xref: /kernel/linux/linux-5.10/fs/ceph/super.h (revision 8c2ecf20)
1/* SPDX-License-Identifier: GPL-2.0 */
2#ifndef _FS_CEPH_SUPER_H
3#define _FS_CEPH_SUPER_H
4
5#include <linux/ceph/ceph_debug.h>
6
7#include <asm/unaligned.h>
8#include <linux/backing-dev.h>
9#include <linux/completion.h>
10#include <linux/exportfs.h>
11#include <linux/fs.h>
12#include <linux/mempool.h>
13#include <linux/pagemap.h>
14#include <linux/wait.h>
15#include <linux/writeback.h>
16#include <linux/slab.h>
17#include <linux/posix_acl.h>
18#include <linux/refcount.h>
19#include <linux/security.h>
20
21#include <linux/ceph/libceph.h>
22
23#ifdef CONFIG_CEPH_FSCACHE
24#include <linux/fscache.h>
25#endif
26
27/* f_type in struct statfs */
28#define CEPH_SUPER_MAGIC 0x00c36400
29
30/* large granularity for statfs utilization stats to facilitate
31 * large volume sizes on 32-bit machines. */
32#define CEPH_BLOCK_SHIFT   22  /* 4 MB */
33#define CEPH_BLOCK         (1 << CEPH_BLOCK_SHIFT)
34
35#define CEPH_MOUNT_OPT_CLEANRECOVER    (1<<1) /* auto reonnect (clean mode) after blocklisted */
36#define CEPH_MOUNT_OPT_DIRSTAT         (1<<4) /* `cat dirname` for stats */
37#define CEPH_MOUNT_OPT_RBYTES          (1<<5) /* dir st_bytes = rbytes */
38#define CEPH_MOUNT_OPT_NOASYNCREADDIR  (1<<7) /* no dcache readdir */
39#define CEPH_MOUNT_OPT_INO32           (1<<8) /* 32 bit inos */
40#define CEPH_MOUNT_OPT_DCACHE          (1<<9) /* use dcache for readdir etc */
41#define CEPH_MOUNT_OPT_FSCACHE         (1<<10) /* use fscache */
42#define CEPH_MOUNT_OPT_NOPOOLPERM      (1<<11) /* no pool permission check */
43#define CEPH_MOUNT_OPT_MOUNTWAIT       (1<<12) /* mount waits if no mds is up */
44#define CEPH_MOUNT_OPT_NOQUOTADF       (1<<13) /* no root dir quota in statfs */
45#define CEPH_MOUNT_OPT_NOCOPYFROM      (1<<14) /* don't use RADOS 'copy-from' op */
46#define CEPH_MOUNT_OPT_ASYNC_DIROPS    (1<<15) /* allow async directory ops */
47
48#define CEPH_MOUNT_OPT_DEFAULT			\
49	(CEPH_MOUNT_OPT_DCACHE |		\
50	 CEPH_MOUNT_OPT_NOCOPYFROM)
51
52#define ceph_set_mount_opt(fsc, opt) \
53	(fsc)->mount_options->flags |= CEPH_MOUNT_OPT_##opt
54#define ceph_clear_mount_opt(fsc, opt) \
55	(fsc)->mount_options->flags &= ~CEPH_MOUNT_OPT_##opt
56#define ceph_test_mount_opt(fsc, opt) \
57	(!!((fsc)->mount_options->flags & CEPH_MOUNT_OPT_##opt))
58
59/* max size of osd read request, limited by libceph */
60#define CEPH_MAX_READ_SIZE              CEPH_MSG_MAX_DATA_LEN
61/* osd has a configurable limitaion of max write size.
62 * CEPH_MSG_MAX_DATA_LEN should be small enough. */
63#define CEPH_MAX_WRITE_SIZE		CEPH_MSG_MAX_DATA_LEN
64#define CEPH_RASIZE_DEFAULT             (8192*1024)    /* max readahead */
65#define CEPH_MAX_READDIR_DEFAULT        1024
66#define CEPH_MAX_READDIR_BYTES_DEFAULT  (512*1024)
67#define CEPH_SNAPDIRNAME_DEFAULT        ".snap"
68
69/*
70 * Delay telling the MDS we no longer want caps, in case we reopen
71 * the file.  Delay a minimum amount of time, even if we send a cap
72 * message for some other reason.  Otherwise, take the oppotunity to
73 * update the mds to avoid sending another message later.
74 */
75#define CEPH_CAPS_WANTED_DELAY_MIN_DEFAULT      5  /* cap release delay */
76#define CEPH_CAPS_WANTED_DELAY_MAX_DEFAULT     60  /* cap release delay */
77
78struct ceph_mount_options {
79	unsigned int flags;
80
81	unsigned int wsize;            /* max write size */
82	unsigned int rsize;            /* max read size */
83	unsigned int rasize;           /* max readahead */
84	unsigned int congestion_kb;    /* max writeback in flight */
85	unsigned int caps_wanted_delay_min, caps_wanted_delay_max;
86	int caps_max;
87	unsigned int max_readdir;       /* max readdir result (entries) */
88	unsigned int max_readdir_bytes; /* max readdir result (bytes) */
89
90	/*
91	 * everything above this point can be memcmp'd; everything below
92	 * is handled in compare_mount_options()
93	 */
94
95	char *snapdir_name;   /* default ".snap" */
96	char *mds_namespace;  /* default NULL */
97	char *server_path;    /* default NULL (means "/") */
98	char *fscache_uniq;   /* default NULL */
99};
100
101struct ceph_fs_client {
102	struct super_block *sb;
103
104	struct list_head metric_wakeup;
105
106	struct ceph_mount_options *mount_options;
107	struct ceph_client *client;
108
109	unsigned long mount_state;
110
111	unsigned long last_auto_reconnect;
112	bool blocklisted;
113
114	bool have_copy_from2;
115
116	u32 filp_gen;
117	loff_t max_file_size;
118
119	struct ceph_mds_client *mdsc;
120
121	atomic_long_t writeback_count;
122
123	struct workqueue_struct *inode_wq;
124	struct workqueue_struct *cap_wq;
125
126#ifdef CONFIG_DEBUG_FS
127	struct dentry *debugfs_dentry_lru, *debugfs_caps;
128	struct dentry *debugfs_congestion_kb;
129	struct dentry *debugfs_bdi;
130	struct dentry *debugfs_mdsc, *debugfs_mdsmap;
131	struct dentry *debugfs_metric;
132	struct dentry *debugfs_mds_sessions;
133#endif
134
135#ifdef CONFIG_CEPH_FSCACHE
136	struct fscache_cookie *fscache;
137#endif
138};
139
140
141/*
142 * File i/o capability.  This tracks shared state with the metadata
143 * server that allows us to cache or writeback attributes or to read
144 * and write data.  For any given inode, we should have one or more
145 * capabilities, one issued by each metadata server, and our
146 * cumulative access is the OR of all issued capabilities.
