xref: /linux/fs/f2fs/segment.c (revision 49bda4826843be0ef97a162009a29ea3a63f3935)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * fs/f2fs/segment.c
4  *
5  * Copyright (c) 2012 Samsung Electronics Co., Ltd.
6  *             http://www.samsung.com/
7  */
8 #include <linux/fs.h>
9 #include <linux/f2fs_fs.h>
10 #include <linux/bio.h>
11 #include <linux/blkdev.h>
12 #include <linux/sched/mm.h>
13 #include <linux/prefetch.h>
14 #include <linux/kthread.h>
15 #include <linux/swap.h>
16 #include <linux/timer.h>
17 #include <linux/freezer.h>
18 #include <linux/sched/signal.h>
19 #include <linux/random.h>
20 #include <linux/fserror.h>
21 
22 #include "f2fs.h"
23 #include "segment.h"
24 #include "node.h"
25 #include "gc.h"
26 #include "iostat.h"
27 #include <trace/events/f2fs.h>
28 
29 #define __reverse_ffz(x) __reverse_ffs(~(x))
30 
31 static struct kmem_cache *discard_entry_slab;
32 static struct kmem_cache *discard_cmd_slab;
33 static struct kmem_cache *sit_entry_set_slab;
34 static struct kmem_cache *revoke_entry_slab;
35 
__reverse_ulong(unsigned char * str)36 static unsigned long __reverse_ulong(unsigned char *str)
37 {
38 	unsigned long tmp = 0;
39 	int shift = 24, idx = 0;
40 
41 #if BITS_PER_LONG == 64
42 	shift = 56;
43 #endif
44 	while (shift >= 0) {
45 		tmp |= (unsigned long)str[idx++] << shift;
46 		shift -= BITS_PER_BYTE;
47 	}
48 	return tmp;
49 }
50 
51 /*
52  * __reverse_ffs is copied from include/asm-generic/bitops/__ffs.h since
53  * MSB and LSB are reversed in a byte by f2fs_set_bit.
54  */
__reverse_ffs(unsigned long word)55 static inline unsigned long __reverse_ffs(unsigned long word)
56 {
57 	int num = 0;
58 
59 #if BITS_PER_LONG == 64
60 	if ((word & 0xffffffff00000000UL) == 0)
61 		num += 32;
62 	else
63 		word >>= 32;
64 #endif
65 	if ((word & 0xffff0000) == 0)
66 		num += 16;
67 	else
68 		word >>= 16;
69 
70 	if ((word & 0xff00) == 0)
71 		num += 8;
72 	else
73 		word >>= 8;
74 
75 	if ((word & 0xf0) == 0)
76 		num += 4;
77 	else
78 		word >>= 4;
79 
80 	if ((word & 0xc) == 0)
81 		num += 2;
82 	else
83 		word >>= 2;
84 
85 	if ((word & 0x2) == 0)
86 		num += 1;
87 	return num;
88 }
89 
90 /*
91  * __find_rev_next(_zero)_bit is copied from lib/find_next_bit.c because
92  * f2fs_set_bit makes MSB and LSB reversed in a byte.
93  * @size must be integral times of unsigned long.
94  * Example:
95  *                             MSB <--> LSB
96  *   f2fs_set_bit(0, bitmap) => 1000 0000
97  *   f2fs_set_bit(7, bitmap) => 0000 0001
98  */
__find_rev_next_bit(const unsigned long * addr,unsigned long size,unsigned long offset)99 static unsigned long __find_rev_next_bit(const unsigned long *addr,
100 			unsigned long size, unsigned long offset)
101 {
102 	const unsigned long *p = addr + BIT_WORD(offset);
103 	unsigned long result = size;
104 	unsigned long tmp;
105 
106 	if (offset >= size)
107 		return size;
108 
109 	size -= (offset & ~(BITS_PER_LONG - 1));
110 	offset %= BITS_PER_LONG;
111 
112 	while (1) {
113 		if (*p == 0)
114 			goto pass;
115 
116 		tmp = __reverse_ulong((unsigned char *)p);
117 
118 		tmp &= ~0UL >> offset;
119 		if (size < BITS_PER_LONG)
120 			tmp &= (~0UL << (BITS_PER_LONG - size));
121 		if (tmp)
122 			goto found;
123 pass:
124 		if (size <= BITS_PER_LONG)
125 			break;
126 		size -= BITS_PER_LONG;
127 		offset = 0;
128 		p++;
129 	}
130 	return result;
131 found:
132 	return result - size + __reverse_ffs(tmp);
133 }
134 
__find_rev_next_zero_bit(const unsigned long * addr,unsigned long size,unsigned long offset)135 static unsigned long __find_rev_next_zero_bit(const unsigned long *addr,
136 			unsigned long size, unsigned long offset)
137 {
138 	const unsigned long *p = addr + BIT_WORD(offset);
139 	unsigned long result = size;
140 	unsigned long tmp;
141 
142 	if (offset >= size)
143 		return size;
144 
145 	size -= (offset & ~(BITS_PER_LONG - 1));
146 	offset %= BITS_PER_LONG;
147 
148 	while (1) {
149 		if (*p == ~0UL)
150 			goto pass;
151 
152 		tmp = __reverse_ulong((unsigned char *)p);
153 
154 		if (offset)
155 			tmp |= ~0UL << (BITS_PER_LONG - offset);
156 		if (size < BITS_PER_LONG)
157 			tmp |= ~0UL >> size;
158 		if (tmp != ~0UL)
159 			goto found;
160 pass:
161 		if (size <= BITS_PER_LONG)
162 			break;
163 		size -= BITS_PER_LONG;
164 		offset = 0;
165 		p++;
166 	}
167 	return result;
168 found:
169 	return result - size + __reverse_ffz(tmp);
170 }
171 
f2fs_need_SSR(struct f2fs_sb_info * sbi)172 bool f2fs_need_SSR(struct f2fs_sb_info *sbi)
173 {
174 	int node_secs = get_blocktype_secs(sbi, F2FS_DIRTY_NODES);
175 	int dent_secs = get_blocktype_secs(sbi, F2FS_DIRTY_DENTS);
176 	int imeta_secs = get_blocktype_secs(sbi, F2FS_DIRTY_IMETA);
177 
178 	if (f2fs_lfs_mode(sbi))
179 		return false;
180 	if (sbi->gc_mode == GC_URGENT_HIGH)
181 		return true;
182 	if (unlikely(is_sbi_flag_set(sbi, SBI_CP_DISABLED)))
183 		return true;
184 
185 	return free_sections(sbi) <= (node_secs + 2 * dent_secs + imeta_secs +
186 			SM_I(sbi)->min_ssr_sections + reserved_sections(sbi));
187 }
188 
f2fs_abort_atomic_write(struct inode * inode,bool clean)189 void f2fs_abort_atomic_write(struct inode *inode, bool clean)
190 {
191 	struct f2fs_inode_info *fi = F2FS_I(inode);
192 
193 	if (!f2fs_is_atomic_file(inode))
194 		return;
195 
196 	if (clean)
197 		truncate_inode_pages_final(inode->i_mapping);
198 
199 	release_atomic_write_cnt(inode);
200 	clear_inode_flag(inode, FI_ATOMIC_COMMITTED);
201 	clear_inode_flag(inode, FI_ATOMIC_REPLACE);
202 	clear_inode_flag(inode, FI_ATOMIC_FILE);
203 	if (is_inode_flag_set(inode, FI_ATOMIC_DIRTIED)) {
204 		clear_inode_flag(inode, FI_ATOMIC_DIRTIED);
205 		/*
206 		 * The vfs inode keeps clean during commit, but the f2fs inode
207 		 * doesn't. So clear the dirty state after commit and let
208 		 * f2fs_mark_inode_dirty_sync ensure a consistent dirty state.
209 		 */
210 		f2fs_inode_synced(inode);
211 		f2fs_mark_inode_dirty_sync(inode, true);
212 	}
213 	stat_dec_atomic_inode(inode);
214 
215 	F2FS_I(inode)->atomic_write_task = NULL;
216 
217 	if (clean) {
218 		f2fs_i_size_write(inode, fi->original_i_size);
219 		fi->original_i_size = 0;
220 	}
221 	/* avoid stale dirty inode during eviction */
222 	sync_inode_metadata(inode, 0);
223 }
224 
__replace_atomic_write_block(struct inode * inode,pgoff_t index,block_t new_addr,block_t * old_addr,bool recover)225 static int __replace_atomic_write_block(struct inode *inode, pgoff_t index,
226 			block_t new_addr, block_t *old_addr, bool recover)
227 {
228 	struct f2fs_sb_info *sbi = F2FS_I_SB(inode);
229 	struct dnode_of_data dn;
230 	struct node_info ni;
231 	int err;
232 
233 retry:
234 	set_new_dnode(&dn, inode, NULL, NULL, 0);
235 	err = f2fs_get_dnode_of_data(&dn, index, ALLOC_NODE);
236 	if (err) {
237 		if (err == -ENOMEM) {
238 			memalloc_retry_wait(GFP_NOFS);
239 			goto retry;
240 		}
241 		return err;
242 	}
243 
244 	err = f2fs_get_node_info(sbi, dn.nid, &ni, false);
245 	if (err) {
246 		f2fs_put_dnode(&dn);
247 		return err;
248 	}
249 
250 	if (recover) {
251 		/* dn.data_blkaddr is always valid */
252 		if (!__is_valid_data_blkaddr(new_addr)) {
253 			if (new_addr == NULL_ADDR)
254 				dec_valid_block_count(sbi, inode, 1);
255 			f2fs_invalidate_blocks(sbi, dn.data_blkaddr, 1);
256 			f2fs_update_data_blkaddr(&dn, new_addr);
257 		} else {
258 			f2fs_replace_block(sbi, &dn, dn.data_blkaddr,
259 				new_addr, ni.version, true, true);
260 		}
261 	} else {
262 		blkcnt_t count = 1;
263 
264 		err = inc_valid_block_count(sbi, inode, &count, true, false);
265 		if (err) {
266 			f2fs_put_dnode(&dn);
267 			return err;
268 		}
269 
270 		*old_addr = dn.data_blkaddr;
271 		f2fs_truncate_data_blocks_range(&dn, 1);
272 		dec_valid_block_count(sbi, F2FS_I(inode)->cow_inode, count);
273 
274 		f2fs_replace_block(sbi, &dn, dn.data_blkaddr, new_addr,
275 					ni.version, true, false);
276 	}
277 
278 	f2fs_put_dnode(&dn);
279 
280 	trace_f2fs_replace_atomic_write_block(inode, F2FS_I(inode)->cow_inode,
281 			index, old_addr ? *old_addr : 0, new_addr, recover);
282 	return 0;
283 }
284 
__complete_revoke_list(struct inode * inode,struct list_head * head,bool revoke)285 static void __complete_revoke_list(struct inode *inode, struct list_head *head,
286 					bool revoke)
287 {
288 	struct revoke_entry *cur, *tmp;
289 	pgoff_t start_index = 0;
290 	bool truncate = is_inode_flag_set(inode, FI_ATOMIC_REPLACE);
291 
292 	list_for_each_entry_safe(cur, tmp, head, list) {
293 		if (revoke) {
294 			__replace_atomic_write_block(inode, cur->index,
295 						cur->old_addr, NULL, true);
296 		} else if (truncate) {
297 			f2fs_truncate_hole(inode, start_index, cur->index);
298 			start_index = cur->index + 1;
299 		}
300 
301 		list_del(&cur->list);
302 		kmem_cache_free(revoke_entry_slab, cur);
303 	}
304 
305 	if (!revoke && truncate)
306 		f2fs_do_truncate_blocks(inode, start_index * PAGE_SIZE, false);
307 }
308 
__f2fs_commit_atomic_write(struct inode * inode)309 static int __f2fs_commit_atomic_write(struct inode *inode)
310 {
311 	struct f2fs_sb_info *sbi = F2FS_I_SB(inode);
312 	struct f2fs_inode_info *fi = F2FS_I(inode);
313 	struct inode *cow_inode = fi->cow_inode;
314 	struct revoke_entry *new;
315 	struct list_head revoke_list;
316 	block_t blkaddr;
317 	struct dnode_of_data dn;
318 	pgoff_t len = DIV_ROUND_UP(i_size_read(inode), PAGE_SIZE);
319 	pgoff_t off = 0, blen, index;
320 	int ret = 0, i;
321 
322 	INIT_LIST_HEAD(&revoke_list);
323 
324 	while (len) {
325 		blen = min_t(pgoff_t, ADDRS_PER_BLOCK(cow_inode), len);
326 
327 		set_new_dnode(&dn, cow_inode, NULL, NULL, 0);
328 		ret = f2fs_get_dnode_of_data(&dn, off, LOOKUP_NODE_RA);
329 		if (ret && ret != -ENOENT) {
330 			goto out;
331 		} else if (ret == -ENOENT) {
332 			ret = 0;
333 			if (dn.max_level == 0)
334 				goto out;
335 			goto next;
336 		}
337 
338 		blen = min((pgoff_t)ADDRS_PER_PAGE(dn.node_folio, cow_inode),
339 				len);
340 		index = off;
341 		for (i = 0; i < blen; i++, dn.ofs_in_node++, index++) {
342 			blkaddr = f2fs_data_blkaddr(&dn);
343 
344 			if (!__is_valid_data_blkaddr(blkaddr)) {
345 				continue;
346 			} else if (!f2fs_is_valid_blkaddr(sbi, blkaddr,
347 					DATA_GENERIC_ENHANCE)) {
348 				f2fs_put_dnode(&dn);
349 				ret = -EFSCORRUPTED;
350 				goto out;
351 			}
352 
353 			new = f2fs_kmem_cache_alloc(revoke_entry_slab, GFP_NOFS,
354 							true, NULL);
355 
356 			ret = __replace_atomic_write_block(inode, index, blkaddr,
357 							&new->old_addr, false);
358 			if (ret) {
359 				f2fs_put_dnode(&dn);
360 				kmem_cache_free(revoke_entry_slab, new);
361 				goto out;
362 			}
363 
364 			f2fs_update_data_blkaddr(&dn, NULL_ADDR);
365 			new->index = index;
366 			list_add_tail(&new->list, &revoke_list);
367 		}
368 		f2fs_put_dnode(&dn);
369 next:
370 		off += blen;
371 		len -= blen;
372 	}
373 
374 out:
375 	if (time_to_inject(sbi, FAULT_ATOMIC_TIMEOUT))
376 		f2fs_schedule_timeout_killable(DEFAULT_FAULT_TIMEOUT, true);
377 
378 	if (ret) {
379 		sbi->revoked_atomic_block += fi->atomic_write_cnt;
380 	} else {
381 		sbi->committed_atomic_block += fi->atomic_write_cnt;
382 		set_inode_flag(inode, FI_ATOMIC_COMMITTED);
383 
384 		/*
385 		 * inode may has no FI_ATOMIC_DIRTIED flag due to no write
386 		 * before commit.
387 		 */
388 		if (is_inode_flag_set(inode, FI_ATOMIC_DIRTIED)) {
389 			/* clear atomic dirty status and set vfs dirty status */
390 			clear_inode_flag(inode, FI_ATOMIC_DIRTIED);
391 			f2fs_mark_inode_dirty_sync(inode, true);
392 		}
393 	}
394 
395 	__complete_revoke_list(inode, &revoke_list, ret ? true : false);
396 
397 	return ret;
398 }
399 
f2fs_commit_atomic_write(struct inode * inode)400 int f2fs_commit_atomic_write(struct inode *inode)
401 {
402 	struct f2fs_sb_info *sbi = F2FS_I_SB(inode);
403 	struct f2fs_inode_info *fi = F2FS_I(inode);
404 	struct f2fs_lock_context lc;
405 	int err;
406 
407 	err = filemap_write_and_wait_range(inode->i_mapping, 0, LLONG_MAX);
408 	if (err)
409 		return err;
410 
411 	f2fs_down_write(&fi->i_gc_rwsem[WRITE]);
412 	f2fs_lock_op(sbi, &lc);
413 
414 	err = __f2fs_commit_atomic_write(inode);
415 
416 	f2fs_unlock_op(sbi, &lc);
417 	f2fs_up_write(&fi->i_gc_rwsem[WRITE]);
418 
419 	return err;
420 }
421 
422 /*
423  * This function balances dirty node and dentry pages.
424  * In addition, it controls garbage collection.
425  */
f2fs_balance_fs(struct f2fs_sb_info * sbi,bool need)426 void f2fs_balance_fs(struct f2fs_sb_info *sbi, bool need)
427 {
428 	if (f2fs_cp_error(sbi))
429 		return;
430 
431 	if (time_to_inject(sbi, FAULT_CHECKPOINT))
432 		f2fs_stop_checkpoint(sbi, false, STOP_CP_REASON_FAULT_INJECT);
433 
434 	/* balance_fs_bg is able to be pending */
435 	if (need && excess_cached_nats(sbi))
436 		f2fs_balance_fs_bg(sbi, false);
437 
438 	if (unlikely(is_sbi_flag_set(sbi, SBI_CP_DISABLED)))
439 		return;
440 
441 	/*
442 	 * We should do GC or end up with checkpoint, if there are so many dirty
443 	 * dir/node pages without enough free segments.
444 	 */
445 	if (has_enough_free_secs(sbi, 0, 0))
446 		return;
447 
448 	/*
449 	 * Submit all cached OPU/IPU DATA bios before triggering
450 	 * foreground GC to avoid potential deadlocks.
451 	 */
452 	f2fs_submit_merged_write(sbi, DATA);
453 	f2fs_submit_all_merged_ipu_writes(sbi);
454 
455 	if (test_opt(sbi, GC_MERGE) && sbi->gc_thread.f2fs_gc_task) {
456 		DEFINE_WAIT(wait);
457 
458 		prepare_to_wait(&sbi->gc_thread.fggc_wq, &wait,
459 					TASK_UNINTERRUPTIBLE);
460 		wake_up(&sbi->gc_thread.gc_wait_queue_head);
461 		io_schedule();
462 		finish_wait(&sbi->gc_thread.fggc_wq, &wait);
463 	} else {
464 		struct f2fs_gc_control gc_control = {
465 			.victim_segno = NULL_SEGNO,
466 			.init_gc_type = f2fs_sb_has_blkzoned(sbi) ?
467 				FG_GC : BG_GC,
468 			.no_bg_gc = true,
469 			.should_migrate_blocks = false,
470 			.err_gc_skipped = false,
471 			.nr_free_secs = 1 };
472 
473 		f2fs_down_write_trace(&sbi->gc_lock, &gc_control.lc);
474 		stat_inc_gc_call_count(sbi, FOREGROUND);
475 		f2fs_gc(sbi, &gc_control);
476 	}
477 }
478 
excess_dirty_threshold(struct f2fs_sb_info * sbi)479 static inline bool excess_dirty_threshold(struct f2fs_sb_info *sbi)
480 {
481 	int factor = f2fs_rwsem_is_locked(&sbi->cp_rwsem) ? 3 : 2;
482 	unsigned int dents = get_pages(sbi, F2FS_DIRTY_DENTS);
483 	unsigned int qdata = get_pages(sbi, F2FS_DIRTY_QDATA);
484 	unsigned int nodes = get_pages(sbi, F2FS_DIRTY_NODES);
485 	unsigned int meta = get_pages(sbi, F2FS_DIRTY_META);
486 	unsigned int imeta = get_pages(sbi, F2FS_DIRTY_IMETA);
487 	unsigned int threshold =
488 		SEGS_TO_BLKS(sbi, (factor * DEFAULT_DIRTY_THRESHOLD));
489 	unsigned int global_threshold = threshold * 3 / 2;
490 
491 	if (dents >= threshold || qdata >= threshold ||
492 		nodes >= threshold || meta >= threshold ||
493 		imeta >= threshold)
494 		return true;
495 	return dents + qdata + nodes + meta + imeta >  global_threshold;
496 }
497 
f2fs_balance_fs_bg(struct f2fs_sb_info * sbi,bool from_bg)498 void f2fs_balance_fs_bg(struct f2fs_sb_info *sbi, bool from_bg)
499 {
500 	if (unlikely(is_sbi_flag_set(sbi, SBI_POR_DOING)))
501 		return;
502 
503 	/* try to shrink extent cache when there is no enough memory */
504 	if (!f2fs_available_free_memory(sbi, READ_EXTENT_CACHE))
505 		f2fs_shrink_read_extent_tree(sbi,
506 				READ_EXTENT_CACHE_SHRINK_NUMBER);
507 
508 	/* try to shrink age extent cache when there is no enough memory */
509 	if (!f2fs_available_free_memory(sbi, AGE_EXTENT_CACHE))
510 		f2fs_shrink_age_extent_tree(sbi,
511 				AGE_EXTENT_CACHE_SHRINK_NUMBER);
512 
513 	/* check the # of cached NAT entries */
514 	if (!f2fs_available_free_memory(sbi, NAT_ENTRIES))
515 		f2fs_try_to_free_nats(sbi, NAT_ENTRY_PER_BLOCK);
516 
517 	if (!f2fs_available_free_memory(sbi, FREE_NIDS))
518 		f2fs_try_to_free_nids(sbi, MAX_FREE_NIDS);
519 	else
520 		f2fs_build_free_nids(sbi, false, false);
521 
522 	if (excess_dirty_nats(sbi) || excess_dirty_threshold(sbi) ||
523 		excess_prefree_segs(sbi) || !f2fs_space_for_roll_forward(sbi))
524 		goto do_sync;
525 
526 	/* there is background inflight IO or foreground operation recently */
527 	if (is_inflight_io(sbi, REQ_TIME) ||
528 		(!f2fs_time_over(sbi, REQ_TIME) && f2fs_rwsem_is_locked(&sbi->cp_rwsem)))
529 		return;
530 
531 	/* exceed periodical checkpoint timeout threshold */
532 	if (f2fs_time_over(sbi, CP_TIME))
533 		goto do_sync;
534 
535 	/* checkpoint is the only way to shrink partial cached entries */
536 	if (f2fs_available_free_memory(sbi, NAT_ENTRIES) &&
537 		f2fs_available_free_memory(sbi, INO_ENTRIES))
538 		return;
539 
540 do_sync:
541 	if (test_opt(sbi, DATA_FLUSH) && from_bg) {
542 		struct blk_plug plug;
543 
544 		mutex_lock(&sbi->flush_lock);
545 
546 		blk_start_plug(&plug);
547 		f2fs_sync_dirty_inodes(sbi, FILE_INODE, false);
548 		blk_finish_plug(&plug);
549 
550 		mutex_unlock(&sbi->flush_lock);
551 	}
552 	stat_inc_cp_call_count(sbi, BACKGROUND);
553 	f2fs_sync_fs(sbi->sb, 1);
554 }
555 
__submit_flush_wait(struct f2fs_sb_info * sbi,struct block_device * bdev)556 static int __submit_flush_wait(struct f2fs_sb_info *sbi,
557 				struct block_device *bdev)
558 {
559 	int ret = blkdev_issue_flush(bdev);
560 
561 	trace_f2fs_issue_flush(bdev, test_opt(sbi, NOBARRIER),
562 				test_opt(sbi, FLUSH_MERGE), ret);
563 	if (!ret)
564 		f2fs_update_iostat(sbi, NULL, FS_FLUSH_IO, 0);
565 	return ret;
566 }
567 
f2fs_flush_end_io(struct bio * bio)568 static void f2fs_flush_end_io(struct bio *bio)
569 {
570 	complete(bio->bi_private);
571 }
572 
573 struct f2fs_flush_bio {
574 	struct bio bio;
575 	struct completion wait;
576 };
577 
submit_flush_wait(struct f2fs_sb_info * sbi,nid_t ino)578 static int submit_flush_wait(struct f2fs_sb_info *sbi, nid_t ino)
579 {
580 	struct f2fs_flush_bio *flush_bio;
581 	unsigned long devices = 0;
582 	int ret = 0;
583 	int i;
584 
585 	if (!f2fs_is_multi_device(sbi))
586 		return __submit_flush_wait(sbi, sbi->sb->s_bdev);
587 
588 	flush_bio = kmalloc(array_size(sbi->s_ndevs, sizeof(*flush_bio)),
589 				GFP_NOFS | __GFP_NOFAIL);
590 
591 	for (i = 0; i < sbi->s_ndevs; i++) {
592 		if (!f2fs_is_dirty_device(sbi, ino, i, FLUSH_INO))
593 			continue;
594 
595 		bio_init(&flush_bio[i].bio, FDEV(i).bdev, NULL, 0,
596 			 REQ_OP_WRITE | REQ_SYNC | REQ_PREFLUSH);
597 		init_completion(&flush_bio[i].wait);
598 		flush_bio[i].bio.bi_private = &flush_bio[i].wait;
599 		flush_bio[i].bio.bi_end_io = f2fs_flush_end_io;
600 		devices |= BIT(i);
601 		submit_bio(&flush_bio[i].bio);
602 	}
603 
604 	for (i = 0; i < sbi->s_ndevs; i++) {
605 		int err;
606 
607 		if (!(devices & BIT(i)))
608 			continue;
609 
610 		wait_for_completion(&flush_bio[i].wait);
611 		err = blk_status_to_errno(flush_bio[i].bio.bi_status);
612 		trace_f2fs_issue_flush(FDEV(i).bdev, test_opt(sbi, NOBARRIER),
613 				       test_opt(sbi, FLUSH_MERGE), err);
614 		if (!err)
615 			f2fs_update_iostat(sbi, NULL, FS_FLUSH_IO, 0);
616 		else if (!ret)
617 			ret = err;
618 		bio_uninit(&flush_bio[i].bio);
619 	}
620 	kfree(flush_bio);
621 	return ret;
622 }
623 
issue_flush_thread(void * data)624 static int issue_flush_thread(void *data)
625 {
626 	struct f2fs_sb_info *sbi = data;
627 	struct flush_cmd_control *fcc = SM_I(sbi)->fcc_info;
628 	wait_queue_head_t *q = &fcc->flush_wait_queue;
629 repeat:
630 	if (kthread_should_stop())
631 		return 0;
632 
633 	if (!llist_empty(&fcc->issue_list)) {
634 		struct flush_cmd *cmd, *next;
635 		int ret;
636 
637 		fcc->dispatch_list = llist_del_all(&fcc->issue_list);
638 		fcc->dispatch_list = llist_reverse_order(fcc->dispatch_list);
639 
640 		cmd = llist_entry(fcc->dispatch_list, struct flush_cmd, llnode);
641 
642 		ret = submit_flush_wait(sbi, cmd->ino);
643 		atomic_inc(&fcc->issued_flush);
644 
645 		llist_for_each_entry_safe(cmd, next,
646 					  fcc->dispatch_list, llnode) {
647 			cmd->ret = ret;
648 			complete(&cmd->wait);
649 		}
650 		fcc->dispatch_list = NULL;
651 	}
652 
653 	wait_event_interruptible(*q,
654 		kthread_should_stop() || !llist_empty(&fcc->issue_list));
655 	goto repeat;
656 }
657 
f2fs_issue_flush(struct f2fs_sb_info * sbi,nid_t ino)658 int f2fs_issue_flush(struct f2fs_sb_info *sbi, nid_t ino)
659 {
660 	struct flush_cmd_control *fcc = SM_I(sbi)->fcc_info;
661 	struct flush_cmd cmd;
662 	int ret;
663 
664 	if (test_opt(sbi, NOBARRIER))
665 		return 0;
666 
667 	if (!test_opt(sbi, FLUSH_MERGE)) {
668 		atomic_inc(&fcc->queued_flush);
669 		ret = submit_flush_wait(sbi, ino);
670 		atomic_dec(&fcc->queued_flush);
671 		atomic_inc(&fcc->issued_flush);
672 		return ret;
673 	}
674 
675 	if (atomic_inc_return(&fcc->queued_flush) == 1 ||
676 	    f2fs_is_multi_device(sbi)) {
677 		ret = submit_flush_wait(sbi, ino);
678 		atomic_dec(&fcc->queued_flush);
679 
680 		atomic_inc(&fcc->issued_flush);
681 		return ret;
682 	}
683 
684 	cmd.ino = ino;
685 	init_completion(&cmd.wait);
686 
687 	llist_add(&cmd.llnode, &fcc->issue_list);
688 
689 	/*
690 	 * update issue_list before we wake up issue_flush thread, this
691 	 * smp_mb() pairs with another barrier in ___wait_event(), see
692 	 * more details in comments of waitqueue_active().
693 	 */
694 	smp_mb();
695 
696 	if (waitqueue_active(&fcc->flush_wait_queue))
697 		wake_up(&fcc->flush_wait_queue);
698 
699 	if (fcc->f2fs_issue_flush) {
700 		wait_for_completion(&cmd.wait);
701 		atomic_dec(&fcc->queued_flush);
702 	} else {
703 		struct llist_node *list;
704 
705 		list = llist_del_all(&fcc->issue_list);
706 		if (!list) {
707 			wait_for_completion(&cmd.wait);
708 			atomic_dec(&fcc->queued_flush);
709 		} else {
710 			struct flush_cmd *tmp, *next;
711 
712 			ret = submit_flush_wait(sbi, ino);
713 
714 			llist_for_each_entry_safe(tmp, next, list, llnode) {
715 				if (tmp == &cmd) {
716 					cmd.ret = ret;
717 					atomic_dec(&fcc->queued_flush);
718 					continue;
719 				}
720 				tmp->ret = ret;
721 				complete(&tmp->wait);
722 			}
723 		}
724 	}
725 
726 	return cmd.ret;
727 }
728 
f2fs_create_flush_cmd_control(struct f2fs_sb_info * sbi)729 int f2fs_create_flush_cmd_control(struct f2fs_sb_info *sbi)
730 {
731 	dev_t dev = sbi->sb->s_bdev->bd_dev;
732 	struct flush_cmd_control *fcc;
733 
734 	if (SM_I(sbi)->fcc_info) {
735 		fcc = SM_I(sbi)->fcc_info;
736 		if (fcc->f2fs_issue_flush)
737 			return 0;
738 		goto init_thread;
739 	}
740 
741 	fcc = f2fs_kzalloc(sbi, sizeof(struct flush_cmd_control), GFP_KERNEL);
742 	if (!fcc)
743 		return -ENOMEM;
744 	atomic_set(&fcc->issued_flush, 0);
745 	atomic_set(&fcc->queued_flush, 0);
746 	init_waitqueue_head(&fcc->flush_wait_queue);
747 	init_llist_head(&fcc->issue_list);
748 	SM_I(sbi)->fcc_info = fcc;
749 	if (!test_opt(sbi, FLUSH_MERGE))
750 		return 0;
751 
752 init_thread:
753 	fcc->f2fs_issue_flush = kthread_run(issue_flush_thread, sbi,
754 				"f2fs_flush-%u:%u", MAJOR(dev), MINOR(dev));
755 	if (IS_ERR(fcc->f2fs_issue_flush)) {
756 		int err = PTR_ERR(fcc->f2fs_issue_flush);
757 
758 		fcc->f2fs_issue_flush = NULL;
759 		return err;
760 	}
761 
762 	return 0;
763 }
764 
f2fs_destroy_flush_cmd_control(struct f2fs_sb_info * sbi,bool free)765 void f2fs_destroy_flush_cmd_control(struct f2fs_sb_info *sbi, bool free)
766 {
767 	struct flush_cmd_control *fcc = SM_I(sbi)->fcc_info;
768 
769 	if (fcc && fcc->f2fs_issue_flush) {
770 		struct task_struct *flush_thread = fcc->f2fs_issue_flush;
771 
772 		fcc->f2fs_issue_flush = NULL;
773 		kthread_stop(flush_thread);
774 	}
775 	if (free) {
776 		kfree(fcc);
777 		SM_I(sbi)->fcc_info = NULL;
778 	}
779 }
780 
f2fs_flush_device_cache(struct f2fs_sb_info * sbi)781 int f2fs_flush_device_cache(struct f2fs_sb_info *sbi)
782 {
783 	int ret = 0, i;
784 
785 	if (!f2fs_is_multi_device(sbi))
786 		return 0;
787 
788 	if (test_opt(sbi, NOBARRIER))
789 		return 0;
790 
791 	for (i = 1; i < sbi->s_ndevs; i++) {
792 		int count = DEFAULT_RETRY_IO_COUNT;
793 
794 		if (!f2fs_test_bit(i, (char *)&sbi->dirty_device))
795 			continue;
796 
797 		do {
798 			ret = __submit_flush_wait(sbi, FDEV(i).bdev);
799 			if (ret)
800 				f2fs_schedule_timeout(DEFAULT_SCHEDULE_TIMEOUT);
801 		} while (ret && --count);
802 
803 		if (ret) {
804 			f2fs_stop_checkpoint(sbi, false,
805 					STOP_CP_REASON_FLUSH_FAIL);
806 			break;
807 		}
808 
809 		spin_lock(&sbi->dev_lock);
810 		f2fs_clear_bit(i, (char *)&sbi->dirty_device);
811 		spin_unlock(&sbi->dev_lock);
812 	}
813 
814 	return ret;
815 }
816 
__locate_dirty_segment(struct f2fs_sb_info * sbi,unsigned int segno,enum dirty_type dirty_type)817 static void __locate_dirty_segment(struct f2fs_sb_info *sbi, unsigned int segno,
818 		enum dirty_type dirty_type)
819 {
820 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
821 
822 	/* need not be added */
823 	if (is_curseg(sbi, segno))
824 		return;
825 
826 	if (!test_and_set_bit(segno, dirty_i->dirty_segmap[dirty_type]))
827 		dirty_i->nr_dirty[dirty_type]++;
828 
829 	if (dirty_type == DIRTY) {
830 		struct seg_entry *sentry = get_seg_entry(sbi, segno);
831 		enum dirty_type t = sentry->type;
832 
833 		if (unlikely(t >= DIRTY)) {
834 			f2fs_bug_on(sbi, 1);
835 			return;
836 		}
837 		if (!test_and_set_bit(segno, dirty_i->dirty_segmap[t]))
838 			dirty_i->nr_dirty[t]++;
839 
840 		if (__is_large_section(sbi)) {
841 			unsigned int secno = GET_SEC_FROM_SEG(sbi, segno);
842 			block_t valid_blocks =
843 				get_valid_blocks(sbi, segno, true);
844 
845 			f2fs_bug_on(sbi,
846 				(!is_sbi_flag_set(sbi, SBI_CP_DISABLED) &&
847 				!valid_blocks) ||
848 				valid_blocks == CAP_BLKS_PER_SEC(sbi));
849 
850 			if (!is_cursec(sbi, secno))
851 				set_bit(secno, dirty_i->dirty_secmap);
852 		}
853 	}
854 }
855 
__remove_dirty_segment(struct f2fs_sb_info * sbi,unsigned int segno,enum dirty_type dirty_type)856 static void __remove_dirty_segment(struct f2fs_sb_info *sbi, unsigned int segno,
857 		enum dirty_type dirty_type)
858 {
859 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
860 	block_t valid_blocks;
861 
862 	if (test_and_clear_bit(segno, dirty_i->dirty_segmap[dirty_type]))
863 		dirty_i->nr_dirty[dirty_type]--;
864 
865 	if (dirty_type == DIRTY) {
866 		struct seg_entry *sentry = get_seg_entry(sbi, segno);
867 		enum dirty_type t = sentry->type;
868 
869 		if (test_and_clear_bit(segno, dirty_i->dirty_segmap[t]))
870 			dirty_i->nr_dirty[t]--;
871 
872 		valid_blocks = get_valid_blocks(sbi, segno, true);
873 		if (valid_blocks == 0) {
874 			clear_bit(GET_SEC_FROM_SEG(sbi, segno),
875 						dirty_i->victim_secmap);
876 #ifdef CONFIG_F2FS_CHECK_FS
877 			clear_bit(segno, SIT_I(sbi)->invalid_segmap);
878 #endif
879 		}
880 		if (__is_large_section(sbi)) {
881 			unsigned int secno = GET_SEC_FROM_SEG(sbi, segno);
882 
883 			if (!valid_blocks ||
884 					valid_blocks == CAP_BLKS_PER_SEC(sbi)) {
885 				clear_bit(secno, dirty_i->dirty_secmap);
886 				return;
887 			}
888 
889 			if (!is_cursec(sbi, secno))
890 				set_bit(secno, dirty_i->dirty_secmap);
891 		}
892 	}
893 }
894 
895 /*
896  * Should not occur error such as -ENOMEM.
