18c2ecf20Sopenharmony_ci/* SPDX-License-Identifier: GPL-2.0 */ 28c2ecf20Sopenharmony_ci#ifndef _BCACHE_H 38c2ecf20Sopenharmony_ci#define _BCACHE_H 48c2ecf20Sopenharmony_ci 58c2ecf20Sopenharmony_ci/* 68c2ecf20Sopenharmony_ci * SOME HIGH LEVEL CODE DOCUMENTATION: 78c2ecf20Sopenharmony_ci * 88c2ecf20Sopenharmony_ci * Bcache mostly works with cache sets, cache devices, and backing devices. 98c2ecf20Sopenharmony_ci * 108c2ecf20Sopenharmony_ci * Support for multiple cache devices hasn't quite been finished off yet, but 118c2ecf20Sopenharmony_ci * it's about 95% plumbed through. A cache set and its cache devices is sort of 128c2ecf20Sopenharmony_ci * like a md raid array and its component devices. Most of the code doesn't care 138c2ecf20Sopenharmony_ci * about individual cache devices, the main abstraction is the cache set. 148c2ecf20Sopenharmony_ci * 158c2ecf20Sopenharmony_ci * Multiple cache devices is intended to give us the ability to mirror dirty 168c2ecf20Sopenharmony_ci * cached data and metadata, without mirroring clean cached data. 178c2ecf20Sopenharmony_ci * 188c2ecf20Sopenharmony_ci * Backing devices are different, in that they have a lifetime independent of a 198c2ecf20Sopenharmony_ci * cache set. When you register a newly formatted backing device it'll come up 208c2ecf20Sopenharmony_ci * in passthrough mode, and then you can attach and detach a backing device from 218c2ecf20Sopenharmony_ci * a cache set at runtime - while it's mounted and in use. Detaching implicitly 228c2ecf20Sopenharmony_ci * invalidates any cached data for that backing device. 238c2ecf20Sopenharmony_ci * 248c2ecf20Sopenharmony_ci * A cache set can have multiple (many) backing devices attached to it. 258c2ecf20Sopenharmony_ci * 268c2ecf20Sopenharmony_ci * There's also flash only volumes - this is the reason for the distinction 278c2ecf20Sopenharmony_ci * between struct cached_dev and struct bcache_device. A flash only volume 288c2ecf20Sopenharmony_ci * works much like a bcache device that has a backing device, except the 298c2ecf20Sopenharmony_ci * "cached" data is always dirty. The end result is that we get thin 308c2ecf20Sopenharmony_ci * provisioning with very little additional code. 318c2ecf20Sopenharmony_ci * 328c2ecf20Sopenharmony_ci * Flash only volumes work but they're not production ready because the moving 338c2ecf20Sopenharmony_ci * garbage collector needs more work. More on that later. 348c2ecf20Sopenharmony_ci * 358c2ecf20Sopenharmony_ci * BUCKETS/ALLOCATION: 368c2ecf20Sopenharmony_ci * 378c2ecf20Sopenharmony_ci * Bcache is primarily designed for caching, which means that in normal 388c2ecf20Sopenharmony_ci * operation all of our available space will be allocated. Thus, we need an 398c2ecf20Sopenharmony_ci * efficient way of deleting things from the cache so we can write new things to 408c2ecf20Sopenharmony_ci * it. 418c2ecf20Sopenharmony_ci * 428c2ecf20Sopenharmony_ci * To do this, we first divide the cache device up into buckets. A bucket is the 438c2ecf20Sopenharmony_ci * unit of allocation; they're typically around 1 mb - anywhere from 128k to 2M+ 448c2ecf20Sopenharmony_ci * works efficiently. 458c2ecf20Sopenharmony_ci * 468c2ecf20Sopenharmony_ci * Each bucket has a 16 bit priority, and an 8 bit generation associated with 478c2ecf20Sopenharmony_ci * it. The gens and priorities for all the buckets are stored contiguously and 488c2ecf20Sopenharmony_ci * packed on disk (in a linked list of buckets - aside from the superblock, all 498c2ecf20Sopenharmony_ci * of bcache's metadata is stored in buckets). 508c2ecf20Sopenharmony_ci * 518c2ecf20Sopenharmony_ci * The priority is used to implement an LRU. We reset a bucket's priority when 528c2ecf20Sopenharmony_ci * we allocate it or on cache it, and every so often we decrement the priority 538c2ecf20Sopenharmony_ci * of each bucket. It could be used to implement something more sophisticated, 548c2ecf20Sopenharmony_ci * if anyone ever gets around to it. 558c2ecf20Sopenharmony_ci * 568c2ecf20Sopenharmony_ci * The generation is used for invalidating buckets. Each pointer also has an 8 578c2ecf20Sopenharmony_ci * bit generation embedded in it; for a pointer to be considered valid, its gen 588c2ecf20Sopenharmony_ci * must match the gen of the bucket it points into. Thus, to reuse a bucket all 598c2ecf20Sopenharmony_ci * we have to do is increment its gen (and write its new gen to disk; we batch 608c2ecf20Sopenharmony_ci * this up). 618c2ecf20Sopenharmony_ci * 628c2ecf20Sopenharmony_ci * Bcache is entirely COW - we never write twice to a bucket, even buckets that 638c2ecf20Sopenharmony_ci * contain metadata (including btree nodes). 648c2ecf20Sopenharmony_ci * 658c2ecf20Sopenharmony_ci * THE BTREE: 668c2ecf20Sopenharmony_ci * 678c2ecf20Sopenharmony_ci * Bcache is in large part design around the btree. 688c2ecf20Sopenharmony_ci * 698c2ecf20Sopenharmony_ci * At a high level, the btree is just an index of key -> ptr tuples. 708c2ecf20Sopenharmony_ci * 718c2ecf20Sopenharmony_ci * Keys represent extents, and thus have a size field. Keys also have a variable 728c2ecf20Sopenharmony_ci * number of pointers attached to them (potentially zero, which is handy for 738c2ecf20Sopenharmony_ci * invalidating the cache). 748c2ecf20Sopenharmony_ci * 758c2ecf20Sopenharmony_ci * The key itself is an inode:offset pair. The inode number corresponds to a 768c2ecf20Sopenharmony_ci * backing device or a flash only volume. The offset is the ending offset of the 778c2ecf20Sopenharmony_ci * extent within the inode - not the starting offset; this makes lookups 788c2ecf20Sopenharmony_ci * slightly more convenient. 798c2ecf20Sopenharmony_ci * 808c2ecf20Sopenharmony_ci * Pointers contain the cache device id, the offset on that device, and an 8 bit 818c2ecf20Sopenharmony_ci * generation number. More on the gen later. 828c2ecf20Sopenharmony_ci * 838c2ecf20Sopenharmony_ci * Index lookups are not fully abstracted - cache lookups in particular are 848c2ecf20Sopenharmony_ci * still somewhat mixed in with the btree code, but things are headed in that 858c2ecf20Sopenharmony_ci * direction. 868c2ecf20Sopenharmony_ci * 878c2ecf20Sopenharmony_ci * Updates are fairly well abstracted, though. There are two different ways of 888c2ecf20Sopenharmony_ci * updating the btree; insert and replace. 898c2ecf20Sopenharmony_ci * 908c2ecf20Sopenharmony_ci * BTREE_INSERT will just take a list of keys and insert them into the btree - 918c2ecf20Sopenharmony_ci * overwriting (possibly only partially) any extents they overlap with. This is 928c2ecf20Sopenharmony_ci * used to update the index after a write. 938c2ecf20Sopenharmony_ci * 948c2ecf20Sopenharmony_ci * BTREE_REPLACE is really cmpxchg(); it inserts a key into the btree iff it is 958c2ecf20Sopenharmony_ci * overwriting a key that matches another given key. This is used for inserting 968c2ecf20Sopenharmony_ci * data into the cache after a cache miss, and for background writeback, and for 978c2ecf20Sopenharmony_ci * the moving garbage collector. 988c2ecf20Sopenharmony_ci * 998c2ecf20Sopenharmony_ci * There is no "delete" operation; deleting things from the index is 1008c2ecf20Sopenharmony_ci * accomplished by either by invalidating pointers (by incrementing a bucket's 1018c2ecf20Sopenharmony_ci * gen) or by inserting a key with 0 pointers - which will overwrite anything 1028c2ecf20Sopenharmony_ci * previously present at that location in the index. 