1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (C) Sistina Software, Inc. 1997-2003 All rights reserved.
4 * Copyright (C) 2004-2008 Red Hat, Inc. All rights reserved.
5 */
6
7 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
8
9 #include <linux/sched.h>
10 #include <linux/slab.h>
11 #include <linux/spinlock.h>
12 #include <linux/buffer_head.h>
13 #include <linux/delay.h>
14 #include <linux/sort.h>
15 #include <linux/hash.h>
16 #include <linux/jhash.h>
17 #include <linux/kallsyms.h>
18 #include <linux/gfs2_ondisk.h>
19 #include <linux/list.h>
20 #include <linux/wait.h>
21 #include <linux/module.h>
22 #include <linux/uaccess.h>
23 #include <linux/seq_file.h>
24 #include <linux/debugfs.h>
25 #include <linux/kthread.h>
26 #include <linux/freezer.h>
27 #include <linux/workqueue.h>
28 #include <linux/jiffies.h>
29 #include <linux/rcupdate.h>
30 #include <linux/rculist_bl.h>
31 #include <linux/bit_spinlock.h>
32 #include <linux/percpu.h>
33 #include <linux/list_sort.h>
34 #include <linux/lockref.h>
35 #include <linux/rhashtable.h>
36
37 #include "gfs2.h"
38 #include "incore.h"
39 #include "glock.h"
40 #include "glops.h"
41 #include "inode.h"
42 #include "lops.h"
43 #include "meta_io.h"
44 #include "quota.h"
45 #include "super.h"
46 #include "util.h"
47 #include "bmap.h"
48 #define CREATE_TRACE_POINTS
49 #include "trace_gfs2.h"
50
51 struct gfs2_glock_iter {
52 struct gfs2_sbd *sdp; /* incore superblock */
53 struct rhashtable_iter hti; /* rhashtable iterator */
54 struct gfs2_glock *gl; /* current glock struct */
55 loff_t last_pos; /* last position */
56 };
57
58 typedef void (*glock_examiner) (struct gfs2_glock * gl);
59
60 static void do_xmote(struct gfs2_glock *gl, struct gfs2_holder *gh, unsigned int target);
61
62 static struct dentry *gfs2_root;
63 static struct workqueue_struct *glock_workqueue;
64 struct workqueue_struct *gfs2_delete_workqueue;
65 static LIST_HEAD(lru_list);
66 static atomic_t lru_count = ATOMIC_INIT(0);
67 static DEFINE_SPINLOCK(lru_lock);
68
69 #define GFS2_GL_HASH_SHIFT 15
70 #define GFS2_GL_HASH_SIZE BIT(GFS2_GL_HASH_SHIFT)
71
72 static const struct rhashtable_params ht_parms = {
73 .nelem_hint = GFS2_GL_HASH_SIZE * 3 / 4,
74 .key_len = offsetofend(struct lm_lockname, ln_type),
75 .key_offset = offsetof(struct gfs2_glock, gl_name),
76 .head_offset = offsetof(struct gfs2_glock, gl_node),
77 };
78
79 static struct rhashtable gl_hash_table;
80
81 #define GLOCK_WAIT_TABLE_BITS 12
82 #define GLOCK_WAIT_TABLE_SIZE (1 << GLOCK_WAIT_TABLE_BITS)
83 static wait_queue_head_t glock_wait_table[GLOCK_WAIT_TABLE_SIZE] __cacheline_aligned;
84
85 struct wait_glock_queue {
86 struct lm_lockname *name;
87 wait_queue_entry_t wait;
88 };
89
glock_wake_function(wait_queue_entry_t * wait,unsigned int mode,int sync,void * key)90 static int glock_wake_function(wait_queue_entry_t *wait, unsigned int mode,
91 int sync, void *key)
92 {
93 struct wait_glock_queue *wait_glock =
94 container_of(wait, struct wait_glock_queue, wait);
95 struct lm_lockname *wait_name = wait_glock->name;
96 struct lm_lockname *wake_name = key;
97
98 if (wake_name->ln_sbd != wait_name->ln_sbd ||
99 wake_name->ln_number != wait_name->ln_number ||
100 wake_name->ln_type != wait_name->ln_type)
101 return 0;
102 return autoremove_wake_function(wait, mode, sync, key);
103 }
104
glock_waitqueue(struct lm_lockname * name)105 static wait_queue_head_t *glock_waitqueue(struct lm_lockname *name)
106 {
107 u32 hash = jhash2((u32 *)name, ht_parms.key_len / 4, 0);
108
109 return glock_wait_table + hash_32(hash, GLOCK_WAIT_TABLE_BITS);
110 }
111
112 /**
113 * wake_up_glock - Wake up waiters on a glock
114 * @gl: the glock
115 */
wake_up_glock(struct gfs2_glock * gl)116 static void wake_up_glock(struct gfs2_glock *gl)
117 {
118 wait_queue_head_t *wq = glock_waitqueue(&gl->gl_name);
119
120 if (waitqueue_active(wq))
121 __wake_up(wq, TASK_NORMAL, 1, &gl->gl_name);
122 }
123
gfs2_glock_dealloc(struct rcu_head * rcu)124 static void gfs2_glock_dealloc(struct rcu_head *rcu)
125 {
126 struct gfs2_glock *gl = container_of(rcu, struct gfs2_glock, gl_rcu);
127
128 kfree(gl->gl_lksb.sb_lvbptr);
129 if (gl->gl_ops->go_flags & GLOF_ASPACE)
130 kmem_cache_free(gfs2_glock_aspace_cachep, gl);
131 else
132 kmem_cache_free(gfs2_glock_cachep, gl);
133 }
134
135 /**
136 * glock_blocked_by_withdraw - determine if we can still use a glock
137 * @gl: the glock
138 *
139 * We need to allow some glocks to be enqueued, dequeued, promoted, and demoted
140 * when we're withdrawn. For example, to maintain metadata integrity, we should
141 * disallow the use of inode and rgrp glocks when withdrawn. Other glocks, like
142 * iopen or the transaction glocks may be safely used because none of their
143 * metadata goes through the journal. So in general, we should disallow all
144 * glocks that are journaled, and allow all the others. One exception is:
145 * we need to allow our active journal to be promoted and demoted so others
146 * may recover it and we can reacquire it when they're done.
147 */
glock_blocked_by_withdraw(struct gfs2_glock * gl)148 static bool glock_blocked_by_withdraw(struct gfs2_glock *gl)
149 {
150 struct gfs2_sbd *sdp = gl->gl_name.ln_sbd;
151
152 if (likely(!gfs2_withdrawn(sdp)))
153 return false;
154 if (gl->gl_ops->go_flags & GLOF_NONDISK)
155 return false;
156 if (!sdp->sd_jdesc ||
157 gl->gl_name.ln_number == sdp->sd_jdesc->jd_no_addr)
158 return false;
159 return true;
160 }
161
gfs2_glock_free(struct gfs2_glock * gl)162 void gfs2_glock_free(struct gfs2_glock *gl)
163 {
164 struct gfs2_sbd *sdp = gl->gl_name.ln_sbd;
165
166 gfs2_glock_assert_withdraw(gl, atomic_read(&gl->gl_revokes) == 0);
167 rhashtable_remove_fast(&gl_hash_table, &gl->gl_node, ht_parms);
168 smp_mb();
169 wake_up_glock(gl);
170 call_rcu(&gl->gl_rcu, gfs2_glock_dealloc);
171 if (atomic_dec_and_test(&sdp->sd_glock_disposal))
172 wake_up(&sdp->sd_glock_wait);
173 }
174
175 /**
176 * gfs2_glock_hold() - increment reference count on glock
177 * @gl: The glock to hold
178 *
179 */
180
gfs2_glock_hold(struct gfs2_glock * gl)181 void gfs2_glock_hold(struct gfs2_glock *gl)
182 {
183 GLOCK_BUG_ON(gl, __lockref_is_dead(&gl->gl_lockref));
184 lockref_get(&gl->gl_lockref);
185 }
186
187 /**
188 * demote_ok - Check to see if it's ok to unlock a glock
189 * @gl: the glock
190 *
191 * Returns: 1 if it's ok
192 */
193
demote_ok(const struct gfs2_glock * gl)194 static int demote_ok(const struct gfs2_glock *gl)
195 {
196 const struct gfs2_glock_operations *glops = gl->gl_ops;
197
198 if (gl->gl_state == LM_ST_UNLOCKED)
199 return 0;
200 if (!list_empty(&gl->gl_holders))
201 return 0;
202 if (glops->go_demote_ok)
203 return glops->go_demote_ok(gl);
204 return 1;
205 }
206
207
gfs2_glock_add_to_lru(struct gfs2_glock * gl)208 void gfs2_glock_add_to_lru(struct gfs2_glock *gl)
209 {
210 if (!(gl->gl_ops->go_flags & GLOF_LRU))
211 return;
212
213 spin_lock(&lru_lock);
214
215 list_del(&gl->gl_lru);
216 list_add_tail(&gl->gl_lru, &lru_list);
217
218 if (!test_bit(GLF_LRU, &gl->gl_flags)) {
219 set_bit(GLF_LRU, &gl->gl_flags);
220 atomic_inc(&lru_count);
221 }
222
223 spin_unlock(&lru_lock);
224 }
225
gfs2_glock_remove_from_lru(struct gfs2_glock * gl)226 static void gfs2_glock_remove_from_lru(struct gfs2_glock *gl)
227 {
228 if (!(gl->gl_ops->go_flags & GLOF_LRU))
229 return;
230
231 spin_lock(&lru_lock);
232 if (test_bit(GLF_LRU, &gl->gl_flags)) {
233 list_del_init(&gl->gl_lru);
234 atomic_dec(&lru_count);
235 clear_bit(GLF_LRU, &gl->gl_flags);
236 }
237 spin_unlock(&lru_lock);
238 }
239
240 /*
241 * Enqueue the glock on the work queue. Passes one glock reference on to the
242 * work queue.
243 */
__gfs2_glock_queue_work(struct gfs2_glock * gl,unsigned long delay)244 static void __gfs2_glock_queue_work(struct gfs2_glock *gl, unsigned long delay) {
245 if (!queue_delayed_work(glock_workqueue, &gl->gl_work, delay)) {
246 /*
247 * We are holding the lockref spinlock, and the work was still
248 * queued above. The queued work (glock_work_func) takes that
249 * spinlock before dropping its glock reference(s), so it
250 * cannot have dropped them in the meantime.
251 */
252 GLOCK_BUG_ON(gl, gl->gl_lockref.count < 2);
253 gl->gl_lockref.count--;
254 }
255 }
256
gfs2_glock_queue_work(struct gfs2_glock * gl,unsigned long delay)257 static void gfs2_glock_queue_work(struct gfs2_glock *gl, unsigned long delay) {
258 spin_lock(&gl->gl_lockref.lock);
259 __gfs2_glock_queue_work(gl, delay);
260 spin_unlock(&gl->gl_lockref.lock);
261 }
262
__gfs2_glock_put(struct gfs2_glock * gl)263 static void __gfs2_glock_put(struct gfs2_glock *gl)
264 {
265 struct gfs2_sbd *sdp = gl->gl_name.ln_sbd;
266 struct address_space *mapping = gfs2_glock2aspace(gl);
267
268 lockref_mark_dead(&gl->gl_lockref);
269
270 gfs2_glock_remove_from_lru(gl);
271 spin_unlock(&gl->gl_lockref.lock);
272 GLOCK_BUG_ON(gl, !list_empty(&gl->gl_holders));
273 if (mapping) {
274 truncate_inode_pages_final(mapping);
275 if (!gfs2_withdrawn(sdp))
276 GLOCK_BUG_ON(gl, mapping->nrpages ||
277 mapping->nrexceptional);
278 }
279 trace_gfs2_glock_put(gl);
280 sdp->sd_lockstruct.ls_ops->lm_put_lock(gl);
281 }
282
283 /*
284 * Cause the glock to be put in work queue context.
