Files
linux/drivers/block/zram/zram_drv.c
Linus Torvalds a552c81ff4 Merge tag 'mm-stable-2026-06-18-09-26' of git://git.kernel.org/pub/scm/linux/kernel/git/akpm/mm
Pull MM updates from Andrew Morton:

 - "selftests/mm: clean up build output and verbosity" (Li Wang)

   Remove some noise from the MM selftests build

 - "mm: Free contiguous order-0 pages efficiently" (Ryan Roberts)

   Speed up the freeing of a batch of 0-order pages by first scanning
   them for coalescing opportunities. This is applicable to vfree() and
   to the releasing of frozen pages

 - "mm/damon: introduce DAMOS failed region quota charge ratio"
   (SeongJae Park)

   Address a DAMOS usability issue: The DAMOS quota often exhausts
   prematurely because it charges for all memory attempted, causing slow
   and inconsistent performance when actions fail on unreclaimable
   memory.

   To fix this, a new feature lets users set a smaller, flexible quota
   charge ratio (via a numerator and denominator) for failed regions.
   Since failed actions cause less overhead, reducing their quota cost
   ensures more predictable and efficient DAMOS processing

 - "selftests/cgroup: improve zswap tests robustness and support large
   page sizes" (Li Wang)

   Fix various spurious failures and improves the overall robustness of
   the cgroup zswap selftests

 - "fix MAP_DROPPABLE not supported errno" (Anthony Yznaga)

   Fix an issue in the mlock selftests on arm32

 - "mm: huge_memory: clean up defrag sysfs with shared" (Breno Leitao)

   Some maintenance work in the huge_memory code

 - "treewide: fixup gfp_t printks" (Brendan Jackman)

   Use the special vprintf() gfp_t conversion in various places

 - "mm: Fix vmemmap optimization accounting and initialization" (Muchun
   Song)

   Fix several bugs in the vmemmap optimization, mainly around incorrect
   page accounting and memmap initialization in the DAX and memory
   hotplug paths. It also fixes pageblock migratetype initialization and
   struct page initialization for ZONE_DEVICE compound pages

 - "mm/damon: repost non-hotfix reviewed patches in damon/next tree"

   A sprinkle of unrelated minor bugfixes for DAMON

 - "mm: remove page_mapped()" (David Hildenbrand)

   Remove this function from the tree, replacing it with folio_mapped()

 - "mm/damon: let DAMON be paused and resumed" (SeongJae Park)

   Allow DAMON to be paused and resumed without losing its current state

 - "kasan: hw_tags: Disable tagging for stack and page-tables" (Muhammad
   Usama Anjum)

   Simplify and speed up kasan by removing its ineffective tagging of
   stacks and page tables

 - "mm/damon/reclaim,lru_sort: monitor all system rams by default"
   (SeongJae Park)

   Simplify deployment on diverse hardware like NUMA systems by updating
   DAMON_RECLAIM and DAMON_LRU_SORT to automatically monitor the
   physical address range covering all System RAM areas by default,
   replacing the overly restrictive behavior that only targeted the
   single largest memory block to save on negligible overhead

 - "mm/damon/sysfs: document filters/ directory as deprecated" (SeongJae
   Park)

   Update some DAMON docs

 - "mm: use spinlock guards for zone lock" (Dmitry Ilvokhin)

   Switch zone->lock handling over to using the guard() mechanisms

 - "mm/filemap: tighten mmap_miss hit accounting" (fujunjie)

   Fix a flaw where the mmap_miss counter over-credited page cache hits
   during fault-arounds and page-fault retries. This results in
   significant reduction of redundant synchronous mmap readahead I/O,
   drastically cutting down execution time and gigabytes read for sparse
   random or strided memory access workloads

 - "selftests/cgroup: Fix false positive failures in test_percpu_basic"
   (Li Wang)

   Fix a couple of false-positives in the cgroup kmem selftests

 - "mm/damon/reclaim: support monitoring intervals auto-tuning"
   (SeongJae Park)

   Add a new parameter to DAMON permitting DAMON_RECLAIM to
   automatically tune DAMON's sampling and aggregation intervals

 - "mm/damon/stat: add kdamond_pid parameter" (SeongJae Park)

   Change DAMON_STAT to provide the pid of its kdamond

 - "mm/kmemleak: dedupe verbose scan output" (Breno Leitao)

   Remove large amounts of duplicated backtraces from the verbose-mode
   kmemleak output

 - "mm: remove CONFIG_HAVE_BOOTMEM_INFO_NODE (Part 1)" (David
   Hildenbrand)

   Reduce our use of CONFIG_HAVE_BOOTMEM_INFO_NODE, with a view to
   removing it entirely in a later series

 - "mm/damon: validate min_region_size to be power of 2" (Liew Rui Yan)

   Prevent users from passing a non-power-of-2 value of `addr_unit', as
   this later results in undesirable behavior

 - "mm: document read_pages and simplify usage" (Frederick Mayle)

 - "tools/mm/page-types: Fix misc bugs" (Ye Liu)

   Fix three issues in tools/mm/page-types.c

 - "mm: misc cleanups from __GFP_UNMAPPED series" (Brendan Jackman)

   Implement several cleanups in the page allocator and related code

 - "mm, swap: swap table phase IV: unify allocation" (Kairui Song)

   Unify the allocation and charging of anon and shmem swap in folios,
   provides better synchronization, consolidates the metadata
   management, hence dropping the static array and map, and improves
   performance

 - "mm/damon: introduce data attributes monitoring" (SeongJae Park(

   Extend DAMON to monitor general data attributes other than accesses

 - "mm/vmalloc: free unused pages on vrealloc() shrink" (Shivam Kalra)

   Implement the TODO in vrealloc() to unmap and free unused pages when
   shrinking across a page boundary

 - "mm/damon: documentation and comment fixes" (niecheng)

 - "remove mmap_action success, error hooks" (Lorenzo Stoakes)

   Eliminate custom hooks from mmap_action by removing the problematic
   success_hook which allowed drivers to improperly access uninitialized
   VMAs. It replaces the error_hook with a simple error-code field and
   updates the memory char driver accordingly

 - "mm/damon: minor improvements for code readability and tests"
   (SeongJae Park)

 - "mm/damon: fix macro arguments and clarify quota goals doc" (Maksym
   Shcherba)

 - "userfaultfd: merge fs/userfaultfd.c into mm/userfaultfd.c" (Mike
   Rapoport)

 - "mm/mglru: improve reclaim loop and dirty folio" (Kairui Song and
   others)

   Clean up and slightly improves MGLRU's reclaim loop and dirty
   writeback handling. Large performance improvements are measured

 - "use vma locks for proc/pid/{smaps|numa_maps} reads" (Suren
   Baghdasaryan)

   Use per-vma locks when reading /proc/pid/smaps and numa_maps similar
   to reduce contention on central mmap_lock

 - "refactors thpsize_shmem_enabled_store() and thpsize_shmem_enabled_show()"
   (Ran Xiaokai)

   Some cleanup work in the THP code

 - "selftests/memfd: fix compilation warnings" (Konstantin Khorenko)

   Fix a few build glitches in the memfd selftest code.

 - "memcg: shrink obj_stock_pcp and cache multiple objcgs" (Shakeel
   Butt)

   Resolve a 68% performance regression caused by NUMA-node cache
   thrashing around struct obj_stock_pcp by shrinking its existing
   fields and expanding it into a multi-slot array that caches up to
   five obj_cgroup pointers per CPU, allowing per-node variants of the
   same memcg to coexist within a single 64-byte cache line.

 - "zram: writeback fixes" (Sergey Senozhatsky)

   address a couple of unrelated zram writeback issues

 - "mm: switch THP shrinker to list_lru" (Johannes Weiner)

   Resolve NUMA-awareness issues and streamlines callsite interaction by
   refactoring and extending the list_lru API to completely replace the
   complex, open-coded deferred split queue for Transparent Huge Pages

 - "mm: improve large folio readahead for exec memory" (Usama Arif)

   Improve large-folio readahead on systems like 64K-page arm64 by
   preventing the mmap_miss check from permanently disabling
   target-oriented VM_EXEC readahead, and by generalizing the
   force_thp_readahead gate to support mappings with any usefully large
   maximum folio order under the cache cap.

 - "userfaultfd/pagemap: pre-existing fixes" (Kiryl Shutsemau)

   Fix a bunch of minor issues in the userfaultfd/pagemap, all of which
   were flagged by Sashiko review of proposed new material

 - "mm/sparse-vmemmap: Provide generic vmemmap_set_pmd() and
   vmemmap_check_pmd()" (Muchun Song)

   Provide generic versions of these two functions so the four
   arch-specific implementations can be removed.

 - "mm/swap, PM: hibernate: fix swapoff race in uswsusp by pinning swap
   device" (Youngjun Park)

   Address a uswsusp-vs-swapoff race and reduces the swap device
   reference taking/releasing frequency.

 - "mm/hmm: A fix and a selftest" (Dev Jain)

* tag 'mm-stable-2026-06-18-09-26' of git://git.kernel.org/pub/scm/linux/kernel/git/akpm/mm: (321 commits)
  selftests/mm/hmm-tests: test pagemap reads of PMD device-private entries
  fs/proc/task_mmu: do not warn on seeing non-migration pmd entry
  lib/test_hmm: check alloc_page_vma() return value and handle OOM
  mm/compaction: cap compact_gap() at COMPACT_CLUSTER_MAX
  mm/swap: remove redundant swap device reference in alloc/free
  mm/swap, PM: hibernate: fix swapoff race in uswsusp by pinning swap device
  mm/filemap: use folio_next_index() for start
  vmalloc: fix NULL pointer dereference in is_vm_area_hugepages()
  sparc/mm: drop vmemmap_check_pmd helper and use generic code
  loongarch/mm: drop vmemmap_check_pmd helper and use generic code
  riscv/mm: drop vmemmap_pmd helpers and use generic code
  arm64/mm: drop vmemmap_pmd helpers and use generic code
  mm/sparse-vmemmap: provide generic vmemmap_set_pmd() and vmemmap_check_pmd()
  rust: page: mark Page::nid as inline
  userfaultfd: build __VMA_UFFD_FLAGS from config-gated masks
  userfaultfd: gate must_wait writability check on pte_present()
  mm/huge_memory: preserve pmd_swp_uffd_wp on device-private PMD downgrade
  fs/proc/task_mmu: fix hugetlb self-deadlock in pagemap_scan_pte_hole()
  fs/proc/task_mmu: use huge_page_size() in pagemap_scan_hugetlb_entry()
  fs/proc/task_mmu: fix make_uffd_wp_huge_pte() prot-update race
  ...
2026-06-19 10:14:34 -07:00