897  * Adding dirty entry into seglist is not critical operation.
898  * If a given segment is one of current working segments, it won't be added.
899  */
locate_dirty_segment(struct f2fs_sb_info * sbi,unsigned int segno)900 static void locate_dirty_segment(struct f2fs_sb_info *sbi, unsigned int segno)
901 {
902 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
903 	unsigned short valid_blocks, ckpt_valid_blocks;
904 	unsigned int usable_blocks;
905 
906 	if (segno == NULL_SEGNO || is_curseg(sbi, segno))
907 		return;
908 
909 	usable_blocks = f2fs_usable_blks_in_seg(sbi, segno);
910 	mutex_lock(&dirty_i->seglist_lock);
911 
912 	valid_blocks = get_valid_blocks(sbi, segno, false);
913 	ckpt_valid_blocks = get_ckpt_valid_blocks(sbi, segno, false);
914 
915 	if (valid_blocks == 0 && (!is_sbi_flag_set(sbi, SBI_CP_DISABLED) ||
916 		ckpt_valid_blocks == usable_blocks)) {
917 		__locate_dirty_segment(sbi, segno, PRE);
918 		__remove_dirty_segment(sbi, segno, DIRTY);
919 	} else if (valid_blocks < usable_blocks) {
920 		__locate_dirty_segment(sbi, segno, DIRTY);
921 	} else {
922 		/* Recovery routine with SSR needs this */
923 		__remove_dirty_segment(sbi, segno, DIRTY);
924 	}
925 
926 	mutex_unlock(&dirty_i->seglist_lock);
927 }
928 
929 /* This moves currently empty dirty blocks to prefree. Must hold seglist_lock */
f2fs_dirty_to_prefree(struct f2fs_sb_info * sbi)930 void f2fs_dirty_to_prefree(struct f2fs_sb_info *sbi)
931 {
932 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
933 	unsigned int segno;
934 
935 	mutex_lock(&dirty_i->seglist_lock);
936 	for_each_set_bit(segno, dirty_i->dirty_segmap[DIRTY], MAIN_SEGS(sbi)) {
937 		if (get_valid_blocks(sbi, segno, false))
938 			continue;
939 		if (is_curseg(sbi, segno))
940 			continue;
941 		__locate_dirty_segment(sbi, segno, PRE);
942 		__remove_dirty_segment(sbi, segno, DIRTY);
943 	}
944 	mutex_unlock(&dirty_i->seglist_lock);
945 }
946 
f2fs_get_unusable_blocks(struct f2fs_sb_info * sbi)947 block_t f2fs_get_unusable_blocks(struct f2fs_sb_info *sbi)
948 {
949 	int ovp_hole_segs =
950 		(overprovision_segments(sbi) - reserved_segments(sbi));
951 	block_t ovp_holes = SEGS_TO_BLKS(sbi, ovp_hole_segs);
952 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
953 	block_t holes[2] = {0, 0};	/* DATA and NODE */
954 	block_t unusable;
955 	struct seg_entry *se;
956 	unsigned int segno;
957 
958 	mutex_lock(&dirty_i->seglist_lock);
959 	for_each_set_bit(segno, dirty_i->dirty_segmap[DIRTY], MAIN_SEGS(sbi)) {
960 		se = get_seg_entry(sbi, segno);
961 		if (IS_NODESEG(se->type))
962 			holes[NODE] += f2fs_usable_blks_in_seg(sbi, segno) -
963 							se->valid_blocks;
964 		else
965 			holes[DATA] += f2fs_usable_blks_in_seg(sbi, segno) -
966 							se->valid_blocks;
967 	}
968 	mutex_unlock(&dirty_i->seglist_lock);
969 
970 	unusable = max(holes[DATA], holes[NODE]);
971 	if (unusable > ovp_holes)
972 		return unusable - ovp_holes;
973 	return 0;
974 }
975 
f2fs_disable_cp_again(struct f2fs_sb_info * sbi,block_t unusable)976 int f2fs_disable_cp_again(struct f2fs_sb_info *sbi, block_t unusable)
977 {
978 	int ovp_hole_segs =
979 		(overprovision_segments(sbi) - reserved_segments(sbi));
980 
981 	if (F2FS_OPTION(sbi).unusable_cap_perc == 100)
982 		return 0;
983 	if (unusable > F2FS_OPTION(sbi).unusable_cap)
984 		return -EAGAIN;
985 	if (is_sbi_flag_set(sbi, SBI_CP_DISABLED_QUICK) &&
986 		dirty_segments(sbi) > ovp_hole_segs)
987 		return -EAGAIN;
988 	if (has_not_enough_free_secs(sbi, 0, 0))
989 		return -EAGAIN;
990 	return 0;
991 }
992 
993 /* This is only used by SBI_CP_DISABLED */
get_free_segment(struct f2fs_sb_info * sbi)994 static unsigned int get_free_segment(struct f2fs_sb_info *sbi)
995 {
996 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
997 	unsigned int segno = 0;
998 
999 	mutex_lock(&dirty_i->seglist_lock);
1000 	for_each_set_bit(segno, dirty_i->dirty_segmap[DIRTY], MAIN_SEGS(sbi)) {
1001 		if (get_valid_blocks(sbi, segno, false))
1002 			continue;
1003 		if (get_ckpt_valid_blocks(sbi, segno, false))
1004 			continue;
1005 		mutex_unlock(&dirty_i->seglist_lock);
1006 		return segno;
1007 	}
1008 	mutex_unlock(&dirty_i->seglist_lock);
1009 	return NULL_SEGNO;
1010 }
1011 
__create_discard_cmd(struct f2fs_sb_info * sbi,struct block_device * bdev,block_t lstart,block_t start,block_t len)1012 static struct discard_cmd *__create_discard_cmd(struct f2fs_sb_info *sbi,
1013 		struct block_device *bdev, block_t lstart,
1014 		block_t start, block_t len)
1015 {
1016 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1017 	struct list_head *pend_list;
1018 	struct discard_cmd *dc;
1019 
1020 	f2fs_bug_on(sbi, !len);
1021 
1022 	pend_list = &dcc->pend_list[plist_idx(len)];
1023 
1024 	dc = f2fs_kmem_cache_alloc(discard_cmd_slab, GFP_NOFS, true, NULL);
1025 	INIT_LIST_HEAD(&dc->list);
1026 	dc->bdev = bdev;
1027 	dc->di.lstart = lstart;
1028 	dc->di.start = start;
1029 	dc->di.len = len;
1030 	dc->ref = 0;
1031 	dc->state = D_PREP;
1032 	dc->queued = 0;
1033 	dc->error = 0;
1034 	init_completion(&dc->wait);
1035 	list_add_tail(&dc->list, pend_list);
1036 	spin_lock_init(&dc->lock);
1037 	dc->bio_ref = 0;
1038 	atomic_inc(&dcc->discard_cmd_cnt);
1039 	dcc->undiscard_blks += len;
1040 
1041 	return dc;
1042 }
1043 
f2fs_check_discard_tree(struct f2fs_sb_info * sbi)1044 static bool f2fs_check_discard_tree(struct f2fs_sb_info *sbi)
1045 {
1046 #ifdef CONFIG_F2FS_CHECK_FS
1047 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1048 	struct rb_node *cur = rb_first_cached(&dcc->root), *next;
1049 	struct discard_cmd *cur_dc, *next_dc;
1050 
1051 	while (cur) {
1052 		next = rb_next(cur);
1053 		if (!next)
1054 			return true;
1055 
1056 		cur_dc = rb_entry(cur, struct discard_cmd, rb_node);
1057 		next_dc = rb_entry(next, struct discard_cmd, rb_node);
1058 
1059 		if (cur_dc->di.lstart + cur_dc->di.len > next_dc->di.lstart) {
1060 			f2fs_info(sbi, "broken discard_rbtree, "
1061 				"cur(%u, %u) next(%u, %u)",
1062 				cur_dc->di.lstart, cur_dc->di.len,
1063 				next_dc->di.lstart, next_dc->di.len);
1064 			return false;
1065 		}
1066 		cur = next;
1067 	}
1068 #endif
1069 	return true;
1070 }
1071 
__lookup_discard_cmd(struct f2fs_sb_info * sbi,block_t blkaddr)1072 static struct discard_cmd *__lookup_discard_cmd(struct f2fs_sb_info *sbi,
1073 						block_t blkaddr)
1074 {
1075 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1076 	struct rb_node *node = dcc->root.rb_root.rb_node;
1077 	struct discard_cmd *dc;
1078 
1079 	while (node) {
1080 		dc = rb_entry(node, struct discard_cmd, rb_node);
1081 
1082 		if (blkaddr < dc->di.lstart)
1083 			node = node->rb_left;
1084 		else if (blkaddr >= dc->di.lstart + dc->di.len)
1085 			node = node->rb_right;
1086 		else
1087 			return dc;
1088 	}
1089 	return NULL;
1090 }
1091 
__lookup_discard_cmd_ret(struct rb_root_cached * root,block_t blkaddr,struct discard_cmd ** prev_entry,struct discard_cmd ** next_entry,struct rb_node *** insert_p,struct rb_node ** insert_parent)1092 static struct discard_cmd *__lookup_discard_cmd_ret(struct rb_root_cached *root,
1093 				block_t blkaddr,
1094 				struct discard_cmd **prev_entry,
1095 				struct discard_cmd **next_entry,
1096 				struct rb_node ***insert_p,
1097 				struct rb_node **insert_parent)
1098 {
1099 	struct rb_node **pnode = &root->rb_root.rb_node;
1100 	struct rb_node *parent = NULL, *tmp_node;
1101 	struct discard_cmd *dc;
1102 
1103 	*insert_p = NULL;
1104 	*insert_parent = NULL;
1105 	*prev_entry = NULL;
1106 	*next_entry = NULL;
1107 
1108 	if (RB_EMPTY_ROOT(&root->rb_root))
1109 		return NULL;
1110 
1111 	while (*pnode) {
1112 		parent = *pnode;
1113 		dc = rb_entry(*pnode, struct discard_cmd, rb_node);
1114 
1115 		if (blkaddr < dc->di.lstart)
1116 			pnode = &(*pnode)->rb_left;
1117 		else if (blkaddr >= dc->di.lstart + dc->di.len)
1118 			pnode = &(*pnode)->rb_right;
1119 		else
1120 			goto lookup_neighbors;
1121 	}
1122 
1123 	*insert_p = pnode;
1124 	*insert_parent = parent;
1125 
1126 	dc = rb_entry(parent, struct discard_cmd, rb_node);
1127 	tmp_node = parent;
1128 	if (parent && blkaddr > dc->di.lstart)
1129 		tmp_node = rb_next(parent);
1130 	*next_entry = rb_entry_safe(tmp_node, struct discard_cmd, rb_node);
1131 
1132 	tmp_node = parent;
1133 	if (parent && blkaddr < dc->di.lstart)
1134 		tmp_node = rb_prev(parent);
1135 	*prev_entry = rb_entry_safe(tmp_node, struct discard_cmd, rb_node);
1136 	return NULL;
1137 
1138 lookup_neighbors:
1139 	/* lookup prev node for merging backward later */
1140 	tmp_node = rb_prev(&dc->rb_node);
1141 	*prev_entry = rb_entry_safe(tmp_node, struct discard_cmd, rb_node);
1142 
1143 	/* lookup next node for merging frontward later */
1144 	tmp_node = rb_next(&dc->rb_node);
1145 	*next_entry = rb_entry_safe(tmp_node, struct discard_cmd, rb_node);
1146 	return dc;
1147 }
1148 
__detach_discard_cmd(struct discard_cmd_control * dcc,struct discard_cmd * dc)1149 static void __detach_discard_cmd(struct discard_cmd_control *dcc,
1150 							struct discard_cmd *dc)
1151 {
1152 	if (dc->state == D_DONE)
1153 		atomic_sub(dc->queued, &dcc->queued_discard);
1154 
1155 	list_del(&dc->list);
1156 	rb_erase_cached(&dc->rb_node, &dcc->root);
1157 	dcc->undiscard_blks -= dc->di.len;
1158 
1159 	kmem_cache_free(discard_cmd_slab, dc);
1160 
1161 	atomic_dec(&dcc->discard_cmd_cnt);
1162 }
1163 
__remove_discard_cmd(struct f2fs_sb_info * sbi,struct discard_cmd * dc)1164 static void __remove_discard_cmd(struct f2fs_sb_info *sbi,
1165 							struct discard_cmd *dc)
1166 {
1167 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1168 	unsigned long flags;
1169 
1170 	trace_f2fs_remove_discard(dc->bdev, dc->di.start, dc->di.len);
1171 
1172 	spin_lock_irqsave(&dc->lock, flags);
1173 	if (dc->bio_ref) {
1174 		spin_unlock_irqrestore(&dc->lock, flags);
1175 		return;
1176 	}
1177 	spin_unlock_irqrestore(&dc->lock, flags);
1178 
1179 	f2fs_bug_on(sbi, dc->ref);
1180 
1181 	if (dc->error == -EOPNOTSUPP)
1182 		dc->error = 0;
1183 
1184 	if (dc->error)
1185 		f2fs_info_ratelimited(sbi,
1186 			"Issue discard(%u, %u, %u) failed, ret: %d",
1187 			dc->di.lstart, dc->di.start, dc->di.len, dc->error);
1188 	__detach_discard_cmd(dcc, dc);
1189 }
1190 
f2fs_submit_discard_endio(struct bio * bio)1191 static void f2fs_submit_discard_endio(struct bio *bio)
1192 {
1193 	struct discard_cmd *dc = (struct discard_cmd *)bio->bi_private;
1194 	unsigned long flags;
1195 
1196 	spin_lock_irqsave(&dc->lock, flags);
1197 	if (!dc->error)
1198 		dc->error = blk_status_to_errno(bio->bi_status);
1199 	dc->bio_ref--;
1200 	if (!dc->bio_ref && dc->state == D_SUBMIT) {
1201 		dc->state = D_DONE;
1202 		complete_all(&dc->wait);
1203 	}
1204 	spin_unlock_irqrestore(&dc->lock, flags);
1205 	bio_put(bio);
1206 }
1207 
__check_sit_bitmap(struct f2fs_sb_info * sbi,block_t start,block_t end)1208 static void __check_sit_bitmap(struct f2fs_sb_info *sbi,
1209 				block_t start, block_t end)
1210 {
1211 #ifdef CONFIG_F2FS_CHECK_FS
1212 	struct seg_entry *sentry;
1213 	unsigned int segno;
1214 	block_t blk = start;
1215 	unsigned long offset, size, *map;
1216 
1217 	while (blk < end) {
1218 		segno = GET_SEGNO(sbi, blk);
1219 		sentry = get_seg_entry(sbi, segno);
1220 		offset = GET_BLKOFF_FROM_SEG0(sbi, blk);
1221 
1222 		if (end < START_BLOCK(sbi, segno + 1))
1223 			size = GET_BLKOFF_FROM_SEG0(sbi, end);
1224 		else
1225 			size = BLKS_PER_SEG(sbi);
1226 		map = (unsigned long *)(sentry->cur_valid_map);
1227 		offset = __find_rev_next_bit(map, size, offset);
1228 		f2fs_bug_on(sbi, offset != size);
1229 		blk = START_BLOCK(sbi, segno + 1);
1230 	}
1231 #endif
1232 }
1233 
__init_discard_policy(struct f2fs_sb_info * sbi,struct discard_policy * dpolicy,int discard_type,unsigned int granularity)1234 static void __init_discard_policy(struct f2fs_sb_info *sbi,
1235 				struct discard_policy *dpolicy,
1236 				int discard_type, unsigned int granularity)
1237 {
1238 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1239 
1240 	/* common policy */
1241 	dpolicy->type = discard_type;
1242 	dpolicy->sync = true;
1243 	dpolicy->ordered = false;
1244 	dpolicy->granularity = granularity;
1245 
1246 	dpolicy->max_requests = dcc->max_discard_request;
1247 	dpolicy->io_aware_gran = dcc->discard_io_aware_gran;
1248 	dpolicy->timeout = false;
1249 
1250 	if (discard_type == DPOLICY_BG) {
1251 		dpolicy->min_interval = dcc->min_discard_issue_time;
1252 		dpolicy->mid_interval = dcc->mid_discard_issue_time;
1253 		dpolicy->max_interval = dcc->max_discard_issue_time;
1254 		if (dcc->discard_io_aware == DPOLICY_IO_AWARE_ENABLE)
1255 			dpolicy->io_aware = true;
1256 		else if (dcc->discard_io_aware == DPOLICY_IO_AWARE_DISABLE)
1257 			dpolicy->io_aware = false;
1258 		dpolicy->sync = false;
1259 		dpolicy->ordered = true;
1260 		if (utilization(sbi) > dcc->discard_urgent_util) {
1261 			dpolicy->granularity = MIN_DISCARD_GRANULARITY;
1262 			if (atomic_read(&dcc->discard_cmd_cnt))
1263 				dpolicy->max_interval =
1264 					dcc->min_discard_issue_time;
1265 		}
1266 	} else if (discard_type == DPOLICY_FORCE) {
1267 		dpolicy->min_interval = dcc->min_discard_issue_time;
1268 		dpolicy->mid_interval = dcc->mid_discard_issue_time;
1269 		dpolicy->max_interval = dcc->max_discard_issue_time;
1270 		dpolicy->io_aware = false;
1271 	} else if (discard_type == DPOLICY_FSTRIM) {
1272 		dpolicy->io_aware = false;
1273 	} else if (discard_type == DPOLICY_UMOUNT) {
1274 		dpolicy->io_aware = false;
1275 		/* we need to issue all to keep CP_TRIMMED_FLAG */
1276 		dpolicy->granularity = MIN_DISCARD_GRANULARITY;
1277 		dpolicy->timeout = true;
1278 	}
1279 }
1280 
1281 static void __update_discard_tree_range(struct f2fs_sb_info *sbi,
1282 				struct block_device *bdev, block_t lstart,
1283 				block_t start, block_t len);
1284 
1285 #ifdef CONFIG_BLK_DEV_ZONED
__submit_zone_reset_cmd(struct f2fs_sb_info * sbi,struct discard_cmd * dc,blk_opf_t flag,struct list_head * wait_list,unsigned int * issued)1286 static void __submit_zone_reset_cmd(struct f2fs_sb_info *sbi,
1287 				   struct discard_cmd *dc, blk_opf_t flag,
1288 				   struct list_head *wait_list,
1289 				   unsigned int *issued)
1290 {
1291 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1292 	struct block_device *bdev = dc->bdev;
1293 	struct bio *bio = bio_alloc(bdev, 0, REQ_OP_ZONE_RESET | flag, GFP_NOFS);
1294 	unsigned long flags;
1295 
1296 	trace_f2fs_issue_reset_zone(bdev, dc->di.start);
1297 
1298 	spin_lock_irqsave(&dc->lock, flags);
1299 	dc->state = D_SUBMIT;
1300 	dc->bio_ref++;
1301 	spin_unlock_irqrestore(&dc->lock, flags);
1302 
1303 	if (issued)
1304 		(*issued)++;
1305 
1306 	atomic_inc(&dcc->queued_discard);
1307 	dc->queued++;
1308 	list_move_tail(&dc->list, wait_list);
1309 
1310 	/* sanity check on discard range */
1311 	__check_sit_bitmap(sbi, dc->di.lstart, dc->di.lstart + dc->di.len);
1312 
1313 	bio->bi_iter.bi_sector = SECTOR_FROM_BLOCK(dc->di.start);
1314 	bio->bi_private = dc;
1315 	bio->bi_end_io = f2fs_submit_discard_endio;
1316 	submit_bio(bio);
1317 
1318 	atomic_inc(&dcc->issued_discard);
1319 	f2fs_update_iostat(sbi, NULL, FS_ZONE_RESET_IO, dc->di.len * F2FS_BLKSIZE);
1320 }
1321 #endif
1322 
1323 /* this function is copied from blkdev_issue_discard from block/blk-lib.c */
__submit_discard_cmd(struct f2fs_sb_info * sbi,struct discard_policy * dpolicy,struct discard_cmd * dc,int * issued)1324 static int __submit_discard_cmd(struct f2fs_sb_info *sbi,
1325 				struct discard_policy *dpolicy,
1326 				struct discard_cmd *dc, int *issued)
1327 {
1328 	struct block_device *bdev = dc->bdev;
1329 	unsigned int max_discard_blocks =
1330 			SECTOR_TO_BLOCK(bdev_max_discard_sectors(bdev));
1331 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1332 	struct list_head *wait_list = (dpolicy->type == DPOLICY_FSTRIM) ?
1333 					&(dcc->fstrim_list) : &(dcc->wait_list);
1334 	blk_opf_t flag = dpolicy->sync ? REQ_SYNC : 0;
1335 	block_t lstart, start, len, total_len;
1336 
1337 	if (dc->state != D_PREP)
1338 		return 0;
1339 
1340 	if (is_sbi_flag_set(sbi, SBI_NEED_FSCK))
1341 		return 0;
1342 
1343 #ifdef CONFIG_BLK_DEV_ZONED
1344 	if (f2fs_sb_has_blkzoned(sbi) && bdev_is_zoned(bdev)) {
1345 		int devi = f2fs_bdev_index(sbi, bdev);
1346 
1347 		if (devi < 0)
1348 			return -EINVAL;
1349 
1350 		if (f2fs_blkz_is_seq(sbi, devi, dc->di.start)) {
1351 			__submit_zone_reset_cmd(sbi, dc, flag,
1352 						wait_list, issued);
1353 			return 0;
1354 		}
1355 	}
1356 #endif
1357 
1358 	/*
1359 	 * stop issuing discard for any of below cases:
1360 	 * 1. device is conventional zone, but it doesn't support discard.
1361 	 * 2. device is regulare device, after snapshot it doesn't support
1362 	 * discard.
