vfs_wapbl.c revision 1.87 1 1.87 jdolecek /* $NetBSD: vfs_wapbl.c,v 1.87 2017/03/05 13:57:29 jdolecek Exp $ */
2 1.2 simonb
3 1.2 simonb /*-
4 1.23 ad * Copyright (c) 2003, 2008, 2009 The NetBSD Foundation, Inc.
5 1.2 simonb * All rights reserved.
6 1.2 simonb *
7 1.2 simonb * This code is derived from software contributed to The NetBSD Foundation
8 1.2 simonb * by Wasabi Systems, Inc.
9 1.2 simonb *
10 1.2 simonb * Redistribution and use in source and binary forms, with or without
11 1.2 simonb * modification, are permitted provided that the following conditions
12 1.2 simonb * are met:
13 1.2 simonb * 1. Redistributions of source code must retain the above copyright
14 1.2 simonb * notice, this list of conditions and the following disclaimer.
15 1.2 simonb * 2. Redistributions in binary form must reproduce the above copyright
16 1.2 simonb * notice, this list of conditions and the following disclaimer in the
17 1.2 simonb * documentation and/or other materials provided with the distribution.
18 1.2 simonb *
19 1.2 simonb * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.2 simonb * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.2 simonb * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.2 simonb * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.2 simonb * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.2 simonb * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.2 simonb * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.2 simonb * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.2 simonb * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.2 simonb * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.2 simonb * POSSIBILITY OF SUCH DAMAGE.
30 1.2 simonb */
31 1.2 simonb
32 1.2 simonb /*
33 1.2 simonb * This implements file system independent write ahead filesystem logging.
34 1.2 simonb */
35 1.4 joerg
36 1.4 joerg #define WAPBL_INTERNAL
37 1.4 joerg
38 1.2 simonb #include <sys/cdefs.h>
39 1.87 jdolecek __KERNEL_RCSID(0, "$NetBSD: vfs_wapbl.c,v 1.87 2017/03/05 13:57:29 jdolecek Exp $");
40 1.2 simonb
41 1.2 simonb #include <sys/param.h>
42 1.31 mlelstv #include <sys/bitops.h>
43 1.68 riastrad #include <sys/time.h>
44 1.68 riastrad #include <sys/wapbl.h>
45 1.68 riastrad #include <sys/wapbl_replay.h>
46 1.2 simonb
47 1.2 simonb #ifdef _KERNEL
48 1.68 riastrad
49 1.68 riastrad #include <sys/atomic.h>
50 1.68 riastrad #include <sys/conf.h>
51 1.68 riastrad #include <sys/file.h>
52 1.68 riastrad #include <sys/kauth.h>
53 1.68 riastrad #include <sys/kernel.h>
54 1.68 riastrad #include <sys/module.h>
55 1.68 riastrad #include <sys/mount.h>
56 1.68 riastrad #include <sys/mutex.h>
57 1.2 simonb #include <sys/namei.h>
58 1.2 simonb #include <sys/proc.h>
59 1.68 riastrad #include <sys/resourcevar.h>
60 1.39 christos #include <sys/sysctl.h>
61 1.2 simonb #include <sys/uio.h>
62 1.2 simonb #include <sys/vnode.h>
63 1.2 simonb
64 1.2 simonb #include <miscfs/specfs/specdev.h>
65 1.2 simonb
66 1.51 para #define wapbl_alloc(s) kmem_alloc((s), KM_SLEEP)
67 1.51 para #define wapbl_free(a, s) kmem_free((a), (s))
68 1.51 para #define wapbl_calloc(n, s) kmem_zalloc((n)*(s), KM_SLEEP)
69 1.2 simonb
70 1.39 christos static struct sysctllog *wapbl_sysctl;
71 1.39 christos static int wapbl_flush_disk_cache = 1;
72 1.39 christos static int wapbl_verbose_commit = 0;
73 1.39 christos
74 1.57 joerg static inline size_t wapbl_space_free(size_t, off_t, off_t);
75 1.57 joerg
76 1.2 simonb #else /* !_KERNEL */
77 1.68 riastrad
78 1.2 simonb #include <assert.h>
79 1.2 simonb #include <errno.h>
80 1.68 riastrad #include <stdbool.h>
81 1.2 simonb #include <stdio.h>
82 1.2 simonb #include <stdlib.h>
83 1.2 simonb #include <string.h>
84 1.2 simonb
85 1.2 simonb #define KDASSERT(x) assert(x)
86 1.2 simonb #define KASSERT(x) assert(x)
87 1.51 para #define wapbl_alloc(s) malloc(s)
88 1.18 yamt #define wapbl_free(a, s) free(a)
89 1.2 simonb #define wapbl_calloc(n, s) calloc((n), (s))
90 1.2 simonb
91 1.2 simonb #endif /* !_KERNEL */
92 1.2 simonb
93 1.2 simonb /*
94 1.2 simonb * INTERNAL DATA STRUCTURES
95 1.2 simonb */
96 1.2 simonb
97 1.2 simonb /*
98 1.2 simonb * This structure holds per-mount log information.
99 1.2 simonb *
100 1.2 simonb * Legend: a = atomic access only
101 1.2 simonb * r = read-only after init
102 1.2 simonb * l = rwlock held
103 1.2 simonb * m = mutex held
104 1.38 hannken * lm = rwlock held writing or mutex held
105 1.2 simonb * u = unlocked access ok
106 1.2 simonb * b = bufcache_lock held
107 1.2 simonb */
108 1.60 matt LIST_HEAD(wapbl_ino_head, wapbl_ino);
109 1.2 simonb struct wapbl {
110 1.2 simonb struct vnode *wl_logvp; /* r: log here */
111 1.2 simonb struct vnode *wl_devvp; /* r: log on this device */
112 1.2 simonb struct mount *wl_mount; /* r: mountpoint wl is associated with */
113 1.2 simonb daddr_t wl_logpbn; /* r: Physical block number of start of log */
114 1.2 simonb int wl_log_dev_bshift; /* r: logarithm of device block size of log
115 1.2 simonb device */
116 1.2 simonb int wl_fs_dev_bshift; /* r: logarithm of device block size of
117 1.2 simonb filesystem device */
118 1.2 simonb
119 1.3 yamt unsigned wl_lock_count; /* m: Count of transactions in progress */
120 1.2 simonb
121 1.2 simonb size_t wl_circ_size; /* r: Number of bytes in buffer of log */
122 1.2 simonb size_t wl_circ_off; /* r: Number of bytes reserved at start */
123 1.2 simonb
124 1.2 simonb size_t wl_bufcount_max; /* r: Number of buffers reserved for log */
125 1.2 simonb size_t wl_bufbytes_max; /* r: Number of buf bytes reserved for log */
126 1.2 simonb
127 1.2 simonb off_t wl_head; /* l: Byte offset of log head */
128 1.2 simonb off_t wl_tail; /* l: Byte offset of log tail */
129 1.2 simonb /*
130 1.71 riastrad * WAPBL log layout, stored on wl_devvp at wl_logpbn:
131 1.71 riastrad *
132 1.71 riastrad * ___________________ wl_circ_size __________________
133 1.71 riastrad * / \
134 1.71 riastrad * +---------+---------+-------+--------------+--------+
135 1.71 riastrad * [ commit0 | commit1 | CCWCW | EEEEEEEEEEEE | CCCWCW ]
136 1.71 riastrad * +---------+---------+-------+--------------+--------+
137 1.71 riastrad * wl_circ_off --^ ^-- wl_head ^-- wl_tail
138 1.71 riastrad *
139 1.71 riastrad * commit0 and commit1 are commit headers. A commit header has
140 1.71 riastrad * a generation number, indicating which of the two headers is
141 1.71 riastrad * more recent, and an assignment of head and tail pointers.
142 1.71 riastrad * The rest is a circular queue of log records, starting at
143 1.71 riastrad * the byte offset wl_circ_off.
144 1.71 riastrad *
145 1.71 riastrad * E marks empty space for records.
146 1.71 riastrad * W marks records for block writes issued but waiting.
147 1.71 riastrad * C marks completed records.
148 1.71 riastrad *
149 1.71 riastrad * wapbl_flush writes new records to empty `E' spaces after
150 1.71 riastrad * wl_head from the current transaction in memory.
151 1.71 riastrad *
152 1.71 riastrad * wapbl_truncate advances wl_tail past any completed `C'
153 1.71 riastrad * records, freeing them up for use.
154 1.71 riastrad *
155 1.71 riastrad * head == tail == 0 means log is empty.
156 1.71 riastrad * head == tail != 0 means log is full.
157 1.71 riastrad *
158 1.71 riastrad * See assertions in wapbl_advance() for other boundary
159 1.71 riastrad * conditions.
160 1.71 riastrad *
161 1.71 riastrad * Only wapbl_flush moves the head, except when wapbl_truncate
162 1.71 riastrad * sets it to 0 to indicate that the log is empty.
163 1.71 riastrad *
164 1.71 riastrad * Only wapbl_truncate moves the tail, except when wapbl_flush
165 1.71 riastrad * sets it to wl_circ_off to indicate that the log is full.
166 1.2 simonb */
167 1.2 simonb
168 1.2 simonb struct wapbl_wc_header *wl_wc_header; /* l */
169 1.2 simonb void *wl_wc_scratch; /* l: scratch space (XXX: por que?!?) */
170 1.2 simonb
171 1.2 simonb kmutex_t wl_mtx; /* u: short-term lock */
172 1.2 simonb krwlock_t wl_rwlock; /* u: File system transaction lock */
173 1.2 simonb
174 1.2 simonb /*
175 1.2 simonb * Must be held while accessing
176 1.2 simonb * wl_count or wl_bufs or head or tail
177 1.2 simonb */
178 1.2 simonb
179 1.87 jdolecek #if _KERNEL
180 1.2 simonb /*
181 1.2 simonb * Callback called from within the flush routine to flush any extra
182 1.2 simonb * bits. Note that flush may be skipped without calling this if
183 1.2 simonb * there are no outstanding buffers in the transaction.
