debug("PM: Free swap pages: %u\n", free_swap);
 893
 894	required = PAGES_FOR_IO + nr_pages;
 895	return free_swap > required;
 896}
 897
 898/**
 899 *	swsusp_write - Write entire image and metadata.
 900 *	@flags: flags to pass to the "boot" kernel in the image header
 901 *
 902 *	It is important _NOT_ to umount filesystems at this point. We want
 903 *	them synced (in case something goes wrong) but we DO not want to mark
 904 *	filesystem clean: it is not. (And it does not matter, if we resume
 905 *	correctly, we'll mark system clean, anyway.)
 906 */
 907
 908int swsusp_write(unsigned int flags)
 909{
 910	struct swap_map_handle handle;
 911	struct snapshot_handle snapshot;
 912	struct swsusp_info *header;
 913	unsigned long pages;
 914	int error;
 915
 916	pages = snapshot_get_image_size();
 917	error = get_swap_writer(&handle);
 918	if (error) {
 919		printk(KERN_ERR "PM: Cannot get swap writer\n");
 920		return error;
 921	}
 922	if (flags & SF_NOCOMPRESS_MODE) {
 923		if (!enough_swap(pages, flags)) {
 924			printk(KERN_ERR "PM: Not enough free swap\n");
 925			error = -ENOSPC;
 926			goto out_finish;
 927		}
 928	}
 929	memset(&snapshot, 0, sizeof(struct snapshot_handle));
 930	error = snapshot_read_next(&snapshot);
 931	if (error < PAGE_SIZE) {
 932		if (error >= 0)
 933			error = -EFAULT;
 934
 935		goto out_finish;
 936	}
 937	header = (struct swsusp_info *)data_of(snapshot);
 938	error = swap_write_page(&handle, header, NULL);
 939	if (!error) {
 940		error = (flags & SF_NOCOMPRESS_MODE) ?
 941			save_image(&handle, &snapshot, pages - 1) :
 942			save_image_lzo(&handle, &snapshot, pages - 1);
 943	}
 944out_finish:
 945	error = swap_writer_finish(&handle, flags, error);
 946	return error;
 947}
 948
 949/**
 950 *	The following functions allow us to read data using a swap map
 951 *	in a file-alike way
 952 */
 953
 954static void release_swap_reader(struct swap_map_handle *handle)
 955{
 956	struct swap_map_page_list *tmp;
 957
 958	while (handle->maps) {
 959		if (handle->maps->map)
 960			free_page((unsigned long)handle->maps->map);
 961		tmp = handle->maps;
 962		handle->maps = handle->maps->next;
 963		kfree(tmp);
 964	}
 965	handle->cur = NULL;
 966}
 967
 968static int get_swap_reader(struct swap_map_handle *handle,
 969		unsigned int *flags_p)
 970{
 971	int error;
 972	struct swap_map_page_list *tmp, *last;
 973	sector_t offset;
 974
 975	*flags_p = swsusp_header->flags;
 976
 977	if (!swsusp_header->image) /* how can this happen? */
 978		return -EINVAL;
 979
 980	handle->cur = NULL;
 981	last = handle->maps = NULL;
 982	offset = swsusp_header->image;
 983	while (offset) {
 984		tmp = kmalloc(sizeof(*handle->maps), GFP_KERNEL);
 985		if (!tmp) {
 986			release_swap_reader(handle);
 987			return -ENOMEM;
 988		}
 989		memset(tmp, 0, sizeof(*tmp));
 990		if (!handle->maps)
 991			handle->maps = tmp;
 992		if (last)
 993			last->next = tmp;
 994		last = tmp;
 995
 996		tmp->map = (struct swap_map_page *)
 997			   __get_free_page(__GFP_RECLAIM | __GFP_HIGH);
 998		if (!tmp->map) {
 999			release_swap_reader(handle);
1000			return -ENOMEM;
1001		}
1002
1003		error = hib_submit_io(REQ_OP_READ, 0, offset, tmp->map, NULL);
1004		if (error) {
1005			release_swap_reader(handle);
1006			return error;
1007		}
1008		offset = tmp->map->next_swap;
1009	}
1010	handle->k = 0;
1011	handle->cur = handle->maps->map;