1038c2ecf20Sopenharmony_ci * 1048c2ecf20Sopenharmony_ci * This means that there are always stale/invalid keys in the btree. They're 1058c2ecf20Sopenharmony_ci * filtered out by the code that iterates through a btree node, and removed when 1068c2ecf20Sopenharmony_ci * a btree node is rewritten. 1078c2ecf20Sopenharmony_ci * 1088c2ecf20Sopenharmony_ci * BTREE NODES: 1098c2ecf20Sopenharmony_ci * 1108c2ecf20Sopenharmony_ci * Our unit of allocation is a bucket, and we we can't arbitrarily allocate and 1118c2ecf20Sopenharmony_ci * free smaller than a bucket - so, that's how big our btree nodes are. 1128c2ecf20Sopenharmony_ci * 1138c2ecf20Sopenharmony_ci * (If buckets are really big we'll only use part of the bucket for a btree node 1148c2ecf20Sopenharmony_ci * - no less than 1/4th - but a bucket still contains no more than a single 1158c2ecf20Sopenharmony_ci * btree node. I'd actually like to change this, but for now we rely on the 1168c2ecf20Sopenharmony_ci * bucket's gen for deleting btree nodes when we rewrite/split a node.) 1178c2ecf20Sopenharmony_ci * 1188c2ecf20Sopenharmony_ci * Anyways, btree nodes are big - big enough to be inefficient with a textbook 1198c2ecf20Sopenharmony_ci * btree implementation. 1208c2ecf20Sopenharmony_ci * 1218c2ecf20Sopenharmony_ci * The way this is solved is that btree nodes are internally log structured; we 1228c2ecf20Sopenharmony_ci * can append new keys to an existing btree node without rewriting it. This 1238c2ecf20Sopenharmony_ci * means each set of keys we write is sorted, but the node is not. 1248c2ecf20Sopenharmony_ci * 1258c2ecf20Sopenharmony_ci * We maintain this log structure in memory - keeping 1Mb of keys sorted would 1268c2ecf20Sopenharmony_ci * be expensive, and we have to distinguish between the keys we have written and 1278c2ecf20Sopenharmony_ci * the keys we haven't. So to do a lookup in a btree node, we have to search 1288c2ecf20Sopenharmony_ci * each sorted set. But we do merge written sets together lazily, so the cost of 1298c2ecf20Sopenharmony_ci * these extra searches is quite low (normally most of the keys in a btree node 1308c2ecf20Sopenharmony_ci * will be in one big set, and then there'll be one or two sets that are much 1318c2ecf20Sopenharmony_ci * smaller). 1328c2ecf20Sopenharmony_ci * 1338c2ecf20Sopenharmony_ci * This log structure makes bcache's btree more of a hybrid between a 1348c2ecf20Sopenharmony_ci * conventional btree and a compacting data structure, with some of the 1358c2ecf20Sopenharmony_ci * advantages of both. 1368c2ecf20Sopenharmony_ci * 1378c2ecf20Sopenharmony_ci * GARBAGE COLLECTION: 1388c2ecf20Sopenharmony_ci * 1398c2ecf20Sopenharmony_ci * We can't just invalidate any bucket - it might contain dirty data or 1408c2ecf20Sopenharmony_ci * metadata. If it once contained dirty data, other writes might overwrite it 1418c2ecf20Sopenharmony_ci * later, leaving no valid pointers into that bucket in the index. 1428c2ecf20Sopenharmony_ci * 1438c2ecf20Sopenharmony_ci * Thus, the primary purpose of garbage collection is to find buckets to reuse. 1448c2ecf20Sopenharmony_ci * It also counts how much valid data it each bucket currently contains, so that 1458c2ecf20Sopenharmony_ci * allocation can reuse buckets sooner when they've been mostly overwritten. 1468c2ecf20Sopenharmony_ci * 1478c2ecf20Sopenharmony_ci * It also does some things that are really internal to the btree 1488c2ecf20Sopenharmony_ci * implementation. If a btree node contains pointers that are stale by more than 1498c2ecf20Sopenharmony_ci * some threshold, it rewrites the btree node to avoid the bucket's generation 1508c2ecf20Sopenharmony_ci * wrapping around. It also merges adjacent btree nodes if they're empty enough. 1518c2ecf20Sopenharmony_ci * 1528c2ecf20Sopenharmony_ci * THE JOURNAL: 1538c2ecf20Sopenharmony_ci * 1548c2ecf20Sopenharmony_ci * Bcache's journal is not necessary for consistency; we always strictly 1558c2ecf20Sopenharmony_ci * order metadata writes so that the btree and everything else is consistent on 1568c2ecf20Sopenharmony_ci * disk in the event of an unclean shutdown, and in fact bcache had writeback 1578c2ecf20Sopenharmony_ci * caching (with recovery from unclean shutdown) before journalling was 1588c2ecf20Sopenharmony_ci * implemented. 1598c2ecf20Sopenharmony_ci * 1608c2ecf20Sopenharmony_ci * Rather, the journal is purely a performance optimization; we can't complete a 1618c2ecf20Sopenharmony_ci * write until we've updated the index on disk, otherwise the cache would be 1628c2ecf20Sopenharmony_ci * inconsistent in the event of an unclean shutdown. This means that without the 1638c2ecf20Sopenharmony_ci * journal, on random write workloads we constantly have to update all the leaf 1648c2ecf20Sopenharmony_ci * nodes in the btree, and those writes will be mostly empty (appending at most 1658c2ecf20Sopenharmony_ci * a few keys each) - highly inefficient in terms of amount of metadata writes, 1668c2ecf20Sopenharmony_ci * and it puts more strain on the various btree resorting/compacting code. 1678c2ecf20Sopenharmony_ci * 1688c2ecf20Sopenharmony_ci * The journal is just a log of keys we've inserted; on startup we just reinsert 1698c2ecf20Sopenharmony_ci * all the keys in the open journal entries. That means that when we're updating 1708c2ecf20Sopenharmony_ci * a node in the btree, we can wait until a 4k block of keys fills up before 1718c2ecf20Sopenharmony_ci * writing them out. 1728c2ecf20Sopenharmony_ci * 1738c2ecf20Sopenharmony_ci * For simplicity, we only journal updates to leaf nodes; updates to parent 1748c2ecf20Sopenharmony_ci * nodes are rare enough (since our leaf nodes are huge) that it wasn't worth 1758c2ecf20Sopenharmony_ci * the complexity to deal with journalling them (in particular, journal replay) 1768c2ecf20Sopenharmony_ci * - updates to non leaf nodes just happen synchronously (see btree_split()). 1778c2ecf20Sopenharmony_ci */ 1788c2ecf20Sopenharmony_ci 1798c2ecf20Sopenharmony_ci#define pr_fmt(fmt) "bcache: %s() " fmt, __func__ 1808c2ecf20Sopenharmony_ci 1818c2ecf20Sopenharmony_ci#include <linux/bcache.h> 1828c2ecf20Sopenharmony_ci#include <linux/bio.h> 1838c2ecf20Sopenharmony_ci#include <linux/kobject.h> 1848c2ecf20Sopenharmony_ci#include <linux/list.h> 1858c2ecf20Sopenharmony_ci#include <linux/mutex.h> 1868c2ecf20Sopenharmony_ci#include <linux/rbtree.h> 1878c2ecf20Sopenharmony_ci#include <linux/rwsem.h> 1888c2ecf20Sopenharmony_ci#include <linux/refcount.h> 1898c2ecf20Sopenharmony_ci#include <linux/types.h> 1908c2ecf20Sopenharmony_ci#include <linux/workqueue.h> 1918c2ecf20Sopenharmony_ci#include <linux/kthread.h> 1928c2ecf20Sopenharmony_ci 1938c2ecf20Sopenharmony_ci#include "bset.h" 1948c2ecf20Sopenharmony_ci#include "util.h" 1958c2ecf20Sopenharmony_ci#include "closure.h" 1968c2ecf20Sopenharmony_ci 1978c2ecf20Sopenharmony_cistruct bucket { 1988c2ecf20Sopenharmony_ci atomic_t pin; 1998c2ecf20Sopenharmony_ci uint16_t prio; 2008c2ecf20Sopenharmony_ci uint8_t gen; 2018c2ecf20Sopenharmony_ci uint8_t last_gc; /* Most out of date gen in the btree */ 2028c2ecf20Sopenharmony_ci uint16_t gc_mark; /* Bitfield used by GC. See below for field */ 2038c2ecf20Sopenharmony_ci}; 2048c2ecf20Sopenharmony_ci 2058c2ecf20Sopenharmony_ci/* 2068c2ecf20Sopenharmony_ci * I'd use bitfields for these, but I don't trust the compiler not to screw me 2078c2ecf20Sopenharmony_ci * as multiple threads touch struct bucket without locking 2088c2ecf20Sopenharmony_ci */ 2098c2ecf20Sopenharmony_ci 