184 1.2 simonb */
185 1.2 simonb wapbl_flush_fn_t wl_flush; /* r */
186 1.2 simonb wapbl_flush_fn_t wl_flush_abort;/* r */
187 1.87 jdolecek
188 1.87 jdolecek /* Event counters */
189 1.87 jdolecek char wl_ev_group[EVCNT_STRING_MAX]; /* r */
190 1.87 jdolecek struct evcnt wl_ev_commit; /* l */
191 1.87 jdolecek struct evcnt wl_ev_journalwrite; /* l */
192 1.87 jdolecek struct evcnt wl_ev_metawrite; /* lm */
193 1.87 jdolecek struct evcnt wl_ev_cacheflush; /* l */
194 1.5 joerg #endif
195 1.2 simonb
196 1.2 simonb size_t wl_bufbytes; /* m: Byte count of pages in wl_bufs */
197 1.2 simonb size_t wl_bufcount; /* m: Count of buffers in wl_bufs */
198 1.2 simonb size_t wl_bcount; /* m: Total bcount of wl_bufs */
199 1.2 simonb
200 1.2 simonb LIST_HEAD(, buf) wl_bufs; /* m: Buffers in current transaction */
201 1.2 simonb
202 1.2 simonb kcondvar_t wl_reclaimable_cv; /* m (obviously) */
203 1.2 simonb size_t wl_reclaimable_bytes; /* m: Amount of space available for
204 1.2 simonb reclamation by truncate */
205 1.2 simonb int wl_error_count; /* m: # of wl_entries with errors */
206 1.2 simonb size_t wl_reserved_bytes; /* never truncate log smaller than this */
207 1.2 simonb
208 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
209 1.2 simonb size_t wl_unsynced_bufbytes; /* Byte count of unsynced buffers */
210 1.2 simonb #endif
211 1.2 simonb
212 1.79 jdolecek #if _KERNEL
213 1.79 jdolecek int wl_brperjblock; /* r Block records per journal block */
214 1.79 jdolecek #endif
215 1.79 jdolecek
216 1.86 jdolecek TAILQ_HEAD(, wapbl_dealloc) wl_dealloclist; /* lm: list head */
217 1.81 jdolecek int wl_dealloccnt; /* lm: total count */
218 1.81 jdolecek int wl_dealloclim; /* r: max count */
219 1.2 simonb
220 1.2 simonb /* hashtable of inode numbers for allocated but unlinked inodes */
221 1.2 simonb /* synch ??? */
222 1.60 matt struct wapbl_ino_head *wl_inohash;
223 1.2 simonb u_long wl_inohashmask;
224 1.2 simonb int wl_inohashcnt;
225 1.2 simonb
226 1.2 simonb SIMPLEQ_HEAD(, wapbl_entry) wl_entries; /* On disk transaction
227 1.2 simonb accounting */
228 1.54 hannken
229 1.54 hannken u_char *wl_buffer; /* l: buffer for wapbl_buffered_write() */
230 1.54 hannken daddr_t wl_buffer_dblk; /* l: buffer disk block address */
231 1.54 hannken size_t wl_buffer_used; /* l: buffer current use */
232 1.2 simonb };
233 1.2 simonb
234 1.2 simonb #ifdef WAPBL_DEBUG_PRINT
235 1.2 simonb int wapbl_debug_print = WAPBL_DEBUG_PRINT;
236 1.2 simonb #endif
237 1.2 simonb
238 1.2 simonb /****************************************************************/
239 1.2 simonb #ifdef _KERNEL
240 1.2 simonb
241 1.2 simonb #ifdef WAPBL_DEBUG
242 1.2 simonb struct wapbl *wapbl_debug_wl;
243 1.2 simonb #endif
244 1.2 simonb
245 1.2 simonb static int wapbl_write_commit(struct wapbl *wl, off_t head, off_t tail);
246 1.2 simonb static int wapbl_write_blocks(struct wapbl *wl, off_t *offp);
247 1.2 simonb static int wapbl_write_revocations(struct wapbl *wl, off_t *offp);
248 1.2 simonb static int wapbl_write_inodes(struct wapbl *wl, off_t *offp);
249 1.2 simonb #endif /* _KERNEL */
250 1.2 simonb
251 1.14 joerg static int wapbl_replay_process(struct wapbl_replay *wr, off_t, off_t);
252 1.2 simonb
253 1.30 uebayasi static inline size_t wapbl_space_used(size_t avail, off_t head,
254 1.2 simonb off_t tail);
255 1.2 simonb
256 1.2 simonb #ifdef _KERNEL
257 1.2 simonb
258 1.51 para static struct pool wapbl_entry_pool;
259 1.81 jdolecek static struct pool wapbl_dealloc_pool;
260 1.51 para
261 1.2 simonb #define WAPBL_INODETRK_SIZE 83
262 1.2 simonb static int wapbl_ino_pool_refcount;
263 1.2 simonb static struct pool wapbl_ino_pool;
264 1.2 simonb struct wapbl_ino {
265 1.2 simonb LIST_ENTRY(wapbl_ino) wi_hash;
266 1.2 simonb ino_t wi_ino;
267 1.2 simonb mode_t wi_mode;
268 1.2 simonb };
269 1.2 simonb
270 1.2 simonb static void wapbl_inodetrk_init(struct wapbl *wl, u_int size);
271 1.2 simonb static void wapbl_inodetrk_free(struct wapbl *wl);
272 1.2 simonb static struct wapbl_ino *wapbl_inodetrk_get(struct wapbl *wl, ino_t ino);
273 1.2 simonb
274 1.2 simonb static size_t wapbl_transaction_len(struct wapbl *wl);
275 1.30 uebayasi static inline size_t wapbl_transaction_inodes_len(struct wapbl *wl);
276 1.2 simonb
277 1.86 jdolecek static void wapbl_deallocation_free(struct wapbl *, struct wapbl_dealloc *,
278 1.86 jdolecek bool);
279 1.86 jdolecek
280 1.87 jdolecek static void wapbl_evcnt_init(struct wapbl *);
281 1.87 jdolecek static void wapbl_evcnt_free(struct wapbl *);
282 1.87 jdolecek
283 1.13 joerg #if 0
284 1.4 joerg int wapbl_replay_verify(struct wapbl_replay *, struct vnode *);
285 1.4 joerg #endif
286 1.4 joerg
287 1.4 joerg static int wapbl_replay_isopen1(struct wapbl_replay *);
288 1.4 joerg
289 1.2 simonb struct wapbl_ops wapbl_ops = {
290 1.2 simonb .wo_wapbl_discard = wapbl_discard,
291 1.2 simonb .wo_wapbl_replay_isopen = wapbl_replay_isopen1,
292 1.6 joerg .wo_wapbl_replay_can_read = wapbl_replay_can_read,
293 1.2 simonb .wo_wapbl_replay_read = wapbl_replay_read,
294 1.2 simonb .wo_wapbl_add_buf = wapbl_add_buf,
295 1.2 simonb .wo_wapbl_remove_buf = wapbl_remove_buf,
296 1.2 simonb .wo_wapbl_resize_buf = wapbl_resize_buf,
297 1.2 simonb .wo_wapbl_begin = wapbl_begin,
298 1.2 simonb .wo_wapbl_end = wapbl_end,
299 1.2 simonb .wo_wapbl_junlock_assert= wapbl_junlock_assert,
300 1.2 simonb
301 1.2 simonb /* XXX: the following is only used to say "this is a wapbl buf" */
302 1.2 simonb .wo_wapbl_biodone = wapbl_biodone,
303 1.2 simonb };
304 1.2 simonb
305 1.21 yamt static int
306 1.39 christos wapbl_sysctl_init(void)
307 1.39 christos {
308 1.39 christos int rv;
309 1.39 christos const struct sysctlnode *rnode, *cnode;
310 1.39 christos
311 1.39 christos wapbl_sysctl = NULL;
312 1.39 christos
313 1.39 christos rv = sysctl_createv(&wapbl_sysctl, 0, NULL, &rnode,
314 1.39 christos CTLFLAG_PERMANENT,
315 1.39 christos CTLTYPE_NODE, "wapbl",
316 1.39 christos SYSCTL_DESCR("WAPBL journaling options"),
317 1.39 christos NULL, 0, NULL, 0,
318 1.59 pooka CTL_VFS, CTL_CREATE, CTL_EOL);
319 1.39 christos if (rv)
320 1.39 christos return rv;
321 1.39 christos
322 1.39 christos rv = sysctl_createv(&wapbl_sysctl, 0, &rnode, &cnode,
323 1.39 christos CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
324 1.39 christos CTLTYPE_INT, "flush_disk_cache",
325 1.39 christos SYSCTL_DESCR("flush disk cache"),
326 1.39 christos NULL, 0, &wapbl_flush_disk_cache, 0,
327 1.39 christos CTL_CREATE, CTL_EOL);
328 1.39 christos if (rv)
329 1.39 christos return rv;
330 1.39 christos
331 1.39 christos rv = sysctl_createv(&wapbl_sysctl, 0, &rnode, &cnode,
332 1.39 christos CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
333 1.39 christos CTLTYPE_INT, "verbose_commit",
334 1.39 christos SYSCTL_DESCR("show time and size of wapbl log commits"),
335 1.39 christos NULL, 0, &wapbl_verbose_commit, 0,
336 1.39 christos CTL_CREATE, CTL_EOL);
337 1.39 christos return rv;
338 1.39 christos }
339 1.39 christos
340 1.39 christos static void
341 1.39 christos wapbl_init(void)
342 1.39 christos {
343 1.51 para
344 1.51 para pool_init(&wapbl_entry_pool, sizeof(struct wapbl_entry), 0, 0, 0,
345 1.51 para "wapblentrypl", &pool_allocator_kmem, IPL_VM);
346 1.81 jdolecek pool_init(&wapbl_dealloc_pool, sizeof(struct wapbl_dealloc), 0, 0, 0,
347 1.81 jdolecek "wapbldealloc", &pool_allocator_nointr, IPL_NONE);
348 1.51 para
349 1.39 christos wapbl_sysctl_init();
350 1.39 christos }
351 1.39 christos
352 1.39 christos static int
353 1.74 riastrad wapbl_fini(void)
354 1.39 christos {
355 1.51 para
356 1.63 pgoyette if (wapbl_sysctl != NULL)
357 1.63 pgoyette sysctl_teardown(&wapbl_sysctl);
358 1.51 para
359 1.81 jdolecek pool_destroy(&wapbl_dealloc_pool);
360 1.51 para pool_destroy(&wapbl_entry_pool);
361 1.51 para
362 1.39 christos return 0;
363 1.39 christos }
364 1.39 christos
365 1.87 jdolecek static void
366 1.87 jdolecek wapbl_evcnt_init(struct wapbl *wl)
367 1.87 jdolecek {
368 1.87 jdolecek snprintf(wl->wl_ev_group, sizeof(wl->wl_ev_group),
369 1.87 jdolecek "wapbl fsid 0x%x/0x%x",
370 1.87 jdolecek wl->wl_mount->mnt_stat.f_fsidx.__fsid_val[0],
371 1.87 jdolecek wl->wl_mount->mnt_stat.f_fsidx.__fsid_val[1]
372 1.87 jdolecek );
373 1.87 jdolecek
374 1.87 jdolecek evcnt_attach_dynamic(&wl->wl_ev_commit, EVCNT_TYPE_MISC,
375 1.87 jdolecek NULL, wl->wl_ev_group, "commit");
376 1.87 jdolecek evcnt_attach_dynamic(&wl->wl_ev_journalwrite, EVCNT_TYPE_MISC,
377 1.87 jdolecek NULL, wl->wl_ev_group, "journal sync block write");
378 1.87 jdolecek evcnt_attach_dynamic(&wl->wl_ev_metawrite, EVCNT_TYPE_MISC,
379 1.87 jdolecek NULL, wl->wl_ev_group, "metadata finished block write");
380 1.87 jdolecek evcnt_attach_dynamic(&wl->wl_ev_cacheflush, EVCNT_TYPE_MISC,
381 1.87 jdolecek NULL, wl->wl_ev_group, "cache flush");
382 1.87 jdolecek }
383 1.87 jdolecek
384 1.87 jdolecek static void
385 1.87 jdolecek wapbl_evcnt_free(struct wapbl *wl)
386 1.87 jdolecek {
387 1.87 jdolecek evcnt_detach(&wl->wl_ev_commit);
388 1.87 jdolecek evcnt_detach(&wl->wl_ev_journalwrite);
389 1.87 jdolecek evcnt_detach(&wl->wl_ev_metawrite);
390 1.87 jdolecek evcnt_detach(&wl->wl_ev_cacheflush);
391 1.87 jdolecek }
392 1.87 jdolecek
393 1.39 christos static int
394 1.15 joerg wapbl_start_flush_inodes(struct wapbl *wl, struct wapbl_replay *wr)
395 1.15 joerg {
396 1.15 joerg int error, i;
397 1.15 joerg
398 1.15 joerg WAPBL_PRINTF(WAPBL_PRINT_REPLAY,
399 1.15 joerg ("wapbl_start: reusing log with %d inodes\n", wr->wr_inodescnt));
400 1.15 joerg
401 1.15 joerg /*
402 1.15 joerg * Its only valid to reuse the replay log if its
403 1.15 joerg * the same as the new log we just opened.