3302 lines
76 KiB
C

/*
* Compressed RAM block device
*
* Copyright (C) 2008, 2009, 2010 Nitin Gupta
* 2012, 2013 Minchan Kim
*
* This code is released using a dual license strategy: BSD/GPL
* You can choose the licence that better fits your requirements.
*
* Released under the terms of 3-clause BSD License
* Released under the terms of GNU General Public License Version 2.0
*
*/
#define pr_fmt(fmt) "zram: " fmt
#include <linux/module.h>
#include <linux/kernel.h>
#include <linux/bio.h>
#include <linux/bitops.h>
#include <linux/blkdev.h>
#include <linux/buffer_head.h>
#include <linux/device.h>
#include <linux/highmem.h>
#include <linux/slab.h>
#include <linux/backing-dev.h>
#include <linux/string.h>
#include <linux/vmalloc.h>
#include <linux/err.h>
#include <linux/idr.h>
#include <linux/sysfs.h>
#include <linux/debugfs.h>
#include <linux/cpuhotplug.h>
#include <linux/part_stat.h>
#include <linux/kernel_read_file.h>
#include <linux/rcupdate.h>
#include "zram_drv.h"
static DEFINE_IDR(zram_index_idr);
/* idr index must be protected */
static DEFINE_MUTEX(zram_index_mutex);
static int zram_major;
static const char *default_compressor = CONFIG_ZRAM_DEF_COMP;
#define ZRAM_MAX_ALGO_NAME_SZ 128
/* Module params (documentation at end) */
static unsigned int num_devices = 1;
/*
* Pages that compress to sizes equals or greater than this are stored
* uncompressed in memory.
*/
static size_t huge_class_size;
static const struct block_device_operations zram_devops;
static void slot_free(struct zram *zram, u32 index);
#define slot_dep_map(zram, index) (&(zram)->table[(index)].dep_map)
static void slot_lock_init(struct zram *zram, u32 index)
{
static struct lock_class_key __key;
lockdep_init_map(slot_dep_map(zram, index), "zram->table[index].lock",
&__key, 0);
}
/*
* entry locking rules:
*
* 1) Lock is exclusive
*
* 2) lock() function can sleep waiting for the lock
*
* 3) Lock owner can sleep
*
* 4) Use TRY lock variant when in atomic context
* - must check return value and handle locking failers
*/
static __must_check bool slot_trylock(struct zram *zram, u32 index)
{
unsigned long *lock = &zram->table[index].__lock;
if (!test_and_set_bit_lock(ZRAM_ENTRY_LOCK, lock)) {
mutex_acquire(slot_dep_map(zram, index), 0, 1, _RET_IP_);
lock_acquired(slot_dep_map(zram, index), _RET_IP_);
return true;
}
return false;
}
static void slot_lock(struct zram *zram, u32 index)
{
unsigned long *lock = &zram->table[index].__lock;
mutex_acquire(slot_dep_map(zram, index), 0, 0, _RET_IP_);
wait_on_bit_lock(lock, ZRAM_ENTRY_LOCK, TASK_UNINTERRUPTIBLE);
lock_acquired(slot_dep_map(zram, index), _RET_IP_);
}
static void slot_unlock(struct zram *zram, u32 index)
{
unsigned long *lock = &zram->table[index].__lock;
mutex_release(slot_dep_map(zram, index), _RET_IP_);
clear_and_wake_up_bit(ZRAM_ENTRY_LOCK, lock);
}
static inline bool init_done(struct zram *zram)
{
return zram->disksize;
}
static inline struct zram *dev_to_zram(struct device *dev)
{
return (struct zram *)dev_to_disk(dev)->private_data;
}
static unsigned long get_slot_handle(struct zram *zram, u32 index)
{
return zram->table[index].handle;
}
static void set_slot_handle(struct zram *zram, u32 index, unsigned long handle)
{
zram->table[index].handle = handle;
}
static bool test_slot_flag(struct zram *zram, u32 index,
enum zram_pageflags flag)
{
return zram->table[index].attr.flags & BIT(flag);
}
static void set_slot_flag(struct zram *zram, u32 index,
enum zram_pageflags flag)
{
zram->table[index].attr.flags |= BIT(flag);
}
static void clear_slot_flag(struct zram *zram, u32 index,
enum zram_pageflags flag)
{
zram->table[index].attr.flags &= ~BIT(flag);
}
static size_t get_slot_size(struct zram *zram, u32 index)
{
return zram->table[index].attr.flags & (BIT(ZRAM_FLAG_SHIFT) - 1);
}
static void set_slot_size(struct zram *zram, u32 index, size_t size)
{
unsigned long flags = zram->table[index].attr.flags >> ZRAM_FLAG_SHIFT;
zram->table[index].attr.flags = (flags << ZRAM_FLAG_SHIFT) | size;
}
static inline bool slot_allocated(struct zram *zram, u32 index)
{
return get_slot_size(zram, index) ||
test_slot_flag(zram, index, ZRAM_SAME) ||
test_slot_flag(zram, index, ZRAM_WB);
}
static inline void set_slot_comp_priority(struct zram *zram, u32 index,
u32 prio)
{
prio &= ZRAM_COMP_PRIORITY_MASK;
/*
* Clear previous priority value first, in case if we recompress
* further an already recompressed page
*/
zram->table[index].attr.flags &= ~(ZRAM_COMP_PRIORITY_MASK <<
ZRAM_COMP_PRIORITY_BIT1);
zram->table[index].attr.flags |= (prio << ZRAM_COMP_PRIORITY_BIT1);
}
static inline u32 get_slot_comp_priority(struct zram *zram, u32 index)
{
u32 prio = zram->table[index].attr.flags >> ZRAM_COMP_PRIORITY_BIT1;
return prio & ZRAM_COMP_PRIORITY_MASK;
}
static void mark_slot_accessed(struct zram *zram, u32 index)
{
clear_slot_flag(zram, index, ZRAM_IDLE);
clear_slot_flag(zram, index, ZRAM_PP_SLOT);
#ifdef CONFIG_ZRAM_TRACK_ENTRY_ACTIME
zram->table[index].attr.ac_time = (u32)ktime_get_boottime_seconds();
#endif
}
static inline void update_used_max(struct zram *zram, const unsigned long pages)
{
unsigned long cur_max = atomic_long_read(&zram->stats.max_used_pages);
do {
if (cur_max >= pages)
return;
} while (!atomic_long_try_cmpxchg(&zram->stats.max_used_pages,
&cur_max, pages));
}
static bool zram_can_store_page(struct zram *zram)
{
unsigned long alloced_pages;
alloced_pages = zs_get_total_pages(zram->mem_pool);
update_used_max(zram, alloced_pages);
return !zram->limit_pages || alloced_pages <= zram->limit_pages;
}
#if PAGE_SIZE != 4096
static inline bool is_partial_io(struct bio_vec *bvec)
{
return bvec->bv_len != PAGE_SIZE;
}
#define ZRAM_PARTIAL_IO 1
#else
static inline bool is_partial_io(struct bio_vec *bvec)
{
return false;
}
#endif
#if defined CONFIG_ZRAM_WRITEBACK || defined CONFIG_ZRAM_MULTI_COMP
struct zram_pp_slot {
unsigned long index;
struct list_head entry;
};
/*
* A post-processing bucket is, essentially, a size class, this defines
* the range (in bytes) of pp-slots sizes in particular bucket.
*/
#define PP_BUCKET_SIZE_RANGE 64
#define NUM_PP_BUCKETS ((PAGE_SIZE / PP_BUCKET_SIZE_RANGE) + 1)
struct zram_pp_ctl {
struct list_head pp_buckets[NUM_PP_BUCKETS];
};
static struct zram_pp_ctl *init_pp_ctl(void)
{
struct zram_pp_ctl *ctl;
u32 idx;
ctl = kmalloc_obj(*ctl);
if (!ctl)
return NULL;
for (idx = 0; idx < NUM_PP_BUCKETS; idx++)
INIT_LIST_HEAD(&ctl->pp_buckets[idx]);
return ctl;
}
static void release_pp_slot(struct zram *zram, struct zram_pp_slot *pps)
{
list_del_init(&pps->entry);
slot_lock(zram, pps->index);
clear_slot_flag(zram, pps->index, ZRAM_PP_SLOT);
slot_unlock(zram, pps->index);
kfree(pps);
}
static void release_pp_ctl(struct zram *zram, struct zram_pp_ctl *ctl)
{
u32 idx;
if (!ctl)
return;
for (idx = 0; idx < NUM_PP_BUCKETS; idx++) {
while (!list_empty(&ctl->pp_buckets[idx])) {
struct zram_pp_slot *pps;
pps = list_first_entry(&ctl->pp_buckets[idx],
struct zram_pp_slot,
entry);
release_pp_slot(zram, pps);
}
}
kfree(ctl);
}
static bool place_pp_slot(struct zram *zram, struct zram_pp_ctl *ctl,
u32 index)
{
struct zram_pp_slot *pps;
u32 bid;
pps = kmalloc_obj(*pps, GFP_NOIO | __GFP_NOWARN);
if (!pps)
return false;
INIT_LIST_HEAD(&pps->entry);
pps->index = index;
bid = get_slot_size(zram, pps->index) / PP_BUCKET_SIZE_RANGE;
list_add(&pps->entry, &ctl->pp_buckets[bid]);
set_slot_flag(zram, pps->index, ZRAM_PP_SLOT);
return true;
}
static struct zram_pp_slot *select_pp_slot(struct zram_pp_ctl *ctl)
{
struct zram_pp_slot *pps = NULL;
s32 idx = NUM_PP_BUCKETS - 1;
/* The higher the bucket id the more optimal slot post-processing is */
while (idx >= 0) {
pps = list_first_entry_or_null(&ctl->pp_buckets[idx],
struct zram_pp_slot,
entry);
if (pps)
break;
idx--;
}
return pps;
}
#endif
static inline void zram_fill_page(void *ptr, unsigned long len,
unsigned long value)
{
WARN_ON_ONCE(!IS_ALIGNED(len, sizeof(unsigned long)));
memset_l(ptr, value, len / sizeof(unsigned long));
}
static bool page_same_filled(void *ptr, unsigned long *element)
{
unsigned long *page;
unsigned long val;
unsigned int pos, last_pos = PAGE_SIZE / sizeof(*page) - 1;
page = (unsigned long *)ptr;
val = page[0];
if (val != page[last_pos])
return false;
for (pos = 1; pos < last_pos; pos++) {
if (val != page[pos])
return false;
}
*element = val;
return true;
}
static ssize_t initstate_show(struct device *dev, struct device_attribute *attr,
char *buf)
{
u32 val;
struct zram *zram = dev_to_zram(dev);
guard(rwsem_read)(&zram->dev_lock);
val = init_done(zram);
return sysfs_emit(buf, "%u\n", val);
}
static ssize_t disksize_show(struct device *dev,
struct device_attribute *attr, char *buf)
{
struct zram *zram = dev_to_zram(dev);
return sysfs_emit(buf, "%llu\n", zram->disksize);
}
static ssize_t mem_limit_store(struct device *dev,
struct device_attribute *attr, const char *buf,
size_t len)
{
u64 limit;
char *tmp;
struct zram *zram = dev_to_zram(dev);
limit = memparse(buf, &tmp);
if (buf == tmp) /* no chars parsed, invalid input */
return -EINVAL;
guard(rwsem_write)(&zram->dev_lock);
zram->limit_pages = PAGE_ALIGN(limit) >> PAGE_SHIFT;
return len;
}
static ssize_t mem_used_max_store(struct device *dev,
struct device_attribute *attr,
const char *buf, size_t len)
{
int err;
unsigned long val;
struct zram *zram = dev_to_zram(dev);
err = kstrtoul(buf, 10, &val);
if (err || val != 0)
return -EINVAL;
guard(rwsem_read)(&zram->dev_lock);
if (init_done(zram)) {
atomic_long_set(&zram->stats.max_used_pages,
zs_get_total_pages(zram->mem_pool));
}
return len;
}
/*
* Mark all pages which are older than or equal to cutoff as IDLE.
* Callers should hold the zram init lock in read mode
*/
static void mark_idle(struct zram *zram, ktime_t cutoff)
{
int is_idle = 1;
unsigned long nr_pages = zram->disksize >> PAGE_SHIFT;
int index;
for (index = 0; index < nr_pages; index++) {
/*
* Do not mark ZRAM_SAME slots as ZRAM_IDLE, because no
* post-processing (recompress, writeback) happens to the
* ZRAM_SAME slot.
*
* And ZRAM_WB slots simply cannot be ZRAM_IDLE.
*/
slot_lock(zram, index);
if (!slot_allocated(zram, index) ||
test_slot_flag(zram, index, ZRAM_WB) ||
test_slot_flag(zram, index, ZRAM_SAME)) {
slot_unlock(zram, index);
continue;
}
#ifdef CONFIG_ZRAM_TRACK_ENTRY_ACTIME
is_idle = !cutoff ||
ktime_after(cutoff, zram->table[index].attr.ac_time);
#endif
if (is_idle)
set_slot_flag(zram, index, ZRAM_IDLE);
else
clear_slot_flag(zram, index, ZRAM_IDLE);
slot_unlock(zram, index);
}
}
static ssize_t idle_store(struct device *dev, struct device_attribute *attr,