2108c2ecf20Sopenharmony_ciBITMASK(GC_MARK, struct bucket, gc_mark, 0, 2); 2118c2ecf20Sopenharmony_ci#define GC_MARK_RECLAIMABLE 1 2128c2ecf20Sopenharmony_ci#define GC_MARK_DIRTY 2 2138c2ecf20Sopenharmony_ci#define GC_MARK_METADATA 3 2148c2ecf20Sopenharmony_ci#define GC_SECTORS_USED_SIZE 13 2158c2ecf20Sopenharmony_ci#define MAX_GC_SECTORS_USED (~(~0ULL << GC_SECTORS_USED_SIZE)) 2168c2ecf20Sopenharmony_ciBITMASK(GC_SECTORS_USED, struct bucket, gc_mark, 2, GC_SECTORS_USED_SIZE); 2178c2ecf20Sopenharmony_ciBITMASK(GC_MOVE, struct bucket, gc_mark, 15, 1); 2188c2ecf20Sopenharmony_ci 2198c2ecf20Sopenharmony_ci#include "journal.h" 2208c2ecf20Sopenharmony_ci#include "stats.h" 2218c2ecf20Sopenharmony_cistruct search; 2228c2ecf20Sopenharmony_cistruct btree; 2238c2ecf20Sopenharmony_cistruct keybuf; 2248c2ecf20Sopenharmony_ci 2258c2ecf20Sopenharmony_cistruct keybuf_key { 2268c2ecf20Sopenharmony_ci struct rb_node node; 2278c2ecf20Sopenharmony_ci BKEY_PADDED(key); 2288c2ecf20Sopenharmony_ci void *private; 2298c2ecf20Sopenharmony_ci}; 2308c2ecf20Sopenharmony_ci 2318c2ecf20Sopenharmony_cistruct keybuf { 2328c2ecf20Sopenharmony_ci struct bkey last_scanned; 2338c2ecf20Sopenharmony_ci spinlock_t lock; 2348c2ecf20Sopenharmony_ci 2358c2ecf20Sopenharmony_ci /* 2368c2ecf20Sopenharmony_ci * Beginning and end of range in rb tree - so that we can skip taking 2378c2ecf20Sopenharmony_ci * lock and checking the rb tree when we need to check for overlapping 2388c2ecf20Sopenharmony_ci * keys. 2398c2ecf20Sopenharmony_ci */ 2408c2ecf20Sopenharmony_ci struct bkey start; 2418c2ecf20Sopenharmony_ci struct bkey end; 2428c2ecf20Sopenharmony_ci 2438c2ecf20Sopenharmony_ci struct rb_root keys; 2448c2ecf20Sopenharmony_ci 2458c2ecf20Sopenharmony_ci#define KEYBUF_NR 500 2468c2ecf20Sopenharmony_ci DECLARE_ARRAY_ALLOCATOR(struct keybuf_key, freelist, KEYBUF_NR); 2478c2ecf20Sopenharmony_ci}; 2488c2ecf20Sopenharmony_ci 2498c2ecf20Sopenharmony_cistruct bcache_device { 2508c2ecf20Sopenharmony_ci struct closure cl; 2518c2ecf20Sopenharmony_ci 2528c2ecf20Sopenharmony_ci struct kobject kobj; 2538c2ecf20Sopenharmony_ci 2548c2ecf20Sopenharmony_ci struct cache_set *c; 2558c2ecf20Sopenharmony_ci unsigned int id; 2568c2ecf20Sopenharmony_ci#define BCACHEDEVNAME_SIZE 12 2578c2ecf20Sopenharmony_ci char name[BCACHEDEVNAME_SIZE]; 2588c2ecf20Sopenharmony_ci 2598c2ecf20Sopenharmony_ci struct gendisk *disk; 2608c2ecf20Sopenharmony_ci 2618c2ecf20Sopenharmony_ci unsigned long flags; 2628c2ecf20Sopenharmony_ci#define BCACHE_DEV_CLOSING 0 2638c2ecf20Sopenharmony_ci#define BCACHE_DEV_DETACHING 1 2648c2ecf20Sopenharmony_ci#define BCACHE_DEV_UNLINK_DONE 2 2658c2ecf20Sopenharmony_ci#define BCACHE_DEV_WB_RUNNING 3 2668c2ecf20Sopenharmony_ci#define BCACHE_DEV_RATE_DW_RUNNING 4 2678c2ecf20Sopenharmony_ci int nr_stripes; 2688c2ecf20Sopenharmony_ci#define BCH_MIN_STRIPE_SZ ((4 << 20) >> SECTOR_SHIFT) 2698c2ecf20Sopenharmony_ci unsigned int stripe_size; 2708c2ecf20Sopenharmony_ci atomic_t *stripe_sectors_dirty; 2718c2ecf20Sopenharmony_ci unsigned long *full_dirty_stripes; 2728c2ecf20Sopenharmony_ci 2738c2ecf20Sopenharmony_ci struct bio_set bio_split; 2748c2ecf20Sopenharmony_ci 2758c2ecf20Sopenharmony_ci unsigned int data_csum:1; 2768c2ecf20Sopenharmony_ci 2778c2ecf20Sopenharmony_ci int (*cache_miss)(struct btree *b, struct search *s, 2788c2ecf20Sopenharmony_ci struct bio *bio, unsigned int sectors); 2798c2ecf20Sopenharmony_ci int (*ioctl)(struct bcache_device *d, fmode_t mode, 2808c2ecf20Sopenharmony_ci unsigned int cmd, unsigned long arg); 2818c2ecf20Sopenharmony_ci}; 2828c2ecf20Sopenharmony_ci 2838c2ecf20Sopenharmony_cistruct io { 2848c2ecf20Sopenharmony_ci /* Used to track sequential IO so it can be skipped */ 2858c2ecf20Sopenharmony_ci struct hlist_node hash; 2868c2ecf20Sopenharmony_ci struct list_head lru; 2878c2ecf20Sopenharmony_ci 2888c2ecf20Sopenharmony_ci unsigned long jiffies; 2898c2ecf20Sopenharmony_ci unsigned int sequential; 2908c2ecf20Sopenharmony_ci sector_t last; 2918c2ecf20Sopenharmony_ci}; 2928c2ecf20Sopenharmony_ci 2938c2ecf20Sopenharmony_cienum stop_on_failure { 2948c2ecf20Sopenharmony_ci BCH_CACHED_DEV_STOP_AUTO = 0, 2958c2ecf20Sopenharmony_ci BCH_CACHED_DEV_STOP_ALWAYS, 2968c2ecf20Sopenharmony_ci BCH_CACHED_DEV_STOP_MODE_MAX, 2978c2ecf20Sopenharmony_ci}; 2988c2ecf20Sopenharmony_ci 2998c2ecf20Sopenharmony_cistruct cached_dev { 3008c2ecf20Sopenharmony_ci struct list_head list; 3018c2ecf20Sopenharmony_ci struct bcache_device disk; 3028c2ecf20Sopenharmony_ci struct block_device *bdev; 3038c2ecf20Sopenharmony_ci 3048c2ecf20Sopenharmony_ci struct cache_sb sb; 3058c2ecf20Sopenharmony_ci struct cache_sb_disk *sb_disk; 3068c2ecf20Sopenharmony_ci struct bio sb_bio; 3078c2ecf20Sopenharmony_ci struct bio_vec sb_bv[1]; 3088c2ecf20Sopenharmony_ci struct closure sb_write; 3098c2ecf20Sopenharmony_ci struct semaphore sb_write_mutex; 3108c2ecf20Sopenharmony_ci 3118c2ecf20Sopenharmony_ci /* Refcount on the cache set. Always nonzero when we're caching. */ 3128c2ecf20Sopenharmony_ci refcount_t count; 3138c2ecf20Sopenharmony_ci struct work_struct detach; 3148c2ecf20Sopenharmony_ci 3158c2ecf20Sopenharmony_ci /* 3168c2ecf20Sopenharmony_ci * Device might not be running if it's dirty and the cache set hasn't 3178c2ecf20Sopenharmony_ci * showed up yet. 3188c2ecf20Sopenharmony_ci */ 3198c2ecf20Sopenharmony_ci atomic_t running; 3208c2ecf20Sopenharmony_ci 3218c2ecf20Sopenharmony_ci /* 3228c2ecf20Sopenharmony_ci * Writes take a shared lock from start to finish; scanning for dirty 3238c2ecf20Sopenharmony_ci * data to refill the rb tree requires an exclusive lock. 3248c2ecf20Sopenharmony_ci */ 3258c2ecf20Sopenharmony_ci struct rw_semaphore writeback_lock; 3268c2ecf20Sopenharmony_ci 3278c2ecf20Sopenharmony_ci /* 3288c2ecf20Sopenharmony_ci * Nonzero, and writeback has a refcount (d->count), iff there is dirty 3298c2ecf20Sopenharmony_ci * data in the cache. Protected by writeback_lock; must have an 3308c2ecf20Sopenharmony_ci * shared lock to set and exclusive lock to clear. 3318c2ecf20Sopenharmony_ci */ 3328c2ecf20Sopenharmony_ci atomic_t has_dirty; 3338c2ecf20Sopenharmony_ci 3348c2ecf20Sopenharmony_ci#define BCH_CACHE_READA_ALL 0 3358c2ecf20Sopenharmony_ci#define BCH_CACHE_READA_META_ONLY 1 3368c2ecf20Sopenharmony_ci unsigned int cache_readahead_policy; 3378c2ecf20Sopenharmony_ci struct bch_ratelimit writeback_rate; 3388c2ecf20Sopenharmony_ci struct delayed_work writeback_rate_update; 3398c2ecf20Sopenharmony_ci 3408c2ecf20Sopenharmony_ci /* Limit number of writeback bios in flight */ 3418c2ecf20Sopenharmony_ci struct semaphore in_flight; 3428c2ecf20Sopenharmony_ci struct task_struct *writeback_thread; 3438c2ecf20Sopenharmony_ci struct workqueue_struct *writeback_write_wq; 3448c2ecf20Sopenharmony_ci 3458c2ecf20Sopenharmony_ci struct keybuf writeback_keys; 3468c2ecf20Sopenharmony_ci 3478c2ecf20Sopenharmony_ci struct task_struct *status_update_thread; 3488c2ecf20Sopenharmony_ci /* 3498c2ecf20Sopenharmony_ci * Order the write-half of writeback operations strongly in dispatch 3508c2ecf20Sopenharmony_ci * order. (Maintain LBA order; don't allow reads completing out of 3518c2ecf20Sopenharmony_ci * order to re-order the writes...) 