147 *
148 * Each cap is referenced by the inode's i_caps rbtree and by per-mds
149 * session capability lists.
150 */
151struct ceph_cap {
152	struct ceph_inode_info *ci;
153	struct rb_node ci_node;          /* per-ci cap tree */
154	struct ceph_mds_session *session;
155	struct list_head session_caps;   /* per-session caplist */
156	u64 cap_id;       /* unique cap id (mds provided) */
157	union {
158		/* in-use caps */
159		struct {
160			int issued;       /* latest, from the mds */
161			int implemented;  /* implemented superset of
162					     issued (for revocation) */
163			int mds;	  /* mds index for this cap */
164			int mds_wanted;   /* caps wanted from this mds */
165		};
166		/* caps to release */
167		struct {
168			u64 cap_ino;
169			int queue_release;
170		};
171	};
172	u32 seq, issue_seq, mseq;
173	u32 cap_gen;      /* active/stale cycle */
174	unsigned long last_used;
175	struct list_head caps_item;
176};
177
178#define CHECK_CAPS_AUTHONLY   1  /* only check auth cap */
179#define CHECK_CAPS_FLUSH      2  /* flush any dirty caps */
180#define CHECK_CAPS_NOINVAL    4  /* don't invalidate pagecache */
181
182struct ceph_cap_flush {
183	u64 tid;
184	int caps;
185	bool wake; /* wake up flush waiters when finish ? */
186	bool is_capsnap; /* true means capsnap */
187	struct list_head g_list; // global
188	struct list_head i_list; // per inode
189};
190
191/*
192 * Snapped cap state that is pending flush to mds.  When a snapshot occurs,
193 * we first complete any in-process sync writes and writeback any dirty
194 * data before flushing the snapped state (tracked here) back to the MDS.
195 */
196struct ceph_cap_snap {
197	refcount_t nref;
198	struct list_head ci_item;
199
200	struct ceph_cap_flush cap_flush;
201
202	u64 follows;
203	int issued, dirty;
204	struct ceph_snap_context *context;
205
206	umode_t mode;
207	kuid_t uid;
208	kgid_t gid;
209
210	struct ceph_buffer *xattr_blob;
211	u64 xattr_version;
212
213	u64 size;
214	u64 change_attr;
215	struct timespec64 mtime, atime, ctime, btime;
216	u64 time_warp_seq;
217	u64 truncate_size;
218	u32 truncate_seq;
219	int writing;   /* a sync write is still in progress */
220	int dirty_pages;     /* dirty pages awaiting writeback */
221	bool inline_data;
222	bool need_flush;
223};
224
225static inline void ceph_put_cap_snap(struct ceph_cap_snap *capsnap)
226{
227	if (refcount_dec_and_test(&capsnap->nref)) {
228		if (capsnap->xattr_blob)
229			ceph_buffer_put(capsnap->xattr_blob);
230		kfree(capsnap);
231	}
232}
233
234/*
235 * The frag tree describes how a directory is fragmented, potentially across
236 * multiple metadata servers.  It is also used to indicate points where
237 * metadata authority is delegated, and whether/where metadata is replicated.
238 *
239 * A _leaf_ frag will be present in the i_fragtree IFF there is
240 * delegation info.  That is, if mds >= 0 || ndist > 0.
241 */
242#define CEPH_MAX_DIRFRAG_REP 4
243
244struct ceph_inode_frag {
245	struct rb_node node;
246
247	/* fragtree state */
248	u32 frag;
249	int split_by;         /* i.e. 2^(split_by) children */
250
251	/* delegation and replication info */
252	int mds;              /* -1 if same authority as parent */
253	int ndist;            /* >0 if replicated */
254	int dist[CEPH_MAX_DIRFRAG_REP];
255};
256
257/*
258 * We cache inode xattrs as an encoded blob until they are first used,
259 * at which point we parse them into an rbtree.
260 */
261struct ceph_inode_xattr {
262	struct rb_node node;
263
264	const char *name;
265	int name_len;
266	const char *val;
267	int val_len;
268	int dirty;
269
270	int should_free_name;
271	int should_free_val;
272};
273
274/*
275 * Ceph dentry state
276 */
277struct ceph_dentry_info {
278	struct dentry *dentry;
279	struct ceph_mds_session *lease_session;
280	struct list_head lease_list;
281	unsigned flags;
282	int lease_shared_gen;
283	u32 lease_gen;
284	u32 lease_seq;
285	unsigned long lease_renew_after, lease_renew_from;
286	unsigned long time;
287	u64 offset;
288};
289
290#define CEPH_DENTRY_REFERENCED		1
291#define CEPH_DENTRY_LEASE_LIST		2
292#define CEPH_DENTRY_SHRINK_LIST		4
293#define CEPH_DENTRY_PRIMARY_LINK	8
294
295struct ceph_inode_xattrs_info {
296	/*
297	 * (still encoded) xattr blob. we avoid the overhead of parsing
298	 * this until someone actually calls getxattr, etc.
299	 *
300	 * blob->vec.iov_len == 4 implies there are no xattrs; blob ==
301	 * NULL means we don't know.
302	*/
303	struct ceph_buffer *blob, *prealloc_blob;
304
305	struct rb_root index;
306	bool dirty;
307	int count;
308	int names_size;
309	int vals_size;
310	u64 version, index_version;
311};
312
313/*
314 * Ceph inode.
315 */
316struct ceph_inode_info {
317	struct ceph_vino i_vino;   /* ceph ino + snap */
318
319	spinlock_t i_ceph_lock;
320
321	u64 i_version;
322	u64 i_inline_version;
323	u32 i_time_warp_seq;
324
325	unsigned long i_ceph_flags;
326	atomic64_t i_release_count;
327	atomic64_t i_ordered_count;
328	atomic64_t i_complete_seq[2];
329
330	struct ceph_dir_layout i_dir_layout;
331	struct ceph_file_layout i_layout;
332	struct ceph_file_layout i_cached_layout;	// for async creates
333	char *i_symlink;
334
335	/* for dirs */
336	struct timespec64 i_rctime;
337	u64 i_rbytes, i_rfiles, i_rsubdirs;
338	u64 i_files, i_subdirs;
339
340	/* quotas */
341	u64 i_max_bytes, i_max_files;
342
343	s32 i_dir_pin;
344
345	struct rb_root i_fragtree;
346	int i_fragtree_nsplits;
347	struct mutex i_fragtree_mutex;
348
349	struct ceph_inode_xattrs_info i_xattrs;
350
351	/* capabilities.  protected _both_ by i_ceph_lock and cap->session's
352	 * s_mutex. */
353	struct rb_root i_caps;           /* cap list */
354	struct ceph_cap *i_auth_cap;     /* authoritative cap, if any */
355	unsigned i_dirty_caps, i_flushing_caps;     /* mask of dirtied fields */
356
357	/*
358	 * Link to the auth cap's session's s_cap_dirty list. s_cap_dirty
359	 * is protected by the mdsc->cap_dirty_lock, but each individual item
360	 * is also protected by the inode's i_ceph_lock. Walking s_cap_dirty
361	 * requires the mdsc->cap_dirty_lock. List presence for an item can
362	 * be tested under the i_ceph_lock. Changing anything requires both.