1363 	 */
1364 	if (!bdev_max_discard_sectors(bdev))
1365 		return -EOPNOTSUPP;
1366 
1367 	trace_f2fs_issue_discard(bdev, dc->di.start, dc->di.len);
1368 
1369 	lstart = dc->di.lstart;
1370 	start = dc->di.start;
1371 	len = dc->di.len;
1372 	total_len = len;
1373 
1374 	dc->di.len = 0;
1375 
1376 	while (total_len && *issued < dpolicy->max_requests) {
1377 		struct bio *bio = NULL;
1378 		unsigned long flags;
1379 		bool last = true;
1380 
1381 		if (len > max_discard_blocks) {
1382 			len = max_discard_blocks;
1383 			last = false;
1384 		}
1385 
1386 		(*issued)++;
1387 		if (*issued == dpolicy->max_requests)
1388 			last = true;
1389 
1390 		dc->di.len += len;
1391 
1392 		__blkdev_issue_discard(bdev, SECTOR_FROM_BLOCK(start),
1393 				SECTOR_FROM_BLOCK(len), GFP_NOFS, &bio);
1394 		f2fs_bug_on(sbi, !bio);
1395 
1396 		/*
1397 		 * should keep before submission to avoid D_DONE
1398 		 * right away
1399 		 */
1400 		spin_lock_irqsave(&dc->lock, flags);
1401 		if (last)
1402 			dc->state = D_SUBMIT;
1403 		else
1404 			dc->state = D_PARTIAL;
1405 		dc->bio_ref++;
1406 		spin_unlock_irqrestore(&dc->lock, flags);
1407 
1408 		atomic_inc(&dcc->queued_discard);
1409 		dc->queued++;
1410 		list_move_tail(&dc->list, wait_list);
1411 
1412 		/* sanity check on discard range */
1413 		__check_sit_bitmap(sbi, lstart, lstart + len);
1414 
1415 		bio->bi_private = dc;
1416 		bio->bi_end_io = f2fs_submit_discard_endio;
1417 		bio->bi_opf |= flag;
1418 		submit_bio(bio);
1419 
1420 		atomic_inc(&dcc->issued_discard);
1421 
1422 		f2fs_update_iostat(sbi, NULL, FS_DISCARD_IO, len * F2FS_BLKSIZE);
1423 
1424 		lstart += len;
1425 		start += len;
1426 		total_len -= len;
1427 		len = total_len;
1428 	}
1429 
1430 	if (len) {
1431 		dcc->undiscard_blks -= len;
1432 		__update_discard_tree_range(sbi, bdev, lstart, start, len);
1433 	}
1434 	return 0;
1435 }
1436 
__insert_discard_cmd(struct f2fs_sb_info * sbi,struct block_device * bdev,block_t lstart,block_t start,block_t len)1437 static void __insert_discard_cmd(struct f2fs_sb_info *sbi,
1438 				struct block_device *bdev, block_t lstart,
1439 				block_t start, block_t len)
1440 {
1441 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1442 	struct rb_node **p = &dcc->root.rb_root.rb_node;
1443 	struct rb_node *parent = NULL;
1444 	struct discard_cmd *dc;
1445 	bool leftmost = true;
1446 
1447 	/* look up rb tree to find parent node */
1448 	while (*p) {
1449 		parent = *p;
1450 		dc = rb_entry(parent, struct discard_cmd, rb_node);
1451 
1452 		if (lstart < dc->di.lstart) {
1453 			p = &(*p)->rb_left;
1454 		} else if (lstart >= dc->di.lstart + dc->di.len) {
1455 			p = &(*p)->rb_right;
1456 			leftmost = false;
1457 		} else {
1458 			/* Let's skip to add, if exists */
1459 			return;
1460 		}
1461 	}
1462 
1463 	dc = __create_discard_cmd(sbi, bdev, lstart, start, len);
1464 
1465 	rb_link_node(&dc->rb_node, parent, p);
1466 	rb_insert_color_cached(&dc->rb_node, &dcc->root, leftmost);
1467 }
1468 
__relocate_discard_cmd(struct discard_cmd_control * dcc,struct discard_cmd * dc)1469 static void __relocate_discard_cmd(struct discard_cmd_control *dcc,
1470 						struct discard_cmd *dc)
1471 {
1472 	list_move_tail(&dc->list, &dcc->pend_list[plist_idx(dc->di.len)]);
1473 }
1474 
__punch_discard_cmd(struct f2fs_sb_info * sbi,struct discard_cmd * dc,block_t blkaddr)1475 static void __punch_discard_cmd(struct f2fs_sb_info *sbi,
1476 				struct discard_cmd *dc, block_t blkaddr)
1477 {
1478 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1479 	struct discard_info di = dc->di;
1480 	bool modified = false;
1481 
1482 	if (dc->state == D_DONE || dc->di.len == 1) {
1483 		__remove_discard_cmd(sbi, dc);
1484 		return;
1485 	}
1486 
1487 	dcc->undiscard_blks -= di.len;
1488 
1489 	if (blkaddr > di.lstart) {
1490 		dc->di.len = blkaddr - dc->di.lstart;
1491 		dcc->undiscard_blks += dc->di.len;
1492 		__relocate_discard_cmd(dcc, dc);
1493 		modified = true;
1494 	}
1495 
1496 	if (blkaddr < di.lstart + di.len - 1) {
1497 		if (modified) {
1498 			__insert_discard_cmd(sbi, dc->bdev, blkaddr + 1,
1499 					di.start + blkaddr + 1 - di.lstart,
1500 					di.lstart + di.len - 1 - blkaddr);
1501 		} else {
1502 			dc->di.lstart++;
1503 			dc->di.len--;
1504 			dc->di.start++;
1505 			dcc->undiscard_blks += dc->di.len;
1506 			__relocate_discard_cmd(dcc, dc);
1507 		}
1508 	}
1509 }
1510 
__update_discard_tree_range(struct f2fs_sb_info * sbi,struct block_device * bdev,block_t lstart,block_t start,block_t len)1511 static void __update_discard_tree_range(struct f2fs_sb_info *sbi,
1512 				struct block_device *bdev, block_t lstart,
1513 				block_t start, block_t len)
1514 {
1515 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1516 	struct discard_cmd *prev_dc = NULL, *next_dc = NULL;
1517 	struct discard_cmd *dc;
1518 	struct discard_info di = {0};
1519 	struct rb_node **insert_p = NULL, *insert_parent = NULL;
1520 	unsigned int max_discard_blocks =
1521 			SECTOR_TO_BLOCK(bdev_max_discard_sectors(bdev));
1522 	block_t end = lstart + len;
1523 
1524 	dc = __lookup_discard_cmd_ret(&dcc->root, lstart,
1525 				&prev_dc, &next_dc, &insert_p, &insert_parent);
1526 	if (dc)
1527 		prev_dc = dc;
1528 
1529 	if (!prev_dc) {
1530 		di.lstart = lstart;
1531 		di.len = next_dc ? next_dc->di.lstart - lstart : len;
1532 		di.len = min(di.len, len);
1533 		di.start = start;
1534 	}
1535 
1536 	while (1) {
1537 		struct rb_node *node;
1538 		bool merged = false;
1539 		struct discard_cmd *tdc = NULL;
1540 
1541 		if (prev_dc) {
1542 			di.lstart = prev_dc->di.lstart + prev_dc->di.len;
1543 			if (di.lstart < lstart)
1544 				di.lstart = lstart;
1545 			if (di.lstart >= end)
1546 				break;
1547 
1548 			if (!next_dc || next_dc->di.lstart > end)
1549 				di.len = end - di.lstart;
1550 			else
1551 				di.len = next_dc->di.lstart - di.lstart;
1552 			di.start = start + di.lstart - lstart;
1553 		}
1554 
1555 		if (!di.len)
1556 			goto next;
1557 
1558 		if (prev_dc && prev_dc->state == D_PREP &&
1559 			prev_dc->bdev == bdev &&
1560 			__is_discard_back_mergeable(&di, &prev_dc->di,
1561 							max_discard_blocks)) {
1562 			prev_dc->di.len += di.len;
1563 			dcc->undiscard_blks += di.len;
1564 			__relocate_discard_cmd(dcc, prev_dc);
1565 			di = prev_dc->di;
1566 			tdc = prev_dc;
1567 			merged = true;
1568 		}
1569 
1570 		if (next_dc && next_dc->state == D_PREP &&
1571 			next_dc->bdev == bdev &&
1572 			__is_discard_front_mergeable(&di, &next_dc->di,
1573 							max_discard_blocks)) {
1574 			next_dc->di.lstart = di.lstart;
1575 			next_dc->di.len += di.len;
1576 			next_dc->di.start = di.start;
1577 			dcc->undiscard_blks += di.len;
1578 			__relocate_discard_cmd(dcc, next_dc);
1579 			if (tdc)
1580 				__remove_discard_cmd(sbi, tdc);
1581 			merged = true;
1582 		}
1583 
1584 		if (!merged)
1585 			__insert_discard_cmd(sbi, bdev,
1586 						di.lstart, di.start, di.len);
1587  next:
1588 		prev_dc = next_dc;
1589 		if (!prev_dc)
1590 			break;
1591 
1592 		node = rb_next(&prev_dc->rb_node);
1593 		next_dc = rb_entry_safe(node, struct discard_cmd, rb_node);
1594 	}
1595 }
1596 
1597 #ifdef CONFIG_BLK_DEV_ZONED
__queue_zone_reset_cmd(struct f2fs_sb_info * sbi,struct block_device * bdev,block_t blkstart,block_t lblkstart,block_t blklen)1598 static void __queue_zone_reset_cmd(struct f2fs_sb_info *sbi,
1599 		struct block_device *bdev, block_t blkstart, block_t lblkstart,
1600 		block_t blklen)
1601 {
1602 	trace_f2fs_queue_reset_zone(bdev, blkstart);
1603 
1604 	mutex_lock(&SM_I(sbi)->dcc_info->cmd_lock);
1605 	__insert_discard_cmd(sbi, bdev, lblkstart, blkstart, blklen);
1606 	mutex_unlock(&SM_I(sbi)->dcc_info->cmd_lock);
1607 }
1608 #endif
1609 
__queue_discard_cmd(struct f2fs_sb_info * sbi,struct block_device * bdev,block_t blkstart,block_t blklen)1610 static void __queue_discard_cmd(struct f2fs_sb_info *sbi,
1611 		struct block_device *bdev, block_t blkstart, block_t blklen)
1612 {
1613 	block_t lblkstart = blkstart;
1614 
1615 	if (!f2fs_bdev_support_discard(bdev))
1616 		return;
1617 
1618 	trace_f2fs_queue_discard(bdev, blkstart, blklen);
1619 
1620 	if (f2fs_is_multi_device(sbi)) {
1621 		int devi = f2fs_target_device_index(sbi, blkstart);
1622 
1623 		blkstart -= FDEV(devi).start_blk;
1624 	}
1625 	mutex_lock(&SM_I(sbi)->dcc_info->cmd_lock);
1626 	__update_discard_tree_range(sbi, bdev, lblkstart, blkstart, blklen);
1627 	mutex_unlock(&SM_I(sbi)->dcc_info->cmd_lock);
1628 }
1629 
__issue_discard_cmd_orderly(struct f2fs_sb_info * sbi,struct discard_policy * dpolicy,int * issued)1630 static void __issue_discard_cmd_orderly(struct f2fs_sb_info *sbi,
1631 		struct discard_policy *dpolicy, int *issued)
1632 {
1633 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1634 	struct discard_cmd *prev_dc = NULL, *next_dc = NULL;
1635 	struct rb_node **insert_p = NULL, *insert_parent = NULL;
1636 	struct discard_cmd *dc;
1637 	struct blk_plug plug;
1638 	bool io_interrupted = false;
1639 
1640 	mutex_lock(&dcc->cmd_lock);
1641 	dc = __lookup_discard_cmd_ret(&dcc->root, dcc->next_pos,
1642 				&prev_dc, &next_dc, &insert_p, &insert_parent);
1643 	if (!dc)
1644 		dc = next_dc;
1645 
1646 	blk_start_plug(&plug);
1647 
1648 	while (dc) {
1649 		struct rb_node *node;
1650 		int err = 0;
1651 
1652 		if (dc->state != D_PREP)
1653 			goto next;
1654 
1655 		if (*issued > 0 && unlikely(freezing(current)))
1656 			break;
1657 
1658 		if (dpolicy->io_aware && !is_idle(sbi, DISCARD_TIME)) {
1659 			io_interrupted = true;
1660 			break;
1661 		}
1662 
1663 		dcc->next_pos = dc->di.lstart + dc->di.len;
1664 		err = __submit_discard_cmd(sbi, dpolicy, dc, issued);
1665 
1666 		if (*issued >= dpolicy->max_requests)
1667 			break;
1668 next:
1669 		node = rb_next(&dc->rb_node);
1670 		if (err)
1671 			__remove_discard_cmd(sbi, dc);
1672 		dc = rb_entry_safe(node, struct discard_cmd, rb_node);
1673 	}
1674 
1675 	blk_finish_plug(&plug);
1676 
1677 	if (!dc)
1678 		dcc->next_pos = 0;
1679 
1680 	mutex_unlock(&dcc->cmd_lock);
1681 
1682 	if (!(*issued) && io_interrupted)
1683 		*issued = -1;
1684 }
1685 static unsigned int __wait_all_discard_cmd(struct f2fs_sb_info *sbi,
1686 					struct discard_policy *dpolicy);
1687 
__issue_discard_cmd(struct f2fs_sb_info * sbi,struct discard_policy * dpolicy)1688 static int __issue_discard_cmd(struct f2fs_sb_info *sbi,
1689 					struct discard_policy *dpolicy)
1690 {
1691 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1692 	struct list_head *pend_list;
1693 	struct discard_cmd *dc, *tmp;
1694 	struct blk_plug plug;
1695 	int i, issued;
1696 	bool io_interrupted = false;
1697 	bool suspended = false;
1698 
1699 	if (dpolicy->timeout)
1700 		f2fs_update_time(sbi, UMOUNT_DISCARD_TIMEOUT);
1701 
1702 retry:
1703 	issued = 0;
1704 	for (i = MAX_PLIST_NUM - 1; i >= 0; i--) {
1705 		if (dpolicy->timeout &&
1706 				f2fs_time_over(sbi, UMOUNT_DISCARD_TIMEOUT))
1707 			break;
1708 
1709 		if (i + 1 < dpolicy->granularity)
1710 			break;
1711 
1712 		if (i + 1 < dcc->max_ordered_discard && dpolicy->ordered) {
1713 			__issue_discard_cmd_orderly(sbi, dpolicy, &issued);
1714 			return issued;
1715 		}
1716 
1717 		pend_list = &dcc->pend_list[i];
1718 
1719 		mutex_lock(&dcc->cmd_lock);
1720 		if (list_empty(pend_list))
1721 			goto next;
1722 		if (unlikely(dcc->rbtree_check))
1723 			f2fs_bug_on(sbi, !f2fs_check_discard_tree(sbi));
1724 		blk_start_plug(&plug);
1725 		list_for_each_entry_safe(dc, tmp, pend_list, list) {
1726 			f2fs_bug_on(sbi, dc->state != D_PREP);
1727 
1728 			if (issued > 0 && unlikely(freezing(current))) {
1729 				suspended = true;
1730 				break;
1731 			}
1732 
1733 			if (dpolicy->timeout &&
1734 				f2fs_time_over(sbi, UMOUNT_DISCARD_TIMEOUT))
1735 				break;
1736 
1737 			if (dpolicy->io_aware && i < dpolicy->io_aware_gran &&
1738 						!is_idle(sbi, DISCARD_TIME)) {
1739 				io_interrupted = true;
1740 				break;
1741 			}
1742 
1743 			__submit_discard_cmd(sbi, dpolicy, dc, &issued);
1744 
1745 			if (issued >= dpolicy->max_requests)
1746 				break;
1747 		}
1748 		blk_finish_plug(&plug);
1749 next:
1750 		mutex_unlock(&dcc->cmd_lock);
1751 
1752 		if (issued >= dpolicy->max_requests || io_interrupted ||
1753 					suspended)
1754 			break;
1755 	}
1756 
1757 	if (dpolicy->type == DPOLICY_UMOUNT && issued) {
1758 		__wait_all_discard_cmd(sbi, dpolicy);
1759 		goto retry;
1760 	}
1761 
1762 	if (!issued && io_interrupted)
1763 		issued = -1;
1764 
1765 	return issued;
1766 }
1767 
__drop_discard_cmd(struct f2fs_sb_info * sbi)1768 static bool __drop_discard_cmd(struct f2fs_sb_info *sbi)
1769 {
1770 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1771 	struct list_head *pend_list;
1772 	struct discard_cmd *dc, *tmp;
1773 	int i;
1774 	bool dropped = false;
1775 
1776 	mutex_lock(&dcc->cmd_lock);
1777 	for (i = MAX_PLIST_NUM - 1; i >= 0; i--) {
1778 		pend_list = &dcc->pend_list[i];
1779 		list_for_each_entry_safe(dc, tmp, pend_list, list) {
1780 			f2fs_bug_on(sbi, dc->state != D_PREP);
1781 			__remove_discard_cmd(sbi, dc);
1782 			dropped = true;
1783 		}
1784 	}
1785 	mutex_unlock(&dcc->cmd_lock);
1786 
1787 	return dropped;
1788 }
1789 
f2fs_drop_discard_cmd(struct f2fs_sb_info * sbi)1790 void f2fs_drop_discard_cmd(struct f2fs_sb_info *sbi)
1791 {
1792 	__drop_discard_cmd(sbi);
1793 }
1794 
__wait_one_discard_bio(struct f2fs_sb_info * sbi,struct discard_cmd * dc)1795 static unsigned int __wait_one_discard_bio(struct f2fs_sb_info *sbi,
1796 							struct discard_cmd *dc)
1797 {
1798 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1799 	unsigned int len = 0;
1800 
1801 	wait_for_completion_io(&dc->wait);
1802 	mutex_lock(&dcc->cmd_lock);
1803 	f2fs_bug_on(sbi, dc->state != D_DONE);
1804 	dc->ref--;
1805 	if (!dc->ref) {
1806 		if (!dc->error)
1807 			len = dc->di.len;
1808 		__remove_discard_cmd(sbi, dc);
1809 	}
1810 	mutex_unlock(&dcc->cmd_lock);
1811 
1812 	return len;
1813 }
1814 
__wait_discard_cmd_range(struct f2fs_sb_info * sbi,struct discard_policy * dpolicy,block_t start,block_t end)1815 static unsigned int __wait_discard_cmd_range(struct f2fs_sb_info *sbi,
1816 						struct discard_policy *dpolicy,
1817 						block_t start, block_t end)
1818 {
1819 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1820 	struct list_head *wait_list = (dpolicy->type == DPOLICY_FSTRIM) ?
1821 					&(dcc->fstrim_list) : &(dcc->wait_list);
1822 	struct discard_cmd *dc = NULL, *iter, *tmp;
1823 	unsigned int trimmed = 0;
1824 
1825 next:
1826 	dc = NULL;
1827 
1828 	mutex_lock(&dcc->cmd_lock);
1829 	list_for_each_entry_safe(iter, tmp, wait_list, list) {
1830 		if (iter->di.lstart + iter->di.len <= start ||
1831 					end <= iter->di.lstart)
1832 			continue;
1833 		if (iter->di.len < dpolicy->granularity)
1834 			continue;
1835 		if (iter->state == D_DONE && !iter->ref) {
1836 			wait_for_completion_io(&iter->wait);
1837 			if (!iter->error)
1838 				trimmed += iter->di.len;
1839 			__remove_discard_cmd(sbi, iter);
1840 		} else {
1841 			iter->ref++;
1842 			dc = iter;
1843 			break;
1844 		}
1845 	}
1846 	mutex_unlock(&dcc->cmd_lock);
1847 
1848 	if (dc) {
1849 		trimmed += __wait_one_discard_bio(sbi, dc);
1850 		goto next;
1851 	}
1852 
1853 	return trimmed;
1854 }
1855 
__wait_all_discard_cmd(struct f2fs_sb_info * sbi,struct discard_policy * dpolicy)1856 static unsigned int __wait_all_discard_cmd(struct f2fs_sb_info *sbi,
1857 						struct discard_policy *dpolicy)
1858 {
1859 	struct discard_policy dp;
1860 	unsigned int discard_blks;
1861 
1862 	if (dpolicy)
1863 		return __wait_discard_cmd_range(sbi, dpolicy, 0, UINT_MAX);
1864 
1865 	/* wait all */
1866 	__init_discard_policy(sbi, &dp, DPOLICY_FSTRIM, MIN_DISCARD_GRANULARITY);
1867 	discard_blks = __wait_discard_cmd_range(sbi, &dp, 0, UINT_MAX);
1868 	__init_discard_policy(sbi, &dp, DPOLICY_UMOUNT, MIN_DISCARD_GRANULARITY);
1869 	discard_blks += __wait_discard_cmd_range(sbi, &dp, 0, UINT_MAX);
1870 
1871 	return discard_blks;
1872 }
1873 
1874 /* This should be covered by global mutex, &sit_i->sentry_lock */
f2fs_wait_discard_bio(struct f2fs_sb_info * sbi,block_t blkaddr)1875 static void f2fs_wait_discard_bio(struct f2fs_sb_info *sbi, block_t blkaddr)
1876 {
1877 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1878 	struct discard_cmd *dc;
1879 	bool need_wait = false;
1880 
1881 	mutex_lock(&dcc->cmd_lock);
1882 	dc = __lookup_discard_cmd(sbi, blkaddr);
1883 #ifdef CONFIG_BLK_DEV_ZONED
1884 	if (dc && f2fs_sb_has_blkzoned(sbi) && bdev_is_zoned(dc->bdev)) {
1885 		int devi = f2fs_bdev_index(sbi, dc->bdev);
1886 
1887 		if (devi < 0) {
1888 			mutex_unlock(&dcc->cmd_lock);
1889 			return;
1890 		}
1891 
1892 		if (f2fs_blkz_is_seq(sbi, devi, dc->di.start)) {
1893 			/* force submit zone reset */
1894 			if (dc->state == D_PREP)
1895 				__submit_zone_reset_cmd(sbi, dc, REQ_SYNC,
1896 							&dcc->wait_list, NULL);
1897 			dc->ref++;
1898 			mutex_unlock(&dcc->cmd_lock);
1899 			/* wait zone reset */
1900 			__wait_one_discard_bio(sbi, dc);
1901 			return;
1902 		}
1903 	}
1904 #endif
1905 	if (dc) {
1906 		if (dc->state == D_PREP) {
1907 			__punch_discard_cmd(sbi, dc, blkaddr);
1908 		} else {
1909 			dc->ref++;
1910 			need_wait = true;
1911 		}
1912 	}
1913 	mutex_unlock(&dcc->cmd_lock);
1914 
1915 	if (need_wait)
1916 		__wait_one_discard_bio(sbi, dc);
1917 }
1918 
f2fs_stop_discard_thread(struct f2fs_sb_info * sbi)1919 void f2fs_stop_discard_thread(struct f2fs_sb_info *sbi)
1920 {
1921 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1922 
1923 	if (dcc && dcc->f2fs_issue_discard) {
1924 		struct task_struct *discard_thread = dcc->f2fs_issue_discard;
1925 
1926 		dcc->f2fs_issue_discard = NULL;
1927 		kthread_stop(discard_thread);
1928 	}
1929 }
1930 
1931 /**
1932  * f2fs_issue_discard_timeout() - Issue all discard cmd within UMOUNT_DISCARD_TIMEOUT
1933  * @sbi: the f2fs_sb_info data for discard cmd to issue
1934  *
1935  * When UMOUNT_DISCARD_TIMEOUT is exceeded, all remaining discard commands will be dropped
1936  *
1937  * Return true if issued all discard cmd or no discard cmd need issue, otherwise return false.
1938  */
f2fs_issue_discard_timeout(struct f2fs_sb_info * sbi,bool need_check)1939 bool f2fs_issue_discard_timeout(struct f2fs_sb_info *sbi, bool need_check)
1940 {
1941 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1942 	struct discard_policy dpolicy;
1943 	bool dropped;
1944 
1945 	if (!atomic_read(&dcc->discard_cmd_cnt))
1946 		return true;
1947 
1948 	__init_discard_policy(sbi, &dpolicy, DPOLICY_UMOUNT,
1949 					dcc->discard_granularity);
1950 	__issue_discard_cmd(sbi, &dpolicy);
1951 	dropped = __drop_discard_cmd(sbi);
1952 
1953 	/* just to make sure there is no pending discard commands */
1954 	__wait_all_discard_cmd(sbi, NULL);
1955 
1956 	f2fs_bug_on(sbi, need_check && atomic_read(&dcc->discard_cmd_cnt));
1957 	return !dropped;
1958 }
1959 
issue_discard_thread(void * data)1960 static int issue_discard_thread(void *data)
1961 {
1962 	struct f2fs_sb_info *sbi = data;
1963 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
1964 	wait_queue_head_t *q = &dcc->discard_wait_queue;
1965 	struct discard_policy dpolicy;
1966 	unsigned int wait_ms = dcc->min_discard_issue_time;
1967 	int issued;
1968 
1969 	set_freezable();
1970 
1971 	do {
1972 		wait_event_freezable_timeout(*q,
1973 				kthread_should_stop() || dcc->discard_wake,
1974 				msecs_to_jiffies(wait_ms));
1975 
1976 		if (sbi->gc_mode == GC_URGENT_HIGH ||
1977 			!f2fs_available_free_memory(sbi, DISCARD_CACHE))
1978 			__init_discard_policy(sbi, &dpolicy, DPOLICY_FORCE,
1979 						MIN_DISCARD_GRANULARITY);
1980 		else
1981 			__init_discard_policy(sbi, &dpolicy, DPOLICY_BG,
1982 						dcc->discard_granularity);
1983 
1984 		if (dcc->discard_wake)
1985 			dcc->discard_wake = false;
1986 
1987 		/* clean up pending candidates before going to sleep */
1988 		if (atomic_read(&dcc->queued_discard))
1989 			__wait_all_discard_cmd(sbi, NULL);
1990 
1991 		if (f2fs_readonly(sbi->sb))
1992 			continue;
1993 		if (kthread_should_stop())
1994 			return 0;
1995 		if (is_sbi_flag_set(sbi, SBI_NEED_FSCK) ||
1996 			!atomic_read(&dcc->discard_cmd_cnt)) {
1997 			wait_ms = dpolicy.max_interval;
1998 			continue;
1999 		}
2000 
2001 		sb_start_intwrite(sbi->sb);
2002 
2003 		issued = __issue_discard_cmd(sbi, &dpolicy);
2004 		if (issued > 0) {
2005 			__wait_all_discard_cmd(sbi, &dpolicy);
2006 			wait_ms = dpolicy.min_interval;
2007 		} else if (issued == -1) {
2008 			wait_ms = f2fs_time_to_wait(sbi, DISCARD_TIME);
2009 			if (!wait_ms)
2010 				wait_ms = dpolicy.mid_interval;
2011 		} else {
2012 			wait_ms = dpolicy.max_interval;
2013 		}
2014 		if (!atomic_read(&dcc->discard_cmd_cnt))
2015 			wait_ms = dpolicy.max_interval;
2016 
2017 		sb_end_intwrite(sbi->sb);
2018 
2019 	} while (!kthread_should_stop());
2020 	return 0;
2021 }
2022 
2023 #ifdef CONFIG_BLK_DEV_ZONED
__f2fs_issue_discard_zone(struct f2fs_sb_info * sbi,struct block_device * bdev,block_t blkstart,block_t blklen)2024 static int __f2fs_issue_discard_zone(struct f2fs_sb_info *sbi,
2025 		struct block_device *bdev, block_t blkstart, block_t blklen)
2026 {
2027 	sector_t sector, nr_sects;
2028 	block_t lblkstart = blkstart;
2029 	int devi = 0;
2030 	u64 remainder = 0;
2031 
2032 	if (f2fs_is_multi_device(sbi)) {
2033 		devi = f2fs_target_device_index(sbi, blkstart);
2034 		if (blkstart < FDEV(devi).start_blk ||
2035 		    blkstart > FDEV(devi).end_blk) {
2036 			f2fs_err(sbi, "Invalid block %x", blkstart);
2037 			return -EIO;
2038 		}
2039 		blkstart -= FDEV(devi).start_blk;
2040 	}
2041 
2042 	/* For sequential zones, reset the zone write pointer */
2043 	if (f2fs_blkz_is_seq(sbi, devi, blkstart)) {
2044 		sector = SECTOR_FROM_BLOCK(blkstart);
2045 		nr_sects = SECTOR_FROM_BLOCK(blklen);
2046 		div64_u64_rem(sector, bdev_zone_sectors(bdev), &remainder);
2047 
2048 		if (remainder || nr_sects != bdev_zone_sectors(bdev)) {
2049 			f2fs_err(sbi, "(%d) %s: Unaligned zone reset attempted (block %x + %x)",
2050 				 devi, sbi->s_ndevs ? FDEV(devi).path : "",
2051 				 blkstart, blklen);
2052 			return -EIO;
2053 		}
2054 
2055 		if (unlikely(is_sbi_flag_set(sbi, SBI_POR_DOING))) {
2056 			unsigned int nofs_flags;
2057 			int ret;
2058 
2059 			trace_f2fs_issue_reset_zone(bdev, blkstart);
2060 			nofs_flags = memalloc_nofs_save();
2061 			ret = blkdev_zone_mgmt(bdev, REQ_OP_ZONE_RESET,
2062 						sector, nr_sects);
2063 			memalloc_nofs_restore(nofs_flags);
2064 			return ret;
2065 		}
2066 
2067 		__queue_zone_reset_cmd(sbi, bdev, blkstart, lblkstart, blklen);
2068 		return 0;
2069 	}
2070 
2071 	/* For conventional zones, use regular discard if supported */
2072 	__queue_discard_cmd(sbi, bdev, lblkstart, blklen);
2073 	return 0;
2074 }
2075 #endif
2076 
__issue_discard_async(struct f2fs_sb_info * sbi,struct block_device * bdev,block_t blkstart,block_t blklen)2077 static int __issue_discard_async(struct f2fs_sb_info *sbi,
2078 		struct block_device *bdev, block_t blkstart, block_t blklen)
2079 {
2080 #ifdef CONFIG_BLK_DEV_ZONED
2081 	if (f2fs_sb_has_blkzoned(sbi) && bdev_is_zoned(bdev))
2082 		return __f2fs_issue_discard_zone(sbi, bdev, blkstart, blklen);
2083 #endif
2084 	__queue_discard_cmd(sbi, bdev, blkstart, blklen);
2085 	return 0;
2086 }
2087 
f2fs_issue_discard(struct f2fs_sb_info * sbi,block_t blkstart,block_t blklen)2088 static int f2fs_issue_discard(struct f2fs_sb_info *sbi,
2089 				block_t blkstart, block_t blklen)
2090 {
2091 	sector_t start = blkstart, len = 0;
2092 	struct block_device *bdev;
2093 	struct seg_entry *se;
2094 	unsigned int offset;
2095 	block_t i;
2096 	int err = 0;
2097 
2098 	bdev = f2fs_target_device(sbi, blkstart, NULL);
2099 
2100 	for (i = blkstart; i < blkstart + blklen; i++, len++) {
2101 		if (i != start) {
2102 			struct block_device *bdev2 =
2103 				f2fs_target_device(sbi, i, NULL);
2104 
2105 			if (bdev2 != bdev) {
2106 				err = __issue_discard_async(sbi, bdev,
2107 						start, len);
2108 				if (err)
2109 					return err;
2110 				bdev = bdev2;
2111 				start = i;
2112 				len = 0;
2113 			}
2114 		}
2115 
2116 		se = get_seg_entry(sbi, GET_SEGNO(sbi, i));
2117 		offset = GET_BLKOFF_FROM_SEG0(sbi, i);
2118 
2119 		if (f2fs_block_unit_discard(sbi) &&
2120 				!f2fs_test_and_set_bit(offset, se->discard_map))
2121 			sbi->discard_blks--;
2122 	}
2123 
2124 	if (len)
2125 		err = __issue_discard_async(sbi, bdev, start, len);
2126 	return err;
2127 }
2128 
add_discard_addrs(struct f2fs_sb_info * sbi,struct cp_control * cpc,bool check_only)2129 static bool add_discard_addrs(struct f2fs_sb_info *sbi, struct cp_control *cpc,
2130 							bool check_only)
2131 {
2132 	int entries = SIT_VBLOCK_MAP_SIZE / sizeof(unsigned long);
2133 	struct seg_entry *se = get_seg_entry(sbi, cpc->trim_start);
2134 	unsigned long *cur_map = (unsigned long *)se->cur_valid_map;
2135 	unsigned long *ckpt_map = (unsigned long *)se->ckpt_valid_map;
2136 	unsigned long *discard_map = (unsigned long *)se->discard_map;
2137 	unsigned long *dmap = SIT_I(sbi)->tmp_map;
2138 	unsigned int start = 0, end = -1;
2139 	bool force = (cpc->reason & CP_DISCARD);
2140 	struct discard_entry *de = NULL;
2141 	struct list_head *head = &SM_I(sbi)->dcc_info->entry_list;
2142 	int i;
2143 
2144 	if (se->valid_blocks == BLKS_PER_SEG(sbi) ||
2145 	    !f2fs_hw_support_discard(sbi) ||
2146 	    !f2fs_block_unit_discard(sbi))
2147 		return false;
2148 
2149 	if (!force) {
2150 		if (!f2fs_realtime_discard_enable(sbi) ||
2151 			(!se->valid_blocks &&
2152 				!is_curseg(sbi, cpc->trim_start)) ||
2153 			SM_I(sbi)->dcc_info->nr_discards >=
2154 				SM_I(sbi)->dcc_info->max_discards)
2155 			return false;
2156 	}
2157 
2158 	/* SIT_VBLOCK_MAP_SIZE should be multiple of sizeof(unsigned long) */
2159 	for (i = 0; i < entries; i++)
2160 		dmap[i] = force ? ~ckpt_map[i] & ~discard_map[i] :
2161 				(cur_map[i] ^ ckpt_map[i]) & ckpt_map[i];
2162 
2163 	while (force || SM_I(sbi)->dcc_info->nr_discards <=
2164 				SM_I(sbi)->dcc_info->max_discards) {
2165 		start = __find_rev_next_bit(dmap, BLKS_PER_SEG(sbi), end + 1);
2166 		if (start >= BLKS_PER_SEG(sbi))
2167 			break;
2168 
2169 		end = __find_rev_next_zero_bit(dmap,
2170 						BLKS_PER_SEG(sbi), start + 1);
2171 		if (force && start && end != BLKS_PER_SEG(sbi) &&
2172 		    (end - start) < cpc->trim_minlen)
2173 			continue;
2174 
2175 		if (check_only)
2176 			return true;
2177 
2178 		if (!de) {
2179 			de = f2fs_kmem_cache_alloc(discard_entry_slab,
2180 						GFP_F2FS_ZERO, true, NULL);
2181 			de->start_blkaddr = START_BLOCK(sbi, cpc->trim_start);
2182 			list_add_tail(&de->list, head);
2183 		}
2184 
2185 		for (i = start; i < end; i++)
2186 			__set_bit_le(i, (void *)de->discard_map);
2187 
2188 		SM_I(sbi)->dcc_info->nr_discards += end - start;
2189 	}
2190 	return false;
2191 }
2192 
release_discard_addr(struct discard_entry * entry)2193 static void release_discard_addr(struct discard_entry *entry)
2194 {
2195 	list_del(&entry->list);
2196 	kmem_cache_free(discard_entry_slab, entry);
2197 }
2198 
f2fs_release_discard_addrs(struct f2fs_sb_info * sbi)2199 void f2fs_release_discard_addrs(struct f2fs_sb_info *sbi)
2200 {
2201 	struct list_head *head = &(SM_I(sbi)->dcc_info->entry_list);
2202 	struct discard_entry *entry, *this;
2203 
2204 	/* drop caches */
2205 	list_for_each_entry_safe(entry, this, head, list)
2206 		release_discard_addr(entry);
2207 }
2208 
2209 /*
2210  * Should call f2fs_clear_prefree_segments after checkpoint is done.
2211  */
set_prefree_as_free_segments(struct f2fs_sb_info * sbi)2212 static void set_prefree_as_free_segments(struct f2fs_sb_info *sbi)
2213 {
2214 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
2215 	unsigned int segno;
2216 
2217 	mutex_lock(&dirty_i->seglist_lock);
2218 	for_each_set_bit(segno, dirty_i->dirty_segmap[PRE], MAIN_SEGS(sbi))
2219 		__set_test_and_free(sbi, segno, false);
2220 	mutex_unlock(&dirty_i->seglist_lock);
2221 }
2222 
f2fs_clear_prefree_segments(struct f2fs_sb_info * sbi,struct cp_control * cpc)2223 void f2fs_clear_prefree_segments(struct f2fs_sb_info *sbi,
2224 						struct cp_control *cpc)
2225 {
2226 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
2227 	struct list_head *head = &dcc->entry_list;
2228 	struct discard_entry *entry, *this;
2229 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
2230 	unsigned long *prefree_map = dirty_i->dirty_segmap[PRE];
2231 	unsigned int start = 0, end = -1;
2232 	unsigned int secno, start_segno;
2233 	bool force = (cpc->reason & CP_DISCARD);
2234 	bool section_alignment = F2FS_OPTION(sbi).discard_unit ==
2235 						DISCARD_UNIT_SECTION;
2236 
2237 	if (f2fs_lfs_mode(sbi) && __is_large_section(sbi))
2238 		section_alignment = true;
2239 
2240 	mutex_lock(&dirty_i->seglist_lock);
2241 
2242 	while (1) {
2243 		int i;
2244 
2245 		if (section_alignment && end != -1)
2246 			end--;
2247 		start = find_next_bit(prefree_map, MAIN_SEGS(sbi), end + 1);
2248 		if (start >= MAIN_SEGS(sbi))
2249 			break;
2250 		end = find_next_zero_bit(prefree_map, MAIN_SEGS(sbi),
2251 								start + 1);
2252 
2253 		if (section_alignment) {
2254 			start = rounddown(start, SEGS_PER_SEC(sbi));
2255 			end = roundup(end, SEGS_PER_SEC(sbi));
2256 		}
2257 
2258 		for (i = start; i < end; i++) {
2259 			if (test_and_clear_bit(i, prefree_map))
2260 				dirty_i->nr_dirty[PRE]--;
2261 		}
2262 
2263 		if (!f2fs_realtime_discard_enable(sbi))
2264 			continue;
2265 
2266 		if (force && start >= cpc->trim_start &&
2267 					(end - 1) <= cpc->trim_end)
2268 			continue;
2269 
2270 		/* Should cover 2MB zoned device for zone-based reset */
2271 		if (!f2fs_sb_has_blkzoned(sbi) &&
2272 		    (!f2fs_lfs_mode(sbi) || !__is_large_section(sbi))) {
2273 			f2fs_issue_discard(sbi, START_BLOCK(sbi, start),
2274 				SEGS_TO_BLKS(sbi, end - start));
2275 			continue;
2276 		}
2277 next:
2278 		secno = GET_SEC_FROM_SEG(sbi, start);
2279 		start_segno = GET_SEG_FROM_SEC(sbi, secno);
2280 		if (!is_cursec(sbi, secno) &&
2281 			!get_valid_blocks(sbi, start, true))
2282 			f2fs_issue_discard(sbi, START_BLOCK(sbi, start_segno),
2283 						BLKS_PER_SEC(sbi));
2284 
2285 		start = start_segno + SEGS_PER_SEC(sbi);
2286 		if (start < end)
2287 			goto next;
2288 		else
2289 			end = start - 1;
2290 	}
2291 	mutex_unlock(&dirty_i->seglist_lock);
2292 
2293 	if (!f2fs_block_unit_discard(sbi))
2294 		goto wakeup;
2295 
2296 	/* send small discards */
2297 	list_for_each_entry_safe(entry, this, head, list) {
2298 		unsigned int cur_pos = 0, next_pos, len, total_len = 0;
2299 		bool is_valid = test_bit_le(0, entry->discard_map);
2300 
2301 find_next:
2302 		if (is_valid) {
2303 			next_pos = find_next_zero_bit_le(entry->discard_map,
2304 						BLKS_PER_SEG(sbi), cur_pos);
2305 			len = next_pos - cur_pos;
2306 
2307 			if (f2fs_sb_has_blkzoned(sbi) ||
2308 			    (force && len < cpc->trim_minlen))
2309 				goto skip;
2310 
2311 			f2fs_issue_discard(sbi, entry->start_blkaddr + cur_pos,
2312 									len);
2313 			total_len += len;
2314 		} else {
2315 			next_pos = find_next_bit_le(entry->discard_map,
2316 						BLKS_PER_SEG(sbi), cur_pos);
2317 		}
2318 skip:
2319 		cur_pos = next_pos;
2320 		is_valid = !is_valid;
2321 
2322 		if (cur_pos < BLKS_PER_SEG(sbi))
2323 			goto find_next;
2324 
2325 		release_discard_addr(entry);
2326 		dcc->nr_discards -= total_len;
2327 	}
2328 
2329 wakeup:
2330 	wake_up_discard_thread(sbi, false);
2331 }
2332 
f2fs_start_discard_thread(struct f2fs_sb_info * sbi)2333 int f2fs_start_discard_thread(struct f2fs_sb_info *sbi)
2334 {
2335 	dev_t dev = sbi->sb->s_bdev->bd_dev;
2336 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
2337 	int err = 0;
2338 
2339 	if (f2fs_sb_has_readonly(sbi)) {
2340 		f2fs_info(sbi,
2341 			"Skip to start discard thread for readonly image");
2342 		return 0;
2343 	}
2344 
2345 	if (!f2fs_realtime_discard_enable(sbi))
2346 		return 0;
2347 
2348 	dcc->f2fs_issue_discard = kthread_run(issue_discard_thread, sbi,
2349 				"f2fs_discard-%u:%u", MAJOR(dev), MINOR(dev));
2350 	if (IS_ERR(dcc->f2fs_issue_discard)) {
2351 		err = PTR_ERR(dcc->f2fs_issue_discard);
2352 		dcc->f2fs_issue_discard = NULL;
2353 	}
2354 
2355 	return err;
2356 }
2357 
create_discard_cmd_control(struct f2fs_sb_info * sbi)2358 static int create_discard_cmd_control(struct f2fs_sb_info *sbi)
2359 {
2360 	struct discard_cmd_control *dcc;
2361 	int err = 0, i;
2362 
2363 	if (SM_I(sbi)->dcc_info) {
2364 		dcc = SM_I(sbi)->dcc_info;
2365 		goto init_thread;
2366 	}
2367 
2368 	dcc = f2fs_kzalloc(sbi, sizeof(struct discard_cmd_control), GFP_KERNEL);
2369 	if (!dcc)
2370 		return -ENOMEM;
2371 
2372 	dcc->discard_io_aware_gran = MAX_PLIST_NUM;
2373 	dcc->discard_granularity = DEFAULT_DISCARD_GRANULARITY;
2374 	dcc->max_ordered_discard = DEFAULT_MAX_ORDERED_DISCARD_GRANULARITY;
2375 	dcc->discard_io_aware = DPOLICY_IO_AWARE_ENABLE;
2376 	if (F2FS_OPTION(sbi).discard_unit == DISCARD_UNIT_SEGMENT ||
2377 		F2FS_OPTION(sbi).discard_unit == DISCARD_UNIT_SECTION)
2378 		dcc->discard_granularity = BLKS_PER_SEG(sbi);
2379 
2380 	INIT_LIST_HEAD(&dcc->entry_list);
2381 	for (i = 0; i < MAX_PLIST_NUM; i++)
2382 		INIT_LIST_HEAD(&dcc->pend_list[i]);
2383 	INIT_LIST_HEAD(&dcc->wait_list);
2384 	INIT_LIST_HEAD(&dcc->fstrim_list);
2385 	mutex_init(&dcc->cmd_lock);
2386 	atomic_set(&dcc->issued_discard, 0);
2387 	atomic_set(&dcc->queued_discard, 0);
2388 	atomic_set(&dcc->discard_cmd_cnt, 0);
2389 	dcc->nr_discards = 0;
2390 	dcc->max_discards = SEGS_TO_BLKS(sbi, MAIN_SEGS(sbi));
2391 	dcc->max_discard_request = DEF_MAX_DISCARD_REQUEST;
2392 	dcc->min_discard_issue_time = DEF_MIN_DISCARD_ISSUE_TIME;
2393 	dcc->mid_discard_issue_time = DEF_MID_DISCARD_ISSUE_TIME;
2394 	dcc->max_discard_issue_time = DEF_MAX_DISCARD_ISSUE_TIME;
2395 	dcc->discard_urgent_util = DEF_DISCARD_URGENT_UTIL;
2396 	dcc->undiscard_blks = 0;
2397 	dcc->next_pos = 0;
2398 	dcc->root = RB_ROOT_CACHED;
2399 	dcc->rbtree_check = false;
2400 
2401 	init_waitqueue_head(&dcc->discard_wait_queue);
2402 	SM_I(sbi)->dcc_info = dcc;
2403 init_thread:
2404 	err = f2fs_start_discard_thread(sbi);
2405 	if (err) {
2406 		kfree(dcc);
2407 		SM_I(sbi)->dcc_info = NULL;
2408 	}
2409 
2410 	return err;
2411 }
2412 
destroy_discard_cmd_control(struct f2fs_sb_info * sbi)2413 static void destroy_discard_cmd_control(struct f2fs_sb_info *sbi)
2414 {
2415 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
2416 
2417 	if (!dcc)
2418 		return;
2419 
2420 	f2fs_stop_discard_thread(sbi);
2421 
2422 	/*
2423 	 * Recovery can cache discard commands, so in error path of
2424 	 * fill_super(), it needs to give a chance to handle them.