404 1.15 joerg */
405 1.15 joerg KDASSERT(!wapbl_replay_isopen(wr));
406 1.47 christos KASSERT(wl->wl_devvp->v_type == VBLK);
407 1.47 christos KASSERT(wr->wr_devvp->v_type == VBLK);
408 1.15 joerg KASSERT(wl->wl_devvp->v_rdev == wr->wr_devvp->v_rdev);
409 1.15 joerg KASSERT(wl->wl_logpbn == wr->wr_logpbn);
410 1.15 joerg KASSERT(wl->wl_circ_size == wr->wr_circ_size);
411 1.15 joerg KASSERT(wl->wl_circ_off == wr->wr_circ_off);
412 1.15 joerg KASSERT(wl->wl_log_dev_bshift == wr->wr_log_dev_bshift);
413 1.15 joerg KASSERT(wl->wl_fs_dev_bshift == wr->wr_fs_dev_bshift);
414 1.15 joerg
415 1.15 joerg wl->wl_wc_header->wc_generation = wr->wr_generation + 1;
416 1.15 joerg
417 1.15 joerg for (i = 0; i < wr->wr_inodescnt; i++)
418 1.15 joerg wapbl_register_inode(wl, wr->wr_inodes[i].wr_inumber,
419 1.15 joerg wr->wr_inodes[i].wr_imode);
420 1.15 joerg
421 1.15 joerg /* Make sure new transaction won't overwrite old inodes list */
422 1.15 joerg KDASSERT(wapbl_transaction_len(wl) <=
423 1.15 joerg wapbl_space_free(wl->wl_circ_size, wr->wr_inodeshead,
424 1.15 joerg wr->wr_inodestail));
425 1.15 joerg
426 1.15 joerg wl->wl_head = wl->wl_tail = wr->wr_inodeshead;
427 1.15 joerg wl->wl_reclaimable_bytes = wl->wl_reserved_bytes =
428 1.15 joerg wapbl_transaction_len(wl);
429 1.15 joerg
430 1.15 joerg error = wapbl_write_inodes(wl, &wl->wl_head);
431 1.15 joerg if (error)
432 1.15 joerg return error;
433 1.15 joerg
434 1.15 joerg KASSERT(wl->wl_head != wl->wl_tail);
435 1.15 joerg KASSERT(wl->wl_head != 0);
436 1.15 joerg
437 1.15 joerg return 0;
438 1.15 joerg }
439 1.15 joerg
440 1.2 simonb int
441 1.2 simonb wapbl_start(struct wapbl ** wlp, struct mount *mp, struct vnode *vp,
442 1.2 simonb daddr_t off, size_t count, size_t blksize, struct wapbl_replay *wr,
443 1.2 simonb wapbl_flush_fn_t flushfn, wapbl_flush_fn_t flushabortfn)
444 1.2 simonb {
445 1.2 simonb struct wapbl *wl;
446 1.2 simonb struct vnode *devvp;
447 1.2 simonb daddr_t logpbn;
448 1.2 simonb int error;
449 1.31 mlelstv int log_dev_bshift = ilog2(blksize);
450 1.32 mlelstv int fs_dev_bshift = log_dev_bshift;
451 1.2 simonb int run;
452 1.2 simonb
453 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_OPEN, ("wapbl_start: vp=%p off=%" PRId64
454 1.2 simonb " count=%zu blksize=%zu\n", vp, off, count, blksize));
455 1.2 simonb
456 1.2 simonb if (log_dev_bshift > fs_dev_bshift) {
457 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_OPEN,
458 1.2 simonb ("wapbl: log device's block size cannot be larger "
459 1.2 simonb "than filesystem's\n"));
460 1.2 simonb /*
461 1.2 simonb * Not currently implemented, although it could be if
462 1.2 simonb * needed someday.
463 1.2 simonb */
464 1.2 simonb return ENOSYS;
465 1.2 simonb }
466 1.2 simonb
467 1.2 simonb if (off < 0)
468 1.2 simonb return EINVAL;
469 1.2 simonb
470 1.2 simonb if (blksize < DEV_BSIZE)
471 1.2 simonb return EINVAL;
472 1.2 simonb if (blksize % DEV_BSIZE)
473 1.2 simonb return EINVAL;
474 1.2 simonb
475 1.2 simonb /* XXXTODO: verify that the full load is writable */
476 1.2 simonb
477 1.2 simonb /*
478 1.2 simonb * XXX check for minimum log size
479 1.2 simonb * minimum is governed by minimum amount of space
480 1.2 simonb * to complete a transaction. (probably truncate)
481 1.2 simonb */
482 1.2 simonb /* XXX for now pick something minimal */
483 1.2 simonb if ((count * blksize) < MAXPHYS) {
484 1.2 simonb return ENOSPC;
485 1.2 simonb }
486 1.2 simonb
487 1.2 simonb if ((error = VOP_BMAP(vp, off, &devvp, &logpbn, &run)) != 0) {
488 1.2 simonb return error;
489 1.2 simonb }
490 1.2 simonb
491 1.2 simonb wl = wapbl_calloc(1, sizeof(*wl));
492 1.2 simonb rw_init(&wl->wl_rwlock);
493 1.2 simonb mutex_init(&wl->wl_mtx, MUTEX_DEFAULT, IPL_NONE);
494 1.2 simonb cv_init(&wl->wl_reclaimable_cv, "wapblrec");
495 1.2 simonb LIST_INIT(&wl->wl_bufs);
496 1.2 simonb SIMPLEQ_INIT(&wl->wl_entries);
497 1.2 simonb
498 1.2 simonb wl->wl_logvp = vp;
499 1.2 simonb wl->wl_devvp = devvp;
500 1.2 simonb wl->wl_mount = mp;
501 1.2 simonb wl->wl_logpbn = logpbn;
502 1.2 simonb wl->wl_log_dev_bshift = log_dev_bshift;
503 1.2 simonb wl->wl_fs_dev_bshift = fs_dev_bshift;
504 1.2 simonb
505 1.2 simonb wl->wl_flush = flushfn;
506 1.2 simonb wl->wl_flush_abort = flushabortfn;
507 1.2 simonb
508 1.2 simonb /* Reserve two log device blocks for the commit headers */
509 1.2 simonb wl->wl_circ_off = 2<<wl->wl_log_dev_bshift;
510 1.34 mlelstv wl->wl_circ_size = ((count * blksize) - wl->wl_circ_off);
511 1.2 simonb /* truncate the log usage to a multiple of log_dev_bshift */
512 1.2 simonb wl->wl_circ_size >>= wl->wl_log_dev_bshift;
513 1.2 simonb wl->wl_circ_size <<= wl->wl_log_dev_bshift;
514 1.2 simonb
515 1.2 simonb /*
516 1.2 simonb * wl_bufbytes_max limits the size of the in memory transaction space.
517 1.2 simonb * - Since buffers are allocated and accounted for in units of
518 1.2 simonb * PAGE_SIZE it is required to be a multiple of PAGE_SIZE
519 1.2 simonb * (i.e. 1<<PAGE_SHIFT)
520 1.2 simonb * - Since the log device has to be written in units of
521 1.2 simonb * 1<<wl_log_dev_bshift it is required to be a mulitple of
522 1.2 simonb * 1<<wl_log_dev_bshift.
523 1.2 simonb * - Since filesystem will provide data in units of 1<<wl_fs_dev_bshift,
524 1.2 simonb * it is convenient to be a multiple of 1<<wl_fs_dev_bshift.