363	 */
364	struct list_head i_dirty_item;
365
366	/*
367	 * Link to session's s_cap_flushing list. Protected in a similar
368	 * fashion to i_dirty_item, but also by the s_mutex for changes. The
369	 * s_cap_flushing list can be walked while holding either the s_mutex
370	 * or msdc->cap_dirty_lock. List presence can also be checked while
371	 * holding the i_ceph_lock for this inode.
372	 */
373	struct list_head i_flushing_item;
374
375	/* we need to track cap writeback on a per-cap-bit basis, to allow
376	 * overlapping, pipelined cap flushes to the mds.  we can probably
377	 * reduce the tid to 8 bits if we're concerned about inode size. */
378	struct ceph_cap_flush *i_prealloc_cap_flush;
379	struct list_head i_cap_flush_list;
380	wait_queue_head_t i_cap_wq;      /* threads waiting on a capability */
381	unsigned long i_hold_caps_max; /* jiffies */
382	struct list_head i_cap_delay_list;  /* for delayed cap release to mds */
383	struct ceph_cap_reservation i_cap_migration_resv;
384	struct list_head i_cap_snaps;   /* snapped state pending flush to mds */
385	struct ceph_snap_context *i_head_snapc;  /* set if wr_buffer_head > 0 or
386						    dirty|flushing caps */
387	unsigned i_snap_caps;           /* cap bits for snapped files */
388
389	unsigned long i_last_rd;
390	unsigned long i_last_wr;
391	int i_nr_by_mode[CEPH_FILE_MODE_BITS];  /* open file counts */
392
393	struct mutex i_truncate_mutex;
394	u32 i_truncate_seq;        /* last truncate to smaller size */
395	u64 i_truncate_size;       /*  and the size we last truncated down to */
396	int i_truncate_pending;    /*  still need to call vmtruncate */
397
398	u64 i_max_size;            /* max file size authorized by mds */
399	u64 i_reported_size; /* (max_)size reported to or requested of mds */
400	u64 i_wanted_max_size;     /* offset we'd like to write too */
401	u64 i_requested_max_size;  /* max_size we've requested */
402
403	/* held references to caps */
404	int i_pin_ref;
405	int i_rd_ref, i_rdcache_ref, i_wr_ref, i_wb_ref, i_fx_ref;
406	int i_wrbuffer_ref, i_wrbuffer_ref_head;
407	atomic_t i_filelock_ref;
408	atomic_t i_shared_gen;       /* increment each time we get FILE_SHARED */
409	u32 i_rdcache_gen;      /* incremented each time we get FILE_CACHE. */
410	u32 i_rdcache_revoking; /* RDCACHE gen to async invalidate, if any */
411
412	struct list_head i_unsafe_dirops; /* uncommitted mds dir ops */
413	struct list_head i_unsafe_iops;   /* uncommitted mds inode ops */
414	spinlock_t i_unsafe_lock;
415
416	union {
417		struct ceph_snap_realm *i_snap_realm; /* snap realm (if caps) */
418		struct ceph_snapid_map *i_snapid_map; /* snapid -> dev_t */
419	};
420	int i_snap_realm_counter; /* snap realm (if caps) */
421	struct list_head i_snap_realm_item;
422	struct list_head i_snap_flush_item;
423	struct timespec64 i_btime;
424	struct timespec64 i_snap_btime;
425
426	struct work_struct i_work;
427	unsigned long  i_work_mask;
428
429#ifdef CONFIG_CEPH_FSCACHE
430	struct fscache_cookie *fscache;
431	u32 i_fscache_gen;
432#endif
433	struct inode vfs_inode; /* at end */
434};
435
436static inline struct ceph_inode_info *
437ceph_inode(const struct inode *inode)
438{
439	return container_of(inode, struct ceph_inode_info, vfs_inode);
440}
441
442static inline struct ceph_fs_client *
443ceph_inode_to_client(const struct inode *inode)
444{
445	return (struct ceph_fs_client *)inode->i_sb->s_fs_info;
446}
447
448static inline struct ceph_fs_client *
449ceph_sb_to_client(const struct super_block *sb)
450{
451	return (struct ceph_fs_client *)sb->s_fs_info;
452}
453
454static inline struct ceph_mds_client *
455ceph_sb_to_mdsc(const struct super_block *sb)
456{
457	return (struct ceph_mds_client *)ceph_sb_to_client(sb)->mdsc;
458}
459
460static inline struct ceph_vino
461ceph_vino(const struct inode *inode)
462{
463	return ceph_inode(inode)->i_vino;
464}
465
466static inline u32 ceph_ino_to_ino32(u64 vino)
467{
468	u32 ino = vino & 0xffffffff;
469	ino ^= vino >> 32;
470	if (!ino)
471		ino = 2;
472	return ino;
473}
474
475/*
476 * Inode numbers in cephfs are 64 bits, but inode->i_ino is 32-bits on
477 * some arches. We generally do not use this value inside the ceph driver, but
478 * we do want to set it to something, so that generic vfs code has an
479 * appropriate value for tracepoints and the like.
480 */
481static inline ino_t ceph_vino_to_ino_t(struct ceph_vino vino)
482{
483	if (sizeof(ino_t) == sizeof(u32))
484		return ceph_ino_to_ino32(vino.ino);
485	return (ino_t)vino.ino;
486}
487
488/* for printf-style formatting */
489#define ceph_vinop(i) ceph_inode(i)->i_vino.ino, ceph_inode(i)->i_vino.snap
490
491static inline u64 ceph_ino(struct inode *inode)
492{
493	return ceph_inode(inode)->i_vino.ino;
494}
495
496static inline u64 ceph_snap(struct inode *inode)
497{
498	return ceph_inode(inode)->i_vino.snap;
499}
500
501/**
502 * ceph_present_ino - format an inode number for presentation to userland
503 * @sb: superblock where the inode lives
504 * @ino: inode number to (possibly) convert
505 *
506 * If the user mounted with the ino32 option, then the 64-bit value needs
507 * to be converted to something that can fit inside 32 bits. Note that
508 * internal kernel code never uses this value, so this is entirely for
509 * userland consumption.