const char *buf, size_t len)
{
struct zram *zram = dev_to_zram(dev);
ktime_t cutoff = 0;
if (!sysfs_streq(buf, "all")) {
/*
* If it did not parse as 'all' try to treat it as an integer
* when we have memory tracking enabled.
*/
u32 age_sec;
if (IS_ENABLED(CONFIG_ZRAM_TRACK_ENTRY_ACTIME) &&
!kstrtouint(buf, 0, &age_sec))
cutoff = ktime_sub((u32)ktime_get_boottime_seconds(),
age_sec);
else
return -EINVAL;
}
guard(rwsem_read)(&zram->dev_lock);
if (!init_done(zram))
return -EINVAL;
/*
* A cutoff of 0 marks everything as idle, this is the
* "all" behavior.
*/
mark_idle(zram, cutoff);
return len;
}
#ifdef CONFIG_ZRAM_WRITEBACK
#define INVALID_BDEV_BLOCK (~0UL)
static int read_from_zspool_raw(struct zram *zram, struct page *page,
u32 index);
static int read_from_zspool(struct zram *zram, struct page *page, u32 index);
struct zram_wb_ctl {
/* idle list is accessed only by the writeback task, no concurency */
struct list_head idle_reqs;
/* done list is accessed concurrently, protect by done_lock */
struct list_head done_reqs;
wait_queue_head_t done_wait;
spinlock_t done_lock;
atomic_t num_inflight;
struct rcu_head rcu;
};
struct zram_wb_req {
unsigned long blk_idx;
struct page *page;
struct zram_pp_slot *pps;
struct bio_vec bio_vec;
struct bio bio;
struct list_head entry;
};
struct zram_rb_req {
struct work_struct work;
struct zram *zram;
struct page *page;
/* The read bio for backing device */
struct bio *bio;
unsigned long blk_idx;
union {
/* The original bio to complete (async read) */
struct bio *parent;
/* error status (sync read) */
int error;
};
u32 index;
};
#define FOUR_K(x) ((x) * (1 << (PAGE_SHIFT - 12)))
static ssize_t bd_stat_show(struct device *dev, struct device_attribute *attr,
char *buf)
{
struct zram *zram = dev_to_zram(dev);
ssize_t ret;
guard(rwsem_read)(&zram->dev_lock);
ret = sysfs_emit(buf,
"%8llu %8llu %8llu\n",
FOUR_K((u64)atomic64_read(&zram->stats.bd_count)),
FOUR_K((u64)atomic64_read(&zram->stats.bd_reads)),
FOUR_K((u64)atomic64_read(&zram->stats.bd_writes)));
return ret;
}
static ssize_t compressed_writeback_store(struct device *dev,
struct device_attribute *attr,
const char *buf, size_t len)
{
struct zram *zram = dev_to_zram(dev);
bool val;
if (kstrtobool(buf, &val))
return -EINVAL;
guard(rwsem_write)(&zram->dev_lock);
if (init_done(zram)) {
return -EBUSY;
}
zram->compressed_wb = val;
return len;
}
static ssize_t compressed_writeback_show(struct device *dev,
struct device_attribute *attr,
char *buf)
{
bool val;
struct zram *zram = dev_to_zram(dev);
guard(rwsem_read)(&zram->dev_lock);
val = zram->compressed_wb;
return sysfs_emit(buf, "%d\n", val);
}
static ssize_t writeback_limit_enable_store(struct device *dev,
struct device_attribute *attr,
const char *buf, size_t len)
{
struct zram *zram = dev_to_zram(dev);
u64 val;
if (kstrtoull(buf, 10, &val))
return -EINVAL;
guard(rwsem_write)(&zram->dev_lock);
zram->wb_limit_enable = val;
return len;
}
static ssize_t writeback_limit_enable_show(struct device *dev,
struct device_attribute *attr,
char *buf)
{
bool val;
struct zram *zram = dev_to_zram(dev);
guard(rwsem_read)(&zram->dev_lock);
val = zram->wb_limit_enable;
return sysfs_emit(buf, "%d\n", val);
}
static ssize_t writeback_limit_store(struct device *dev,
struct device_attribute *attr,
const char *buf, size_t len)
{
struct zram *zram = dev_to_zram(dev);
u64 val;
if (kstrtoull(buf, 10, &val))
return -EINVAL;
/*
* When the page size is greater than 4KB, if bd_wb_limit is set to
* a value that is not page - size aligned, it will cause value
* wrapping. For example, when the page size is set to 16KB and
* bd_wb_limit is set to 3, a single write - back operation will
* cause bd_wb_limit to become -1. Even more terrifying is that
* bd_wb_limit is an unsigned number.
*/
val = rounddown(val, PAGE_SIZE / 4096);
guard(rwsem_write)(&zram->dev_lock);
zram->bd_wb_limit = val;
return len;
}
static ssize_t writeback_limit_show(struct device *dev,
struct device_attribute *attr, char *buf)
{
u64 val;
struct zram *zram = dev_to_zram(dev);
guard(rwsem_read)(&zram->dev_lock);
val = zram->bd_wb_limit;
return sysfs_emit(buf, "%llu\n", val);
}
static ssize_t writeback_batch_size_store(struct device *dev,
struct device_attribute *attr,
const char *buf, size_t len)
{
struct zram *zram = dev_to_zram(dev);
u32 val;
if (kstrtouint(buf, 10, &val))
return -EINVAL;
if (!val)
return -EINVAL;
guard(rwsem_write)(&zram->dev_lock);
zram->wb_batch_size = val;
return len;
}
static ssize_t writeback_batch_size_show(struct device *dev,
struct device_attribute *attr,
char *buf)
{
u32 val;
struct zram *zram = dev_to_zram(dev);
guard(rwsem_read)(&zram->dev_lock);
val = zram->wb_batch_size;
return sysfs_emit(buf, "%u\n", val);
}
static void reset_bdev(struct zram *zram)
{
if (!zram->backing_dev)
return;
/* hope filp_close flush all of IO */
filp_close(zram->backing_dev, NULL);
zram->backing_dev = NULL;
zram->bdev = NULL;
zram->disk->fops = &zram_devops;
kvfree(zram->bitmap);
zram->bitmap = NULL;
}
static ssize_t backing_dev_show(struct device *dev,
struct device_attribute *attr, char *buf)
{
struct file *file;
struct zram *zram = dev_to_zram(dev);
char *p;
ssize_t ret;
guard(rwsem_read)(&zram->dev_lock);
file = zram->backing_dev;
if (!file) {
memcpy(buf, "none\n", 5);
return 5;
}
p = file_path(file, buf, PAGE_SIZE - 1);
if (IS_ERR(p))
return PTR_ERR(p);
ret = strlen(p);
memmove(buf, p, ret);
buf[ret++] = '\n';
return ret;
}
static ssize_t backing_dev_store(struct device *dev,
struct device_attribute *attr, const char *buf,
size_t len)
{
char *file_name;
size_t sz;
struct file *backing_dev = NULL;
struct inode *inode;
unsigned int bitmap_sz;
unsigned long nr_pages, *bitmap = NULL;
int err;
struct zram *zram = dev_to_zram(dev);
file_name = kmalloc(PATH_MAX, GFP_KERNEL);
if (!file_name)
return -ENOMEM;
guard(rwsem_write)(&zram->dev_lock);
if (init_done(zram)) {
pr_info("Can't setup backing device for initialized device\n");
err = -EBUSY;
goto out;
}
strscpy(file_name, buf, PATH_MAX);
/* ignore trailing newline */
sz = strlen(file_name);
if (sz > 0 && file_name[sz - 1] == '\n')
file_name[sz - 1] = 0x00;
backing_dev = filp_open(file_name, O_RDWR | O_LARGEFILE | O_EXCL, 0);
if (IS_ERR(backing_dev)) {
err = PTR_ERR(backing_dev);
backing_dev = NULL;
goto out;
}
inode = backing_dev->f_mapping->host;
/* Support only block device in this moment */
if (!S_ISBLK(inode->i_mode)) {
err = -ENOTBLK;
goto out;
}
nr_pages = i_size_read(inode) >> PAGE_SHIFT;
/* Refuse to use zero sized device (also prevents self reference) */
if (!nr_pages) {
err = -EINVAL;
goto out;
}
bitmap_sz = BITS_TO_LONGS(nr_pages) * sizeof(long);
bitmap = kvzalloc(bitmap_sz, GFP_KERNEL);
if (!bitmap) {
err = -ENOMEM;
goto out;
}
reset_bdev(zram);
zram->bdev = I_BDEV(inode);
zram->backing_dev = backing_dev;
zram->bitmap = bitmap;
zram->nr_pages = nr_pages;
pr_info("setup backing device %s\n", file_name);
kfree(file_name);
return len;
out:
kvfree(bitmap);
if (backing_dev)
filp_close(backing_dev, NULL);
kfree(file_name);
return err;
}
static unsigned long zram_reserve_bdev_block(struct zram *zram)
{
unsigned long blk_idx;
blk_idx = find_next_zero_bit(zram->bitmap, zram->nr_pages, 0);
if (blk_idx == zram->nr_pages)
return INVALID_BDEV_BLOCK;
set_bit(blk_idx, zram->bitmap);
atomic64_inc(&zram->stats.bd_count);
return blk_idx;
}
static void zram_release_bdev_block(struct zram *zram, unsigned long blk_idx)
{
int was_set;
was_set = test_and_clear_bit(blk_idx, zram->bitmap);
WARN_ON_ONCE(!was_set);
atomic64_dec(&zram->stats.bd_count);
}
static void release_wb_req(struct zram_wb_req *req)
{
__free_page(req->page);
kfree(req);
}
static void release_wb_ctl(struct zram_wb_ctl *wb_ctl)
{
if (!wb_ctl)
return;
/* We should never have inflight requests at this point */
WARN_ON(atomic_read(&wb_ctl->num_inflight));
WARN_ON(!list_empty(&wb_ctl->done_reqs));
while (!list_empty(&wb_ctl->idle_reqs)) {
struct zram_wb_req *req;
req = list_first_entry(&wb_ctl->idle_reqs,
struct zram_wb_req, entry);
list_del(&req->entry);
release_wb_req(req);
}
kfree_rcu(wb_ctl, rcu);
}
static struct zram_wb_ctl *init_wb_ctl(struct zram *zram)
{
struct zram_wb_ctl *wb_ctl;
int i;
wb_ctl = kmalloc_obj(*wb_ctl);
if (!wb_ctl)
return NULL;
INIT_LIST_HEAD(&wb_ctl->idle_reqs);
INIT_LIST_HEAD(&wb_ctl->done_reqs);
atomic_set(&wb_ctl->num_inflight, 0);
init_waitqueue_head(&wb_ctl->done_wait);
spin_lock_init(&wb_ctl->done_lock);
for (i = 0; i < zram->wb_batch_size; i++) {
struct zram_wb_req *req;
/*
* This is fatal condition only if we couldn't allocate
* any requests at all. Otherwise we just work with the
* requests that we have successfully allocated, so that
* writeback can still proceed, even if there is only one
* request on the idle list.
*/
req = kzalloc_obj(*req, GFP_KERNEL | __GFP_NOWARN);
if (!req)
break;
req->page = alloc_page(GFP_KERNEL | __GFP_NOWARN);
if (!req->page) {
kfree(req);
break;
}
list_add(&req->entry, &wb_ctl->idle_reqs);
}
/* We couldn't allocate any requests, so writeabck is not possible */
if (list_empty(&wb_ctl->idle_reqs))
goto release_wb_ctl;
return wb_ctl;
release_wb_ctl:
release_wb_ctl(wb_ctl);
return NULL;
}
static void zram_account_writeback_rollback(struct zram *zram)
{
lockdep_assert_held_write(&zram->dev_lock);
if (zram->wb_limit_enable)
zram->bd_wb_limit += 1UL << (PAGE_SHIFT - 12);
}
static void zram_account_writeback_submit(struct zram *zram)
{
lockdep_assert_held_write(&zram->dev_lock);
if (zram->wb_limit_enable && zram->bd_wb_limit > 0)
zram->bd_wb_limit -= 1UL << (PAGE_SHIFT - 12);
}
static int zram_writeback_complete(struct zram *zram, struct zram_wb_req *req)
{
u32 index = req->pps->index;
int err;
err = blk_status_to_errno(req->bio.bi_status);
if (err) {
/*
* Failed wb requests should not be accounted in wb_limit
* (if enabled).
*/
zram_account_writeback_rollback(zram);
zram_release_bdev_block(zram, req->blk_idx);
return err;
}
atomic64_inc(&zram->stats.bd_writes);
slot_lock(zram, index);
/*
* We release slot lock during writeback so slot can change under us:
* slot_free() or slot_free() and zram_write_page(). In both cases
* slot loses ZRAM_PP_SLOT flag. No concurrent post-processing can
* set ZRAM_PP_SLOT on such slots until current post-processing
* finishes.
*/
if (!test_slot_flag(zram, index, ZRAM_PP_SLOT)) {
zram_release_bdev_block(zram, req->blk_idx);
goto out;
}
clear_slot_flag(zram, index, ZRAM_IDLE);
if (test_slot_flag(zram, index, ZRAM_HUGE))
atomic64_dec(&zram->stats.huge_pages);
atomic64_sub(get_slot_size(zram, index), &zram->stats.compr_data_size);