285 */
gfs2_glock_queue_put(struct gfs2_glock * gl)286 void gfs2_glock_queue_put(struct gfs2_glock *gl)
287 {
288 gfs2_glock_queue_work(gl, 0);
289 }
290
291 /**
292 * gfs2_glock_put() - Decrement reference count on glock
293 * @gl: The glock to put
294 *
295 */
296
gfs2_glock_put(struct gfs2_glock * gl)297 void gfs2_glock_put(struct gfs2_glock *gl)
298 {
299 if (lockref_put_or_lock(&gl->gl_lockref))
300 return;
301
302 __gfs2_glock_put(gl);
303 }
304
305 /**
306 * may_grant - check if its ok to grant a new lock
307 * @gl: The glock
308 * @gh: The lock request which we wish to grant
309 *
310 * Returns: true if its ok to grant the lock
311 */
312
may_grant(const struct gfs2_glock * gl,const struct gfs2_holder * gh)313 static inline int may_grant(const struct gfs2_glock *gl, const struct gfs2_holder *gh)
314 {
315 const struct gfs2_holder *gh_head = list_first_entry(&gl->gl_holders, const struct gfs2_holder, gh_list);
316 if ((gh->gh_state == LM_ST_EXCLUSIVE ||
317 gh_head->gh_state == LM_ST_EXCLUSIVE) && gh != gh_head)
318 return 0;
319 if (gl->gl_state == gh->gh_state)
320 return 1;
321 if (gh->gh_flags & GL_EXACT)
322 return 0;
323 if (gl->gl_state == LM_ST_EXCLUSIVE) {
324 if (gh->gh_state == LM_ST_SHARED && gh_head->gh_state == LM_ST_SHARED)
325 return 1;
326 if (gh->gh_state == LM_ST_DEFERRED && gh_head->gh_state == LM_ST_DEFERRED)
327 return 1;
328 }
329 if (gl->gl_state != LM_ST_UNLOCKED && (gh->gh_flags & LM_FLAG_ANY))
330 return 1;
331 return 0;
332 }
333
gfs2_holder_wake(struct gfs2_holder * gh)334 static void gfs2_holder_wake(struct gfs2_holder *gh)
335 {
336 clear_bit(HIF_WAIT, &gh->gh_iflags);
337 smp_mb__after_atomic();
338 wake_up_bit(&gh->gh_iflags, HIF_WAIT);
339 if (gh->gh_flags & GL_ASYNC) {
340 struct gfs2_sbd *sdp = gh->gh_gl->gl_name.ln_sbd;
341
342 wake_up(&sdp->sd_async_glock_wait);
343 }
344 }
345
346 /**
347 * do_error - Something unexpected has happened during a lock request
348 *
349 */
350
do_error(struct gfs2_glock * gl,const int ret)351 static void do_error(struct gfs2_glock *gl, const int ret)
352 {
353 struct gfs2_holder *gh, *tmp;
354
355 list_for_each_entry_safe(gh, tmp, &gl->gl_holders, gh_list) {
356 if (test_bit(HIF_HOLDER, &gh->gh_iflags))
357 continue;
358 if (ret & LM_OUT_ERROR)
359 gh->gh_error = -EIO;
360 else if (gh->gh_flags & (LM_FLAG_TRY | LM_FLAG_TRY_1CB))
361 gh->gh_error = GLR_TRYFAILED;
362 else
363 continue;
364 list_del_init(&gh->gh_list);
365 trace_gfs2_glock_queue(gh, 0);
366 gfs2_holder_wake(gh);
367 }
368 }
369
370 /**
371 * do_promote - promote as many requests as possible on the current queue
372 * @gl: The glock
373 *
374 * Returns: 1 if there is a blocked holder at the head of the list, or 2
375 * if a type specific operation is underway.
376 */
377
do_promote(struct gfs2_glock * gl)378 static int do_promote(struct gfs2_glock *gl)
379 __releases(&gl->gl_lockref.lock)
380 __acquires(&gl->gl_lockref.lock)
381 {
382 const struct gfs2_glock_operations *glops = gl->gl_ops;
383 struct gfs2_holder *gh, *tmp;
384 int ret;
385
386 restart:
387 list_for_each_entry_safe(gh, tmp, &gl->gl_holders, gh_list) {
388 if (test_bit(HIF_HOLDER, &gh->gh_iflags))
389 continue;
390 if (may_grant(gl, gh)) {
391 if (gh->gh_list.prev == &gl->gl_holders &&
392 glops->go_lock) {
393 spin_unlock(&gl->gl_lockref.lock);
394 /* FIXME: eliminate this eventually */
395 ret = glops->go_lock(gh);
396 spin_lock(&gl->gl_lockref.lock);
397 if (ret) {
398 if (ret == 1)
399 return 2;
400 gh->gh_error = ret;
401 list_del_init(&gh->gh_list);
402 trace_gfs2_glock_queue(gh, 0);
403 gfs2_holder_wake(gh);
404 goto restart;
405 }
406 set_bit(HIF_HOLDER, &gh->gh_iflags);
407 trace_gfs2_promote(gh, 1);
408 gfs2_holder_wake(gh);
409 goto restart;
410 }
411 set_bit(HIF_HOLDER, &gh->gh_iflags);
412 trace_gfs2_promote(gh, 0);
413 gfs2_holder_wake(gh);
414 continue;
415 }
416 if (gh->gh_list.prev == &gl->gl_holders)
417 return 1;
418 do_error(gl, 0);
419 break;
420 }
421 return 0;
422 }
423
424 /**
425 * find_first_waiter - find the first gh that's waiting for the glock
426 * @gl: the glock
427 */
428
find_first_waiter(const struct gfs2_glock * gl)429 static inline struct gfs2_holder *find_first_waiter(const struct gfs2_glock *gl)
430 {
431 struct gfs2_holder *gh;
432
433 list_for_each_entry(gh, &gl->gl_holders, gh_list) {
434 if (!test_bit(HIF_HOLDER, &gh->gh_iflags))
435 return gh;
436 }
437 return NULL;
438 }
439
440 /**
441 * state_change - record that the glock is now in a different state
442 * @gl: the glock
443 * @new_state the new state
444 *
445 */
446
state_change(struct gfs2_glock * gl,unsigned int new_state)447 static void state_change(struct gfs2_glock *gl, unsigned int new_state)
448 {
449 int held1, held2;
450
451 held1 = (gl->gl_state != LM_ST_UNLOCKED);
452 held2 = (new_state != LM_ST_UNLOCKED);
453
454 if (held1 != held2) {
455 GLOCK_BUG_ON(gl, __lockref_is_dead(&gl->gl_lockref));
456 if (held2)
457 gl->gl_lockref.count++;
458 else
459 gl->gl_lockref.count--;
460 }
461 if (new_state != gl->gl_target)
462 /* shorten our minimum hold time */
463 gl->gl_hold_time = max(gl->gl_hold_time - GL_GLOCK_HOLD_DECR,
464 GL_GLOCK_MIN_HOLD);
465 gl->gl_state = new_state;
466 gl->gl_tchange = jiffies;
467 }
468
gfs2_set_demote(struct gfs2_glock * gl)469 static void gfs2_set_demote(struct gfs2_glock *gl)
470 {
471 struct gfs2_sbd *sdp = gl->gl_name.ln_sbd;
472
473 set_bit(GLF_DEMOTE, &gl->gl_flags);
474 smp_mb();
475 wake_up(&sdp->sd_async_glock_wait);
476 }
477
gfs2_demote_wake(struct gfs2_glock * gl)478 static void gfs2_demote_wake(struct gfs2_glock *gl)
479 {
480 gl->gl_demote_state = LM_ST_EXCLUSIVE;
481 clear_bit(GLF_DEMOTE, &gl->gl_flags);
482 smp_mb__after_atomic();
483 wake_up_bit(&gl->gl_flags, GLF_DEMOTE);
484 }
485
486 /**
487 * finish_xmote - The DLM has replied to one of our lock requests
488 * @gl: The glock
489 * @ret: The status from the DLM
490 *
491 */
492
finish_xmote(struct gfs2_glock * gl,unsigned int ret)493 static void finish_xmote(struct gfs2_glock *gl, unsigned int ret)
494 {
495 const struct gfs2_glock_operations *glops = gl->gl_ops;
496 struct gfs2_holder *gh;
497 unsigned state = ret & LM_OUT_ST_MASK;
498 int rv;
499
500 spin_lock(&gl->gl_lockref.lock);
501 trace_gfs2_glock_state_change(gl, state);
502 state_change(gl, state);
503 gh = find_first_waiter(gl);
504
505 /* Demote to UN request arrived during demote to SH or DF */
506 if (test_bit(GLF_DEMOTE_IN_PROGRESS, &gl->gl_flags) &&
507 state != LM_ST_UNLOCKED && gl->gl_demote_state == LM_ST_UNLOCKED)
508 gl->gl_target = LM_ST_UNLOCKED;
509
510 /* Check for state != intended state */
511 if (unlikely(state != gl->gl_target)) {
512 if (gh && !test_bit(GLF_DEMOTE_IN_PROGRESS, &gl->gl_flags)) {
513 /* move to back of queue and try next entry */
514 if (ret & LM_OUT_CANCELED) {
515 if ((gh->gh_flags & LM_FLAG_PRIORITY) == 0)
516 list_move_tail(&gh->gh_list, &gl->gl_holders);
517 gh = find_first_waiter(gl);
518 gl->gl_target = gh->gh_state;
519 goto retry;
520 }
521 /* Some error or failed "try lock" - report it */
522 if ((ret & LM_OUT_ERROR) ||
523 (gh->gh_flags & (LM_FLAG_TRY | LM_FLAG_TRY_1CB))) {
524 gl->gl_target = gl->gl_state;
525 do_error(gl, ret);
526 goto out;
527 }
528 }
529 switch(state) {
530 /* Unlocked due to conversion deadlock, try again */
531 case LM_ST_UNLOCKED:
532 retry:
533 do_xmote(gl, gh, gl->gl_target);
534 break;
535 /* Conversion fails, unlock and try again */
536 case LM_ST_SHARED:
537 case LM_ST_DEFERRED:
538 do_xmote(gl, gh, LM_ST_UNLOCKED);
539 break;
540 default: /* Everything else */
541 fs_err(gl->gl_name.ln_sbd, "wanted %u got %u\n",
542 gl->gl_target, state);
543 GLOCK_BUG_ON(gl, 1);
544 }
545 spin_unlock(&gl->gl_lockref.lock);
546 return;
547 }
548
549 /* Fast path - we got what we asked for */
550 if (test_and_clear_bit(GLF_DEMOTE_IN_PROGRESS, &gl->gl_flags))
551 gfs2_demote_wake(gl);
552 if (state != LM_ST_UNLOCKED) {
553 if (glops->go_xmote_bh) {
554 spin_unlock(&gl->gl_lockref.lock);
555 rv = glops->go_xmote_bh(gl, gh);
556 spin_lock(&gl->gl_lockref.lock);
557 if (rv) {
558 do_error(gl, rv);
559 goto out;
560 }
561 }
562 rv = do_promote(gl);
563 if (rv == 2)
564 goto out_locked;
565 }
566 out:
567 clear_bit(GLF_LOCK, &gl->gl_flags);
568 out_locked:
569 spin_unlock(&gl->gl_lockref.lock);
570 }
571
572 /**
573 * do_xmote - Calls the DLM to change the state of a lock
574 * @gl: The lock state
575 * @gh: The holder (only for promotes)
576 * @target: The target lock state
577 *
578 */
579
do_xmote(struct gfs2_glock * gl,struct gfs2_holder * gh,unsigned int target)580 static void do_xmote(struct gfs2_glock *gl, struct gfs2_holder *gh, unsigned int target)
581 __releases(&gl->gl_lockref.lock)
582 __acquires(&gl->gl_lockref.lock)
583 {
584 const struct gfs2_glock_operations *glops = gl->gl_ops;
585 struct gfs2_sbd *sdp = gl->gl_name.ln_sbd;
586 unsigned int lck_flags = (unsigned int)(gh ? gh->gh_flags : 0);
587 int ret;
588
589 if (target != LM_ST_UNLOCKED && glock_blocked_by_withdraw(gl) &&
590 gh && !(gh->gh_flags & LM_FLAG_NOEXP))
591 return;
592 lck_flags &= (LM_FLAG_TRY | LM_FLAG_TRY_1CB | LM_FLAG_NOEXP |
593 LM_FLAG_PRIORITY);
594 GLOCK_BUG_ON(gl, gl->gl_state == target);
595 GLOCK_BUG_ON(gl, gl->gl_state == gl->gl_target);
596 if ((target == LM_ST_UNLOCKED || target == LM_ST_DEFERRED) &&
597 glops->go_inval) {
598 /*
599 * If another process is already doing the invalidate, let that
600 * finish first. The glock state machine will get back to this
601 * holder again later.
602 */
603 if (test_and_set_bit(GLF_INVALIDATE_IN_PROGRESS,
604 &gl->gl_flags))
605 return;
606 do_error(gl, 0); /* Fail queued try locks */
607 }
608 gl->gl_req = target;
609 set_bit(GLF_BLOCKING, &gl->gl_flags);
610 if ((gl->gl_req == LM_ST_UNLOCKED) ||
611 (gl->gl_state == LM_ST_EXCLUSIVE) ||
612 (lck_flags & (LM_FLAG_TRY|LM_FLAG_TRY_1CB)))
613 clear_bit(GLF_BLOCKING, &gl->gl_flags);
614 spin_unlock(&gl->gl_lockref.lock);
615 if (glops->go_sync) {
616 ret = glops->go_sync(gl);
617 /* If we had a problem syncing (due to io errors or whatever,
618 * we should not invalidate the metadata or tell dlm to
619 * release the glock to other nodes.
620 */
621 if (ret) {
622 if (cmpxchg(&sdp->sd_log_error, 0, ret)) {
623 fs_err(sdp, "Error %d syncing glock \n", ret);
624 gfs2_dump_glock(NULL, gl, true);
625 }
626 goto skip_inval;
627 }
628 }
629 if (test_bit(GLF_INVALIDATE_IN_PROGRESS, &gl->gl_flags)) {
630 /*
631 * The call to go_sync should have cleared out the ail list.
632 * If there are still items, we have a problem. We ought to
633 * withdraw, but we can't because the withdraw code also uses
634 * glocks. Warn about the error, dump the glock, then fall
635 * through and wait for logd to do the withdraw for us.
636 */
637 if ((atomic_read(&gl->gl_ail_count) != 0) &&
638 (!cmpxchg(&sdp->sd_log_error, 0, -EIO))) {
639 gfs2_glock_assert_warn(gl,
640 !atomic_read(&gl->gl_ail_count));
641 gfs2_dump_glock(NULL, gl, true);
642 }
643 glops->go_inval(gl, target == LM_ST_DEFERRED ? 0 : DIO_METADATA);
644 clear_bit(GLF_INVALIDATE_IN_PROGRESS, &gl->gl_flags);
645 }
646
647 skip_inval:
648 gfs2_glock_hold(gl);
649 /*
650 * Check for an error encountered since we called go_sync and go_inval.