3528c2ecf20Sopenharmony_ci */ 3538c2ecf20Sopenharmony_ci struct closure_waitlist writeback_ordering_wait; 3548c2ecf20Sopenharmony_ci atomic_t writeback_sequence_next; 3558c2ecf20Sopenharmony_ci 3568c2ecf20Sopenharmony_ci /* For tracking sequential IO */ 3578c2ecf20Sopenharmony_ci#define RECENT_IO_BITS 7 3588c2ecf20Sopenharmony_ci#define RECENT_IO (1 << RECENT_IO_BITS) 3598c2ecf20Sopenharmony_ci struct io io[RECENT_IO]; 3608c2ecf20Sopenharmony_ci struct hlist_head io_hash[RECENT_IO + 1]; 3618c2ecf20Sopenharmony_ci struct list_head io_lru; 3628c2ecf20Sopenharmony_ci spinlock_t io_lock; 3638c2ecf20Sopenharmony_ci 3648c2ecf20Sopenharmony_ci struct cache_accounting accounting; 3658c2ecf20Sopenharmony_ci 3668c2ecf20Sopenharmony_ci /* The rest of this all shows up in sysfs */ 3678c2ecf20Sopenharmony_ci unsigned int sequential_cutoff; 3688c2ecf20Sopenharmony_ci unsigned int readahead; 3698c2ecf20Sopenharmony_ci 3708c2ecf20Sopenharmony_ci unsigned int io_disable:1; 3718c2ecf20Sopenharmony_ci unsigned int verify:1; 3728c2ecf20Sopenharmony_ci unsigned int bypass_torture_test:1; 3738c2ecf20Sopenharmony_ci 3748c2ecf20Sopenharmony_ci unsigned int partial_stripes_expensive:1; 3758c2ecf20Sopenharmony_ci unsigned int writeback_metadata:1; 3768c2ecf20Sopenharmony_ci unsigned int writeback_running:1; 3778c2ecf20Sopenharmony_ci unsigned char writeback_percent; 3788c2ecf20Sopenharmony_ci unsigned int writeback_delay; 3798c2ecf20Sopenharmony_ci 3808c2ecf20Sopenharmony_ci uint64_t writeback_rate_target; 3818c2ecf20Sopenharmony_ci int64_t writeback_rate_proportional; 3828c2ecf20Sopenharmony_ci int64_t writeback_rate_integral; 3838c2ecf20Sopenharmony_ci int64_t writeback_rate_integral_scaled; 3848c2ecf20Sopenharmony_ci int32_t writeback_rate_change; 3858c2ecf20Sopenharmony_ci 3868c2ecf20Sopenharmony_ci unsigned int writeback_rate_update_seconds; 3878c2ecf20Sopenharmony_ci unsigned int writeback_rate_i_term_inverse; 3888c2ecf20Sopenharmony_ci unsigned int writeback_rate_p_term_inverse; 3898c2ecf20Sopenharmony_ci unsigned int writeback_rate_minimum; 3908c2ecf20Sopenharmony_ci 3918c2ecf20Sopenharmony_ci enum stop_on_failure stop_when_cache_set_failed; 3928c2ecf20Sopenharmony_ci#define DEFAULT_CACHED_DEV_ERROR_LIMIT 64 3938c2ecf20Sopenharmony_ci atomic_t io_errors; 3948c2ecf20Sopenharmony_ci unsigned int error_limit; 3958c2ecf20Sopenharmony_ci unsigned int offline_seconds; 3968c2ecf20Sopenharmony_ci 3978c2ecf20Sopenharmony_ci char backing_dev_name[BDEVNAME_SIZE]; 3988c2ecf20Sopenharmony_ci}; 3998c2ecf20Sopenharmony_ci 4008c2ecf20Sopenharmony_cienum alloc_reserve { 4018c2ecf20Sopenharmony_ci RESERVE_BTREE, 4028c2ecf20Sopenharmony_ci RESERVE_PRIO, 4038c2ecf20Sopenharmony_ci RESERVE_MOVINGGC, 4048c2ecf20Sopenharmony_ci RESERVE_NONE, 4058c2ecf20Sopenharmony_ci RESERVE_NR, 4068c2ecf20Sopenharmony_ci}; 4078c2ecf20Sopenharmony_ci 4088c2ecf20Sopenharmony_cistruct cache { 4098c2ecf20Sopenharmony_ci struct cache_set *set; 4108c2ecf20Sopenharmony_ci struct cache_sb sb; 4118c2ecf20Sopenharmony_ci struct cache_sb_disk *sb_disk; 4128c2ecf20Sopenharmony_ci struct bio sb_bio; 4138c2ecf20Sopenharmony_ci struct bio_vec sb_bv[1]; 4148c2ecf20Sopenharmony_ci 4158c2ecf20Sopenharmony_ci struct kobject kobj; 4168c2ecf20Sopenharmony_ci struct block_device *bdev; 4178c2ecf20Sopenharmony_ci 4188c2ecf20Sopenharmony_ci struct task_struct *alloc_thread; 4198c2ecf20Sopenharmony_ci 4208c2ecf20Sopenharmony_ci struct closure prio; 4218c2ecf20Sopenharmony_ci struct prio_set *disk_buckets; 4228c2ecf20Sopenharmony_ci 4238c2ecf20Sopenharmony_ci /* 4248c2ecf20Sopenharmony_ci * When allocating new buckets, prio_write() gets first dibs - since we 4258c2ecf20Sopenharmony_ci * may not be allocate at all without writing priorities and gens. 4268c2ecf20Sopenharmony_ci * prio_last_buckets[] contains the last buckets we wrote priorities to 4278c2ecf20Sopenharmony_ci * (so gc can mark them as metadata), prio_buckets[] contains the 4288c2ecf20Sopenharmony_ci * buckets allocated for the next prio write. 4298c2ecf20Sopenharmony_ci */ 4308c2ecf20Sopenharmony_ci uint64_t *prio_buckets; 4318c2ecf20Sopenharmony_ci uint64_t *prio_last_buckets; 4328c2ecf20Sopenharmony_ci 4338c2ecf20Sopenharmony_ci /* 4348c2ecf20Sopenharmony_ci * free: Buckets that are ready to be used 4358c2ecf20Sopenharmony_ci * 4368c2ecf20Sopenharmony_ci * free_inc: Incoming buckets - these are buckets that currently have 4378c2ecf20Sopenharmony_ci * cached data in them, and we can't reuse them until after we write 4388c2ecf20Sopenharmony_ci * their new gen to disk. After prio_write() finishes writing the new 4398c2ecf20Sopenharmony_ci * gens/prios, they'll be moved to the free list (and possibly discarded 4408c2ecf20Sopenharmony_ci * in the process) 4418c2ecf20Sopenharmony_ci */ 4428c2ecf20Sopenharmony_ci DECLARE_FIFO(long, free)[RESERVE_NR]; 4438c2ecf20Sopenharmony_ci DECLARE_FIFO(long, free_inc); 4448c2ecf20Sopenharmony_ci 4458c2ecf20Sopenharmony_ci size_t fifo_last_bucket; 4468c2ecf20Sopenharmony_ci 4478c2ecf20Sopenharmony_ci /* Allocation stuff: */ 4488c2ecf20Sopenharmony_ci struct bucket *buckets; 4498c2ecf20Sopenharmony_ci 4508c2ecf20Sopenharmony_ci DECLARE_HEAP(struct bucket *, heap); 4518c2ecf20Sopenharmony_ci 4528c2ecf20Sopenharmony_ci /* 4538c2ecf20Sopenharmony_ci * If nonzero, we know we aren't going to find any buckets to invalidate 4548c2ecf20Sopenharmony_ci * until a gc finishes - otherwise we could pointlessly burn a ton of 4558c2ecf20Sopenharmony_ci * cpu 4568c2ecf20Sopenharmony_ci */ 4578c2ecf20Sopenharmony_ci unsigned int invalidate_needs_gc; 4588c2ecf20Sopenharmony_ci 4598c2ecf20Sopenharmony_ci bool discard; /* Get rid of? */ 4608c2ecf20Sopenharmony_ci 4618c2ecf20Sopenharmony_ci struct journal_device journal; 4628c2ecf20Sopenharmony_ci 4638c2ecf20Sopenharmony_ci /* The rest of this all shows up in sysfs */ 4648c2ecf20Sopenharmony_ci#define IO_ERROR_SHIFT 20 4658c2ecf20Sopenharmony_ci atomic_t io_errors; 4668c2ecf20Sopenharmony_ci atomic_t io_count; 4678c2ecf20Sopenharmony_ci 4688c2ecf20Sopenharmony_ci atomic_long_t meta_sectors_written; 4698c2ecf20Sopenharmony_ci atomic_long_t btree_sectors_written; 4708c2ecf20Sopenharmony_ci atomic_long_t sectors_written; 4718c2ecf20Sopenharmony_ci 4728c2ecf20Sopenharmony_ci char cache_dev_name[BDEVNAME_SIZE]; 4738c2ecf20Sopenharmony_ci}; 4748c2ecf20Sopenharmony_ci 4758c2ecf20Sopenharmony_cistruct gc_stat { 4768c2ecf20Sopenharmony_ci size_t nodes; 4778c2ecf20Sopenharmony_ci size_t nodes_pre; 4788c2ecf20Sopenharmony_ci size_t key_bytes; 4798c2ecf20Sopenharmony_ci 4808c2ecf20Sopenharmony_ci size_t nkeys; 4818c2ecf20Sopenharmony_ci uint64_t data; /* sectors */ 4828c2ecf20Sopenharmony_ci unsigned int in_use; /* percent */ 4838c2ecf20Sopenharmony_ci}; 4848c2ecf20Sopenharmony_ci 4858c2ecf20Sopenharmony_ci/* 4868c2ecf20Sopenharmony_ci * Flag bits, for how the cache set is shutting down, and what phase it's at: 4878c2ecf20Sopenharmony_ci * 4888c2ecf20Sopenharmony_ci * CACHE_SET_UNREGISTERING means we're not just shutting down, we're detaching 4898c2ecf20Sopenharmony_ci * all the backing devices first (their cached data gets invalidated, and they 4908c2ecf20Sopenharmony_ci * won't automatically reattach). 4918c2ecf20Sopenharmony_ci * 4928c2ecf20Sopenharmony_ci * CACHE_SET_STOPPING always gets set first when we're closing down a cache set; 4938c2ecf20Sopenharmony_ci * we'll continue to run normally for awhile with CACHE_SET_STOPPING set (i.e. 4948c2ecf20Sopenharmony_ci * flushing dirty data). 4958c2ecf20Sopenharmony_ci * 4968c2ecf20Sopenharmony_ci * CACHE_SET_RUNNING means all cache devices have been registered and journal 4978c2ecf20Sopenharmony_ci * replay is complete. 