510 */
511static inline u64 ceph_present_ino(struct super_block *sb, u64 ino)
512{
513	if (unlikely(ceph_test_mount_opt(ceph_sb_to_client(sb), INO32)))
514		return ceph_ino_to_ino32(ino);
515	return ino;
516}
517
518static inline u64 ceph_present_inode(struct inode *inode)
519{
520	return ceph_present_ino(inode->i_sb, ceph_ino(inode));
521}
522
523static inline int ceph_ino_compare(struct inode *inode, void *data)
524{
525	struct ceph_vino *pvino = (struct ceph_vino *)data;
526	struct ceph_inode_info *ci = ceph_inode(inode);
527	return ci->i_vino.ino == pvino->ino &&
528		ci->i_vino.snap == pvino->snap;
529}
530
531/*
532 * The MDS reserves a set of inodes for its own usage. These should never
533 * be accessible by clients, and so the MDS has no reason to ever hand these
534 * out. The range is CEPH_MDS_INO_MDSDIR_OFFSET..CEPH_INO_SYSTEM_BASE.
535 *
536 * These come from src/mds/mdstypes.h in the ceph sources.
537 */
538#define CEPH_MAX_MDS		0x100
539#define CEPH_NUM_STRAY		10
540#define CEPH_MDS_INO_MDSDIR_OFFSET	(1 * CEPH_MAX_MDS)
541#define CEPH_INO_SYSTEM_BASE		((6*CEPH_MAX_MDS) + (CEPH_MAX_MDS * CEPH_NUM_STRAY))
542
543static inline bool ceph_vino_is_reserved(const struct ceph_vino vino)
544{
545	if (vino.ino < CEPH_INO_SYSTEM_BASE &&
546	    vino.ino >= CEPH_MDS_INO_MDSDIR_OFFSET) {
547		WARN_RATELIMIT(1, "Attempt to access reserved inode number 0x%llx", vino.ino);
548		return true;
549	}
550	return false;
551}
552
553static inline struct inode *ceph_find_inode(struct super_block *sb,
554					    struct ceph_vino vino)
555{
556	if (ceph_vino_is_reserved(vino))
557		return NULL;
558
559	/*
560	 * NB: The hashval will be run through the fs/inode.c hash function
561	 * anyway, so there is no need to squash the inode number down to
562	 * 32-bits first. Just use low-order bits on arches with 32-bit long.
563	 */
564	return ilookup5(sb, (unsigned long)vino.ino, ceph_ino_compare, &vino);
565}
566
567
568/*
569 * Ceph inode.
570 */
571#define CEPH_I_DIR_ORDERED	(1 << 0)  /* dentries in dir are ordered */
572#define CEPH_I_FLUSH		(1 << 2)  /* do not delay flush of dirty metadata */
573#define CEPH_I_POOL_PERM	(1 << 3)  /* pool rd/wr bits are valid */
574#define CEPH_I_POOL_RD		(1 << 4)  /* can read from pool */
575#define CEPH_I_POOL_WR		(1 << 5)  /* can write to pool */
576#define CEPH_I_SEC_INITED	(1 << 6)  /* security initialized */
577#define CEPH_I_KICK_FLUSH	(1 << 7)  /* kick flushing caps */
578#define CEPH_I_FLUSH_SNAPS	(1 << 8)  /* need flush snapss */
579#define CEPH_I_ERROR_WRITE	(1 << 9) /* have seen write errors */
580#define CEPH_I_ERROR_FILELOCK	(1 << 10) /* have seen file lock errors */
581#define CEPH_I_ODIRECT		(1 << 11) /* inode in direct I/O mode */
582#define CEPH_ASYNC_CREATE_BIT	(12)	  /* async create in flight for this */
583#define CEPH_I_ASYNC_CREATE	(1 << CEPH_ASYNC_CREATE_BIT)
584
585/*
586 * Masks of ceph inode work.
587 */
588#define CEPH_I_WORK_WRITEBACK		0 /* writeback */
589#define CEPH_I_WORK_INVALIDATE_PAGES	1 /* invalidate pages */
590#define CEPH_I_WORK_VMTRUNCATE		2 /* vmtruncate */
591
592/*
593 * We set the ERROR_WRITE bit when we start seeing write errors on an inode
594 * and then clear it when they start succeeding. Note that we do a lockless
595 * check first, and only take the lock if it looks like it needs to be changed.
596 * The write submission code just takes this as a hint, so we're not too
597 * worried if a few slip through in either direction.
598 */
599static inline void ceph_set_error_write(struct ceph_inode_info *ci)
600{
601	if (!(READ_ONCE(ci->i_ceph_flags) & CEPH_I_ERROR_WRITE)) {
602		spin_lock(&ci->i_ceph_lock);
603		ci->i_ceph_flags |= CEPH_I_ERROR_WRITE;
604		spin_unlock(&ci->i_ceph_lock);
605	}
606}
607
608static inline void ceph_clear_error_write(struct ceph_inode_info *ci)
609{
610	if (READ_ONCE(ci->i_ceph_flags) & CEPH_I_ERROR_WRITE) {
611		spin_lock(&ci->i_ceph_lock);
612		ci->i_ceph_flags &= ~CEPH_I_ERROR_WRITE;
613		spin_unlock(&ci->i_ceph_lock);
614	}
615}
616
617static inline void __ceph_dir_set_complete(struct ceph_inode_info *ci,
618					   long long release_count,
619					   long long ordered_count)
620{
621	/*
622	 * Makes sure operations that setup readdir cache (update page
623	 * cache and i_size) are strongly ordered w.r.t. the following
624	 * atomic64_set() operations.