2425 	 */
2426 	f2fs_issue_discard_timeout(sbi, true);
2427 
2428 	kfree(dcc);
2429 	SM_I(sbi)->dcc_info = NULL;
2430 }
2431 
__mark_sit_entry_dirty(struct f2fs_sb_info * sbi,unsigned int segno)2432 static bool __mark_sit_entry_dirty(struct f2fs_sb_info *sbi, unsigned int segno)
2433 {
2434 	struct sit_info *sit_i = SIT_I(sbi);
2435 
2436 	if (!__test_and_set_bit(segno, sit_i->dirty_sentries_bitmap)) {
2437 		sit_i->dirty_sentries++;
2438 		return false;
2439 	}
2440 
2441 	return true;
2442 }
2443 
__set_sit_entry_type(struct f2fs_sb_info * sbi,int type,unsigned int segno,int modified)2444 static void __set_sit_entry_type(struct f2fs_sb_info *sbi, int type,
2445 					unsigned int segno, int modified)
2446 {
2447 	struct seg_entry *se = get_seg_entry(sbi, segno);
2448 
2449 	se->type = type;
2450 	if (modified)
2451 		__mark_sit_entry_dirty(sbi, segno);
2452 }
2453 
get_segment_mtime(struct f2fs_sb_info * sbi,block_t blkaddr)2454 static inline unsigned long long get_segment_mtime(struct f2fs_sb_info *sbi,
2455 								block_t blkaddr)
2456 {
2457 	unsigned int segno = GET_SEGNO(sbi, blkaddr);
2458 
2459 	if (segno == NULL_SEGNO)
2460 		return 0;
2461 	return get_seg_entry(sbi, segno)->mtime;
2462 }
2463 
update_segment_mtime(struct f2fs_sb_info * sbi,block_t blkaddr,unsigned long long old_mtime)2464 static void update_segment_mtime(struct f2fs_sb_info *sbi, block_t blkaddr,
2465 						unsigned long long old_mtime)
2466 {
2467 	struct seg_entry *se;
2468 	unsigned int segno = GET_SEGNO(sbi, blkaddr);
2469 	unsigned long long ctime = get_mtime(sbi, false);
2470 	unsigned long long mtime = old_mtime ? old_mtime : ctime;
2471 
2472 	if (segno == NULL_SEGNO)
2473 		return;
2474 
2475 	se = get_seg_entry(sbi, segno);
2476 
2477 	if (!se->mtime)
2478 		se->mtime = mtime;
2479 	else
2480 		se->mtime = div_u64(se->mtime * se->valid_blocks + mtime,
2481 						se->valid_blocks + 1);
2482 
2483 	if (ctime > SIT_I(sbi)->max_mtime)
2484 		SIT_I(sbi)->max_mtime = ctime;
2485 }
2486 
2487 /*
2488  * NOTE: when updating multiple blocks at the same time, please ensure
2489  * that the consecutive input blocks belong to the same segment.
2490  */
update_sit_entry_for_release(struct f2fs_sb_info * sbi,struct seg_entry * se,unsigned int segno,block_t blkaddr,unsigned int offset,int del)2491 static int update_sit_entry_for_release(struct f2fs_sb_info *sbi, struct seg_entry *se,
2492 				unsigned int segno, block_t blkaddr, unsigned int offset, int del)
2493 {
2494 	bool exist;
2495 	int i;
2496 	int del_count = -del;
2497 
2498 	f2fs_bug_on(sbi, GET_SEGNO(sbi, blkaddr) != GET_SEGNO(sbi, blkaddr + del_count - 1));
2499 
2500 	for (i = 0; i < del_count; i++) {
2501 		exist = f2fs_test_and_clear_bit(offset + i, se->cur_valid_map);
2502 		if (unlikely(!exist)) {
2503 			f2fs_err(sbi, "Bitmap was wrongly cleared, blk:%u", blkaddr + i);
2504 			f2fs_bug_on(sbi, 1);
2505 			se->valid_blocks++;
2506 			del += 1;
2507 		} else if (unlikely(is_sbi_flag_set(sbi, SBI_CP_DISABLED))) {
2508 			/*
2509 			 * If checkpoints are off, we must not reuse data that
2510 			 * was used in the previous checkpoint. If it was used
2511 			 * before, we must track that to know how much space we
2512 			 * really have.
2513 			 */
2514 			if (f2fs_test_bit(offset + i, se->ckpt_valid_map)) {
2515 				spin_lock(&sbi->stat_lock);
2516 				sbi->unusable_block_count++;
2517 				spin_unlock(&sbi->stat_lock);
2518 			}
2519 		}
2520 
2521 		if (f2fs_block_unit_discard(sbi) &&
2522 				f2fs_test_and_clear_bit(offset + i, se->discard_map))
2523 			sbi->discard_blks++;
2524 
2525 		if (!f2fs_test_bit(offset + i, se->ckpt_valid_map)) {
2526 			se->ckpt_valid_blocks -= 1;
2527 			if (__is_large_section(sbi))
2528 				get_sec_entry(sbi, segno)->ckpt_valid_blocks -= 1;
2529 		}
2530 	}
2531 
2532 	if (__is_large_section(sbi))
2533 		sanity_check_valid_blocks(sbi, segno);
2534 
2535 	return del;
2536 }
2537 
update_sit_entry_for_alloc(struct f2fs_sb_info * sbi,struct seg_entry * se,unsigned int segno,block_t blkaddr,unsigned int offset,int del)2538 static int update_sit_entry_for_alloc(struct f2fs_sb_info *sbi, struct seg_entry *se,
2539 				unsigned int segno, block_t blkaddr, unsigned int offset, int del)
2540 {
2541 	bool exist;
2542 	int del_count = del;
2543 	int i;
2544 
2545 	f2fs_bug_on(sbi, GET_SEGNO(sbi, blkaddr) != GET_SEGNO(sbi, blkaddr + del_count - 1));
2546 
2547 	for (i = 0; i < del_count; i++) {
2548 		exist = f2fs_test_and_set_bit(offset + i, se->cur_valid_map);
2549 		if (unlikely(exist)) {
2550 			f2fs_err(sbi, "Bitmap was wrongly set, blk:%u", blkaddr + i);
2551 			f2fs_bug_on(sbi, 1);
2552 			se->valid_blocks--;
2553 			del -= 1;
2554 			continue;
2555 		}
2556 
2557 		if (f2fs_block_unit_discard(sbi) &&
2558 				!f2fs_test_and_set_bit(offset + i, se->discard_map))
2559 			sbi->discard_blks--;
2560 
2561 		/*
2562 		 * SSR should never reuse block which is checkpointed
2563 		 * or newly invalidated.
2564 		 */
2565 		if (!is_sbi_flag_set(sbi, SBI_CP_DISABLED)) {
2566 			if (!f2fs_test_and_set_bit(offset + i, se->ckpt_valid_map)) {
2567 				se->ckpt_valid_blocks++;
2568 				if (__is_large_section(sbi))
2569 					get_sec_entry(sbi, segno)->ckpt_valid_blocks++;
2570 			}
2571 		}
2572 
2573 		if (!f2fs_test_bit(offset + i, se->ckpt_valid_map)) {
2574 			se->ckpt_valid_blocks += 1;
2575 			if (__is_large_section(sbi))
2576 				get_sec_entry(sbi, segno)->ckpt_valid_blocks += 1;
2577 		}
2578 	}
2579 
2580 	if (__is_large_section(sbi))
2581 		sanity_check_valid_blocks(sbi, segno);
2582 
2583 	return del;
2584 }
2585 
2586 /*
2587  * If releasing blocks, this function supports updating multiple consecutive blocks
2588  * at one time, but please note that these consecutive blocks need to belong to the
2589  * same segment.
2590  */
update_sit_entry(struct f2fs_sb_info * sbi,block_t blkaddr,int del)2591 static void update_sit_entry(struct f2fs_sb_info *sbi, block_t blkaddr, int del)
2592 {
2593 	struct seg_entry *se;
2594 	unsigned int segno, offset;
2595 	long int new_vblocks;
2596 
2597 	segno = GET_SEGNO(sbi, blkaddr);
2598 	if (segno == NULL_SEGNO)
2599 		return;
2600 
2601 	se = get_seg_entry(sbi, segno);
2602 	new_vblocks = se->valid_blocks + del;
2603 	offset = GET_BLKOFF_FROM_SEG0(sbi, blkaddr);
2604 
2605 	f2fs_bug_on(sbi, (new_vblocks < 0 ||
2606 			(new_vblocks > f2fs_usable_blks_in_seg(sbi, segno))));
2607 
2608 	se->valid_blocks = new_vblocks;
2609 
2610 	/* Update valid block bitmap */
2611 	if (del > 0) {
2612 		del = update_sit_entry_for_alloc(sbi, se, segno, blkaddr, offset, del);
2613 	} else {
2614 		del = update_sit_entry_for_release(sbi, se, segno, blkaddr, offset, del);
2615 	}
2616 
2617 	__mark_sit_entry_dirty(sbi, segno);
2618 
2619 	/* update total number of valid blocks to be written in ckpt area */
2620 	SIT_I(sbi)->written_valid_blocks += del;
2621 
2622 	if (__is_large_section(sbi))
2623 		get_sec_entry(sbi, segno)->valid_blocks += del;
2624 }
2625 
f2fs_invalidate_blocks(struct f2fs_sb_info * sbi,block_t addr,unsigned int len)2626 void f2fs_invalidate_blocks(struct f2fs_sb_info *sbi, block_t addr,
2627 				unsigned int len)
2628 {
2629 	unsigned int segno = GET_SEGNO(sbi, addr);
2630 	struct sit_info *sit_i = SIT_I(sbi);
2631 	block_t addr_start = addr, addr_end = addr + len - 1;
2632 	unsigned int seg_num;
2633 	unsigned int i = 1, max_blocks = sbi->blocks_per_seg, cnt;
2634 
2635 	if (len == 0)
2636 		return;
2637 
2638 	seg_num = GET_SEGNO(sbi, addr_end) - segno + 1;
2639 
2640 	f2fs_bug_on(sbi, addr == NULL_ADDR);
2641 	if (addr == NEW_ADDR || addr == COMPRESS_ADDR)
2642 		return;
2643 
2644 	f2fs_invalidate_internal_cache(sbi, addr, len);
2645 
2646 	/* add it into sit main buffer */
2647 	down_write(&sit_i->sentry_lock);
2648 
2649 	if (seg_num == 1)
2650 		cnt = len;
2651 	else
2652 		cnt = max_blocks - GET_BLKOFF_FROM_SEG0(sbi, addr);
2653 
2654 	do {
2655 		update_segment_mtime(sbi, addr_start, 0);
2656 		update_sit_entry(sbi, addr_start, -cnt);
2657 
2658 		/* add it into dirty seglist */
2659 		locate_dirty_segment(sbi, segno);
2660 
2661 		/* update @addr_start and @cnt and @segno */
2662 		addr_start = START_BLOCK(sbi, ++segno);
2663 		if (++i == seg_num)
2664 			cnt = GET_BLKOFF_FROM_SEG0(sbi, addr_end) + 1;
2665 		else
2666 			cnt = max_blocks;
2667 	} while (i <= seg_num);
2668 
2669 	up_write(&sit_i->sentry_lock);
2670 }
2671 
f2fs_reserve_device_alias(struct f2fs_sb_info * sbi,block_t addr,unsigned int len)2672 void f2fs_reserve_device_alias(struct f2fs_sb_info *sbi, block_t addr,
2673 				unsigned int len)
2674 {
2675 	unsigned int segno = GET_SEGNO(sbi, addr);
2676 	struct sit_info *sit_i = SIT_I(sbi);
2677 	block_t addr_start = addr, addr_end = addr + len - 1;
2678 	unsigned int seg_num;
2679 	unsigned int i = 1, max_blocks = sbi->blocks_per_seg, cnt;
2680 
2681 	if (len == 0)
2682 		return;
2683 
2684 	seg_num = GET_SEGNO(sbi, addr_end) - segno + 1;
2685 
2686 	down_write(&sit_i->sentry_lock);
2687 
2688 	if (seg_num == 1)
2689 		cnt = len;
2690 	else
2691 		cnt = max_blocks - GET_BLKOFF_FROM_SEG0(sbi, addr);
2692 
2693 	do {
2694 		update_segment_mtime(sbi, addr_start, 0);
2695 		update_sit_entry(sbi, addr_start, cnt);
2696 		__set_test_and_inuse(sbi, segno);
2697 
2698 		/* Remove the segment from PRE (prefree) to prevent checkpoint from freeing it! */
2699 		mutex_lock(&DIRTY_I(sbi)->seglist_lock);
2700 		if (test_and_clear_bit(segno, DIRTY_I(sbi)->dirty_segmap[PRE]))
2701 			DIRTY_I(sbi)->nr_dirty[PRE]--;
2702 		mutex_unlock(&DIRTY_I(sbi)->seglist_lock);
2703 
2704 		/* add it into dirty seglist */
2705 		locate_dirty_segment(sbi, segno);
2706 
2707 		/* update @addr_start and @cnt and @segno */
2708 		addr_start = START_BLOCK(sbi, ++segno);
2709 		if (++i == seg_num)
2710 			cnt = GET_BLKOFF_FROM_SEG0(sbi, addr_end) + 1;
2711 		else
2712 			cnt = max_blocks;
2713 	} while (i <= seg_num);
2714 
2715 	up_write(&sit_i->sentry_lock);
2716 }
2717 
f2fs_is_checkpointed_data(struct f2fs_sb_info * sbi,block_t blkaddr)2718 bool f2fs_is_checkpointed_data(struct f2fs_sb_info *sbi, block_t blkaddr)
2719 {
2720 	struct sit_info *sit_i = SIT_I(sbi);
2721 	unsigned int segno, offset;
2722 	struct seg_entry *se;
2723 	bool is_cp = false;
2724 
2725 	if (!__is_valid_data_blkaddr(blkaddr))
2726 		return true;
2727 
2728 	down_read(&sit_i->sentry_lock);
2729 
2730 	segno = GET_SEGNO(sbi, blkaddr);
2731 	se = get_seg_entry(sbi, segno);
2732 	offset = GET_BLKOFF_FROM_SEG0(sbi, blkaddr);
2733 
2734 	if (f2fs_test_bit(offset, se->ckpt_valid_map))
2735 		is_cp = true;
2736 
2737 	up_read(&sit_i->sentry_lock);
2738 
2739 	return is_cp;
2740 }
2741 
f2fs_curseg_valid_blocks(struct f2fs_sb_info * sbi,int type)2742 static unsigned short f2fs_curseg_valid_blocks(struct f2fs_sb_info *sbi, int type)
2743 {
2744 	struct curseg_info *curseg = CURSEG_I(sbi, type);
2745 
2746 	if (sbi->ckpt->alloc_type[type] == SSR)
2747 		return BLKS_PER_SEG(sbi);
2748 	return curseg->next_blkoff;
2749 }
2750 
2751 /*
2752  * Calculate the number of current summary pages for writing
2753  */
f2fs_npages_for_summary_flush(struct f2fs_sb_info * sbi,bool for_ra)2754 int f2fs_npages_for_summary_flush(struct f2fs_sb_info *sbi, bool for_ra)
2755 {
2756 	int valid_sum_count = 0;
2757 	int i, sum_in_page;
2758 
2759 	for (i = CURSEG_HOT_DATA; i <= CURSEG_COLD_DATA; i++) {
2760 		if (sbi->ckpt->alloc_type[i] != SSR && for_ra)
2761 			valid_sum_count +=
2762 				le16_to_cpu(F2FS_CKPT(sbi)->cur_data_blkoff[i]);
2763 		else
2764 			valid_sum_count += f2fs_curseg_valid_blocks(sbi, i);
2765 	}
2766 
2767 	sum_in_page = (sbi->blocksize - 2 * sbi->sum_journal_size -
2768 			SUM_FOOTER_SIZE) / SUMMARY_SIZE;
2769 	if (valid_sum_count <= sum_in_page)
2770 		return 1;
2771 	else if ((valid_sum_count - sum_in_page) <=
2772 		(sbi->blocksize - SUM_FOOTER_SIZE) / SUMMARY_SIZE)
2773 		return 2;
2774 	return 3;
2775 }
2776 
2777 /*
2778  * Caller should put this summary folio
2779  */
f2fs_get_sum_folio(struct f2fs_sb_info * sbi,unsigned int segno)2780 struct folio *f2fs_get_sum_folio(struct f2fs_sb_info *sbi, unsigned int segno)
2781 {
2782 	if (unlikely(f2fs_cp_error(sbi)))
2783 		return ERR_PTR(-EIO);
2784 	return f2fs_get_meta_folio_retry(sbi, GET_SUM_BLOCK(sbi, segno));
2785 }
2786 
f2fs_update_meta_page(struct f2fs_sb_info * sbi,void * src,block_t blk_addr)2787 void f2fs_update_meta_page(struct f2fs_sb_info *sbi,
2788 					void *src, block_t blk_addr)
2789 {
2790 	struct folio *folio;
2791 
2792 	if (!f2fs_sb_has_packed_ssa(sbi))
2793 		folio = f2fs_grab_meta_folio(sbi, blk_addr);
2794 	else
2795 		folio = f2fs_get_meta_folio_retry(sbi, blk_addr);
2796 
2797 	if (IS_ERR(folio))
2798 		return;
2799 
2800 	memcpy(folio_address(folio), src, PAGE_SIZE);
2801 	folio_mark_dirty(folio);
2802 	f2fs_folio_put(folio, true);
2803 }
2804 
write_sum_page(struct f2fs_sb_info * sbi,struct f2fs_summary_block * sum_blk,unsigned int segno)2805 static void write_sum_page(struct f2fs_sb_info *sbi,
2806 		struct f2fs_summary_block *sum_blk, unsigned int segno)
2807 {
2808 	struct folio *folio;
2809 
2810 	if (!f2fs_sb_has_packed_ssa(sbi))
2811 		return f2fs_update_meta_page(sbi, (void *)sum_blk,
2812 				GET_SUM_BLOCK(sbi, segno));
2813 
2814 	folio = f2fs_get_sum_folio(sbi, segno);
2815 	if (IS_ERR(folio))
2816 		return;
2817 
2818 	memcpy(SUM_BLK_PAGE_ADDR(sbi, folio, segno), sum_blk,
2819 			sbi->sum_blocksize);
2820 	folio_mark_dirty(folio);
2821 	f2fs_folio_put(folio, true);
2822 }
2823 
write_current_sum_page(struct f2fs_sb_info * sbi,int type,block_t blk_addr)2824 static void write_current_sum_page(struct f2fs_sb_info *sbi,
2825 						int type, block_t blk_addr)
2826 {
2827 	struct curseg_info *curseg = CURSEG_I(sbi, type);
2828 	struct folio *folio = f2fs_grab_meta_folio(sbi, blk_addr);
2829 	struct f2fs_summary_block *src = curseg->sum_blk;
2830 	struct f2fs_summary_block *dst;
2831 
2832 	dst = folio_address(folio);
2833 	memset(dst, 0, PAGE_SIZE);
2834 
2835 	mutex_lock(&curseg->curseg_mutex);
2836 
2837 	down_read(&curseg->journal_rwsem);
2838 	memcpy(sum_journal(sbi, dst), curseg->journal, sbi->sum_journal_size);
2839 	up_read(&curseg->journal_rwsem);
2840 
2841 	memcpy(sum_entries(dst), sum_entries(src), sbi->sum_entry_size);
2842 	memcpy(sum_footer(sbi, dst), sum_footer(sbi, src), SUM_FOOTER_SIZE);
2843 
2844 	mutex_unlock(&curseg->curseg_mutex);
2845 
2846 	folio_mark_dirty(folio);
2847 	f2fs_folio_put(folio, true);
2848 }
2849 
is_next_segment_free(struct f2fs_sb_info * sbi,struct curseg_info * curseg)2850 static int is_next_segment_free(struct f2fs_sb_info *sbi,
2851 				struct curseg_info *curseg)
2852 {
2853 	unsigned int segno = curseg->segno + 1;
2854 	struct free_segmap_info *free_i = FREE_I(sbi);
2855 
2856 	if (segno < MAIN_SEGS(sbi) && segno % SEGS_PER_SEC(sbi)) {
2857 		int devi = f2fs_target_device_index(sbi, START_BLOCK(sbi, segno));
2858 
2859 		if (f2fs_dev_is_reserving(sbi, devi))
2860 			return 0;
2861 		return !test_bit(segno, free_i->free_segmap);
2862 	}
2863 	return 0;
2864 }
2865 
2866 /*
2867  * Find a new segment from the free segments bitmap to right order
2868  * This function should be returned with success, otherwise BUG
2869  */
get_new_segment(struct f2fs_sb_info * sbi,unsigned int * newseg,bool new_sec,bool pinning)2870 static int get_new_segment(struct f2fs_sb_info *sbi,
2871 			unsigned int *newseg, bool new_sec, bool pinning)
2872 {
2873 	struct free_segmap_info *free_i = FREE_I(sbi);
2874 	unsigned int segno, secno, zoneno;
2875 	unsigned int total_zones = MAIN_SECS(sbi) / sbi->secs_per_zone;
2876 	unsigned int hint = GET_SEC_FROM_SEG(sbi, *newseg);
2877 	unsigned int old_zoneno = GET_ZONE_FROM_SEG(sbi, *newseg);
2878 	unsigned int alloc_policy = sbi->allocate_section_policy;
2879 	unsigned int alloc_hint = sbi->allocate_section_hint;
2880 	unsigned int max_secno = MAIN_SECS(sbi);
2881 	bool init = true;
2882 	bool looped = false;
2883 	int i, devi;
2884 	int ret = 0;
2885 
2886 	spin_lock(&free_i->segmap_lock);
2887 
2888 	if (time_to_inject(sbi, FAULT_NO_SEGMENT)) {
2889 		ret = -ENOSPC;
2890 		goto out_unlock;
2891 	}
2892 
2893 	if (!new_sec && ((*newseg + 1) % SEGS_PER_SEC(sbi))) {
2894 		segno = find_next_zero_bit(free_i->free_segmap,
2895 			GET_SEG_FROM_SEC(sbi, hint + 1), *newseg + 1);
2896 		if (segno < GET_SEG_FROM_SEC(sbi, hint + 1)) {
2897 			devi = f2fs_target_device_index(sbi, START_BLOCK(sbi, segno));
2898 
2899 			if (f2fs_dev_is_alloc_blocked(sbi, devi, pinning))
2900 				goto find_other_zone;
2901 			goto got_it;
2902 		}
2903 	}
2904 
2905 #ifdef CONFIG_BLK_DEV_ZONED
2906 	/*
2907 	 * If we format f2fs on zoned storage, let's try to get pinned sections
2908 	 * from beginning of the storage, which should be a conventional one.
2909 	 */
2910 	if (f2fs_sb_has_blkzoned(sbi)) {
2911 		/* Prioritize writing to conventional zones */
2912 		if (sbi->blkzone_alloc_policy == BLKZONE_ALLOC_PRIOR_CONV)
2913 			segno = 0;
2914 		else
2915 			segno = max(sbi->first_seq_zone_segno, *newseg);
2916 		hint = GET_SEC_FROM_SEG(sbi, segno);
2917 	}
2918 #endif
2919 
2920 	/*
2921 	 * Prevent allocate_section_hint from exceeding MAIN_SECS()
2922 	 * due to desynchronization.
2923 	 */
2924 	if (alloc_policy != ALLOCATE_FORWARD_NOHINT &&
2925 		alloc_hint > MAIN_SECS(sbi))
2926 		alloc_hint = MAIN_SECS(sbi);
2927 
2928 	if (pinning) {
2929 		max_secno = sbi->pinned_area_max_secno;
2930 		hint = 0;
2931 	} else if (alloc_policy == ALLOCATE_FORWARD_FROM_HINT &&
2932 		hint < alloc_hint) {
2933 		hint = alloc_hint;
2934 	} else if (alloc_policy == ALLOCATE_FORWARD_WITHIN_HINT &&
2935 			hint >= alloc_hint) {
2936 		hint = 0;
2937 	}
2938 
2939 find_other_zone:
2940 	secno = find_next_zero_bit(free_i->free_secmap, max_secno, hint);
2941 
2942 	if (secno >= max_secno) {
2943 		if (looped) {
2944 			ret = (pinning && has_unpinned_area(sbi)) ?
2945 					-EAGAIN : -ENOSPC;
2946 			f2fs_bug_on(sbi, !pinning);
2947 			goto out_unlock;
2948 		}
2949 		hint = 0;
2950 #ifdef CONFIG_BLK_DEV_ZONED
2951 		/* Write only to sequential zones */
2952 		if (f2fs_sb_has_blkzoned(sbi) &&
2953 			sbi->blkzone_alloc_policy == BLKZONE_ALLOC_ONLY_SEQ)
2954 			hint = GET_SEC_FROM_SEG(sbi, sbi->first_seq_zone_segno);
2955 #endif
2956 		looped = true;
2957 		goto find_other_zone;
2958 	}
2959 
2960 	segno = GET_SEG_FROM_SEC(sbi, secno);
2961 
2962 	devi = f2fs_target_device_index(sbi, START_BLOCK(sbi, segno));
2963 
2964 	if (f2fs_dev_is_alloc_blocked(sbi, devi, pinning)) {
2965 		while (devi < sbi->s_ndevs &&
2966 			f2fs_dev_is_alloc_blocked(sbi, devi, pinning)) {
2967 			unsigned int end_segno = GET_SEGNO(sbi, FDEV(devi).end_blk);
2968 
2969 			hint = GET_SEC_FROM_SEG(sbi, end_segno) + 1;
2970 			devi++;
2971 		}
2972 		goto find_other_zone;
2973 	}
2974 
2975 	if (sec_usage_check(sbi, secno)) {
2976 		hint = secno + 1;
2977 		goto find_other_zone;
2978 	}
2979 	zoneno = GET_ZONE_FROM_SEC(sbi, secno);
2980 
2981 	/* give up on finding another zone */
2982 	if (!init)
2983 		goto got_it;
2984 	if (sbi->secs_per_zone == 1)
2985 		goto got_it;
2986 	if (zoneno == old_zoneno)
2987 		goto got_it;
2988 	for (i = 0; i < NR_CURSEG_TYPE; i++)
2989 		if (CURSEG_I(sbi, i)->zone == zoneno)
2990 			break;
2991 
2992 	if (i < NR_CURSEG_TYPE) {
2993 		/* zone is in user, try another */
2994 		if (zoneno + 1 >= total_zones)
2995 			hint = 0;
2996 		else
2997 			hint = (zoneno + 1) * sbi->secs_per_zone;
2998 		init = false;
2999 		goto find_other_zone;
3000 	}
3001 got_it:
3002 	/* set it as dirty segment in free segmap */
3003 	if (test_bit(segno, free_i->free_segmap)) {
3004 		ret = -EFSCORRUPTED;
3005 		fserror_report_metadata(sbi->sb, -EFSCORRUPTED, GFP_NOFS);
3006 		f2fs_stop_checkpoint(sbi, false, STOP_CP_REASON_CORRUPTED_FREE_BITMAP);
3007 		goto out_unlock;
3008 	}
3009 
3010 	__set_inuse(sbi, segno);
3011 	*newseg = segno;
3012 out_unlock:
3013 	spin_unlock(&free_i->segmap_lock);
3014 
3015 	if (ret == -ENOSPC && !pinning)
3016 		f2fs_stop_checkpoint(sbi, false, STOP_CP_REASON_NO_SEGMENT);
3017 	return ret;
3018 }
3019 
reset_curseg(struct f2fs_sb_info * sbi,int type,int modified)3020 static void reset_curseg(struct f2fs_sb_info *sbi, int type, int modified)
3021 {
3022 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3023 	struct summary_footer *sum_footer;
3024 	unsigned short seg_type = curseg->seg_type;
3025 
3026 	/* only happen when get_new_segment() fails */
3027 	if (curseg->next_segno == NULL_SEGNO)
3028 		return;
3029 
3030 	curseg->inited = true;
3031 	curseg->segno = curseg->next_segno;
3032 	curseg->zone = GET_ZONE_FROM_SEG(sbi, curseg->segno);
3033 	curseg->next_blkoff = 0;
3034 	curseg->next_segno = NULL_SEGNO;
3035 
3036 	sum_footer = sum_footer(sbi, curseg->sum_blk);
3037 	memset(sum_footer, 0, sizeof(struct summary_footer));
3038 
3039 	sanity_check_seg_type(sbi, seg_type);
3040 
3041 	if (IS_DATASEG(seg_type))
3042 		SET_SUM_TYPE(sum_footer, SUM_TYPE_DATA);
3043 	if (IS_NODESEG(seg_type))
3044 		SET_SUM_TYPE(sum_footer, SUM_TYPE_NODE);
3045 	__set_sit_entry_type(sbi, seg_type, curseg->segno, modified);
3046 }
3047 
__get_next_segno(struct f2fs_sb_info * sbi,int type)3048 static unsigned int __get_next_segno(struct f2fs_sb_info *sbi, int type)
3049 {
3050 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3051 	unsigned short seg_type = curseg->seg_type;
3052 
3053 	sanity_check_seg_type(sbi, seg_type);
3054 	if (__is_large_section(sbi)) {
3055 		if (f2fs_need_rand_seg_blk(sbi, type)) {
3056 			unsigned int hint = GET_SEC_FROM_SEG(sbi, curseg->segno);
3057 
3058 			if (GET_SEC_FROM_SEG(sbi, curseg->segno + 1) != hint)
3059 				return curseg->segno;
3060 			return get_random_u32_inclusive(curseg->segno + 1,
3061 					GET_SEG_FROM_SEC(sbi, hint + 1) - 1);
3062 		}
3063 		return curseg->segno;
3064 	} else if (f2fs_need_rand_seg_blk(sbi, type)) {
3065 		return get_random_u32_below(MAIN_SECS(sbi) * SEGS_PER_SEC(sbi));
3066 	}
3067 
3068 	/* inmem log may not locate on any segment after mount */
3069 	if (!curseg->inited)
3070 		return 0;
3071 
3072 	if (unlikely(is_sbi_flag_set(sbi, SBI_CP_DISABLED)))
3073 		return 0;
3074 
3075 	if (seg_type == CURSEG_HOT_DATA || IS_NODESEG(seg_type))
3076 		return 0;
3077 
3078 	if (SIT_I(sbi)->last_victim[ALLOC_NEXT])
3079 		return SIT_I(sbi)->last_victim[ALLOC_NEXT];
3080 
3081 	/* find segments from 0 to reuse freed segments */
3082 	if (F2FS_OPTION(sbi).alloc_mode == ALLOC_MODE_REUSE)
3083 		return 0;
3084 
3085 	return curseg->segno;
3086 }
3087 
reset_curseg_fields(struct curseg_info * curseg)3088 static void reset_curseg_fields(struct curseg_info *curseg)
3089 {
3090 	curseg->inited = false;
3091 	curseg->segno = NULL_SEGNO;
3092 	curseg->next_segno = 0;
3093 }
3094 
3095 /*
3096  * Allocate a current working segment.