4988c2ecf20Sopenharmony_ci * 4998c2ecf20Sopenharmony_ci * CACHE_SET_IO_DISABLE is set when bcache is stopping the whold cache set, all 5008c2ecf20Sopenharmony_ci * external and internal I/O should be denied when this flag is set. 5018c2ecf20Sopenharmony_ci * 5028c2ecf20Sopenharmony_ci */ 5038c2ecf20Sopenharmony_ci#define CACHE_SET_UNREGISTERING 0 5048c2ecf20Sopenharmony_ci#define CACHE_SET_STOPPING 1 5058c2ecf20Sopenharmony_ci#define CACHE_SET_RUNNING 2 5068c2ecf20Sopenharmony_ci#define CACHE_SET_IO_DISABLE 3 5078c2ecf20Sopenharmony_ci 5088c2ecf20Sopenharmony_cistruct cache_set { 5098c2ecf20Sopenharmony_ci struct closure cl; 5108c2ecf20Sopenharmony_ci 5118c2ecf20Sopenharmony_ci struct list_head list; 5128c2ecf20Sopenharmony_ci struct kobject kobj; 5138c2ecf20Sopenharmony_ci struct kobject internal; 5148c2ecf20Sopenharmony_ci struct dentry *debug; 5158c2ecf20Sopenharmony_ci struct cache_accounting accounting; 5168c2ecf20Sopenharmony_ci 5178c2ecf20Sopenharmony_ci unsigned long flags; 5188c2ecf20Sopenharmony_ci atomic_t idle_counter; 5198c2ecf20Sopenharmony_ci atomic_t at_max_writeback_rate; 5208c2ecf20Sopenharmony_ci 5218c2ecf20Sopenharmony_ci struct cache *cache; 5228c2ecf20Sopenharmony_ci 5238c2ecf20Sopenharmony_ci struct bcache_device **devices; 5248c2ecf20Sopenharmony_ci unsigned int devices_max_used; 5258c2ecf20Sopenharmony_ci atomic_t attached_dev_nr; 5268c2ecf20Sopenharmony_ci struct list_head cached_devs; 5278c2ecf20Sopenharmony_ci uint64_t cached_dev_sectors; 5288c2ecf20Sopenharmony_ci atomic_long_t flash_dev_dirty_sectors; 5298c2ecf20Sopenharmony_ci struct closure caching; 5308c2ecf20Sopenharmony_ci 5318c2ecf20Sopenharmony_ci struct closure sb_write; 5328c2ecf20Sopenharmony_ci struct semaphore sb_write_mutex; 5338c2ecf20Sopenharmony_ci 5348c2ecf20Sopenharmony_ci mempool_t search; 5358c2ecf20Sopenharmony_ci mempool_t bio_meta; 5368c2ecf20Sopenharmony_ci struct bio_set bio_split; 5378c2ecf20Sopenharmony_ci 5388c2ecf20Sopenharmony_ci /* For the btree cache */ 5398c2ecf20Sopenharmony_ci struct shrinker shrink; 5408c2ecf20Sopenharmony_ci 5418c2ecf20Sopenharmony_ci /* For the btree cache and anything allocation related */ 5428c2ecf20Sopenharmony_ci struct mutex bucket_lock; 5438c2ecf20Sopenharmony_ci 5448c2ecf20Sopenharmony_ci /* log2(bucket_size), in sectors */ 5458c2ecf20Sopenharmony_ci unsigned short bucket_bits; 5468c2ecf20Sopenharmony_ci 5478c2ecf20Sopenharmony_ci /* log2(block_size), in sectors */ 5488c2ecf20Sopenharmony_ci unsigned short block_bits; 5498c2ecf20Sopenharmony_ci 5508c2ecf20Sopenharmony_ci /* 5518c2ecf20Sopenharmony_ci * Default number of pages for a new btree node - may be less than a 5528c2ecf20Sopenharmony_ci * full bucket 5538c2ecf20Sopenharmony_ci */ 5548c2ecf20Sopenharmony_ci unsigned int btree_pages; 5558c2ecf20Sopenharmony_ci 5568c2ecf20Sopenharmony_ci /* 5578c2ecf20Sopenharmony_ci * Lists of struct btrees; lru is the list for structs that have memory 5588c2ecf20Sopenharmony_ci * allocated for actual btree node, freed is for structs that do not. 5598c2ecf20Sopenharmony_ci * 5608c2ecf20Sopenharmony_ci * We never free a struct btree, except on shutdown - we just put it on 5618c2ecf20Sopenharmony_ci * the btree_cache_freed list and reuse it later. This simplifies the 5628c2ecf20Sopenharmony_ci * code, and it doesn't cost us much memory as the memory usage is 5638c2ecf20Sopenharmony_ci * dominated by buffers that hold the actual btree node data and those 5648c2ecf20Sopenharmony_ci * can be freed - and the number of struct btrees allocated is 5658c2ecf20Sopenharmony_ci * effectively bounded. 5668c2ecf20Sopenharmony_ci * 5678c2ecf20Sopenharmony_ci * btree_cache_freeable effectively is a small cache - we use it because 5688c2ecf20Sopenharmony_ci * high order page allocations can be rather expensive, and it's quite 5698c2ecf20Sopenharmony_ci * common to delete and allocate btree nodes in quick succession. It 5708c2ecf20Sopenharmony_ci * should never grow past ~2-3 nodes in practice. 5718c2ecf20Sopenharmony_ci */ 5728c2ecf20Sopenharmony_ci struct list_head btree_cache; 5738c2ecf20Sopenharmony_ci struct list_head btree_cache_freeable; 5748c2ecf20Sopenharmony_ci struct list_head btree_cache_freed; 5758c2ecf20Sopenharmony_ci 5768c2ecf20Sopenharmony_ci /* Number of elements in btree_cache + btree_cache_freeable lists */ 5778c2ecf20Sopenharmony_ci unsigned int btree_cache_used; 5788c2ecf20Sopenharmony_ci 5798c2ecf20Sopenharmony_ci /* 5808c2ecf20Sopenharmony_ci * If we need to allocate memory for a new btree node and that 5818c2ecf20Sopenharmony_ci * allocation fails, we can cannibalize another node in the btree cache 5828c2ecf20Sopenharmony_ci * to satisfy the allocation - lock to guarantee only one thread does 5838c2ecf20Sopenharmony_ci * this at a time: 5848c2ecf20Sopenharmony_ci */ 5858c2ecf20Sopenharmony_ci wait_queue_head_t btree_cache_wait; 5868c2ecf20Sopenharmony_ci struct task_struct *btree_cache_alloc_lock; 5878c2ecf20Sopenharmony_ci spinlock_t btree_cannibalize_lock; 5888c2ecf20Sopenharmony_ci 5898c2ecf20Sopenharmony_ci /* 5908c2ecf20Sopenharmony_ci * When we free a btree node, we increment the gen of the bucket the 5918c2ecf20Sopenharmony_ci * node is in - but we can't rewrite the prios and gens until we 5928c2ecf20Sopenharmony_ci * finished whatever it is we were doing, otherwise after a crash the 5938c2ecf20Sopenharmony_ci * btree node would be freed but for say a split, we might not have the 5948c2ecf20Sopenharmony_ci * pointers to the new nodes inserted into the btree yet. 5958c2ecf20Sopenharmony_ci * 5968c2ecf20Sopenharmony_ci * This is a refcount that blocks prio_write() until the new keys are 5978c2ecf20Sopenharmony_ci * written. 5988c2ecf20Sopenharmony_ci */ 5998c2ecf20Sopenharmony_ci atomic_t prio_blocked; 6008c2ecf20Sopenharmony_ci wait_queue_head_t bucket_wait; 6018c2ecf20Sopenharmony_ci 6028c2ecf20Sopenharmony_ci /* 6038c2ecf20Sopenharmony_ci * For any bio we don't skip we subtract the number of sectors from 6048c2ecf20Sopenharmony_ci * rescale; when it hits 0 we rescale all the bucket priorities. 6058c2ecf20Sopenharmony_ci */ 6068c2ecf20Sopenharmony_ci atomic_t rescale; 6078c2ecf20Sopenharmony_ci /* 6088c2ecf20Sopenharmony_ci * used for GC, identify if any front side I/Os is inflight 6098c2ecf20Sopenharmony_ci */ 6108c2ecf20Sopenharmony_ci atomic_t search_inflight; 6118c2ecf20Sopenharmony_ci /* 6128c2ecf20Sopenharmony_ci * When we invalidate buckets, we use both the priority and the amount 6138c2ecf20Sopenharmony_ci * of good data to determine which buckets to reuse first - to weight 6148c2ecf20Sopenharmony_ci * those together consistently we keep track of the smallest nonzero 6158c2ecf20Sopenharmony_ci * priority of any bucket. 6168c2ecf20Sopenharmony_ci */ 6178c2ecf20Sopenharmony_ci uint16_t min_prio; 6188c2ecf20Sopenharmony_ci 6198c2ecf20Sopenharmony_ci /* 6208c2ecf20Sopenharmony_ci * max(gen - last_gc) for all buckets. When it gets too big we have to 6218c2ecf20Sopenharmony_ci * gc to keep gens from wrapping around. 