zs_free(zram->mem_pool, get_slot_handle(zram, index));
set_slot_handle(zram, index, req->blk_idx);
set_slot_flag(zram, index, ZRAM_WB);
out:
slot_unlock(zram, index);
return 0;
}
static void zram_writeback_endio(struct bio *bio)
{
struct zram_wb_req *req = container_of(bio, struct zram_wb_req, bio);
struct zram_wb_ctl *wb_ctl = bio->bi_private;
unsigned long flags;
rcu_read_lock();
spin_lock_irqsave(&wb_ctl->done_lock, flags);
list_add(&req->entry, &wb_ctl->done_reqs);
spin_unlock_irqrestore(&wb_ctl->done_lock, flags);
wake_up(&wb_ctl->done_wait);
rcu_read_unlock();
}
static void zram_submit_wb_request(struct zram *zram,
struct zram_wb_ctl *wb_ctl,
struct zram_wb_req *req)
{
/*
* wb_limit (if enabled) should be adjusted before submission,
* so that we don't over-submit.
*/
zram_account_writeback_submit(zram);
atomic_inc(&wb_ctl->num_inflight);
req->bio.bi_private = wb_ctl;
submit_bio(&req->bio);
}
static int zram_complete_done_reqs(struct zram *zram,
struct zram_wb_ctl *wb_ctl)
{
struct zram_wb_req *req;
unsigned long flags;
int ret = 0, err;
while (atomic_read(&wb_ctl->num_inflight) > 0) {
spin_lock_irqsave(&wb_ctl->done_lock, flags);
req = list_first_entry_or_null(&wb_ctl->done_reqs,
struct zram_wb_req, entry);
if (req)
list_del(&req->entry);
spin_unlock_irqrestore(&wb_ctl->done_lock, flags);
/* ->num_inflight > 0 doesn't mean we have done requests */
if (!req)
break;
err = zram_writeback_complete(zram, req);
if (err)
ret = err;
atomic_dec(&wb_ctl->num_inflight);
release_pp_slot(zram, req->pps);
req->pps = NULL;
list_add(&req->entry, &wb_ctl->idle_reqs);
}
return ret;
}
static struct zram_wb_req *zram_select_idle_req(struct zram_wb_ctl *wb_ctl)
{
struct zram_wb_req *req;
req = list_first_entry_or_null(&wb_ctl->idle_reqs,
struct zram_wb_req, entry);
if (req)
list_del(&req->entry);
return req;
}
static int zram_writeback_slots(struct zram *zram,
struct zram_pp_ctl *ctl,
struct zram_wb_ctl *wb_ctl)
{
unsigned long blk_idx = INVALID_BDEV_BLOCK;
struct zram_wb_req *req = NULL;
struct zram_pp_slot *pps;
int ret = 0, err = 0;
u32 index = 0;
while ((pps = select_pp_slot(ctl))) {
if (zram->wb_limit_enable && !zram->bd_wb_limit) {
ret = -EIO;
break;
}
while (!req) {
req = zram_select_idle_req(wb_ctl);
if (req)
break;
wait_event(wb_ctl->done_wait,
!list_empty(&wb_ctl->done_reqs));
err = zram_complete_done_reqs(zram, wb_ctl);
/*
* BIO errors are not fatal, we continue and simply
* attempt to writeback the remaining objects (pages).
* At the same time we need to signal user-space that
* some writes (at least one, but also could be all of
* them) were not successful and we do so by returning
* the most recent BIO error.
*/
if (err)
ret = err;
}
if (blk_idx == INVALID_BDEV_BLOCK) {
blk_idx = zram_reserve_bdev_block(zram);
if (blk_idx == INVALID_BDEV_BLOCK) {
ret = -ENOSPC;
break;
}
}
index = pps->index;
slot_lock(zram, index);
/*
* scan_slots() sets ZRAM_PP_SLOT and releases slot lock, so
* slots can change in the meantime. If slots are accessed or
* freed they lose ZRAM_PP_SLOT flag and hence we don't
* post-process them.
*/
if (!test_slot_flag(zram, index, ZRAM_PP_SLOT))
goto next;
if (zram->compressed_wb)
err = read_from_zspool_raw(zram, req->page, index);
else
err = read_from_zspool(zram, req->page, index);
if (err)
goto next;
slot_unlock(zram, index);
/*
* From now on pp-slot is owned by the req, remove it from
* its pp bucket.
*/
list_del_init(&pps->entry);
req->blk_idx = blk_idx;
req->pps = pps;
bio_init(&req->bio, zram->bdev, &req->bio_vec, 1, REQ_OP_WRITE);
req->bio.bi_iter.bi_sector = req->blk_idx * (PAGE_SIZE >> 9);
req->bio.bi_end_io = zram_writeback_endio;
__bio_add_page(&req->bio, req->page, PAGE_SIZE, 0);
zram_submit_wb_request(zram, wb_ctl, req);
blk_idx = INVALID_BDEV_BLOCK;
req = NULL;
cond_resched();
continue;
next:
slot_unlock(zram, index);
release_pp_slot(zram, pps);
}
/*
* Selected idle req, but never submitted it due to some error or
* wb limit.
*/
if (req)
release_wb_req(req);
if (blk_idx != INVALID_BDEV_BLOCK)
zram_release_bdev_block(zram, blk_idx);
while (atomic_read(&wb_ctl->num_inflight) > 0) {
wait_event(wb_ctl->done_wait, !list_empty(&wb_ctl->done_reqs));
err = zram_complete_done_reqs(zram, wb_ctl);
if (err)
ret = err;
}
return ret;
}
#define PAGE_WRITEBACK 0
#define HUGE_WRITEBACK (1 << 0)
#define IDLE_WRITEBACK (1 << 1)
#define INCOMPRESSIBLE_WRITEBACK (1 << 2)
static int parse_page_index(char *val, unsigned long nr_pages,
unsigned long *lo, unsigned long *hi)
{
int ret;
ret = kstrtoul(val, 10, lo);
if (ret)
return ret;
if (*lo >= nr_pages)
return -ERANGE;
*hi = *lo + 1;
return 0;
}
static int parse_page_indexes(char *val, unsigned long nr_pages,
unsigned long *lo, unsigned long *hi)
{
char *delim;
int ret;
delim = strchr(val, '-');
if (!delim)
return -EINVAL;
*delim = 0x00;
ret = kstrtoul(val, 10, lo);
if (ret)
return ret;
if (*lo >= nr_pages)
return -ERANGE;
ret = kstrtoul(delim + 1, 10, hi);
if (ret)
return ret;
if (*hi >= nr_pages || *lo > *hi)
return -ERANGE;
*hi += 1;
return 0;
}
static int parse_mode(char *val, u32 *mode)
{
*mode = 0;
if (!strcmp(val, "idle"))
*mode = IDLE_WRITEBACK;
if (!strcmp(val, "huge"))
*mode = HUGE_WRITEBACK;
if (!strcmp(val, "huge_idle"))
*mode = IDLE_WRITEBACK | HUGE_WRITEBACK;
if (!strcmp(val, "incompressible"))
*mode = INCOMPRESSIBLE_WRITEBACK;
if (*mode == 0)
return -EINVAL;
return 0;
}
static void scan_slots_for_writeback(struct zram *zram, u32 mode,
unsigned long lo, unsigned long hi,
struct zram_pp_ctl *ctl)
{
u32 index = lo;
while (index < hi) {
bool ok = true;
slot_lock(zram, index);
if (!slot_allocated(zram, index))
goto next;
if (test_slot_flag(zram, index, ZRAM_WB) ||
test_slot_flag(zram, index, ZRAM_SAME))
goto next;
if (mode & IDLE_WRITEBACK &&
!test_slot_flag(zram, index, ZRAM_IDLE))
goto next;
if (mode & HUGE_WRITEBACK &&
!test_slot_flag(zram, index, ZRAM_HUGE))
goto next;
if (mode & INCOMPRESSIBLE_WRITEBACK &&
!test_slot_flag(zram, index, ZRAM_INCOMPRESSIBLE))
goto next;
ok = place_pp_slot(zram, ctl, index);
next:
slot_unlock(zram, index);
if (!ok)
break;
index++;
}
}
static ssize_t writeback_store(struct device *dev,
struct device_attribute *attr,
const char *buf, size_t len)
{
struct zram *zram = dev_to_zram(dev);
u64 nr_pages = zram->disksize >> PAGE_SHIFT;
unsigned long lo = 0, hi = nr_pages;
struct zram_pp_ctl *pp_ctl = NULL;
struct zram_wb_ctl *wb_ctl = NULL;
char *args, *param, *val;
ssize_t ret = len;
int err, mode = 0;
guard(rwsem_write)(&zram->dev_lock);
if (!init_done(zram))
return -EINVAL;
if (!zram->backing_dev)
return -ENODEV;
pp_ctl = init_pp_ctl();
if (!pp_ctl)
return -ENOMEM;
wb_ctl = init_wb_ctl(zram);
if (!wb_ctl) {
ret = -ENOMEM;
goto out;
}
args = skip_spaces(buf);
while (*args) {
args = next_arg(args, &param, &val);
/*
* Workaround to support the old writeback interface.
*
* The old writeback interface has a minor inconsistency and
* requires key=value only for page_index parameter, while the
* writeback mode is a valueless parameter.
*
* This is not the case anymore and now all parameters are
* required to have values, however, we need to support the
* legacy writeback interface format so we check if we can
* recognize a valueless parameter as the (legacy) writeback
* mode.
*/
if (!val || !*val) {
err = parse_mode(param, &mode);
if (err) {
ret = err;
goto out;
}
scan_slots_for_writeback(zram, mode, lo, hi, pp_ctl);
break;
}
if (!strcmp(param, "type")) {
err = parse_mode(val, &mode);
if (err) {
ret = err;
goto out;
}
scan_slots_for_writeback(zram, mode, lo, hi, pp_ctl);
break;
}
if (!strcmp(param, "page_index")) {
err = parse_page_index(val, nr_pages, &lo, &hi);
if (err) {
ret = err;
goto out;
}
scan_slots_for_writeback(zram, mode, lo, hi, pp_ctl);
continue;
}
if (!strcmp(param, "page_indexes")) {
err = parse_page_indexes(val, nr_pages, &lo, &hi);
if (err) {
ret = err;
goto out;
}
scan_slots_for_writeback(zram, mode, lo, hi, pp_ctl);
continue;
}
}
err = zram_writeback_slots(zram, pp_ctl, wb_ctl);
if (err)
ret = err;
out:
release_pp_ctl(zram, pp_ctl);
release_wb_ctl(wb_ctl);
return ret;
}
static int decompress_bdev_page(struct zram *zram, struct page *page, u32 index)
{
struct zcomp_strm *zstrm;
unsigned int size;
int ret, prio;
void *src;
slot_lock(zram, index);
/* Since slot was unlocked we need to make sure it's still ZRAM_WB */
if (!test_slot_flag(zram, index, ZRAM_WB)) {
slot_unlock(zram, index);
/* We read some stale data, zero it out */
memset_page(page, 0, 0, PAGE_SIZE);
return -EIO;
}
if (test_slot_flag(zram, index, ZRAM_HUGE)) {
slot_unlock(zram, index);
return 0;
}
size = get_slot_size(zram, index);
prio = get_slot_comp_priority(zram, index);
zstrm = zcomp_stream_get(zram->comps[prio]);
src = kmap_local_page(page);
ret = zcomp_decompress(zram->comps[prio], zstrm, src, size,
zstrm->local_copy);
if (!ret)
copy_page(src, zstrm->local_copy);
kunmap_local(src);
zcomp_stream_put(zstrm);
slot_unlock(zram, index);
return ret;
}
static void zram_deferred_decompress(struct work_struct *w)
{
struct zram_rb_req *req = container_of(w, struct zram_rb_req, work);
struct page *page = bio_first_page_all(req->bio);
struct zram *zram = req->zram;
u32 index = req->index;
int ret;
ret = decompress_bdev_page(zram, page, index);
if (ret)
req->parent->bi_status = BLK_STS_IOERR;
/* Decrement parent's ->remaining */
bio_endio(req->parent);
bio_put(req->bio);
kfree(req);
}
static void zram_async_read_endio(struct bio *bio)
{
struct zram_rb_req *req = bio->bi_private;
struct zram *zram = req->zram;
if (bio->bi_status) {
req->parent->bi_status = bio->bi_status;
bio_endio(req->parent);
bio_put(bio);
kfree(req);
return;
}
/*
* NOTE: zram_async_read_endio() is not exactly right place for this.
* Ideally, we need to do it after ZRAM_WB check, but this requires
* us to use wq path even on systems that don't enable compressed
* writeback, because we cannot take slot-lock in the current context.
*
* Keep the existing behavior for now.
*/
if (zram->compressed_wb == false) {
/* No decompression needed, complete the parent IO */
bio_endio(req->parent);
bio_put(bio);
kfree(req);
return;
}
/*
* zram decompression is sleepable, so we need to deffer it to
* a preemptible context.
*/
INIT_WORK(&req->work, zram_deferred_decompress);
queue_work(system_highpri_wq, &req->work);
}
static int read_from_bdev_async(struct zram *zram, struct page *page,
u32 index, unsigned long blk_idx,
struct bio *parent)
{
struct zram_rb_req *req;
struct bio *bio;
req = kmalloc_obj(*req, GFP_NOIO);
if (!req)
return -ENOMEM;
bio = bio_alloc(zram->bdev, 1, parent->bi_opf, GFP_NOIO);