651 * If so, we can't withdraw from the glock code because the withdraw
652 * code itself uses glocks (see function signal_our_withdraw) to
653 * change the mount to read-only. Most importantly, we must not call
654 * dlm to unlock the glock until the journal is in a known good state
655 * (after journal replay) otherwise other nodes may use the object
656 * (rgrp or dinode) and then later, journal replay will corrupt the
657 * file system. The best we can do here is wait for the logd daemon
658 * to see sd_log_error and withdraw, and in the meantime, requeue the
659 * work for later.
660 *
661 * However, if we're just unlocking the lock (say, for unmount, when
662 * gfs2_gl_hash_clear calls clear_glock) and recovery is complete
663 * then it's okay to tell dlm to unlock it.
664 */
665 if (unlikely(sdp->sd_log_error && !gfs2_withdrawn(sdp)))
666 gfs2_withdraw_delayed(sdp);
667 if (glock_blocked_by_withdraw(gl)) {
668 if (target != LM_ST_UNLOCKED ||
669 test_bit(SDF_WITHDRAW_RECOVERY, &sdp->sd_flags)) {
670 gfs2_glock_queue_work(gl, GL_GLOCK_DFT_HOLD);
671 goto out;
672 }
673 }
674
675 if (sdp->sd_lockstruct.ls_ops->lm_lock) {
676 /* lock_dlm */
677 ret = sdp->sd_lockstruct.ls_ops->lm_lock(gl, target, lck_flags);
678 if (ret == -EINVAL && gl->gl_target == LM_ST_UNLOCKED &&
679 target == LM_ST_UNLOCKED &&
680 test_bit(SDF_SKIP_DLM_UNLOCK, &sdp->sd_flags)) {
681 finish_xmote(gl, target);
682 gfs2_glock_queue_work(gl, 0);
683 } else if (ret) {
684 fs_err(sdp, "lm_lock ret %d\n", ret);
685 GLOCK_BUG_ON(gl, !gfs2_withdrawn(sdp));
686 }
687 } else { /* lock_nolock */
688 finish_xmote(gl, target);
689 gfs2_glock_queue_work(gl, 0);
690 }
691 out:
692 spin_lock(&gl->gl_lockref.lock);
693 }
694
695 /**
696 * find_first_holder - find the first "holder" gh
697 * @gl: the glock
698 */
699
find_first_holder(const struct gfs2_glock * gl)700 static inline struct gfs2_holder *find_first_holder(const struct gfs2_glock *gl)
701 {
702 struct gfs2_holder *gh;
703
704 if (!list_empty(&gl->gl_holders)) {
705 gh = list_first_entry(&gl->gl_holders, struct gfs2_holder, gh_list);
706 if (test_bit(HIF_HOLDER, &gh->gh_iflags))
707 return gh;
708 }
709 return NULL;
710 }
711
712 /**
713 * run_queue - do all outstanding tasks related to a glock
714 * @gl: The glock in question
715 * @nonblock: True if we must not block in run_queue
716 *
717 */
718
run_queue(struct gfs2_glock * gl,const int nonblock)719 static void run_queue(struct gfs2_glock *gl, const int nonblock)
720 __releases(&gl->gl_lockref.lock)
721 __acquires(&gl->gl_lockref.lock)
722 {
723 struct gfs2_holder *gh = NULL;
724 int ret;
725
726 if (test_and_set_bit(GLF_LOCK, &gl->gl_flags))
727 return;
728
729 GLOCK_BUG_ON(gl, test_bit(GLF_DEMOTE_IN_PROGRESS, &gl->gl_flags));
730
731 if (test_bit(GLF_DEMOTE, &gl->gl_flags) &&
732 gl->gl_demote_state != gl->gl_state) {
733 if (find_first_holder(gl))
734 goto out_unlock;
735 if (nonblock)
736 goto out_sched;
737 set_bit(GLF_DEMOTE_IN_PROGRESS, &gl->gl_flags);
738 GLOCK_BUG_ON(gl, gl->gl_demote_state == LM_ST_EXCLUSIVE);
739 gl->gl_target = gl->gl_demote_state;
740 } else {
741 if (test_bit(GLF_DEMOTE, &gl->gl_flags))
742 gfs2_demote_wake(gl);
743 ret = do_promote(gl);
744 if (ret == 0)
745 goto out_unlock;
746 if (ret == 2)
747 goto out;
748 gh = find_first_waiter(gl);
749 gl->gl_target = gh->gh_state;
750 if (!(gh->gh_flags & (LM_FLAG_TRY | LM_FLAG_TRY_1CB)))
751 do_error(gl, 0); /* Fail queued try locks */
752 }
753 do_xmote(gl, gh, gl->gl_target);
754 out:
755 return;
756
757 out_sched:
758 clear_bit(GLF_LOCK, &gl->gl_flags);
759 smp_mb__after_atomic();
760 gl->gl_lockref.count++;
761 __gfs2_glock_queue_work(gl, 0);
762 return;
763
764 out_unlock:
765 clear_bit(GLF_LOCK, &gl->gl_flags);
766 smp_mb__after_atomic();
767 return;
768 }
769
gfs2_inode_remember_delete(struct gfs2_glock * gl,u64 generation)770 void gfs2_inode_remember_delete(struct gfs2_glock *gl, u64 generation)
771 {
772 struct gfs2_inode_lvb *ri = (void *)gl->gl_lksb.sb_lvbptr;
773
774 if (ri->ri_magic == 0)
775 ri->ri_magic = cpu_to_be32(GFS2_MAGIC);
776 if (ri->ri_magic == cpu_to_be32(GFS2_MAGIC))
777 ri->ri_generation_deleted = cpu_to_be64(generation);
778 }
779
gfs2_inode_already_deleted(struct gfs2_glock * gl,u64 generation)780 bool gfs2_inode_already_deleted(struct gfs2_glock *gl, u64 generation)
781 {
782 struct gfs2_inode_lvb *ri = (void *)gl->gl_lksb.sb_lvbptr;
783
784 if (ri->ri_magic != cpu_to_be32(GFS2_MAGIC))
785 return false;
786 return generation <= be64_to_cpu(ri->ri_generation_deleted);
787 }
788
gfs2_glock_poke(struct gfs2_glock * gl)789 static void gfs2_glock_poke(struct gfs2_glock *gl)
790 {
791 int flags = LM_FLAG_TRY_1CB | LM_FLAG_ANY | GL_SKIP;
792 struct gfs2_holder gh;
793 int error;
794
795 gfs2_holder_init(gl, LM_ST_SHARED, flags, &gh);
796 error = gfs2_glock_nq(&gh);
797 if (!error)
798 gfs2_glock_dq(&gh);
799 gfs2_holder_uninit(&gh);
800 }
801
gfs2_try_evict(struct gfs2_glock * gl)802 static bool gfs2_try_evict(struct gfs2_glock *gl)
803 {
804 struct gfs2_inode *ip;
805 bool evicted = false;
806
807 /*
808 * If there is contention on the iopen glock and we have an inode, try
809 * to grab and release the inode so that it can be evicted. This will
810 * allow the remote node to go ahead and delete the inode without us
811 * having to do it, which will avoid rgrp glock thrashing.
812 *
813 * The remote node is likely still holding the corresponding inode
814 * glock, so it will run before we get to verify that the delete has
815 * happened below.
816 */
817 spin_lock(&gl->gl_lockref.lock);
818 ip = gl->gl_object;
819 if (ip && !igrab(&ip->i_inode))
820 ip = NULL;
821 spin_unlock(&gl->gl_lockref.lock);
822 if (ip) {
823 struct gfs2_glock *inode_gl = NULL;
824
825 gl->gl_no_formal_ino = ip->i_no_formal_ino;
826 set_bit(GIF_DEFERRED_DELETE, &ip->i_flags);
827 d_prune_aliases(&ip->i_inode);
828 iput(&ip->i_inode);
829
830 /* If the inode was evicted, gl->gl_object will now be NULL. */
831 spin_lock(&gl->gl_lockref.lock);
832 ip = gl->gl_object;
833 if (ip) {
834 inode_gl = ip->i_gl;
835 lockref_get(&inode_gl->gl_lockref);
836 clear_bit(GIF_DEFERRED_DELETE, &ip->i_flags);
837 }
838 spin_unlock(&gl->gl_lockref.lock);
839 if (inode_gl) {
840 gfs2_glock_poke(inode_gl);
841 gfs2_glock_put(inode_gl);
842 }
843 evicted = !ip;
844 }
845 return evicted;
846 }
847
delete_work_func(struct work_struct * work)848 static void delete_work_func(struct work_struct *work)
849 {
850 struct delayed_work *dwork = to_delayed_work(work);
851 struct gfs2_glock *gl = container_of(dwork, struct gfs2_glock, gl_delete);
852 struct gfs2_sbd *sdp = gl->gl_name.ln_sbd;
853 struct inode *inode;
854 u64 no_addr = gl->gl_name.ln_number;
855
856 spin_lock(&gl->gl_lockref.lock);
857 clear_bit(GLF_PENDING_DELETE, &gl->gl_flags);
858 spin_unlock(&gl->gl_lockref.lock);
859
860 /* If someone's using this glock to create a new dinode, the block must
861 have been freed by another node, then re-used, in which case our
862 iopen callback is too late after the fact. Ignore it. */
863 if (test_bit(GLF_INODE_CREATING, &gl->gl_flags))
864 goto out;
865
866 if (test_bit(GLF_DEMOTE, &gl->gl_flags)) {
867 /*
868 * If we can evict the inode, give the remote node trying to
869 * delete the inode some time before verifying that the delete
870 * has happened. Otherwise, if we cause contention on the inode glock
871 * immediately, the remote node will think that we still have
872 * the inode in use, and so it will give up waiting.
873 *
874 * If we can't evict the inode, signal to the remote node that
875 * the inode is still in use. We'll later try to delete the
876 * inode locally in gfs2_evict_inode.
877 *
878 * FIXME: We only need to verify that the remote node has
879 * deleted the inode because nodes before this remote delete
880 * rework won't cooperate. At a later time, when we no longer
881 * care about compatibility with such nodes, we can skip this
882 * step entirely.
883 */
884 if (gfs2_try_evict(gl)) {
885 if (gfs2_queue_delete_work(gl, 5 * HZ))
886 return;
887 }
888 goto out;
889 }
890
891 inode = gfs2_lookup_by_inum(sdp, no_addr, gl->gl_no_formal_ino,
892 GFS2_BLKST_UNLINKED);
893 if (!IS_ERR_OR_NULL(inode)) {
894 d_prune_aliases(inode);
895 iput(inode);
896 }
897 out:
898 gfs2_glock_put(gl);
899 }
900
glock_work_func(struct work_struct * work)901 static void glock_work_func(struct work_struct *work)
902 {
903 unsigned long delay = 0;
904 struct gfs2_glock *gl = container_of(work, struct gfs2_glock, gl_work.work);
905 unsigned int drop_refs = 1;
906
907 if (test_and_clear_bit(GLF_REPLY_PENDING, &gl->gl_flags)) {
908 finish_xmote(gl, gl->gl_reply);
909 drop_refs++;
910 }
911 spin_lock(&gl->gl_lockref.lock);
912 if (test_bit(GLF_PENDING_DEMOTE, &gl->gl_flags) &&
913 gl->gl_state != LM_ST_UNLOCKED &&
914 gl->gl_demote_state != LM_ST_EXCLUSIVE) {
915 unsigned long holdtime, now = jiffies;
916
917 holdtime = gl->gl_tchange + gl->gl_hold_time;
918 if (time_before(now, holdtime))
919 delay = holdtime - now;
920
921 if (!delay) {
922 clear_bit(GLF_PENDING_DEMOTE, &gl->gl_flags);
923 gfs2_set_demote(gl);
924 }
925 }
926 run_queue(gl, 0);
927 if (delay) {
928 /* Keep one glock reference for the work we requeue. */
929 drop_refs--;
930 if (gl->gl_name.ln_type != LM_TYPE_INODE)
931 delay = 0;
932 __gfs2_glock_queue_work(gl, delay);
933 }
934
935 /*
936 * Drop the remaining glock references manually here. (Mind that
937 * __gfs2_glock_queue_work depends on the lockref spinlock begin held
938 * here as well.)
939 */
940 gl->gl_lockref.count -= drop_refs;
941 if (!gl->gl_lockref.count) {
942 __gfs2_glock_put(gl);
943 return;
944 }
945 spin_unlock(&gl->gl_lockref.lock);
946 }
947
find_insert_glock(struct lm_lockname * name,struct gfs2_glock * new)948 static struct gfs2_glock *find_insert_glock(struct lm_lockname *name,
949 struct gfs2_glock *new)
950 {
951 struct wait_glock_queue wait;
952 wait_queue_head_t *wq = glock_waitqueue(name);
953 struct gfs2_glock *gl;
954
955 wait.name = name;
956 init_wait(&wait.wait);
957 wait.wait.func = glock_wake_function;
958
959 again:
960 prepare_to_wait(wq, &wait.wait, TASK_UNINTERRUPTIBLE);
961 rcu_read_lock();
962 if (new) {
963 gl = rhashtable_lookup_get_insert_fast(&gl_hash_table,
964 &new->gl_node, ht_parms);
965 if (IS_ERR(gl))
966 goto out;
967 } else {
968 gl = rhashtable_lookup_fast(&gl_hash_table,
969 name, ht_parms);
970 }
971 if (gl && !lockref_get_not_dead(&gl->gl_lockref)) {
972 rcu_read_unlock();
973 schedule();
974 goto again;
975 }
976 out:
977 rcu_read_unlock();
978 finish_wait(wq, &wait.wait);
979 return gl;
980 }
981
982 /**
983 * gfs2_glock_get() - Get a glock, or create one if one doesn't exist
984 * @sdp: The GFS2 superblock
985 * @number: the lock number
986 * @glops: The glock_operations to use
987 * @create: If 0, don't create the glock if it doesn't exist
988 * @glp: the glock is returned here
989 *
990 * This does not lock a glock, just finds/creates structures for one.
