1  // SPDX-License-Identifier: GPL-2.0
2  /*
3   * bcachefs journalling code, for btree insertions
4   *
5   * Copyright 2012 Google, Inc.
6   */
7  
8  #include "bcachefs.h"
9  #include "alloc_foreground.h"
10  #include "bkey_methods.h"
11  #include "btree_gc.h"
12  #include "btree_update.h"
13  #include "btree_write_buffer.h"
14  #include "buckets.h"
15  #include "error.h"
16  #include "journal.h"
17  #include "journal_io.h"
18  #include "journal_reclaim.h"
19  #include "journal_sb.h"
20  #include "journal_seq_blacklist.h"
21  #include "trace.h"
22  
23  static const char * const bch2_journal_errors[] = {
24  #define x(n)	#n,
25  	JOURNAL_ERRORS()
26  #undef x
27  	NULL
28  };
29  
journal_seq_unwritten(struct journal * j,u64 seq)30  static inline bool journal_seq_unwritten(struct journal *j, u64 seq)
31  {
32  	return seq > j->seq_ondisk;
33  }
34  
__journal_entry_is_open(union journal_res_state state)35  static bool __journal_entry_is_open(union journal_res_state state)
36  {
37  	return state.cur_entry_offset < JOURNAL_ENTRY_CLOSED_VAL;
38  }
39  
nr_unwritten_journal_entries(struct journal * j)40  static inline unsigned nr_unwritten_journal_entries(struct journal *j)
41  {
42  	return atomic64_read(&j->seq) - j->seq_ondisk;
43  }
44  
journal_entry_is_open(struct journal * j)45  static bool journal_entry_is_open(struct journal *j)
46  {
47  	return __journal_entry_is_open(j->reservations);
48  }
49  
bch2_journal_buf_to_text(struct printbuf * out,struct journal * j,u64 seq)50  static void bch2_journal_buf_to_text(struct printbuf *out, struct journal *j, u64 seq)
51  {
52  	union journal_res_state s = READ_ONCE(j->reservations);
53  	unsigned i = seq & JOURNAL_BUF_MASK;
54  	struct journal_buf *buf = j->buf + i;
55  
56  	prt_printf(out, "seq:\t%llu\n", seq);
57  	printbuf_indent_add(out, 2);
58  
59  	prt_printf(out, "refcount:\t%u\n", journal_state_count(s, i));
60  
61  	prt_printf(out, "size:\t");
62  	prt_human_readable_u64(out, vstruct_bytes(buf->data));
63  	prt_newline(out);
64  
65  	prt_printf(out, "expires:\t");
66  	prt_printf(out, "%li jiffies\n", buf->expires - jiffies);
67  
68  	prt_printf(out, "flags:\t");
69  	if (buf->noflush)
70  		prt_str(out, "noflush ");
71  	if (buf->must_flush)
72  		prt_str(out, "must_flush ");
73  	if (buf->separate_flush)
74  		prt_str(out, "separate_flush ");
75  	if (buf->need_flush_to_write_buffer)
76  		prt_str(out, "need_flush_to_write_buffer ");
77  	if (buf->write_started)
78  		prt_str(out, "write_started ");
79  	if (buf->write_allocated)
80  		prt_str(out, "write_allocated ");
81  	if (buf->write_done)
82  		prt_str(out, "write_done");
83  	prt_newline(out);
84  
85  	printbuf_indent_sub(out, 2);
86  }
87  
bch2_journal_bufs_to_text(struct printbuf * out,struct journal * j)88  static void bch2_journal_bufs_to_text(struct printbuf *out, struct journal *j)
89  {
90  	if (!out->nr_tabstops)
91  		printbuf_tabstop_push(out, 24);
92  
93  	for (u64 seq = journal_last_unwritten_seq(j);
94  	     seq <= journal_cur_seq(j);
95  	     seq++)
96  		bch2_journal_buf_to_text(out, j, seq);
97  	prt_printf(out, "last buf %s\n", journal_entry_is_open(j) ? "open" : "closed");
98  }
99  
100  static inline struct journal_buf *
journal_seq_to_buf(struct journal * j,u64 seq)101  journal_seq_to_buf(struct journal *j, u64 seq)
102  {
103  	struct journal_buf *buf = NULL;
104  
105  	EBUG_ON(seq > journal_cur_seq(j));
106  
107  	if (journal_seq_unwritten(j, seq)) {
108  		buf = j->buf + (seq & JOURNAL_BUF_MASK);
109  		EBUG_ON(le64_to_cpu(buf->data->seq) != seq);
110  	}
111  	return buf;
112  }
113  
journal_pin_list_init(struct journal_entry_pin_list * p,int count)114  static void journal_pin_list_init(struct journal_entry_pin_list *p, int count)
115  {
116  	unsigned i;
117  
118  	for (i = 0; i < ARRAY_SIZE(p->list); i++)
119  		INIT_LIST_HEAD(&p->list[i]);
120  	INIT_LIST_HEAD(&p->flushed);
121  	atomic_set(&p->count, count);
122  	p->devs.nr = 0;
123  }
124  
125  /*
126   * Detect stuck journal conditions and trigger shutdown. Technically the journal
127   * can end up stuck for a variety of reasons, such as a blocked I/O, journal
128   * reservation lockup, etc. Since this is a fatal error with potentially
129   * unpredictable characteristics, we want to be fairly conservative before we
130   * decide to shut things down.
131   *
132   * Consider the journal stuck when it appears full with no ability to commit
133   * btree transactions, to discard journal buckets, nor acquire priority
134   * (reserved watermark) reservation.
135   */
136  static inline bool
journal_error_check_stuck(struct journal * j,int error,unsigned flags)137  journal_error_check_stuck(struct journal *j, int error, unsigned flags)
138  {
139  	struct bch_fs *c = container_of(j, struct bch_fs, journal);
140  	bool stuck = false;
141  	struct printbuf buf = PRINTBUF;
142  
143  	if (!(error == JOURNAL_ERR_journal_full ||
144  	      error == JOURNAL_ERR_journal_pin_full) ||
145  	    nr_unwritten_journal_entries(j) ||
146  	    (flags & BCH_WATERMARK_MASK) != BCH_WATERMARK_reclaim)
147  		return stuck;
148  
149  	spin_lock(&j->lock);
150  
151  	if (j->can_discard) {
152  		spin_unlock(&j->lock);
153  		return stuck;
154  	}
155  
156  	stuck = true;
157  
158  	/*
159  	 * The journal shutdown path will set ->err_seq, but do it here first to
160  	 * serialize against concurrent failures and avoid duplicate error
161  	 * reports.
162  	 */
163  	if (j->err_seq) {
164  		spin_unlock(&j->lock);
165  		return stuck;
166  	}
167  	j->err_seq = journal_cur_seq(j);
168  	spin_unlock(&j->lock);
169  
170  	bch_err(c, "Journal stuck! Hava a pre-reservation but journal full (error %s)",
171  		bch2_journal_errors[error]);
172  	bch2_journal_debug_to_text(&buf, j);
173  	bch_err(c, "%s", buf.buf);
174  
175  	printbuf_reset(&buf);
176  	bch2_journal_pins_to_text(&buf, j);
177  	bch_err(c, "Journal pins:\n%s", buf.buf);
178  	printbuf_exit(&buf);
179  
180  	bch2_fatal_error(c);
181  	dump_stack();
182  
183  	return stuck;
184  }
185  
bch2_journal_do_writes(struct journal * j)186  void bch2_journal_do_writes(struct journal *j)
187  {
188  	for (u64 seq = journal_last_unwritten_seq(j);
189  	     seq <= journal_cur_seq(j);
190  	     seq++) {
191  		unsigned idx = seq & JOURNAL_BUF_MASK;
192  		struct journal_buf *w = j->buf + idx;
193  
194  		if (w->write_started && !w->write_allocated)
195  			break;
196  		if (w->write_started)
197  			continue;
198  
199  		if (!journal_state_count(j->reservations, idx)) {
200  			w->write_started = true;
201  			closure_call(&w->io, bch2_journal_write, j->wq, NULL);
202  		}
203  
204  		break;
205  	}
206  }
207  
208  /*
209   * Final processing when the last reference of a journal buffer has been
210   * dropped. Drop the pin list reference acquired at journal entry open and write
211   * the buffer, if requested.