if (!bio) {
kfree(req);
return -ENOMEM;
}
req->zram = zram;
req->index = index;
req->blk_idx = blk_idx;
req->bio = bio;
req->parent = parent;
bio->bi_iter.bi_sector = blk_idx * (PAGE_SIZE >> 9);
bio->bi_private = req;
bio->bi_end_io = zram_async_read_endio;
__bio_add_page(bio, page, PAGE_SIZE, 0);
bio_inc_remaining(parent);
submit_bio(bio);
return 0;
}
static void zram_sync_read(struct work_struct *w)
{
struct zram_rb_req *req = container_of(w, struct zram_rb_req, work);
struct bio_vec bv;
struct bio bio;
bio_init(&bio, req->zram->bdev, &bv, 1, REQ_OP_READ);
bio.bi_iter.bi_sector = req->blk_idx * (PAGE_SIZE >> 9);
__bio_add_page(&bio, req->page, PAGE_SIZE, 0);
req->error = submit_bio_wait(&bio);
}
/*
* Block layer want one ->submit_bio to be active at a time, so if we use
* chained IO with parent IO in same context, it's a deadlock. To avoid that,
* use a worker thread context.
*/
static int read_from_bdev_sync(struct zram *zram, struct page *page, u32 index,
unsigned long blk_idx)
{
struct zram_rb_req req;
req.page = page;
req.zram = zram;
req.blk_idx = blk_idx;
INIT_WORK_ONSTACK(&req.work, zram_sync_read);
queue_work(system_dfl_wq, &req.work);
flush_work(&req.work);
destroy_work_on_stack(&req.work);
if (req.error || zram->compressed_wb == false)
return req.error;
return decompress_bdev_page(zram, page, index);
}
static int read_from_bdev(struct zram *zram, struct page *page, u32 index,
unsigned long blk_idx, struct bio *parent)
{
atomic64_inc(&zram->stats.bd_reads);
if (!parent) {
if (WARN_ON_ONCE(!IS_ENABLED(ZRAM_PARTIAL_IO)))
return -EIO;
return read_from_bdev_sync(zram, page, index, blk_idx);
}
return read_from_bdev_async(zram, page, index, blk_idx, parent);
}
#else
static inline void reset_bdev(struct zram *zram) {};
static int read_from_bdev(struct zram *zram, struct page *page, u32 index,
unsigned long blk_idx, struct bio *parent)
{
return -EIO;
}
static void zram_release_bdev_block(struct zram *zram, unsigned long blk_idx)
{
}
#endif
#ifdef CONFIG_ZRAM_MEMORY_TRACKING
static struct dentry *zram_debugfs_root;
static void zram_debugfs_create(void)
{
zram_debugfs_root = debugfs_create_dir("zram", NULL);
}
static void zram_debugfs_destroy(void)
{
debugfs_remove_recursive(zram_debugfs_root);
}
static ssize_t read_block_state(struct file *file, char __user *buf,
size_t count, loff_t *ppos)
{
char *kbuf;
ssize_t index, written = 0;
struct zram *zram = file->private_data;
unsigned long nr_pages = zram->disksize >> PAGE_SHIFT;
kbuf = kvmalloc(count, GFP_KERNEL);
if (!kbuf)
return -ENOMEM;
guard(rwsem_read)(&zram->dev_lock);
if (!init_done(zram)) {
kvfree(kbuf);
return -EINVAL;
}
for (index = *ppos; index < nr_pages; index++) {
int copied;
slot_lock(zram, index);
if (!slot_allocated(zram, index))
goto next;
copied = snprintf(kbuf + written, count,
"%12zd %12u.%06d %c%c%c%c%c%c\n",
index, zram->table[index].attr.ac_time, 0,
test_slot_flag(zram, index, ZRAM_SAME) ? 's' : '.',
test_slot_flag(zram, index, ZRAM_WB) ? 'w' : '.',
test_slot_flag(zram, index, ZRAM_HUGE) ? 'h' : '.',
test_slot_flag(zram, index, ZRAM_IDLE) ? 'i' : '.',
get_slot_comp_priority(zram, index) ? 'r' : '.',
test_slot_flag(zram, index,
ZRAM_INCOMPRESSIBLE) ? 'n' : '.');
if (count <= copied) {
slot_unlock(zram, index);
break;
}
written += copied;
count -= copied;
next:
slot_unlock(zram, index);
*ppos += 1;
}
if (copy_to_user(buf, kbuf, written))
written = -EFAULT;
kvfree(kbuf);
return written;
}
static const struct file_operations proc_zram_block_state_op = {
.open = simple_open,
.read = read_block_state,
.llseek = default_llseek,
};
static void zram_debugfs_register(struct zram *zram)
{
if (!zram_debugfs_root)
return;
zram->debugfs_dir = debugfs_create_dir(zram->disk->disk_name,
zram_debugfs_root);
debugfs_create_file("block_state", 0400, zram->debugfs_dir,
zram, &proc_zram_block_state_op);
}
static void zram_debugfs_unregister(struct zram *zram)
{
debugfs_remove_recursive(zram->debugfs_dir);
}
#else
static void zram_debugfs_create(void) {};
static void zram_debugfs_destroy(void) {};
static void zram_debugfs_register(struct zram *zram) {};
static void zram_debugfs_unregister(struct zram *zram) {};
#endif
/* Only algo parameter given, lookup by algo name */
static int lookup_algo_priority(struct zram *zram, const char *algo,
u32 min_prio)
{
s32 prio;
for (prio = min_prio; prio < ZRAM_MAX_COMPS; prio++) {
if (!zram->comp_algs[prio])
continue;
if (!strcmp(zram->comp_algs[prio], algo))
return prio;
}
return -EINVAL;
}
/* Both algo and priority parameters given, validate them */
static int validate_algo_priority(struct zram *zram, const char *algo, u32 prio)
{
if (prio >= ZRAM_MAX_COMPS)
return -EINVAL;
/* No algo at given priority */
if (!zram->comp_algs[prio])
return -EINVAL;
/* A different algo at given priority */
if (strcmp(zram->comp_algs[prio], algo))
return -EINVAL;
return 0;
}
static void comp_algorithm_set(struct zram *zram, u32 prio, const char *alg)
{
zram->comp_algs[prio] = alg;
}
static int __comp_algorithm_store(struct zram *zram, u32 prio, const char *buf)
{
const char *alg;
size_t sz;
sz = strlen(buf);
if (sz >= ZRAM_MAX_ALGO_NAME_SZ)
return -E2BIG;
alg = zcomp_lookup_backend_name(buf);
if (!alg)
return -EINVAL;
guard(rwsem_write)(&zram->dev_lock);
if (init_done(zram)) {
pr_info("Can't change algorithm for initialized device\n");
return -EBUSY;
}
comp_algorithm_set(zram, prio, alg);
return 0;
}
static void comp_params_reset(struct zram *zram, u32 prio)
{
struct zcomp_params *params = &zram->params[prio];
vfree(params->dict);
params->level = ZCOMP_PARAM_NOT_SET;
params->deflate.winbits = ZCOMP_PARAM_NOT_SET;
params->dict_sz = 0;
params->dict = NULL;
}
static int comp_params_store(struct zram *zram, u32 prio, s32 level,
const char *dict_path,
struct deflate_params *deflate_params)
{
ssize_t sz = 0;
comp_params_reset(zram, prio);
if (dict_path) {
sz = kernel_read_file_from_path(dict_path, 0,
&zram->params[prio].dict,
INT_MAX,
NULL,
READING_POLICY);
if (sz < 0)
return -EINVAL;
}
zram->params[prio].dict_sz = sz;
zram->params[prio].level = level;
zram->params[prio].deflate.winbits = deflate_params->winbits;
return 0;
}
static ssize_t algorithm_params_store(struct device *dev,
struct device_attribute *attr,
const char *buf,
size_t len)
{
s32 prio = ZRAM_PRIMARY_COMP, level = ZCOMP_PARAM_NOT_SET;
char *args, *param, *val, *algo = NULL, *dict_path = NULL;
struct deflate_params deflate_params;
struct zram *zram = dev_to_zram(dev);
bool prio_param = false;
int ret;
deflate_params.winbits = ZCOMP_PARAM_NOT_SET;
args = skip_spaces(buf);
while (*args) {
args = next_arg(args, &param, &val);
if (!val || !*val)
return -EINVAL;
if (!strcmp(param, "priority")) {
prio_param = true;
ret = kstrtoint(val, 10, &prio);
if (ret)
return ret;
continue;
}
if (!strcmp(param, "level")) {
ret = kstrtoint(val, 10, &level);
if (ret)
return ret;
continue;
}
if (!strcmp(param, "algo")) {
algo = val;
continue;
}
if (!strcmp(param, "dict")) {
dict_path = val;
continue;
}
if (!strcmp(param, "deflate.winbits")) {
ret = kstrtoint(val, 10, &deflate_params.winbits);
if (ret)
return ret;
continue;
}
}
guard(rwsem_write)(&zram->dev_lock);
if (init_done(zram))
return -EBUSY;
if (prio_param) {
if (prio < ZRAM_PRIMARY_COMP || prio >= ZRAM_MAX_COMPS)
return -EINVAL;
}
if (algo && prio_param) {
ret = validate_algo_priority(zram, algo, prio);
if (ret)
return ret;
}
if (algo && !prio_param) {
prio = lookup_algo_priority(zram, algo, ZRAM_PRIMARY_COMP);
if (prio < 0)
return -EINVAL;
}
ret = comp_params_store(zram, prio, level, dict_path, &deflate_params);
return ret ? ret : len;
}
static ssize_t comp_algorithm_show(struct device *dev,
struct device_attribute *attr,
char *buf)
{
struct zram *zram = dev_to_zram(dev);
ssize_t sz;
guard(rwsem_read)(&zram->dev_lock);
sz = zcomp_available_show(zram->comp_algs[ZRAM_PRIMARY_COMP], buf, 0);
return sz;
}
static ssize_t comp_algorithm_store(struct device *dev,
struct device_attribute *attr,
const char *buf,
size_t len)
{
struct zram *zram = dev_to_zram(dev);
int ret;
ret = __comp_algorithm_store(zram, ZRAM_PRIMARY_COMP, buf);
return ret ? ret : len;
}
#ifdef CONFIG_ZRAM_MULTI_COMP
static ssize_t recomp_algorithm_show(struct device *dev,
struct device_attribute *attr,
char *buf)
{
struct zram *zram = dev_to_zram(dev);
ssize_t sz = 0;
u32 prio;
guard(rwsem_read)(&zram->dev_lock);
for (prio = ZRAM_SECONDARY_COMP; prio < ZRAM_MAX_COMPS; prio++) {
if (!zram->comp_algs[prio])
continue;
sz += sysfs_emit_at(buf, sz, "#%d: ", prio);
sz += zcomp_available_show(zram->comp_algs[prio], buf, sz);
}
return sz;
}
static ssize_t recomp_algorithm_store(struct device *dev,
struct device_attribute *attr,
const char *buf,
size_t len)
{
struct zram *zram = dev_to_zram(dev);
int prio = ZRAM_SECONDARY_COMP;
char *args, *param, *val;
char *alg = NULL;
int ret;
args = skip_spaces(buf);
while (*args) {
args = next_arg(args, &param, &val);
if (!val || !*val)
return -EINVAL;
if (!strcmp(param, "algo")) {
alg = val;
continue;
}
if (!strcmp(param, "priority")) {
ret = kstrtoint(val, 10, &prio);
if (ret)
return ret;
continue;
}
}
if (!alg)
return -EINVAL;
if (prio < ZRAM_SECONDARY_COMP || prio >= ZRAM_MAX_COMPS)
return -EINVAL;
ret = __comp_algorithm_store(zram, prio, alg);
return ret ? ret : len;
}
#endif
static ssize_t compact_store(struct device *dev, struct device_attribute *attr,
const char *buf, size_t len)
{
struct zram *zram = dev_to_zram(dev);
guard(rwsem_read)(&zram->dev_lock);
if (!init_done(zram))
return -EINVAL;
zs_compact(zram->mem_pool);
return len;
}
static ssize_t io_stat_show(struct device *dev, struct device_attribute *attr,
char *buf)
{
struct zram *zram = dev_to_zram(dev);
ssize_t ret;
guard(rwsem_read)(&zram->dev_lock);
ret = sysfs_emit(buf,
"%8llu %8llu 0 %8llu\n",
(u64)atomic64_read(&zram->stats.failed_reads),
(u64)atomic64_read(&zram->stats.failed_writes),
(u64)atomic64_read(&zram->stats.notify_free));
return ret;
}
static ssize_t mm_stat_show(struct device *dev, struct device_attribute *attr,
char *buf)
{
struct zram *zram = dev_to_zram(dev);
struct zs_pool_stats pool_stats;
u64 orig_size, mem_used = 0;
long max_used;
ssize_t ret;
memset(&pool_stats, 0x00, sizeof(struct zs_pool_stats));
guard(rwsem_read)(&zram->dev_lock);
if (init_done(zram)) {
mem_used = zs_get_total_pages(zram->mem_pool);
zs_pool_stats(zram->mem_pool, &pool_stats);
}
orig_size = atomic64_read(&zram->stats.pages_stored);
max_used = atomic_long_read(&zram->stats.max_used_pages);
ret = sysfs_emit(buf,
"%8llu %8llu %8llu %8lu %8ld %8llu %8lu %8llu %8llu\n",