625	 */
626	smp_mb();
627	atomic64_set(&ci->i_complete_seq[0], release_count);
628	atomic64_set(&ci->i_complete_seq[1], ordered_count);
629}
630
631static inline void __ceph_dir_clear_complete(struct ceph_inode_info *ci)
632{
633	atomic64_inc(&ci->i_release_count);
634}
635
636static inline void __ceph_dir_clear_ordered(struct ceph_inode_info *ci)
637{
638	atomic64_inc(&ci->i_ordered_count);
639}
640
641static inline bool __ceph_dir_is_complete(struct ceph_inode_info *ci)
642{
643	return atomic64_read(&ci->i_complete_seq[0]) ==
644		atomic64_read(&ci->i_release_count);
645}
646
647static inline bool __ceph_dir_is_complete_ordered(struct ceph_inode_info *ci)
648{
649	return  atomic64_read(&ci->i_complete_seq[0]) ==
650		atomic64_read(&ci->i_release_count) &&
651		atomic64_read(&ci->i_complete_seq[1]) ==
652		atomic64_read(&ci->i_ordered_count);
653}
654
655static inline void ceph_dir_clear_complete(struct inode *inode)
656{
657	__ceph_dir_clear_complete(ceph_inode(inode));
658}
659
660static inline void ceph_dir_clear_ordered(struct inode *inode)
661{
662	__ceph_dir_clear_ordered(ceph_inode(inode));
663}
664
665static inline bool ceph_dir_is_complete_ordered(struct inode *inode)
666{
667	bool ret = __ceph_dir_is_complete_ordered(ceph_inode(inode));
668	smp_rmb();
669	return ret;
670}
671
672/* find a specific frag @f */
673extern struct ceph_inode_frag *__ceph_find_frag(struct ceph_inode_info *ci,
674						u32 f);
675
676/*
677 * choose fragment for value @v.  copy frag content to pfrag, if leaf
678 * exists
679 */
680extern u32 ceph_choose_frag(struct ceph_inode_info *ci, u32 v,
681			    struct ceph_inode_frag *pfrag,
682			    int *found);
683
684static inline struct ceph_dentry_info *ceph_dentry(const struct dentry *dentry)
685{
686	return (struct ceph_dentry_info *)dentry->d_fsdata;
687}
688
689/*
690 * caps helpers
691 */
692static inline bool __ceph_is_any_real_caps(struct ceph_inode_info *ci)
693{
694	return !RB_EMPTY_ROOT(&ci->i_caps);
695}
696
697extern int __ceph_caps_issued(struct ceph_inode_info *ci, int *implemented);
698extern int __ceph_caps_issued_mask(struct ceph_inode_info *ci, int mask, int t);
699extern int __ceph_caps_issued_mask_metric(struct ceph_inode_info *ci, int mask,
700					  int t);
701extern int __ceph_caps_issued_other(struct ceph_inode_info *ci,
702				    struct ceph_cap *cap);
703
704static inline int ceph_caps_issued(struct ceph_inode_info *ci)
705{
706	int issued;
707	spin_lock(&ci->i_ceph_lock);
708	issued = __ceph_caps_issued(ci, NULL);
709	spin_unlock(&ci->i_ceph_lock);
710	return issued;
711}
712
713static inline int ceph_caps_issued_mask_metric(struct ceph_inode_info *ci,
714					       int mask, int touch)
715{
716	int r;
717	spin_lock(&ci->i_ceph_lock);
718	r = __ceph_caps_issued_mask_metric(ci, mask, touch);
719	spin_unlock(&ci->i_ceph_lock);
720	return r;
721}
722
723static inline int __ceph_caps_dirty(struct ceph_inode_info *ci)
724{
725	return ci->i_dirty_caps | ci->i_flushing_caps;
726}
727extern struct ceph_cap_flush *ceph_alloc_cap_flush(void);
728extern void ceph_free_cap_flush(struct ceph_cap_flush *cf);
729extern int __ceph_mark_dirty_caps(struct ceph_inode_info *ci, int mask,
730				  struct ceph_cap_flush **pcf);
731
732extern int __ceph_caps_revoking_other(struct ceph_inode_info *ci,
733				      struct ceph_cap *ocap, int mask);
734extern int ceph_caps_revoking(struct ceph_inode_info *ci, int mask);
735extern int __ceph_caps_used(struct ceph_inode_info *ci);
736
737static inline bool __ceph_is_file_opened(struct ceph_inode_info *ci)
738{
739	return ci->i_nr_by_mode[0];
740}
741extern int __ceph_caps_file_wanted(struct ceph_inode_info *ci);
742extern int __ceph_caps_wanted(struct ceph_inode_info *ci);
743
744/* what the mds thinks we want */
745extern int __ceph_caps_mds_wanted(struct ceph_inode_info *ci, bool check);
746
747extern void ceph_caps_init(struct ceph_mds_client *mdsc);
748extern void ceph_caps_finalize(struct ceph_mds_client *mdsc);
749extern void ceph_adjust_caps_max_min(struct ceph_mds_client *mdsc,
750				     struct ceph_mount_options *fsopt);
751extern int ceph_reserve_caps(struct ceph_mds_client *mdsc,
752			     struct ceph_cap_reservation *ctx, int need);
753extern void ceph_unreserve_caps(struct ceph_mds_client *mdsc,
754			       struct ceph_cap_reservation *ctx);
755extern void ceph_reservation_status(struct ceph_fs_client *client,
756				    int *total, int *avail, int *used,
757				    int *reserved, int *min);
758
759
760
761/*
762 * we keep buffered readdir results attached to file->private_data
763 */
764#define CEPH_F_SYNC     1
765#define CEPH_F_ATEND    2
766
767struct ceph_file_info {
768	short fmode;     /* initialized on open */
769	short flags;     /* CEPH_F_* */
770
771	spinlock_t rw_contexts_lock;
772	struct list_head rw_contexts;
773
774	u32 filp_gen;
775};
776
777struct ceph_dir_file_info {
778	struct ceph_file_info file_info;
779
780	/* readdir: position within the dir */
781	u32 frag;
782	struct ceph_mds_request *last_readdir;
783
784	/* readdir: position within a frag */
785	unsigned next_offset;  /* offset of next chunk (last_name's + 1) */
786	char *last_name;       /* last entry in previous chunk */
787	long long dir_release_count;
788	long long dir_ordered_count;
789	int readdir_cache_idx;
790
791	/* used for -o dirstat read() on directory thing */
792	char *dir_info;
793	int dir_info_len;
794};
795
796struct ceph_rw_context {
797	struct list_head list;
798	struct task_struct *thread;
799	int caps;
800};
801
802#define CEPH_DEFINE_RW_CONTEXT(_name, _caps)	\
803	struct ceph_rw_context _name = {	\
804		.thread = current,		\
805		.caps = _caps,			\
806	}
807
808static inline void ceph_add_rw_context(struct ceph_file_info *cf,
809				       struct ceph_rw_context *ctx)
810{
811	spin_lock(&cf->rw_contexts_lock);
812	list_add(&ctx->list, &cf->rw_contexts);
813	spin_unlock(&cf->rw_contexts_lock);
814}
815
816static inline void ceph_del_rw_context(struct ceph_file_info *cf,
817				       struct ceph_rw_context *ctx)
818{
819	spin_lock(&cf->rw_contexts_lock);
820	list_del(&ctx->list);
821	spin_unlock(&cf->rw_contexts_lock);
822}
823
824static inline struct ceph_rw_context*
825ceph_find_rw_context(struct ceph_file_info *cf)
826{
827	struct ceph_rw_context *ctx, *found = NULL;
828	spin_lock(&cf->rw_contexts_lock);
829	list_for_each_entry(ctx, &cf->rw_contexts, list) {
830		if (ctx->thread == current) {
831			found = ctx;
832			break;
833		}
834	}
835	spin_unlock(&cf->rw_contexts_lock);
836	return found;
837}
838
839struct ceph_readdir_cache_control {
840	struct page  *page;
841	struct dentry **dentries;
842	int index;
843};
844
845/*
846 * A "snap realm" describes a subset of the file hierarchy sharing
847 * the same set of snapshots that apply to it.  The realms themselves
848 * are organized into a hierarchy, such that children inherit (some of)
849 * the snapshots of their parents.