212   */
bch2_journal_buf_put_final(struct journal * j,u64 seq)213  void bch2_journal_buf_put_final(struct journal *j, u64 seq)
214  {
215  	lockdep_assert_held(&j->lock);
216  
217  	if (__bch2_journal_pin_put(j, seq))
218  		bch2_journal_reclaim_fast(j);
219  	bch2_journal_do_writes(j);
220  }
221  
222  /*
223   * Returns true if journal entry is now closed:
224   *
225   * We don't close a journal_buf until the next journal_buf is finished writing,
226   * and can be opened again - this also initializes the next journal_buf:
227   */
__journal_entry_close(struct journal * j,unsigned closed_val,bool trace)228  static void __journal_entry_close(struct journal *j, unsigned closed_val, bool trace)
229  {
230  	struct bch_fs *c = container_of(j, struct bch_fs, journal);
231  	struct journal_buf *buf = journal_cur_buf(j);
232  	union journal_res_state old, new;
233  	unsigned sectors;
234  
235  	BUG_ON(closed_val != JOURNAL_ENTRY_CLOSED_VAL &&
236  	       closed_val != JOURNAL_ENTRY_ERROR_VAL);
237  
238  	lockdep_assert_held(&j->lock);
239  
240  	old.v = atomic64_read(&j->reservations.counter);
241  	do {
242  		new.v = old.v;
243  		new.cur_entry_offset = closed_val;
244  
245  		if (old.cur_entry_offset == JOURNAL_ENTRY_ERROR_VAL ||
246  		    old.cur_entry_offset == new.cur_entry_offset)
247  			return;
248  	} while (!atomic64_try_cmpxchg(&j->reservations.counter,
249  				       &old.v, new.v));
250  
251  	if (!__journal_entry_is_open(old))
252  		return;
253  
254  	/* Close out old buffer: */
255  	buf->data->u64s		= cpu_to_le32(old.cur_entry_offset);
256  
257  	if (trace_journal_entry_close_enabled() && trace) {
258  		struct printbuf pbuf = PRINTBUF;
259  		pbuf.atomic++;
260  
261  		prt_str(&pbuf, "entry size: ");
262  		prt_human_readable_u64(&pbuf, vstruct_bytes(buf->data));
263  		prt_newline(&pbuf);
264  		bch2_prt_task_backtrace(&pbuf, current, 1, GFP_NOWAIT);
265  		trace_journal_entry_close(c, pbuf.buf);
266  		printbuf_exit(&pbuf);
267  	}
268  
269  	sectors = vstruct_blocks_plus(buf->data, c->block_bits,
270  				      buf->u64s_reserved) << c->block_bits;
271  	BUG_ON(sectors > buf->sectors);
272  	buf->sectors = sectors;
273  
274  	/*
275  	 * We have to set last_seq here, _before_ opening a new journal entry:
276  	 *
277  	 * A threads may replace an old pin with a new pin on their current
278  	 * journal reservation - the expectation being that the journal will
279  	 * contain either what the old pin protected or what the new pin
280  	 * protects.
281  	 *
282  	 * After the old pin is dropped journal_last_seq() won't include the old
283  	 * pin, so we can only write the updated last_seq on the entry that
284  	 * contains whatever the new pin protects.
285  	 *
286  	 * Restated, we can _not_ update last_seq for a given entry if there
287  	 * could be a newer entry open with reservations/pins that have been
288  	 * taken against it.
289  	 *
290  	 * Hence, we want update/set last_seq on the current journal entry right
291  	 * before we open a new one:
292  	 */
293  	buf->last_seq		= journal_last_seq(j);
294  	buf->data->last_seq	= cpu_to_le64(buf->last_seq);
295  	BUG_ON(buf->last_seq > le64_to_cpu(buf->data->seq));
296  
297  	cancel_delayed_work(&j->write_work);
298  
299  	bch2_journal_space_available(j);
300  
301  	__bch2_journal_buf_put(j, old.idx, le64_to_cpu(buf->data->seq));
302  }
303  
bch2_journal_halt(struct journal * j)304  void bch2_journal_halt(struct journal *j)
305  {
306  	spin_lock(&j->lock);
307  	__journal_entry_close(j, JOURNAL_ENTRY_ERROR_VAL, true);
308  	if (!j->err_seq)
309  		j->err_seq = journal_cur_seq(j);
310  	journal_wake(j);
311  	spin_unlock(&j->lock);
312  }
313  
journal_entry_want_write(struct journal * j)314  static bool journal_entry_want_write(struct journal *j)
315  {
316  	bool ret = !journal_entry_is_open(j) ||
317  		journal_cur_seq(j) == journal_last_unwritten_seq(j);
318  
319  	/* Don't close it yet if we already have a write in flight: */
320  	if (ret)
321  		__journal_entry_close(j, JOURNAL_ENTRY_CLOSED_VAL, true);
322  	else if (nr_unwritten_journal_entries(j)) {
323  		struct journal_buf *buf = journal_cur_buf(j);
324  
325  		if (!buf->flush_time) {
326  			buf->flush_time	= local_clock() ?: 1;
327  			buf->expires = jiffies;
328  		}
329  	}
330  
331  	return ret;
332  }
333  
bch2_journal_entry_close(struct journal * j)334  bool bch2_journal_entry_close(struct journal *j)
335  {
336  	bool ret;
337  
338  	spin_lock(&j->lock);
339  	ret = journal_entry_want_write(j);
340  	spin_unlock(&j->lock);
341  
342  	return ret;
343  }
344  
345  /*
346   * should _only_ called from journal_res_get() - when we actually want a
347   * journal reservation - journal entry is open means journal is dirty:
348   */
journal_entry_open(struct journal * j)349  static int journal_entry_open(struct journal *j)
350  {
351  	struct bch_fs *c = container_of(j, struct bch_fs, journal);
352  	struct journal_buf *buf = j->buf +
353  		((journal_cur_seq(j) + 1) & JOURNAL_BUF_MASK);
354  	union journal_res_state old, new;
355  	int u64s;
356  
357  	lockdep_assert_held(&j->lock);
358  	BUG_ON(journal_entry_is_open(j));
359  	BUG_ON(BCH_SB_CLEAN(c->disk_sb.sb));
360  
361  	if (j->blocked)
362  		return JOURNAL_ERR_blocked;
363  
364  	if (j->cur_entry_error)
365  		return j->cur_entry_error;
366  
367  	if (bch2_journal_error(j))
368  		return JOURNAL_ERR_insufficient_devices; /* -EROFS */
369  
370  	if (!fifo_free(&j->pin))
371  		return JOURNAL_ERR_journal_pin_full;
372  
373  	if (nr_unwritten_journal_entries(j) == ARRAY_SIZE(j->buf))
374  		return JOURNAL_ERR_max_in_flight;
375  
376  	BUG_ON(!j->cur_entry_sectors);
377  
378  	buf->expires		=
379  		(journal_cur_seq(j) == j->flushed_seq_ondisk
380  		 ? jiffies
381  		 : j->last_flush_write) +
382  		msecs_to_jiffies(c->opts.journal_flush_delay);
383  
384  	buf->u64s_reserved	= j->entry_u64s_reserved;
385  	buf->disk_sectors	= j->cur_entry_sectors;
386  	buf->sectors		= min(buf->disk_sectors, buf->buf_size >> 9);
387  
388  	u64s = (int) (buf->sectors << 9) / sizeof(u64) -
389  		journal_entry_overhead(j);
390  	u64s = clamp_t(int, u64s, 0, JOURNAL_ENTRY_CLOSED_VAL - 1);
391  
392  	if (u64s <= (ssize_t) j->early_journal_entries.nr)
393  		return JOURNAL_ERR_journal_full;
394  
395  	if (fifo_empty(&j->pin) && j->reclaim_thread)
396  		wake_up_process(j->reclaim_thread);
397  
398  	/*
399  	 * The fifo_push() needs to happen at the same time as j->seq is