1012	return 0;
1013}
1014
1015static int swap_read_page(struct swap_map_handle *handle, void *buf,
1016		struct hib_bio_batch *hb)
1017{
1018	sector_t offset;
1019	int error;
1020	struct swap_map_page_list *tmp;
1021
1022	if (!handle->cur)
1023		return -EINVAL;
1024	offset = handle->cur->entries[handle->k];
1025	if (!offset)
1026		return -EFAULT;
1027	error = hib_submit_io(REQ_OP_READ, 0, offset, buf, hb);
1028	if (error)
1029		return error;
1030	if (++handle->k >= MAP_PAGE_ENTRIES) {
1031		handle->k = 0;
1032		free_page((unsigned long)handle->maps->map);
1033		tmp = handle->maps;
1034		handle->maps = handle->maps->next;
1035		kfree(tmp);
1036		if (!handle->maps)
1037			release_swap_reader(handle);
1038		else
1039			handle->cur = handle->maps->map;
1040	}
1041	return error;
1042}
1043
1044static int swap_reader_finish(struct swap_map_handle *handle)
1045{
1046	release_swap_reader(handle);
1047
1048	return 0;
1049}
1050
1051/**
1052 *	load_image - load the image using the swap map handle
1053 *	@handle and the snapshot handle @snapshot
1054 *	(assume there are @nr_pages pages to load)
1055 */
1056
1057static int load_image(struct swap_map_handle *handle,
1058                      struct snapshot_handle *snapshot,
1059                      unsigned int nr_to_read)
1060{
1061	unsigned int m;
1062	int ret = 0;
1063	ktime_t start;
1064	ktime_t stop;
1065	struct hib_bio_batch hb;
1066	int err2;
1067	unsigned nr_pages;
1068
1069	hib_init_batch(&hb);
1070
1071	clean_pages_on_read = true;
1072	printk(KERN_INFO "PM: Loading image data pages (%u pages)...\n",
1073		nr_to_read);
1074	m = nr_to_read / 10;
1075	if (!m)
1076		m = 1;
1077	nr_pages = 0;
1078	start = ktime_get();
 
1079	for ( ; ; ) {
1080		ret = snapshot_write_next(snapshot);
1081		if (ret <= 0)
1082			break;
1083		ret = swap_read_page(handle, data_of(*snapshot), &hb);
1084		if (ret)
1085			break;
1086		if (snapshot->sync_read)
1087			ret = hib_wait_io(&hb);
1088		if (ret)
1089			break;
1090		if (!(nr_pages % m))
1091			printk(KERN_INFO "PM: Image loading progress: %3d%%\n",
1092			       nr_pages / m * 10);
1093		nr_pages++;
1094	}
1095	err2 = hib_wait_io(&hb);
1096	stop = ktime_get();
1097	if (!ret)
1098		ret = err2;
1099	if (!ret) {
1100		printk(KERN_INFO "PM: Image loading done.\n");
1101		snapshot_write_finalize(snapshot);
1102		if (!snapshot_image_loaded(snapshot))
1103			ret = -ENODATA;
1104	}
1105	swsusp_show_speed(start, stop, nr_to_read, "Read");
 
1106	return ret;
1107}
1108
1109/**
1110 * Structure used for LZO data decompression.
1111 */
1112struct dec_data {
1113	struct task_struct *thr;                  /* thread */
1114	atomic_t ready;                           /* ready to start flag */
1115	atomic_t stop;                            /* ready to stop flag */
1116	int ret;                                  /* return code */
1117	wait_queue_head_t go;                     /* start decompression */
1118	wait_queue_head_t done;                   /* decompression done */
1119	size_t unc_len;                           /* uncompressed length */
1120	size_t cmp_len;                           /* compressed length */
1121	unsigned char unc[LZO_UNC_SIZE];          /* uncompressed buffer */
1122	unsigned char cmp[LZO_CMP_SIZE];          /* compressed buffer */
1123};
1124
1125/**
1126 * Deompression function that runs in its own thread.