orig_size << PAGE_SHIFT,
(u64)atomic64_read(&zram->stats.compr_data_size),
mem_used << PAGE_SHIFT,
zram->limit_pages << PAGE_SHIFT,
max_used << PAGE_SHIFT,
(u64)atomic64_read(&zram->stats.same_pages),
atomic_long_read(&pool_stats.pages_compacted),
(u64)atomic64_read(&zram->stats.huge_pages),
(u64)atomic64_read(&zram->stats.huge_pages_since));
return ret;
}
static ssize_t debug_stat_show(struct device *dev,
struct device_attribute *attr, char *buf)
{
int version = 1;
struct zram *zram = dev_to_zram(dev);
ssize_t ret;
guard(rwsem_read)(&zram->dev_lock);
ret = sysfs_emit(buf,
"version: %d\n0 %8llu\n",
version,
(u64)atomic64_read(&zram->stats.miss_free));
return ret;
}
static void zram_meta_free(struct zram *zram, u64 disksize)
{
size_t num_pages = disksize >> PAGE_SHIFT;
size_t index;
if (!zram->table)
return;
/* Free all pages that are still in this zram device */
for (index = 0; index < num_pages; index++)
slot_free(zram, index);
zs_destroy_pool(zram->mem_pool);
vfree(zram->table);
zram->table = NULL;
}
static bool zram_meta_alloc(struct zram *zram, u64 disksize)
{
size_t num_pages, index;
num_pages = disksize >> PAGE_SHIFT;
zram->table = vzalloc(array_size(num_pages, sizeof(*zram->table)));
if (!zram->table)
return false;
zram->mem_pool = zs_create_pool(zram->disk->disk_name);
if (!zram->mem_pool) {
vfree(zram->table);
zram->table = NULL;
return false;
}
if (!huge_class_size)
huge_class_size = zs_huge_class_size(zram->mem_pool);
for (index = 0; index < num_pages; index++)
slot_lock_init(zram, index);
return true;
}
static void slot_free(struct zram *zram, u32 index)
{
unsigned long handle;
#ifdef CONFIG_ZRAM_TRACK_ENTRY_ACTIME
zram->table[index].attr.ac_time = 0;
#endif
clear_slot_flag(zram, index, ZRAM_IDLE);
clear_slot_flag(zram, index, ZRAM_INCOMPRESSIBLE);
clear_slot_flag(zram, index, ZRAM_PP_SLOT);
set_slot_comp_priority(zram, index, 0);
if (test_slot_flag(zram, index, ZRAM_HUGE)) {
/*
* Writeback completion decrements ->huge_pages but keeps
* ZRAM_HUGE flag for deferred decompression path.
*/
if (!test_slot_flag(zram, index, ZRAM_WB))
atomic64_dec(&zram->stats.huge_pages);
clear_slot_flag(zram, index, ZRAM_HUGE);
}
if (test_slot_flag(zram, index, ZRAM_WB)) {
clear_slot_flag(zram, index, ZRAM_WB);
zram_release_bdev_block(zram, get_slot_handle(zram, index));
goto out;
}
/*
* No memory is allocated for same element filled pages.
* Simply clear same page flag.
*/
if (test_slot_flag(zram, index, ZRAM_SAME)) {
clear_slot_flag(zram, index, ZRAM_SAME);
atomic64_dec(&zram->stats.same_pages);
goto out;
}
handle = get_slot_handle(zram, index);
if (!handle)
return;
zs_free(zram->mem_pool, handle);
atomic64_sub(get_slot_size(zram, index),
&zram->stats.compr_data_size);
out:
atomic64_dec(&zram->stats.pages_stored);
set_slot_handle(zram, index, 0);
set_slot_size(zram, index, 0);
}
static int read_same_filled_page(struct zram *zram, struct page *page,
u32 index)
{
void *mem;
mem = kmap_local_page(page);
zram_fill_page(mem, PAGE_SIZE, get_slot_handle(zram, index));
kunmap_local(mem);
return 0;
}
static int read_incompressible_page(struct zram *zram, struct page *page,
u32 index)
{
unsigned long handle;
void *src, *dst;
handle = get_slot_handle(zram, index);
src = zs_obj_read_begin(zram->mem_pool, handle, PAGE_SIZE, NULL);
dst = kmap_local_page(page);
copy_page(dst, src);
kunmap_local(dst);
zs_obj_read_end(zram->mem_pool, handle, PAGE_SIZE, src);
return 0;
}
static int read_compressed_page(struct zram *zram, struct page *page, u32 index)
{
struct zcomp_strm *zstrm;
unsigned long handle;
unsigned int size;
void *src, *dst;
int ret, prio;
handle = get_slot_handle(zram, index);
size = get_slot_size(zram, index);
prio = get_slot_comp_priority(zram, index);
zstrm = zcomp_stream_get(zram->comps[prio]);
src = zs_obj_read_begin(zram->mem_pool, handle, size,
zstrm->local_copy);
dst = kmap_local_page(page);
ret = zcomp_decompress(zram->comps[prio], zstrm, src, size, dst);
kunmap_local(dst);
zs_obj_read_end(zram->mem_pool, handle, size, src);
zcomp_stream_put(zstrm);
return ret;
}
#if defined CONFIG_ZRAM_WRITEBACK
static int read_from_zspool_raw(struct zram *zram, struct page *page, u32 index)
{
struct zcomp_strm *zstrm;
unsigned long handle;
unsigned int size;
void *src;
handle = get_slot_handle(zram, index);
size = get_slot_size(zram, index);
/*
* We need to get stream just for ->local_copy buffer, in
* case if object spans two physical pages. No decompression
* takes place here, as we read raw compressed data.
*/
zstrm = zcomp_stream_get(zram->comps[ZRAM_PRIMARY_COMP]);
src = zs_obj_read_begin(zram->mem_pool, handle, size,
zstrm->local_copy);
memcpy_to_page(page, 0, src, size);
zs_obj_read_end(zram->mem_pool, handle, size, src);
zcomp_stream_put(zstrm);
memzero_page(page, size, PAGE_SIZE - size);
return 0;
}
#endif
/*
* Reads (decompresses if needed) a page from zspool (zsmalloc).
* Corresponding ZRAM slot should be locked.
*/
static int read_from_zspool(struct zram *zram, struct page *page, u32 index)
{
if (test_slot_flag(zram, index, ZRAM_SAME) ||
!get_slot_handle(zram, index))
return read_same_filled_page(zram, page, index);
if (!test_slot_flag(zram, index, ZRAM_HUGE))
return read_compressed_page(zram, page, index);
else
return read_incompressible_page(zram, page, index);
}
static int zram_read_page(struct zram *zram, struct page *page, u32 index,
struct bio *parent)
{
int ret;
slot_lock(zram, index);
if (!test_slot_flag(zram, index, ZRAM_WB)) {
/* Slot should be locked through out the function call */
ret = read_from_zspool(zram, page, index);
slot_unlock(zram, index);
} else {
unsigned long blk_idx = get_slot_handle(zram, index);
/*
* The slot should be unlocked before reading from the backing
* device.
*/
slot_unlock(zram, index);
ret = read_from_bdev(zram, page, index, blk_idx, parent);
}
/* Should NEVER happen. Return bio error if it does. */
if (WARN_ON(ret < 0))
pr_err("Decompression failed! err=%d, page=%u\n", ret, index);
return ret;
}
/*
* Use a temporary buffer to decompress the page, as the decompressor
* always expects a full page for the output.
*/
static int zram_bvec_read_partial(struct zram *zram, struct bio_vec *bvec,
u32 index, int offset)
{
struct page *page = alloc_page(GFP_NOIO);
int ret;
if (!page)
return -ENOMEM;
ret = zram_read_page(zram, page, index, NULL);
if (likely(!ret))
memcpy_to_bvec(bvec, page_address(page) + offset);
__free_page(page);
return ret;
}
static int zram_bvec_read(struct zram *zram, struct bio_vec *bvec,
u32 index, int offset, struct bio *bio)
{
if (is_partial_io(bvec))
return zram_bvec_read_partial(zram, bvec, index, offset);
return zram_read_page(zram, bvec->bv_page, index, bio);
}
static int write_same_filled_page(struct zram *zram, unsigned long fill,
u32 index)
{
slot_lock(zram, index);
slot_free(zram, index);
set_slot_flag(zram, index, ZRAM_SAME);
set_slot_handle(zram, index, fill);
slot_unlock(zram, index);
atomic64_inc(&zram->stats.same_pages);
atomic64_inc(&zram->stats.pages_stored);
return 0;
}
static int write_incompressible_page(struct zram *zram, struct page *page,
u32 index)
{
unsigned long handle;
void *src;
/*
* This function is called from preemptible context so we don't need
* to do optimistic and fallback to pessimistic handle allocation,
* like we do for compressible pages.
*/
handle = zs_malloc(zram->mem_pool, PAGE_SIZE,
GFP_NOIO | __GFP_NOWARN |
__GFP_HIGHMEM | __GFP_MOVABLE, page_to_nid(page));
if (IS_ERR_VALUE(handle))
return PTR_ERR((void *)handle);
if (!zram_can_store_page(zram)) {
zs_free(zram->mem_pool, handle);
return -ENOMEM;
}
src = kmap_local_page(page);
zs_obj_write(zram->mem_pool, handle, src, PAGE_SIZE);
kunmap_local(src);
slot_lock(zram, index);
slot_free(zram, index);
set_slot_flag(zram, index, ZRAM_HUGE);
set_slot_handle(zram, index, handle);
set_slot_size(zram, index, PAGE_SIZE);
slot_unlock(zram, index);
atomic64_add(PAGE_SIZE, &zram->stats.compr_data_size);
atomic64_inc(&zram->stats.huge_pages);
atomic64_inc(&zram->stats.huge_pages_since);
atomic64_inc(&zram->stats.pages_stored);
return 0;
}
static int zram_write_page(struct zram *zram, struct page *page, u32 index)
{
int ret = 0;
unsigned long handle;
unsigned int comp_len;
void *mem;
struct zcomp_strm *zstrm;
unsigned long element;
bool same_filled;
mem = kmap_local_page(page);
same_filled = page_same_filled(mem, &element);
kunmap_local(mem);
if (same_filled)
return write_same_filled_page(zram, element, index);
zstrm = zcomp_stream_get(zram->comps[ZRAM_PRIMARY_COMP]);
mem = kmap_local_page(page);
ret = zcomp_compress(zram->comps[ZRAM_PRIMARY_COMP], zstrm,
mem, &comp_len);
kunmap_local(mem);
if (unlikely(ret)) {
zcomp_stream_put(zstrm);
pr_err("Compression failed! err=%d\n", ret);
return ret;
}
if (comp_len >= huge_class_size) {
zcomp_stream_put(zstrm);
return write_incompressible_page(zram, page, index);
}
handle = zs_malloc(zram->mem_pool, comp_len,
GFP_NOIO | __GFP_NOWARN |
__GFP_HIGHMEM | __GFP_MOVABLE, page_to_nid(page));
if (IS_ERR_VALUE(handle)) {
zcomp_stream_put(zstrm);
return PTR_ERR((void *)handle);
}
if (!zram_can_store_page(zram)) {
zcomp_stream_put(zstrm);
zs_free(zram->mem_pool, handle);
return -ENOMEM;
}
zs_obj_write(zram->mem_pool, handle, zstrm->buffer, comp_len);
zcomp_stream_put(zstrm);
slot_lock(zram, index);
slot_free(zram, index);
set_slot_handle(zram, index, handle);
set_slot_size(zram, index, comp_len);
slot_unlock(zram, index);
/* Update stats */
atomic64_inc(&zram->stats.pages_stored);
atomic64_add(comp_len, &zram->stats.compr_data_size);
return ret;
}
/*
* This is a partial IO. Read the full page before writing the changes.
*/
static int zram_bvec_write_partial(struct zram *zram, struct bio_vec *bvec,
u32 index, int offset)
{
struct page *page = alloc_page(GFP_NOIO);
int ret;
if (!page)
return -ENOMEM;
ret = zram_read_page(zram, page, index, NULL);
if (!ret) {
memcpy_from_bvec(page_address(page) + offset, bvec);
ret = zram_write_page(zram, page, index);
}
__free_page(page);
return ret;
}
static int zram_bvec_write(struct zram *zram, struct bio_vec *bvec,
u32 index, int offset)
{
if (is_partial_io(bvec))
return zram_bvec_write_partial(zram, bvec, index, offset);
return zram_write_page(zram, bvec->bv_page, index);
}
#ifdef CONFIG_ZRAM_MULTI_COMP
#define RECOMPRESS_IDLE (1 << 0)
#define RECOMPRESS_HUGE (1 << 1)
static bool highest_priority_algorithm(struct zram *zram, u32 prio)
{
u32 p;
for (p = prio + 1; p < ZRAM_MAX_COMPS; p++) {
if (zram->comp_algs[p])
return false;
}
return true;
}
static void scan_slots_for_recompress(struct zram *zram, u32 mode, u32 prio,