400  	 * incremented for journal_last_seq() to be calculated correctly
401  	 */
402  	atomic64_inc(&j->seq);
403  	journal_pin_list_init(fifo_push_ref(&j->pin), 1);
404  
405  	BUG_ON(j->pin.back - 1 != atomic64_read(&j->seq));
406  
407  	BUG_ON(j->buf + (journal_cur_seq(j) & JOURNAL_BUF_MASK) != buf);
408  
409  	bkey_extent_init(&buf->key);
410  	buf->noflush		= false;
411  	buf->must_flush		= false;
412  	buf->separate_flush	= false;
413  	buf->flush_time		= 0;
414  	buf->need_flush_to_write_buffer = true;
415  	buf->write_started	= false;
416  	buf->write_allocated	= false;
417  	buf->write_done		= false;
418  
419  	memset(buf->data, 0, sizeof(*buf->data));
420  	buf->data->seq	= cpu_to_le64(journal_cur_seq(j));
421  	buf->data->u64s	= 0;
422  
423  	if (j->early_journal_entries.nr) {
424  		memcpy(buf->data->_data, j->early_journal_entries.data,
425  		       j->early_journal_entries.nr * sizeof(u64));
426  		le32_add_cpu(&buf->data->u64s, j->early_journal_entries.nr);
427  	}
428  
429  	/*
430  	 * Must be set before marking the journal entry as open:
431  	 */
432  	j->cur_entry_u64s = u64s;
433  
434  	old.v = atomic64_read(&j->reservations.counter);
435  	do {
436  		new.v = old.v;
437  
438  		BUG_ON(old.cur_entry_offset == JOURNAL_ENTRY_ERROR_VAL);
439  
440  		new.idx++;
441  		BUG_ON(journal_state_count(new, new.idx));
442  		BUG_ON(new.idx != (journal_cur_seq(j) & JOURNAL_BUF_MASK));
443  
444  		journal_state_inc(&new);
445  
446  		/* Handle any already added entries */
447  		new.cur_entry_offset = le32_to_cpu(buf->data->u64s);
448  	} while (!atomic64_try_cmpxchg(&j->reservations.counter,
449  				       &old.v, new.v));
450  
451  	if (nr_unwritten_journal_entries(j) == 1)
452  		mod_delayed_work(j->wq,
453  				 &j->write_work,
454  				 msecs_to_jiffies(c->opts.journal_flush_delay));
455  	journal_wake(j);
456  
457  	if (j->early_journal_entries.nr)
458  		darray_exit(&j->early_journal_entries);
459  	return 0;
460  }
461  
journal_quiesced(struct journal * j)462  static bool journal_quiesced(struct journal *j)
463  {
464  	bool ret = atomic64_read(&j->seq) == j->seq_ondisk;
465  
466  	if (!ret)
467  		bch2_journal_entry_close(j);
468  	return ret;
469  }
470  
journal_quiesce(struct journal * j)471  static void journal_quiesce(struct journal *j)
472  {
473  	wait_event(j->wait, journal_quiesced(j));
474  }
475  
journal_write_work(struct work_struct * work)476  static void journal_write_work(struct work_struct *work)
477  {
478  	struct journal *j = container_of(work, struct journal, write_work.work);
479  
480  	spin_lock(&j->lock);
481  	if (__journal_entry_is_open(j->reservations)) {
482  		long delta = journal_cur_buf(j)->expires - jiffies;
483  
484  		if (delta > 0)
485  			mod_delayed_work(j->wq, &j->write_work, delta);
486  		else
487  			__journal_entry_close(j, JOURNAL_ENTRY_CLOSED_VAL, true);
488  	}
489  	spin_unlock(&j->lock);
490  }
491  
__journal_res_get(struct journal * j,struct journal_res * res,unsigned flags)492  static int __journal_res_get(struct journal *j, struct journal_res *res,
493  			     unsigned flags)
494  {
495  	struct bch_fs *c = container_of(j, struct bch_fs, journal);
496  	struct journal_buf *buf;
497  	bool can_discard;
498  	int ret;
499  retry:
500  	if (journal_res_get_fast(j, res, flags))
501  		return 0;
502  
503  	if (bch2_journal_error(j))
504  		return -BCH_ERR_erofs_journal_err;
505  
506  	if (j->blocked)
507  		return -BCH_ERR_journal_res_get_blocked;
508  
509  	if ((flags & BCH_WATERMARK_MASK) < j->watermark) {
510  		ret = JOURNAL_ERR_journal_full;
511  		can_discard = j->can_discard;
512  		goto out;
513  	}
514  
515  	if (nr_unwritten_journal_entries(j) == ARRAY_SIZE(j->buf) && !journal_entry_is_open(j)) {
516  		ret = JOURNAL_ERR_max_in_flight;
517  		goto out;
518  	}
519  
520  	spin_lock(&j->lock);
521  
522  	/*
523  	 * Recheck after taking the lock, so we don't race with another thread
524  	 * that just did journal_entry_open() and call bch2_journal_entry_close()
525  	 * unnecessarily
526  	 */
527  	if (journal_res_get_fast(j, res, flags)) {
528  		ret = 0;
529  		goto unlock;
530  	}
531  
532  	/*
533  	 * If we couldn't get a reservation because the current buf filled up,
534  	 * and we had room for a bigger entry on disk, signal that we want to
535  	 * realloc the journal bufs:
536  	 */
537  	buf = journal_cur_buf(j);
538  	if (journal_entry_is_open(j) &&
539  	    buf->buf_size >> 9 < buf->disk_sectors &&
540  	    buf->buf_size < JOURNAL_ENTRY_SIZE_MAX)
541  		j->buf_size_want = max(j->buf_size_want, buf->buf_size << 1);
542  
543  	__journal_entry_close(j, JOURNAL_ENTRY_CLOSED_VAL, false);
544  	ret = journal_entry_open(j) ?: JOURNAL_ERR_retry;
545  unlock:
546  	can_discard = j->can_discard;
547  	spin_unlock(&j->lock);
548  out:
549  	if (ret == JOURNAL_ERR_retry)
550  		goto retry;
551  	if (!ret)
552  		return 0;
553  
554  	if (journal_error_check_stuck(j, ret, flags))
555  		ret = -BCH_ERR_journal_res_get_blocked;
556  
557  	if (ret == JOURNAL_ERR_max_in_flight &&
558  	    track_event_change(&c->times[BCH_TIME_blocked_journal_max_in_flight], true)) {
559  
560  		struct printbuf buf = PRINTBUF;
561  		prt_printf(&buf, "seq %llu\n", journal_cur_seq(j));
562  		bch2_journal_bufs_to_text(&buf, j);
563  		trace_journal_entry_full(c, buf.buf);
564  		printbuf_exit(&buf);
565  		count_event(c, journal_entry_full);
566  	}
567  
568  	/*
569  	 * Journal is full - can't rely on reclaim from work item due to
570  	 * freezing:
571  	 */
572  	if ((ret == JOURNAL_ERR_journal_full ||
573  	     ret == JOURNAL_ERR_journal_pin_full) &&
574  	    !(flags & JOURNAL_RES_GET_NONBLOCK)) {
575  		if (can_discard) {
576  			bch2_journal_do_discards(j);
577  			goto retry;
578  		}
579  
580  		if (mutex_trylock(&j->reclaim_lock)) {
581  			bch2_journal_reclaim(j);
582  			mutex_unlock(&j->reclaim_lock);
583  		}
584  	}
585  
586  	return ret == JOURNAL_ERR_insufficient_devices
587  		? -BCH_ERR_erofs_journal_err
588  		: -BCH_ERR_journal_res_get_blocked;
589  }
590  
591  /*
592   * Essentially the entry function to the journaling code. When bcachefs is doing
593   * a btree insert, it calls this function to get the current journal write.
594   * Journal write is the structure used set up journal writes. The calling
595   * function will then add its keys to the structure, queuing them for the next
596   * write.
597   *
598   * To ensure forward progress, the current task must not be holding any
599   * btree node write locks.