525 1.2 simonb * Therefore it must be multiple of the least common multiple of those
526 1.2 simonb * three quantities. Fortunately, all of those quantities are
527 1.2 simonb * guaranteed to be a power of two, and the least common multiple of
528 1.2 simonb * a set of numbers which are all powers of two is simply the maximum
529 1.2 simonb * of those numbers. Finally, the maximum logarithm of a power of two
530 1.2 simonb * is the same as the log of the maximum power of two. So we can do
531 1.2 simonb * the following operations to size wl_bufbytes_max:
532 1.2 simonb */
533 1.2 simonb
534 1.2 simonb /* XXX fix actual number of pages reserved per filesystem. */
535 1.2 simonb wl->wl_bufbytes_max = MIN(wl->wl_circ_size, buf_memcalc() / 2);
536 1.2 simonb
537 1.2 simonb /* Round wl_bufbytes_max to the largest power of two constraint */
538 1.2 simonb wl->wl_bufbytes_max >>= PAGE_SHIFT;
539 1.2 simonb wl->wl_bufbytes_max <<= PAGE_SHIFT;
540 1.2 simonb wl->wl_bufbytes_max >>= wl->wl_log_dev_bshift;
541 1.2 simonb wl->wl_bufbytes_max <<= wl->wl_log_dev_bshift;
542 1.2 simonb wl->wl_bufbytes_max >>= wl->wl_fs_dev_bshift;
543 1.2 simonb wl->wl_bufbytes_max <<= wl->wl_fs_dev_bshift;
544 1.2 simonb
545 1.2 simonb /* XXX maybe use filesystem fragment size instead of 1024 */
546 1.2 simonb /* XXX fix actual number of buffers reserved per filesystem. */
547 1.2 simonb wl->wl_bufcount_max = (nbuf / 2) * 1024;
548 1.2 simonb
549 1.79 jdolecek wl->wl_brperjblock = ((1<<wl->wl_log_dev_bshift)
550 1.79 jdolecek - offsetof(struct wapbl_wc_blocklist, wc_blocks)) /
551 1.79 jdolecek sizeof(((struct wapbl_wc_blocklist *)0)->wc_blocks[0]);
552 1.79 jdolecek KASSERT(wl->wl_brperjblock > 0);
553 1.79 jdolecek
554 1.2 simonb /* XXX tie this into resource estimation */
555 1.41 hannken wl->wl_dealloclim = wl->wl_bufbytes_max / mp->mnt_stat.f_bsize / 2;
556 1.86 jdolecek TAILQ_INIT(&wl->wl_dealloclist);
557 1.2 simonb
558 1.54 hannken wl->wl_buffer = wapbl_alloc(MAXPHYS);
559 1.54 hannken wl->wl_buffer_used = 0;
560 1.54 hannken
561 1.2 simonb wapbl_inodetrk_init(wl, WAPBL_INODETRK_SIZE);
562 1.2 simonb
563 1.87 jdolecek wapbl_evcnt_init(wl);
564 1.87 jdolecek
565 1.2 simonb /* Initialize the commit header */
566 1.2 simonb {
567 1.2 simonb struct wapbl_wc_header *wc;
568 1.14 joerg size_t len = 1 << wl->wl_log_dev_bshift;
569 1.2 simonb wc = wapbl_calloc(1, len);
570 1.2 simonb wc->wc_type = WAPBL_WC_HEADER;
571 1.2 simonb wc->wc_len = len;
572 1.2 simonb wc->wc_circ_off = wl->wl_circ_off;
573 1.2 simonb wc->wc_circ_size = wl->wl_circ_size;
574 1.2 simonb /* XXX wc->wc_fsid */
575 1.2 simonb wc->wc_log_dev_bshift = wl->wl_log_dev_bshift;
576 1.2 simonb wc->wc_fs_dev_bshift = wl->wl_fs_dev_bshift;
577 1.2 simonb wl->wl_wc_header = wc;
578 1.51 para wl->wl_wc_scratch = wapbl_alloc(len);
579 1.2 simonb }
580 1.2 simonb
581 1.2 simonb /*
582 1.2 simonb * if there was an existing set of unlinked but
583 1.2 simonb * allocated inodes, preserve it in the new
584 1.2 simonb * log.
585 1.2 simonb */
586 1.2 simonb if (wr && wr->wr_inodescnt) {
587 1.15 joerg error = wapbl_start_flush_inodes(wl, wr);
588 1.2 simonb if (error)
589 1.2 simonb goto errout;
590 1.2 simonb }
591 1.2 simonb
592 1.2 simonb error = wapbl_write_commit(wl, wl->wl_head, wl->wl_tail);
593 1.2 simonb if (error) {
594 1.2 simonb goto errout;
595 1.2 simonb }
596 1.2 simonb
597 1.2 simonb *wlp = wl;
598 1.2 simonb #if defined(WAPBL_DEBUG)
599 1.2 simonb wapbl_debug_wl = wl;
600 1.2 simonb #endif
601 1.2 simonb
602 1.2 simonb return 0;
603 1.2 simonb errout:
604 1.2 simonb wapbl_discard(wl);
605 1.18 yamt wapbl_free(wl->wl_wc_scratch, wl->wl_wc_header->wc_len);
606 1.18 yamt wapbl_free(wl->wl_wc_header, wl->wl_wc_header->wc_len);
607 1.54 hannken wapbl_free(wl->wl_buffer, MAXPHYS);
608 1.2 simonb wapbl_inodetrk_free(wl);
609 1.18 yamt wapbl_free(wl, sizeof(*wl));
610 1.2 simonb
611 1.2 simonb return error;
612 1.2 simonb }
613 1.2 simonb
614 1.2 simonb /*
615 1.2 simonb * Like wapbl_flush, only discards the transaction
616 1.2 simonb * completely
617 1.2 simonb */
618 1.2 simonb
619 1.2 simonb void
620 1.2 simonb wapbl_discard(struct wapbl *wl)
621 1.2 simonb {
622 1.2 simonb struct wapbl_entry *we;
623 1.81 jdolecek struct wapbl_dealloc *wd;
624 1.2 simonb struct buf *bp;
625 1.2 simonb int i;
626 1.2 simonb
627 1.2 simonb /*
628 1.2 simonb * XXX we may consider using upgrade here
629 1.2 simonb * if we want to call flush from inside a transaction
630 1.2 simonb */
631 1.2 simonb rw_enter(&wl->wl_rwlock, RW_WRITER);
632 1.86 jdolecek wl->wl_flush(wl->wl_mount, TAILQ_FIRST(&wl->wl_dealloclist));
633 1.2 simonb
634 1.2 simonb #ifdef WAPBL_DEBUG_PRINT
635 1.2 simonb {
636 1.2 simonb pid_t pid = -1;
637 1.2 simonb lwpid_t lid = -1;
638 1.2 simonb if (curproc)
639 1.2 simonb pid = curproc->p_pid;
640 1.2 simonb if (curlwp)
641 1.2 simonb lid = curlwp->l_lid;
642 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
643 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_DISCARD,
644 1.2 simonb ("wapbl_discard: thread %d.%d discarding "
645 1.2 simonb "transaction\n"
646 1.2 simonb "\tbufcount=%zu bufbytes=%zu bcount=%zu "
647 1.2 simonb "deallocs=%d inodes=%d\n"
648 1.2 simonb "\terrcnt = %u, reclaimable=%zu reserved=%zu "
649 1.2 simonb "unsynced=%zu\n",
650 1.2 simonb pid, lid, wl->wl_bufcount, wl->wl_bufbytes,
651 1.2 simonb wl->wl_bcount, wl->wl_dealloccnt,
652 1.2 simonb wl->wl_inohashcnt, wl->wl_error_count,
653 1.2 simonb wl->wl_reclaimable_bytes, wl->wl_reserved_bytes,
654 1.2 simonb wl->wl_unsynced_bufbytes));
655 1.2 simonb SIMPLEQ_FOREACH(we, &wl->wl_entries, we_entries) {
656 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_DISCARD,
657 1.2 simonb ("\tentry: bufcount = %zu, reclaimable = %zu, "
658 1.2 simonb "error = %d, unsynced = %zu\n",
659 1.2 simonb we->we_bufcount, we->we_reclaimable_bytes,
660 1.2 simonb we->we_error, we->we_unsynced_bufbytes));
661 1.2 simonb }
662 1.2 simonb #else /* !WAPBL_DEBUG_BUFBYTES */
663 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_DISCARD,
664 1.2 simonb ("wapbl_discard: thread %d.%d discarding transaction\n"
665 1.2 simonb "\tbufcount=%zu bufbytes=%zu bcount=%zu "
666 1.2 simonb "deallocs=%d inodes=%d\n"
667 1.2 simonb "\terrcnt = %u, reclaimable=%zu reserved=%zu\n",
668 1.2 simonb pid, lid, wl->wl_bufcount, wl->wl_bufbytes,
669 1.2 simonb wl->wl_bcount, wl->wl_dealloccnt,
670 1.2 simonb wl->wl_inohashcnt, wl->wl_error_count,
671 1.2 simonb wl->wl_reclaimable_bytes, wl->wl_reserved_bytes));
672 1.2 simonb SIMPLEQ_FOREACH(we, &wl->wl_entries, we_entries) {
673 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_DISCARD,
674 1.2 simonb ("\tentry: bufcount = %zu, reclaimable = %zu, "
675 1.2 simonb "error = %d\n",
676 1.2 simonb we->we_bufcount, we->we_reclaimable_bytes,
677 1.2 simonb we->we_error));
678 1.2 simonb }
679 1.2 simonb #endif /* !WAPBL_DEBUG_BUFBYTES */
680 1.2 simonb }
681 1.2 simonb #endif /* WAPBL_DEBUG_PRINT */
682 1.2 simonb
683 1.2 simonb for (i = 0; i <= wl->wl_inohashmask; i++) {
684 1.2 simonb struct wapbl_ino_head *wih;
685 1.2 simonb struct wapbl_ino *wi;
686 1.2 simonb
687 1.2 simonb wih = &wl->wl_inohash[i];
688 1.2 simonb while ((wi = LIST_FIRST(wih)) != NULL) {
689 1.2 simonb LIST_REMOVE(wi, wi_hash);
690 1.2 simonb pool_put(&wapbl_ino_pool, wi);
691 1.2 simonb KASSERT(wl->wl_inohashcnt > 0);
692 1.2 simonb wl->wl_inohashcnt--;
693 1.2 simonb }
694 1.2 simonb }
695 1.2 simonb
696 1.2 simonb /*
697 1.2 simonb * clean buffer list
698 1.2 simonb */
699 1.2 simonb mutex_enter(&bufcache_lock);
700 1.2 simonb mutex_enter(&wl->wl_mtx);
701 1.2 simonb while ((bp = LIST_FIRST(&wl->wl_bufs)) != NULL) {
702 1.2 simonb if (bbusy(bp, 0, 0, &wl->wl_mtx) == 0) {
703 1.2 simonb /*
704 1.2 simonb * The buffer will be unlocked and
705 1.2 simonb * removed from the transaction in brelse
706 1.2 simonb */
707 1.2 simonb mutex_exit(&wl->wl_mtx);
708 1.2 simonb brelsel(bp, 0);
709 1.2 simonb mutex_enter(&wl->wl_mtx);
710 1.2 simonb }
711 1.2 simonb }
712 1.2 simonb mutex_exit(&wl->wl_mtx);
713 1.2 simonb mutex_exit(&bufcache_lock);
714 1.2 simonb
715 1.2 simonb /*
716 1.2 simonb * Remove references to this wl from wl_entries, free any which
717 1.2 simonb * no longer have buffers, others will be freed in wapbl_biodone
718 1.2 simonb * when they no longer have any buffers.