850 *
851 * All inodes within the realm that have capabilities are linked into a
852 * per-realm list.
853 */
854struct ceph_snap_realm {
855	u64 ino;
856	struct inode *inode;
857	atomic_t nref;
858	struct rb_node node;
859
860	u64 created, seq;
861	u64 parent_ino;
862	u64 parent_since;   /* snapid when our current parent became so */
863
864	u64 *prior_parent_snaps;      /* snaps inherited from any parents we */
865	u32 num_prior_parent_snaps;   /*  had prior to parent_since */
866	u64 *snaps;                   /* snaps specific to this realm */
867	u32 num_snaps;
868
869	struct ceph_snap_realm *parent;
870	struct list_head children;       /* list of child realms */
871	struct list_head child_item;
872
873	struct list_head empty_item;     /* if i have ref==0 */
874
875	struct list_head dirty_item;     /* if realm needs new context */
876
877	/* the current set of snaps for this realm */
878	struct ceph_snap_context *cached_context;
879
880	struct list_head inodes_with_caps;
881	spinlock_t inodes_with_caps_lock;
882};
883
884static inline int default_congestion_kb(void)
885{
886	int congestion_kb;
887
888	/*
889	 * Copied from NFS
890	 *
891	 * congestion size, scale with available memory.
892	 *
893	 *  64MB:    8192k
894	 * 128MB:   11585k
895	 * 256MB:   16384k
896	 * 512MB:   23170k
897	 *   1GB:   32768k
898	 *   2GB:   46340k
899	 *   4GB:   65536k
900	 *   8GB:   92681k
901	 *  16GB:  131072k
902	 *
903	 * This allows larger machines to have larger/more transfers.
904	 * Limit the default to 256M
905	 */
906	congestion_kb = (16*int_sqrt(totalram_pages())) << (PAGE_SHIFT-10);
907	if (congestion_kb > 256*1024)
908		congestion_kb = 256*1024;
909
910	return congestion_kb;
911}
912
913
914/* super.c */
915extern int ceph_force_reconnect(struct super_block *sb);
916/* snap.c */
917struct ceph_snap_realm *ceph_lookup_snap_realm(struct ceph_mds_client *mdsc,
918					       u64 ino);
919extern void ceph_get_snap_realm(struct ceph_mds_client *mdsc,
920				struct ceph_snap_realm *realm);
921extern void ceph_put_snap_realm(struct ceph_mds_client *mdsc,
922				struct ceph_snap_realm *realm);
923extern int ceph_update_snap_trace(struct ceph_mds_client *m,
924				  void *p, void *e, bool deletion,
925				  struct ceph_snap_realm **realm_ret);
926extern void ceph_handle_snap(struct ceph_mds_client *mdsc,
927			     struct ceph_mds_session *session,
928			     struct ceph_msg *msg);
929extern void ceph_queue_cap_snap(struct ceph_inode_info *ci);
930extern int __ceph_finish_cap_snap(struct ceph_inode_info *ci,
931				  struct ceph_cap_snap *capsnap);
932extern void ceph_cleanup_empty_realms(struct ceph_mds_client *mdsc);
933
934extern struct ceph_snapid_map *ceph_get_snapid_map(struct ceph_mds_client *mdsc,
935						   u64 snap);
936extern void ceph_put_snapid_map(struct ceph_mds_client* mdsc,
937				struct ceph_snapid_map *sm);
938extern void ceph_trim_snapid_map(struct ceph_mds_client *mdsc);
939extern void ceph_cleanup_snapid_map(struct ceph_mds_client *mdsc);
940
941
942/*
943 * a cap_snap is "pending" if it is still awaiting an in-progress
944 * sync write (that may/may not still update size, mtime, etc.).
945 */
946static inline bool __ceph_have_pending_cap_snap(struct ceph_inode_info *ci)
947{
948	return !list_empty(&ci->i_cap_snaps) &&
949	       list_last_entry(&ci->i_cap_snaps, struct ceph_cap_snap,
950			       ci_item)->writing;
951}
952
953/* inode.c */
954struct ceph_mds_reply_info_in;
955struct ceph_mds_reply_dirfrag;
956
957extern const struct inode_operations ceph_file_iops;
958
959extern struct inode *ceph_alloc_inode(struct super_block *sb);
960extern void ceph_evict_inode(struct inode *inode);
961extern void ceph_free_inode(struct inode *inode);
962
963extern struct inode *ceph_get_inode(struct super_block *sb,
964				    struct ceph_vino vino);
965extern struct inode *ceph_get_snapdir(struct inode *parent);
966extern int ceph_fill_file_size(struct inode *inode, int issued,
967			       u32 truncate_seq, u64 truncate_size, u64 size);
968extern void ceph_fill_file_time(struct inode *inode, int issued,
969				u64 time_warp_seq, struct timespec64 *ctime,
970				struct timespec64 *mtime,
971				struct timespec64 *atime);
972extern int ceph_fill_inode(struct inode *inode, struct page *locked_page,
973		    struct ceph_mds_reply_info_in *iinfo,
974		    struct ceph_mds_reply_dirfrag *dirinfo,
975		    struct ceph_mds_session *session, int cap_fmode,
976		    struct ceph_cap_reservation *caps_reservation);
977extern int ceph_fill_trace(struct super_block *sb,
978			   struct ceph_mds_request *req);
979extern int ceph_readdir_prepopulate(struct ceph_mds_request *req,
980				    struct ceph_mds_session *session);
981
982extern int ceph_inode_holds_cap(struct inode *inode, int mask);
983
984extern bool ceph_inode_set_size(struct inode *inode, loff_t size);
985extern void __ceph_do_pending_vmtruncate(struct inode *inode);
986extern void ceph_queue_vmtruncate(struct inode *inode);
987extern void ceph_queue_invalidate(struct inode *inode);
988extern void ceph_queue_writeback(struct inode *inode);
989extern void ceph_async_iput(struct inode *inode);
990
991extern int __ceph_do_getattr(struct inode *inode, struct page *locked_page,
992			     int mask, bool force);
993static inline int ceph_do_getattr(struct inode *inode, int mask, bool force)
994{
995	return __ceph_do_getattr(inode, NULL, mask, force);
996}
997extern int ceph_permission(struct inode *inode, int mask);
998extern int __ceph_setattr(struct inode *inode, struct iattr *attr);