600   */
bch2_journal_res_get_slowpath(struct journal * j,struct journal_res * res,unsigned flags)601  int bch2_journal_res_get_slowpath(struct journal *j, struct journal_res *res,
602  				  unsigned flags)
603  {
604  	int ret;
605  
606  	if (closure_wait_event_timeout(&j->async_wait,
607  		   (ret = __journal_res_get(j, res, flags)) != -BCH_ERR_journal_res_get_blocked ||
608  		   (flags & JOURNAL_RES_GET_NONBLOCK),
609  		   HZ * 10))
610  		return ret;
611  
612  	struct bch_fs *c = container_of(j, struct bch_fs, journal);
613  	struct printbuf buf = PRINTBUF;
614  	bch2_journal_debug_to_text(&buf, j);
615  	bch_err(c, "Journal stuck? Waited for 10 seconds...\n%s",
616  		buf.buf);
617  	printbuf_exit(&buf);
618  
619  	closure_wait_event(&j->async_wait,
620  		   (ret = __journal_res_get(j, res, flags)) != -BCH_ERR_journal_res_get_blocked ||
621  		   (flags & JOURNAL_RES_GET_NONBLOCK));
622  	return ret;
623  }
624  
625  /* journal_entry_res: */
626  
bch2_journal_entry_res_resize(struct journal * j,struct journal_entry_res * res,unsigned new_u64s)627  void bch2_journal_entry_res_resize(struct journal *j,
628  				   struct journal_entry_res *res,
629  				   unsigned new_u64s)
630  {
631  	union journal_res_state state;
632  	int d = new_u64s - res->u64s;
633  
634  	spin_lock(&j->lock);
635  
636  	j->entry_u64s_reserved += d;
637  	if (d <= 0)
638  		goto out;
639  
640  	j->cur_entry_u64s = max_t(int, 0, j->cur_entry_u64s - d);
641  	smp_mb();
642  	state = READ_ONCE(j->reservations);
643  
644  	if (state.cur_entry_offset < JOURNAL_ENTRY_CLOSED_VAL &&
645  	    state.cur_entry_offset > j->cur_entry_u64s) {
646  		j->cur_entry_u64s += d;
647  		/*
648  		 * Not enough room in current journal entry, have to flush it:
649  		 */
650  		__journal_entry_close(j, JOURNAL_ENTRY_CLOSED_VAL, true);
651  	} else {
652  		journal_cur_buf(j)->u64s_reserved += d;
653  	}
654  out:
655  	spin_unlock(&j->lock);
656  	res->u64s += d;
657  }
658  
659  /* journal flushing: */
660  
661  /**
662   * bch2_journal_flush_seq_async - wait for a journal entry to be written
663   * @j:		journal object
664   * @seq:	seq to flush
665   * @parent:	closure object to wait with
666   * Returns:	1 if @seq has already been flushed, 0 if @seq is being flushed,
667   *		-EIO if @seq will never be flushed
668   *
669   * Like bch2_journal_wait_on_seq, except that it triggers a write immediately if
670   * necessary
671   */
bch2_journal_flush_seq_async(struct journal * j,u64 seq,struct closure * parent)672  int bch2_journal_flush_seq_async(struct journal *j, u64 seq,
673  				 struct closure *parent)
674  {
675  	struct journal_buf *buf;
676  	int ret = 0;
677  
678  	if (seq <= j->flushed_seq_ondisk)
679  		return 1;
680  
681  	spin_lock(&j->lock);
682  
683  	if (WARN_ONCE(seq > journal_cur_seq(j),
684  		      "requested to flush journal seq %llu, but currently at %llu",
685  		      seq, journal_cur_seq(j)))
686  		goto out;
687  
688  	/* Recheck under lock: */
689  	if (j->err_seq && seq >= j->err_seq) {
690  		ret = -EIO;
691  		goto out;
692  	}
693  
694  	if (seq <= j->flushed_seq_ondisk) {
695  		ret = 1;
696  		goto out;
697  	}
698  
699  	/* if seq was written, but not flushed - flush a newer one instead */
700  	seq = max(seq, journal_last_unwritten_seq(j));
701  
702  recheck_need_open:
703  	if (seq > journal_cur_seq(j)) {
704  		struct journal_res res = { 0 };
705  
706  		if (journal_entry_is_open(j))
707  			__journal_entry_close(j, JOURNAL_ENTRY_CLOSED_VAL, true);
708  
709  		spin_unlock(&j->lock);
710  
711  		/*
712  		 * We're called from bch2_journal_flush_seq() -> wait_event();
713  		 * but this might block. We won't usually block, so we won't
714  		 * livelock:
715  		 */
716  		sched_annotate_sleep();
717  		ret = bch2_journal_res_get(j, &res, jset_u64s(0), 0);
718  		if (ret)
719  			return ret;
720  
721  		seq = res.seq;
722  		buf = journal_seq_to_buf(j, seq);
723  		buf->must_flush = true;
724  
725  		if (!buf->flush_time) {
726  			buf->flush_time	= local_clock() ?: 1;
727  			buf->expires = jiffies;
728  		}
729  
730  		if (parent && !closure_wait(&buf->wait, parent))
731  			BUG();
732  
733  		bch2_journal_res_put(j, &res);
734  
735  		spin_lock(&j->lock);
736  		goto want_write;
737  	}
738  
739  	/*
740  	 * if write was kicked off without a flush, or if we promised it
741  	 * wouldn't be a flush, flush the next sequence number instead
742  	 */
743  	buf = journal_seq_to_buf(j, seq);
744  	if (buf->noflush) {
745  		seq++;
746  		goto recheck_need_open;
747  	}
748  
749  	buf->must_flush = true;
750  
751  	if (parent && !closure_wait(&buf->wait, parent))
752  		BUG();
753  want_write:
754  	if (seq == journal_cur_seq(j))
755  		journal_entry_want_write(j);
756  out:
757  	spin_unlock(&j->lock);
758  	return ret;
759  }
760  
bch2_journal_flush_seq(struct journal * j,u64 seq,unsigned task_state)761  int bch2_journal_flush_seq(struct journal *j, u64 seq, unsigned task_state)
762  {
763  	u64 start_time = local_clock();
764  	int ret, ret2;
765  
766  	/*
767  	 * Don't update time_stats when @seq is already flushed:
768  	 */
769  	if (seq <= j->flushed_seq_ondisk)
770  		return 0;
771  
772  	ret = wait_event_state(j->wait,
773  			       (ret2 = bch2_journal_flush_seq_async(j, seq, NULL)),
774  			       task_state);
775  
776  	if (!ret)
777  		bch2_time_stats_update(j->flush_seq_time, start_time);
778  
779  	return ret ?: ret2 < 0 ? ret2 : 0;
780  }
781  
782  /*
783   * bch2_journal_flush_async - if there is an open journal entry, or a journal
784   * still being written, write it and wait for the write to complete
785   */
bch2_journal_flush_async(struct journal * j,struct closure * parent)786  void bch2_journal_flush_async(struct journal *j, struct closure *parent)
787  {
788  	bch2_journal_flush_seq_async(j, atomic64_read(&j->seq), parent);
789  }
790  
bch2_journal_flush(struct journal * j)791  int bch2_journal_flush(struct journal *j)
792  {
793  	return bch2_journal_flush_seq(j, atomic64_read(&j->seq), TASK_UNINTERRUPTIBLE);
794  }
795  
796  /*
797   * bch2_journal_noflush_seq - tell the journal not to issue any flushes before
798   * @seq
799   */
bch2_journal_noflush_seq(struct journal * j,u64 seq)800  bool bch2_journal_noflush_seq(struct journal *j, u64 seq)
801  {
802  	struct bch_fs *c = container_of(j, struct bch_fs, journal);
803  	u64 unwritten_seq;