991 *
992 * Returns: errno
993 */
994
gfs2_glock_get(struct gfs2_sbd * sdp,u64 number,const struct gfs2_glock_operations * glops,int create,struct gfs2_glock ** glp)995 int gfs2_glock_get(struct gfs2_sbd *sdp, u64 number,
996 const struct gfs2_glock_operations *glops, int create,
997 struct gfs2_glock **glp)
998 {
999 struct super_block *s = sdp->sd_vfs;
1000 struct lm_lockname name = { .ln_number = number,
1001 .ln_type = glops->go_type,
1002 .ln_sbd = sdp };
1003 struct gfs2_glock *gl, *tmp;
1004 struct address_space *mapping;
1005 struct kmem_cache *cachep;
1006 int ret = 0;
1007
1008 gl = find_insert_glock(&name, NULL);
1009 if (gl) {
1010 *glp = gl;
1011 return 0;
1012 }
1013 if (!create)
1014 return -ENOENT;
1015
1016 if (glops->go_flags & GLOF_ASPACE)
1017 cachep = gfs2_glock_aspace_cachep;
1018 else
1019 cachep = gfs2_glock_cachep;
1020 gl = kmem_cache_alloc(cachep, GFP_NOFS);
1021 if (!gl)
1022 return -ENOMEM;
1023
1024 memset(&gl->gl_lksb, 0, sizeof(struct dlm_lksb));
1025
1026 if (glops->go_flags & GLOF_LVB) {
1027 gl->gl_lksb.sb_lvbptr = kzalloc(GDLM_LVB_SIZE, GFP_NOFS);
1028 if (!gl->gl_lksb.sb_lvbptr) {
1029 kmem_cache_free(cachep, gl);
1030 return -ENOMEM;
1031 }
1032 }
1033
1034 atomic_inc(&sdp->sd_glock_disposal);
1035 gl->gl_node.next = NULL;
1036 gl->gl_flags = 0;
1037 gl->gl_name = name;
1038 lockdep_set_subclass(&gl->gl_lockref.lock, glops->go_subclass);
1039 gl->gl_lockref.count = 1;
1040 gl->gl_state = LM_ST_UNLOCKED;
1041 gl->gl_target = LM_ST_UNLOCKED;
1042 gl->gl_demote_state = LM_ST_EXCLUSIVE;
1043 gl->gl_ops = glops;
1044 gl->gl_dstamp = 0;
1045 preempt_disable();
1046 /* We use the global stats to estimate the initial per-glock stats */
1047 gl->gl_stats = this_cpu_ptr(sdp->sd_lkstats)->lkstats[glops->go_type];
1048 preempt_enable();
1049 gl->gl_stats.stats[GFS2_LKS_DCOUNT] = 0;
1050 gl->gl_stats.stats[GFS2_LKS_QCOUNT] = 0;
1051 gl->gl_tchange = jiffies;
1052 gl->gl_object = NULL;
1053 gl->gl_hold_time = GL_GLOCK_DFT_HOLD;
1054 INIT_DELAYED_WORK(&gl->gl_work, glock_work_func);
1055 if (gl->gl_name.ln_type == LM_TYPE_IOPEN)
1056 INIT_DELAYED_WORK(&gl->gl_delete, delete_work_func);
1057
1058 mapping = gfs2_glock2aspace(gl);
1059 if (mapping) {
1060 mapping->a_ops = &gfs2_meta_aops;
1061 mapping->host = s->s_bdev->bd_inode;
1062 mapping->flags = 0;
1063 mapping_set_gfp_mask(mapping, GFP_NOFS);
1064 mapping->private_data = NULL;
1065 mapping->writeback_index = 0;
1066 }
1067
1068 tmp = find_insert_glock(&name, gl);
1069 if (!tmp) {
1070 *glp = gl;
1071 goto out;
1072 }
1073 if (IS_ERR(tmp)) {
1074 ret = PTR_ERR(tmp);
1075 goto out_free;
1076 }
1077 *glp = tmp;
1078
1079 out_free:
1080 kfree(gl->gl_lksb.sb_lvbptr);
1081 kmem_cache_free(cachep, gl);
1082 if (atomic_dec_and_test(&sdp->sd_glock_disposal))
1083 wake_up(&sdp->sd_glock_wait);
1084
1085 out:
1086 return ret;
1087 }
1088
1089 /**
1090 * gfs2_holder_init - initialize a struct gfs2_holder in the default way
1091 * @gl: the glock
1092 * @state: the state we're requesting
1093 * @flags: the modifier flags
1094 * @gh: the holder structure
1095 *
1096 */
1097
gfs2_holder_init(struct gfs2_glock * gl,unsigned int state,u16 flags,struct gfs2_holder * gh)1098 void gfs2_holder_init(struct gfs2_glock *gl, unsigned int state, u16 flags,
1099 struct gfs2_holder *gh)
1100 {
1101 INIT_LIST_HEAD(&gh->gh_list);
1102 gh->gh_gl = gl;
1103 gh->gh_ip = _RET_IP_;
1104 gh->gh_owner_pid = get_pid(task_pid(current));
1105 gh->gh_state = state;
1106 gh->gh_flags = flags;
1107 gh->gh_error = 0;
1108 gh->gh_iflags = 0;
1109 gfs2_glock_hold(gl);
1110 }
1111
1112 /**
1113 * gfs2_holder_reinit - reinitialize a struct gfs2_holder so we can requeue it
1114 * @state: the state we're requesting
1115 * @flags: the modifier flags
1116 * @gh: the holder structure
1117 *
1118 * Don't mess with the glock.
1119 *
1120 */
1121
gfs2_holder_reinit(unsigned int state,u16 flags,struct gfs2_holder * gh)1122 void gfs2_holder_reinit(unsigned int state, u16 flags, struct gfs2_holder *gh)
1123 {
1124 gh->gh_state = state;
1125 gh->gh_flags = flags;
1126 gh->gh_iflags = 0;
1127 gh->gh_ip = _RET_IP_;
1128 put_pid(gh->gh_owner_pid);
1129 gh->gh_owner_pid = get_pid(task_pid(current));
1130 }
1131
1132 /**
1133 * gfs2_holder_uninit - uninitialize a holder structure (drop glock reference)
1134 * @gh: the holder structure
1135 *
1136 */
1137
gfs2_holder_uninit(struct gfs2_holder * gh)1138 void gfs2_holder_uninit(struct gfs2_holder *gh)
1139 {
1140 put_pid(gh->gh_owner_pid);
1141 gfs2_glock_put(gh->gh_gl);
1142 gfs2_holder_mark_uninitialized(gh);
1143 gh->gh_ip = 0;
1144 }
1145
gfs2_glock_update_hold_time(struct gfs2_glock * gl,unsigned long start_time)1146 static void gfs2_glock_update_hold_time(struct gfs2_glock *gl,
1147 unsigned long start_time)
1148 {
1149 /* Have we waited longer that a second? */
1150 if (time_after(jiffies, start_time + HZ)) {
1151 /* Lengthen the minimum hold time. */
1152 gl->gl_hold_time = min(gl->gl_hold_time + GL_GLOCK_HOLD_INCR,
1153 GL_GLOCK_MAX_HOLD);
1154 }
1155 }
1156
1157 /**
1158 * gfs2_glock_wait - wait on a glock acquisition
1159 * @gh: the glock holder
1160 *
1161 * Returns: 0 on success
1162 */
1163
gfs2_glock_wait(struct gfs2_holder * gh)1164 int gfs2_glock_wait(struct gfs2_holder *gh)
1165 {
1166 unsigned long start_time = jiffies;
1167
1168 might_sleep();
1169 wait_on_bit(&gh->gh_iflags, HIF_WAIT, TASK_UNINTERRUPTIBLE);
1170 gfs2_glock_update_hold_time(gh->gh_gl, start_time);
1171 return gh->gh_error;
1172 }
1173
glocks_pending(unsigned int num_gh,struct gfs2_holder * ghs)1174 static int glocks_pending(unsigned int num_gh, struct gfs2_holder *ghs)
1175 {
1176 int i;
1177
1178 for (i = 0; i < num_gh; i++)
1179 if (test_bit(HIF_WAIT, &ghs[i].gh_iflags))
1180 return 1;
1181 return 0;
1182 }
1183
1184 /**
1185 * gfs2_glock_async_wait - wait on multiple asynchronous glock acquisitions
1186 * @num_gh: the number of holders in the array
1187 * @ghs: the glock holder array
1188 *
1189 * Returns: 0 on success, meaning all glocks have been granted and are held.
1190 * -ESTALE if the request timed out, meaning all glocks were released,
1191 * and the caller should retry the operation.
1192 */
1193
gfs2_glock_async_wait(unsigned int num_gh,struct gfs2_holder * ghs)1194 int gfs2_glock_async_wait(unsigned int num_gh, struct gfs2_holder *ghs)
1195 {
1196 struct gfs2_sbd *sdp = ghs[0].gh_gl->gl_name.ln_sbd;
1197 int i, ret = 0, timeout = 0;
1198 unsigned long start_time = jiffies;
1199 bool keep_waiting;
1200
1201 might_sleep();
1202 /*
1203 * Total up the (minimum hold time * 2) of all glocks and use that to
1204 * determine the max amount of time we should wait.
1205 */
1206 for (i = 0; i < num_gh; i++)
1207 timeout += ghs[i].gh_gl->gl_hold_time << 1;
1208
1209 wait_for_dlm:
1210 if (!wait_event_timeout(sdp->sd_async_glock_wait,
1211 !glocks_pending(num_gh, ghs), timeout))
1212 ret = -ESTALE; /* request timed out. */
1213
1214 /*
1215 * If dlm granted all our requests, we need to adjust the glock
1216 * minimum hold time values according to how long we waited.
1217 *
1218 * If our request timed out, we need to repeatedly release any held
1219 * glocks we acquired thus far to allow dlm to acquire the remaining
1220 * glocks without deadlocking. We cannot currently cancel outstanding
1221 * glock acquisitions.
1222 *
1223 * The HIF_WAIT bit tells us which requests still need a response from
1224 * dlm.
1225 *
1226 * If dlm sent us any errors, we return the first error we find.
1227 */
1228 keep_waiting = false;
1229 for (i = 0; i < num_gh; i++) {
1230 /* Skip holders we have already dequeued below. */
1231 if (!gfs2_holder_queued(&ghs[i]))
1232 continue;
1233 /* Skip holders with a pending DLM response. */
1234 if (test_bit(HIF_WAIT, &ghs[i].gh_iflags)) {
1235 keep_waiting = true;
1236 continue;
1237 }
1238
1239 if (test_bit(HIF_HOLDER, &ghs[i].gh_iflags)) {
1240 if (ret == -ESTALE)
1241 gfs2_glock_dq(&ghs[i]);
1242 else
1243 gfs2_glock_update_hold_time(ghs[i].gh_gl,
1244 start_time);
1245 }
1246 if (!ret)
1247 ret = ghs[i].gh_error;
1248 }
1249
1250 if (keep_waiting)
1251 goto wait_for_dlm;
1252
1253 /*
1254 * At this point, we've either acquired all locks or released them all.
1255 */
1256 return ret;
1257 }
1258
1259 /**
1260 * handle_callback - process a demote request
1261 * @gl: the glock
1262 * @state: the state the caller wants us to change to
1263 *
1264 * There are only two requests that we are going to see in actual
1265 * practise: LM_ST_SHARED and LM_ST_UNLOCKED
1266 */
1267
handle_callback(struct gfs2_glock * gl,unsigned int state,unsigned long delay,bool remote)1268 static void handle_callback(struct gfs2_glock *gl, unsigned int state,
1269 unsigned long delay, bool remote)
1270 {
1271 if (delay)
1272 set_bit(GLF_PENDING_DEMOTE, &gl->gl_flags);
1273 else
1274 gfs2_set_demote(gl);
1275 if (gl->gl_demote_state == LM_ST_EXCLUSIVE) {
1276 gl->gl_demote_state = state;
1277 gl->gl_demote_time = jiffies;
1278 } else if (gl->gl_demote_state != LM_ST_UNLOCKED &&
1279 gl->gl_demote_state != state) {
1280 gl->gl_demote_state = LM_ST_UNLOCKED;
1281 }
1282 if (gl->gl_ops->go_callback)
1283 gl->gl_ops->go_callback(gl, remote);
1284 trace_gfs2_demote_rq(gl, remote);
1285 }
1286
gfs2_print_dbg(struct seq_file * seq,const char * fmt,...)1287 void gfs2_print_dbg(struct seq_file *seq, const char *fmt, ...)