3097  * This function always allocates a free segment in LFS manner.
3098  */
new_curseg(struct f2fs_sb_info * sbi,int type,bool new_sec)3099 static int new_curseg(struct f2fs_sb_info *sbi, int type, bool new_sec)
3100 {
3101 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3102 	unsigned int segno = curseg->segno;
3103 	bool pinning = type == CURSEG_COLD_DATA_PINNED;
3104 	int ret;
3105 
3106 	if (curseg->inited)
3107 		write_sum_page(sbi, curseg->sum_blk, segno);
3108 
3109 	segno = __get_next_segno(sbi, type);
3110 	ret = get_new_segment(sbi, &segno, new_sec, pinning);
3111 	if (ret) {
3112 		if (ret == -ENOSPC)
3113 			reset_curseg_fields(curseg);
3114 		return ret;
3115 	}
3116 
3117 	curseg->next_segno = segno;
3118 	reset_curseg(sbi, type, 1);
3119 	curseg->alloc_type = LFS;
3120 	if (f2fs_need_rand_blk(sbi, type))
3121 		curseg->fragment_remained_chunk =
3122 				get_random_u32_inclusive(1, sbi->max_fragment_chunk);
3123 	return 0;
3124 }
3125 
__next_free_blkoff(struct f2fs_sb_info * sbi,int segno,block_t start)3126 static int __next_free_blkoff(struct f2fs_sb_info *sbi,
3127 					int segno, block_t start)
3128 {
3129 	struct seg_entry *se = get_seg_entry(sbi, segno);
3130 	int entries = SIT_VBLOCK_MAP_SIZE / sizeof(unsigned long);
3131 	unsigned long *target_map = SIT_I(sbi)->tmp_map;
3132 	unsigned long *ckpt_map = (unsigned long *)se->ckpt_valid_map;
3133 	unsigned long *cur_map = (unsigned long *)se->cur_valid_map;
3134 	int i;
3135 
3136 	for (i = 0; i < entries; i++)
3137 		target_map[i] = ckpt_map[i] | cur_map[i];
3138 
3139 	return __find_rev_next_zero_bit(target_map, BLKS_PER_SEG(sbi), start);
3140 }
3141 
f2fs_find_next_ssr_block(struct f2fs_sb_info * sbi,struct curseg_info * seg)3142 static int f2fs_find_next_ssr_block(struct f2fs_sb_info *sbi,
3143 		struct curseg_info *seg)
3144 {
3145 	return __next_free_blkoff(sbi, seg->segno, seg->next_blkoff + 1);
3146 }
3147 
f2fs_segment_has_free_slot(struct f2fs_sb_info * sbi,int segno)3148 bool f2fs_segment_has_free_slot(struct f2fs_sb_info *sbi, int segno)
3149 {
3150 	return __next_free_blkoff(sbi, segno, 0) < BLKS_PER_SEG(sbi);
3151 }
3152 
3153 /*
3154  * This function always allocates a used segment(from dirty seglist) by SSR
3155  * manner, so it should recover the existing segment information of valid blocks
3156  */
change_curseg(struct f2fs_sb_info * sbi,int type)3157 static int change_curseg(struct f2fs_sb_info *sbi, int type)
3158 {
3159 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
3160 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3161 	unsigned int new_segno = curseg->next_segno;
3162 	struct f2fs_summary_block *sum_node;
3163 	struct folio *sum_folio;
3164 
3165 	if (curseg->inited)
3166 		write_sum_page(sbi, curseg->sum_blk, curseg->segno);
3167 
3168 	__set_test_and_inuse(sbi, new_segno);
3169 
3170 	mutex_lock(&dirty_i->seglist_lock);
3171 	__remove_dirty_segment(sbi, new_segno, PRE);
3172 	__remove_dirty_segment(sbi, new_segno, DIRTY);
3173 	mutex_unlock(&dirty_i->seglist_lock);
3174 
3175 	reset_curseg(sbi, type, 1);
3176 	curseg->alloc_type = SSR;
3177 	curseg->next_blkoff = __next_free_blkoff(sbi, curseg->segno, 0);
3178 
3179 	sum_folio = f2fs_get_sum_folio(sbi, new_segno);
3180 	if (IS_ERR(sum_folio)) {
3181 		/* GC won't be able to use stale summary pages by cp_error */
3182 		memset(curseg->sum_blk, 0, sbi->sum_entry_size);
3183 		return PTR_ERR(sum_folio);
3184 	}
3185 	sum_node = SUM_BLK_PAGE_ADDR(sbi, sum_folio, new_segno);
3186 	memcpy(curseg->sum_blk, sum_node, sbi->sum_entry_size);
3187 	f2fs_folio_put(sum_folio, true);
3188 	return 0;
3189 }
3190 
3191 static int get_ssr_segment(struct f2fs_sb_info *sbi, int type,
3192 				int alloc_mode, unsigned long long age);
3193 
get_atssr_segment(struct f2fs_sb_info * sbi,int type,int target_type,int alloc_mode,unsigned long long age)3194 static int get_atssr_segment(struct f2fs_sb_info *sbi, int type,
3195 					int target_type, int alloc_mode,
3196 					unsigned long long age)
3197 {
3198 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3199 	int ret = 0;
3200 
3201 	curseg->seg_type = target_type;
3202 
3203 	if (get_ssr_segment(sbi, type, alloc_mode, age)) {
3204 		struct seg_entry *se = get_seg_entry(sbi, curseg->next_segno);
3205 
3206 		curseg->seg_type = se->type;
3207 		ret = change_curseg(sbi, type);
3208 	} else {
3209 		/* allocate cold segment by default */
3210 		curseg->seg_type = CURSEG_COLD_DATA;
3211 		ret = new_curseg(sbi, type, true);
3212 	}
3213 	stat_inc_seg_type(sbi, curseg);
3214 	return ret;
3215 }
3216 
__f2fs_init_atgc_curseg(struct f2fs_sb_info * sbi,bool force)3217 static int __f2fs_init_atgc_curseg(struct f2fs_sb_info *sbi, bool force)
3218 {
3219 	struct curseg_info *curseg = CURSEG_I(sbi, CURSEG_ALL_DATA_ATGC);
3220 	int ret = 0;
3221 
3222 	if (!sbi->am.atgc_enabled && !force)
3223 		return 0;
3224 
3225 	f2fs_down_read(&SM_I(sbi)->curseg_lock);
3226 
3227 	mutex_lock(&curseg->curseg_mutex);
3228 	down_write(&SIT_I(sbi)->sentry_lock);
3229 
3230 	ret = get_atssr_segment(sbi, CURSEG_ALL_DATA_ATGC,
3231 					CURSEG_COLD_DATA, SSR, 0);
3232 
3233 	up_write(&SIT_I(sbi)->sentry_lock);
3234 	mutex_unlock(&curseg->curseg_mutex);
3235 
3236 	f2fs_up_read(&SM_I(sbi)->curseg_lock);
3237 	return ret;
3238 }
3239 
f2fs_init_inmem_curseg(struct f2fs_sb_info * sbi)3240 int f2fs_init_inmem_curseg(struct f2fs_sb_info *sbi)
3241 {
3242 	return __f2fs_init_atgc_curseg(sbi, false);
3243 }
3244 
f2fs_reinit_atgc_curseg(struct f2fs_sb_info * sbi)3245 int f2fs_reinit_atgc_curseg(struct f2fs_sb_info *sbi)
3246 {
3247 	int ret;
3248 
3249 	if (!test_opt(sbi, ATGC))
3250 		return 0;
3251 	if (sbi->am.atgc_enabled)
3252 		return 0;
3253 	if (le64_to_cpu(F2FS_CKPT(sbi)->elapsed_time) <
3254 			sbi->am.age_threshold)
3255 		return 0;
3256 
3257 	ret = __f2fs_init_atgc_curseg(sbi, true);
3258 	if (!ret) {
3259 		sbi->am.atgc_enabled = true;
3260 		f2fs_info(sbi, "reenabled age threshold GC");
3261 	}
3262 	return ret;
3263 }
3264 
__f2fs_save_inmem_curseg(struct f2fs_sb_info * sbi,int type)3265 static void __f2fs_save_inmem_curseg(struct f2fs_sb_info *sbi, int type)
3266 {
3267 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3268 
3269 	mutex_lock(&curseg->curseg_mutex);
3270 	if (!curseg->inited)
3271 		goto out;
3272 
3273 	if (get_valid_blocks(sbi, curseg->segno, false)) {
3274 		write_sum_page(sbi, curseg->sum_blk, curseg->segno);
3275 	} else {
3276 		mutex_lock(&DIRTY_I(sbi)->seglist_lock);
3277 		__set_test_and_free(sbi, curseg->segno, true);
3278 		mutex_unlock(&DIRTY_I(sbi)->seglist_lock);
3279 	}
3280 out:
3281 	mutex_unlock(&curseg->curseg_mutex);
3282 }
3283 
f2fs_save_inmem_curseg(struct f2fs_sb_info * sbi)3284 void f2fs_save_inmem_curseg(struct f2fs_sb_info *sbi)
3285 {
3286 	__f2fs_save_inmem_curseg(sbi, CURSEG_COLD_DATA_PINNED);
3287 
3288 	if (sbi->am.atgc_enabled)
3289 		__f2fs_save_inmem_curseg(sbi, CURSEG_ALL_DATA_ATGC);
3290 }
3291 
__f2fs_restore_inmem_curseg(struct f2fs_sb_info * sbi,int type)3292 static void __f2fs_restore_inmem_curseg(struct f2fs_sb_info *sbi, int type)
3293 {
3294 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3295 
3296 	mutex_lock(&curseg->curseg_mutex);
3297 	if (!curseg->inited)
3298 		goto out;
3299 	if (get_valid_blocks(sbi, curseg->segno, false))
3300 		goto out;
3301 
3302 	mutex_lock(&DIRTY_I(sbi)->seglist_lock);
3303 	__set_test_and_inuse(sbi, curseg->segno);
3304 	mutex_unlock(&DIRTY_I(sbi)->seglist_lock);
3305 out:
3306 	mutex_unlock(&curseg->curseg_mutex);
3307 }
3308 
f2fs_restore_inmem_curseg(struct f2fs_sb_info * sbi)3309 void f2fs_restore_inmem_curseg(struct f2fs_sb_info *sbi)
3310 {
3311 	__f2fs_restore_inmem_curseg(sbi, CURSEG_COLD_DATA_PINNED);
3312 
3313 	if (sbi->am.atgc_enabled)
3314 		__f2fs_restore_inmem_curseg(sbi, CURSEG_ALL_DATA_ATGC);
3315 }
3316 
get_ssr_segment(struct f2fs_sb_info * sbi,int type,int alloc_mode,unsigned long long age)3317 static int get_ssr_segment(struct f2fs_sb_info *sbi, int type,
3318 				int alloc_mode, unsigned long long age)
3319 {
3320 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3321 	unsigned segno = NULL_SEGNO;
3322 	unsigned short seg_type = curseg->seg_type;
3323 	int i, cnt;
3324 	bool reversed = false;
3325 
3326 	sanity_check_seg_type(sbi, seg_type);
3327 
3328 	/* f2fs_need_SSR() already forces to do this */
3329 	if (!f2fs_get_victim(sbi, &segno, BG_GC, seg_type,
3330 				alloc_mode, age, false)) {
3331 		curseg->next_segno = segno;
3332 		return 1;
3333 	}
3334 
3335 	/* For node segments, let's do SSR more intensively */
3336 	if (IS_NODESEG(seg_type)) {
3337 		if (seg_type >= CURSEG_WARM_NODE) {
3338 			reversed = true;
3339 			i = CURSEG_COLD_NODE;
3340 		} else {
3341 			i = CURSEG_HOT_NODE;
3342 		}
3343 		cnt = NR_CURSEG_NODE_TYPE;
3344 	} else {
3345 		if (seg_type >= CURSEG_WARM_DATA) {
3346 			reversed = true;
3347 			i = CURSEG_COLD_DATA;
3348 		} else {
3349 			i = CURSEG_HOT_DATA;
3350 		}
3351 		cnt = NR_CURSEG_DATA_TYPE;
3352 	}
3353 
3354 	for (; cnt-- > 0; reversed ? i-- : i++) {
3355 		if (i == seg_type)
3356 			continue;
3357 		if (!f2fs_get_victim(sbi, &segno, BG_GC, i,
3358 					alloc_mode, age, false)) {
3359 			curseg->next_segno = segno;
3360 			return 1;
3361 		}
3362 	}
3363 
3364 	/* find valid_blocks=0 in dirty list */
3365 	if (unlikely(is_sbi_flag_set(sbi, SBI_CP_DISABLED))) {
3366 		segno = get_free_segment(sbi);
3367 		if (segno != NULL_SEGNO) {
3368 			curseg->next_segno = segno;
3369 			return 1;
3370 		}
3371 	}
3372 	return 0;
3373 }
3374 
need_new_seg(struct f2fs_sb_info * sbi,int type)3375 static bool need_new_seg(struct f2fs_sb_info *sbi, int type)
3376 {
3377 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3378 
3379 	if (!is_set_ckpt_flags(sbi, CP_CRC_RECOVERY_FLAG) &&
3380 	    curseg->seg_type == CURSEG_WARM_NODE)
3381 		return true;
3382 	if (curseg->alloc_type == LFS && is_next_segment_free(sbi, curseg) &&
3383 	    likely(!is_sbi_flag_set(sbi, SBI_CP_DISABLED)))
3384 		return true;
3385 	if (!f2fs_need_SSR(sbi) || !get_ssr_segment(sbi, type, SSR, 0))
3386 		return true;
3387 	return false;
3388 }
3389 
f2fs_allocate_segment_for_resize(struct f2fs_sb_info * sbi,int type,unsigned int start,unsigned int end)3390 int f2fs_allocate_segment_for_resize(struct f2fs_sb_info *sbi, int type,
3391 					unsigned int start, unsigned int end)
3392 {
3393 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3394 	unsigned int segno;
3395 	int ret = 0;
3396 
3397 	f2fs_down_read(&SM_I(sbi)->curseg_lock);
3398 	mutex_lock(&curseg->curseg_mutex);
3399 	down_write(&SIT_I(sbi)->sentry_lock);
3400 
3401 	segno = CURSEG_I(sbi, type)->segno;
3402 	if (segno < start || segno > end)
3403 		goto unlock;
3404 
3405 	if (f2fs_need_SSR(sbi) && get_ssr_segment(sbi, type, SSR, 0))
3406 		ret = change_curseg(sbi, type);
3407 	else
3408 		ret = new_curseg(sbi, type, true);
3409 
3410 	stat_inc_seg_type(sbi, curseg);
3411 
3412 	locate_dirty_segment(sbi, segno);
3413 unlock:
3414 	up_write(&SIT_I(sbi)->sentry_lock);
3415 
3416 	if (segno != curseg->segno)
3417 		f2fs_notice(sbi, "For resize: curseg of type %d: %u ==> %u",
3418 			    type, segno, curseg->segno);
3419 
3420 	mutex_unlock(&curseg->curseg_mutex);
3421 	f2fs_up_read(&SM_I(sbi)->curseg_lock);
3422 	return ret;
3423 }
3424 
__allocate_new_segment(struct f2fs_sb_info * sbi,int type,bool new_sec,bool force)3425 static int __allocate_new_segment(struct f2fs_sb_info *sbi, int type,
3426 						bool new_sec, bool force)
3427 {
3428 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3429 	unsigned int old_segno;
3430 	int err = 0;
3431 
3432 	if (type == CURSEG_COLD_DATA_PINNED && !curseg->inited)
3433 		goto allocate;
3434 
3435 	if (!force && curseg->inited &&
3436 	    !curseg->next_blkoff &&
3437 	    !get_valid_blocks(sbi, curseg->segno, new_sec) &&
3438 	    !get_ckpt_valid_blocks(sbi, curseg->segno, new_sec))
3439 		return 0;
3440 
3441 allocate:
3442 	old_segno = curseg->segno;
3443 	err = new_curseg(sbi, type, true);
3444 	if (err)
3445 		return err;
3446 	stat_inc_seg_type(sbi, curseg);
3447 	locate_dirty_segment(sbi, old_segno);
3448 	return 0;
3449 }
3450 
f2fs_allocate_new_section(struct f2fs_sb_info * sbi,int type,bool force)3451 int f2fs_allocate_new_section(struct f2fs_sb_info *sbi, int type, bool force)
3452 {
3453 	int ret;
3454 
3455 	f2fs_down_read(&SM_I(sbi)->curseg_lock);
3456 	down_write(&SIT_I(sbi)->sentry_lock);
3457 	ret = __allocate_new_segment(sbi, type, true, force);
3458 	up_write(&SIT_I(sbi)->sentry_lock);
3459 	f2fs_up_read(&SM_I(sbi)->curseg_lock);
3460 
3461 	return ret;
3462 }
3463 
f2fs_allocate_pinning_section(struct f2fs_sb_info * sbi)3464 int f2fs_allocate_pinning_section(struct f2fs_sb_info *sbi)
3465 {
3466 	struct f2fs_lock_context lc;
3467 	int err;
3468 	bool gc_required = true;
3469 
3470 retry:
3471 	f2fs_lock_op(sbi, &lc);
3472 	err = f2fs_allocate_new_section(sbi, CURSEG_COLD_DATA_PINNED, false);
3473 	f2fs_unlock_op(sbi, &lc);
3474 
3475 	if (has_unpinned_area(sbi) && err == -EAGAIN && gc_required) {
3476 		err = f2fs_gc_range(sbi, 0,
3477 				sbi->pinned_area_max_secno * SEGS_PER_SEC(sbi) - 1,
3478 				true, ZONED_PIN_SEC_REQUIRED_COUNT, true);
3479 		if (err)
3480 			return err;
3481 		err = f2fs_sync_fs(sbi->sb, 1);
3482 		if (!err) {
3483 			gc_required = false;
3484 			goto retry;
3485 		}
3486 	}
3487 
3488 	return err;
3489 }
3490 
f2fs_allocate_new_segments(struct f2fs_sb_info * sbi)3491 int f2fs_allocate_new_segments(struct f2fs_sb_info *sbi)
3492 {
3493 	int i;
3494 	int err = 0;
3495 
3496 	f2fs_down_read(&SM_I(sbi)->curseg_lock);
3497 	down_write(&SIT_I(sbi)->sentry_lock);
3498 	for (i = CURSEG_HOT_DATA; i <= CURSEG_COLD_DATA; i++)
3499 		err += __allocate_new_segment(sbi, i, false, false);
3500 	up_write(&SIT_I(sbi)->sentry_lock);
3501 	f2fs_up_read(&SM_I(sbi)->curseg_lock);
3502 
3503 	return err;
3504 }
3505 
f2fs_exist_trim_candidates(struct f2fs_sb_info * sbi,struct cp_control * cpc)3506 bool f2fs_exist_trim_candidates(struct f2fs_sb_info *sbi,
3507 						struct cp_control *cpc)
3508 {
3509 	__u64 trim_start = cpc->trim_start;
3510 	bool has_candidate = false;
3511 
3512 	down_write(&SIT_I(sbi)->sentry_lock);
3513 	for (; cpc->trim_start <= cpc->trim_end; cpc->trim_start++) {
3514 		if (add_discard_addrs(sbi, cpc, true)) {
3515 			has_candidate = true;
3516 			break;
3517 		}
3518 	}
3519 	up_write(&SIT_I(sbi)->sentry_lock);
3520 
3521 	cpc->trim_start = trim_start;
3522 	return has_candidate;
3523 }
3524 
__issue_discard_cmd_range(struct f2fs_sb_info * sbi,struct discard_policy * dpolicy,unsigned int start,unsigned int end)3525 static unsigned int __issue_discard_cmd_range(struct f2fs_sb_info *sbi,
3526 					struct discard_policy *dpolicy,
3527 					unsigned int start, unsigned int end)
3528 {
3529 	struct discard_cmd_control *dcc = SM_I(sbi)->dcc_info;
3530 	struct discard_cmd *prev_dc = NULL, *next_dc = NULL;
3531 	struct rb_node **insert_p = NULL, *insert_parent = NULL;
3532 	struct discard_cmd *dc;
3533 	struct blk_plug plug;
3534 	int issued;
3535 	unsigned int trimmed = 0;
3536 
3537 next:
3538 	issued = 0;
3539 
3540 	mutex_lock(&dcc->cmd_lock);
3541 	if (unlikely(dcc->rbtree_check))
3542 		f2fs_bug_on(sbi, !f2fs_check_discard_tree(sbi));
3543 
3544 	dc = __lookup_discard_cmd_ret(&dcc->root, start,
3545 				&prev_dc, &next_dc, &insert_p, &insert_parent);
3546 	if (!dc)
3547 		dc = next_dc;
3548 
3549 	blk_start_plug(&plug);
3550 
3551 	while (dc && dc->di.lstart <= end) {
3552 		struct rb_node *node;
3553 		int err = 0;
3554 
3555 		if (dc->di.len < dpolicy->granularity)
3556 			goto skip;
3557 
3558 		if (dc->state != D_PREP) {
3559 			list_move_tail(&dc->list, &dcc->fstrim_list);
3560 			goto skip;
3561 		}
3562 
3563 		err = __submit_discard_cmd(sbi, dpolicy, dc, &issued);
3564 
3565 		if (issued >= dpolicy->max_requests) {
3566 			start = dc->di.lstart + dc->di.len;
3567 
3568 			if (err)
3569 				__remove_discard_cmd(sbi, dc);
3570 
3571 			blk_finish_plug(&plug);
3572 			mutex_unlock(&dcc->cmd_lock);
3573 			trimmed += __wait_all_discard_cmd(sbi, NULL);
3574 			f2fs_schedule_timeout(DEFAULT_DISCARD_INTERVAL);
3575 			goto next;
3576 		}
3577 skip:
3578 		node = rb_next(&dc->rb_node);
3579 		if (err)
3580 			__remove_discard_cmd(sbi, dc);
3581 		dc = rb_entry_safe(node, struct discard_cmd, rb_node);
3582 
3583 		if (fatal_signal_pending(current))
3584 			break;
3585 	}
3586 
3587 	blk_finish_plug(&plug);
3588 	mutex_unlock(&dcc->cmd_lock);
3589 
3590 	return trimmed;
3591 }
3592 
f2fs_trim_fs(struct f2fs_sb_info * sbi,struct fstrim_range * range)3593 int f2fs_trim_fs(struct f2fs_sb_info *sbi, struct fstrim_range *range)
3594 {
3595 	__u64 start = F2FS_BYTES_TO_BLK(range->start);
3596 	__u64 end = start + F2FS_BYTES_TO_BLK(range->len) - 1;
3597 	unsigned int start_segno, end_segno;
3598 	block_t start_block, end_block;
3599 	struct cp_control cpc;
3600 	struct discard_policy dpolicy;
3601 	struct f2fs_lock_context lc;
3602 	unsigned long long trimmed = 0;
3603 	int err = 0;
3604 	bool need_align = f2fs_lfs_mode(sbi) && __is_large_section(sbi);
3605 
3606 	if (start >= MAX_BLKADDR(sbi) || range->len < sbi->blocksize)
3607 		return -EINVAL;
3608 
3609 	if (end < MAIN_BLKADDR(sbi))
3610 		goto out;
3611 
3612 	if (is_sbi_flag_set(sbi, SBI_NEED_FSCK)) {
3613 		f2fs_warn(sbi, "Found FS corruption, run fsck to fix.");
3614 		return -EFSCORRUPTED;
3615 	}
3616 
3617 	/* start/end segment number in main_area */
3618 	start_segno = (start <= MAIN_BLKADDR(sbi)) ? 0 : GET_SEGNO(sbi, start);
3619 	end_segno = (end >= MAX_BLKADDR(sbi)) ? MAIN_SEGS(sbi) - 1 :
3620 						GET_SEGNO(sbi, end);
3621 	if (need_align) {
3622 		start_segno = rounddown(start_segno, SEGS_PER_SEC(sbi));
3623 		end_segno = roundup(end_segno + 1, SEGS_PER_SEC(sbi)) - 1;
3624 	}
3625 
3626 	cpc.reason = CP_DISCARD;
3627 	cpc.trim_minlen = max_t(__u64, 1, F2FS_BYTES_TO_BLK(range->minlen));
3628 	cpc.trim_start = start_segno;
3629 	cpc.trim_end = end_segno;
3630 
3631 	if (sbi->discard_blks == 0)
3632 		goto out;
3633 
3634 	f2fs_down_write_trace(&sbi->gc_lock, &lc);
3635 	stat_inc_cp_call_count(sbi, TOTAL_CALL);
3636 	err = f2fs_write_checkpoint(sbi, &cpc);
3637 	f2fs_up_write_trace(&sbi->gc_lock, &lc);
3638 	if (err)
3639 		goto out;
3640 
3641 	/*
3642 	 * We filed discard candidates, but actually we don't need to wait for
3643 	 * all of them, since they'll be issued in idle time along with runtime
3644 	 * discard option. User configuration looks like using runtime discard
3645 	 * or periodic fstrim instead of it.
3646 	 */
3647 	if (f2fs_realtime_discard_enable(sbi))
3648 		goto out;
3649 
3650 	start_block = START_BLOCK(sbi, start_segno);
3651 	end_block = START_BLOCK(sbi, end_segno + 1);
3652 
3653 	__init_discard_policy(sbi, &dpolicy, DPOLICY_FSTRIM, cpc.trim_minlen);
3654 	trimmed = __issue_discard_cmd_range(sbi, &dpolicy,
3655 					start_block, end_block);
3656 
3657 	trimmed += __wait_discard_cmd_range(sbi, &dpolicy,
3658 					start_block, end_block);
3659 out:
3660 	if (!err)
3661 		range->len = F2FS_BLK_TO_BYTES(trimmed);
3662 	return err;
3663 }
3664 
f2fs_rw_hint_to_seg_type(struct f2fs_sb_info * sbi,enum rw_hint hint)3665 int f2fs_rw_hint_to_seg_type(struct f2fs_sb_info *sbi, enum rw_hint hint)
3666 {
3667 	if (F2FS_OPTION(sbi).active_logs == 2)
3668 		return CURSEG_HOT_DATA;
3669 	else if (F2FS_OPTION(sbi).active_logs == 4)
3670 		return CURSEG_COLD_DATA;
3671 
3672 	/* active_log == 6 */
3673 	switch (hint) {
3674 	case WRITE_LIFE_SHORT:
3675 		return CURSEG_HOT_DATA;
3676 	case WRITE_LIFE_EXTREME:
3677 		return CURSEG_COLD_DATA;
3678 	default:
3679 		return CURSEG_WARM_DATA;
3680 	}
3681 }
3682 
3683 /*
3684  * This returns write hints for each segment type. This hints will be
3685  * passed down to block layer as below by default.
3686  *
3687  * User                  F2FS                     Block
3688  * ----                  ----                     -----
3689  *                       META                     WRITE_LIFE_NONE|REQ_META
3690  *                       HOT_NODE                 WRITE_LIFE_NONE
3691  *                       WARM_NODE                WRITE_LIFE_MEDIUM
3692  *                       COLD_NODE                WRITE_LIFE_LONG
3693  * ioctl(COLD)           COLD_DATA                WRITE_LIFE_EXTREME
3694  * extension list        "                        "
3695  *
3696  * -- buffered io
3697  *                       COLD_DATA                WRITE_LIFE_EXTREME
3698  *                       HOT_DATA                 WRITE_LIFE_SHORT
3699  *                       WARM_DATA                WRITE_LIFE_NOT_SET
3700  *
3701  * -- direct io
3702  * WRITE_LIFE_EXTREME    COLD_DATA                WRITE_LIFE_EXTREME
3703  * WRITE_LIFE_SHORT      HOT_DATA                 WRITE_LIFE_SHORT
3704  * WRITE_LIFE_NOT_SET    WARM_DATA                WRITE_LIFE_NOT_SET
3705  * WRITE_LIFE_NONE       "                        WRITE_LIFE_NONE
3706  * WRITE_LIFE_MEDIUM     "                        WRITE_LIFE_MEDIUM
3707  * WRITE_LIFE_LONG       "                        WRITE_LIFE_LONG
3708  */
f2fs_io_type_to_rw_hint(struct f2fs_sb_info * sbi,enum page_type type,enum temp_type temp)3709 enum rw_hint f2fs_io_type_to_rw_hint(struct f2fs_sb_info *sbi,
3710 				enum page_type type, enum temp_type temp)
3711 {
3712 	switch (type) {
3713 	case DATA:
3714 		switch (temp) {
3715 		case WARM:
3716 			return WRITE_LIFE_NOT_SET;
3717 		case HOT:
3718 			return WRITE_LIFE_SHORT;
3719 		case COLD:
3720 			return WRITE_LIFE_EXTREME;
3721 		default:
3722 			return WRITE_LIFE_NONE;
3723 		}
3724 	case NODE:
3725 		switch (temp) {
3726 		case WARM:
3727 			return WRITE_LIFE_MEDIUM;
3728 		case HOT:
3729 			return WRITE_LIFE_NONE;
3730 		case COLD:
3731 			return WRITE_LIFE_LONG;
3732 		default:
3733 			return WRITE_LIFE_NONE;
3734 		}
3735 	case META:
3736 		return WRITE_LIFE_NONE;
3737 	default:
3738 		return WRITE_LIFE_NONE;
3739 	}
3740 }
3741 
f2fs_io_type_to_write_stream(struct block_device * bdev,enum page_type type,enum temp_type temp)3742 u8 f2fs_io_type_to_write_stream(struct block_device *bdev,
3743 				enum page_type type, enum temp_type temp)
3744 {
3745 	unsigned short nr = bdev_max_write_streams(bdev);
3746 
3747 	if (type != DATA || !nr)
3748 		return 0;
3749 	if (nr < NR_TEMP_TYPE)
3750 		return temp == COLD ? nr : HOT + 1;
3751 
3752 	return temp + 1;
3753 }
3754 
__get_segment_type_2(struct f2fs_io_info * fio)3755 static int __get_segment_type_2(struct f2fs_io_info *fio)
3756 {
3757 	if (fio->type == DATA)
3758 		return CURSEG_HOT_DATA;
3759 	else
3760 		return CURSEG_HOT_NODE;
3761 }
3762 
__get_segment_type_4(struct f2fs_io_info * fio)3763 static int __get_segment_type_4(struct f2fs_io_info *fio)
3764 {
3765 	if (fio->type == DATA) {
3766 		struct inode *inode = fio_inode(fio);
3767 
3768 		if (S_ISDIR(inode->i_mode))
3769 			return CURSEG_HOT_DATA;
3770 		else
3771 			return CURSEG_COLD_DATA;
3772 	} else {
3773 		if (IS_DNODE(fio->folio) && is_cold_node(fio->folio))
3774 			return CURSEG_WARM_NODE;
3775 		else
3776 			return CURSEG_COLD_NODE;
3777 	}
3778 }
3779 
__get_age_segment_type(struct inode * inode,pgoff_t pgofs)3780 static int __get_age_segment_type(struct inode *inode, pgoff_t pgofs)
3781 {
3782 	struct f2fs_sb_info *sbi = F2FS_I_SB(inode);
3783 	struct extent_info ei = {};
3784 
3785 	if (f2fs_lookup_age_extent_cache(inode, pgofs, &ei)) {
3786 		if (!ei.age)
3787 			return NO_CHECK_TYPE;
3788 		if (ei.age <= sbi->hot_data_age_threshold)
3789 			return CURSEG_HOT_DATA;
3790 		if (ei.age <= sbi->warm_data_age_threshold)
3791 			return CURSEG_WARM_DATA;
3792 		return CURSEG_COLD_DATA;
3793 	}
3794 	return NO_CHECK_TYPE;
3795 }
3796 
__get_segment_type_6(struct f2fs_io_info * fio)3797 static int __get_segment_type_6(struct f2fs_io_info *fio)
3798 {
3799 	if (fio->type == DATA) {
3800 		struct inode *inode = fio_inode(fio);
3801 		int type;
3802 
3803 		if (is_inode_flag_set(inode, FI_ALIGNED_WRITE))
3804 			return CURSEG_COLD_DATA_PINNED;
3805 
3806 		if (page_private_gcing(fio->page)) {
3807 			if (fio->sbi->am.atgc_enabled &&
3808 				(fio->io_type == FS_DATA_IO) &&
3809 				(fio->sbi->gc_mode != GC_URGENT_HIGH) &&
3810 				__is_valid_data_blkaddr(fio->old_blkaddr) &&
3811 				!is_inode_flag_set(inode, FI_OPU_WRITE))
3812 				return CURSEG_ALL_DATA_ATGC;
3813 			else
3814 				return CURSEG_COLD_DATA;
3815 		}
3816 		if (file_is_cold(inode) || f2fs_need_compress_data(inode))
3817 			return CURSEG_COLD_DATA;
3818 
3819 		type = __get_age_segment_type(inode, fio->folio->index);
3820 		if (type != NO_CHECK_TYPE)
3821 			return type;
3822 
3823 		if (file_is_hot(inode) ||
3824 				is_inode_flag_set(inode, FI_HOT_DATA) ||
3825 				f2fs_is_cow_file(inode) ||
3826 				is_inode_flag_set(inode, FI_NEED_IPU))
3827 			return CURSEG_HOT_DATA;
3828 		return f2fs_rw_hint_to_seg_type(F2FS_I_SB(inode),
3829 						inode->i_write_hint);
3830 	} else {
3831 		if (IS_DNODE(fio->folio))
3832 			return is_cold_node(fio->folio) ? CURSEG_WARM_NODE :
3833 						CURSEG_HOT_NODE;
3834 		return CURSEG_COLD_NODE;
3835 	}
3836 }
3837 
f2fs_get_segment_temp(struct f2fs_sb_info * sbi,enum log_type type)3838 enum temp_type f2fs_get_segment_temp(struct f2fs_sb_info *sbi,
3839 						enum log_type type)
3840 {
3841 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3842 	enum temp_type temp = COLD;
3843 
3844 	switch (curseg->seg_type) {
3845 	case CURSEG_HOT_NODE:
3846 	case CURSEG_HOT_DATA:
3847 		temp = HOT;
3848 		break;
3849 	case CURSEG_WARM_NODE:
3850 	case CURSEG_WARM_DATA:
3851 		temp = WARM;
3852 		break;
3853 	case CURSEG_COLD_NODE:
3854 	case CURSEG_COLD_DATA:
3855 		temp = COLD;
3856 		break;
3857 	default:
3858 		f2fs_bug_on(sbi, 1);
3859 	}
3860 
3861 	return temp;
3862 }
3863 
__get_segment_type(struct f2fs_io_info * fio)3864 static int __get_segment_type(struct f2fs_io_info *fio)
3865 {
3866 	enum log_type type = CURSEG_HOT_DATA;
3867 
3868 	switch (F2FS_OPTION(fio->sbi).active_logs) {
3869 	case 2:
3870 		type = __get_segment_type_2(fio);
3871 		break;
3872 	case 4:
3873 		type = __get_segment_type_4(fio);
3874 		break;
3875 	case 6:
3876 		type = __get_segment_type_6(fio);
3877 		break;
3878 	default:
3879 		f2fs_bug_on(fio->sbi, true);
3880 	}
3881 
3882 	fio->temp = f2fs_get_segment_temp(fio->sbi, type);
3883 
3884 	return type;
3885 }
3886 
f2fs_randomize_chunk(struct f2fs_sb_info * sbi,struct curseg_info * seg)3887 static void f2fs_randomize_chunk(struct f2fs_sb_info *sbi,
3888 		struct curseg_info *seg)
3889 {
3890 	/* To allocate block chunks in different sizes, use random number */
3891 	if (--seg->fragment_remained_chunk > 0)
3892 		return;
3893 
3894 	seg->fragment_remained_chunk =
3895 		get_random_u32_inclusive(1, sbi->max_fragment_chunk);
3896 	seg->next_blkoff +=
3897 		get_random_u32_inclusive(1, sbi->max_fragment_hole);
3898 }
3899 
f2fs_allocate_data_block(struct f2fs_sb_info * sbi,struct folio * folio,block_t old_blkaddr,block_t * new_blkaddr,struct f2fs_summary * sum,int type,struct f2fs_io_info * fio)3900 int f2fs_allocate_data_block(struct f2fs_sb_info *sbi, struct folio *folio,
3901 		block_t old_blkaddr, block_t *new_blkaddr,
3902 		struct f2fs_summary *sum, int type,
3903 		struct f2fs_io_info *fio)
3904 {
3905 	struct sit_info *sit_i = SIT_I(sbi);
3906 	struct curseg_info *curseg = CURSEG_I(sbi, type);
3907 	unsigned long long old_mtime;
3908 	bool from_gc = (type == CURSEG_ALL_DATA_ATGC);
3909 	struct seg_entry *se = NULL;
3910 	bool segment_full = false;
3911 	int ret = 0;
3912 
3913 	f2fs_down_read(&SM_I(sbi)->curseg_lock);
3914 
3915 	mutex_lock(&curseg->curseg_mutex);
3916 	down_write(&sit_i->sentry_lock);
3917 
3918 	if (curseg->segno == NULL_SEGNO) {
3919 		ret = -ENOSPC;
3920 		goto out_err;
3921 	}
3922 
3923 	if (from_gc) {
3924 		f2fs_bug_on(sbi, GET_SEGNO(sbi, old_blkaddr) == NULL_SEGNO);
3925 		se = get_seg_entry(sbi, GET_SEGNO(sbi, old_blkaddr));
3926 		sanity_check_seg_type(sbi, se->type);
3927 		f2fs_bug_on(sbi, IS_NODESEG(se->type));
3928 	}
3929 	*new_blkaddr = NEXT_FREE_BLKADDR(sbi, curseg);
3930 
3931 	f2fs_bug_on(sbi, curseg->next_blkoff >= BLKS_PER_SEG(sbi));
3932 
3933 	f2fs_wait_discard_bio(sbi, *new_blkaddr);
3934 
3935 	sum_entries(curseg->sum_blk)[curseg->next_blkoff] = *sum;
3936 	if (curseg->alloc_type == SSR) {
3937 		curseg->next_blkoff = f2fs_find_next_ssr_block(sbi, curseg);
3938 	} else {
3939 		curseg->next_blkoff++;
3940 		if (f2fs_need_rand_blk(sbi, type))
3941 			f2fs_randomize_chunk(sbi, curseg);
3942 	}
3943 	if (curseg->next_blkoff >= f2fs_usable_blks_in_seg(sbi, curseg->segno))
3944 		segment_full = true;
3945 	stat_inc_block_count(sbi, curseg);
3946 
3947 	if (from_gc) {
3948 		old_mtime = get_segment_mtime(sbi, old_blkaddr);
3949 	} else {
3950 		update_segment_mtime(sbi, old_blkaddr, 0);
3951 		old_mtime = 0;
3952 	}
3953 	update_segment_mtime(sbi, *new_blkaddr, old_mtime);
3954 
3955 	/*
3956 	 * SIT information should be updated before segment allocation,
3957 	 * since SSR needs latest valid block information.
