Re: [PATCH]: Compress hibernation image with LZO (in-kernel)
From: Nigel Cunningham
Date: Tue Aug 03 2010 - 22:25:07 EST
Hi.
On 04/08/10 12:02, KAMEZAWA Hiroyuki wrote:
On Wed, 04 Aug 2010 11:50:41 +1000
Nigel Cunningham<nigel@xxxxxxxxxxxx> wrote:
Hi.
Sorry for the delay in replying.
On 03/08/10 11:59, Bojan Smojver wrote:
From all this, I only got "In swsusp_free()" printed on resume. So, it
seems that save_image() does indeed free those vmalloc()-ed buffers and
they are not saved in the image.
I even put this in hibernate.c:
---------------------
/* Restore control flow magically appears here */
restore_processor_state();
if (!in_suspend)
platform_leave(platform_mode);
printk(KERN_ERR "Resumed, checking swsusp_lzo_buffers.\n");
if (swsusp_lzo_buffers) {
printk (KERN_ERR "Setting vmalloc() buffers.\n");
memset(swsusp_lzo_buffers, 0, 80 * PAGE_SIZE);
}
---------------------
This printed just "Resumed, checking swsusp_lzo_buffers.", meaning it
was already set to NULL.
Any further comments on this? Nigel, what do you reckon?
I don't see what all the fuss was about. save_image is called after the
snapshot is made (hibernate called hibernation_snapshot to create the
image, then swsusp_write which in turn calls save_image), so there's no
possibility of the memory allocated by it being included in the image or
of a memory leak ocuring as a result.
I'm sorry if I'm wrong. Here is logic in my mind. (I'm reading hibernate(void).
not sure about user.c )
(linenumber is from 2.6.34 global, plz ignore)
Yeah, I'm ignoring uswsusp too. That shouldn't matter.
624 error = hibernation_snapshot(hibernation_mode == HIBERNATION_PLATFORM);
625 if (error)
626 goto Thaw;
627
628 if (in_suspend) {
629 unsigned int flags = 0;
630
631 if (hibernation_mode == HIBERNATION_PLATFORM)
632 flags |= SF_PLATFORM_MODE;
633 pr_debug("PM: writing image.\n");
634 error = swsusp_write(flags);
Then, swsusp_write() actually writes image to the disk. Right ?
Yes
It finally calls save_image(). save_image() executes following loop.
433 while (1) {
434 ret = snapshot_read_next(snapshot, PAGE_SIZE);
435 if (ret<= 0)
436 break;
437 ret = swap_write_page(handle, data_of(*snapshot),&bio);
438 if (ret)
439 break;
440 if (!(nr_pages % m))
441 printk(KERN_CONT "\b\b\b\b%3d%%", nr_pages / m);
442 nr_pages++;
443 }
Ok, here, the image written to disk is got by snapshot_read_next().
Then, what it does ?
==
1650 page = pfn_to_page(memory_bm_next_pfn(©_bm));
1651 if (PageHighMem(page)) {
1652 /* Highmem pages are copied to the buffer,
1653 * because we can't return with a kmapped
1654 * highmem page (we may not be called again).
1655 */
1656 void *kaddr;
1657
1658 kaddr = kmap_atomic(page, KM_USER0);
1659 memcpy(buffer, kaddr, PAGE_SIZE);
1660 kunmap_atomic(kaddr, KM_USER0);
1661 handle->buffer = buffer;
1662 } else {
1663 handle->buffer = page_address(page);
1664 }
==
Ok, what actually written to disk is an image of memory at save_image() is
called.
What happens at vmalloc ?
1. page tabels for vmalloc() is set up.
2. vm_struct object is allocated.
3. vmap is allcoated.
Above "3" states are all saved into the disk image, as "used".
Then, after resume, all vmalloc() area is resumed as "allocated".
Wrong ?
Yes, because what's being written is the snapshot that was created in
hibernation_snapshot. Any memory you allocate afterwards is irrelevant
because it's not part of that snapshot that was made earlier and is now
being written to disk. Think of the point where hibernation_snapshot is
called as being like taking a photo, and this later part as like
printing the photo. Once you've taken the photo, people in the photo can
move around without making any difference to the photo you've taken. So
here. Our vmallocs and so on after the snapshot don't affect it.
Regards,
Nigel
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