804  	bool ret = false;
805  
806  	if (!(c->sb.features & (1ULL << BCH_FEATURE_journal_no_flush)))
807  		return false;
808  
809  	if (seq <= c->journal.flushed_seq_ondisk)
810  		return false;
811  
812  	spin_lock(&j->lock);
813  	if (seq <= c->journal.flushed_seq_ondisk)
814  		goto out;
815  
816  	for (unwritten_seq = journal_last_unwritten_seq(j);
817  	     unwritten_seq < seq;
818  	     unwritten_seq++) {
819  		struct journal_buf *buf = journal_seq_to_buf(j, unwritten_seq);
820  
821  		/* journal flush already in flight, or flush requseted */
822  		if (buf->must_flush)
823  			goto out;
824  
825  		buf->noflush = true;
826  	}
827  
828  	ret = true;
829  out:
830  	spin_unlock(&j->lock);
831  	return ret;
832  }
833  
bch2_journal_meta(struct journal * j)834  int bch2_journal_meta(struct journal *j)
835  {
836  	struct journal_buf *buf;
837  	struct journal_res res;
838  	int ret;
839  
840  	memset(&res, 0, sizeof(res));
841  
842  	ret = bch2_journal_res_get(j, &res, jset_u64s(0), 0);
843  	if (ret)
844  		return ret;
845  
846  	buf = j->buf + (res.seq & JOURNAL_BUF_MASK);
847  	buf->must_flush = true;
848  
849  	if (!buf->flush_time) {
850  		buf->flush_time	= local_clock() ?: 1;
851  		buf->expires = jiffies;
852  	}
853  
854  	bch2_journal_res_put(j, &res);
855  
856  	return bch2_journal_flush_seq(j, res.seq, TASK_UNINTERRUPTIBLE);
857  }
858  
859  /* block/unlock the journal: */
860  
bch2_journal_unblock(struct journal * j)861  void bch2_journal_unblock(struct journal *j)
862  {
863  	spin_lock(&j->lock);
864  	j->blocked--;
865  	spin_unlock(&j->lock);
866  
867  	journal_wake(j);
868  }
869  
bch2_journal_block(struct journal * j)870  void bch2_journal_block(struct journal *j)
871  {
872  	spin_lock(&j->lock);
873  	j->blocked++;
874  	spin_unlock(&j->lock);
875  
876  	journal_quiesce(j);
877  }
878  
__bch2_next_write_buffer_flush_journal_buf(struct journal * j,u64 max_seq)879  static struct journal_buf *__bch2_next_write_buffer_flush_journal_buf(struct journal *j, u64 max_seq)
880  {
881  	struct journal_buf *ret = NULL;
882  
883  	/* We're inside wait_event(), but using mutex_lock(: */
884  	sched_annotate_sleep();
885  	mutex_lock(&j->buf_lock);
886  	spin_lock(&j->lock);
887  	max_seq = min(max_seq, journal_cur_seq(j));
888  
889  	for (u64 seq = journal_last_unwritten_seq(j);
890  	     seq <= max_seq;
891  	     seq++) {
892  		unsigned idx = seq & JOURNAL_BUF_MASK;
893  		struct journal_buf *buf = j->buf + idx;
894  
895  		if (buf->need_flush_to_write_buffer) {
896  			if (seq == journal_cur_seq(j))
897  				__journal_entry_close(j, JOURNAL_ENTRY_CLOSED_VAL, true);
898  
899  			union journal_res_state s;
900  			s.v = atomic64_read_acquire(&j->reservations.counter);
901  
902  			ret = journal_state_count(s, idx)
903  				? ERR_PTR(-EAGAIN)
904  				: buf;
905  			break;
906  		}
907  	}
908  
909  	spin_unlock(&j->lock);
910  	if (IS_ERR_OR_NULL(ret))
911  		mutex_unlock(&j->buf_lock);
912  	return ret;
913  }
914  
bch2_next_write_buffer_flush_journal_buf(struct journal * j,u64 max_seq)915  struct journal_buf *bch2_next_write_buffer_flush_journal_buf(struct journal *j, u64 max_seq)
916  {
917  	struct journal_buf *ret;
918  
919  	wait_event(j->wait, (ret = __bch2_next_write_buffer_flush_journal_buf(j, max_seq)) != ERR_PTR(-EAGAIN));
920  	return ret;
921  }
922  
923  /* allocate journal on a device: */
924  
__bch2_set_nr_journal_buckets(struct bch_dev * ca,unsigned nr,bool new_fs,struct closure * cl)925  static int __bch2_set_nr_journal_buckets(struct bch_dev *ca, unsigned nr,
926  					 bool new_fs, struct closure *cl)
927  {
928  	struct bch_fs *c = ca->fs;
929  	struct journal_device *ja = &ca->journal;
930  	u64 *new_bucket_seq = NULL, *new_buckets = NULL;
931  	struct open_bucket **ob = NULL;
932  	long *bu = NULL;
933  	unsigned i, pos, nr_got = 0, nr_want = nr - ja->nr;
934  	int ret = 0;
935  
936  	BUG_ON(nr <= ja->nr);
937  
938  	bu		= kcalloc(nr_want, sizeof(*bu), GFP_KERNEL);
939  	ob		= kcalloc(nr_want, sizeof(*ob), GFP_KERNEL);
940  	new_buckets	= kcalloc(nr, sizeof(u64), GFP_KERNEL);
941  	new_bucket_seq	= kcalloc(nr, sizeof(u64), GFP_KERNEL);
942  	if (!bu || !ob || !new_buckets || !new_bucket_seq) {
943  		ret = -BCH_ERR_ENOMEM_set_nr_journal_buckets;
944  		goto err_free;
945  	}
946  
947  	for (nr_got = 0; nr_got < nr_want; nr_got++) {
948  		if (new_fs) {
949  			bu[nr_got] = bch2_bucket_alloc_new_fs(ca);
950  			if (bu[nr_got] < 0) {
951  				ret = -BCH_ERR_ENOSPC_bucket_alloc;
952  				break;
953  			}
954  		} else {
955  			ob[nr_got] = bch2_bucket_alloc(c, ca, BCH_WATERMARK_normal,
956  						       BCH_DATA_journal, cl);
957  			ret = PTR_ERR_OR_ZERO(ob[nr_got]);
958  			if (ret)
959  				break;
960  
961  			ret = bch2_trans_run(c,
962  				bch2_trans_mark_metadata_bucket(trans, ca,
963  						ob[nr_got]->bucket, BCH_DATA_journal,
964  						ca->mi.bucket_size, BTREE_TRIGGER_transactional));
965  			if (ret) {
966  				bch2_open_bucket_put(c, ob[nr_got]);
967  				bch_err_msg(c, ret, "marking new journal buckets");
968  				break;
969  			}
970  
971  			bu[nr_got] = ob[nr_got]->bucket;
972  		}
973  	}
974  
975  	if (!nr_got)
976  		goto err_free;
977  
978  	/* Don't return an error if we successfully allocated some buckets: */
979  	ret = 0;
980  
981  	if (c) {
982  		bch2_journal_flush_all_pins(&c->journal);
983  		bch2_journal_block(&c->journal);
984  		mutex_lock(&c->sb_lock);
985  	}
986  
987  	memcpy(new_buckets,	ja->buckets,	ja->nr * sizeof(u64));
988  	memcpy(new_bucket_seq,	ja->bucket_seq,	ja->nr * sizeof(u64));
989  
990  	BUG_ON(ja->discard_idx > ja->nr);
991  
992  	pos = ja->discard_idx ?: ja->nr;
993  
994  	memmove(new_buckets + pos + nr_got,
995  		new_buckets + pos,
996  		sizeof(new_buckets[0]) * (ja->nr - pos));
997  	memmove(new_bucket_seq + pos + nr_got,
998  		new_bucket_seq + pos,
999  		sizeof(new_bucket_seq[0]) * (ja->nr - pos));
1000  
1001  	for (i = 0; i < nr_got; i++) {
1002  		new_buckets[pos + i] = bu[i];
1003  		new_bucket_seq[pos + i] = 0;
1004  	}
1005  
1006  	nr = ja->nr + nr_got;
1007  
1008  	ret = bch2_journal_buckets_to_sb(c, ca, new_buckets, nr);
1009  	if (ret)
1010  		goto err_unblock;
1011  
1012  	if (!new_fs)
1013  		bch2_write_super(c);
1014  
1015  	/* Commit: */
1016  	if (c)
1017  		spin_lock(&c->journal.lock);
1018  
1019  	swap(new_buckets,	ja->buckets);