719 1.2 simonb */
720 1.2 simonb while ((we = SIMPLEQ_FIRST(&wl->wl_entries)) != NULL) {
721 1.2 simonb SIMPLEQ_REMOVE_HEAD(&wl->wl_entries, we_entries);
722 1.2 simonb /* XXX should we be accumulating wl_error_count
723 1.2 simonb * and increasing reclaimable bytes ? */
724 1.2 simonb we->we_wapbl = NULL;
725 1.2 simonb if (we->we_bufcount == 0) {
726 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
727 1.2 simonb KASSERT(we->we_unsynced_bufbytes == 0);
728 1.2 simonb #endif
729 1.51 para pool_put(&wapbl_entry_pool, we);
730 1.2 simonb }
731 1.2 simonb }
732 1.2 simonb
733 1.2 simonb /* Discard list of deallocs */
734 1.86 jdolecek while ((wd = TAILQ_FIRST(&wl->wl_dealloclist)) != NULL)
735 1.86 jdolecek wapbl_deallocation_free(wl, wd, true);
736 1.81 jdolecek
737 1.2 simonb /* XXX should we clear wl_reserved_bytes? */
738 1.2 simonb
739 1.2 simonb KASSERT(wl->wl_bufbytes == 0);
740 1.2 simonb KASSERT(wl->wl_bcount == 0);
741 1.2 simonb KASSERT(wl->wl_bufcount == 0);
742 1.2 simonb KASSERT(LIST_EMPTY(&wl->wl_bufs));
743 1.2 simonb KASSERT(SIMPLEQ_EMPTY(&wl->wl_entries));
744 1.2 simonb KASSERT(wl->wl_inohashcnt == 0);
745 1.86 jdolecek KASSERT(TAILQ_EMPTY(&wl->wl_dealloclist));
746 1.81 jdolecek KASSERT(wl->wl_dealloccnt == 0);
747 1.2 simonb
748 1.2 simonb rw_exit(&wl->wl_rwlock);
749 1.2 simonb }
750 1.2 simonb
751 1.2 simonb int
752 1.2 simonb wapbl_stop(struct wapbl *wl, int force)
753 1.2 simonb {
754 1.2 simonb int error;
755 1.2 simonb
756 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_OPEN, ("wapbl_stop called\n"));
757 1.2 simonb error = wapbl_flush(wl, 1);
758 1.2 simonb if (error) {
759 1.2 simonb if (force)
760 1.2 simonb wapbl_discard(wl);
761 1.2 simonb else
762 1.2 simonb return error;
763 1.2 simonb }
764 1.2 simonb
765 1.2 simonb /* Unlinked inodes persist after a flush */
766 1.2 simonb if (wl->wl_inohashcnt) {
767 1.2 simonb if (force) {
768 1.2 simonb wapbl_discard(wl);
769 1.2 simonb } else {
770 1.2 simonb return EBUSY;
771 1.2 simonb }
772 1.2 simonb }
773 1.2 simonb
774 1.2 simonb KASSERT(wl->wl_bufbytes == 0);
775 1.2 simonb KASSERT(wl->wl_bcount == 0);
776 1.2 simonb KASSERT(wl->wl_bufcount == 0);
777 1.2 simonb KASSERT(LIST_EMPTY(&wl->wl_bufs));
778 1.2 simonb KASSERT(wl->wl_dealloccnt == 0);
779 1.2 simonb KASSERT(SIMPLEQ_EMPTY(&wl->wl_entries));
780 1.2 simonb KASSERT(wl->wl_inohashcnt == 0);
781 1.86 jdolecek KASSERT(TAILQ_EMPTY(&wl->wl_dealloclist));
782 1.81 jdolecek KASSERT(wl->wl_dealloccnt == 0);
783 1.2 simonb
784 1.18 yamt wapbl_free(wl->wl_wc_scratch, wl->wl_wc_header->wc_len);
785 1.18 yamt wapbl_free(wl->wl_wc_header, wl->wl_wc_header->wc_len);
786 1.54 hannken wapbl_free(wl->wl_buffer, MAXPHYS);
787 1.2 simonb wapbl_inodetrk_free(wl);
788 1.2 simonb
789 1.87 jdolecek wapbl_evcnt_free(wl);
790 1.87 jdolecek
791 1.2 simonb cv_destroy(&wl->wl_reclaimable_cv);
792 1.2 simonb mutex_destroy(&wl->wl_mtx);
793 1.2 simonb rw_destroy(&wl->wl_rwlock);
794 1.18 yamt wapbl_free(wl, sizeof(*wl));
795 1.2 simonb
796 1.2 simonb return 0;
797 1.2 simonb }
798 1.2 simonb
799 1.71 riastrad /****************************************************************/
800 1.71 riastrad /*
801 1.71 riastrad * Unbuffered disk I/O
802 1.71 riastrad */
803 1.71 riastrad
804 1.2 simonb static int
805 1.2 simonb wapbl_doio(void *data, size_t len, struct vnode *devvp, daddr_t pbn, int flags)
806 1.2 simonb {
807 1.2 simonb struct pstats *pstats = curlwp->l_proc->p_stats;
808 1.2 simonb struct buf *bp;
809 1.2 simonb int error;
810 1.2 simonb
811 1.2 simonb KASSERT((flags & ~(B_WRITE | B_READ)) == 0);
812 1.2 simonb KASSERT(devvp->v_type == VBLK);
813 1.2 simonb
814 1.2 simonb if ((flags & (B_WRITE | B_READ)) == B_WRITE) {
815 1.45 rmind mutex_enter(devvp->v_interlock);
816 1.2 simonb devvp->v_numoutput++;
817 1.45 rmind mutex_exit(devvp->v_interlock);
818 1.2 simonb pstats->p_ru.ru_oublock++;
819 1.2 simonb } else {
820 1.2 simonb pstats->p_ru.ru_inblock++;
821 1.2 simonb }
822 1.2 simonb
823 1.2 simonb bp = getiobuf(devvp, true);
824 1.2 simonb bp->b_flags = flags;
825 1.2 simonb bp->b_cflags = BC_BUSY; /* silly & dubious */
826 1.2 simonb bp->b_dev = devvp->v_rdev;
827 1.2 simonb bp->b_data = data;
828 1.2 simonb bp->b_bufsize = bp->b_resid = bp->b_bcount = len;
829 1.2 simonb bp->b_blkno = pbn;
830 1.52 chs BIO_SETPRIO(bp, BPRIO_TIMECRITICAL);
831 1.2 simonb
832 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_IO,
833 1.29 pooka ("wapbl_doio: %s %d bytes at block %"PRId64" on dev 0x%"PRIx64"\n",
834 1.2 simonb BUF_ISWRITE(bp) ? "write" : "read", bp->b_bcount,
835 1.2 simonb bp->b_blkno, bp->b_dev));
836 1.2 simonb
837 1.2 simonb VOP_STRATEGY(devvp, bp);
838 1.2 simonb
839 1.2 simonb error = biowait(bp);
840 1.2 simonb putiobuf(bp);
841 1.2 simonb
842 1.2 simonb if (error) {
843 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_ERROR,
844 1.2 simonb ("wapbl_doio: %s %zu bytes at block %" PRId64
845 1.29 pooka " on dev 0x%"PRIx64" failed with error %d\n",
846 1.2 simonb (((flags & (B_WRITE | B_READ)) == B_WRITE) ?
847 1.2 simonb "write" : "read"),
848 1.2 simonb len, pbn, devvp->v_rdev, error));
849 1.2 simonb }
850 1.2 simonb
851 1.2 simonb return error;
852 1.2 simonb }
853 1.2 simonb
854 1.71 riastrad /*
855 1.71 riastrad * wapbl_write(data, len, devvp, pbn)
856 1.71 riastrad *
857 1.71 riastrad * Synchronously write len bytes from data to physical block pbn
858 1.71 riastrad * on devvp.
859 1.71 riastrad */
860 1.2 simonb int
861 1.2 simonb wapbl_write(void *data, size_t len, struct vnode *devvp, daddr_t pbn)
862 1.2 simonb {
863 1.2 simonb
864 1.2 simonb return wapbl_doio(data, len, devvp, pbn, B_WRITE);
865 1.2 simonb }
866 1.2 simonb
867 1.71 riastrad /*
868 1.71 riastrad * wapbl_read(data, len, devvp, pbn)
869 1.71 riastrad *
870 1.71 riastrad * Synchronously read len bytes into data from physical block pbn
871 1.71 riastrad * on devvp.
872 1.71 riastrad */
873 1.2 simonb int
874 1.2 simonb wapbl_read(void *data, size_t len, struct vnode *devvp, daddr_t pbn)
875 1.2 simonb {
876 1.2 simonb
877 1.2 simonb return wapbl_doio(data, len, devvp, pbn, B_READ);
878 1.2 simonb }
879 1.2 simonb
880 1.71 riastrad /****************************************************************/
881 1.71 riastrad /*
882 1.71 riastrad * Buffered disk writes -- try to coalesce writes and emit
883 1.71 riastrad * MAXPHYS-aligned blocks.