3958 	 */
3959 	update_sit_entry(sbi, *new_blkaddr, 1);
3960 	update_sit_entry(sbi, old_blkaddr, -1);
3961 
3962 	/*
3963 	 * If the current segment is full, flush it out and replace it with a
3964 	 * new segment.
3965 	 */
3966 	if (segment_full) {
3967 		if (type == CURSEG_COLD_DATA_PINNED &&
3968 		    !((curseg->segno + 1) % sbi->segs_per_sec)) {
3969 			write_sum_page(sbi, curseg->sum_blk, curseg->segno);
3970 			reset_curseg_fields(curseg);
3971 			goto skip_new_segment;
3972 		}
3973 
3974 		if (from_gc) {
3975 			ret = get_atssr_segment(sbi, type, se->type,
3976 						AT_SSR, se->mtime);
3977 		} else {
3978 			if (need_new_seg(sbi, type))
3979 				ret = new_curseg(sbi, type, false);
3980 			else
3981 				ret = change_curseg(sbi, type);
3982 			stat_inc_seg_type(sbi, curseg);
3983 		}
3984 
3985 		if (ret)
3986 			goto out_err;
3987 	}
3988 
3989 skip_new_segment:
3990 	/*
3991 	 * segment dirty status should be updated after segment allocation,
3992 	 * so we just need to update status only one time after previous
3993 	 * segment being closed.
3994 	 */
3995 	locate_dirty_segment(sbi, GET_SEGNO(sbi, old_blkaddr));
3996 	locate_dirty_segment(sbi, GET_SEGNO(sbi, *new_blkaddr));
3997 
3998 	if (IS_DATASEG(curseg->seg_type)) {
3999 		unsigned long long new_val;
4000 
4001 		new_val = atomic64_inc_return(&sbi->allocated_data_blocks);
4002 		if (unlikely(new_val == ULLONG_MAX))
4003 			atomic64_set(&sbi->allocated_data_blocks, 0);
4004 	}
4005 
4006 	up_write(&sit_i->sentry_lock);
4007 
4008 	if (folio && IS_NODESEG(curseg->seg_type)) {
4009 		fill_node_footer_blkaddr(folio, NEXT_FREE_BLKADDR(sbi, curseg));
4010 
4011 		f2fs_inode_chksum_set(sbi, folio);
4012 	}
4013 
4014 	if (fio) {
4015 		struct f2fs_bio_info *io;
4016 
4017 		INIT_LIST_HEAD(&fio->list);
4018 		fio->in_list = 1;
4019 		io = sbi->write_io[fio->type] + fio->temp;
4020 		spin_lock(&io->io_lock);
4021 		list_add_tail(&fio->list, &io->io_list);
4022 		spin_unlock(&io->io_lock);
4023 	}
4024 
4025 	mutex_unlock(&curseg->curseg_mutex);
4026 	f2fs_up_read(&SM_I(sbi)->curseg_lock);
4027 	return 0;
4028 
4029 out_err:
4030 	*new_blkaddr = NULL_ADDR;
4031 	up_write(&sit_i->sentry_lock);
4032 	mutex_unlock(&curseg->curseg_mutex);
4033 	f2fs_up_read(&SM_I(sbi)->curseg_lock);
4034 	return ret;
4035 }
4036 
f2fs_update_device_state(struct f2fs_sb_info * sbi,nid_t ino,block_t blkaddr,unsigned int blkcnt)4037 void f2fs_update_device_state(struct f2fs_sb_info *sbi, nid_t ino,
4038 					block_t blkaddr, unsigned int blkcnt)
4039 {
4040 	if (!f2fs_is_multi_device(sbi))
4041 		return;
4042 
4043 	while (1) {
4044 		unsigned int devidx = f2fs_target_device_index(sbi, blkaddr);
4045 		unsigned int blks = FDEV(devidx).end_blk - blkaddr + 1;
4046 
4047 		/* update device state for fsync */
4048 		f2fs_set_dirty_device(sbi, ino, devidx, FLUSH_INO);
4049 
4050 		/* update device state for checkpoint */
4051 		if (!f2fs_test_bit(devidx, (char *)&sbi->dirty_device)) {
4052 			spin_lock(&sbi->dev_lock);
4053 			f2fs_set_bit(devidx, (char *)&sbi->dirty_device);
4054 			spin_unlock(&sbi->dev_lock);
4055 		}
4056 
4057 		if (blkcnt <= blks)
4058 			break;
4059 		blkcnt -= blks;
4060 		blkaddr += blks;
4061 	}
4062 }
4063 
log_type_to_seg_type(enum log_type type)4064 static int log_type_to_seg_type(enum log_type type)
4065 {
4066 	int seg_type = CURSEG_COLD_DATA;
4067 
4068 	switch (type) {
4069 	case CURSEG_HOT_DATA:
4070 	case CURSEG_WARM_DATA:
4071 	case CURSEG_COLD_DATA:
4072 	case CURSEG_HOT_NODE:
4073 	case CURSEG_WARM_NODE:
4074 	case CURSEG_COLD_NODE:
4075 		seg_type = (int)type;
4076 		break;
4077 	case CURSEG_COLD_DATA_PINNED:
4078 	case CURSEG_ALL_DATA_ATGC:
4079 		seg_type = CURSEG_COLD_DATA;
4080 		break;
4081 	default:
4082 		break;
4083 	}
4084 	return seg_type;
4085 }
4086 
do_write_page(struct f2fs_summary * sum,struct f2fs_io_info * fio)4087 static void do_write_page(struct f2fs_summary *sum, struct f2fs_io_info *fio)
4088 {
4089 	struct folio *folio = fio->folio;
4090 	enum log_type type = __get_segment_type(fio);
4091 	int seg_type = log_type_to_seg_type(type);
4092 	bool keep_order = (f2fs_lfs_mode(fio->sbi) &&
4093 				seg_type == CURSEG_COLD_DATA);
4094 	int err;
4095 
4096 	if (keep_order)
4097 		f2fs_down_read(&fio->sbi->io_order_lock);
4098 
4099 	err = f2fs_allocate_data_block(fio->sbi, folio, fio->old_blkaddr,
4100 			&fio->new_blkaddr, sum, type, fio);
4101 	if (unlikely(err)) {
4102 		f2fs_err_ratelimited(fio->sbi,
4103 			"%s Failed to allocate data block, ino:%u, index:%lu, type:%d, old_blkaddr:0x%x, new_blkaddr:0x%x, err:%d",
4104 			__func__, fio->ino, folio->index, type,
4105 			fio->old_blkaddr, fio->new_blkaddr, err);
4106 		folio_end_writeback(folio);
4107 		if (f2fs_in_warm_node_list(folio))
4108 			f2fs_del_fsync_node_entry(fio->sbi, folio);
4109 		f2fs_bug_on(fio->sbi, !is_set_ckpt_flags(fio->sbi,
4110 							CP_ERROR_FLAG));
4111 		goto out;
4112 	}
4113 
4114 	f2fs_bug_on(fio->sbi, !f2fs_is_valid_blkaddr_raw(fio->sbi,
4115 				fio->new_blkaddr, DATA_GENERIC_ENHANCE));
4116 
4117 	if (GET_SEGNO(fio->sbi, fio->old_blkaddr) != NULL_SEGNO)
4118 		f2fs_invalidate_internal_cache(fio->sbi, fio->old_blkaddr, 1);
4119 
4120 	/* writeout dirty page into bdev */
4121 	f2fs_submit_page_write(fio);
4122 
4123 	f2fs_update_device_state(fio->sbi, fio->ino, fio->new_blkaddr, 1);
4124 out:
4125 	if (keep_order)
4126 		f2fs_up_read(&fio->sbi->io_order_lock);
4127 }
4128 
f2fs_do_write_meta_page(struct f2fs_sb_info * sbi,struct folio * folio,enum iostat_type io_type)4129 void f2fs_do_write_meta_page(struct f2fs_sb_info *sbi, struct folio *folio,
4130 					enum iostat_type io_type)
4131 {
4132 	struct f2fs_io_info fio = {
4133 		.sbi = sbi,
4134 		.type = META,
4135 		.temp = HOT,
4136 		.op = REQ_OP_WRITE,
4137 		.op_flags = REQ_SYNC | REQ_META | REQ_PRIO,
4138 		.old_blkaddr = folio->index,
4139 		.new_blkaddr = folio->index,
4140 		.folio = folio,
4141 		.encrypted_page = NULL,
4142 		.in_list = 0,
4143 	};
4144 
4145 	if (unlikely(folio->index >= MAIN_BLKADDR(sbi)))
4146 		fio.op_flags &= ~REQ_META;
4147 
4148 	folio_start_writeback(folio);
4149 	f2fs_submit_page_write(&fio);
4150 
4151 	stat_inc_meta_count(sbi, folio->index);
4152 	f2fs_update_iostat(sbi, NULL, io_type, F2FS_BLKSIZE);
4153 }
4154 
f2fs_do_write_node_page(unsigned int nid,struct f2fs_io_info * fio)4155 void f2fs_do_write_node_page(unsigned int nid, struct f2fs_io_info *fio)
4156 {
4157 	struct f2fs_summary sum;
4158 
4159 	set_summary(&sum, nid, 0, 0);
4160 	do_write_page(&sum, fio);
4161 
4162 	f2fs_update_iostat(fio->sbi, NULL, fio->io_type, F2FS_BLKSIZE);
4163 }
4164 
f2fs_outplace_write_data(struct dnode_of_data * dn,struct f2fs_io_info * fio)4165 void f2fs_outplace_write_data(struct dnode_of_data *dn,
4166 					struct f2fs_io_info *fio)
4167 {
4168 	struct f2fs_sb_info *sbi = fio->sbi;
4169 	struct f2fs_summary sum;
4170 
4171 	f2fs_bug_on(sbi, dn->data_blkaddr == NULL_ADDR);
4172 	if (fio->io_type == FS_DATA_IO || fio->io_type == FS_CP_DATA_IO)
4173 		f2fs_update_age_extent_cache(dn);
4174 	set_summary(&sum, dn->nid, dn->ofs_in_node, fio->version);
4175 	do_write_page(&sum, fio);
4176 	f2fs_update_data_blkaddr(dn, fio->new_blkaddr);
4177 
4178 	f2fs_update_iostat(sbi, dn->inode, fio->io_type, F2FS_BLKSIZE);
4179 }
4180 
f2fs_inplace_write_data(struct f2fs_io_info * fio)4181 int f2fs_inplace_write_data(struct f2fs_io_info *fio)
4182 {
4183 	int err;
4184 	struct f2fs_sb_info *sbi = fio->sbi;
4185 	unsigned int segno;
4186 
4187 	fio->new_blkaddr = fio->old_blkaddr;
4188 	/* i/o temperature is needed for passing down write hints */
4189 	__get_segment_type(fio);
4190 
4191 	segno = GET_SEGNO(sbi, fio->new_blkaddr);
4192 
4193 	if (!IS_DATASEG(get_seg_entry(sbi, segno)->type)) {
4194 		set_sbi_flag(sbi, SBI_NEED_FSCK);
4195 		f2fs_warn(sbi, "%s: incorrect segment(%u) type, run fsck to fix.",
4196 			  __func__, segno);
4197 		err = -EFSCORRUPTED;
4198 		f2fs_handle_error(sbi, ERROR_INCONSISTENT_SUM_TYPE);
4199 		goto drop_bio;
4200 	}
4201 
4202 	if (f2fs_cp_error(sbi)) {
4203 		err = -EIO;
4204 		goto drop_bio;
4205 	}
4206 
4207 	if (fio->meta_gc)
4208 		f2fs_truncate_meta_inode_pages(sbi, fio->new_blkaddr, 1);
4209 
4210 	stat_inc_inplace_blocks(fio->sbi);
4211 
4212 	if (fio->bio && !IS_F2FS_IPU_NOCACHE(sbi))
4213 		err = f2fs_merge_page_bio(fio);
4214 	else
4215 		err = f2fs_submit_page_bio(fio);
4216 	if (!err) {
4217 		f2fs_update_device_state(fio->sbi, fio->ino,
4218 						fio->new_blkaddr, 1);
4219 		f2fs_update_iostat(fio->sbi, fio_inode(fio),
4220 						fio->io_type, F2FS_BLKSIZE);
4221 	}
4222 
4223 	return err;
4224 drop_bio:
4225 	if (fio->bio && *(fio->bio)) {
4226 		struct bio *bio = *(fio->bio);
4227 
4228 		bio->bi_status = BLK_STS_IOERR;
4229 		bio_endio(bio);
4230 		*(fio->bio) = NULL;
4231 	}
4232 	return err;
4233 }
4234 
__f2fs_get_curseg(struct f2fs_sb_info * sbi,unsigned int segno)4235 static inline int __f2fs_get_curseg(struct f2fs_sb_info *sbi,
4236 						unsigned int segno)
4237 {
4238 	int i;
4239 
4240 	for (i = CURSEG_HOT_DATA; i < NO_CHECK_TYPE; i++) {
4241 		if (CURSEG_I(sbi, i)->segno == segno)
4242 			break;
4243 	}
4244 	return i;
4245 }
4246 
f2fs_do_replace_block(struct f2fs_sb_info * sbi,struct f2fs_summary * sum,block_t old_blkaddr,block_t new_blkaddr,bool recover_curseg,bool recover_newaddr,bool from_gc)4247 void f2fs_do_replace_block(struct f2fs_sb_info *sbi, struct f2fs_summary *sum,
4248 				block_t old_blkaddr, block_t new_blkaddr,
4249 				bool recover_curseg, bool recover_newaddr,
4250 				bool from_gc)
4251 {
4252 	struct sit_info *sit_i = SIT_I(sbi);
4253 	struct curseg_info *curseg;
4254 	unsigned int segno, old_cursegno;
4255 	struct seg_entry *se;
4256 	int type;
4257 	unsigned short old_blkoff;
4258 	unsigned char old_alloc_type;
4259 
4260 	segno = GET_SEGNO(sbi, new_blkaddr);
4261 	se = get_seg_entry(sbi, segno);
4262 	type = se->type;
4263 
4264 	f2fs_down_write(&SM_I(sbi)->curseg_lock);
4265 
4266 	if (!recover_curseg) {
4267 		/* for recovery flow */
4268 		if (se->valid_blocks == 0 && !is_curseg(sbi, segno)) {
4269 			if (old_blkaddr == NULL_ADDR)
4270 				type = CURSEG_COLD_DATA;
4271 			else
4272 				type = CURSEG_WARM_DATA;
4273 		}
4274 	} else {
4275 		if (is_curseg(sbi, segno)) {
4276 			/* se->type is volatile as SSR allocation */
4277 			type = __f2fs_get_curseg(sbi, segno);
4278 			f2fs_bug_on(sbi, type == NO_CHECK_TYPE);
4279 		} else {
4280 			type = CURSEG_WARM_DATA;
4281 		}
4282 	}
4283 
4284 	curseg = CURSEG_I(sbi, type);
4285 	f2fs_bug_on(sbi, !IS_DATASEG(curseg->seg_type));
4286 
4287 	mutex_lock(&curseg->curseg_mutex);
4288 	down_write(&sit_i->sentry_lock);
4289 
4290 	old_cursegno = curseg->segno;
4291 	old_blkoff = curseg->next_blkoff;
4292 	old_alloc_type = curseg->alloc_type;
4293 
4294 	/* change the current segment */
4295 	if (segno != curseg->segno) {
4296 		curseg->next_segno = segno;
4297 		if (change_curseg(sbi, type))
4298 			goto out_unlock;
4299 	}
4300 
4301 	curseg->next_blkoff = GET_BLKOFF_FROM_SEG0(sbi, new_blkaddr);
4302 	sum_entries(curseg->sum_blk)[curseg->next_blkoff] = *sum;
4303 
4304 	if (!recover_curseg || recover_newaddr) {
4305 		if (!from_gc)
4306 			update_segment_mtime(sbi, new_blkaddr, 0);
4307 		update_sit_entry(sbi, new_blkaddr, 1);
4308 	}
4309 	if (GET_SEGNO(sbi, old_blkaddr) != NULL_SEGNO) {
4310 		f2fs_invalidate_internal_cache(sbi, old_blkaddr, 1);
4311 		if (!from_gc)
4312 			update_segment_mtime(sbi, old_blkaddr, 0);
4313 		update_sit_entry(sbi, old_blkaddr, -1);
4314 	}
4315 
4316 	locate_dirty_segment(sbi, GET_SEGNO(sbi, old_blkaddr));
4317 	locate_dirty_segment(sbi, GET_SEGNO(sbi, new_blkaddr));
4318 
4319 	locate_dirty_segment(sbi, old_cursegno);
4320 
4321 	if (recover_curseg) {
4322 		if (old_cursegno != curseg->segno) {
4323 			curseg->next_segno = old_cursegno;
4324 			if (change_curseg(sbi, type))
4325 				goto out_unlock;
4326 		}
4327 		curseg->next_blkoff = old_blkoff;
4328 		curseg->alloc_type = old_alloc_type;
4329 	}
4330 
4331 out_unlock:
4332 	up_write(&sit_i->sentry_lock);
4333 	mutex_unlock(&curseg->curseg_mutex);
4334 	f2fs_up_write(&SM_I(sbi)->curseg_lock);
4335 }
4336 
f2fs_replace_block(struct f2fs_sb_info * sbi,struct dnode_of_data * dn,block_t old_addr,block_t new_addr,unsigned char version,bool recover_curseg,bool recover_newaddr)4337 void f2fs_replace_block(struct f2fs_sb_info *sbi, struct dnode_of_data *dn,
4338 				block_t old_addr, block_t new_addr,
4339 				unsigned char version, bool recover_curseg,
4340 				bool recover_newaddr)
4341 {
4342 	struct f2fs_summary sum;
4343 
4344 	set_summary(&sum, dn->nid, dn->ofs_in_node, version);
4345 
4346 	f2fs_do_replace_block(sbi, &sum, old_addr, new_addr,
4347 					recover_curseg, recover_newaddr, false);
4348 
4349 	f2fs_update_data_blkaddr(dn, new_addr);
4350 }
4351 
f2fs_folio_wait_writeback(struct folio * folio,enum page_type type,bool ordered,bool locked)4352 void f2fs_folio_wait_writeback(struct folio *folio, enum page_type type,
4353 		bool ordered, bool locked)
4354 {
4355 	if (folio_test_writeback(folio)) {
4356 		struct f2fs_sb_info *sbi = F2FS_F_SB(folio);
4357 
4358 		/* submit cached LFS IO */
4359 		f2fs_submit_merged_write_folio(sbi, folio, type);
4360 		/* submit cached IPU IO */
4361 		f2fs_submit_merged_ipu_write(sbi, NULL, folio);
4362 		if (ordered) {
4363 			folio_wait_writeback(folio);
4364 			f2fs_bug_on(sbi, locked && folio_test_writeback(folio));
4365 		} else {
4366 			folio_wait_stable(folio);
4367 		}
4368 	}
4369 }
4370 
f2fs_wait_on_block_writeback(struct inode * inode,block_t blkaddr)4371 void f2fs_wait_on_block_writeback(struct inode *inode, block_t blkaddr)
4372 {
4373 	struct f2fs_sb_info *sbi = F2FS_I_SB(inode);
4374 	struct folio *cfolio;
4375 
4376 	if (!f2fs_meta_inode_gc_required(inode))
4377 		return;
4378 
4379 	if (!__is_valid_data_blkaddr(blkaddr))
4380 		return;
4381 
4382 	cfolio = filemap_lock_folio(META_MAPPING(sbi), blkaddr);
4383 	if (!IS_ERR(cfolio)) {
4384 		f2fs_folio_wait_writeback(cfolio, DATA, true, true);
4385 		f2fs_folio_put(cfolio, true);
4386 	}
4387 }
4388 
f2fs_wait_on_block_writeback_range(struct inode * inode,block_t blkaddr,block_t len)4389 void f2fs_wait_on_block_writeback_range(struct inode *inode, block_t blkaddr,
4390 								block_t len)
4391 {
4392 	struct f2fs_sb_info *sbi = F2FS_I_SB(inode);
4393 	block_t i;
4394 
4395 	if (!f2fs_meta_inode_gc_required(inode))
4396 		return;
4397 
4398 	for (i = 0; i < len; i++)
4399 		f2fs_wait_on_block_writeback(inode, blkaddr + i);
4400 
4401 	f2fs_truncate_meta_inode_pages(sbi, blkaddr, len);
4402 }
4403 
read_compacted_summaries(struct f2fs_sb_info * sbi)4404 static int read_compacted_summaries(struct f2fs_sb_info *sbi)
4405 {
4406 	struct f2fs_checkpoint *ckpt = F2FS_CKPT(sbi);
4407 	struct curseg_info *seg_i;
4408 	unsigned char *kaddr;
4409 	struct folio *folio;
4410 	block_t start;
4411 	int i, j, offset;
4412 
4413 	start = start_sum_block(sbi);
4414 
4415 	folio = f2fs_get_meta_folio(sbi, start++);
4416 	if (IS_ERR(folio))
4417 		return PTR_ERR(folio);
4418 	kaddr = folio_address(folio);
4419 
4420 	/* Step 1: restore nat cache */
4421 	seg_i = CURSEG_I(sbi, CURSEG_HOT_DATA);
4422 	memcpy(seg_i->journal, kaddr, sbi->sum_journal_size);
4423 
4424 	/* Step 2: restore sit cache */
4425 	seg_i = CURSEG_I(sbi, CURSEG_COLD_DATA);
4426 	memcpy(seg_i->journal, kaddr + sbi->sum_journal_size, sbi->sum_journal_size);
4427 	offset = 2 * sbi->sum_journal_size;
4428 
4429 	/* Step 3: restore summary entries */
4430 	for (i = CURSEG_HOT_DATA; i <= CURSEG_COLD_DATA; i++) {
4431 		unsigned short blk_off;
4432 		unsigned int segno;
4433 
4434 		seg_i = CURSEG_I(sbi, i);
4435 		segno = le32_to_cpu(ckpt->cur_data_segno[i]);
4436 		blk_off = le16_to_cpu(ckpt->cur_data_blkoff[i]);
4437 		seg_i->next_segno = segno;
4438 		reset_curseg(sbi, i, 0);
4439 		seg_i->alloc_type = ckpt->alloc_type[i];
4440 		seg_i->next_blkoff = blk_off;
4441 
4442 		if (seg_i->alloc_type == SSR)
4443 			blk_off = BLKS_PER_SEG(sbi);
4444 
4445 		for (j = 0; j < blk_off; j++) {
4446 			struct f2fs_summary *s;
4447 
4448 			s = (struct f2fs_summary *)(kaddr + offset);
4449 			sum_entries(seg_i->sum_blk)[j] = *s;
4450 			offset += SUMMARY_SIZE;
4451 			if (offset + SUMMARY_SIZE <= sbi->blocksize -
4452 						SUM_FOOTER_SIZE)
4453 				continue;
4454 
4455 			f2fs_folio_put(folio, true);
4456 
4457 			folio = f2fs_get_meta_folio(sbi, start++);
4458 			if (IS_ERR(folio))
4459 				return PTR_ERR(folio);
4460 			kaddr = folio_address(folio);
4461 			offset = 0;
4462 		}
4463 	}
4464 	f2fs_folio_put(folio, true);
4465 	return 0;
4466 }
4467 
read_normal_summaries(struct f2fs_sb_info * sbi,int type)4468 static int read_normal_summaries(struct f2fs_sb_info *sbi, int type)
4469 {
4470 	struct f2fs_checkpoint *ckpt = F2FS_CKPT(sbi);
4471 	struct f2fs_summary_block *sum;
4472 	struct curseg_info *curseg;
4473 	struct folio *new;
4474 	unsigned short blk_off;
4475 	unsigned int segno = 0;
4476 	block_t blk_addr = 0;
4477 	int err = 0;
4478 
4479 	/* get segment number and block addr */
4480 	if (IS_DATASEG(type)) {
4481 		segno = le32_to_cpu(ckpt->cur_data_segno[type]);
4482 		blk_off = le16_to_cpu(ckpt->cur_data_blkoff[type -
4483 							CURSEG_HOT_DATA]);
4484 		if (__exist_node_summaries(sbi))
4485 			blk_addr = sum_blk_addr(sbi, NR_CURSEG_PERSIST_TYPE, type);
4486 		else
4487 			blk_addr = sum_blk_addr(sbi, NR_CURSEG_DATA_TYPE, type);
4488 	} else {
4489 		segno = le32_to_cpu(ckpt->cur_node_segno[type -
4490 							CURSEG_HOT_NODE]);
4491 		blk_off = le16_to_cpu(ckpt->cur_node_blkoff[type -
4492 							CURSEG_HOT_NODE]);
4493 		if (__exist_node_summaries(sbi))
4494 			blk_addr = sum_blk_addr(sbi, NR_CURSEG_NODE_TYPE,
4495 							type - CURSEG_HOT_NODE);
4496 		else
4497 			blk_addr = GET_SUM_BLOCK(sbi, segno);
4498 	}
4499 
4500 	new = f2fs_get_meta_folio(sbi, blk_addr);
4501 	if (IS_ERR(new))
4502 		return PTR_ERR(new);
4503 	sum = folio_address(new);
4504 
4505 	if (IS_NODESEG(type)) {
4506 		if (__exist_node_summaries(sbi)) {
4507 			struct f2fs_summary *ns = sum_entries(sum);
4508 			int i;
4509 
4510 			for (i = 0; i < BLKS_PER_SEG(sbi); i++, ns++) {
4511 				ns->version = 0;
4512 				ns->ofs_in_node = 0;
4513 			}
4514 		} else {
4515 			err = f2fs_restore_node_summary(sbi, segno, sum);
4516 			if (err)
4517 				goto out;
4518 		}
4519 	}
4520 
4521 	/* set uncompleted segment to curseg */
4522 	curseg = CURSEG_I(sbi, type);
4523 	mutex_lock(&curseg->curseg_mutex);
4524 
4525 	/* update journal info */
4526 	down_write(&curseg->journal_rwsem);
4527 	memcpy(curseg->journal, sum_journal(sbi, sum), sbi->sum_journal_size);
4528 	up_write(&curseg->journal_rwsem);
4529 
4530 	memcpy(sum_entries(curseg->sum_blk), sum_entries(sum),
4531 			sbi->sum_entry_size);
4532 	memcpy(sum_footer(sbi, curseg->sum_blk), sum_footer(sbi, sum),
4533 			SUM_FOOTER_SIZE);
4534 	curseg->next_segno = segno;
4535 	reset_curseg(sbi, type, 0);
4536 	curseg->alloc_type = ckpt->alloc_type[type];
4537 	curseg->next_blkoff = blk_off;
4538 	mutex_unlock(&curseg->curseg_mutex);
4539 out:
4540 	f2fs_folio_put(new, true);
4541 	return err;
4542 }
4543 
restore_curseg_summaries(struct f2fs_sb_info * sbi)4544 static int restore_curseg_summaries(struct f2fs_sb_info *sbi)
4545 {
4546 	struct f2fs_journal *sit_j = CURSEG_I(sbi, CURSEG_COLD_DATA)->journal;
4547 	struct f2fs_journal *nat_j = CURSEG_I(sbi, CURSEG_HOT_DATA)->journal;
4548 	int type = CURSEG_HOT_DATA;
4549 	int err;
4550 
4551 	if (is_set_ckpt_flags(sbi, CP_COMPACT_SUM_FLAG)) {
4552 		int npages = f2fs_npages_for_summary_flush(sbi, true);
4553 
4554 		if (npages >= 2)
4555 			f2fs_ra_meta_pages(sbi, start_sum_block(sbi), npages,
4556 							META_CP, true);
4557 
4558 		/* restore for compacted data summary */
4559 		err = read_compacted_summaries(sbi);
4560 		if (err)
4561 			return err;
4562 		type = CURSEG_HOT_NODE;
4563 	}
4564 
4565 	if (__exist_node_summaries(sbi))
4566 		f2fs_ra_meta_pages(sbi,
4567 				sum_blk_addr(sbi, NR_CURSEG_PERSIST_TYPE, type),
4568 				NR_CURSEG_PERSIST_TYPE - type, META_CP, true);
4569 
4570 	for (; type <= CURSEG_COLD_NODE; type++) {
4571 		err = read_normal_summaries(sbi, type);
4572 		if (err)
4573 			return err;
4574 	}
4575 
4576 	/* sanity check for summary blocks */
4577 	if (nats_in_cursum(nat_j) > sbi->nat_journal_entries ||
4578 			sits_in_cursum(sit_j) > sbi->sit_journal_entries) {
4579 		f2fs_err(sbi, "invalid journal entries nats %u sits %u",
4580 			 nats_in_cursum(nat_j), sits_in_cursum(sit_j));
4581 		return -EINVAL;
4582 	}
4583 
4584 	return 0;
4585 }
4586 
write_compacted_summaries(struct f2fs_sb_info * sbi,block_t blkaddr)4587 static void write_compacted_summaries(struct f2fs_sb_info *sbi, block_t blkaddr)
4588 {
4589 	struct folio *folio;
4590 	unsigned char *kaddr;
4591 	struct f2fs_summary *summary;
4592 	struct curseg_info *seg_i;
4593 	int written_size = 0;
4594 	int i, j;
4595 
4596 	folio = f2fs_grab_meta_folio(sbi, blkaddr++);
4597 	kaddr = folio_address(folio);
4598 	memset(kaddr, 0, PAGE_SIZE);
4599 
4600 	/* Step 1: write nat cache */
4601 	seg_i = CURSEG_I(sbi, CURSEG_HOT_DATA);
4602 	memcpy(kaddr, seg_i->journal, sbi->sum_journal_size);
4603 	written_size += sbi->sum_journal_size;
4604 
4605 	/* Step 2: write sit cache */
4606 	seg_i = CURSEG_I(sbi, CURSEG_COLD_DATA);
4607 	memcpy(kaddr + written_size, seg_i->journal, sbi->sum_journal_size);
4608 	written_size += sbi->sum_journal_size;
4609 
4610 	/* Step 3: write summary entries */
4611 	for (i = CURSEG_HOT_DATA; i <= CURSEG_COLD_DATA; i++) {
4612 		seg_i = CURSEG_I(sbi, i);
4613 		for (j = 0; j < f2fs_curseg_valid_blocks(sbi, i); j++) {
4614 			if (!folio) {
4615 				folio = f2fs_grab_meta_folio(sbi, blkaddr++);
4616 				kaddr = folio_address(folio);
4617 				memset(kaddr, 0, PAGE_SIZE);
4618 				written_size = 0;
4619 			}
4620 			summary = (struct f2fs_summary *)(kaddr + written_size);
4621 			*summary = sum_entries(seg_i->sum_blk)[j];
4622 			written_size += SUMMARY_SIZE;
4623 
4624 			if (written_size + SUMMARY_SIZE <= sbi->blocksize -
4625 							SUM_FOOTER_SIZE)
4626 				continue;
4627 
4628 			folio_mark_dirty(folio);
4629 			f2fs_folio_put(folio, true);
4630 			folio = NULL;
4631 		}
4632 	}
4633 	if (folio) {
4634 		folio_mark_dirty(folio);
4635 		f2fs_folio_put(folio, true);
4636 	}
4637 }
4638 
write_normal_summaries(struct f2fs_sb_info * sbi,block_t blkaddr,int type)4639 static void write_normal_summaries(struct f2fs_sb_info *sbi,
4640 					block_t blkaddr, int type)
4641 {
4642 	int i, end;
4643 
4644 	if (IS_DATASEG(type))
4645 		end = type + NR_CURSEG_DATA_TYPE;
4646 	else
4647 		end = type + NR_CURSEG_NODE_TYPE;
4648 
4649 	for (i = type; i < end; i++)
4650 		write_current_sum_page(sbi, i, blkaddr + (i - type));
4651 }
4652 
f2fs_write_data_summaries(struct f2fs_sb_info * sbi,block_t start_blk)4653 void f2fs_write_data_summaries(struct f2fs_sb_info *sbi, block_t start_blk)
4654 {
4655 	if (is_set_ckpt_flags(sbi, CP_COMPACT_SUM_FLAG))
4656 		write_compacted_summaries(sbi, start_blk);
4657 	else
4658 		write_normal_summaries(sbi, start_blk, CURSEG_HOT_DATA);
4659 }
4660 
f2fs_write_node_summaries(struct f2fs_sb_info * sbi,block_t start_blk)4661 void f2fs_write_node_summaries(struct f2fs_sb_info *sbi, block_t start_blk)
4662 {
4663 	write_normal_summaries(sbi, start_blk, CURSEG_HOT_NODE);