1020  	swap(new_bucket_seq,	ja->bucket_seq);
1021  	ja->nr = nr;
1022  
1023  	if (pos <= ja->discard_idx)
1024  		ja->discard_idx = (ja->discard_idx + nr_got) % ja->nr;
1025  	if (pos <= ja->dirty_idx_ondisk)
1026  		ja->dirty_idx_ondisk = (ja->dirty_idx_ondisk + nr_got) % ja->nr;
1027  	if (pos <= ja->dirty_idx)
1028  		ja->dirty_idx = (ja->dirty_idx + nr_got) % ja->nr;
1029  	if (pos <= ja->cur_idx)
1030  		ja->cur_idx = (ja->cur_idx + nr_got) % ja->nr;
1031  
1032  	if (c)
1033  		spin_unlock(&c->journal.lock);
1034  err_unblock:
1035  	if (c) {
1036  		bch2_journal_unblock(&c->journal);
1037  		mutex_unlock(&c->sb_lock);
1038  	}
1039  
1040  	if (ret && !new_fs)
1041  		for (i = 0; i < nr_got; i++)
1042  			bch2_trans_run(c,
1043  				bch2_trans_mark_metadata_bucket(trans, ca,
1044  						bu[i], BCH_DATA_free, 0,
1045  						BTREE_TRIGGER_transactional));
1046  err_free:
1047  	if (!new_fs)
1048  		for (i = 0; i < nr_got; i++)
1049  			bch2_open_bucket_put(c, ob[i]);
1050  
1051  	kfree(new_bucket_seq);
1052  	kfree(new_buckets);
1053  	kfree(ob);
1054  	kfree(bu);
1055  	return ret;
1056  }
1057  
1058  /*
1059   * Allocate more journal space at runtime - not currently making use if it, but
1060   * the code works:
1061   */
bch2_set_nr_journal_buckets(struct bch_fs * c,struct bch_dev * ca,unsigned nr)1062  int bch2_set_nr_journal_buckets(struct bch_fs *c, struct bch_dev *ca,
1063  				unsigned nr)
1064  {
1065  	struct journal_device *ja = &ca->journal;
1066  	struct closure cl;
1067  	int ret = 0;
1068  
1069  	closure_init_stack(&cl);
1070  
1071  	down_write(&c->state_lock);
1072  
1073  	/* don't handle reducing nr of buckets yet: */
1074  	if (nr < ja->nr)
1075  		goto unlock;
1076  
1077  	while (ja->nr < nr) {
1078  		struct disk_reservation disk_res = { 0, 0, 0 };
1079  
1080  		/*
1081  		 * note: journal buckets aren't really counted as _sectors_ used yet, so
1082  		 * we don't need the disk reservation to avoid the BUG_ON() in buckets.c
1083  		 * when space used goes up without a reservation - but we do need the
1084  		 * reservation to ensure we'll actually be able to allocate:
1085  		 *
1086  		 * XXX: that's not right, disk reservations only ensure a
1087  		 * filesystem-wide allocation will succeed, this is a device
1088  		 * specific allocation - we can hang here:
1089  		 */
1090  
1091  		ret = bch2_disk_reservation_get(c, &disk_res,
1092  						bucket_to_sector(ca, nr - ja->nr), 1, 0);
1093  		if (ret)
1094  			break;
1095  
1096  		ret = __bch2_set_nr_journal_buckets(ca, nr, false, &cl);
1097  
1098  		bch2_disk_reservation_put(c, &disk_res);
1099  
1100  		closure_sync(&cl);
1101  
1102  		if (ret && ret != -BCH_ERR_bucket_alloc_blocked)
1103  			break;
1104  	}
1105  
1106  	bch_err_fn(c, ret);
1107  unlock:
1108  	up_write(&c->state_lock);
1109  	return ret;
1110  }
1111  
bch2_dev_journal_alloc(struct bch_dev * ca,bool new_fs)1112  int bch2_dev_journal_alloc(struct bch_dev *ca, bool new_fs)
1113  {
1114  	unsigned nr;
1115  	int ret;
1116  
1117  	if (dynamic_fault("bcachefs:add:journal_alloc")) {
1118  		ret = -BCH_ERR_ENOMEM_set_nr_journal_buckets;
1119  		goto err;
1120  	}
1121  
1122  	/* 1/128th of the device by default: */
1123  	nr = ca->mi.nbuckets >> 7;
1124  
1125  	/*
1126  	 * clamp journal size to 8192 buckets or 8GB (in sectors), whichever
1127  	 * is smaller:
1128  	 */
1129  	nr = clamp_t(unsigned, nr,
1130  		     BCH_JOURNAL_BUCKETS_MIN,
1131  		     min(1 << 13,
1132  			 (1 << 24) / ca->mi.bucket_size));
1133  
1134  	ret = __bch2_set_nr_journal_buckets(ca, nr, new_fs, NULL);
1135  err:
1136  	bch_err_fn(ca, ret);
1137  	return ret;
1138  }
1139  
bch2_fs_journal_alloc(struct bch_fs * c)1140  int bch2_fs_journal_alloc(struct bch_fs *c)
1141  {
1142  	for_each_online_member(c, ca) {
1143  		if (ca->journal.nr)
1144  			continue;
1145  
1146  		int ret = bch2_dev_journal_alloc(ca, true);
1147  		if (ret) {
1148  			percpu_ref_put(&ca->io_ref);
1149  			return ret;
1150  		}
1151  	}
1152  
1153  	return 0;
1154  }
1155  
1156  /* startup/shutdown: */
1157  
bch2_journal_writing_to_device(struct journal * j,unsigned dev_idx)1158  static bool bch2_journal_writing_to_device(struct journal *j, unsigned dev_idx)
1159  {
1160  	bool ret = false;
1161  	u64 seq;
1162  
1163  	spin_lock(&j->lock);
1164  	for (seq = journal_last_unwritten_seq(j);
1165  	     seq <= journal_cur_seq(j) && !ret;
1166  	     seq++) {
1167  		struct journal_buf *buf = journal_seq_to_buf(j, seq);
1168  
1169  		if (bch2_bkey_has_device_c(bkey_i_to_s_c(&buf->key), dev_idx))
1170  			ret = true;
1171  	}
1172  	spin_unlock(&j->lock);
1173  
1174  	return ret;
1175  }
1176  
bch2_dev_journal_stop(struct journal * j,struct bch_dev * ca)1177  void bch2_dev_journal_stop(struct journal *j, struct bch_dev *ca)
1178  {
1179  	wait_event(j->wait, !bch2_journal_writing_to_device(j, ca->dev_idx));
1180  }
1181  
bch2_fs_journal_stop(struct journal * j)1182  void bch2_fs_journal_stop(struct journal *j)
1183  {
1184  	if (!test_bit(JOURNAL_running, &j->flags))
1185  		return;
1186  
1187  	bch2_journal_reclaim_stop(j);
1188  	bch2_journal_flush_all_pins(j);
1189  
1190  	wait_event(j->wait, bch2_journal_entry_close(j));
1191  
1192  	/*
1193  	 * Always write a new journal entry, to make sure the clock hands are up
1194  	 * to date (and match the superblock)
1195  	 */
1196  	bch2_journal_meta(j);
1197  
1198  	journal_quiesce(j);
1199  	cancel_delayed_work_sync(&j->write_work);
1200  
1201  	WARN(!bch2_journal_error(j) &&
1202  	     test_bit(JOURNAL_replay_done, &j->flags) &&
1203  	     j->last_empty_seq != journal_cur_seq(j),
1204  	     "journal shutdown error: cur seq %llu but last empty seq %llu",
1205  	     journal_cur_seq(j), j->last_empty_seq);
1206  
1207  	if (!bch2_journal_error(j))
1208  		clear_bit(JOURNAL_running, &j->flags);
1209  }
1210  
bch2_fs_journal_start(struct journal * j,u64 cur_seq)1211  int bch2_fs_journal_start(struct journal *j, u64 cur_seq)
1212  {
1213  	struct bch_fs *c = container_of(j, struct bch_fs, journal);
1214  	struct journal_entry_pin_list *p;
1215  	struct journal_replay *i, **_i;
1216  	struct genradix_iter iter;
1217  	bool had_entries = false;
1218  	u64 last_seq = cur_seq, nr, seq;
1219  
1220  	genradix_for_each_reverse(&c->journal_entries, iter, _i) {
1221  		i = *_i;
1222  
1223  		if (journal_replay_ignore(i))
1224  			continue;
1225  