884 1.71 riastrad */
885 1.71 riastrad
886 1.2 simonb /*
887 1.71 riastrad * wapbl_buffered_flush(wl)
888 1.71 riastrad *
889 1.71 riastrad * Flush any buffered writes from wapbl_buffered_write.
890 1.54 hannken */
891 1.54 hannken static int
892 1.54 hannken wapbl_buffered_flush(struct wapbl *wl)
893 1.54 hannken {
894 1.54 hannken int error;
895 1.54 hannken
896 1.54 hannken if (wl->wl_buffer_used == 0)
897 1.54 hannken return 0;
898 1.54 hannken
899 1.54 hannken error = wapbl_doio(wl->wl_buffer, wl->wl_buffer_used,
900 1.54 hannken wl->wl_devvp, wl->wl_buffer_dblk, B_WRITE);
901 1.54 hannken wl->wl_buffer_used = 0;
902 1.54 hannken
903 1.87 jdolecek wl->wl_ev_journalwrite.ev_count++;
904 1.87 jdolecek
905 1.54 hannken return error;
906 1.54 hannken }
907 1.54 hannken
908 1.54 hannken /*
909 1.71 riastrad * wapbl_buffered_write(data, len, wl, pbn)
910 1.71 riastrad *
911 1.71 riastrad * Write len bytes from data to physical block pbn on
912 1.71 riastrad * wl->wl_devvp. The write may not complete until
913 1.71 riastrad * wapbl_buffered_flush.
914 1.54 hannken */
915 1.54 hannken static int
916 1.54 hannken wapbl_buffered_write(void *data, size_t len, struct wapbl *wl, daddr_t pbn)
917 1.54 hannken {
918 1.54 hannken int error;
919 1.54 hannken size_t resid;
920 1.54 hannken
921 1.54 hannken /*
922 1.54 hannken * If not adjacent to buffered data flush first. Disk block
923 1.54 hannken * address is always valid for non-empty buffer.
924 1.54 hannken */
925 1.54 hannken if (wl->wl_buffer_used > 0 &&
926 1.54 hannken pbn != wl->wl_buffer_dblk + btodb(wl->wl_buffer_used)) {
927 1.54 hannken error = wapbl_buffered_flush(wl);
928 1.54 hannken if (error)
929 1.54 hannken return error;
930 1.54 hannken }
931 1.54 hannken /*
932 1.54 hannken * If this write goes to an empty buffer we have to
933 1.54 hannken * save the disk block address first.
934 1.54 hannken */
935 1.54 hannken if (wl->wl_buffer_used == 0)
936 1.54 hannken wl->wl_buffer_dblk = pbn;
937 1.54 hannken /*
938 1.54 hannken * Remaining space so this buffer ends on a MAXPHYS boundary.
939 1.54 hannken *
940 1.54 hannken * Cannot become less or equal zero as the buffer would have been
941 1.54 hannken * flushed on the last call then.
942 1.54 hannken */
943 1.54 hannken resid = MAXPHYS - dbtob(wl->wl_buffer_dblk % btodb(MAXPHYS)) -
944 1.54 hannken wl->wl_buffer_used;
945 1.54 hannken KASSERT(resid > 0);
946 1.54 hannken KASSERT(dbtob(btodb(resid)) == resid);
947 1.54 hannken if (len >= resid) {
948 1.54 hannken memcpy(wl->wl_buffer + wl->wl_buffer_used, data, resid);
949 1.54 hannken wl->wl_buffer_used += resid;
950 1.54 hannken error = wapbl_doio(wl->wl_buffer, wl->wl_buffer_used,
951 1.54 hannken wl->wl_devvp, wl->wl_buffer_dblk, B_WRITE);
952 1.54 hannken data = (uint8_t *)data + resid;
953 1.54 hannken len -= resid;
954 1.54 hannken wl->wl_buffer_dblk = pbn + btodb(resid);
955 1.54 hannken wl->wl_buffer_used = 0;
956 1.54 hannken if (error)
957 1.54 hannken return error;
958 1.54 hannken }
959 1.54 hannken KASSERT(len < MAXPHYS);
960 1.54 hannken if (len > 0) {
961 1.54 hannken memcpy(wl->wl_buffer + wl->wl_buffer_used, data, len);
962 1.54 hannken wl->wl_buffer_used += len;
963 1.54 hannken }
964 1.54 hannken
965 1.54 hannken return 0;
966 1.54 hannken }
967 1.54 hannken
968 1.54 hannken /*
969 1.71 riastrad * wapbl_circ_write(wl, data, len, offp)
970 1.71 riastrad *
971 1.71 riastrad * Write len bytes from data to the circular queue of wl, starting
972 1.71 riastrad * at linear byte offset *offp, and returning the new linear byte
973 1.71 riastrad * offset in *offp.
974 1.71 riastrad *
975 1.71 riastrad * If the starting linear byte offset precedes wl->wl_circ_off,
976 1.71 riastrad * the write instead begins at wl->wl_circ_off. XXX WTF? This
977 1.71 riastrad * should be a KASSERT, not a conditional.
978 1.71 riastrad *
979 1.71 riastrad * The write is buffered in wl and must be flushed with
980 1.71 riastrad * wapbl_buffered_flush before it will be submitted to the disk.
981 1.2 simonb */
982 1.2 simonb static int
983 1.2 simonb wapbl_circ_write(struct wapbl *wl, void *data, size_t len, off_t *offp)
984 1.2 simonb {
985 1.2 simonb size_t slen;
986 1.2 simonb off_t off = *offp;
987 1.2 simonb int error;
988 1.34 mlelstv daddr_t pbn;
989 1.2 simonb
990 1.2 simonb KDASSERT(((len >> wl->wl_log_dev_bshift) <<
991 1.2 simonb wl->wl_log_dev_bshift) == len);
992 1.2 simonb
993 1.2 simonb if (off < wl->wl_circ_off)
994 1.2 simonb off = wl->wl_circ_off;
995 1.2 simonb slen = wl->wl_circ_off + wl->wl_circ_size - off;
996 1.2 simonb if (slen < len) {
997 1.34 mlelstv pbn = wl->wl_logpbn + (off >> wl->wl_log_dev_bshift);
998 1.34 mlelstv #ifdef _KERNEL
999 1.34 mlelstv pbn = btodb(pbn << wl->wl_log_dev_bshift);
1000 1.34 mlelstv #endif
1001 1.54 hannken error = wapbl_buffered_write(data, slen, wl, pbn);
1002 1.2 simonb if (error)
1003 1.2 simonb return error;
1004 1.2 simonb data = (uint8_t *)data + slen;
1005 1.2 simonb len -= slen;
1006 1.2 simonb off = wl->wl_circ_off;
1007 1.2 simonb }
1008 1.34 mlelstv pbn = wl->wl_logpbn + (off >> wl->wl_log_dev_bshift);
1009 1.34 mlelstv #ifdef _KERNEL
1010 1.34 mlelstv pbn = btodb(pbn << wl->wl_log_dev_bshift);
1011 1.34 mlelstv #endif
1012 1.54 hannken error = wapbl_buffered_write(data, len, wl, pbn);
1013 1.2 simonb if (error)
1014 1.2 simonb return error;
1015 1.2 simonb off += len;
1016 1.2 simonb if (off >= wl->wl_circ_off + wl->wl_circ_size)
1017 1.2 simonb off = wl->wl_circ_off;
1018 1.2 simonb *offp = off;
1019 1.2 simonb return 0;
1020 1.2 simonb }
1021 1.2 simonb
1022 1.2 simonb /****************************************************************/
1023 1.71 riastrad /*
1024 1.71 riastrad * WAPBL transactions: entering, adding/removing bufs, and exiting
1025 1.71 riastrad */
1026 1.2 simonb
1027 1.2 simonb int
1028 1.2 simonb wapbl_begin(struct wapbl *wl, const char *file, int line)
1029 1.2 simonb {
1030 1.2 simonb int doflush;
1031 1.2 simonb unsigned lockcount;
1032 1.2 simonb
1033 1.2 simonb KDASSERT(wl);
1034 1.2 simonb
1035 1.2 simonb /*
1036 1.2 simonb * XXX this needs to be made much more sophisticated.
1037 1.2 simonb * perhaps each wapbl_begin could reserve a specified
1038 1.2 simonb * number of buffers and bytes.
1039 1.2 simonb */
1040 1.2 simonb mutex_enter(&wl->wl_mtx);
1041 1.2 simonb lockcount = wl->wl_lock_count;
1042 1.2 simonb doflush = ((wl->wl_bufbytes + (lockcount * MAXPHYS)) >
1043 1.2 simonb wl->wl_bufbytes_max / 2) ||
1044 1.2 simonb ((wl->wl_bufcount + (lockcount * 10)) >
1045 1.2 simonb wl->wl_bufcount_max / 2) ||
1046 1.28 pooka (wapbl_transaction_len(wl) > wl->wl_circ_size / 2) ||
1047 1.42 hannken (wl->wl_dealloccnt >= (wl->wl_dealloclim / 2));
1048 1.2 simonb mutex_exit(&wl->wl_mtx);
1049 1.2 simonb
1050 1.2 simonb if (doflush) {
1051 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_FLUSH,
1052 1.2 simonb ("force flush lockcnt=%d bufbytes=%zu "
1053 1.28 pooka "(max=%zu) bufcount=%zu (max=%zu) "
1054 1.28 pooka "dealloccnt %d (lim=%d)\n",
1055 1.2 simonb lockcount, wl->wl_bufbytes,
1056 1.2 simonb wl->wl_bufbytes_max, wl->wl_bufcount,
1057 1.28 pooka wl->wl_bufcount_max,
1058 1.28 pooka wl->wl_dealloccnt, wl->wl_dealloclim));
1059 1.2 simonb }
1060 1.2 simonb
1061 1.2 simonb if (doflush) {
1062 1.2 simonb int error = wapbl_flush(wl, 0);
1063 1.2 simonb if (error)
1064 1.2 simonb return error;
1065 1.2 simonb }
1066 1.2 simonb
1067 1.23 ad rw_enter(&wl->wl_rwlock, RW_READER);
1068 1.2 simonb mutex_enter(&wl->wl_mtx);
1069 1.2 simonb wl->wl_lock_count++;
1070 1.2 simonb mutex_exit(&wl->wl_mtx);
1071 1.2 simonb
1072 1.23 ad #if defined(WAPBL_DEBUG_PRINT)
1073 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_TRANSACTION,
1074 1.2 simonb ("wapbl_begin thread %d.%d with bufcount=%zu "
1075 1.2 simonb "bufbytes=%zu bcount=%zu at %s:%d\n",
1076 1.2 simonb curproc->p_pid, curlwp->l_lid, wl->wl_bufcount,
1077 1.2 simonb wl->wl_bufbytes, wl->wl_bcount, file, line));
1078 1.2 simonb #endif
1079 1.2 simonb
1080 1.2 simonb return 0;
1081 1.2 simonb }
1082 1.2 simonb
1083 1.2 simonb void
1084 1.2 simonb wapbl_end(struct wapbl *wl)
1085 1.2 simonb {
1086 1.2 simonb
1087 1.23 ad #if defined(WAPBL_DEBUG_PRINT)
1088 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_TRANSACTION,
1089 1.2 simonb ("wapbl_end thread %d.%d with bufcount=%zu "
1090 1.2 simonb "bufbytes=%zu bcount=%zu\n",
1091 1.2 simonb curproc->p_pid, curlwp->l_lid, wl->wl_bufcount,
1092 1.2 simonb wl->wl_bufbytes, wl->wl_bcount));
1093 1.2 simonb #endif
1094 1.2 simonb
1095 1.65 riastrad /*
1096 1.65 riastrad * XXX this could be handled more gracefully, perhaps place
1097 1.65 riastrad * only a partial transaction in the log and allow the
1098 1.65 riastrad * remaining to flush without the protection of the journal.