struct zram_pp_ctl *ctl)
{
unsigned long nr_pages = zram->disksize >> PAGE_SHIFT;
unsigned long index;
for (index = 0; index < nr_pages; index++) {
bool ok = true;
slot_lock(zram, index);
if (!slot_allocated(zram, index))
goto next;
if (mode & RECOMPRESS_IDLE &&
!test_slot_flag(zram, index, ZRAM_IDLE))
goto next;
if (mode & RECOMPRESS_HUGE &&
!test_slot_flag(zram, index, ZRAM_HUGE))
goto next;
if (test_slot_flag(zram, index, ZRAM_WB) ||
test_slot_flag(zram, index, ZRAM_SAME) ||
test_slot_flag(zram, index, ZRAM_INCOMPRESSIBLE))
goto next;
/* Already compressed with same or higher priority */
if (get_slot_comp_priority(zram, index) >= prio)
goto next;
ok = place_pp_slot(zram, ctl, index);
next:
slot_unlock(zram, index);
if (!ok)
break;
}
}
/*
* This function will decompress (unless it's ZRAM_HUGE) the page and then
* attempt to compress it using provided compression algorithm priority
* (which is potentially more effective).
*
* Corresponding ZRAM slot should be locked.
*/
static int recompress_slot(struct zram *zram, u32 index, struct page *page,
u64 *num_recomp_pages, u32 threshold, u32 prio)
{
struct zcomp_strm *zstrm = NULL;
unsigned long handle_old;
unsigned long handle_new;
unsigned int comp_len_old;
unsigned int comp_len_new;
unsigned int class_index_old;
unsigned int class_index_new;
void *src;
int ret = 0;
handle_old = get_slot_handle(zram, index);
if (!handle_old)
return -EINVAL;
comp_len_old = get_slot_size(zram, index);
/*
* Do not recompress objects that are already "small enough".
*/
if (comp_len_old < threshold)
return 0;
ret = read_from_zspool(zram, page, index);
if (ret)
return ret;
/*
* We touched this entry so mark it as non-IDLE. This makes sure that
* we don't preserve IDLE flag and don't incorrectly pick this entry
* for different post-processing type (e.g. writeback).
*/
clear_slot_flag(zram, index, ZRAM_IDLE);
zstrm = zcomp_stream_get(zram->comps[prio]);
src = kmap_local_page(page);
ret = zcomp_compress(zram->comps[prio], zstrm, src, &comp_len_new);
kunmap_local(src);
/*
* Decrement the limit (if set) on pages we can recompress, even
* when current recompression was unsuccessful or did not compress
* the page below the threshold, because we still spent resources
* on it.
*/
if (*num_recomp_pages)
*num_recomp_pages -= 1;
if (ret) {
zcomp_stream_put(zstrm);
return ret;
}
class_index_old = zs_lookup_class_index(zram->mem_pool, comp_len_old);
class_index_new = zs_lookup_class_index(zram->mem_pool, comp_len_new);
if (class_index_new >= class_index_old ||
(threshold && comp_len_new >= threshold)) {
zcomp_stream_put(zstrm);
/*
* Secondary algorithms failed to re-compress the page
* in a way that would save memory.
*
* Mark the object incompressible if the max-priority (the
* last configured one) algorithm couldn't re-compress it.
*/
if (highest_priority_algorithm(zram, prio))
set_slot_flag(zram, index, ZRAM_INCOMPRESSIBLE);
return 0;
}
/*
* We are holding per-CPU stream mutex and entry lock so better
* avoid direct reclaim. Allocation error is not fatal since
* we still have the old object in the mem_pool.
*
* XXX: technically, the node we really want here is the node that
* holds the original compressed data. But that would require us to
* modify zsmalloc API to return this information. For now, we will
* make do with the node of the page allocated for recompression.
*/
handle_new = zs_malloc(zram->mem_pool, comp_len_new,
GFP_NOIO | __GFP_NOWARN |
__GFP_HIGHMEM | __GFP_MOVABLE,
page_to_nid(page));
if (IS_ERR_VALUE(handle_new)) {
zcomp_stream_put(zstrm);
return PTR_ERR((void *)handle_new);
}
zs_obj_write(zram->mem_pool, handle_new, zstrm->buffer, comp_len_new);
zcomp_stream_put(zstrm);
slot_free(zram, index);
set_slot_handle(zram, index, handle_new);
set_slot_size(zram, index, comp_len_new);
set_slot_comp_priority(zram, index, prio);
atomic64_add(comp_len_new, &zram->stats.compr_data_size);
atomic64_inc(&zram->stats.pages_stored);
return 0;
}
static ssize_t recompress_store(struct device *dev,
struct device_attribute *attr,
const char *buf, size_t len)
{
struct zram *zram = dev_to_zram(dev);
char *args, *param, *val, *algo = NULL;
u64 num_recomp_pages = ULLONG_MAX;
struct zram_pp_ctl *ctl = NULL;
s32 prio = ZRAM_SECONDARY_COMP;
u32 mode = 0, threshold = 0;
struct zram_pp_slot *pps;
struct page *page = NULL;
bool prio_param = false;
ssize_t ret;
args = skip_spaces(buf);
while (*args) {
args = next_arg(args, &param, &val);
if (!val || !*val)
return -EINVAL;
if (!strcmp(param, "type")) {
if (!strcmp(val, "idle"))
mode = RECOMPRESS_IDLE;
if (!strcmp(val, "huge"))
mode = RECOMPRESS_HUGE;
if (!strcmp(val, "huge_idle"))
mode = RECOMPRESS_IDLE | RECOMPRESS_HUGE;
if (!mode)
return -EINVAL;
continue;
}
if (!strcmp(param, "max_pages")) {
/*
* Limit the number of entries (pages) we attempt to
* recompress.
*/
ret = kstrtoull(val, 10, &num_recomp_pages);
if (ret)
return ret;
continue;
}
if (!strcmp(param, "threshold")) {
/*
* We will re-compress only idle objects equal or
* greater in size than watermark.
*/
ret = kstrtouint(val, 10, &threshold);
if (ret)
return ret;
continue;
}
if (!strcmp(param, "algo")) {
algo = val;
continue;
}
if (!strcmp(param, "priority")) {
prio_param = true;
ret = kstrtoint(val, 10, &prio);
if (ret)
return ret;
continue;
}
}
if (threshold >= huge_class_size)
return -EINVAL;
guard(rwsem_write)(&zram->dev_lock);
if (!init_done(zram))
return -EINVAL;
if (prio_param) {
if (prio < ZRAM_SECONDARY_COMP || prio >= ZRAM_MAX_COMPS)
return -EINVAL;
}
if (algo && prio_param) {
ret = validate_algo_priority(zram, algo, prio);
if (ret)
return ret;
}
if (algo && !prio_param) {
prio = lookup_algo_priority(zram, algo, ZRAM_SECONDARY_COMP);
if (prio < 0)
return -EINVAL;
}
if (!zram->comps[prio])
return -EINVAL;
page = alloc_page(GFP_KERNEL);
if (!page) {
ret = -ENOMEM;
goto out;
}
ctl = init_pp_ctl();
if (!ctl) {
ret = -ENOMEM;
goto out;
}
scan_slots_for_recompress(zram, mode, prio, ctl);
ret = len;
while ((pps = select_pp_slot(ctl))) {
int err = 0;
if (!num_recomp_pages)
break;
slot_lock(zram, pps->index);
if (!test_slot_flag(zram, pps->index, ZRAM_PP_SLOT))
goto next;
err = recompress_slot(zram, pps->index, page,
&num_recomp_pages, threshold, prio);
next:
slot_unlock(zram, pps->index);
release_pp_slot(zram, pps);
if (err) {
ret = err;
break;
}
cond_resched();
}
out:
if (page)
__free_page(page);
release_pp_ctl(zram, ctl);
return ret;
}
#endif
static void zram_bio_discard(struct zram *zram, struct bio *bio)
{
size_t n = bio->bi_iter.bi_size;
u32 index = bio->bi_iter.bi_sector >> SECTORS_PER_PAGE_SHIFT;
u32 offset = (bio->bi_iter.bi_sector & (SECTORS_PER_PAGE - 1)) <<
SECTOR_SHIFT;
/*
* zram manages data in physical block size units. Because logical block
* size isn't identical with physical block size on some arch, we
* could get a discard request pointing to a specific offset within a
* certain physical block. Although we can handle this request by
* reading that physiclal block and decompressing and partially zeroing
* and re-compressing and then re-storing it, this isn't reasonable
* because our intent with a discard request is to save memory. So
* skipping this logical block is appropriate here.
*/
if (offset) {
if (n <= (PAGE_SIZE - offset))
goto end_bio;
n -= (PAGE_SIZE - offset);
index++;
}
while (n >= PAGE_SIZE) {
slot_lock(zram, index);
slot_free(zram, index);
slot_unlock(zram, index);
atomic64_inc(&zram->stats.notify_free);
index++;
n -= PAGE_SIZE;
}
end_bio:
bio_endio(bio);
}
static void zram_bio_read(struct zram *zram, struct bio *bio)
{
unsigned long start_time = bio_start_io_acct(bio);
struct bvec_iter iter = bio->bi_iter;
do {
u32 index = iter.bi_sector >> SECTORS_PER_PAGE_SHIFT;
u32 offset = (iter.bi_sector & (SECTORS_PER_PAGE - 1)) <<
SECTOR_SHIFT;
struct bio_vec bv = bio_iter_iovec(bio, iter);
bv.bv_len = min_t(u32, bv.bv_len, PAGE_SIZE - offset);
if (zram_bvec_read(zram, &bv, index, offset, bio) < 0) {
atomic64_inc(&zram->stats.failed_reads);
bio->bi_status = BLK_STS_IOERR;
break;
}
flush_dcache_page(bv.bv_page);
slot_lock(zram, index);
mark_slot_accessed(zram, index);
slot_unlock(zram, index);
bio_advance_iter_single(bio, &iter, bv.bv_len);
} while (iter.bi_size);
bio_end_io_acct(bio, start_time);
bio_endio(bio);
}
static void zram_bio_write(struct zram *zram, struct bio *bio)
{
unsigned long start_time = bio_start_io_acct(bio);
struct bvec_iter iter = bio->bi_iter;
do {
u32 index = iter.bi_sector >> SECTORS_PER_PAGE_SHIFT;
u32 offset = (iter.bi_sector & (SECTORS_PER_PAGE - 1)) <<
SECTOR_SHIFT;
struct bio_vec bv = bio_iter_iovec(bio, iter);
bv.bv_len = min_t(u32, bv.bv_len, PAGE_SIZE - offset);
if (zram_bvec_write(zram, &bv, index, offset) < 0) {
atomic64_inc(&zram->stats.failed_writes);
bio->bi_status = BLK_STS_IOERR;
break;
}
slot_lock(zram, index);
mark_slot_accessed(zram, index);
slot_unlock(zram, index);
bio_advance_iter_single(bio, &iter, bv.bv_len);
} while (iter.bi_size);
bio_end_io_acct(bio, start_time);
bio_endio(bio);
}
/*
* Handler function for all zram I/O requests.
*/
static void zram_submit_bio(struct bio *bio)
{
struct zram *zram = bio->bi_bdev->bd_disk->private_data;
switch (bio_op(bio)) {
case REQ_OP_READ:
zram_bio_read(zram, bio);
break;
case REQ_OP_WRITE:
zram_bio_write(zram, bio);
break;
case REQ_OP_DISCARD:
case REQ_OP_WRITE_ZEROES:
zram_bio_discard(zram, bio);
break;
default:
WARN_ON_ONCE(1);
bio_endio(bio);
}
}
static void zram_slot_free_notify(struct block_device *bdev,
unsigned long index)
{
struct zram *zram;
zram = bdev->bd_disk->private_data;
atomic64_inc(&zram->stats.notify_free);
if (!slot_trylock(zram, index)) {
atomic64_inc(&zram->stats.miss_free);
return;
}
slot_free(zram, index);
slot_unlock(zram, index);
}
static void zram_comp_params_reset(struct zram *zram)
{
u32 prio;
for (prio = ZRAM_PRIMARY_COMP; prio < ZRAM_MAX_COMPS; prio++) {
comp_params_reset(zram, prio);
}
}
static void zram_destroy_comps(struct zram *zram)
{
u32 prio;
for (prio = ZRAM_PRIMARY_COMP; prio < ZRAM_MAX_COMPS; prio++) {
struct zcomp *comp = zram->comps[prio];
zram->comps[prio] = NULL;
if (!comp)
continue;
zcomp_destroy(comp);
}
for (prio = ZRAM_PRIMARY_COMP; prio < ZRAM_MAX_COMPS; prio++)
zram->comp_algs[prio] = NULL;
zram_comp_params_reset(zram);
}
static void zram_reset_device(struct zram *zram)
{
guard(rwsem_write)(&zram->dev_lock);
zram->limit_pages = 0;
set_capacity_and_notify(zram->disk, 0);
part_stat_set_all(zram->disk->part0, 0);
/* I/O operation under all of CPU are done so let's free */
zram_meta_free(zram, zram->disksize);