999extern int ceph_setattr(struct dentry *dentry, struct iattr *attr);
1000extern int ceph_getattr(const struct path *path, struct kstat *stat,
1001			u32 request_mask, unsigned int flags);
1002
1003/* xattr.c */
1004int __ceph_setxattr(struct inode *, const char *, const void *, size_t, int);
1005ssize_t __ceph_getxattr(struct inode *, const char *, void *, size_t);
1006extern ssize_t ceph_listxattr(struct dentry *, char *, size_t);
1007extern struct ceph_buffer *__ceph_build_xattrs_blob(struct ceph_inode_info *ci);
1008extern void __ceph_destroy_xattrs(struct ceph_inode_info *ci);
1009extern const struct xattr_handler *ceph_xattr_handlers[];
1010
1011struct ceph_acl_sec_ctx {
1012#ifdef CONFIG_CEPH_FS_POSIX_ACL
1013	void *default_acl;
1014	void *acl;
1015#endif
1016#ifdef CONFIG_CEPH_FS_SECURITY_LABEL
1017	void *sec_ctx;
1018	u32 sec_ctxlen;
1019#endif
1020	struct ceph_pagelist *pagelist;
1021};
1022
1023#ifdef CONFIG_SECURITY
1024extern bool ceph_security_xattr_deadlock(struct inode *in);
1025extern bool ceph_security_xattr_wanted(struct inode *in);
1026#else
1027static inline bool ceph_security_xattr_deadlock(struct inode *in)
1028{
1029	return false;
1030}
1031static inline bool ceph_security_xattr_wanted(struct inode *in)
1032{
1033	return false;
1034}
1035#endif
1036
1037#ifdef CONFIG_CEPH_FS_SECURITY_LABEL
1038extern int ceph_security_init_secctx(struct dentry *dentry, umode_t mode,
1039				     struct ceph_acl_sec_ctx *ctx);
1040static inline void ceph_security_invalidate_secctx(struct inode *inode)
1041{
1042	security_inode_invalidate_secctx(inode);
1043}
1044#else
1045static inline int ceph_security_init_secctx(struct dentry *dentry, umode_t mode,
1046					    struct ceph_acl_sec_ctx *ctx)
1047{
1048	return 0;
1049}
1050static inline void ceph_security_invalidate_secctx(struct inode *inode)
1051{
1052}
1053#endif
1054
1055void ceph_release_acl_sec_ctx(struct ceph_acl_sec_ctx *as_ctx);
1056
1057/* acl.c */
1058#ifdef CONFIG_CEPH_FS_POSIX_ACL
1059
1060struct posix_acl *ceph_get_acl(struct inode *, int);
1061int ceph_set_acl(struct inode *inode, struct posix_acl *acl, int type);
1062int ceph_pre_init_acls(struct inode *dir, umode_t *mode,
1063		       struct ceph_acl_sec_ctx *as_ctx);
1064void ceph_init_inode_acls(struct inode *inode,
1065			  struct ceph_acl_sec_ctx *as_ctx);
1066
1067static inline void ceph_forget_all_cached_acls(struct inode *inode)
1068{
1069       forget_all_cached_acls(inode);
1070}
1071
1072#else
1073
1074#define ceph_get_acl NULL
1075#define ceph_set_acl NULL
1076
1077static inline int ceph_pre_init_acls(struct inode *dir, umode_t *mode,
1078				     struct ceph_acl_sec_ctx *as_ctx)
1079{
1080	return 0;
1081}
1082static inline void ceph_init_inode_acls(struct inode *inode,
1083					struct ceph_acl_sec_ctx *as_ctx)
1084{
1085}
1086static inline int ceph_acl_chmod(struct dentry *dentry, struct inode *inode)
1087{
1088	return 0;
1089}
1090
1091static inline void ceph_forget_all_cached_acls(struct inode *inode)
1092{
1093}
1094
1095#endif
1096
1097/* caps.c */
1098extern const char *ceph_cap_string(int c);
1099extern void ceph_handle_caps(struct ceph_mds_session *session,
1100			     struct ceph_msg *msg);
1101extern struct ceph_cap *ceph_get_cap(struct ceph_mds_client *mdsc,
1102				     struct ceph_cap_reservation *ctx);
1103extern void ceph_add_cap(struct inode *inode,
1104			 struct ceph_mds_session *session, u64 cap_id,
1105			 unsigned issued, unsigned wanted,
1106			 unsigned cap, unsigned seq, u64 realmino, int flags,
1107			 struct ceph_cap **new_cap);
1108extern void __ceph_remove_cap(struct ceph_cap *cap, bool queue_release);
1109extern void __ceph_remove_caps(struct ceph_inode_info *ci);
1110extern void ceph_put_cap(struct ceph_mds_client *mdsc,
1111			 struct ceph_cap *cap);
1112extern int ceph_is_any_caps(struct inode *inode);
1113
1114extern int ceph_write_inode(struct inode *inode, struct writeback_control *wbc);
1115extern int ceph_fsync(struct file *file, loff_t start, loff_t end,
1116		      int datasync);
1117extern void ceph_early_kick_flushing_caps(struct ceph_mds_client *mdsc,
1118					  struct ceph_mds_session *session);
1119extern void ceph_kick_flushing_caps(struct ceph_mds_client *mdsc,
1120				    struct ceph_mds_session *session);
1121void ceph_kick_flushing_inode_caps(struct ceph_mds_session *session,
1122				   struct ceph_inode_info *ci);
1123extern struct ceph_cap *ceph_get_cap_for_mds(struct ceph_inode_info *ci,
1124					     int mds);
1125extern void ceph_take_cap_refs(struct ceph_inode_info *ci, int caps,
1126				bool snap_rwsem_locked);
1127extern void ceph_get_cap_refs(struct ceph_inode_info *ci, int caps);
1128extern void ceph_put_cap_refs(struct ceph_inode_info *ci, int had);
1129extern void ceph_put_cap_refs_no_check_caps(struct ceph_inode_info *ci,
1130					    int had);
1131extern void ceph_put_wrbuffer_cap_refs(struct ceph_inode_info *ci, int nr,
1132				       struct ceph_snap_context *snapc);
1133extern void __ceph_remove_capsnap(struct inode *inode,
1134				  struct ceph_cap_snap *capsnap,
1135				  bool *wake_ci, bool *wake_mdsc);
1136extern void ceph_remove_capsnap(struct inode *inode,
1137				struct ceph_cap_snap *capsnap,
1138				bool *wake_ci, bool *wake_mdsc);
1139extern void ceph_flush_snaps(struct ceph_inode_info *ci,
1140			     struct ceph_mds_session **psession);
1141extern bool __ceph_should_report_size(struct ceph_inode_info *ci);
1142extern void ceph_check_caps(struct ceph_inode_info *ci, int flags,
1143			    struct ceph_mds_session *session);
1144extern unsigned long ceph_check_delayed_caps(struct ceph_mds_client *mdsc);