1288 {
1289 struct va_format vaf;
1290 va_list args;
1291
1292 va_start(args, fmt);
1293
1294 if (seq) {
1295 seq_vprintf(seq, fmt, args);
1296 } else {
1297 vaf.fmt = fmt;
1298 vaf.va = &args;
1299
1300 pr_err("%pV", &vaf);
1301 }
1302
1303 va_end(args);
1304 }
1305
1306 /**
1307 * add_to_queue - Add a holder to the wait queue (but look for recursion)
1308 * @gh: the holder structure to add
1309 *
1310 * Eventually we should move the recursive locking trap to a
1311 * debugging option or something like that. This is the fast
1312 * path and needs to have the minimum number of distractions.
1313 *
1314 */
1315
add_to_queue(struct gfs2_holder * gh)1316 static inline void add_to_queue(struct gfs2_holder *gh)
1317 __releases(&gl->gl_lockref.lock)
1318 __acquires(&gl->gl_lockref.lock)
1319 {
1320 struct gfs2_glock *gl = gh->gh_gl;
1321 struct gfs2_sbd *sdp = gl->gl_name.ln_sbd;
1322 struct list_head *insert_pt = NULL;
1323 struct gfs2_holder *gh2;
1324 int try_futile = 0;
1325
1326 GLOCK_BUG_ON(gl, gh->gh_owner_pid == NULL);
1327 if (test_and_set_bit(HIF_WAIT, &gh->gh_iflags))
1328 GLOCK_BUG_ON(gl, true);
1329
1330 if (gh->gh_flags & (LM_FLAG_TRY | LM_FLAG_TRY_1CB)) {
1331 if (test_bit(GLF_LOCK, &gl->gl_flags))
1332 try_futile = !may_grant(gl, gh);
1333 if (test_bit(GLF_INVALIDATE_IN_PROGRESS, &gl->gl_flags))
1334 goto fail;
1335 }
1336
1337 list_for_each_entry(gh2, &gl->gl_holders, gh_list) {
1338 if (unlikely(gh2->gh_owner_pid == gh->gh_owner_pid &&
1339 (gh->gh_gl->gl_ops->go_type != LM_TYPE_FLOCK)))
1340 goto trap_recursive;
1341 if (try_futile &&
1342 !(gh2->gh_flags & (LM_FLAG_TRY | LM_FLAG_TRY_1CB))) {
1343 fail:
1344 gh->gh_error = GLR_TRYFAILED;
1345 gfs2_holder_wake(gh);
1346 return;
1347 }
1348 if (test_bit(HIF_HOLDER, &gh2->gh_iflags))
1349 continue;
1350 if (unlikely((gh->gh_flags & LM_FLAG_PRIORITY) && !insert_pt))
1351 insert_pt = &gh2->gh_list;
1352 }
1353 trace_gfs2_glock_queue(gh, 1);
1354 gfs2_glstats_inc(gl, GFS2_LKS_QCOUNT);
1355 gfs2_sbstats_inc(gl, GFS2_LKS_QCOUNT);
1356 if (likely(insert_pt == NULL)) {
1357 list_add_tail(&gh->gh_list, &gl->gl_holders);
1358 if (unlikely(gh->gh_flags & LM_FLAG_PRIORITY))
1359 goto do_cancel;
1360 return;
1361 }
1362 list_add_tail(&gh->gh_list, insert_pt);
1363 do_cancel:
1364 gh = list_first_entry(&gl->gl_holders, struct gfs2_holder, gh_list);
1365 if (!(gh->gh_flags & LM_FLAG_PRIORITY)) {
1366 spin_unlock(&gl->gl_lockref.lock);
1367 if (sdp->sd_lockstruct.ls_ops->lm_cancel)
1368 sdp->sd_lockstruct.ls_ops->lm_cancel(gl);
1369 spin_lock(&gl->gl_lockref.lock);
1370 }
1371 return;
1372
1373 trap_recursive:
1374 fs_err(sdp, "original: %pSR\n", (void *)gh2->gh_ip);
1375 fs_err(sdp, "pid: %d\n", pid_nr(gh2->gh_owner_pid));
1376 fs_err(sdp, "lock type: %d req lock state : %d\n",
1377 gh2->gh_gl->gl_name.ln_type, gh2->gh_state);
1378 fs_err(sdp, "new: %pSR\n", (void *)gh->gh_ip);
1379 fs_err(sdp, "pid: %d\n", pid_nr(gh->gh_owner_pid));
1380 fs_err(sdp, "lock type: %d req lock state : %d\n",
1381 gh->gh_gl->gl_name.ln_type, gh->gh_state);
1382 gfs2_dump_glock(NULL, gl, true);
1383 BUG();
1384 }
1385
1386 /**
1387 * gfs2_glock_nq - enqueue a struct gfs2_holder onto a glock (acquire a glock)
1388 * @gh: the holder structure
1389 *
1390 * if (gh->gh_flags & GL_ASYNC), this never returns an error
1391 *
1392 * Returns: 0, GLR_TRYFAILED, or errno on failure
1393 */
1394
gfs2_glock_nq(struct gfs2_holder * gh)1395 int gfs2_glock_nq(struct gfs2_holder *gh)
1396 {
1397 struct gfs2_glock *gl = gh->gh_gl;
1398 int error = 0;
1399
1400 if (glock_blocked_by_withdraw(gl) && !(gh->gh_flags & LM_FLAG_NOEXP))
1401 return -EIO;
1402
1403 if (test_bit(GLF_LRU, &gl->gl_flags))
1404 gfs2_glock_remove_from_lru(gl);
1405
1406 spin_lock(&gl->gl_lockref.lock);
1407 add_to_queue(gh);
1408 if (unlikely((LM_FLAG_NOEXP & gh->gh_flags) &&
1409 test_and_clear_bit(GLF_FROZEN, &gl->gl_flags))) {
1410 set_bit(GLF_REPLY_PENDING, &gl->gl_flags);
1411 gl->gl_lockref.count++;
1412 __gfs2_glock_queue_work(gl, 0);
1413 }
1414 run_queue(gl, 1);
1415 spin_unlock(&gl->gl_lockref.lock);
1416
1417 if (!(gh->gh_flags & GL_ASYNC))
1418 error = gfs2_glock_wait(gh);
1419
1420 return error;
1421 }
1422
1423 /**
1424 * gfs2_glock_poll - poll to see if an async request has been completed
1425 * @gh: the holder
1426 *
1427 * Returns: 1 if the request is ready to be gfs2_glock_wait()ed on
1428 */
1429
gfs2_glock_poll(struct gfs2_holder * gh)1430 int gfs2_glock_poll(struct gfs2_holder *gh)
1431 {
1432 return test_bit(HIF_WAIT, &gh->gh_iflags) ? 0 : 1;
1433 }
1434
1435 /**
1436 * gfs2_glock_dq - dequeue a struct gfs2_holder from a glock (release a glock)
1437 * @gh: the glock holder
1438 *
1439 */
1440
gfs2_glock_dq(struct gfs2_holder * gh)1441 void gfs2_glock_dq(struct gfs2_holder *gh)
1442 {
1443 struct gfs2_glock *gl = gh->gh_gl;
1444 struct gfs2_sbd *sdp = gl->gl_name.ln_sbd;
1445 unsigned delay = 0;
1446 int fast_path = 0;
1447
1448 spin_lock(&gl->gl_lockref.lock);
1449 /*
1450 * If we're in the process of file system withdraw, we cannot just
1451 * dequeue any glocks until our journal is recovered, lest we
1452 * introduce file system corruption. We need two exceptions to this
1453 * rule: We need to allow unlocking of nondisk glocks and the glock
1454 * for our own journal that needs recovery.
1455 */
1456 if (test_bit(SDF_WITHDRAW_RECOVERY, &sdp->sd_flags) &&
1457 glock_blocked_by_withdraw(gl) &&
1458 gh->gh_gl != sdp->sd_jinode_gl) {
1459 sdp->sd_glock_dqs_held++;
1460 might_sleep();
1461 wait_on_bit(&sdp->sd_flags, SDF_WITHDRAW_RECOVERY,
1462 TASK_UNINTERRUPTIBLE);
1463 }
1464 if (gh->gh_flags & GL_NOCACHE)
1465 handle_callback(gl, LM_ST_UNLOCKED, 0, false);
1466
1467 list_del_init(&gh->gh_list);
1468 clear_bit(HIF_HOLDER, &gh->gh_iflags);
1469 if (find_first_holder(gl) == NULL) {
1470 if (list_empty(&gl->gl_holders) &&
1471 !test_bit(GLF_PENDING_DEMOTE, &gl->gl_flags) &&
1472 !test_bit(GLF_DEMOTE, &gl->gl_flags))
1473 fast_path = 1;
1474 }
1475 if (!test_bit(GLF_LFLUSH, &gl->gl_flags) && demote_ok(gl))
1476 gfs2_glock_add_to_lru(gl);
1477
1478 trace_gfs2_glock_queue(gh, 0);
1479 if (unlikely(!fast_path)) {
1480 gl->gl_lockref.count++;
1481 if (test_bit(GLF_PENDING_DEMOTE, &gl->gl_flags) &&
1482 !test_bit(GLF_DEMOTE, &gl->gl_flags) &&
1483 gl->gl_name.ln_type == LM_TYPE_INODE)
1484 delay = gl->gl_hold_time;
1485 __gfs2_glock_queue_work(gl, delay);
1486 }
1487 spin_unlock(&gl->gl_lockref.lock);
1488 }
1489
gfs2_glock_dq_wait(struct gfs2_holder * gh)1490 void gfs2_glock_dq_wait(struct gfs2_holder *gh)
1491 {
1492 struct gfs2_glock *gl = gh->gh_gl;
1493 gfs2_glock_dq(gh);
1494 might_sleep();
1495 wait_on_bit(&gl->gl_flags, GLF_DEMOTE, TASK_UNINTERRUPTIBLE);
1496 }
1497
1498 /**
1499 * gfs2_glock_dq_uninit - dequeue a holder from a glock and initialize it
1500 * @gh: the holder structure
1501 *
1502 */
1503
gfs2_glock_dq_uninit(struct gfs2_holder * gh)1504 void gfs2_glock_dq_uninit(struct gfs2_holder *gh)
1505 {
1506 gfs2_glock_dq(gh);
1507 gfs2_holder_uninit(gh);
1508 }
1509
1510 /**
1511 * gfs2_glock_nq_num - acquire a glock based on lock number
1512 * @sdp: the filesystem
1513 * @number: the lock number
1514 * @glops: the glock operations for the type of glock
1515 * @state: the state to acquire the glock in
1516 * @flags: modifier flags for the acquisition
1517 * @gh: the struct gfs2_holder
1518 *
1519 * Returns: errno
1520 */
1521
gfs2_glock_nq_num(struct gfs2_sbd * sdp,u64 number,const struct gfs2_glock_operations * glops,unsigned int state,u16 flags,struct gfs2_holder * gh)1522 int gfs2_glock_nq_num(struct gfs2_sbd *sdp, u64 number,
1523 const struct gfs2_glock_operations *glops,
1524 unsigned int state, u16 flags, struct gfs2_holder *gh)
1525 {
1526 struct gfs2_glock *gl;
1527 int error;
1528
1529 error = gfs2_glock_get(sdp, number, glops, CREATE, &gl);
1530 if (!error) {
1531 error = gfs2_glock_nq_init(gl, state, flags, gh);
1532 gfs2_glock_put(gl);
1533 }
1534
1535 return error;
1536 }
1537
1538 /**
1539 * glock_compare - Compare two struct gfs2_glock structures for sorting
1540 * @arg_a: the first structure
1541 * @arg_b: the second structure
1542 *
1543 */
1544
glock_compare(const void * arg_a,const void * arg_b)1545 static int glock_compare(const void *arg_a, const void *arg_b)
1546 {
1547 const struct gfs2_holder *gh_a = *(const struct gfs2_holder **)arg_a;
1548 const struct gfs2_holder *gh_b = *(const struct gfs2_holder **)arg_b;
1549 const struct lm_lockname *a = &gh_a->gh_gl->gl_name;
1550 const struct lm_lockname *b = &gh_b->gh_gl->gl_name;
1551
1552 if (a->ln_number > b->ln_number)
1553 return 1;
1554 if (a->ln_number < b->ln_number)
1555 return -1;
1556 BUG_ON(gh_a->gh_gl->gl_ops->go_type == gh_b->gh_gl->gl_ops->go_type);
1557 return 0;
1558 }
1559
1560 /**
1561 * nq_m_sync - synchonously acquire more than one glock in deadlock free order
1562 * @num_gh: the number of structures