4664 }
4665 
f2fs_lookup_journal_in_cursum(struct f2fs_sb_info * sbi,struct f2fs_journal * journal,int type,unsigned int val,int alloc)4666 int f2fs_lookup_journal_in_cursum(struct f2fs_sb_info *sbi,
4667 			struct f2fs_journal *journal, int type,
4668 			unsigned int val, int alloc)
4669 {
4670 	int i;
4671 
4672 	if (type == NAT_JOURNAL) {
4673 		for (i = 0; i < nats_in_cursum(journal); i++) {
4674 			if (le32_to_cpu(nid_in_journal(journal, i)) == val)
4675 				return i;
4676 		}
4677 		if (alloc && __has_cursum_space(sbi, journal, 1, NAT_JOURNAL))
4678 			return update_nats_in_cursum(journal, 1);
4679 	} else if (type == SIT_JOURNAL) {
4680 		for (i = 0; i < sits_in_cursum(journal); i++)
4681 			if (le32_to_cpu(segno_in_journal(journal, i)) == val)
4682 				return i;
4683 		if (alloc && __has_cursum_space(sbi, journal, 1, SIT_JOURNAL))
4684 			return update_sits_in_cursum(journal, 1);
4685 	}
4686 	return -1;
4687 }
4688 
get_current_sit_folio(struct f2fs_sb_info * sbi,unsigned int segno)4689 static struct folio *get_current_sit_folio(struct f2fs_sb_info *sbi,
4690 					unsigned int segno)
4691 {
4692 	return f2fs_get_meta_folio(sbi, current_sit_addr(sbi, segno));
4693 }
4694 
get_next_sit_folio(struct f2fs_sb_info * sbi,unsigned int start)4695 static struct folio *get_next_sit_folio(struct f2fs_sb_info *sbi,
4696 					unsigned int start)
4697 {
4698 	struct sit_info *sit_i = SIT_I(sbi);
4699 	struct folio *folio;
4700 	pgoff_t src_off, dst_off;
4701 
4702 	src_off = current_sit_addr(sbi, start);
4703 	dst_off = next_sit_addr(sbi, src_off);
4704 
4705 	folio = f2fs_grab_meta_folio(sbi, dst_off);
4706 	seg_info_to_sit_folio(sbi, folio, start);
4707 
4708 	folio_mark_dirty(folio);
4709 	set_to_next_sit(sit_i, start);
4710 
4711 	return folio;
4712 }
4713 
grab_sit_entry_set(void)4714 static struct sit_entry_set *grab_sit_entry_set(void)
4715 {
4716 	struct sit_entry_set *ses =
4717 			f2fs_kmem_cache_alloc(sit_entry_set_slab,
4718 						GFP_NOFS, true, NULL);
4719 
4720 	ses->entry_cnt = 0;
4721 	INIT_LIST_HEAD(&ses->set_list);
4722 	return ses;
4723 }
4724 
release_sit_entry_set(struct sit_entry_set * ses)4725 static void release_sit_entry_set(struct sit_entry_set *ses)
4726 {
4727 	list_del(&ses->set_list);
4728 	kmem_cache_free(sit_entry_set_slab, ses);
4729 }
4730 
adjust_sit_entry_set(struct sit_entry_set * ses,struct list_head * head)4731 static void adjust_sit_entry_set(struct sit_entry_set *ses,
4732 						struct list_head *head)
4733 {
4734 	struct sit_entry_set *next = ses;
4735 
4736 	if (list_is_last(&ses->set_list, head))
4737 		return;
4738 
4739 	list_for_each_entry_continue(next, head, set_list)
4740 		if (ses->entry_cnt <= next->entry_cnt) {
4741 			list_move_tail(&ses->set_list, &next->set_list);
4742 			return;
4743 		}
4744 
4745 	list_move_tail(&ses->set_list, head);
4746 }
4747 
add_sit_entry(unsigned int segno,struct list_head * head)4748 static void add_sit_entry(unsigned int segno, struct list_head *head)
4749 {
4750 	struct sit_entry_set *ses;
4751 	unsigned int start_segno = START_SEGNO(segno);
4752 
4753 	list_for_each_entry(ses, head, set_list) {
4754 		if (ses->start_segno == start_segno) {
4755 			ses->entry_cnt++;
4756 			adjust_sit_entry_set(ses, head);
4757 			return;
4758 		}
4759 	}
4760 
4761 	ses = grab_sit_entry_set();
4762 
4763 	ses->start_segno = start_segno;
4764 	ses->entry_cnt++;
4765 	list_add(&ses->set_list, head);
4766 }
4767 
add_sits_in_set(struct f2fs_sb_info * sbi)4768 static void add_sits_in_set(struct f2fs_sb_info *sbi)
4769 {
4770 	struct f2fs_sm_info *sm_info = SM_I(sbi);
4771 	struct list_head *set_list = &sm_info->sit_entry_set;
4772 	unsigned long *bitmap = SIT_I(sbi)->dirty_sentries_bitmap;
4773 	unsigned int segno;
4774 
4775 	for_each_set_bit(segno, bitmap, MAIN_SEGS(sbi))
4776 		add_sit_entry(segno, set_list);
4777 }
4778 
remove_sits_in_journal(struct f2fs_sb_info * sbi)4779 static void remove_sits_in_journal(struct f2fs_sb_info *sbi)
4780 {
4781 	struct curseg_info *curseg = CURSEG_I(sbi, CURSEG_COLD_DATA);
4782 	struct f2fs_journal *journal = curseg->journal;
4783 	int i;
4784 
4785 	down_write(&curseg->journal_rwsem);
4786 	for (i = 0; i < sits_in_cursum(journal); i++) {
4787 		unsigned int segno;
4788 		bool dirtied;
4789 
4790 		segno = le32_to_cpu(segno_in_journal(journal, i));
4791 		dirtied = __mark_sit_entry_dirty(sbi, segno);
4792 
4793 		if (!dirtied)
4794 			add_sit_entry(segno, &SM_I(sbi)->sit_entry_set);
4795 	}
4796 	update_sits_in_cursum(journal, -i);
4797 	up_write(&curseg->journal_rwsem);
4798 }
4799 
4800 /*
4801  * CP calls this function, which flushes SIT entries including sit_journal,
4802  * and moves prefree segs to free segs.
4803  */
f2fs_flush_sit_entries(struct f2fs_sb_info * sbi,struct cp_control * cpc)4804 void f2fs_flush_sit_entries(struct f2fs_sb_info *sbi, struct cp_control *cpc)
4805 {
4806 	struct sit_info *sit_i = SIT_I(sbi);
4807 	unsigned long *bitmap = sit_i->dirty_sentries_bitmap;
4808 	struct curseg_info *curseg = CURSEG_I(sbi, CURSEG_COLD_DATA);
4809 	struct f2fs_journal *journal = curseg->journal;
4810 	struct sit_entry_set *ses, *tmp;
4811 	struct list_head *head = &SM_I(sbi)->sit_entry_set;
4812 	bool to_journal = !is_sbi_flag_set(sbi, SBI_IS_RESIZEFS);
4813 	struct seg_entry *se;
4814 
4815 	down_write(&sit_i->sentry_lock);
4816 
4817 	if (!sit_i->dirty_sentries)
4818 		goto out;
4819 
4820 	/*
4821 	 * add and account sit entries of dirty bitmap in sit entry
4822 	 * set temporarily
4823 	 */
4824 	add_sits_in_set(sbi);
4825 
4826 	/*
4827 	 * if there are no enough space in journal to store dirty sit
4828 	 * entries, remove all entries from journal and add and account
4829 	 * them in sit entry set.
4830 	 */
4831 	if (!__has_cursum_space(sbi, journal,
4832 			sit_i->dirty_sentries, SIT_JOURNAL) || !to_journal)
4833 		remove_sits_in_journal(sbi);
4834 
4835 	/*
4836 	 * there are two steps to flush sit entries:
4837 	 * #1, flush sit entries to journal in current cold data summary block.
4838 	 * #2, flush sit entries to sit page.
4839 	 */
4840 	list_for_each_entry_safe(ses, tmp, head, set_list) {
4841 		struct folio *folio = NULL;
4842 		struct f2fs_sit_block *raw_sit = NULL;
4843 		unsigned int start_segno = ses->start_segno;
4844 		unsigned int end = min(start_segno + SIT_ENTRY_PER_BLOCK,
4845 						(unsigned long)MAIN_SEGS(sbi));
4846 		unsigned int segno = start_segno;
4847 
4848 		if (to_journal &&
4849 			!__has_cursum_space(sbi, journal, ses->entry_cnt,
4850 				SIT_JOURNAL))
4851 			to_journal = false;
4852 
4853 		if (to_journal) {
4854 			down_write(&curseg->journal_rwsem);
4855 		} else {
4856 			folio = get_next_sit_folio(sbi, start_segno);
4857 			raw_sit = folio_address(folio);
4858 		}
4859 
4860 		/* flush dirty sit entries in region of current sit set */
4861 		for_each_set_bit_from(segno, bitmap, end) {
4862 			int offset, sit_offset;
4863 
4864 			se = get_seg_entry(sbi, segno);
4865 
4866 			/* add discard candidates */
4867 			if (!(cpc->reason & CP_DISCARD)) {
4868 				cpc->trim_start = segno;
4869 				add_discard_addrs(sbi, cpc, false);
4870 			}
4871 
4872 			if (to_journal) {
4873 				offset = f2fs_lookup_journal_in_cursum(sbi, journal,
4874 							SIT_JOURNAL, segno, 1);
4875 				f2fs_bug_on(sbi, offset < 0);
4876 				segno_in_journal(journal, offset) =
4877 							cpu_to_le32(segno);
4878 				seg_info_to_raw_sit(se,
4879 					&sit_in_journal(journal, offset));
4880 				check_block_count(sbi, segno,
4881 					&sit_in_journal(journal, offset));
4882 			} else {
4883 				sit_offset = SIT_ENTRY_OFFSET(sit_i, segno);
4884 				seg_info_to_raw_sit(se,
4885 						&raw_sit->entries[sit_offset]);
4886 				check_block_count(sbi, segno,
4887 						&raw_sit->entries[sit_offset]);
4888 			}
4889 
4890 			/* update ckpt_valid_block */
4891 			if (__is_large_section(sbi))
4892 				set_ckpt_valid_blocks(sbi, segno);
4893 
4894 			__clear_bit(segno, bitmap);
4895 			sit_i->dirty_sentries--;
4896 			ses->entry_cnt--;
4897 		}
4898 
4899 		if (to_journal)
4900 			up_write(&curseg->journal_rwsem);
4901 		else
4902 			f2fs_folio_put(folio, true);
4903 
4904 		f2fs_bug_on(sbi, ses->entry_cnt);
4905 		release_sit_entry_set(ses);
4906 	}
4907 
4908 	f2fs_bug_on(sbi, !list_empty(head));
4909 	f2fs_bug_on(sbi, sit_i->dirty_sentries);
4910 out:
4911 	if (cpc->reason & CP_DISCARD) {
4912 		__u64 trim_start = cpc->trim_start;
4913 
4914 		for (; cpc->trim_start <= cpc->trim_end; cpc->trim_start++)
4915 			add_discard_addrs(sbi, cpc, false);
4916 
4917 		cpc->trim_start = trim_start;
4918 	}
4919 	up_write(&sit_i->sentry_lock);
4920 
4921 	set_prefree_as_free_segments(sbi);
4922 }
4923 
build_sit_info(struct f2fs_sb_info * sbi)4924 static int build_sit_info(struct f2fs_sb_info *sbi)
4925 {
4926 	struct f2fs_super_block *raw_super = F2FS_RAW_SUPER(sbi);
4927 	struct sit_info *sit_i;
4928 	unsigned int sit_segs, start;
4929 	char *src_bitmap, *bitmap;
4930 	unsigned int bitmap_size, main_bitmap_size, sit_bitmap_size;
4931 	unsigned int discard_map = f2fs_block_unit_discard(sbi) ? 1 : 0;
4932 
4933 	/* allocate memory for SIT information */
4934 	sit_i = f2fs_kzalloc(sbi, sizeof(struct sit_info), GFP_KERNEL);
4935 	if (!sit_i)
4936 		return -ENOMEM;
4937 
4938 	SM_I(sbi)->sit_info = sit_i;
4939 
4940 	sit_i->sentries =
4941 		f2fs_kvzalloc(sbi, array_size(sizeof(struct seg_entry),
4942 					      MAIN_SEGS(sbi)),
4943 			      GFP_KERNEL);
4944 	if (!sit_i->sentries)
4945 		return -ENOMEM;
4946 
4947 	main_bitmap_size = f2fs_bitmap_size(MAIN_SEGS(sbi));
4948 	sit_i->dirty_sentries_bitmap = f2fs_kvzalloc(sbi, main_bitmap_size,
4949 								GFP_KERNEL);
4950 	if (!sit_i->dirty_sentries_bitmap)
4951 		return -ENOMEM;
4952 
4953 	bitmap_size = MAIN_SEGS(sbi) * SIT_VBLOCK_MAP_SIZE * (2 + discard_map);
4954 	sit_i->bitmap = f2fs_kvzalloc(sbi, bitmap_size, GFP_KERNEL);
4955 	if (!sit_i->bitmap)
4956 		return -ENOMEM;
4957 
4958 	bitmap = sit_i->bitmap;
4959 
4960 	for (start = 0; start < MAIN_SEGS(sbi); start++) {
4961 		sit_i->sentries[start].cur_valid_map = bitmap;
4962 		bitmap += SIT_VBLOCK_MAP_SIZE;
4963 
4964 		sit_i->sentries[start].ckpt_valid_map = bitmap;
4965 		bitmap += SIT_VBLOCK_MAP_SIZE;
4966 
4967 		if (discard_map) {
4968 			sit_i->sentries[start].discard_map = bitmap;
4969 			bitmap += SIT_VBLOCK_MAP_SIZE;
4970 		}
4971 	}
4972 
4973 	sit_i->tmp_map = f2fs_kzalloc(sbi, SIT_VBLOCK_MAP_SIZE, GFP_KERNEL);
4974 	if (!sit_i->tmp_map)
4975 		return -ENOMEM;
4976 
4977 	if (__is_large_section(sbi)) {
4978 		sit_i->sec_entries =
4979 			f2fs_kvzalloc(sbi, array_size(sizeof(struct sec_entry),
4980 						      MAIN_SECS(sbi)),
4981 				      GFP_KERNEL);
4982 		if (!sit_i->sec_entries)
4983 			return -ENOMEM;
4984 	}
4985 
4986 	/* get information related with SIT */
4987 	sit_segs = le32_to_cpu(raw_super->segment_count_sit) >> 1;
4988 
4989 	/* setup SIT bitmap from ckeckpoint pack */
4990 	sit_bitmap_size = __bitmap_size(sbi, SIT_BITMAP);
4991 	src_bitmap = __bitmap_ptr(sbi, SIT_BITMAP);
4992 
4993 	sit_i->sit_bitmap = kmemdup(src_bitmap, sit_bitmap_size, GFP_KERNEL);
4994 	if (!sit_i->sit_bitmap)
4995 		return -ENOMEM;
4996 
4997 #ifdef CONFIG_F2FS_CHECK_FS
4998 	sit_i->invalid_segmap = f2fs_kvzalloc(sbi,
4999 					main_bitmap_size, GFP_KERNEL);
5000 	if (!sit_i->invalid_segmap)
5001 		return -ENOMEM;
5002 #endif
5003 
5004 	sit_i->sit_base_addr = le32_to_cpu(raw_super->sit_blkaddr);
5005 	sit_i->sit_blocks = SEGS_TO_BLKS(sbi, sit_segs);
5006 	sit_i->written_valid_blocks = 0;
5007 	sit_i->bitmap_size = sit_bitmap_size;
5008 	sit_i->dirty_sentries = 0;
5009 	sit_i->sents_per_block = SIT_ENTRY_PER_BLOCK;
5010 	sit_i->elapsed_time = le64_to_cpu(sbi->ckpt->elapsed_time);
5011 	sit_i->mounted_time = ktime_get_boottime_seconds();
5012 	init_rwsem(&sit_i->sentry_lock);
5013 	return 0;
5014 }
5015 
build_free_segmap(struct f2fs_sb_info * sbi)5016 static int build_free_segmap(struct f2fs_sb_info *sbi)
5017 {
5018 	struct free_segmap_info *free_i;
5019 	unsigned int bitmap_size, sec_bitmap_size;
5020 
5021 	/* allocate memory for free segmap information */
5022 	free_i = f2fs_kzalloc(sbi, sizeof(struct free_segmap_info), GFP_KERNEL);
5023 	if (!free_i)
5024 		return -ENOMEM;
5025 
5026 	SM_I(sbi)->free_info = free_i;
5027 
5028 	bitmap_size = f2fs_bitmap_size(MAIN_SEGS(sbi));
5029 	free_i->free_segmap = f2fs_kvmalloc(sbi, bitmap_size, GFP_KERNEL);
5030 	if (!free_i->free_segmap)
5031 		return -ENOMEM;
5032 
5033 	sec_bitmap_size = f2fs_bitmap_size(MAIN_SECS(sbi));
5034 	free_i->free_secmap = f2fs_kvmalloc(sbi, sec_bitmap_size, GFP_KERNEL);
5035 	if (!free_i->free_secmap)
5036 		return -ENOMEM;
5037 
5038 	/* set all segments as dirty temporarily */
5039 	memset(free_i->free_segmap, 0xff, bitmap_size);
5040 	memset(free_i->free_secmap, 0xff, sec_bitmap_size);
5041 
5042 	/* init free segmap information */
5043 	free_i->start_segno = GET_SEGNO_FROM_SEG0(sbi, MAIN_BLKADDR(sbi));
5044 	free_i->free_segments = 0;
5045 	free_i->free_sections = 0;
5046 	spin_lock_init(&free_i->segmap_lock);
5047 	return 0;
5048 }
5049 
build_curseg(struct f2fs_sb_info * sbi)5050 static int build_curseg(struct f2fs_sb_info *sbi)
5051 {
5052 	struct curseg_info *array;
5053 	int i;
5054 
5055 	array = f2fs_kzalloc(sbi, array_size(NR_CURSEG_TYPE,
5056 					sizeof(*array)), GFP_KERNEL);
5057 	if (!array)
5058 		return -ENOMEM;
5059 
5060 	SM_I(sbi)->curseg_array = array;
5061 
5062 	for (i = 0; i < NO_CHECK_TYPE; i++) {
5063 		mutex_init(&array[i].curseg_mutex);
5064 		array[i].sum_blk = f2fs_kzalloc(sbi, sbi->sum_blocksize,
5065 				GFP_KERNEL);
5066 		if (!array[i].sum_blk)
5067 			return -ENOMEM;
5068 		init_rwsem(&array[i].journal_rwsem);
5069 		array[i].journal = f2fs_kzalloc(sbi,
5070 				sbi->sum_journal_size, GFP_KERNEL);
5071 		if (!array[i].journal)
5072 			return -ENOMEM;
5073 		array[i].seg_type = log_type_to_seg_type(i);
5074 		reset_curseg_fields(&array[i]);
5075 	}
5076 	return restore_curseg_summaries(sbi);
5077 }
5078 
build_sit_entries(struct f2fs_sb_info * sbi)5079 static int build_sit_entries(struct f2fs_sb_info *sbi)
5080 {
5081 	struct sit_info *sit_i = SIT_I(sbi);
5082 	struct curseg_info *curseg = CURSEG_I(sbi, CURSEG_COLD_DATA);
5083 	struct f2fs_journal *journal = curseg->journal;
5084 	struct seg_entry *se;
5085 	struct f2fs_sit_entry sit;
5086 	int sit_blk_cnt = SIT_BLK_CNT(sbi);
5087 	unsigned int i, start, end;
5088 	unsigned int readed, start_blk = 0;
5089 	int err = 0;
5090 	block_t sit_valid_blocks[2] = {0, 0};
5091 
5092 	do {
5093 		readed = f2fs_ra_meta_pages(sbi, start_blk, BIO_MAX_VECS,
5094 							META_SIT, true);
5095 
5096 		start = start_blk * sit_i->sents_per_block;
5097 		end = (start_blk + readed) * sit_i->sents_per_block;
5098 
5099 		for (; start < end && start < MAIN_SEGS(sbi); start++) {
5100 			struct f2fs_sit_block *sit_blk;
5101 			struct folio *folio;
5102 
5103 			se = &sit_i->sentries[start];
5104 			folio = get_current_sit_folio(sbi, start);
5105 			if (IS_ERR(folio))
5106 				return PTR_ERR(folio);
5107 			sit_blk = folio_address(folio);
5108 			sit = sit_blk->entries[SIT_ENTRY_OFFSET(sit_i, start)];
5109 			f2fs_folio_put(folio, true);
5110 
5111 			err = check_block_count(sbi, start, &sit);
5112 			if (err)
5113 				return err;
5114 			seg_info_from_raw_sit(se, &sit);
5115 
5116 			if (se->type >= NR_PERSISTENT_LOG) {
5117 				f2fs_err(sbi, "Invalid segment type: %u, segno: %u",
5118 							se->type, start);
5119 				f2fs_handle_error(sbi,
5120 						ERROR_INCONSISTENT_SUM_TYPE);
5121 				return -EFSCORRUPTED;
5122 			}
5123 
5124 			sit_valid_blocks[SE_PAGETYPE(se)] += se->valid_blocks;
5125 
5126 			if (!f2fs_block_unit_discard(sbi))
5127 				goto init_discard_map_done;
5128 
5129 			/* build discard map only one time */
5130 			if (is_set_ckpt_flags(sbi, CP_TRIMMED_FLAG)) {
5131 				memset(se->discard_map, 0xff,
5132 						SIT_VBLOCK_MAP_SIZE);
5133 				goto init_discard_map_done;
5134 			}
5135 			memcpy(se->discard_map, se->cur_valid_map,
5136 						SIT_VBLOCK_MAP_SIZE);
5137 			sbi->discard_blks += BLKS_PER_SEG(sbi) -
5138 						se->valid_blocks;
5139 init_discard_map_done:
5140 			if (__is_large_section(sbi))
5141 				get_sec_entry(sbi, start)->valid_blocks +=
5142 							se->valid_blocks;
5143 		}
5144 		start_blk += readed;
5145 	} while (start_blk < sit_blk_cnt);
5146 
5147 	down_read(&curseg->journal_rwsem);
5148 	for (i = 0; i < sits_in_cursum(journal); i++) {
5149 		unsigned int old_valid_blocks;
5150 
5151 		start = le32_to_cpu(segno_in_journal(journal, i));
5152 		if (start >= MAIN_SEGS(sbi)) {
5153 			f2fs_err(sbi, "Wrong journal entry on segno %u",
5154 				 start);
5155 			err = -EFSCORRUPTED;
5156 			f2fs_handle_error(sbi, ERROR_CORRUPTED_JOURNAL);
5157 			break;
5158 		}
5159 
5160 		se = &sit_i->sentries[start];
5161 		sit = sit_in_journal(journal, i);
5162 
5163 		old_valid_blocks = se->valid_blocks;
5164 
5165 		sit_valid_blocks[SE_PAGETYPE(se)] -= old_valid_blocks;
5166 
5167 		err = check_block_count(sbi, start, &sit);
5168 		if (err)
5169 			break;
5170 		seg_info_from_raw_sit(se, &sit);
5171 
5172 		if (se->type >= NR_PERSISTENT_LOG) {
5173 			f2fs_err(sbi, "Invalid segment type: %u, segno: %u",
5174 							se->type, start);
5175 			err = -EFSCORRUPTED;
5176 			f2fs_handle_error(sbi, ERROR_INCONSISTENT_SUM_TYPE);
5177 			break;
5178 		}
5179 
5180 		sit_valid_blocks[SE_PAGETYPE(se)] += se->valid_blocks;
5181 
5182 		if (f2fs_block_unit_discard(sbi)) {
5183 			if (is_set_ckpt_flags(sbi, CP_TRIMMED_FLAG)) {
5184 				memset(se->discard_map, 0xff, SIT_VBLOCK_MAP_SIZE);
5185 			} else {
5186 				memcpy(se->discard_map, se->cur_valid_map,
5187 							SIT_VBLOCK_MAP_SIZE);
5188 				sbi->discard_blks += old_valid_blocks;
5189 				sbi->discard_blks -= se->valid_blocks;
5190 			}
5191 		}
5192 
5193 		if (__is_large_section(sbi)) {
5194 			get_sec_entry(sbi, start)->valid_blocks +=
5195 							se->valid_blocks;
5196 			get_sec_entry(sbi, start)->valid_blocks -=
5197 							old_valid_blocks;
5198 		}
5199 	}
5200 	up_read(&curseg->journal_rwsem);
5201 
5202 	/* update ckpt_valid_block */
5203 	if (__is_large_section(sbi)) {
5204 		unsigned int segno;
5205 
5206 		for (segno = 0; segno < MAIN_SEGS(sbi); segno += SEGS_PER_SEC(sbi))
5207 			set_ckpt_valid_blocks(sbi, segno);
5208 	}
5209 
5210 	if (err)
5211 		return err;
5212 
5213 	if (sit_valid_blocks[NODE] != valid_node_count(sbi)) {
5214 		f2fs_err(sbi, "SIT is corrupted node# %u vs %u",
5215 			 sit_valid_blocks[NODE], valid_node_count(sbi));
5216 		f2fs_handle_error(sbi, ERROR_INCONSISTENT_NODE_COUNT);
5217 		return -EFSCORRUPTED;
5218 	}
5219 
5220 	if (sit_valid_blocks[DATA] + sit_valid_blocks[NODE] >
5221 				valid_user_blocks(sbi)) {
5222 		f2fs_err(sbi, "SIT is corrupted data# %u %u vs %u",
5223 			 sit_valid_blocks[DATA], sit_valid_blocks[NODE],
5224 			 valid_user_blocks(sbi));
5225 		f2fs_handle_error(sbi, ERROR_INCONSISTENT_BLOCK_COUNT);
5226 		return -EFSCORRUPTED;
5227 	}
5228 
5229 	return 0;
5230 }
5231 
init_free_segmap(struct f2fs_sb_info * sbi)5232 static void init_free_segmap(struct f2fs_sb_info *sbi)
5233 {
5234 	unsigned int start;
5235 	int type;
5236 	struct seg_entry *sentry;
5237 
5238 	for (start = 0; start < MAIN_SEGS(sbi); start++) {
5239 		if (f2fs_usable_blks_in_seg(sbi, start) == 0)
5240 			continue;
5241 		sentry = get_seg_entry(sbi, start);
5242 		if (!sentry->valid_blocks)
5243 			__set_free(sbi, start);
5244 		else
5245 			SIT_I(sbi)->written_valid_blocks +=
5246 						sentry->valid_blocks;
5247 	}
5248 
5249 	/* set use the current segments */
5250 	for (type = CURSEG_HOT_DATA; type <= CURSEG_COLD_NODE; type++) {
5251 		struct curseg_info *curseg_t = CURSEG_I(sbi, type);
5252 
5253 		__set_test_and_inuse(sbi, curseg_t->segno);
5254 	}
5255 }
5256 
init_dirty_segmap(struct f2fs_sb_info * sbi)5257 static void init_dirty_segmap(struct f2fs_sb_info *sbi)
5258 {
5259 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
5260 	struct free_segmap_info *free_i = FREE_I(sbi);
5261 	unsigned int segno = 0, offset = 0, secno;
5262 	block_t valid_blocks, usable_blks_in_seg;
5263 
5264 	while (1) {
5265 		/* find dirty segment based on free segmap */
5266 		segno = find_next_inuse(free_i, MAIN_SEGS(sbi), offset);
5267 		if (segno >= MAIN_SEGS(sbi))
5268 			break;
5269 		offset = segno + 1;
5270 		valid_blocks = get_valid_blocks(sbi, segno, false);
5271 		usable_blks_in_seg = f2fs_usable_blks_in_seg(sbi, segno);
5272 		if (valid_blocks == usable_blks_in_seg || !valid_blocks)
5273 			continue;
5274 		if (valid_blocks > usable_blks_in_seg) {
5275 			f2fs_bug_on(sbi, 1);
5276 			continue;
5277 		}
5278 		mutex_lock(&dirty_i->seglist_lock);
5279 		__locate_dirty_segment(sbi, segno, DIRTY);
5280 		mutex_unlock(&dirty_i->seglist_lock);
5281 	}
5282 
5283 	if (!__is_large_section(sbi))
5284 		return;
5285 
5286 	mutex_lock(&dirty_i->seglist_lock);
5287 	for (segno = 0; segno < MAIN_SEGS(sbi); segno += SEGS_PER_SEC(sbi)) {
5288 		valid_blocks = get_valid_blocks(sbi, segno, true);
5289 		secno = GET_SEC_FROM_SEG(sbi, segno);
5290 
5291 		if (!valid_blocks || valid_blocks == CAP_BLKS_PER_SEC(sbi))
5292 			continue;
5293 		if (is_cursec(sbi, secno))
5294 			continue;
5295 		set_bit(secno, dirty_i->dirty_secmap);
5296 	}
5297 	mutex_unlock(&dirty_i->seglist_lock);
5298 }
5299 
init_victim_secmap(struct f2fs_sb_info * sbi)5300 static int init_victim_secmap(struct f2fs_sb_info *sbi)
5301 {
5302 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
5303 	unsigned int bitmap_size = f2fs_bitmap_size(MAIN_SECS(sbi));
5304 
5305 	dirty_i->victim_secmap = f2fs_kvzalloc(sbi, bitmap_size, GFP_KERNEL);
5306 	if (!dirty_i->victim_secmap)
5307 		return -ENOMEM;
5308 
5309 	dirty_i->pinned_secmap = f2fs_kvzalloc(sbi, bitmap_size, GFP_KERNEL);
5310 	if (!dirty_i->pinned_secmap)
5311 		return -ENOMEM;
5312 
5313 	dirty_i->pinned_secmap_cnt = 0;
5314 	dirty_i->enable_pin_section = true;
5315 	return 0;
5316 }
5317 
build_dirty_segmap(struct f2fs_sb_info * sbi)5318 static int build_dirty_segmap(struct f2fs_sb_info *sbi)
5319 {
5320 	struct dirty_seglist_info *dirty_i;
5321 	unsigned int bitmap_size, i;
5322 
5323 	/* allocate memory for dirty segments list information */
5324 	dirty_i = f2fs_kzalloc(sbi, sizeof(struct dirty_seglist_info),
5325 								GFP_KERNEL);
5326 	if (!dirty_i)
5327 		return -ENOMEM;
5328 
5329 	SM_I(sbi)->dirty_info = dirty_i;
5330 	mutex_init(&dirty_i->seglist_lock);
5331 
5332 	bitmap_size = f2fs_bitmap_size(MAIN_SEGS(sbi));
5333 
5334 	for (i = 0; i < NR_DIRTY_TYPE; i++) {
5335 		dirty_i->dirty_segmap[i] = f2fs_kvzalloc(sbi, bitmap_size,
5336 								GFP_KERNEL);
5337 		if (!dirty_i->dirty_segmap[i])
5338 			return -ENOMEM;
5339 	}
5340 
5341 	if (__is_large_section(sbi)) {
5342 		bitmap_size = f2fs_bitmap_size(MAIN_SECS(sbi));
5343 		dirty_i->dirty_secmap = f2fs_kvzalloc(sbi,
5344 						bitmap_size, GFP_KERNEL);
5345 		if (!dirty_i->dirty_secmap)
5346 			return -ENOMEM;
5347 	}
5348 
5349 	init_dirty_segmap(sbi);
5350 	return init_victim_secmap(sbi);
5351 }
5352 
sanity_check_curseg(struct f2fs_sb_info * sbi)5353 static int sanity_check_curseg(struct f2fs_sb_info *sbi)
5354 {
5355 	int i;
5356 
5357 	/*
5358 	 * In LFS/SSR curseg, .next_blkoff should point to an unused blkaddr;
5359 	 * In LFS curseg, all blkaddr after .next_blkoff should be unused.