6228c2ecf20Sopenharmony_ci */ 6238c2ecf20Sopenharmony_ci uint8_t need_gc; 6248c2ecf20Sopenharmony_ci struct gc_stat gc_stats; 6258c2ecf20Sopenharmony_ci size_t nbuckets; 6268c2ecf20Sopenharmony_ci size_t avail_nbuckets; 6278c2ecf20Sopenharmony_ci 6288c2ecf20Sopenharmony_ci struct task_struct *gc_thread; 6298c2ecf20Sopenharmony_ci /* Where in the btree gc currently is */ 6308c2ecf20Sopenharmony_ci struct bkey gc_done; 6318c2ecf20Sopenharmony_ci 6328c2ecf20Sopenharmony_ci /* 6338c2ecf20Sopenharmony_ci * For automatical garbage collection after writeback completed, this 6348c2ecf20Sopenharmony_ci * varialbe is used as bit fields, 6358c2ecf20Sopenharmony_ci * - 0000 0001b (BCH_ENABLE_AUTO_GC): enable gc after writeback 6368c2ecf20Sopenharmony_ci * - 0000 0010b (BCH_DO_AUTO_GC): do gc after writeback 6378c2ecf20Sopenharmony_ci * This is an optimization for following write request after writeback 6388c2ecf20Sopenharmony_ci * finished, but read hit rate dropped due to clean data on cache is 6398c2ecf20Sopenharmony_ci * discarded. Unless user explicitly sets it via sysfs, it won't be 6408c2ecf20Sopenharmony_ci * enabled. 6418c2ecf20Sopenharmony_ci */ 6428c2ecf20Sopenharmony_ci#define BCH_ENABLE_AUTO_GC 1 6438c2ecf20Sopenharmony_ci#define BCH_DO_AUTO_GC 2 6448c2ecf20Sopenharmony_ci uint8_t gc_after_writeback; 6458c2ecf20Sopenharmony_ci 6468c2ecf20Sopenharmony_ci /* 6478c2ecf20Sopenharmony_ci * The allocation code needs gc_mark in struct bucket to be correct, but 6488c2ecf20Sopenharmony_ci * it's not while a gc is in progress. Protected by bucket_lock. 6498c2ecf20Sopenharmony_ci */ 6508c2ecf20Sopenharmony_ci int gc_mark_valid; 6518c2ecf20Sopenharmony_ci 6528c2ecf20Sopenharmony_ci /* Counts how many sectors bio_insert has added to the cache */ 6538c2ecf20Sopenharmony_ci atomic_t sectors_to_gc; 6548c2ecf20Sopenharmony_ci wait_queue_head_t gc_wait; 6558c2ecf20Sopenharmony_ci 6568c2ecf20Sopenharmony_ci struct keybuf moving_gc_keys; 6578c2ecf20Sopenharmony_ci /* Number of moving GC bios in flight */ 6588c2ecf20Sopenharmony_ci struct semaphore moving_in_flight; 6598c2ecf20Sopenharmony_ci 6608c2ecf20Sopenharmony_ci struct workqueue_struct *moving_gc_wq; 6618c2ecf20Sopenharmony_ci 6628c2ecf20Sopenharmony_ci struct btree *root; 6638c2ecf20Sopenharmony_ci 6648c2ecf20Sopenharmony_ci#ifdef CONFIG_BCACHE_DEBUG 6658c2ecf20Sopenharmony_ci struct btree *verify_data; 6668c2ecf20Sopenharmony_ci struct bset *verify_ondisk; 6678c2ecf20Sopenharmony_ci struct mutex verify_lock; 6688c2ecf20Sopenharmony_ci#endif 6698c2ecf20Sopenharmony_ci 6708c2ecf20Sopenharmony_ci uint8_t set_uuid[16]; 6718c2ecf20Sopenharmony_ci unsigned int nr_uuids; 6728c2ecf20Sopenharmony_ci struct uuid_entry *uuids; 6738c2ecf20Sopenharmony_ci BKEY_PADDED(uuid_bucket); 6748c2ecf20Sopenharmony_ci struct closure uuid_write; 6758c2ecf20Sopenharmony_ci struct semaphore uuid_write_mutex; 6768c2ecf20Sopenharmony_ci 6778c2ecf20Sopenharmony_ci /* 6788c2ecf20Sopenharmony_ci * A btree node on disk could have too many bsets for an iterator to fit 6798c2ecf20Sopenharmony_ci * on the stack - have to dynamically allocate them. 6808c2ecf20Sopenharmony_ci * bch_cache_set_alloc() will make sure the pool can allocate iterators 6818c2ecf20Sopenharmony_ci * equipped with enough room that can host 6828c2ecf20Sopenharmony_ci * (sb.bucket_size / sb.block_size) 6838c2ecf20Sopenharmony_ci * btree_iter_sets, which is more than static MAX_BSETS. 6848c2ecf20Sopenharmony_ci */ 6858c2ecf20Sopenharmony_ci mempool_t fill_iter; 6868c2ecf20Sopenharmony_ci 6878c2ecf20Sopenharmony_ci struct bset_sort_state sort; 6888c2ecf20Sopenharmony_ci 6898c2ecf20Sopenharmony_ci /* List of buckets we're currently writing data to */ 6908c2ecf20Sopenharmony_ci struct list_head data_buckets; 6918c2ecf20Sopenharmony_ci spinlock_t data_bucket_lock; 6928c2ecf20Sopenharmony_ci 6938c2ecf20Sopenharmony_ci struct journal journal; 6948c2ecf20Sopenharmony_ci 6958c2ecf20Sopenharmony_ci#define CONGESTED_MAX 1024 6968c2ecf20Sopenharmony_ci unsigned int congested_last_us; 6978c2ecf20Sopenharmony_ci atomic_t congested; 6988c2ecf20Sopenharmony_ci 6998c2ecf20Sopenharmony_ci /* The rest of this all shows up in sysfs */ 7008c2ecf20Sopenharmony_ci unsigned int congested_read_threshold_us; 7018c2ecf20Sopenharmony_ci unsigned int congested_write_threshold_us; 7028c2ecf20Sopenharmony_ci 7038c2ecf20Sopenharmony_ci struct time_stats btree_gc_time; 7048c2ecf20Sopenharmony_ci struct time_stats btree_split_time; 7058c2ecf20Sopenharmony_ci struct time_stats btree_read_time; 7068c2ecf20Sopenharmony_ci 7078c2ecf20Sopenharmony_ci atomic_long_t cache_read_races; 7088c2ecf20Sopenharmony_ci atomic_long_t writeback_keys_done; 7098c2ecf20Sopenharmony_ci atomic_long_t writeback_keys_failed; 7108c2ecf20Sopenharmony_ci 7118c2ecf20Sopenharmony_ci atomic_long_t reclaim; 7128c2ecf20Sopenharmony_ci atomic_long_t reclaimed_journal_buckets; 7138c2ecf20Sopenharmony_ci atomic_long_t flush_write; 7148c2ecf20Sopenharmony_ci 7158c2ecf20Sopenharmony_ci enum { 7168c2ecf20Sopenharmony_ci ON_ERROR_UNREGISTER, 7178c2ecf20Sopenharmony_ci ON_ERROR_PANIC, 7188c2ecf20Sopenharmony_ci } on_error; 7198c2ecf20Sopenharmony_ci#define DEFAULT_IO_ERROR_LIMIT 8 7208c2ecf20Sopenharmony_ci unsigned int error_limit; 7218c2ecf20Sopenharmony_ci unsigned int error_decay; 7228c2ecf20Sopenharmony_ci 7238c2ecf20Sopenharmony_ci unsigned short journal_delay_ms; 7248c2ecf20Sopenharmony_ci bool expensive_debug_checks; 7258c2ecf20Sopenharmony_ci unsigned int verify:1; 7268c2ecf20Sopenharmony_ci unsigned int key_merging_disabled:1; 7278c2ecf20Sopenharmony_ci unsigned int gc_always_rewrite:1; 7288c2ecf20Sopenharmony_ci unsigned int shrinker_disabled:1; 7298c2ecf20Sopenharmony_ci unsigned int copy_gc_enabled:1; 7308c2ecf20Sopenharmony_ci unsigned int idle_max_writeback_rate_enabled:1; 7318c2ecf20Sopenharmony_ci 7328c2ecf20Sopenharmony_ci#define BUCKET_HASH_BITS 12 7338c2ecf20Sopenharmony_ci struct hlist_head bucket_hash[1 << BUCKET_HASH_BITS]; 7348c2ecf20Sopenharmony_ci}; 7358c2ecf20Sopenharmony_ci 7368c2ecf20Sopenharmony_cistruct bbio { 7378c2ecf20Sopenharmony_ci unsigned int submit_time_us; 7388c2ecf20Sopenharmony_ci union { 7398c2ecf20Sopenharmony_ci struct bkey key; 7408c2ecf20Sopenharmony_ci uint64_t _pad[3]; 7418c2ecf20Sopenharmony_ci /* 7428c2ecf20Sopenharmony_ci * We only need pad = 3 here because we only ever carry around a 7438c2ecf20Sopenharmony_ci * single pointer - i.e. the pointer we're doing io to/from. 7448c2ecf20Sopenharmony_ci */ 7458c2ecf20Sopenharmony_ci }; 7468c2ecf20Sopenharmony_ci struct bio bio; 7478c2ecf20Sopenharmony_ci}; 7488c2ecf20Sopenharmony_ci 7498c2ecf20Sopenharmony_ci#define BTREE_PRIO USHRT_MAX 7508c2ecf20Sopenharmony_ci#define INITIAL_PRIO 32768U 7518c2ecf20Sopenharmony_ci 7528c2ecf20Sopenharmony_ci#define btree_bytes(c) ((c)->btree_pages * PAGE_SIZE) 7538c2ecf20Sopenharmony_ci#define btree_blocks(b) \ 7548c2ecf20Sopenharmony_ci ((unsigned int) (KEY_SIZE(&b->key) >> (b)->c->block_bits)) 7558c2ecf20Sopenharmony_ci 7568c2ecf20Sopenharmony_ci#define btree_default_blocks(c) \ 7578c2ecf20Sopenharmony_ci ((unsigned int) ((PAGE_SECTORS * (c)->btree_pages) >> (c)->block_bits)) 7588c2ecf20Sopenharmony_ci 7598c2ecf20Sopenharmony_ci#define bucket_bytes(ca) ((ca)->sb.bucket_size << 9) 7608c2ecf20Sopenharmony_ci#define block_bytes(ca) ((ca)->sb.block_size << 9) 7618c2ecf20Sopenharmony_ci 7628c2ecf20Sopenharmony_cistatic inline unsigned int meta_bucket_pages(struct cache_sb *sb) 7638c2ecf20Sopenharmony_ci{ 7648c2ecf20Sopenharmony_ci unsigned int n, max_pages; 7658c2ecf20Sopenharmony_ci 7668c2ecf20Sopenharmony_ci max_pages = min_t(unsigned int, 7678c2ecf20Sopenharmony_ci __rounddown_pow_of_two(USHRT_MAX) / PAGE_SECTORS, 7688c2ecf20Sopenharmony_ci MAX_ORDER_NR_PAGES); 7698c2ecf20Sopenharmony_ci 7708c2ecf20Sopenharmony_ci n = sb->bucket_size / PAGE_SECTORS; 7718c2ecf20Sopenharmony_ci if (n > max_pages) 7728c2ecf20Sopenharmony_ci n = max_pages; 7738c2ecf20Sopenharmony_ci 7748c2ecf20Sopenharmony_ci return n; 