1127 */
1128static int lzo_decompress_threadfn(void *data)
1129{
1130	struct dec_data *d = data;
1131
1132	while (1) {
1133		wait_event(d->go, atomic_read(&d->ready) ||
1134		                  kthread_should_stop());
1135		if (kthread_should_stop()) {
1136			d->thr = NULL;
1137			d->ret = -1;
1138			atomic_set(&d->stop, 1);
1139			wake_up(&d->done);
1140			break;
1141		}
1142		atomic_set(&d->ready, 0);
1143
1144		d->unc_len = LZO_UNC_SIZE;
1145		d->ret = lzo1x_decompress_safe(d->cmp + LZO_HEADER, d->cmp_len,
1146		                               d->unc, &d->unc_len);
1147		if (clean_pages_on_decompress)
1148			flush_icache_range((unsigned long)d->unc,
1149					   (unsigned long)d->unc + d->unc_len);
1150
1151		atomic_set(&d->stop, 1);
1152		wake_up(&d->done);
1153	}
1154	return 0;
1155}
1156
1157/**
1158 * load_image_lzo - Load compressed image data and decompress them with LZO.
1159 * @handle: Swap map handle to use for loading data.
1160 * @snapshot: Image to copy uncompressed data into.
1161 * @nr_to_read: Number of pages to load.
1162 */
1163static int load_image_lzo(struct swap_map_handle *handle,
1164                          struct snapshot_handle *snapshot,
1165                          unsigned int nr_to_read)
1166{
1167	unsigned int m;
1168	int ret = 0;
1169	int eof = 0;
1170	struct hib_bio_batch hb;
1171	ktime_t start;
1172	ktime_t stop;
1173	unsigned nr_pages;
1174	size_t off;
1175	unsigned i, thr, run_threads, nr_threads;
1176	unsigned ring = 0, pg = 0, ring_size = 0,
1177	         have = 0, want, need, asked = 0;
1178	unsigned long read_pages = 0;
1179	unsigned char **page = NULL;
1180	struct dec_data *data = NULL;
1181	struct crc_data *crc = NULL;
1182
1183	hib_init_batch(&hb);
1184
1185	/*
1186	 * We'll limit the number of threads for decompression to limit memory
1187	 * footprint.
1188	 */
1189	nr_threads = num_online_cpus() - 1;
1190	nr_threads = clamp_val(nr_threads, 1, LZO_THREADS);
1191
1192	page = vmalloc(sizeof(*page) * LZO_MAX_RD_PAGES);
1193	if (!page) {
1194		printk(KERN_ERR "PM: Failed to allocate LZO page\n");
1195		ret = -ENOMEM;
1196		goto out_clean;
1197	}
1198
1199	data = vmalloc(sizeof(*data) * nr_threads);
1200	if (!data) {
1201		printk(KERN_ERR "PM: Failed to allocate LZO data\n");
1202		ret = -ENOMEM;
1203		goto out_clean;
1204	}
1205	for (thr = 0; thr < nr_threads; thr++)
1206		memset(&data[thr], 0, offsetof(struct dec_data, go));
1207
1208	crc = kmalloc(sizeof(*crc), GFP_KERNEL);
1209	if (!crc) {
1210		printk(KERN_ERR "PM: Failed to allocate crc\n");
1211		ret = -ENOMEM;
1212		goto out_clean;
1213	}
1214	memset(crc, 0, offsetof(struct crc_data, go));
1215
1216	clean_pages_on_decompress = true;
1217
1218	/*
1219	 * Start the decompression threads.
1220	 */
1221	for (thr = 0; thr < nr_threads; thr++) {
1222		init_waitqueue_head(&data[thr].go);
1223		init_waitqueue_head(&data[thr].done);
1224
1225		data[thr].thr = kthread_run(lzo_decompress_threadfn,
1226		                            &data[thr],
1227		                            "image_decompress/%u", thr);
1228		if (IS_ERR(data[thr].thr)) {
1229			data[thr].thr = NULL;
1230			printk(KERN_ERR
1231			       "PM: Cannot start decompression threads\n");
1232			ret = -ENOMEM;
1233			goto out_clean;
1234		}
1235	}
1236
1237	/*
1238	 * Start the CRC32 thread.