1226  		last_seq = le64_to_cpu(i->j.last_seq);
1227  		break;
1228  	}
1229  
1230  	nr = cur_seq - last_seq;
1231  
1232  	if (nr + 1 > j->pin.size) {
1233  		free_fifo(&j->pin);
1234  		init_fifo(&j->pin, roundup_pow_of_two(nr + 1), GFP_KERNEL);
1235  		if (!j->pin.data) {
1236  			bch_err(c, "error reallocating journal fifo (%llu open entries)", nr);
1237  			return -BCH_ERR_ENOMEM_journal_pin_fifo;
1238  		}
1239  	}
1240  
1241  	j->replay_journal_seq	= last_seq;
1242  	j->replay_journal_seq_end = cur_seq;
1243  	j->last_seq_ondisk	= last_seq;
1244  	j->flushed_seq_ondisk	= cur_seq - 1;
1245  	j->seq_ondisk		= cur_seq - 1;
1246  	j->pin.front		= last_seq;
1247  	j->pin.back		= cur_seq;
1248  	atomic64_set(&j->seq, cur_seq - 1);
1249  
1250  	fifo_for_each_entry_ptr(p, &j->pin, seq)
1251  		journal_pin_list_init(p, 1);
1252  
1253  	genradix_for_each(&c->journal_entries, iter, _i) {
1254  		i = *_i;
1255  
1256  		if (journal_replay_ignore(i))
1257  			continue;
1258  
1259  		seq = le64_to_cpu(i->j.seq);
1260  		BUG_ON(seq >= cur_seq);
1261  
1262  		if (seq < last_seq)
1263  			continue;
1264  
1265  		if (journal_entry_empty(&i->j))
1266  			j->last_empty_seq = le64_to_cpu(i->j.seq);
1267  
1268  		p = journal_seq_pin(j, seq);
1269  
1270  		p->devs.nr = 0;
1271  		darray_for_each(i->ptrs, ptr)
1272  			bch2_dev_list_add_dev(&p->devs, ptr->dev);
1273  
1274  		had_entries = true;
1275  	}
1276  
1277  	if (!had_entries)
1278  		j->last_empty_seq = cur_seq - 1; /* to match j->seq */
1279  
1280  	spin_lock(&j->lock);
1281  
1282  	set_bit(JOURNAL_running, &j->flags);
1283  	j->last_flush_write = jiffies;
1284  
1285  	j->reservations.idx = j->reservations.unwritten_idx = journal_cur_seq(j);
1286  	j->reservations.unwritten_idx++;
1287  
1288  	c->last_bucket_seq_cleanup = journal_cur_seq(j);
1289  
1290  	bch2_journal_space_available(j);
1291  	spin_unlock(&j->lock);
1292  
1293  	return bch2_journal_reclaim_start(j);
1294  }
1295  
1296  /* init/exit: */
1297  
bch2_dev_journal_exit(struct bch_dev * ca)1298  void bch2_dev_journal_exit(struct bch_dev *ca)
1299  {
1300  	struct journal_device *ja = &ca->journal;
1301  
1302  	for (unsigned i = 0; i < ARRAY_SIZE(ja->bio); i++) {
1303  		kfree(ja->bio[i]);
1304  		ja->bio[i] = NULL;
1305  	}
1306  
1307  	kfree(ja->buckets);
1308  	kfree(ja->bucket_seq);
1309  	ja->buckets	= NULL;
1310  	ja->bucket_seq	= NULL;
1311  }
1312  
bch2_dev_journal_init(struct bch_dev * ca,struct bch_sb * sb)1313  int bch2_dev_journal_init(struct bch_dev *ca, struct bch_sb *sb)
1314  {
1315  	struct journal_device *ja = &ca->journal;
1316  	struct bch_sb_field_journal *journal_buckets =
1317  		bch2_sb_field_get(sb, journal);
1318  	struct bch_sb_field_journal_v2 *journal_buckets_v2 =
1319  		bch2_sb_field_get(sb, journal_v2);
1320  
1321  	ja->nr = 0;
1322  
1323  	if (journal_buckets_v2) {
1324  		unsigned nr = bch2_sb_field_journal_v2_nr_entries(journal_buckets_v2);
1325  
1326  		for (unsigned i = 0; i < nr; i++)
1327  			ja->nr += le64_to_cpu(journal_buckets_v2->d[i].nr);
1328  	} else if (journal_buckets) {
1329  		ja->nr = bch2_nr_journal_buckets(journal_buckets);
1330  	}
1331  
1332  	ja->bucket_seq = kcalloc(ja->nr, sizeof(u64), GFP_KERNEL);
1333  	if (!ja->bucket_seq)
1334  		return -BCH_ERR_ENOMEM_dev_journal_init;
1335  
1336  	unsigned nr_bvecs = DIV_ROUND_UP(JOURNAL_ENTRY_SIZE_MAX, PAGE_SIZE);
1337  
1338  	for (unsigned i = 0; i < ARRAY_SIZE(ja->bio); i++) {
1339  		ja->bio[i] = kmalloc(struct_size(ja->bio[i], bio.bi_inline_vecs,
1340  				     nr_bvecs), GFP_KERNEL);
1341  		if (!ja->bio[i])
1342  			return -BCH_ERR_ENOMEM_dev_journal_init;
1343  
1344  		ja->bio[i]->ca = ca;
1345  		ja->bio[i]->buf_idx = i;
1346  		bio_init(&ja->bio[i]->bio, NULL, ja->bio[i]->bio.bi_inline_vecs, nr_bvecs, 0);
1347  	}
1348  
1349  	ja->buckets = kcalloc(ja->nr, sizeof(u64), GFP_KERNEL);
1350  	if (!ja->buckets)
1351  		return -BCH_ERR_ENOMEM_dev_journal_init;
1352  
1353  	if (journal_buckets_v2) {
1354  		unsigned nr = bch2_sb_field_journal_v2_nr_entries(journal_buckets_v2);
1355  		unsigned dst = 0;
1356  
1357  		for (unsigned i = 0; i < nr; i++)
1358  			for (unsigned j = 0; j < le64_to_cpu(journal_buckets_v2->d[i].nr); j++)
1359  				ja->buckets[dst++] =
1360  					le64_to_cpu(journal_buckets_v2->d[i].start) + j;
1361  	} else if (journal_buckets) {
1362  		for (unsigned i = 0; i < ja->nr; i++)
1363  			ja->buckets[i] = le64_to_cpu(journal_buckets->buckets[i]);
1364  	}
1365  
1366  	return 0;
1367  }
1368  
bch2_fs_journal_exit(struct journal * j)1369  void bch2_fs_journal_exit(struct journal *j)
1370  {
1371  	if (j->wq)
1372  		destroy_workqueue(j->wq);
1373  
1374  	darray_exit(&j->early_journal_entries);
1375  
1376  	for (unsigned i = 0; i < ARRAY_SIZE(j->buf); i++)
1377  		kvfree(j->buf[i].data);
1378  	free_fifo(&j->pin);
1379  }
1380  
bch2_fs_journal_init(struct journal * j)1381  int bch2_fs_journal_init(struct journal *j)
1382  {
1383  	static struct lock_class_key res_key;
1384  
1385  	mutex_init(&j->buf_lock);
1386  	spin_lock_init(&j->lock);
1387  	spin_lock_init(&j->err_lock);
1388  	init_waitqueue_head(&j->wait);
1389  	INIT_DELAYED_WORK(&j->write_work, journal_write_work);
1390  	init_waitqueue_head(&j->reclaim_wait);
1391  	init_waitqueue_head(&j->pin_flush_wait);
1392  	mutex_init(&j->reclaim_lock);
1393  	mutex_init(&j->discard_lock);
1394  
1395  	lockdep_init_map(&j->res_map, "journal res", &res_key, 0);
1396  
1397  	atomic64_set(&j->reservations.counter,
1398  		((union journal_res_state)
1399  		 { .cur_entry_offset = JOURNAL_ENTRY_CLOSED_VAL }).v);
1400  
1401  	if (!(init_fifo(&j->pin, JOURNAL_PIN, GFP_KERNEL)))
1402  		return -BCH_ERR_ENOMEM_journal_pin_fifo;
1403  
1404  	for (unsigned i = 0; i < ARRAY_SIZE(j->buf); i++) {
1405  		j->buf[i].buf_size = JOURNAL_ENTRY_SIZE_MIN;
1406  		j->buf[i].data = kvmalloc(j->buf[i].buf_size, GFP_KERNEL);
1407  		if (!j->buf[i].data)
1408  			return -BCH_ERR_ENOMEM_journal_buf;
1409  		j->buf[i].idx = i;
1410  	}
1411  
1412  	j->pin.front = j->pin.back = 1;
1413  
1414  	j->wq = alloc_workqueue("bcachefs_journal",
1415  				WQ_HIGHPRI|WQ_FREEZABLE|WQ_UNBOUND|WQ_MEM_RECLAIM, 512);
1416  	if (!j->wq)
1417  		return -BCH_ERR_ENOMEM_fs_other_alloc;
1418  	return 0;
1419  }
1420  
1421  /* debug: */
1422  
1423  static const char * const bch2_journal_flags_strs[] = {
1424  #define x(n)	#n,
1425  	JOURNAL_FLAGS()
1426  #undef x