1563 * @ghs: an array of struct gfs2_holder structures
1564 *
1565 * Returns: 0 on success (all glocks acquired),
1566 * errno on failure (no glocks acquired)
1567 */
1568
nq_m_sync(unsigned int num_gh,struct gfs2_holder * ghs,struct gfs2_holder ** p)1569 static int nq_m_sync(unsigned int num_gh, struct gfs2_holder *ghs,
1570 struct gfs2_holder **p)
1571 {
1572 unsigned int x;
1573 int error = 0;
1574
1575 for (x = 0; x < num_gh; x++)
1576 p[x] = &ghs[x];
1577
1578 sort(p, num_gh, sizeof(struct gfs2_holder *), glock_compare, NULL);
1579
1580 for (x = 0; x < num_gh; x++) {
1581 p[x]->gh_flags &= ~(LM_FLAG_TRY | GL_ASYNC);
1582
1583 error = gfs2_glock_nq(p[x]);
1584 if (error) {
1585 while (x--)
1586 gfs2_glock_dq(p[x]);
1587 break;
1588 }
1589 }
1590
1591 return error;
1592 }
1593
1594 /**
1595 * gfs2_glock_nq_m - acquire multiple glocks
1596 * @num_gh: the number of structures
1597 * @ghs: an array of struct gfs2_holder structures
1598 *
1599 *
1600 * Returns: 0 on success (all glocks acquired),
1601 * errno on failure (no glocks acquired)
1602 */
1603
gfs2_glock_nq_m(unsigned int num_gh,struct gfs2_holder * ghs)1604 int gfs2_glock_nq_m(unsigned int num_gh, struct gfs2_holder *ghs)
1605 {
1606 struct gfs2_holder *tmp[4];
1607 struct gfs2_holder **pph = tmp;
1608 int error = 0;
1609
1610 switch(num_gh) {
1611 case 0:
1612 return 0;
1613 case 1:
1614 ghs->gh_flags &= ~(LM_FLAG_TRY | GL_ASYNC);
1615 return gfs2_glock_nq(ghs);
1616 default:
1617 if (num_gh <= 4)
1618 break;
1619 pph = kmalloc_array(num_gh, sizeof(struct gfs2_holder *),
1620 GFP_NOFS);
1621 if (!pph)
1622 return -ENOMEM;
1623 }
1624
1625 error = nq_m_sync(num_gh, ghs, pph);
1626
1627 if (pph != tmp)
1628 kfree(pph);
1629
1630 return error;
1631 }
1632
1633 /**
1634 * gfs2_glock_dq_m - release multiple glocks
1635 * @num_gh: the number of structures
1636 * @ghs: an array of struct gfs2_holder structures
1637 *
1638 */
1639
gfs2_glock_dq_m(unsigned int num_gh,struct gfs2_holder * ghs)1640 void gfs2_glock_dq_m(unsigned int num_gh, struct gfs2_holder *ghs)
1641 {
1642 while (num_gh--)
1643 gfs2_glock_dq(&ghs[num_gh]);
1644 }
1645
gfs2_glock_cb(struct gfs2_glock * gl,unsigned int state)1646 void gfs2_glock_cb(struct gfs2_glock *gl, unsigned int state)
1647 {
1648 unsigned long delay = 0;
1649 unsigned long holdtime;
1650 unsigned long now = jiffies;
1651
1652 gfs2_glock_hold(gl);
1653 spin_lock(&gl->gl_lockref.lock);
1654 holdtime = gl->gl_tchange + gl->gl_hold_time;
1655 if (!list_empty(&gl->gl_holders) &&
1656 gl->gl_name.ln_type == LM_TYPE_INODE) {
1657 if (time_before(now, holdtime))
1658 delay = holdtime - now;
1659 if (test_bit(GLF_REPLY_PENDING, &gl->gl_flags))
1660 delay = gl->gl_hold_time;
1661 }
1662 handle_callback(gl, state, delay, true);
1663 __gfs2_glock_queue_work(gl, delay);
1664 spin_unlock(&gl->gl_lockref.lock);
1665 }
1666
1667 /**
1668 * gfs2_should_freeze - Figure out if glock should be frozen
1669 * @gl: The glock in question
1670 *
1671 * Glocks are not frozen if (a) the result of the dlm operation is
1672 * an error, (b) the locking operation was an unlock operation or
1673 * (c) if there is a "noexp" flagged request anywhere in the queue
1674 *
1675 * Returns: 1 if freezing should occur, 0 otherwise
1676 */
1677
gfs2_should_freeze(const struct gfs2_glock * gl)1678 static int gfs2_should_freeze(const struct gfs2_glock *gl)
1679 {
1680 const struct gfs2_holder *gh;
1681
1682 if (gl->gl_reply & ~LM_OUT_ST_MASK)
1683 return 0;
1684 if (gl->gl_target == LM_ST_UNLOCKED)
1685 return 0;
1686
1687 list_for_each_entry(gh, &gl->gl_holders, gh_list) {
1688 if (test_bit(HIF_HOLDER, &gh->gh_iflags))
1689 continue;
1690 if (LM_FLAG_NOEXP & gh->gh_flags)
1691 return 0;
1692 }
1693
1694 return 1;
1695 }
1696
1697 /**
1698 * gfs2_glock_complete - Callback used by locking
1699 * @gl: Pointer to the glock
1700 * @ret: The return value from the dlm
1701 *
1702 * The gl_reply field is under the gl_lockref.lock lock so that it is ok
1703 * to use a bitfield shared with other glock state fields.
1704 */
1705
gfs2_glock_complete(struct gfs2_glock * gl,int ret)1706 void gfs2_glock_complete(struct gfs2_glock *gl, int ret)
1707 {
1708 struct lm_lockstruct *ls = &gl->gl_name.ln_sbd->sd_lockstruct;
1709
1710 spin_lock(&gl->gl_lockref.lock);
1711 gl->gl_reply = ret;
1712
1713 if (unlikely(test_bit(DFL_BLOCK_LOCKS, &ls->ls_recover_flags))) {
1714 if (gfs2_should_freeze(gl)) {
1715 set_bit(GLF_FROZEN, &gl->gl_flags);
1716 spin_unlock(&gl->gl_lockref.lock);
1717 return;
1718 }
1719 }
1720
1721 gl->gl_lockref.count++;
1722 set_bit(GLF_REPLY_PENDING, &gl->gl_flags);
1723 __gfs2_glock_queue_work(gl, 0);
1724 spin_unlock(&gl->gl_lockref.lock);
1725 }
1726
glock_cmp(void * priv,struct list_head * a,struct list_head * b)1727 static int glock_cmp(void *priv, struct list_head *a, struct list_head *b)
1728 {
1729 struct gfs2_glock *gla, *glb;
1730
1731 gla = list_entry(a, struct gfs2_glock, gl_lru);
1732 glb = list_entry(b, struct gfs2_glock, gl_lru);
1733
1734 if (gla->gl_name.ln_number > glb->gl_name.ln_number)
1735 return 1;
1736 if (gla->gl_name.ln_number < glb->gl_name.ln_number)
1737 return -1;
1738
1739 return 0;
1740 }
1741
1742 /**
1743 * gfs2_dispose_glock_lru - Demote a list of glocks
1744 * @list: The list to dispose of
1745 *
1746 * Disposing of glocks may involve disk accesses, so that here we sort
1747 * the glocks by number (i.e. disk location of the inodes) so that if
1748 * there are any such accesses, they'll be sent in order (mostly).
1749 *
1750 * Must be called under the lru_lock, but may drop and retake this
1751 * lock. While the lru_lock is dropped, entries may vanish from the
1752 * list, but no new entries will appear on the list (since it is
1753 * private)
1754 */
1755
gfs2_dispose_glock_lru(struct list_head * list)1756 static void gfs2_dispose_glock_lru(struct list_head *list)
1757 __releases(&lru_lock)
1758 __acquires(&lru_lock)
1759 {
1760 struct gfs2_glock *gl;
1761
1762 list_sort(NULL, list, glock_cmp);
1763
1764 while(!list_empty(list)) {
1765 gl = list_first_entry(list, struct gfs2_glock, gl_lru);
1766 list_del_init(&gl->gl_lru);
1767 if (!spin_trylock(&gl->gl_lockref.lock)) {
1768 add_back_to_lru:
1769 list_add(&gl->gl_lru, &lru_list);
1770 set_bit(GLF_LRU, &gl->gl_flags);
1771 atomic_inc(&lru_count);
1772 continue;
1773 }
1774 if (test_and_set_bit(GLF_LOCK, &gl->gl_flags)) {
1775 spin_unlock(&gl->gl_lockref.lock);
1776 goto add_back_to_lru;
1777 }
1778 gl->gl_lockref.count++;
1779 if (demote_ok(gl))
1780 handle_callback(gl, LM_ST_UNLOCKED, 0, false);
1781 WARN_ON(!test_and_clear_bit(GLF_LOCK, &gl->gl_flags));
1782 __gfs2_glock_queue_work(gl, 0);
1783 spin_unlock(&gl->gl_lockref.lock);
1784 cond_resched_lock(&lru_lock);
1785 }
1786 }
1787
1788 /**
1789 * gfs2_scan_glock_lru - Scan the LRU looking for locks to demote
1790 * @nr: The number of entries to scan
1791 *
1792 * This function selects the entries on the LRU which are able to
1793 * be demoted, and then kicks off the process by calling
1794 * gfs2_dispose_glock_lru() above.
1795 */
1796
gfs2_scan_glock_lru(int nr)1797 static long gfs2_scan_glock_lru(int nr)
1798 {
1799 struct gfs2_glock *gl;
1800 LIST_HEAD(skipped);
1801 LIST_HEAD(dispose);
1802 long freed = 0;
1803
1804 spin_lock(&lru_lock);
1805 while ((nr-- >= 0) && !list_empty(&lru_list)) {
1806 gl = list_first_entry(&lru_list, struct gfs2_glock, gl_lru);
1807
1808 /* Test for being demotable */
1809 if (!test_bit(GLF_LOCK, &gl->gl_flags)) {
1810 list_move(&gl->gl_lru, &dispose);
1811 atomic_dec(&lru_count);
1812 clear_bit(GLF_LRU, &gl->gl_flags);
1813 freed++;
1814 continue;
1815 }
1816
1817 list_move(&gl->gl_lru, &skipped);
1818 }
1819 list_splice(&skipped, &lru_list);
1820 if (!list_empty(&dispose))
1821 gfs2_dispose_glock_lru(&dispose);
1822 spin_unlock(&lru_lock);
1823
1824 return freed;
1825 }
1826
gfs2_glock_shrink_scan(struct shrinker * shrink,struct shrink_control * sc)1827 static unsigned long gfs2_glock_shrink_scan(struct shrinker *shrink,
1828 struct shrink_control *sc)
1829 {
1830 if (!(sc->gfp_mask & __GFP_FS))
1831 return SHRINK_STOP;
1832 return gfs2_scan_glock_lru(sc->nr_to_scan);
1833 }
1834
gfs2_glock_shrink_count(struct shrinker * shrink,struct shrink_control * sc)1835 static unsigned long gfs2_glock_shrink_count(struct shrinker *shrink,
1836 struct shrink_control *sc)
1837 {
1838 return vfs_pressure_ratio(atomic_read(&lru_count));
1839 }
1840
1841 static struct shrinker glock_shrinker = {
1842 .seeks = DEFAULT_SEEKS,
1843 .count_objects = gfs2_glock_shrink_count,
1844 .scan_objects = gfs2_glock_shrink_scan,
1845 };
1846
1847 /**
1848 * glock_hash_walk - Call a function for glock in a hash bucket
1849 * @examiner: the function
1850 * @sdp: the filesystem
1851 *
1852 * Note that the function can be called multiple times on the same
1853 * object. So the user must ensure that the function can cope with
1854 * that.