zram->disksize = 0;
zram_destroy_comps(zram);
memset(&zram->stats, 0, sizeof(zram->stats));
reset_bdev(zram);
comp_algorithm_set(zram, ZRAM_PRIMARY_COMP, default_compressor);
}
static ssize_t disksize_store(struct device *dev, struct device_attribute *attr,
const char *buf, size_t len)
{
u64 disksize;
struct zcomp *comp;
struct zram *zram = dev_to_zram(dev);
int err;
u32 prio;
disksize = memparse(buf, NULL);
if (!disksize)
return -EINVAL;
guard(rwsem_write)(&zram->dev_lock);
if (init_done(zram)) {
pr_info("Cannot change disksize for initialized device\n");
return -EBUSY;
}
disksize = PAGE_ALIGN(disksize);
if (!zram_meta_alloc(zram, disksize))
return -ENOMEM;
for (prio = ZRAM_PRIMARY_COMP; prio < ZRAM_MAX_COMPS; prio++) {
if (!zram->comp_algs[prio])
continue;
comp = zcomp_create(zram->comp_algs[prio],
&zram->params[prio]);
if (IS_ERR(comp)) {
pr_err("Cannot initialise %s compressing backend\n",
zram->comp_algs[prio]);
err = PTR_ERR(comp);
goto out_free_comps;
}
zram->comps[prio] = comp;
}
zram->disksize = disksize;
set_capacity_and_notify(zram->disk, zram->disksize >> SECTOR_SHIFT);
return len;
out_free_comps:
zram_destroy_comps(zram);
zram_meta_free(zram, disksize);
return err;
}
static ssize_t reset_store(struct device *dev,
struct device_attribute *attr, const char *buf, size_t len)
{
int ret;
unsigned short do_reset;
struct zram *zram;
struct gendisk *disk;
ret = kstrtou16(buf, 10, &do_reset);
if (ret)
return ret;
if (!do_reset)
return -EINVAL;
zram = dev_to_zram(dev);
disk = zram->disk;
mutex_lock(&disk->open_mutex);
/* Do not reset an active device or claimed device */
if (disk_openers(disk) || zram->claim) {
mutex_unlock(&disk->open_mutex);
return -EBUSY;
}
/* From now on, anyone can't open /dev/zram[0-9] */
zram->claim = true;
mutex_unlock(&disk->open_mutex);
/* Make sure all the pending I/O are finished */
sync_blockdev(disk->part0);
zram_reset_device(zram);
mutex_lock(&disk->open_mutex);
zram->claim = false;
mutex_unlock(&disk->open_mutex);
return len;
}
static int zram_open(struct gendisk *disk, blk_mode_t mode)
{
struct zram *zram = disk->private_data;
WARN_ON(!mutex_is_locked(&disk->open_mutex));
/* zram was claimed to reset so open request fails */
if (zram->claim)
return -EBUSY;
return 0;
}
static const struct block_device_operations zram_devops = {
.open = zram_open,
.submit_bio = zram_submit_bio,
.swap_slot_free_notify = zram_slot_free_notify,
.owner = THIS_MODULE
};
static DEVICE_ATTR_RO(io_stat);
static DEVICE_ATTR_RO(mm_stat);
static DEVICE_ATTR_RO(debug_stat);
static DEVICE_ATTR_WO(compact);
static DEVICE_ATTR_RW(disksize);
static DEVICE_ATTR_RO(initstate);
static DEVICE_ATTR_WO(reset);
static DEVICE_ATTR_WO(mem_limit);
static DEVICE_ATTR_WO(mem_used_max);
static DEVICE_ATTR_WO(idle);
static DEVICE_ATTR_RW(comp_algorithm);
#ifdef CONFIG_ZRAM_WRITEBACK
static DEVICE_ATTR_RO(bd_stat);
static DEVICE_ATTR_RW(backing_dev);
static DEVICE_ATTR_WO(writeback);
static DEVICE_ATTR_RW(writeback_limit);
static DEVICE_ATTR_RW(writeback_limit_enable);
static DEVICE_ATTR_RW(writeback_batch_size);
static DEVICE_ATTR_RW(compressed_writeback);
#endif
#ifdef CONFIG_ZRAM_MULTI_COMP
static DEVICE_ATTR_RW(recomp_algorithm);
static DEVICE_ATTR_WO(recompress);
#endif
static DEVICE_ATTR_WO(algorithm_params);
static struct attribute *zram_disk_attrs[] = {
&dev_attr_disksize.attr,
&dev_attr_initstate.attr,
&dev_attr_reset.attr,
&dev_attr_compact.attr,
&dev_attr_mem_limit.attr,
&dev_attr_mem_used_max.attr,
&dev_attr_idle.attr,
&dev_attr_comp_algorithm.attr,
#ifdef CONFIG_ZRAM_WRITEBACK
&dev_attr_bd_stat.attr,
&dev_attr_backing_dev.attr,
&dev_attr_writeback.attr,
&dev_attr_writeback_limit.attr,
&dev_attr_writeback_limit_enable.attr,
&dev_attr_writeback_batch_size.attr,
&dev_attr_compressed_writeback.attr,
#endif
&dev_attr_io_stat.attr,
&dev_attr_mm_stat.attr,
&dev_attr_debug_stat.attr,
#ifdef CONFIG_ZRAM_MULTI_COMP
&dev_attr_recomp_algorithm.attr,
&dev_attr_recompress.attr,
#endif
&dev_attr_algorithm_params.attr,
NULL,
};
ATTRIBUTE_GROUPS(zram_disk);
/*
* Allocate and initialize new zram device. the function returns
* '>= 0' device_id upon success, and negative value otherwise.
*/
static int zram_add(void)
{
struct queue_limits lim = {
.logical_block_size = ZRAM_LOGICAL_BLOCK_SIZE,
/*
* To ensure that we always get PAGE_SIZE aligned and
* n*PAGE_SIZED sized I/O requests.
*/
.physical_block_size = PAGE_SIZE,
.io_min = PAGE_SIZE,
.io_opt = PAGE_SIZE,
.max_hw_discard_sectors = UINT_MAX,
/*
* zram_bio_discard() will clear all logical blocks if logical
* block size is identical with physical block size(PAGE_SIZE).
* But if it is different, we will skip discarding some parts of
* logical blocks in the part of the request range which isn't
* aligned to physical block size. So we can't ensure that all
* discarded logical blocks are zeroed.
*/
#if ZRAM_LOGICAL_BLOCK_SIZE == PAGE_SIZE
.max_write_zeroes_sectors = UINT_MAX,
#endif
.features = BLK_FEAT_STABLE_WRITES |
BLK_FEAT_SYNCHRONOUS,
};
struct zram *zram;
int ret, device_id;
zram = kzalloc_obj(struct zram);
if (!zram)
return -ENOMEM;
ret = idr_alloc(&zram_index_idr, zram, 0, 0, GFP_KERNEL);
if (ret < 0)
goto out_free_dev;
device_id = ret;
init_rwsem(&zram->dev_lock);
#ifdef CONFIG_ZRAM_WRITEBACK
zram->wb_batch_size = 32;
zram->compressed_wb = false;
#endif
/* gendisk structure */
zram->disk = blk_alloc_disk(&lim, NUMA_NO_NODE);
if (IS_ERR(zram->disk)) {
pr_err("Error allocating disk structure for device %d\n",
device_id);
ret = PTR_ERR(zram->disk);
goto out_free_idr;
}
zram->disk->major = zram_major;
zram->disk->first_minor = device_id;
zram->disk->minors = 1;
zram->disk->flags |= GENHD_FL_NO_PART;
zram->disk->fops = &zram_devops;
zram->disk->private_data = zram;
snprintf(zram->disk->disk_name, 16, "zram%d", device_id);
zram_comp_params_reset(zram);
comp_algorithm_set(zram, ZRAM_PRIMARY_COMP, default_compressor);
/* Actual capacity set using sysfs (/sys/block/zram<id>/disksize */
set_capacity(zram->disk, 0);
ret = device_add_disk(NULL, zram->disk, zram_disk_groups);
if (ret)
goto out_cleanup_disk;
zram_debugfs_register(zram);
pr_info("Added device: %s\n", zram->disk->disk_name);
return device_id;
out_cleanup_disk:
put_disk(zram->disk);
out_free_idr:
idr_remove(&zram_index_idr, device_id);
out_free_dev:
kfree(zram);
return ret;
}
static int zram_remove(struct zram *zram)
{
bool claimed;
mutex_lock(&zram->disk->open_mutex);
if (disk_openers(zram->disk)) {
mutex_unlock(&zram->disk->open_mutex);
return -EBUSY;
}
claimed = zram->claim;
if (!claimed)
zram->claim = true;
mutex_unlock(&zram->disk->open_mutex);
zram_debugfs_unregister(zram);
if (claimed) {
/*
* If we were claimed by reset_store(), del_gendisk() will
* wait until reset_store() is done, so nothing need to do.
*/
;
} else {
/* Make sure all the pending I/O are finished */
sync_blockdev(zram->disk->part0);
zram_reset_device(zram);
}
pr_info("Removed device: %s\n", zram->disk->disk_name);
del_gendisk(zram->disk);
/* del_gendisk drains pending reset_store */
WARN_ON_ONCE(claimed && zram->claim);
/*
* disksize_store() may be called in between zram_reset_device()
* and del_gendisk(), so run the last reset to avoid leaking
* anything allocated with disksize_store()
*/
zram_reset_device(zram);
put_disk(zram->disk);
kfree(zram);
return 0;
}
/* zram-control sysfs attributes */
/*
* NOTE: hot_add attribute is not the usual read-only sysfs attribute. In a
* sense that reading from this file does alter the state of your system -- it
* creates a new un-initialized zram device and returns back this device's
* device_id (or an error code if it fails to create a new device).
*/
static ssize_t hot_add_show(const struct class *class,
const struct class_attribute *attr,
char *buf)
{
int ret;
mutex_lock(&zram_index_mutex);
ret = zram_add();
mutex_unlock(&zram_index_mutex);
if (ret < 0)
return ret;
return sysfs_emit(buf, "%d\n", ret);
}
/* This attribute must be set to 0400, so CLASS_ATTR_RO() can not be used */
static struct class_attribute class_attr_hot_add =
__ATTR(hot_add, 0400, hot_add_show, NULL);
static ssize_t hot_remove_store(const struct class *class,
const struct class_attribute *attr,
const char *buf,
size_t count)
{
struct zram *zram;
int ret, dev_id;
/* dev_id is gendisk->first_minor, which is `int' */
ret = kstrtoint(buf, 10, &dev_id);
if (ret)
return ret;
if (dev_id < 0)
return -EINVAL;
mutex_lock(&zram_index_mutex);
zram = idr_find(&zram_index_idr, dev_id);
if (zram) {
ret = zram_remove(zram);
if (!ret)
idr_remove(&zram_index_idr, dev_id);
} else {
ret = -ENODEV;
}
mutex_unlock(&zram_index_mutex);
return ret ? ret : count;
}
static CLASS_ATTR_WO(hot_remove);
static struct attribute *zram_control_class_attrs[] = {
&class_attr_hot_add.attr,
&class_attr_hot_remove.attr,
NULL,
};
ATTRIBUTE_GROUPS(zram_control_class);
static struct class zram_control_class = {
.name = "zram-control",
.class_groups = zram_control_class_groups,
};
static int zram_remove_cb(int id, void *ptr, void *data)
{
WARN_ON_ONCE(zram_remove(ptr));
return 0;
}
static void destroy_devices(void)
{
class_unregister(&zram_control_class);
idr_for_each(&zram_index_idr, &zram_remove_cb, NULL);
zram_debugfs_destroy();
idr_destroy(&zram_index_idr);
unregister_blkdev(zram_major, "zram");
cpuhp_remove_multi_state(CPUHP_ZCOMP_PREPARE);
}
static int __init zram_init(void)
{
struct zram_table_entry zram_te;
int ret;
BUILD_BUG_ON(__NR_ZRAM_PAGEFLAGS > sizeof(zram_te.attr.flags) * 8);
ret = cpuhp_setup_state_multi(CPUHP_ZCOMP_PREPARE, "block/zram:prepare",
zcomp_cpu_up_prepare, zcomp_cpu_dead);
if (ret < 0)
return ret;
ret = class_register(&zram_control_class);
if (ret) {
pr_err("Unable to register zram-control class\n");
cpuhp_remove_multi_state(CPUHP_ZCOMP_PREPARE);
return ret;
}
zram_debugfs_create();
zram_major = register_blkdev(0, "zram");
if (zram_major <= 0) {
pr_err("Unable to get major number\n");
class_unregister(&zram_control_class);
cpuhp_remove_multi_state(CPUHP_ZCOMP_PREPARE);
return -EBUSY;
}
while (num_devices != 0) {
mutex_lock(&zram_index_mutex);
ret = zram_add();
mutex_unlock(&zram_index_mutex);
if (ret < 0)
goto out_error;
num_devices--;
}
return 0;
out_error:
destroy_devices();
return ret;
}
static void __exit zram_exit(void)
{
destroy_devices();
}
module_init(zram_init);
module_exit(zram_exit);
module_param(num_devices, uint, 0);
MODULE_PARM_DESC(num_devices, "Number of pre-created zram devices");
MODULE_LICENSE("Dual BSD/GPL");
MODULE_AUTHOR("Nitin Gupta <ngupta@vflare.org>");
MODULE_DESCRIPTION("Compressed RAM Block Device");