5360 	 */
5361 	for (i = 0; i < NR_PERSISTENT_LOG; i++) {
5362 		struct curseg_info *curseg = CURSEG_I(sbi, i);
5363 		struct seg_entry *se = get_seg_entry(sbi, curseg->segno);
5364 		unsigned int blkofs = curseg->next_blkoff;
5365 
5366 		if (f2fs_sb_has_readonly(sbi) &&
5367 			i != CURSEG_HOT_DATA && i != CURSEG_HOT_NODE)
5368 			continue;
5369 
5370 		sanity_check_seg_type(sbi, curseg->seg_type);
5371 
5372 		if (curseg->alloc_type != LFS && curseg->alloc_type != SSR) {
5373 			f2fs_err(sbi,
5374 				 "Current segment has invalid alloc_type:%d",
5375 				 curseg->alloc_type);
5376 			f2fs_handle_error(sbi, ERROR_INVALID_CURSEG);
5377 			return -EFSCORRUPTED;
5378 		}
5379 
5380 		if (f2fs_test_bit(blkofs, se->cur_valid_map))
5381 			goto out;
5382 
5383 		if (curseg->alloc_type == SSR)
5384 			continue;
5385 
5386 		for (blkofs += 1; blkofs < BLKS_PER_SEG(sbi); blkofs++) {
5387 			if (!f2fs_test_bit(blkofs, se->cur_valid_map))
5388 				continue;
5389 out:
5390 			f2fs_err(sbi,
5391 				 "Current segment's next free block offset is inconsistent with bitmap, logtype:%u, segno:%u, type:%u, next_blkoff:%u, blkofs:%u",
5392 				 i, curseg->segno, curseg->alloc_type,
5393 				 curseg->next_blkoff, blkofs);
5394 			f2fs_handle_error(sbi, ERROR_INVALID_CURSEG);
5395 			return -EFSCORRUPTED;
5396 		}
5397 	}
5398 	return 0;
5399 }
5400 
5401 #ifdef CONFIG_BLK_DEV_ZONED
check_zone_write_pointer(struct f2fs_sb_info * sbi,struct f2fs_dev_info * fdev,struct blk_zone * zone)5402 static int check_zone_write_pointer(struct f2fs_sb_info *sbi,
5403 				    struct f2fs_dev_info *fdev,
5404 				    struct blk_zone *zone)
5405 {
5406 	unsigned int zone_segno;
5407 	block_t zone_block, valid_block_cnt;
5408 	unsigned int log_sectors_per_block = sbi->log_blocksize - SECTOR_SHIFT;
5409 	int ret;
5410 	unsigned int nofs_flags;
5411 
5412 	if (zone->type != BLK_ZONE_TYPE_SEQWRITE_REQ)
5413 		return 0;
5414 
5415 	zone_block = fdev->start_blk + (zone->start >> log_sectors_per_block);
5416 	zone_segno = GET_SEGNO(sbi, zone_block);
5417 
5418 	/*
5419 	 * Skip check of zones cursegs point to, since
5420 	 * fix_curseg_write_pointer() checks them.
5421 	 */
5422 	if (zone_segno >= MAIN_SEGS(sbi))
5423 		return 0;
5424 
5425 	/*
5426 	 * Get # of valid block of the zone.
5427 	 */
5428 	valid_block_cnt = get_valid_blocks(sbi, zone_segno, true);
5429 	if (is_cursec(sbi, GET_SEC_FROM_SEG(sbi, zone_segno))) {
5430 		f2fs_notice(sbi, "Open zones: valid block[0x%x,0x%x] cond[%s]",
5431 				zone_segno, valid_block_cnt,
5432 				blk_zone_cond_str(zone->cond));
5433 		return 0;
5434 	}
5435 
5436 	if ((!valid_block_cnt && zone->cond == BLK_ZONE_COND_EMPTY) ||
5437 	    (valid_block_cnt && zone->cond == BLK_ZONE_COND_FULL))
5438 		return 0;
5439 
5440 	if (!valid_block_cnt) {
5441 		f2fs_notice(sbi, "Zone without valid block has non-zero write "
5442 			    "pointer. Reset the write pointer: cond[%s]",
5443 			    blk_zone_cond_str(zone->cond));
5444 		ret = __f2fs_issue_discard_zone(sbi, fdev->bdev, zone_block,
5445 					zone->len >> log_sectors_per_block);
5446 		if (ret)
5447 			f2fs_err(sbi, "Discard zone failed: %s (errno=%d)",
5448 				 fdev->path, ret);
5449 		return ret;
5450 	}
5451 
5452 	/*
5453 	 * If there are valid blocks and the write pointer doesn't match
5454 	 * with them, we need to report the inconsistency and fill
5455 	 * the zone till the end to close the zone. This inconsistency
5456 	 * does not cause write error because the zone will not be
5457 	 * selected for write operation until it get discarded.
5458 	 */
5459 	f2fs_notice(sbi, "Valid blocks are not aligned with write "
5460 		    "pointer: valid block[0x%x,0x%x] cond[%s]",
5461 		    zone_segno, valid_block_cnt, blk_zone_cond_str(zone->cond));
5462 
5463 	nofs_flags = memalloc_nofs_save();
5464 	ret = blkdev_zone_mgmt(fdev->bdev, REQ_OP_ZONE_FINISH,
5465 				zone->start, zone->len);
5466 	memalloc_nofs_restore(nofs_flags);
5467 	if (ret == -EOPNOTSUPP) {
5468 		ret = blkdev_issue_zeroout(fdev->bdev, zone->wp,
5469 					zone->len - (zone->wp - zone->start),
5470 					GFP_NOFS, 0);
5471 		if (ret)
5472 			f2fs_err(sbi, "Fill up zone failed: %s (errno=%d)",
5473 					fdev->path, ret);
5474 	} else if (ret) {
5475 		f2fs_err(sbi, "Finishing zone failed: %s (errno=%d)",
5476 				fdev->path, ret);
5477 	}
5478 
5479 	return ret;
5480 }
5481 
get_target_zoned_dev(struct f2fs_sb_info * sbi,block_t zone_blkaddr)5482 static struct f2fs_dev_info *get_target_zoned_dev(struct f2fs_sb_info *sbi,
5483 						  block_t zone_blkaddr)
5484 {
5485 	int i;
5486 
5487 	for (i = 0; i < sbi->s_ndevs; i++) {
5488 		if (!bdev_is_zoned(FDEV(i).bdev))
5489 			continue;
5490 		if (sbi->s_ndevs == 1 || (FDEV(i).start_blk <= zone_blkaddr &&
5491 				zone_blkaddr <= FDEV(i).end_blk))
5492 			return &FDEV(i);
5493 	}
5494 
5495 	return NULL;
5496 }
5497 
report_one_zone_cb(struct blk_zone * zone,unsigned int idx,void * data)5498 static int report_one_zone_cb(struct blk_zone *zone, unsigned int idx,
5499 			      void *data)
5500 {
5501 	memcpy(data, zone, sizeof(struct blk_zone));
5502 	return 0;
5503 }
5504 
do_fix_curseg_write_pointer(struct f2fs_sb_info * sbi,int type)5505 static int do_fix_curseg_write_pointer(struct f2fs_sb_info *sbi, int type)
5506 {
5507 	struct curseg_info *cs = CURSEG_I(sbi, type);
5508 	struct f2fs_dev_info *zbd;
5509 	struct blk_zone zone;
5510 	unsigned int cs_section, wp_segno, wp_blkoff, wp_sector_off;
5511 	block_t cs_zone_block, wp_block;
5512 	unsigned int log_sectors_per_block = sbi->log_blocksize - SECTOR_SHIFT;
5513 	sector_t zone_sector;
5514 	int err;
5515 
5516 	cs_section = GET_SEC_FROM_SEG(sbi, cs->segno);
5517 	cs_zone_block = START_BLOCK(sbi, GET_SEG_FROM_SEC(sbi, cs_section));
5518 
5519 	zbd = get_target_zoned_dev(sbi, cs_zone_block);
5520 	if (!zbd)
5521 		return 0;
5522 
5523 	/* report zone for the sector the curseg points to */
5524 	zone_sector = (sector_t)(cs_zone_block - zbd->start_blk)
5525 		<< log_sectors_per_block;
5526 	err = blkdev_report_zones(zbd->bdev, zone_sector, 1,
5527 				  report_one_zone_cb, &zone);
5528 	if (err != 1) {
5529 		f2fs_err(sbi, "Report zone failed: %s errno=(%d)",
5530 			 zbd->path, err);
5531 		return err;
5532 	}
5533 
5534 	if (zone.type != BLK_ZONE_TYPE_SEQWRITE_REQ)
5535 		return 0;
5536 
5537 	/*
5538 	 * When safely unmounted in the previous mount, we could use current
5539 	 * segments. Otherwise, allocate new sections.
5540 	 */
5541 	if (is_set_ckpt_flags(sbi, CP_UMOUNT_FLAG)) {
5542 		wp_block = zbd->start_blk + (zone.wp >> log_sectors_per_block);
5543 		wp_segno = GET_SEGNO(sbi, wp_block);
5544 		wp_blkoff = wp_block - START_BLOCK(sbi, wp_segno);
5545 		wp_sector_off = zone.wp & GENMASK(log_sectors_per_block - 1, 0);
5546 
5547 		if (cs->segno == wp_segno && cs->next_blkoff == wp_blkoff &&
5548 				wp_sector_off == 0)
5549 			return 0;
5550 
5551 		f2fs_notice(sbi, "Unaligned curseg[%d] with write pointer: "
5552 			    "curseg[0x%x,0x%x] wp[0x%x,0x%x]", type, cs->segno,
5553 			    cs->next_blkoff, wp_segno, wp_blkoff);
5554 	}
5555 
5556 	/* Allocate a new section if it's not new. */
5557 	if (cs->next_blkoff ||
5558 	    cs->segno != GET_SEG_FROM_SEC(sbi, GET_ZONE_FROM_SEC(sbi, cs_section))) {
5559 		unsigned int old_segno = cs->segno, old_blkoff = cs->next_blkoff;
5560 
5561 		f2fs_allocate_new_section(sbi, type, true);
5562 		f2fs_notice(sbi, "Assign new section to curseg[%d]: "
5563 				"[0x%x,0x%x] -> [0x%x,0x%x]",
5564 				type, old_segno, old_blkoff,
5565 				cs->segno, cs->next_blkoff);
5566 	}
5567 
5568 	/* check consistency of the zone curseg pointed to */
5569 	if (check_zone_write_pointer(sbi, zbd, &zone))
5570 		return -EIO;
5571 
5572 	/* check newly assigned zone */
5573 	cs_section = GET_SEC_FROM_SEG(sbi, cs->segno);
5574 	cs_zone_block = START_BLOCK(sbi, GET_SEG_FROM_SEC(sbi, cs_section));
5575 
5576 	zbd = get_target_zoned_dev(sbi, cs_zone_block);
5577 	if (!zbd)
5578 		return 0;
5579 
5580 	zone_sector = (sector_t)(cs_zone_block - zbd->start_blk)
5581 		<< log_sectors_per_block;
5582 	err = blkdev_report_zones(zbd->bdev, zone_sector, 1,
5583 				  report_one_zone_cb, &zone);
5584 	if (err != 1) {
5585 		f2fs_err(sbi, "Report zone failed: %s errno=(%d)",
5586 			 zbd->path, err);
5587 		return err;
5588 	}
5589 
5590 	if (zone.type != BLK_ZONE_TYPE_SEQWRITE_REQ)
5591 		return 0;
5592 
5593 	if (zone.wp != zone.start) {
5594 		f2fs_notice(sbi,
5595 			    "New zone for curseg[%d] is not yet discarded. "
5596 			    "Reset the zone: curseg[0x%x,0x%x]",
5597 			    type, cs->segno, cs->next_blkoff);
5598 		err = __f2fs_issue_discard_zone(sbi, zbd->bdev,	cs_zone_block,
5599 					zone.len >> log_sectors_per_block);
5600 		if (err) {
5601 			f2fs_err(sbi, "Discard zone failed: %s (errno=%d)",
5602 				 zbd->path, err);
5603 			return err;
5604 		}
5605 	}
5606 
5607 	return 0;
5608 }
5609 
fix_curseg_write_pointer(struct f2fs_sb_info * sbi)5610 static int fix_curseg_write_pointer(struct f2fs_sb_info *sbi)
5611 {
5612 	int i, ret;
5613 
5614 	for (i = 0; i < NR_PERSISTENT_LOG; i++) {
5615 		ret = do_fix_curseg_write_pointer(sbi, i);
5616 		if (ret)
5617 			return ret;
5618 	}
5619 
5620 	return 0;
5621 }
5622 
5623 struct check_zone_write_pointer_args {
5624 	struct f2fs_sb_info *sbi;
5625 	struct f2fs_dev_info *fdev;
5626 };
5627 
check_zone_write_pointer_cb(struct blk_zone * zone,unsigned int idx,void * data)5628 static int check_zone_write_pointer_cb(struct blk_zone *zone, unsigned int idx,
5629 				      void *data)
5630 {
5631 	struct check_zone_write_pointer_args *args;
5632 
5633 	args = (struct check_zone_write_pointer_args *)data;
5634 
5635 	return check_zone_write_pointer(args->sbi, args->fdev, zone);
5636 }
5637 
check_write_pointer(struct f2fs_sb_info * sbi)5638 static int check_write_pointer(struct f2fs_sb_info *sbi)
5639 {
5640 	int i, ret;
5641 	struct check_zone_write_pointer_args args;
5642 
5643 	for (i = 0; i < sbi->s_ndevs; i++) {
5644 		if (!bdev_is_zoned(FDEV(i).bdev))
5645 			continue;
5646 
5647 		args.sbi = sbi;
5648 		args.fdev = &FDEV(i);
5649 		ret = blkdev_report_zones(FDEV(i).bdev, 0, BLK_ALL_ZONES,
5650 					  check_zone_write_pointer_cb, &args);
5651 		if (ret < 0)
5652 			return ret;
5653 	}
5654 
5655 	return 0;
5656 }
5657 
f2fs_check_and_fix_write_pointer(struct f2fs_sb_info * sbi)5658 int f2fs_check_and_fix_write_pointer(struct f2fs_sb_info *sbi)
5659 {
5660 	int ret;
5661 
5662 	if (!f2fs_sb_has_blkzoned(sbi) || f2fs_readonly(sbi->sb) ||
5663 	    f2fs_hw_is_readonly(sbi))
5664 		return 0;
5665 
5666 	f2fs_notice(sbi, "Checking entire write pointers");
5667 	ret = fix_curseg_write_pointer(sbi);
5668 	if (!ret)
5669 		ret = check_write_pointer(sbi);
5670 	return ret;
5671 }
5672 
5673 /*
5674  * Return the number of usable blocks in a segment. The number of blocks
5675  * returned is always equal to the number of blocks in a segment for
5676  * segments fully contained within a sequential zone capacity or a
5677  * conventional zone. For segments partially contained in a sequential
5678  * zone capacity, the number of usable blocks up to the zone capacity
5679  * is returned. 0 is returned in all other cases.
5680  */
f2fs_usable_zone_blks_in_seg(struct f2fs_sb_info * sbi,unsigned int segno)5681 static inline unsigned int f2fs_usable_zone_blks_in_seg(
5682 			struct f2fs_sb_info *sbi, unsigned int segno)
5683 {
5684 	block_t seg_start, sec_start_blkaddr, sec_cap_blkaddr;
5685 	unsigned int secno;
5686 
5687 	if (!sbi->unusable_blocks_per_sec)
5688 		return BLKS_PER_SEG(sbi);
5689 
5690 	secno = GET_SEC_FROM_SEG(sbi, segno);
5691 	seg_start = START_BLOCK(sbi, segno);
5692 	sec_start_blkaddr = START_BLOCK(sbi, GET_SEG_FROM_SEC(sbi, secno));
5693 	sec_cap_blkaddr = sec_start_blkaddr + CAP_BLKS_PER_SEC(sbi);
5694 
5695 	/*
5696 	 * If segment starts before zone capacity and spans beyond
5697 	 * zone capacity, then usable blocks are from seg start to
5698 	 * zone capacity. If the segment starts after the zone capacity,
5699 	 * then there are no usable blocks.
5700 	 */
5701 	if (seg_start >= sec_cap_blkaddr)
5702 		return 0;
5703 	if (seg_start + BLKS_PER_SEG(sbi) > sec_cap_blkaddr)
5704 		return sec_cap_blkaddr - seg_start;
5705 
5706 	return BLKS_PER_SEG(sbi);
5707 }
5708 #else
f2fs_check_and_fix_write_pointer(struct f2fs_sb_info * sbi)5709 int f2fs_check_and_fix_write_pointer(struct f2fs_sb_info *sbi)
5710 {
5711 	return 0;
5712 }
5713 
f2fs_usable_zone_blks_in_seg(struct f2fs_sb_info * sbi,unsigned int segno)5714 static inline unsigned int f2fs_usable_zone_blks_in_seg(struct f2fs_sb_info *sbi,
5715 							unsigned int segno)
5716 {
5717 	return 0;
5718 }
5719 
5720 #endif
f2fs_usable_blks_in_seg(struct f2fs_sb_info * sbi,unsigned int segno)5721 unsigned int f2fs_usable_blks_in_seg(struct f2fs_sb_info *sbi,
5722 					unsigned int segno)
5723 {
5724 	if (f2fs_sb_has_blkzoned(sbi))
5725 		return f2fs_usable_zone_blks_in_seg(sbi, segno);
5726 
5727 	return BLKS_PER_SEG(sbi);
5728 }
5729 
f2fs_usable_segs_in_sec(struct f2fs_sb_info * sbi)5730 unsigned int f2fs_usable_segs_in_sec(struct f2fs_sb_info *sbi)
5731 {
5732 	if (f2fs_sb_has_blkzoned(sbi))
5733 		return CAP_SEGS_PER_SEC(sbi);
5734 
5735 	return SEGS_PER_SEC(sbi);
5736 }
5737 
f2fs_get_section_mtime(struct f2fs_sb_info * sbi,unsigned int segno)5738 unsigned long long f2fs_get_section_mtime(struct f2fs_sb_info *sbi,
5739 	unsigned int segno)
5740 {
5741 	unsigned int usable_segs_per_sec = f2fs_usable_segs_in_sec(sbi);
5742 	unsigned int secno = 0, start = 0;
5743 	unsigned int total_valid_blocks = 0;
5744 	unsigned long long mtime = 0;
5745 	unsigned int i = 0;
5746 
5747 	secno = GET_SEC_FROM_SEG(sbi, segno);
5748 	start = GET_SEG_FROM_SEC(sbi, secno);
5749 
5750 	if (!__is_large_section(sbi)) {
5751 		mtime = get_seg_entry(sbi, start + i)->mtime;
5752 		goto out;
5753 	}
5754 
5755 	for (i = 0; i < usable_segs_per_sec; i++) {
5756 		/* for large section, only check the mtime of valid segments */
5757 		struct seg_entry *se = get_seg_entry(sbi, start+i);
5758 
5759 		mtime += se->mtime * se->valid_blocks;
5760 		total_valid_blocks += se->valid_blocks;
5761 	}
5762 
5763 	if (total_valid_blocks == 0)
5764 		return INVALID_MTIME;
5765 
5766 	mtime = div_u64(mtime, total_valid_blocks);
5767 out:
5768 	if (unlikely(mtime == INVALID_MTIME))
5769 		mtime -= 1;
5770 	return mtime;
5771 }
5772 
5773 /*
5774  * Update min, max modified time for cost-benefit GC algorithm
5775  */
init_min_max_mtime(struct f2fs_sb_info * sbi)5776 static void init_min_max_mtime(struct f2fs_sb_info *sbi)
5777 {
5778 	struct sit_info *sit_i = SIT_I(sbi);
5779 	unsigned int segno;
5780 
5781 	down_write(&sit_i->sentry_lock);
5782 
5783 	sit_i->min_mtime = ULLONG_MAX;
5784 
5785 	for (segno = 0; segno < MAIN_SEGS(sbi); segno += SEGS_PER_SEC(sbi)) {
5786 		unsigned long long mtime = 0;
5787 
5788 		mtime = f2fs_get_section_mtime(sbi, segno);
5789 
5790 		if (sit_i->min_mtime > mtime)
5791 			sit_i->min_mtime = mtime;
5792 	}
5793 	sit_i->max_mtime = get_mtime(sbi, false);
5794 	sit_i->dirty_max_mtime = 0;
5795 	up_write(&sit_i->sentry_lock);
5796 }
5797 
f2fs_build_segment_manager(struct f2fs_sb_info * sbi)5798 int f2fs_build_segment_manager(struct f2fs_sb_info *sbi)
5799 {
5800 	struct f2fs_super_block *raw_super = F2FS_RAW_SUPER(sbi);
5801 	struct f2fs_checkpoint *ckpt = F2FS_CKPT(sbi);
5802 	struct f2fs_sm_info *sm_info;
5803 	int err;
5804 
5805 	sm_info = f2fs_kzalloc(sbi, sizeof(struct f2fs_sm_info), GFP_KERNEL);
5806 	if (!sm_info)
5807 		return -ENOMEM;
5808 
5809 	/* init sm info */
5810 	sbi->sm_info = sm_info;
5811 	sm_info->seg0_blkaddr = le32_to_cpu(raw_super->segment0_blkaddr);
5812 	sm_info->main_blkaddr = le32_to_cpu(raw_super->main_blkaddr);
5813 	sm_info->segment_count = le32_to_cpu(raw_super->segment_count);
5814 	sm_info->reserved_segments = le32_to_cpu(ckpt->rsvd_segment_count);
5815 	sm_info->ovp_segments = le32_to_cpu(ckpt->overprov_segment_count);
5816 	sm_info->main_segments = le32_to_cpu(raw_super->segment_count_main);
5817 	sm_info->ssa_blkaddr = le32_to_cpu(raw_super->ssa_blkaddr);
5818 	sm_info->rec_prefree_segments = sm_info->main_segments *
5819 					DEF_RECLAIM_PREFREE_SEGMENTS / 100;
5820 	if (sm_info->rec_prefree_segments > DEF_MAX_RECLAIM_PREFREE_SEGMENTS)
5821 		sm_info->rec_prefree_segments = DEF_MAX_RECLAIM_PREFREE_SEGMENTS;
5822 
5823 	if (!f2fs_lfs_mode(sbi))
5824 		sm_info->ipu_policy = BIT(F2FS_IPU_FSYNC);
5825 	sm_info->min_ipu_util = DEF_MIN_IPU_UTIL;
5826 	sm_info->min_fsync_blocks = DEF_MIN_FSYNC_BLOCKS;
5827 	sm_info->min_seq_blocks = BLKS_PER_SEG(sbi);
5828 	sm_info->min_hot_blocks = DEF_MIN_HOT_BLOCKS;
5829 	sm_info->min_ssr_sections = reserved_sections(sbi);
5830 
5831 	INIT_LIST_HEAD(&sm_info->sit_entry_set);
5832 
5833 	init_f2fs_rwsem(&sm_info->curseg_lock);
5834 
5835 	err = f2fs_create_flush_cmd_control(sbi);
5836 	if (err)
5837 		return err;
5838 
5839 	err = create_discard_cmd_control(sbi);
5840 	if (err)
5841 		return err;
5842 
5843 	err = build_sit_info(sbi);
5844 	if (err)
5845 		return err;
5846 	err = build_free_segmap(sbi);
5847 	if (err)
5848 		return err;
5849 	err = build_curseg(sbi);
5850 	if (err)
5851 		return err;
5852 
5853 	/* reinit free segmap based on SIT */
5854 	err = build_sit_entries(sbi);
5855 	if (err)
5856 		return err;
5857 
5858 	init_free_segmap(sbi);
5859 	err = build_dirty_segmap(sbi);
5860 	if (err)
5861 		return err;
5862 
5863 	err = sanity_check_curseg(sbi);
5864 	if (err)
5865 		return err;
5866 
5867 	init_min_max_mtime(sbi);
5868 	return 0;
5869 }
5870 
discard_dirty_segmap(struct f2fs_sb_info * sbi,enum dirty_type dirty_type)5871 static void discard_dirty_segmap(struct f2fs_sb_info *sbi,
5872 		enum dirty_type dirty_type)
5873 {
5874 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
5875 
5876 	mutex_lock(&dirty_i->seglist_lock);
5877 	kvfree(dirty_i->dirty_segmap[dirty_type]);
5878 	dirty_i->nr_dirty[dirty_type] = 0;
5879 	mutex_unlock(&dirty_i->seglist_lock);
5880 }
5881 
destroy_victim_secmap(struct f2fs_sb_info * sbi)5882 static void destroy_victim_secmap(struct f2fs_sb_info *sbi)
5883 {
5884 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
5885 
5886 	kvfree(dirty_i->pinned_secmap);
5887 	kvfree(dirty_i->victim_secmap);
5888 }
5889 
destroy_dirty_segmap(struct f2fs_sb_info * sbi)5890 static void destroy_dirty_segmap(struct f2fs_sb_info *sbi)
5891 {
5892 	struct dirty_seglist_info *dirty_i = DIRTY_I(sbi);
5893 	int i;
5894 
5895 	if (!dirty_i)
5896 		return;
5897 
5898 	/* discard pre-free/dirty segments list */
5899 	for (i = 0; i < NR_DIRTY_TYPE; i++)
5900 		discard_dirty_segmap(sbi, i);
5901 
5902 	if (__is_large_section(sbi)) {
5903 		mutex_lock(&dirty_i->seglist_lock);
5904 		kvfree(dirty_i->dirty_secmap);
5905 		mutex_unlock(&dirty_i->seglist_lock);
5906 	}
5907 
5908 	destroy_victim_secmap(sbi);
5909 	SM_I(sbi)->dirty_info = NULL;
5910 	kfree(dirty_i);
5911 }
5912 
destroy_curseg(struct f2fs_sb_info * sbi)5913 static void destroy_curseg(struct f2fs_sb_info *sbi)
5914 {
5915 	struct curseg_info *array = SM_I(sbi)->curseg_array;
5916 	int i;
5917 
5918 	if (!array)
5919 		return;
5920 	SM_I(sbi)->curseg_array = NULL;
5921 	for (i = 0; i < NR_CURSEG_TYPE; i++) {
5922 		kfree(array[i].sum_blk);
5923 		kfree(array[i].journal);
5924 	}
5925 	kfree(array);
5926 }
5927 
destroy_free_segmap(struct f2fs_sb_info * sbi)5928 static void destroy_free_segmap(struct f2fs_sb_info *sbi)
5929 {
5930 	struct free_segmap_info *free_i = SM_I(sbi)->free_info;
5931 
5932 	if (!free_i)
5933 		return;
5934 	SM_I(sbi)->free_info = NULL;
5935 	kvfree(free_i->free_segmap);
5936 	kvfree(free_i->free_secmap);
5937 	kfree(free_i);
5938 }
5939 
destroy_sit_info(struct f2fs_sb_info * sbi)5940 static void destroy_sit_info(struct f2fs_sb_info *sbi)
5941 {
5942 	struct sit_info *sit_i = SIT_I(sbi);
5943 
5944 	if (!sit_i)
5945 		return;
5946 
5947 	if (sit_i->sentries)
5948 		kvfree(sit_i->bitmap);
5949 	kfree(sit_i->tmp_map);
5950 
5951 	kvfree(sit_i->sentries);
5952 	kvfree(sit_i->sec_entries);
5953 	kvfree(sit_i->dirty_sentries_bitmap);
5954 
5955 	SM_I(sbi)->sit_info = NULL;
5956 	kfree(sit_i->sit_bitmap);
5957 #ifdef CONFIG_F2FS_CHECK_FS
5958 	kvfree(sit_i->invalid_segmap);
5959 #endif
5960 	kfree(sit_i);
5961 }
5962 
f2fs_destroy_segment_manager(struct f2fs_sb_info * sbi)5963 void f2fs_destroy_segment_manager(struct f2fs_sb_info *sbi)
5964 {
5965 	struct f2fs_sm_info *sm_info = SM_I(sbi);
5966 
5967 	if (!sm_info)
5968 		return;
5969 	f2fs_destroy_flush_cmd_control(sbi, true);
5970 	destroy_discard_cmd_control(sbi);
5971 	destroy_dirty_segmap(sbi);
5972 	destroy_curseg(sbi);
5973 	destroy_free_segmap(sbi);
5974 	destroy_sit_info(sbi);
5975 	sbi->sm_info = NULL;
5976 	kfree(sm_info);
5977 }
5978 
f2fs_create_segment_manager_caches(void)5979 int __init f2fs_create_segment_manager_caches(void)
5980 {
5981 	discard_entry_slab = f2fs_kmem_cache_create("f2fs_discard_entry",
5982 			sizeof(struct discard_entry));
5983 	if (!discard_entry_slab)
5984 		goto fail;
5985 
5986 	discard_cmd_slab = f2fs_kmem_cache_create("f2fs_discard_cmd",
5987 			sizeof(struct discard_cmd));
5988 	if (!discard_cmd_slab)
5989 		goto destroy_discard_entry;
5990 
5991 	sit_entry_set_slab = f2fs_kmem_cache_create("f2fs_sit_entry_set",
5992 			sizeof(struct sit_entry_set));
5993 	if (!sit_entry_set_slab)
5994 		goto destroy_discard_cmd;
5995 
5996 	revoke_entry_slab = f2fs_kmem_cache_create("f2fs_revoke_entry",
5997 			sizeof(struct revoke_entry));
5998 	if (!revoke_entry_slab)
5999 		goto destroy_sit_entry_set;
6000 	return 0;
6001 
6002 destroy_sit_entry_set:
6003 	kmem_cache_destroy(sit_entry_set_slab);
6004 destroy_discard_cmd:
6005 	kmem_cache_destroy(discard_cmd_slab);
6006 destroy_discard_entry:
6007 	kmem_cache_destroy(discard_entry_slab);
6008 fail:
6009 	return -ENOMEM;
6010 }
6011 
f2fs_destroy_segment_manager_caches(void)6012 void f2fs_destroy_segment_manager_caches(void)
6013 {
6014 	kmem_cache_destroy(sit_entry_set_slab);
6015 	kmem_cache_destroy(discard_cmd_slab);
6016 	kmem_cache_destroy(discard_entry_slab);
6017 	kmem_cache_destroy(revoke_entry_slab);
6018 }
6019