1145extern void ceph_flush_dirty_caps(struct ceph_mds_client *mdsc);
1146extern int  ceph_drop_caps_for_unlink(struct inode *inode);
1147extern int ceph_encode_inode_release(void **p, struct inode *inode,
1148				     int mds, int drop, int unless, int force);
1149extern int ceph_encode_dentry_release(void **p, struct dentry *dn,
1150				      struct inode *dir,
1151				      int mds, int drop, int unless);
1152
1153extern int ceph_get_caps(struct file *filp, int need, int want,
1154			 loff_t endoff, int *got, struct page **pinned_page);
1155extern int ceph_try_get_caps(struct inode *inode,
1156			     int need, int want, bool nonblock, int *got);
1157
1158/* for counting open files by mode */
1159extern void ceph_get_fmode(struct ceph_inode_info *ci, int mode, int count);
1160extern void ceph_put_fmode(struct ceph_inode_info *ci, int mode, int count);
1161extern void __ceph_touch_fmode(struct ceph_inode_info *ci,
1162			       struct ceph_mds_client *mdsc, int fmode);
1163
1164/* addr.c */
1165extern const struct address_space_operations ceph_aops;
1166extern int ceph_mmap(struct file *file, struct vm_area_struct *vma);
1167extern int ceph_uninline_data(struct file *filp, struct page *locked_page);
1168extern int ceph_pool_perm_check(struct inode *inode, int need);
1169extern void ceph_pool_perm_destroy(struct ceph_mds_client* mdsc);
1170
1171/* file.c */
1172extern const struct file_operations ceph_file_fops;
1173
1174extern int ceph_renew_caps(struct inode *inode, int fmode);
1175extern int ceph_open(struct inode *inode, struct file *file);
1176extern int ceph_atomic_open(struct inode *dir, struct dentry *dentry,
1177			    struct file *file, unsigned flags, umode_t mode);
1178extern int ceph_release(struct inode *inode, struct file *filp);
1179extern void ceph_fill_inline_data(struct inode *inode, struct page *locked_page,
1180				  char *data, size_t len);
1181
1182/* dir.c */
1183extern const struct file_operations ceph_dir_fops;
1184extern const struct file_operations ceph_snapdir_fops;
1185extern const struct inode_operations ceph_dir_iops;
1186extern const struct inode_operations ceph_snapdir_iops;
1187extern const struct dentry_operations ceph_dentry_ops;
1188
1189extern loff_t ceph_make_fpos(unsigned high, unsigned off, bool hash_order);
1190extern int ceph_handle_notrace_create(struct inode *dir, struct dentry *dentry);
1191extern int ceph_handle_snapdir(struct ceph_mds_request *req,
1192			       struct dentry *dentry, int err);
1193extern struct dentry *ceph_finish_lookup(struct ceph_mds_request *req,
1194					 struct dentry *dentry, int err);
1195
1196extern void __ceph_dentry_lease_touch(struct ceph_dentry_info *di);
1197extern void __ceph_dentry_dir_lease_touch(struct ceph_dentry_info *di);
1198extern void ceph_invalidate_dentry_lease(struct dentry *dentry);
1199extern int ceph_trim_dentries(struct ceph_mds_client *mdsc);
1200extern unsigned ceph_dentry_hash(struct inode *dir, struct dentry *dn);
1201extern void ceph_readdir_cache_release(struct ceph_readdir_cache_control *ctl);
1202
1203/* ioctl.c */
1204extern long ceph_ioctl(struct file *file, unsigned int cmd, unsigned long arg);
1205
1206/* export.c */
1207extern const struct export_operations ceph_export_ops;
1208struct inode *ceph_lookup_inode(struct super_block *sb, u64 ino);
1209
1210/* locks.c */
1211extern __init void ceph_flock_init(void);
1212extern int ceph_lock(struct file *file, int cmd, struct file_lock *fl);
1213extern int ceph_flock(struct file *file, int cmd, struct file_lock *fl);
1214extern void ceph_count_locks(struct inode *inode, int *p_num, int *f_num);
1215extern int ceph_encode_locks_to_buffer(struct inode *inode,
1216				       struct ceph_filelock *flocks,
1217				       int num_fcntl_locks,
1218				       int num_flock_locks);
1219extern int ceph_locks_to_pagelist(struct ceph_filelock *flocks,
1220				  struct ceph_pagelist *pagelist,
1221				  int num_fcntl_locks, int num_flock_locks);
1222
1223/* debugfs.c */
1224extern void ceph_fs_debugfs_init(struct ceph_fs_client *client);
1225extern void ceph_fs_debugfs_cleanup(struct ceph_fs_client *client);
1226
1227/* quota.c */
1228static inline bool __ceph_has_any_quota(struct ceph_inode_info *ci)
1229{
1230	return ci->i_max_files || ci->i_max_bytes;
1231}
1232
1233extern void ceph_adjust_quota_realms_count(struct inode *inode, bool inc);
1234
1235static inline void __ceph_update_quota(struct ceph_inode_info *ci,
1236				       u64 max_bytes, u64 max_files)
1237{
1238	bool had_quota, has_quota;
1239	had_quota = __ceph_has_any_quota(ci);
1240	ci->i_max_bytes = max_bytes;
1241	ci->i_max_files = max_files;
1242	has_quota = __ceph_has_any_quota(ci);
1243
1244	if (had_quota != has_quota)
1245		ceph_adjust_quota_realms_count(&ci->vfs_inode, has_quota);
1246}
1247
1248extern void ceph_handle_quota(struct ceph_mds_client *mdsc,
1249			      struct ceph_mds_session *session,
1250			      struct ceph_msg *msg);
1251extern bool ceph_quota_is_max_files_exceeded(struct inode *inode);
1252extern bool ceph_quota_is_max_bytes_exceeded(struct inode *inode,
1253					     loff_t newlen);
1254extern bool ceph_quota_is_max_bytes_approaching(struct inode *inode,
1255						loff_t newlen);
1256extern bool ceph_quota_update_statfs(struct ceph_fs_client *fsc,
1257				     struct kstatfs *buf);
1258extern int ceph_quota_check_rename(struct ceph_mds_client *mdsc,
1259				   struct inode *old, struct inode *new);
1260extern void ceph_cleanup_quotarealms_inodes(struct ceph_mds_client *mdsc);
1261
1262#endif /* _FS_CEPH_SUPER_H */
1263