7758c2ecf20Sopenharmony_ci} 7768c2ecf20Sopenharmony_ci 7778c2ecf20Sopenharmony_cistatic inline unsigned int meta_bucket_bytes(struct cache_sb *sb) 7788c2ecf20Sopenharmony_ci{ 7798c2ecf20Sopenharmony_ci return meta_bucket_pages(sb) << PAGE_SHIFT; 7808c2ecf20Sopenharmony_ci} 7818c2ecf20Sopenharmony_ci 7828c2ecf20Sopenharmony_ci#define prios_per_bucket(ca) \ 7838c2ecf20Sopenharmony_ci ((meta_bucket_bytes(&(ca)->sb) - sizeof(struct prio_set)) / \ 7848c2ecf20Sopenharmony_ci sizeof(struct bucket_disk)) 7858c2ecf20Sopenharmony_ci 7868c2ecf20Sopenharmony_ci#define prio_buckets(ca) \ 7878c2ecf20Sopenharmony_ci DIV_ROUND_UP((size_t) (ca)->sb.nbuckets, prios_per_bucket(ca)) 7888c2ecf20Sopenharmony_ci 7898c2ecf20Sopenharmony_cistatic inline size_t sector_to_bucket(struct cache_set *c, sector_t s) 7908c2ecf20Sopenharmony_ci{ 7918c2ecf20Sopenharmony_ci return s >> c->bucket_bits; 7928c2ecf20Sopenharmony_ci} 7938c2ecf20Sopenharmony_ci 7948c2ecf20Sopenharmony_cistatic inline sector_t bucket_to_sector(struct cache_set *c, size_t b) 7958c2ecf20Sopenharmony_ci{ 7968c2ecf20Sopenharmony_ci return ((sector_t) b) << c->bucket_bits; 7978c2ecf20Sopenharmony_ci} 7988c2ecf20Sopenharmony_ci 7998c2ecf20Sopenharmony_cistatic inline sector_t bucket_remainder(struct cache_set *c, sector_t s) 8008c2ecf20Sopenharmony_ci{ 8018c2ecf20Sopenharmony_ci return s & (c->cache->sb.bucket_size - 1); 8028c2ecf20Sopenharmony_ci} 8038c2ecf20Sopenharmony_ci 8048c2ecf20Sopenharmony_cistatic inline struct cache *PTR_CACHE(struct cache_set *c, 8058c2ecf20Sopenharmony_ci const struct bkey *k, 8068c2ecf20Sopenharmony_ci unsigned int ptr) 8078c2ecf20Sopenharmony_ci{ 8088c2ecf20Sopenharmony_ci return c->cache; 8098c2ecf20Sopenharmony_ci} 8108c2ecf20Sopenharmony_ci 8118c2ecf20Sopenharmony_cistatic inline size_t PTR_BUCKET_NR(struct cache_set *c, 8128c2ecf20Sopenharmony_ci const struct bkey *k, 8138c2ecf20Sopenharmony_ci unsigned int ptr) 8148c2ecf20Sopenharmony_ci{ 8158c2ecf20Sopenharmony_ci return sector_to_bucket(c, PTR_OFFSET(k, ptr)); 8168c2ecf20Sopenharmony_ci} 8178c2ecf20Sopenharmony_ci 8188c2ecf20Sopenharmony_cistatic inline struct bucket *PTR_BUCKET(struct cache_set *c, 8198c2ecf20Sopenharmony_ci const struct bkey *k, 8208c2ecf20Sopenharmony_ci unsigned int ptr) 8218c2ecf20Sopenharmony_ci{ 8228c2ecf20Sopenharmony_ci return PTR_CACHE(c, k, ptr)->buckets + PTR_BUCKET_NR(c, k, ptr); 8238c2ecf20Sopenharmony_ci} 8248c2ecf20Sopenharmony_ci 8258c2ecf20Sopenharmony_cistatic inline uint8_t gen_after(uint8_t a, uint8_t b) 8268c2ecf20Sopenharmony_ci{ 8278c2ecf20Sopenharmony_ci uint8_t r = a - b; 8288c2ecf20Sopenharmony_ci 8298c2ecf20Sopenharmony_ci return r > 128U ? 0 : r; 8308c2ecf20Sopenharmony_ci} 8318c2ecf20Sopenharmony_ci 8328c2ecf20Sopenharmony_cistatic inline uint8_t ptr_stale(struct cache_set *c, const struct bkey *k, 8338c2ecf20Sopenharmony_ci unsigned int i) 8348c2ecf20Sopenharmony_ci{ 8358c2ecf20Sopenharmony_ci return gen_after(PTR_BUCKET(c, k, i)->gen, PTR_GEN(k, i)); 8368c2ecf20Sopenharmony_ci} 8378c2ecf20Sopenharmony_ci 8388c2ecf20Sopenharmony_cistatic inline bool ptr_available(struct cache_set *c, const struct bkey *k, 8398c2ecf20Sopenharmony_ci unsigned int i) 8408c2ecf20Sopenharmony_ci{ 8418c2ecf20Sopenharmony_ci return (PTR_DEV(k, i) < MAX_CACHES_PER_SET) && PTR_CACHE(c, k, i); 8428c2ecf20Sopenharmony_ci} 8438c2ecf20Sopenharmony_ci 8448c2ecf20Sopenharmony_ci/* Btree key macros */ 8458c2ecf20Sopenharmony_ci 8468c2ecf20Sopenharmony_ci/* 8478c2ecf20Sopenharmony_ci * This is used for various on disk data structures - cache_sb, prio_set, bset, 8488c2ecf20Sopenharmony_ci * jset: The checksum is _always_ the first 8 bytes of these structs 8498c2ecf20Sopenharmony_ci */ 8508c2ecf20Sopenharmony_ci#define csum_set(i) \ 8518c2ecf20Sopenharmony_ci bch_crc64(((void *) (i)) + sizeof(uint64_t), \ 8528c2ecf20Sopenharmony_ci ((void *) bset_bkey_last(i)) - \ 8538c2ecf20Sopenharmony_ci (((void *) (i)) + sizeof(uint64_t))) 8548c2ecf20Sopenharmony_ci 8558c2ecf20Sopenharmony_ci/* Error handling macros */ 8568c2ecf20Sopenharmony_ci 8578c2ecf20Sopenharmony_ci#define btree_bug(b, ...) \ 8588c2ecf20Sopenharmony_cido { \ 8598c2ecf20Sopenharmony_ci if (bch_cache_set_error((b)->c, __VA_ARGS__)) \ 8608c2ecf20Sopenharmony_ci dump_stack(); \ 8618c2ecf20Sopenharmony_ci} while (0) 8628c2ecf20Sopenharmony_ci 8638c2ecf20Sopenharmony_ci#define cache_bug(c, ...) \ 8648c2ecf20Sopenharmony_cido { \ 8658c2ecf20Sopenharmony_ci if (bch_cache_set_error(c, __VA_ARGS__)) \ 8668c2ecf20Sopenharmony_ci dump_stack(); \ 8678c2ecf20Sopenharmony_ci} while (0) 8688c2ecf20Sopenharmony_ci 8698c2ecf20Sopenharmony_ci#define btree_bug_on(cond, b, ...) \ 8708c2ecf20Sopenharmony_cido { \ 8718c2ecf20Sopenharmony_ci if (cond) \ 8728c2ecf20Sopenharmony_ci btree_bug(b, __VA_ARGS__); \ 8738c2ecf20Sopenharmony_ci} while (0) 8748c2ecf20Sopenharmony_ci 8758c2ecf20Sopenharmony_ci#define cache_bug_on(cond, c, ...) \ 8768c2ecf20Sopenharmony_cido { \ 8778c2ecf20Sopenharmony_ci if (cond) \ 8788c2ecf20Sopenharmony_ci cache_bug(c, __VA_ARGS__); \ 8798c2ecf20Sopenharmony_ci} while (0) 8808c2ecf20Sopenharmony_ci 8818c2ecf20Sopenharmony_ci#define cache_set_err_on(cond, c, ...) \ 8828c2ecf20Sopenharmony_cido { \ 8838c2ecf20Sopenharmony_ci if (cond) \ 8848c2ecf20Sopenharmony_ci bch_cache_set_error(c, __VA_ARGS__); \ 8858c2ecf20Sopenharmony_ci} while (0) 8868c2ecf20Sopenharmony_ci 8878c2ecf20Sopenharmony_ci/* Looping macros */ 8888c2ecf20Sopenharmony_ci 8898c2ecf20Sopenharmony_ci#define for_each_bucket(b, ca) \ 8908c2ecf20Sopenharmony_ci for (b = (ca)->buckets + (ca)->sb.first_bucket; \ 8918c2ecf20Sopenharmony_ci b < (ca)->buckets + (ca)->sb.nbuckets; b++) 8928c2ecf20Sopenharmony_ci 8938c2ecf20Sopenharmony_cistatic inline void cached_dev_put(struct cached_dev *dc) 8948c2ecf20Sopenharmony_ci{ 8958c2ecf20Sopenharmony_ci if (refcount_dec_and_test(&dc->count)) 8968c2ecf20Sopenharmony_ci schedule_work(&dc->detach); 8978c2ecf20Sopenharmony_ci} 8988c2ecf20Sopenharmony_ci 8998c2ecf20Sopenharmony_cistatic inline bool cached_dev_get(struct cached_dev *dc) 9008c2ecf20Sopenharmony_ci{ 9018c2ecf20Sopenharmony_ci if (!refcount_inc_not_zero(&dc->count)) 9028c2ecf20Sopenharmony_ci return false; 9038c2ecf20Sopenharmony_ci 9048c2ecf20Sopenharmony_ci /* Paired with the mb in cached_dev_attach */ 9058c2ecf20Sopenharmony_ci smp_mb__after_atomic(); 9068c2ecf20Sopenharmony_ci return true; 9078c2ecf20Sopenharmony_ci} 9088c2ecf20Sopenharmony_ci 9098c2ecf20Sopenharmony_ci/* 9108c2ecf20Sopenharmony_ci * bucket_gc_gen() returns the difference between the bucket's current gen and 9118c2ecf20Sopenharmony_ci * the oldest gen of any pointer into that bucket in the btree (last_gc). 