1099 1.65 riastrad */
1100 1.67 riastrad KASSERTMSG((wapbl_transaction_len(wl) <=
1101 1.67 riastrad (wl->wl_circ_size - wl->wl_reserved_bytes)),
1102 1.65 riastrad "wapbl_end: current transaction too big to flush");
1103 1.40 bouyer
1104 1.2 simonb mutex_enter(&wl->wl_mtx);
1105 1.2 simonb KASSERT(wl->wl_lock_count > 0);
1106 1.2 simonb wl->wl_lock_count--;
1107 1.2 simonb mutex_exit(&wl->wl_mtx);
1108 1.2 simonb
1109 1.2 simonb rw_exit(&wl->wl_rwlock);
1110 1.2 simonb }
1111 1.2 simonb
1112 1.2 simonb void
1113 1.2 simonb wapbl_add_buf(struct wapbl *wl, struct buf * bp)
1114 1.2 simonb {
1115 1.2 simonb
1116 1.2 simonb KASSERT(bp->b_cflags & BC_BUSY);
1117 1.2 simonb KASSERT(bp->b_vp);
1118 1.2 simonb
1119 1.2 simonb wapbl_jlock_assert(wl);
1120 1.2 simonb
1121 1.2 simonb #if 0
1122 1.2 simonb /*
1123 1.2 simonb * XXX this might be an issue for swapfiles.
1124 1.2 simonb * see uvm_swap.c:1702
1125 1.2 simonb *
1126 1.2 simonb * XXX2 why require it then? leap of semantics?
1127 1.2 simonb */
1128 1.2 simonb KASSERT((bp->b_cflags & BC_NOCACHE) == 0);
1129 1.2 simonb #endif
1130 1.2 simonb
1131 1.2 simonb mutex_enter(&wl->wl_mtx);
1132 1.2 simonb if (bp->b_flags & B_LOCKED) {
1133 1.2 simonb LIST_REMOVE(bp, b_wapbllist);
1134 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_BUFFER2,
1135 1.2 simonb ("wapbl_add_buf thread %d.%d re-adding buf %p "
1136 1.2 simonb "with %d bytes %d bcount\n",
1137 1.2 simonb curproc->p_pid, curlwp->l_lid, bp, bp->b_bufsize,
1138 1.2 simonb bp->b_bcount));
1139 1.2 simonb } else {
1140 1.2 simonb /* unlocked by dirty buffers shouldn't exist */
1141 1.2 simonb KASSERT(!(bp->b_oflags & BO_DELWRI));
1142 1.2 simonb wl->wl_bufbytes += bp->b_bufsize;
1143 1.2 simonb wl->wl_bcount += bp->b_bcount;
1144 1.2 simonb wl->wl_bufcount++;
1145 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_BUFFER,
1146 1.2 simonb ("wapbl_add_buf thread %d.%d adding buf %p "
1147 1.2 simonb "with %d bytes %d bcount\n",
1148 1.2 simonb curproc->p_pid, curlwp->l_lid, bp, bp->b_bufsize,
1149 1.2 simonb bp->b_bcount));
1150 1.2 simonb }
1151 1.2 simonb LIST_INSERT_HEAD(&wl->wl_bufs, bp, b_wapbllist);
1152 1.2 simonb mutex_exit(&wl->wl_mtx);
1153 1.2 simonb
1154 1.2 simonb bp->b_flags |= B_LOCKED;
1155 1.2 simonb }
1156 1.2 simonb
1157 1.2 simonb static void
1158 1.2 simonb wapbl_remove_buf_locked(struct wapbl * wl, struct buf *bp)
1159 1.2 simonb {
1160 1.2 simonb
1161 1.2 simonb KASSERT(mutex_owned(&wl->wl_mtx));
1162 1.2 simonb KASSERT(bp->b_cflags & BC_BUSY);
1163 1.2 simonb wapbl_jlock_assert(wl);
1164 1.2 simonb
1165 1.2 simonb #if 0
1166 1.2 simonb /*
1167 1.2 simonb * XXX this might be an issue for swapfiles.
1168 1.2 simonb * see uvm_swap.c:1725
1169 1.2 simonb *
1170 1.2 simonb * XXXdeux: see above
1171 1.2 simonb */
1172 1.2 simonb KASSERT((bp->b_flags & BC_NOCACHE) == 0);
1173 1.2 simonb #endif
1174 1.2 simonb KASSERT(bp->b_flags & B_LOCKED);
1175 1.2 simonb
1176 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_BUFFER,
1177 1.2 simonb ("wapbl_remove_buf thread %d.%d removing buf %p with "
1178 1.2 simonb "%d bytes %d bcount\n",
1179 1.2 simonb curproc->p_pid, curlwp->l_lid, bp, bp->b_bufsize, bp->b_bcount));
1180 1.2 simonb
1181 1.2 simonb KASSERT(wl->wl_bufbytes >= bp->b_bufsize);
1182 1.2 simonb wl->wl_bufbytes -= bp->b_bufsize;
1183 1.2 simonb KASSERT(wl->wl_bcount >= bp->b_bcount);
1184 1.2 simonb wl->wl_bcount -= bp->b_bcount;
1185 1.2 simonb KASSERT(wl->wl_bufcount > 0);
1186 1.2 simonb wl->wl_bufcount--;
1187 1.2 simonb KASSERT((wl->wl_bufcount == 0) == (wl->wl_bufbytes == 0));
1188 1.2 simonb KASSERT((wl->wl_bufcount == 0) == (wl->wl_bcount == 0));
1189 1.2 simonb LIST_REMOVE(bp, b_wapbllist);
1190 1.2 simonb
1191 1.2 simonb bp->b_flags &= ~B_LOCKED;
1192 1.2 simonb }
1193 1.2 simonb
1194 1.2 simonb /* called from brelsel() in vfs_bio among other places */
1195 1.2 simonb void
1196 1.2 simonb wapbl_remove_buf(struct wapbl * wl, struct buf *bp)
1197 1.2 simonb {
1198 1.2 simonb
1199 1.2 simonb mutex_enter(&wl->wl_mtx);
1200 1.2 simonb wapbl_remove_buf_locked(wl, bp);
1201 1.2 simonb mutex_exit(&wl->wl_mtx);
1202 1.2 simonb }
1203 1.2 simonb
1204 1.2 simonb void
1205 1.2 simonb wapbl_resize_buf(struct wapbl *wl, struct buf *bp, long oldsz, long oldcnt)
1206 1.2 simonb {
1207 1.2 simonb
1208 1.2 simonb KASSERT(bp->b_cflags & BC_BUSY);
1209 1.2 simonb
1210 1.2 simonb /*
1211 1.2 simonb * XXX: why does this depend on B_LOCKED? otherwise the buf
1212 1.2 simonb * is not for a transaction? if so, why is this called in the
1213 1.2 simonb * first place?
1214 1.2 simonb */
1215 1.2 simonb if (bp->b_flags & B_LOCKED) {
1216 1.2 simonb mutex_enter(&wl->wl_mtx);
1217 1.2 simonb wl->wl_bufbytes += bp->b_bufsize - oldsz;
1218 1.2 simonb wl->wl_bcount += bp->b_bcount - oldcnt;
1219 1.2 simonb mutex_exit(&wl->wl_mtx);
1220 1.2 simonb }
1221 1.2 simonb }
1222 1.2 simonb
1223 1.2 simonb #endif /* _KERNEL */
1224 1.2 simonb
1225 1.2 simonb /****************************************************************/
1226 1.2 simonb /* Some utility inlines */
1227 1.2 simonb
1228 1.71 riastrad /*
1229 1.71 riastrad * wapbl_space_used(avail, head, tail)
1230 1.71 riastrad *
1231 1.71 riastrad * Number of bytes used in a circular queue of avail total bytes,
1232 1.71 riastrad * from tail to head.
1233 1.71 riastrad */
1234 1.56 joerg static inline size_t
1235 1.56 joerg wapbl_space_used(size_t avail, off_t head, off_t tail)
1236 1.56 joerg {
1237 1.56 joerg
1238 1.56 joerg if (tail == 0) {
1239 1.56 joerg KASSERT(head == 0);
1240 1.56 joerg return 0;
1241 1.56 joerg }
1242 1.56 joerg return ((head + (avail - 1) - tail) % avail) + 1;
1243 1.56 joerg }
1244 1.56 joerg
1245 1.56 joerg #ifdef _KERNEL
1246 1.71 riastrad /*
1247 1.71 riastrad * wapbl_advance(size, off, oldoff, delta)
1248 1.71 riastrad *
1249 1.71 riastrad * Given a byte offset oldoff into a circular queue of size bytes
1250 1.71 riastrad * starting at off, return a new byte offset oldoff + delta into
1251 1.71 riastrad * the circular queue.