1855 */
1856
glock_hash_walk(glock_examiner examiner,const struct gfs2_sbd * sdp)1857 static void glock_hash_walk(glock_examiner examiner, const struct gfs2_sbd *sdp)
1858 {
1859 struct gfs2_glock *gl;
1860 struct rhashtable_iter iter;
1861
1862 rhashtable_walk_enter(&gl_hash_table, &iter);
1863
1864 do {
1865 rhashtable_walk_start(&iter);
1866
1867 while ((gl = rhashtable_walk_next(&iter)) && !IS_ERR(gl))
1868 if (gl->gl_name.ln_sbd == sdp &&
1869 lockref_get_not_dead(&gl->gl_lockref))
1870 examiner(gl);
1871
1872 rhashtable_walk_stop(&iter);
1873 } while (cond_resched(), gl == ERR_PTR(-EAGAIN));
1874
1875 rhashtable_walk_exit(&iter);
1876 }
1877
gfs2_queue_delete_work(struct gfs2_glock * gl,unsigned long delay)1878 bool gfs2_queue_delete_work(struct gfs2_glock *gl, unsigned long delay)
1879 {
1880 bool queued;
1881
1882 spin_lock(&gl->gl_lockref.lock);
1883 queued = queue_delayed_work(gfs2_delete_workqueue,
1884 &gl->gl_delete, delay);
1885 if (queued)
1886 set_bit(GLF_PENDING_DELETE, &gl->gl_flags);
1887 spin_unlock(&gl->gl_lockref.lock);
1888 return queued;
1889 }
1890
gfs2_cancel_delete_work(struct gfs2_glock * gl)1891 void gfs2_cancel_delete_work(struct gfs2_glock *gl)
1892 {
1893 if (cancel_delayed_work_sync(&gl->gl_delete)) {
1894 clear_bit(GLF_PENDING_DELETE, &gl->gl_flags);
1895 gfs2_glock_put(gl);
1896 }
1897 }
1898
gfs2_delete_work_queued(const struct gfs2_glock * gl)1899 bool gfs2_delete_work_queued(const struct gfs2_glock *gl)
1900 {
1901 return test_bit(GLF_PENDING_DELETE, &gl->gl_flags);
1902 }
1903
flush_delete_work(struct gfs2_glock * gl)1904 static void flush_delete_work(struct gfs2_glock *gl)
1905 {
1906 if (gl->gl_name.ln_type == LM_TYPE_IOPEN) {
1907 if (cancel_delayed_work(&gl->gl_delete)) {
1908 queue_delayed_work(gfs2_delete_workqueue,
1909 &gl->gl_delete, 0);
1910 }
1911 }
1912 gfs2_glock_queue_work(gl, 0);
1913 }
1914
gfs2_flush_delete_work(struct gfs2_sbd * sdp)1915 void gfs2_flush_delete_work(struct gfs2_sbd *sdp)
1916 {
1917 glock_hash_walk(flush_delete_work, sdp);
1918 flush_workqueue(gfs2_delete_workqueue);
1919 }
1920
1921 /**
1922 * thaw_glock - thaw out a glock which has an unprocessed reply waiting
1923 * @gl: The glock to thaw
1924 *
1925 */
1926
thaw_glock(struct gfs2_glock * gl)1927 static void thaw_glock(struct gfs2_glock *gl)
1928 {
1929 if (!test_and_clear_bit(GLF_FROZEN, &gl->gl_flags)) {
1930 gfs2_glock_put(gl);
1931 return;
1932 }
1933 set_bit(GLF_REPLY_PENDING, &gl->gl_flags);
1934 gfs2_glock_queue_work(gl, 0);
1935 }
1936
1937 /**
1938 * clear_glock - look at a glock and see if we can free it from glock cache
1939 * @gl: the glock to look at
1940 *
1941 */
1942
clear_glock(struct gfs2_glock * gl)1943 static void clear_glock(struct gfs2_glock *gl)
1944 {
1945 gfs2_glock_remove_from_lru(gl);
1946
1947 spin_lock(&gl->gl_lockref.lock);
1948 if (gl->gl_state != LM_ST_UNLOCKED)
1949 handle_callback(gl, LM_ST_UNLOCKED, 0, false);
1950 __gfs2_glock_queue_work(gl, 0);
1951 spin_unlock(&gl->gl_lockref.lock);
1952 }
1953
1954 /**
1955 * gfs2_glock_thaw - Thaw any frozen glocks
1956 * @sdp: The super block
1957 *
1958 */
1959
gfs2_glock_thaw(struct gfs2_sbd * sdp)1960 void gfs2_glock_thaw(struct gfs2_sbd *sdp)
1961 {
1962 glock_hash_walk(thaw_glock, sdp);
1963 }
1964
dump_glock(struct seq_file * seq,struct gfs2_glock * gl,bool fsid)1965 static void dump_glock(struct seq_file *seq, struct gfs2_glock *gl, bool fsid)
1966 {
1967 spin_lock(&gl->gl_lockref.lock);
1968 gfs2_dump_glock(seq, gl, fsid);
1969 spin_unlock(&gl->gl_lockref.lock);
1970 }
1971
dump_glock_func(struct gfs2_glock * gl)1972 static void dump_glock_func(struct gfs2_glock *gl)
1973 {
1974 dump_glock(NULL, gl, true);
1975 }
1976
1977 /**
1978 * gfs2_gl_hash_clear - Empty out the glock hash table
1979 * @sdp: the filesystem
1980 * @wait: wait until it's all gone
1981 *
1982 * Called when unmounting the filesystem.
1983 */
1984
gfs2_gl_hash_clear(struct gfs2_sbd * sdp)1985 void gfs2_gl_hash_clear(struct gfs2_sbd *sdp)
1986 {
1987 set_bit(SDF_SKIP_DLM_UNLOCK, &sdp->sd_flags);
1988 flush_workqueue(glock_workqueue);
1989 glock_hash_walk(clear_glock, sdp);
1990 flush_workqueue(glock_workqueue);
1991 wait_event_timeout(sdp->sd_glock_wait,
1992 atomic_read(&sdp->sd_glock_disposal) == 0,
1993 HZ * 600);
1994 glock_hash_walk(dump_glock_func, sdp);
1995 }
1996
gfs2_glock_finish_truncate(struct gfs2_inode * ip)1997 void gfs2_glock_finish_truncate(struct gfs2_inode *ip)
1998 {
1999 struct gfs2_glock *gl = ip->i_gl;
2000 int ret;
2001
2002 ret = gfs2_truncatei_resume(ip);
2003 gfs2_glock_assert_withdraw(gl, ret == 0);
2004
2005 spin_lock(&gl->gl_lockref.lock);
2006 clear_bit(GLF_LOCK, &gl->gl_flags);
2007 run_queue(gl, 1);
2008 spin_unlock(&gl->gl_lockref.lock);
2009 }
2010
state2str(unsigned state)2011 static const char *state2str(unsigned state)
2012 {
2013 switch(state) {
2014 case LM_ST_UNLOCKED:
2015 return "UN";
2016 case LM_ST_SHARED:
2017 return "SH";
2018 case LM_ST_DEFERRED:
2019 return "DF";
2020 case LM_ST_EXCLUSIVE:
2021 return "EX";
2022 }
2023 return "??";
2024 }
2025
hflags2str(char * buf,u16 flags,unsigned long iflags)2026 static const char *hflags2str(char *buf, u16 flags, unsigned long iflags)
2027 {
2028 char *p = buf;
2029 if (flags & LM_FLAG_TRY)
2030 *p++ = 't';
2031 if (flags & LM_FLAG_TRY_1CB)
2032 *p++ = 'T';
2033 if (flags & LM_FLAG_NOEXP)
2034 *p++ = 'e';
2035 if (flags & LM_FLAG_ANY)
2036 *p++ = 'A';
2037 if (flags & LM_FLAG_PRIORITY)
2038 *p++ = 'p';
2039 if (flags & GL_ASYNC)
2040 *p++ = 'a';
2041 if (flags & GL_EXACT)
2042 *p++ = 'E';
2043 if (flags & GL_NOCACHE)
2044 *p++ = 'c';
2045 if (test_bit(HIF_HOLDER, &iflags))
2046 *p++ = 'H';
2047 if (test_bit(HIF_WAIT, &iflags))
2048 *p++ = 'W';
2049 if (test_bit(HIF_FIRST, &iflags))
2050 *p++ = 'F';
2051 *p = 0;
2052 return buf;
2053 }
2054
2055 /**
2056 * dump_holder - print information about a glock holder
2057 * @seq: the seq_file struct
2058 * @gh: the glock holder
2059 * @fs_id_buf: pointer to file system id (if requested)
2060 *
2061 */
2062
dump_holder(struct seq_file * seq,const struct gfs2_holder * gh,const char * fs_id_buf)2063 static void dump_holder(struct seq_file *seq, const struct gfs2_holder *gh,
2064 const char *fs_id_buf)
2065 {
2066 struct task_struct *gh_owner = NULL;
2067 char flags_buf[32];
2068
2069 rcu_read_lock();
2070 if (gh->gh_owner_pid)
2071 gh_owner = pid_task(gh->gh_owner_pid, PIDTYPE_PID);
2072 gfs2_print_dbg(seq, "%s H: s:%s f:%s e:%d p:%ld [%s] %pS\n",
2073 fs_id_buf, state2str(gh->gh_state),
2074 hflags2str(flags_buf, gh->gh_flags, gh->gh_iflags),
2075 gh->gh_error,
2076 gh->gh_owner_pid ? (long)pid_nr(gh->gh_owner_pid) : -1,
2077 gh_owner ? gh_owner->comm : "(ended)",
2078 (void *)gh->gh_ip);
2079 rcu_read_unlock();
2080 }
2081
gflags2str(char * buf,const struct gfs2_glock * gl)2082 static const char *gflags2str(char *buf, const struct gfs2_glock *gl)
2083 {
2084 const unsigned long *gflags = &gl->gl_flags;
2085 char *p = buf;
2086
2087 if (test_bit(GLF_LOCK, gflags))
2088 *p++ = 'l';
2089 if (test_bit(GLF_DEMOTE, gflags))
2090 *p++ = 'D';
2091 if (test_bit(GLF_PENDING_DEMOTE, gflags))
2092 *p++ = 'd';
2093 if (test_bit(GLF_DEMOTE_IN_PROGRESS, gflags))
2094 *p++ = 'p';
2095 if (test_bit(GLF_DIRTY, gflags))
2096 *p++ = 'y';
2097 if (test_bit(GLF_LFLUSH, gflags))
2098 *p++ = 'f';
2099 if (test_bit(GLF_INVALIDATE_IN_PROGRESS, gflags))
2100 *p++ = 'i';
2101 if (test_bit(GLF_REPLY_PENDING, gflags))
2102 *p++ = 'r';
2103 if (test_bit(GLF_INITIAL, gflags))
2104 *p++ = 'I';
2105 if (test_bit(GLF_FROZEN, gflags))
2106 *p++ = 'F';
2107 if (!list_empty(&gl->gl_holders))
2108 *p++ = 'q';
2109 if (test_bit(GLF_LRU, gflags))
2110 *p++ = 'L';
2111 if (gl->gl_object)
2112 *p++ = 'o';
2113 if (test_bit(GLF_BLOCKING, gflags))
2114 *p++ = 'b';
2115 if (test_bit(GLF_INODE_CREATING, gflags))
2116 *p++ = 'c';
2117 if (test_bit(GLF_PENDING_DELETE, gflags))
2118 *p++ = 'P';
2119 if (test_bit(GLF_FREEING, gflags))
2120 *p++ = 'x';
2121 *p = 0;
2122 return buf;
2123 }
2124
2125 /**
2126 * gfs2_dump_glock - print information about a glock
2127 * @seq: The seq_file struct
2128 * @gl: the glock
2129 * @fsid: If true, also dump the file system id
2130 *
2131 * The file format is as follows:
2132 * One line per object, capital letters are used to indicate objects
2133 * G = glock, I = Inode, R = rgrp, H = holder. Glocks are not indented,
2134 * other objects are indented by a single space and follow the glock to
2135 * which they are related. Fields are indicated by lower case letters
2136 * followed by a colon and the field value, except for strings which are in
2137 * [] so that its possible to see if they are composed of spaces for
2138 * example. The field's are n = number (id of the object), f = flags,
2139 * t = type, s = state, r = refcount, e = error, p = pid.