9128c2ecf20Sopenharmony_ci */ 9138c2ecf20Sopenharmony_ci 9148c2ecf20Sopenharmony_cistatic inline uint8_t bucket_gc_gen(struct bucket *b) 9158c2ecf20Sopenharmony_ci{ 9168c2ecf20Sopenharmony_ci return b->gen - b->last_gc; 9178c2ecf20Sopenharmony_ci} 9188c2ecf20Sopenharmony_ci 9198c2ecf20Sopenharmony_ci#define BUCKET_GC_GEN_MAX 96U 9208c2ecf20Sopenharmony_ci 9218c2ecf20Sopenharmony_ci#define kobj_attribute_write(n, fn) \ 9228c2ecf20Sopenharmony_ci static struct kobj_attribute ksysfs_##n = __ATTR(n, 0200, NULL, fn) 9238c2ecf20Sopenharmony_ci 9248c2ecf20Sopenharmony_ci#define kobj_attribute_rw(n, show, store) \ 9258c2ecf20Sopenharmony_ci static struct kobj_attribute ksysfs_##n = \ 9268c2ecf20Sopenharmony_ci __ATTR(n, 0600, show, store) 9278c2ecf20Sopenharmony_ci 9288c2ecf20Sopenharmony_cistatic inline void wake_up_allocators(struct cache_set *c) 9298c2ecf20Sopenharmony_ci{ 9308c2ecf20Sopenharmony_ci struct cache *ca = c->cache; 9318c2ecf20Sopenharmony_ci 9328c2ecf20Sopenharmony_ci wake_up_process(ca->alloc_thread); 9338c2ecf20Sopenharmony_ci} 9348c2ecf20Sopenharmony_ci 9358c2ecf20Sopenharmony_cistatic inline void closure_bio_submit(struct cache_set *c, 9368c2ecf20Sopenharmony_ci struct bio *bio, 9378c2ecf20Sopenharmony_ci struct closure *cl) 9388c2ecf20Sopenharmony_ci{ 9398c2ecf20Sopenharmony_ci closure_get(cl); 9408c2ecf20Sopenharmony_ci if (unlikely(test_bit(CACHE_SET_IO_DISABLE, &c->flags))) { 9418c2ecf20Sopenharmony_ci bio->bi_status = BLK_STS_IOERR; 9428c2ecf20Sopenharmony_ci bio_endio(bio); 9438c2ecf20Sopenharmony_ci return; 9448c2ecf20Sopenharmony_ci } 9458c2ecf20Sopenharmony_ci submit_bio_noacct(bio); 9468c2ecf20Sopenharmony_ci} 9478c2ecf20Sopenharmony_ci 9488c2ecf20Sopenharmony_ci/* 9498c2ecf20Sopenharmony_ci * Prevent the kthread exits directly, and make sure when kthread_stop() 9508c2ecf20Sopenharmony_ci * is called to stop a kthread, it is still alive. If a kthread might be 9518c2ecf20Sopenharmony_ci * stopped by CACHE_SET_IO_DISABLE bit set, wait_for_kthread_stop() is 9528c2ecf20Sopenharmony_ci * necessary before the kthread returns. 9538c2ecf20Sopenharmony_ci */ 9548c2ecf20Sopenharmony_cistatic inline void wait_for_kthread_stop(void) 9558c2ecf20Sopenharmony_ci{ 9568c2ecf20Sopenharmony_ci while (!kthread_should_stop()) { 9578c2ecf20Sopenharmony_ci set_current_state(TASK_INTERRUPTIBLE); 9588c2ecf20Sopenharmony_ci schedule(); 9598c2ecf20Sopenharmony_ci } 9608c2ecf20Sopenharmony_ci} 9618c2ecf20Sopenharmony_ci 9628c2ecf20Sopenharmony_ci/* Forward declarations */ 9638c2ecf20Sopenharmony_ci 9648c2ecf20Sopenharmony_civoid bch_count_backing_io_errors(struct cached_dev *dc, struct bio *bio); 9658c2ecf20Sopenharmony_civoid bch_count_io_errors(struct cache *ca, blk_status_t error, 9668c2ecf20Sopenharmony_ci int is_read, const char *m); 9678c2ecf20Sopenharmony_civoid bch_bbio_count_io_errors(struct cache_set *c, struct bio *bio, 9688c2ecf20Sopenharmony_ci blk_status_t error, const char *m); 9698c2ecf20Sopenharmony_civoid bch_bbio_endio(struct cache_set *c, struct bio *bio, 9708c2ecf20Sopenharmony_ci blk_status_t error, const char *m); 9718c2ecf20Sopenharmony_civoid bch_bbio_free(struct bio *bio, struct cache_set *c); 9728c2ecf20Sopenharmony_cistruct bio *bch_bbio_alloc(struct cache_set *c); 9738c2ecf20Sopenharmony_ci 9748c2ecf20Sopenharmony_civoid __bch_submit_bbio(struct bio *bio, struct cache_set *c); 9758c2ecf20Sopenharmony_civoid bch_submit_bbio(struct bio *bio, struct cache_set *c, 9768c2ecf20Sopenharmony_ci struct bkey *k, unsigned int ptr); 9778c2ecf20Sopenharmony_ci 9788c2ecf20Sopenharmony_ciuint8_t bch_inc_gen(struct cache *ca, struct bucket *b); 9798c2ecf20Sopenharmony_civoid bch_rescale_priorities(struct cache_set *c, int sectors); 9808c2ecf20Sopenharmony_ci 9818c2ecf20Sopenharmony_cibool bch_can_invalidate_bucket(struct cache *ca, struct bucket *b); 9828c2ecf20Sopenharmony_civoid __bch_invalidate_one_bucket(struct cache *ca, struct bucket *b); 9838c2ecf20Sopenharmony_ci 9848c2ecf20Sopenharmony_civoid __bch_bucket_free(struct cache *ca, struct bucket *b); 9858c2ecf20Sopenharmony_civoid bch_bucket_free(struct cache_set *c, struct bkey *k); 9868c2ecf20Sopenharmony_ci 9878c2ecf20Sopenharmony_cilong bch_bucket_alloc(struct cache *ca, unsigned int reserve, bool wait); 9888c2ecf20Sopenharmony_ciint __bch_bucket_alloc_set(struct cache_set *c, unsigned int reserve, 9898c2ecf20Sopenharmony_ci struct bkey *k, bool wait); 9908c2ecf20Sopenharmony_ciint bch_bucket_alloc_set(struct cache_set *c, unsigned int reserve, 9918c2ecf20Sopenharmony_ci struct bkey *k, bool wait); 9928c2ecf20Sopenharmony_cibool bch_alloc_sectors(struct cache_set *c, struct bkey *k, 9938c2ecf20Sopenharmony_ci unsigned int sectors, unsigned int write_point, 9948c2ecf20Sopenharmony_ci unsigned int write_prio, bool wait); 9958c2ecf20Sopenharmony_cibool bch_cached_dev_error(struct cached_dev *dc); 9968c2ecf20Sopenharmony_ci 9978c2ecf20Sopenharmony_ci__printf(2, 3) 9988c2ecf20Sopenharmony_cibool bch_cache_set_error(struct cache_set *c, const char *fmt, ...); 9998c2ecf20Sopenharmony_ci 10008c2ecf20Sopenharmony_ciint bch_prio_write(struct cache *ca, bool wait); 10018c2ecf20Sopenharmony_civoid bch_write_bdev_super(struct cached_dev *dc, struct closure *parent); 10028c2ecf20Sopenharmony_ci 10038c2ecf20Sopenharmony_ciextern struct workqueue_struct *bcache_wq; 10048c2ecf20Sopenharmony_ciextern struct workqueue_struct *bch_journal_wq; 10058c2ecf20Sopenharmony_ciextern struct workqueue_struct *bch_flush_wq; 10068c2ecf20Sopenharmony_ciextern struct mutex bch_register_lock; 10078c2ecf20Sopenharmony_ciextern struct list_head bch_cache_sets; 10088c2ecf20Sopenharmony_ci 10098c2ecf20Sopenharmony_ciextern struct kobj_type bch_cached_dev_ktype; 10108c2ecf20Sopenharmony_ciextern struct kobj_type bch_flash_dev_ktype; 10118c2ecf20Sopenharmony_ciextern struct kobj_type bch_cache_set_ktype; 10128c2ecf20Sopenharmony_ciextern struct kobj_type bch_cache_set_internal_ktype; 10138c2ecf20Sopenharmony_ciextern struct kobj_type bch_cache_ktype; 10148c2ecf20Sopenharmony_ci 10158c2ecf20Sopenharmony_civoid bch_cached_dev_release(struct kobject *kobj); 10168c2ecf20Sopenharmony_civoid bch_flash_dev_release(struct kobject *kobj); 10178c2ecf20Sopenharmony_civoid bch_cache_set_release(struct kobject *kobj); 10188c2ecf20Sopenharmony_civoid bch_cache_release(struct kobject *kobj); 10198c2ecf20Sopenharmony_ci 10208c2ecf20Sopenharmony_ciint bch_uuid_write(struct cache_set *c); 10218c2ecf20Sopenharmony_civoid bcache_write_super(struct cache_set *c); 10228c2ecf20Sopenharmony_ci 10238c2ecf20Sopenharmony_ciint bch_flash_dev_create(struct cache_set *c, uint64_t size); 10248c2ecf20Sopenharmony_ci 10258c2ecf20Sopenharmony_ciint bch_cached_dev_attach(struct cached_dev *dc, struct cache_set *c, 10268c2ecf20Sopenharmony_ci uint8_t *set_uuid); 10278c2ecf20Sopenharmony_civoid bch_cached_dev_detach(struct cached_dev *dc); 10288c2ecf20Sopenharmony_ciint bch_cached_dev_run(struct cached_dev *dc); 10298c2ecf20Sopenharmony_civoid bcache_device_stop(struct bcache_device *d); 10308c2ecf20Sopenharmony_ci 10318c2ecf20Sopenharmony_civoid bch_cache_set_unregister(struct cache_set *c); 10328c2ecf20Sopenharmony_civoid bch_cache_set_stop(struct cache_set *c); 10338c2ecf20Sopenharmony_ci 10348c2ecf20Sopenharmony_cistruct cache_set *bch_cache_set_alloc(struct cache_sb *sb); 10358c2ecf20Sopenharmony_civoid bch_btree_cache_free(struct cache_set *c); 10368c2ecf20Sopenharmony_ciint bch_btree_cache_alloc(struct cache_set *c); 10378c2ecf20Sopenharmony_civoid bch_moving_init_cache_set(struct cache_set *c); 10388c2ecf20Sopenharmony_ciint bch_open_buckets_alloc(struct cache_set *c); 10398c2ecf20Sopenharmony_civoid bch_open_buckets_free(struct cache_set *c); 10408c2ecf20Sopenharmony_ci 10418c2ecf20Sopenharmony_ciint bch_cache_allocator_start(struct cache *ca); 10428c2ecf20Sopenharmony_ci 10438c2ecf20Sopenharmony_civoid bch_debug_exit(void); 10448c2ecf20Sopenharmony_civoid bch_debug_init(void); 10458c2ecf20Sopenharmony_civoid bch_request_exit(void); 10468c2ecf20Sopenharmony_ciint bch_request_init(void); 10478c2ecf20Sopenharmony_civoid bch_btree_exit(void); 10488c2ecf20Sopenharmony_ciint bch_btree_init(void); 10498c2ecf20Sopenharmony_ci 10508c2ecf20Sopenharmony_ci#endif /* _BCACHE_H */ 1051