1239	 */
1240	init_waitqueue_head(&crc->go);
1241	init_waitqueue_head(&crc->done);
1242
1243	handle->crc32 = 0;
1244	crc->crc32 = &handle->crc32;
1245	for (thr = 0; thr < nr_threads; thr++) {
1246		crc->unc[thr] = data[thr].unc;
1247		crc->unc_len[thr] = &data[thr].unc_len;
1248	}
1249
1250	crc->thr = kthread_run(crc32_threadfn, crc, "image_crc32");
1251	if (IS_ERR(crc->thr)) {
1252		crc->thr = NULL;
1253		printk(KERN_ERR "PM: Cannot start CRC32 thread\n");
1254		ret = -ENOMEM;
1255		goto out_clean;
1256	}
1257
1258	/*
1259	 * Set the number of pages for read buffering.
1260	 * This is complete guesswork, because we'll only know the real
1261	 * picture once prepare_image() is called, which is much later on
1262	 * during the image load phase. We'll assume the worst case and
1263	 * say that none of the image pages are from high memory.
1264	 */
1265	if (low_free_pages() > snapshot_get_image_size())
1266		read_pages = (low_free_pages() - snapshot_get_image_size()) / 2;
1267	read_pages = clamp_val(read_pages, LZO_MIN_RD_PAGES, LZO_MAX_RD_PAGES);
1268
1269	for (i = 0; i < read_pages; i++) {
1270		page[i] = (void *)__get_free_page(i < LZO_CMP_PAGES ?
1271						  __GFP_RECLAIM | __GFP_HIGH :
1272						  __GFP_RECLAIM | __GFP_NOWARN |
1273						  __GFP_NORETRY);
1274
1275		if (!page[i]) {
1276			if (i < LZO_CMP_PAGES) {
1277				ring_size = i;
1278				printk(KERN_ERR
1279				       "PM: Failed to allocate LZO pages\n");
1280				ret = -ENOMEM;
1281				goto out_clean;
1282			} else {
1283				break;
1284			}
1285		}
1286	}
1287	want = ring_size = i;
1288
1289	printk(KERN_INFO
1290		"PM: Using %u thread(s) for decompression.\n"
1291		"PM: Loading and decompressing image data (%u pages)...\n",
1292		nr_threads, nr_to_read);
1293	m = nr_to_read / 10;
1294	if (!m)
1295		m = 1;
1296	nr_pages = 0;
1297	start = ktime_get();
 
1298
1299	ret = snapshot_write_next(snapshot);
1300	if (ret <= 0)
1301		goto out_finish;
1302
1303	for(;;) {
1304		for (i = 0; !eof && i < want; i++) {
1305			ret = swap_read_page(handle, page[ring], &hb);
1306			if (ret) {
1307				/*
1308				 * On real read error, finish. On end of data,
1309				 * set EOF flag and just exit the read loop.
1310				 */
1311				if (handle->cur &&
1312				    handle->cur->entries[handle->k]) {
1313					goto out_finish;
1314				} else {
1315					eof = 1;
1316					break;
1317				}
1318			}
1319			if (++ring >= ring_size)
1320				ring = 0;
1321		}
1322		asked += i;
1323		want -= i;
1324
1325		/*
1326		 * We are out of data, wait for some more.
1327		 */
1328		if (!have) {
1329			if (!asked)
1330				break;
1331
1332			ret = hib_wait_io(&hb);
1333			if (ret)
1334				goto out_finish;
1335			have += asked;
1336			asked = 0;
1337			if (eof)
1338				eof = 2;
1339		}
1340
1341		if (crc->run_threads) {
1342			wait_event(crc->done, atomic_read(&crc->stop));
1343			atomic_set(&crc->stop, 0);
1344			crc->run_threads = 0;
1345		}
1346
1347		for (thr = 0; have && thr < nr_threads; thr++) {
1348			data[thr].cmp_len = *(size_t *)page[pg];
1349			if (unlikely(!data[thr].cmp_len ||
1350			             data[thr].cmp_len >
1351			             lzo1x_worst_compress(LZO_UNC_SIZE))) {
1352				printk(KERN_ERR
1353				       "PM: Invalid LZO compressed length\n");
1354				ret = -1;
1355				goto out_finish;
1356			}
1357
1358			need = DIV_ROUND_UP(data[thr].cmp_len + LZO_HEADER,
1359			                    PAGE_SIZE);
1360			if (need > have) {
1361				if (eof > 1) {
1362					ret = -1;
1363					goto out_finish;
1364				}
1365				break;
1366			}
1367
1368			for (off = 0;
1369			     off < LZO_HEADER + data[thr].cmp_len;
1370			     off += PAGE_SIZE) {
1371				memcpy(data[thr].cmp + off,
1372				       page[pg], PAGE_SIZE);
1373				have--;
1374				want++;
1375				if (++pg >= ring_size)
1376					pg = 0;
1377			}
1378
1379			atomic_set(&data[thr].ready, 1);
1380			wake_up(&data[thr].go);
1381		}
1382
1383		/*
1384		 * Wait for more data while we are decompressing.