2140 *
2141 */
2142
gfs2_dump_glock(struct seq_file * seq,struct gfs2_glock * gl,bool fsid)2143 void gfs2_dump_glock(struct seq_file *seq, struct gfs2_glock *gl, bool fsid)
2144 {
2145 const struct gfs2_glock_operations *glops = gl->gl_ops;
2146 unsigned long long dtime;
2147 const struct gfs2_holder *gh;
2148 char gflags_buf[32];
2149 struct gfs2_sbd *sdp = gl->gl_name.ln_sbd;
2150 char fs_id_buf[sizeof(sdp->sd_fsname) + 7];
2151 unsigned long nrpages = 0;
2152
2153 if (gl->gl_ops->go_flags & GLOF_ASPACE) {
2154 struct address_space *mapping = gfs2_glock2aspace(gl);
2155
2156 nrpages = mapping->nrpages;
2157 }
2158 memset(fs_id_buf, 0, sizeof(fs_id_buf));
2159 if (fsid && sdp) /* safety precaution */
2160 sprintf(fs_id_buf, "fsid=%s: ", sdp->sd_fsname);
2161 dtime = jiffies - gl->gl_demote_time;
2162 dtime *= 1000000/HZ; /* demote time in uSec */
2163 if (!test_bit(GLF_DEMOTE, &gl->gl_flags))
2164 dtime = 0;
2165 gfs2_print_dbg(seq, "%sG: s:%s n:%u/%llx f:%s t:%s d:%s/%llu a:%d "
2166 "v:%d r:%d m:%ld p:%lu\n",
2167 fs_id_buf, state2str(gl->gl_state),
2168 gl->gl_name.ln_type,
2169 (unsigned long long)gl->gl_name.ln_number,
2170 gflags2str(gflags_buf, gl),
2171 state2str(gl->gl_target),
2172 state2str(gl->gl_demote_state), dtime,
2173 atomic_read(&gl->gl_ail_count),
2174 atomic_read(&gl->gl_revokes),
2175 (int)gl->gl_lockref.count, gl->gl_hold_time, nrpages);
2176
2177 list_for_each_entry(gh, &gl->gl_holders, gh_list)
2178 dump_holder(seq, gh, fs_id_buf);
2179
2180 if (gl->gl_state != LM_ST_UNLOCKED && glops->go_dump)
2181 glops->go_dump(seq, gl, fs_id_buf);
2182 }
2183
gfs2_glstats_seq_show(struct seq_file * seq,void * iter_ptr)2184 static int gfs2_glstats_seq_show(struct seq_file *seq, void *iter_ptr)
2185 {
2186 struct gfs2_glock *gl = iter_ptr;
2187
2188 seq_printf(seq, "G: n:%u/%llx rtt:%llu/%llu rttb:%llu/%llu irt:%llu/%llu dcnt: %llu qcnt: %llu\n",
2189 gl->gl_name.ln_type,
2190 (unsigned long long)gl->gl_name.ln_number,
2191 (unsigned long long)gl->gl_stats.stats[GFS2_LKS_SRTT],
2192 (unsigned long long)gl->gl_stats.stats[GFS2_LKS_SRTTVAR],
2193 (unsigned long long)gl->gl_stats.stats[GFS2_LKS_SRTTB],
2194 (unsigned long long)gl->gl_stats.stats[GFS2_LKS_SRTTVARB],
2195 (unsigned long long)gl->gl_stats.stats[GFS2_LKS_SIRT],
2196 (unsigned long long)gl->gl_stats.stats[GFS2_LKS_SIRTVAR],
2197 (unsigned long long)gl->gl_stats.stats[GFS2_LKS_DCOUNT],
2198 (unsigned long long)gl->gl_stats.stats[GFS2_LKS_QCOUNT]);
2199 return 0;
2200 }
2201
2202 static const char *gfs2_gltype[] = {
2203 "type",
2204 "reserved",
2205 "nondisk",
2206 "inode",
2207 "rgrp",
2208 "meta",
2209 "iopen",
2210 "flock",
2211 "plock",
2212 "quota",
2213 "journal",
2214 };
2215
2216 static const char *gfs2_stype[] = {
2217 [GFS2_LKS_SRTT] = "srtt",
2218 [GFS2_LKS_SRTTVAR] = "srttvar",
2219 [GFS2_LKS_SRTTB] = "srttb",
2220 [GFS2_LKS_SRTTVARB] = "srttvarb",
2221 [GFS2_LKS_SIRT] = "sirt",
2222 [GFS2_LKS_SIRTVAR] = "sirtvar",
2223 [GFS2_LKS_DCOUNT] = "dlm",
2224 [GFS2_LKS_QCOUNT] = "queue",
2225 };
2226
2227 #define GFS2_NR_SBSTATS (ARRAY_SIZE(gfs2_gltype) * ARRAY_SIZE(gfs2_stype))
2228
gfs2_sbstats_seq_show(struct seq_file * seq,void * iter_ptr)2229 static int gfs2_sbstats_seq_show(struct seq_file *seq, void *iter_ptr)
2230 {
2231 struct gfs2_sbd *sdp = seq->private;
2232 loff_t pos = *(loff_t *)iter_ptr;
2233 unsigned index = pos >> 3;
2234 unsigned subindex = pos & 0x07;
2235 int i;
2236
2237 if (index == 0 && subindex != 0)
2238 return 0;
2239
2240 seq_printf(seq, "%-10s %8s:", gfs2_gltype[index],
2241 (index == 0) ? "cpu": gfs2_stype[subindex]);
2242
2243 for_each_possible_cpu(i) {
2244 const struct gfs2_pcpu_lkstats *lkstats = per_cpu_ptr(sdp->sd_lkstats, i);
2245
2246 if (index == 0)
2247 seq_printf(seq, " %15u", i);
2248 else
2249 seq_printf(seq, " %15llu", (unsigned long long)lkstats->
2250 lkstats[index - 1].stats[subindex]);
2251 }
2252 seq_putc(seq, '\n');
2253 return 0;
2254 }
2255
gfs2_glock_init(void)2256 int __init gfs2_glock_init(void)
2257 {
2258 int i, ret;
2259
2260 ret = rhashtable_init(&gl_hash_table, &ht_parms);
2261 if (ret < 0)
2262 return ret;
2263
2264 glock_workqueue = alloc_workqueue("glock_workqueue", WQ_MEM_RECLAIM |
2265 WQ_HIGHPRI | WQ_FREEZABLE, 0);
2266 if (!glock_workqueue) {
2267 rhashtable_destroy(&gl_hash_table);
2268 return -ENOMEM;
2269 }
2270 gfs2_delete_workqueue = alloc_workqueue("delete_workqueue",
2271 WQ_MEM_RECLAIM | WQ_FREEZABLE,
2272 0);
2273 if (!gfs2_delete_workqueue) {
2274 destroy_workqueue(glock_workqueue);
2275 rhashtable_destroy(&gl_hash_table);
2276 return -ENOMEM;
2277 }
2278
2279 ret = register_shrinker(&glock_shrinker);
2280 if (ret) {
2281 destroy_workqueue(gfs2_delete_workqueue);
2282 destroy_workqueue(glock_workqueue);
2283 rhashtable_destroy(&gl_hash_table);
2284 return ret;
2285 }
2286
2287 for (i = 0; i < GLOCK_WAIT_TABLE_SIZE; i++)
2288 init_waitqueue_head(glock_wait_table + i);
2289
2290 return 0;
2291 }
2292
gfs2_glock_exit(void)2293 void gfs2_glock_exit(void)
2294 {
2295 unregister_shrinker(&glock_shrinker);
2296 rhashtable_destroy(&gl_hash_table);
2297 destroy_workqueue(glock_workqueue);
2298 destroy_workqueue(gfs2_delete_workqueue);
2299 }
2300
gfs2_glock_iter_next(struct gfs2_glock_iter * gi,loff_t n)2301 static void gfs2_glock_iter_next(struct gfs2_glock_iter *gi, loff_t n)
2302 {
2303 struct gfs2_glock *gl = gi->gl;
2304
2305 if (gl) {
2306 if (n == 0)
2307 return;
2308 if (!lockref_put_not_zero(&gl->gl_lockref))
2309 gfs2_glock_queue_put(gl);
2310 }
2311 for (;;) {
2312 gl = rhashtable_walk_next(&gi->hti);
2313 if (IS_ERR_OR_NULL(gl)) {
2314 if (gl == ERR_PTR(-EAGAIN)) {
2315 n = 1;
2316 continue;
2317 }
2318 gl = NULL;
2319 break;
2320 }
2321 if (gl->gl_name.ln_sbd != gi->sdp)
2322 continue;
2323 if (n <= 1) {
2324 if (!lockref_get_not_dead(&gl->gl_lockref))
2325 continue;
2326 break;
2327 } else {
2328 if (__lockref_is_dead(&gl->gl_lockref))
2329 continue;
2330 n--;
2331 }
2332 }
2333 gi->gl = gl;
2334 }
2335
gfs2_glock_seq_start(struct seq_file * seq,loff_t * pos)2336 static void *gfs2_glock_seq_start(struct seq_file *seq, loff_t *pos)
2337 __acquires(RCU)
2338 {
2339 struct gfs2_glock_iter *gi = seq->private;
2340 loff_t n;
2341
2342 /*
2343 * We can either stay where we are, skip to the next hash table
2344 * entry, or start from the beginning.
2345 */
2346 if (*pos < gi->last_pos) {
2347 rhashtable_walk_exit(&gi->hti);
2348 rhashtable_walk_enter(&gl_hash_table, &gi->hti);
2349 n = *pos + 1;
2350 } else {
2351 n = *pos - gi->last_pos;
2352 }
2353
2354 rhashtable_walk_start(&gi->hti);
2355
2356 gfs2_glock_iter_next(gi, n);
2357 gi->last_pos = *pos;
2358 return gi->gl;
2359 }
2360
gfs2_glock_seq_next(struct seq_file * seq,void * iter_ptr,loff_t * pos)2361 static void *gfs2_glock_seq_next(struct seq_file *seq, void *iter_ptr,
2362 loff_t *pos)
2363 {
2364 struct gfs2_glock_iter *gi = seq->private;
2365
2366 (*pos)++;
2367 gi->last_pos = *pos;
2368 gfs2_glock_iter_next(gi, 1);
2369 return gi->gl;
2370 }
2371
gfs2_glock_seq_stop(struct seq_file * seq,void * iter_ptr)2372 static void gfs2_glock_seq_stop(struct seq_file *seq, void *iter_ptr)
2373 __releases(RCU)
2374 {
2375 struct gfs2_glock_iter *gi = seq->private;
2376
2377 rhashtable_walk_stop(&gi->hti);
2378 }
2379
gfs2_glock_seq_show(struct seq_file * seq,void * iter_ptr)2380 static int gfs2_glock_seq_show(struct seq_file *seq, void *iter_ptr)
2381 {
2382 dump_glock(seq, iter_ptr, false);
2383 return 0;
2384 }
2385
gfs2_sbstats_seq_start(struct seq_file * seq,loff_t * pos)2386 static void *gfs2_sbstats_seq_start(struct seq_file *seq, loff_t *pos)
2387 {
2388 preempt_disable();
2389 if (*pos >= GFS2_NR_SBSTATS)
2390 return NULL;
2391 return pos;
2392 }
2393
gfs2_sbstats_seq_next(struct seq_file * seq,void * iter_ptr,loff_t * pos)2394 static void *gfs2_sbstats_seq_next(struct seq_file *seq, void *iter_ptr,
2395 loff_t *pos)
2396 {
2397 (*pos)++;
2398 if (*pos >= GFS2_NR_SBSTATS)
2399 return NULL;
2400 return pos;
2401 }
2402
gfs2_sbstats_seq_stop(struct seq_file * seq,void * iter_ptr)2403 static void gfs2_sbstats_seq_stop(struct seq_file *seq, void *iter_ptr)
2404 {
2405 preempt_enable();
2406 }
2407
2408 static const struct seq_operations gfs2_glock_seq_ops = {
2409 .start = gfs2_glock_seq_start,
2410 .next = gfs2_glock_seq_next,
2411 .stop = gfs2_glock_seq_stop,
2412 .show = gfs2_glock_seq_show,
2413 };
2414
2415 static const struct seq_operations gfs2_glstats_seq_ops = {
2416 .start = gfs2_glock_seq_start,
2417 .next = gfs2_glock_seq_next,
2418 .stop = gfs2_glock_seq_stop,
2419 .show = gfs2_glstats_seq_show,
2420 };
2421
2422 static const struct seq_operations gfs2_sbstats_sops = {
2423 .start = gfs2_sbstats_seq_start,
2424 .next = gfs2_sbstats_seq_next,
2425 .stop = gfs2_sbstats_seq_stop,
2426 .show = gfs2_sbstats_seq_show,
2427 };
2428
2429 #define GFS2_SEQ_GOODSIZE min(PAGE_SIZE << PAGE_ALLOC_COSTLY_ORDER, 65536UL)
2430
__gfs2_glocks_open(struct inode * inode,struct file * file,const struct seq_operations * ops)2431 static int __gfs2_glocks_open(struct inode *inode, struct file *file,
2432 const struct seq_operations *ops)
2433 {
2434 int ret = seq_open_private(file, ops, sizeof(struct gfs2_glock_iter));
2435 if (ret == 0) {
2436 struct seq_file *seq = file->private_data;
2437 struct gfs2_glock_iter *gi = seq->private;
2438
2439 gi->sdp = inode->i_private;
2440 seq->buf = kmalloc(GFS2_SEQ_GOODSIZE, GFP_KERNEL | __GFP_NOWARN);
2441 if (seq->buf)
2442 seq->size = GFS2_SEQ_GOODSIZE;
2443 /*
2444 * Initially, we are "before" the first hash table entry; the
2445 * first call to rhashtable_walk_next gets us the first entry.
2446 */
2447 gi->last_pos = -1;
2448 gi->gl = NULL;
2449 rhashtable_walk_enter(&gl_hash_table, &gi->hti);
2450 }
2451 return ret;
2452 }
2453
gfs2_glocks_open(struct inode * inode,struct file * file)2454 static int gfs2_glocks_open(struct inode *inode, struct file *file)
2455 {
2456 return __gfs2_glocks_open(inode, file, &gfs2_glock_seq_ops);
2457 }
2458
gfs2_glocks_release(struct inode * inode,struct file * file)2459 static int gfs2_glocks_release(struct inode *inode, struct file *file)
2460 {
2461 struct seq_file *seq = file->private_data;
2462 struct gfs2_glock_iter *gi = seq->private;
2463
2464 if (gi->gl)
2465 gfs2_glock_put(gi->gl);
2466 rhashtable_walk_exit(&gi->hti);
2467 return seq_release_private(inode, file);
2468 }
2469
gfs2_glstats_open(struct inode * inode,struct file * file)2470 static int gfs2_glstats_open(struct inode *inode, struct file *file)
2471 {
2472 return __gfs2_glocks_open(inode, file, &gfs2_glstats_seq_ops);
2473 }
2474
2475 static const struct file_operations gfs2_glocks_fops = {
2476 .owner = THIS_MODULE,
2477 .open = gfs2_glocks_open,
2478 .read = seq_read,
2479 .llseek = seq_lseek,
2480 .release = gfs2_glocks_release,
2481 };
2482
2483 static const struct file_operations gfs2_glstats_fops = {
2484 .owner = THIS_MODULE,
2485 .open = gfs2_glstats_open,
2486 .read = seq_read,
2487 .llseek = seq_lseek,
2488 .release = gfs2_glocks_release,
2489 };
2490
2491 DEFINE_SEQ_ATTRIBUTE(gfs2_sbstats);
2492
gfs2_create_debugfs_file(struct gfs2_sbd * sdp)2493 void gfs2_create_debugfs_file(struct gfs2_sbd *sdp)
2494 {
2495 sdp->debugfs_dir = debugfs_create_dir(sdp->sd_table_name, gfs2_root);
2496
2497 debugfs_create_file("glocks", S_IFREG | S_IRUGO, sdp->debugfs_dir, sdp,
2498 &gfs2_glocks_fops);
2499
2500 debugfs_create_file("glstats", S_IFREG | S_IRUGO, sdp->debugfs_dir, sdp,
2501 &gfs2_glstats_fops);
2502
2503 debugfs_create_file("sbstats", S_IFREG | S_IRUGO, sdp->debugfs_dir, sdp,
2504 &gfs2_sbstats_fops);
2505 }
2506
gfs2_delete_debugfs_file(struct gfs2_sbd * sdp)2507 void gfs2_delete_debugfs_file(struct gfs2_sbd *sdp)
2508 {
2509 debugfs_remove_recursive(sdp->debugfs_dir);
2510 sdp->debugfs_dir = NULL;
2511 }
2512
gfs2_register_debugfs(void)2513 void gfs2_register_debugfs(void)
2514 {
2515 gfs2_root = debugfs_create_dir("gfs2", NULL);
2516 }
2517
gfs2_unregister_debugfs(void)2518 void gfs2_unregister_debugfs(void)
2519 {
2520 debugfs_remove(gfs2_root);
2521 gfs2_root = NULL;
2522 }
2523