1427  	NULL
1428  };
1429  
__bch2_journal_debug_to_text(struct printbuf * out,struct journal * j)1430  void __bch2_journal_debug_to_text(struct printbuf *out, struct journal *j)
1431  {
1432  	struct bch_fs *c = container_of(j, struct bch_fs, journal);
1433  	union journal_res_state s;
1434  	unsigned long now = jiffies;
1435  	u64 nr_writes = j->nr_flush_writes + j->nr_noflush_writes;
1436  
1437  	printbuf_tabstops_reset(out);
1438  	printbuf_tabstop_push(out, 28);
1439  	out->atomic++;
1440  
1441  	rcu_read_lock();
1442  	s = READ_ONCE(j->reservations);
1443  
1444  	prt_printf(out, "flags:\t");
1445  	prt_bitflags(out, bch2_journal_flags_strs, j->flags);
1446  	prt_newline(out);
1447  	prt_printf(out, "dirty journal entries:\t%llu/%llu\n",	fifo_used(&j->pin), j->pin.size);
1448  	prt_printf(out, "seq:\t%llu\n",				journal_cur_seq(j));
1449  	prt_printf(out, "seq_ondisk:\t%llu\n",			j->seq_ondisk);
1450  	prt_printf(out, "last_seq:\t%llu\n",			journal_last_seq(j));
1451  	prt_printf(out, "last_seq_ondisk:\t%llu\n",		j->last_seq_ondisk);
1452  	prt_printf(out, "flushed_seq_ondisk:\t%llu\n",		j->flushed_seq_ondisk);
1453  	prt_printf(out, "watermark:\t%s\n",			bch2_watermarks[j->watermark]);
1454  	prt_printf(out, "each entry reserved:\t%u\n",		j->entry_u64s_reserved);
1455  	prt_printf(out, "nr flush writes:\t%llu\n",		j->nr_flush_writes);
1456  	prt_printf(out, "nr noflush writes:\t%llu\n",		j->nr_noflush_writes);
1457  	prt_printf(out, "average write size:\t");
1458  	prt_human_readable_u64(out, nr_writes ? div64_u64(j->entry_bytes_written, nr_writes) : 0);
1459  	prt_newline(out);
1460  	prt_printf(out, "nr direct reclaim:\t%llu\n",		j->nr_direct_reclaim);
1461  	prt_printf(out, "nr background reclaim:\t%llu\n",	j->nr_background_reclaim);
1462  	prt_printf(out, "reclaim kicked:\t%u\n",		j->reclaim_kicked);
1463  	prt_printf(out, "reclaim runs in:\t%u ms\n",		time_after(j->next_reclaim, now)
1464  	       ? jiffies_to_msecs(j->next_reclaim - jiffies) : 0);
1465  	prt_printf(out, "blocked:\t%u\n",			j->blocked);
1466  	prt_printf(out, "current entry sectors:\t%u\n",		j->cur_entry_sectors);
1467  	prt_printf(out, "current entry error:\t%s\n",		bch2_journal_errors[j->cur_entry_error]);
1468  	prt_printf(out, "current entry:\t");
1469  
1470  	switch (s.cur_entry_offset) {
1471  	case JOURNAL_ENTRY_ERROR_VAL:
1472  		prt_printf(out, "error\n");
1473  		break;
1474  	case JOURNAL_ENTRY_CLOSED_VAL:
1475  		prt_printf(out, "closed\n");
1476  		break;
1477  	default:
1478  		prt_printf(out, "%u/%u\n", s.cur_entry_offset, j->cur_entry_u64s);
1479  		break;
1480  	}
1481  
1482  	prt_printf(out, "unwritten entries:\n");
1483  	bch2_journal_bufs_to_text(out, j);
1484  
1485  	prt_printf(out, "space:\n");
1486  	printbuf_indent_add(out, 2);
1487  	prt_printf(out, "discarded\t%u:%u\n",
1488  	       j->space[journal_space_discarded].next_entry,
1489  	       j->space[journal_space_discarded].total);
1490  	prt_printf(out, "clean ondisk\t%u:%u\n",
1491  	       j->space[journal_space_clean_ondisk].next_entry,
1492  	       j->space[journal_space_clean_ondisk].total);
1493  	prt_printf(out, "clean\t%u:%u\n",
1494  	       j->space[journal_space_clean].next_entry,
1495  	       j->space[journal_space_clean].total);
1496  	prt_printf(out, "total\t%u:%u\n",
1497  	       j->space[journal_space_total].next_entry,
1498  	       j->space[journal_space_total].total);
1499  	printbuf_indent_sub(out, 2);
1500  
1501  	for_each_member_device_rcu(c, ca, &c->rw_devs[BCH_DATA_journal]) {
1502  		struct journal_device *ja = &ca->journal;
1503  
1504  		if (!test_bit(ca->dev_idx, c->rw_devs[BCH_DATA_journal].d))
1505  			continue;
1506  
1507  		if (!ja->nr)
1508  			continue;
1509  
1510  		prt_printf(out, "dev %u:\n",			ca->dev_idx);
1511  		printbuf_indent_add(out, 2);
1512  		prt_printf(out, "nr\t%u\n",			ja->nr);
1513  		prt_printf(out, "bucket size\t%u\n",		ca->mi.bucket_size);
1514  		prt_printf(out, "available\t%u:%u\n",		bch2_journal_dev_buckets_available(j, ja, journal_space_discarded), ja->sectors_free);
1515  		prt_printf(out, "discard_idx\t%u\n",		ja->discard_idx);
1516  		prt_printf(out, "dirty_ondisk\t%u (seq %llu)\n",ja->dirty_idx_ondisk,	ja->bucket_seq[ja->dirty_idx_ondisk]);
1517  		prt_printf(out, "dirty_idx\t%u (seq %llu)\n",	ja->dirty_idx,		ja->bucket_seq[ja->dirty_idx]);
1518  		prt_printf(out, "cur_idx\t%u (seq %llu)\n",	ja->cur_idx,		ja->bucket_seq[ja->cur_idx]);
1519  		printbuf_indent_sub(out, 2);
1520  	}
1521  
1522  	rcu_read_unlock();
1523  
1524  	--out->atomic;
1525  }
1526  
bch2_journal_debug_to_text(struct printbuf * out,struct journal * j)1527  void bch2_journal_debug_to_text(struct printbuf *out, struct journal *j)
1528  {
1529  	spin_lock(&j->lock);
1530  	__bch2_journal_debug_to_text(out, j);
1531  	spin_unlock(&j->lock);
1532  }
1533  
bch2_journal_seq_pins_to_text(struct printbuf * out,struct journal * j,u64 * seq)1534  bool bch2_journal_seq_pins_to_text(struct printbuf *out, struct journal *j, u64 *seq)
1535  {
1536  	struct journal_entry_pin_list *pin_list;
1537  	struct journal_entry_pin *pin;
1538  
1539  	spin_lock(&j->lock);
1540  	if (!test_bit(JOURNAL_running, &j->flags)) {
1541  		spin_unlock(&j->lock);
1542  		return true;
1543  	}
1544  
1545  	*seq = max(*seq, j->pin.front);
1546  
1547  	if (*seq >= j->pin.back) {
1548  		spin_unlock(&j->lock);
1549  		return true;
1550  	}
1551  
1552  	out->atomic++;
1553  
1554  	pin_list = journal_seq_pin(j, *seq);
1555  
1556  	prt_printf(out, "%llu: count %u\n", *seq, atomic_read(&pin_list->count));
1557  	printbuf_indent_add(out, 2);
1558  
1559  	for (unsigned i = 0; i < ARRAY_SIZE(pin_list->list); i++)
1560  		list_for_each_entry(pin, &pin_list->list[i], list)
1561  			prt_printf(out, "\t%px %ps\n", pin, pin->flush);
1562  
1563  	if (!list_empty(&pin_list->flushed))
1564  		prt_printf(out, "flushed:\n");
1565  
1566  	list_for_each_entry(pin, &pin_list->flushed, list)
1567  		prt_printf(out, "\t%px %ps\n", pin, pin->flush);
1568  
1569  	printbuf_indent_sub(out, 2);
1570  
1571  	--out->atomic;
1572  	spin_unlock(&j->lock);
1573  
1574  	return false;
1575  }
1576  
bch2_journal_pins_to_text(struct printbuf * out,struct journal * j)1577  void bch2_journal_pins_to_text(struct printbuf *out, struct journal *j)
1578  {
1579  	u64 seq = 0;
1580  
1581  	while (!bch2_journal_seq_pins_to_text(out, j, &seq))
1582  		seq++;
1583  }
1584