1385		 */
1386		if (have < LZO_CMP_PAGES && asked) {
1387			ret = hib_wait_io(&hb);
1388			if (ret)
1389				goto out_finish;
1390			have += asked;
1391			asked = 0;
1392			if (eof)
1393				eof = 2;
1394		}
1395
1396		for (run_threads = thr, thr = 0; thr < run_threads; thr++) {
1397			wait_event(data[thr].done,
1398			           atomic_read(&data[thr].stop));
1399			atomic_set(&data[thr].stop, 0);
1400
1401			ret = data[thr].ret;
1402
1403			if (ret < 0) {
1404				printk(KERN_ERR
1405				       "PM: LZO decompression failed\n");
1406				goto out_finish;
1407			}
1408
1409			if (unlikely(!data[thr].unc_len ||
1410			             data[thr].unc_len > LZO_UNC_SIZE ||
1411			             data[thr].unc_len & (PAGE_SIZE - 1))) {
1412				printk(KERN_ERR
1413				       "PM: Invalid LZO uncompressed length\n");
1414				ret = -1;
1415				goto out_finish;
1416			}
1417
1418			for (off = 0;
1419			     off < data[thr].unc_len; off += PAGE_SIZE) {
1420				memcpy(data_of(*snapshot),
1421				       data[thr].unc + off, PAGE_SIZE);
1422
1423				if (!(nr_pages % m))
1424					printk(KERN_INFO
1425					       "PM: Image loading progress: "
1426					       "%3d%%\n",
1427					       nr_pages / m * 10);
1428				nr_pages++;
1429
1430				ret = snapshot_write_next(snapshot);
1431				if (ret <= 0) {
1432					crc->run_threads = thr + 1;
1433					atomic_set(&crc->ready, 1);
1434					wake_up(&crc->go);
1435					goto out_finish;
1436				}
1437			}
1438		}
1439
1440		crc->run_threads = thr;
1441		atomic_set(&crc->ready, 1);
1442		wake_up(&crc->go);
1443	}
1444
1445out_finish:
1446	if (crc->run_threads) {
1447		wait_event(crc->done, atomic_read(&crc->stop));
1448		atomic_set(&crc->stop, 0);
1449	}
1450	stop = ktime_get();
1451	if (!ret) {
1452		printk(KERN_INFO "PM: Image loading done.\n");
1453		snapshot_write_finalize(snapshot);
1454		if (!snapshot_image_loaded(snapshot))
1455			ret = -ENODATA;
1456		if (!ret) {
1457			if (swsusp_header->flags & SF_CRC32_MODE) {
1458				if(handle->crc32 != swsusp_header->crc32) {
1459					printk(KERN_ERR
1460					       "PM: Invalid image CRC32!\n");
1461					ret = -ENODATA;
1462				}
1463			}
1464		}
1465	}
1466	swsusp_show_speed(start, stop, nr_to_read, "Read");
 
1467out_clean:
1468	for (i = 0; i < ring_size; i++)
1469		free_page((unsigned long)page[i]);
1470	if (crc) {
1471		if (crc->thr)
1472			kthread_stop(crc->thr);
1473		kfree(crc);
1474	}
1475	if (data) {
1476		for (thr = 0; thr < nr_threads; thr++)
1477			if (data[thr].thr)
1478				kthread_stop(data[thr].thr);
1479		vfree(data);
1480	}
1481	vfree(page);
1482
1483	return ret;
1484}
1485
1486/**
1487 *	swsusp_read - read the hibernation image.
1488 *	@flags_p: flags passed by the "frozen" kernel in the image header should
1489 *		  be written into this memory location
1490 */
1491
1492int swsusp_read(unsigned int *flags_p)
1493{
1494	int error;
1495	struct swap_map_handle handle;
1496	struct snapshot_handle snapshot;
1497	struct swsusp_info *header;
1498
1499	memset(&snapshot, 0, sizeof(struct snapshot_handle));
1500	error = snapshot_write_next(&snapshot);
1501	if (error < PAGE_SIZE)
1502		return error < 0 ? error : -EFAULT;
1503	header = (struct swsusp_info *)data_of(snapshot);
1504	error = get_swap_reader(&handle, flags_p);
1505	if (error)
1506		goto end;
1507	if (!error)
1508		error = swap_read_page(&handle, header, NULL);
1509	if (!error) {
1510		error = (*flags_p & SF_NOCOMPRESS_MODE) ?
1511			load_image(&handle, &snapshot, header->pages - 1) :
1512			load_image_lzo(&handle, &snapshot, header->pages - 1);
1513	}
1514	swap_reader_finish(&handle);
1515end:
1516	if (!error)
1517		pr_debug("PM: Image successfully loaded\n");
1518	else
1519		pr_debug("PM: Error %d resuming\n", error);
1520	return error;
1521}
1522
1523/**
1524 *      swsusp_check - Check for swsusp signature in the resume device
1525 */
1526
1527int swsusp_check(void)
1528{
1529	int error;
1530
1531	hib_resume_bdev = blkdev_get_by_dev(swsusp_resume_device,
1532					    FMODE_READ, NULL);
1533	if (!IS_ERR(hib_resume_bdev)) {
1534		set_blocksize(hib_resume_bdev, PAGE_SIZE);
1535		clear_page(swsusp_header);
1536		error = hib_submit_io(REQ_OP_READ, 0,
1537					swsusp_resume_block,
1538					swsusp_header, NULL);
1539		if (error)
1540			goto put;
1541
1542		if (!memcmp(HIBERNATE_SIG, swsusp_header->sig, 10)) {
1543			memcpy(swsusp_header->sig, swsusp_header->orig_sig, 10);
1544			/* Reset swap signature now */
1545			error = hib_submit_io(REQ_OP_WRITE, REQ_SYNC,
1546						swsusp_resume_block,
1547						swsusp_header, NULL);
1548		} else {
1549			error = -EINVAL;
1550		}
1551
1552put:
1553		if (error)
1554			blkdev_put(hib_resume_bdev, FMODE_READ);
1555		else
1556			pr_debug("PM: Image signature found, resuming\n");
1557	} else {
1558		error = PTR_ERR(hib_resume_bdev);
1559	}
1560
1561	if (error)
1562		pr_debug("PM: Image not found (code %d)\n", error);
1563
1564	return error;
1565}
1566
1567/**
1568 *	swsusp_close - close swap device.
1569 */
1570
1571void swsusp_close(fmode_t mode)
1572{
1573	if (IS_ERR(hib_resume_bdev)) {
1574		pr_debug("PM: Image device not initialised\n");
1575		return;
1576	}
1577
1578	blkdev_put(hib_resume_bdev, mode);
1579}
1580
1581/**
1582 *      swsusp_unmark - Unmark swsusp signature in the resume device
1583 */
1584
1585#ifdef CONFIG_SUSPEND
1586int swsusp_unmark(void)
1587{
1588	int error;
1589
1590	hib_submit_io(REQ_OP_READ, 0, swsusp_resume_block,
1591		      swsusp_header, NULL);
1592	if (!memcmp(HIBERNATE_SIG,swsusp_header->sig, 10)) {
1593		memcpy(swsusp_header->sig,swsusp_header->orig_sig, 10);
1594		error = hib_submit_io(REQ_OP_WRITE, REQ_SYNC,
1595					swsusp_resume_block,
1596					swsusp_header, NULL);
1597	} else {
1598		printk(KERN_ERR "PM: Cannot find swsusp signature!\n");
1599		error = -ENODEV;
1600	}
1601
1602	/*
1603	 * We just returned from suspend, we don't need the image any more.
1604	 */
1605	free_all_swap_pages(root_swap);
1606
1607	return error;
1608}
1609#endif
1610
1611static int swsusp_header_init(void)
1612{
1613	swsusp_header = (struct swsusp_header*) __get_free_page(GFP_KERNEL);
1614	if (!swsusp_header)
1615		panic("Could not allocate memory for swsusp_header\n");
1616	return 0;
1617}
1618
1619core_initcall(swsusp_header_init);