1252 1.71 riastrad */
1253 1.30 uebayasi static inline off_t
1254 1.60 matt wapbl_advance(size_t size, size_t off, off_t oldoff, size_t delta)
1255 1.2 simonb {
1256 1.60 matt off_t newoff;
1257 1.2 simonb
1258 1.2 simonb /* Define acceptable ranges for inputs. */
1259 1.46 christos KASSERT(delta <= (size_t)size);
1260 1.60 matt KASSERT((oldoff == 0) || ((size_t)oldoff >= off));
1261 1.60 matt KASSERT(oldoff < (off_t)(size + off));
1262 1.2 simonb
1263 1.60 matt if ((oldoff == 0) && (delta != 0))
1264 1.60 matt newoff = off + delta;
1265 1.60 matt else if ((oldoff + delta) < (size + off))
1266 1.60 matt newoff = oldoff + delta;
1267 1.2 simonb else
1268 1.60 matt newoff = (oldoff + delta) - size;
1269 1.2 simonb
1270 1.2 simonb /* Note some interesting axioms */
1271 1.60 matt KASSERT((delta != 0) || (newoff == oldoff));
1272 1.60 matt KASSERT((delta == 0) || (newoff != 0));
1273 1.60 matt KASSERT((delta != (size)) || (newoff == oldoff));
1274 1.2 simonb
1275 1.2 simonb /* Define acceptable ranges for output. */
1276 1.60 matt KASSERT((newoff == 0) || ((size_t)newoff >= off));
1277 1.60 matt KASSERT((size_t)newoff < (size + off));
1278 1.60 matt return newoff;
1279 1.2 simonb }
1280 1.2 simonb
1281 1.71 riastrad /*
1282 1.71 riastrad * wapbl_space_free(avail, head, tail)
1283 1.71 riastrad *
1284 1.71 riastrad * Number of bytes free in a circular queue of avail total bytes,
1285 1.71 riastrad * in which everything from tail to head is used.
1286 1.71 riastrad */
1287 1.30 uebayasi static inline size_t
1288 1.2 simonb wapbl_space_free(size_t avail, off_t head, off_t tail)
1289 1.2 simonb {
1290 1.2 simonb
1291 1.2 simonb return avail - wapbl_space_used(avail, head, tail);
1292 1.2 simonb }
1293 1.2 simonb
1294 1.71 riastrad /*
1295 1.71 riastrad * wapbl_advance_head(size, off, delta, headp, tailp)
1296 1.71 riastrad *
1297 1.71 riastrad * In a circular queue of size bytes starting at off, given the
1298 1.71 riastrad * old head and tail offsets *headp and *tailp, store the new head
1299 1.71 riastrad * and tail offsets in *headp and *tailp resulting from adding
1300 1.71 riastrad * delta bytes of data to the head.
1301 1.71 riastrad */
1302 1.30 uebayasi static inline void
1303 1.2 simonb wapbl_advance_head(size_t size, size_t off, size_t delta, off_t *headp,
1304 1.2 simonb off_t *tailp)
1305 1.2 simonb {
1306 1.2 simonb off_t head = *headp;
1307 1.2 simonb off_t tail = *tailp;
1308 1.2 simonb
1309 1.2 simonb KASSERT(delta <= wapbl_space_free(size, head, tail));
1310 1.2 simonb head = wapbl_advance(size, off, head, delta);
1311 1.2 simonb if ((tail == 0) && (head != 0))
1312 1.2 simonb tail = off;
1313 1.2 simonb *headp = head;
1314 1.2 simonb *tailp = tail;
1315 1.2 simonb }
1316 1.2 simonb
1317 1.71 riastrad /*
1318 1.71 riastrad * wapbl_advance_tail(size, off, delta, headp, tailp)
1319 1.71 riastrad *
1320 1.71 riastrad * In a circular queue of size bytes starting at off, given the
1321 1.71 riastrad * old head and tail offsets *headp and *tailp, store the new head
1322 1.71 riastrad * and tail offsets in *headp and *tailp resulting from removing
1323 1.71 riastrad * delta bytes of data from the tail.
1324 1.71 riastrad */
1325 1.30 uebayasi static inline void
1326 1.2 simonb wapbl_advance_tail(size_t size, size_t off, size_t delta, off_t *headp,
1327 1.2 simonb off_t *tailp)
1328 1.2 simonb {
1329 1.2 simonb off_t head = *headp;
1330 1.2 simonb off_t tail = *tailp;
1331 1.2 simonb
1332 1.2 simonb KASSERT(delta <= wapbl_space_used(size, head, tail));
1333 1.2 simonb tail = wapbl_advance(size, off, tail, delta);
1334 1.2 simonb if (head == tail) {
1335 1.2 simonb head = tail = 0;
1336 1.2 simonb }
1337 1.2 simonb *headp = head;
1338 1.2 simonb *tailp = tail;
1339 1.2 simonb }
1340 1.2 simonb
1341 1.2 simonb
1342 1.2 simonb /****************************************************************/
1343 1.2 simonb
1344 1.2 simonb /*
1345 1.73 riastrad * wapbl_truncate(wl, minfree)
1346 1.71 riastrad *
1347 1.71 riastrad * Wait until at least minfree bytes are available in the log.
1348 1.71 riastrad *
1349 1.73 riastrad * If it was necessary to wait for writes to complete,
1350 1.73 riastrad * advance the circular queue tail to reflect the new write
1351 1.73 riastrad * completions and issue a write commit to the log.
1352 1.71 riastrad *
1353 1.71 riastrad * => Caller must hold wl->wl_rwlock writer lock.
1354 1.2 simonb */
1355 1.2 simonb static int
1356 1.73 riastrad wapbl_truncate(struct wapbl *wl, size_t minfree)
1357 1.2 simonb {
1358 1.2 simonb size_t delta;
1359 1.2 simonb size_t avail;
1360 1.2 simonb off_t head;
1361 1.2 simonb off_t tail;
1362 1.2 simonb int error = 0;
1363 1.2 simonb
1364 1.2 simonb KASSERT(minfree <= (wl->wl_circ_size - wl->wl_reserved_bytes));
1365 1.2 simonb KASSERT(rw_write_held(&wl->wl_rwlock));
1366 1.2 simonb
1367 1.2 simonb mutex_enter(&wl->wl_mtx);
1368 1.2 simonb
1369 1.2 simonb /*
1370 1.2 simonb * First check to see if we have to do a commit
1371 1.2 simonb * at all.
1372 1.2 simonb */
1373 1.2 simonb avail = wapbl_space_free(wl->wl_circ_size, wl->wl_head, wl->wl_tail);
1374 1.2 simonb if (minfree < avail) {
1375 1.2 simonb mutex_exit(&wl->wl_mtx);
1376 1.2 simonb return 0;
1377 1.2 simonb }
1378 1.2 simonb minfree -= avail;
1379 1.2 simonb while ((wl->wl_error_count == 0) &&
1380 1.2 simonb (wl->wl_reclaimable_bytes < minfree)) {
1381 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_TRUNCATE,
1382 1.2 simonb ("wapbl_truncate: sleeping on %p wl=%p bytes=%zd "
1383 1.2 simonb "minfree=%zd\n",
1384 1.2 simonb &wl->wl_reclaimable_bytes, wl, wl->wl_reclaimable_bytes,
1385 1.2 simonb minfree));
1386 1.2 simonb
1387 1.2 simonb cv_wait(&wl->wl_reclaimable_cv, &wl->wl_mtx);
1388 1.2 simonb }
1389 1.2 simonb if (wl->wl_reclaimable_bytes < minfree) {
1390 1.2 simonb KASSERT(wl->wl_error_count);
1391 1.2 simonb /* XXX maybe get actual error from buffer instead someday? */
1392 1.2 simonb error = EIO;
1393 1.2 simonb }
1394 1.2 simonb head = wl->wl_head;
1395 1.2 simonb tail = wl->wl_tail;
1396 1.2 simonb delta = wl->wl_reclaimable_bytes;
1397 1.2 simonb
1398 1.2 simonb /* If all of of the entries are flushed, then be sure to keep
1399 1.2 simonb * the reserved bytes reserved. Watch out for discarded transactions,
1400 1.2 simonb * which could leave more bytes reserved than are reclaimable.
1401 1.2 simonb */
1402 1.2 simonb if (SIMPLEQ_EMPTY(&wl->wl_entries) &&
1403 1.2 simonb (delta >= wl->wl_reserved_bytes)) {
1404 1.2 simonb delta -= wl->wl_reserved_bytes;
1405 1.2 simonb }
1406 1.2 simonb wapbl_advance_tail(wl->wl_circ_size, wl->wl_circ_off, delta, &head,
1407 1.2 simonb &tail);
1408 1.2 simonb KDASSERT(wl->wl_reserved_bytes <=
1409 1.2 simonb wapbl_space_used(wl->wl_circ_size, head, tail));
1410 1.2 simonb mutex_exit(&wl->wl_mtx);
1411 1.2 simonb
1412 1.2 simonb if (error)
1413 1.2 simonb return error;
1414 1.2 simonb
1415 1.2 simonb /*
1416 1.2 simonb * This is where head, tail and delta are unprotected
1417 1.2 simonb * from races against itself or flush. This is ok since
1418 1.2 simonb * we only call this routine from inside flush itself.
1419 1.2 simonb *
1420 1.2 simonb * XXX: how can it race against itself when accessed only
1421 1.2 simonb * from behind the write-locked rwlock?
1422 1.2 simonb */
1423 1.2 simonb error = wapbl_write_commit(wl, head, tail);
1424 1.2 simonb if (error)
1425 1.2 simonb return error;
1426 1.2 simonb
1427 1.2 simonb wl->wl_head = head;
1428 1.2 simonb wl->wl_tail = tail;
1429 1.2 simonb
1430 1.2 simonb mutex_enter(&wl->wl_mtx);
1431 1.2 simonb KASSERT(wl->wl_reclaimable_bytes >= delta);
1432 1.2 simonb wl->wl_reclaimable_bytes -= delta;
1433 1.2 simonb mutex_exit(&wl->wl_mtx);
1434 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_TRUNCATE,
1435 1.2 simonb ("wapbl_truncate thread %d.%d truncating %zu bytes\n",
1436 1.2 simonb curproc->p_pid, curlwp->l_lid, delta));
1437 1.2 simonb
1438 1.2 simonb return 0;
1439 1.2 simonb }
1440 1.2 simonb
1441 1.2 simonb /****************************************************************/
1442 1.2 simonb
1443 1.2 simonb void
1444 1.2 simonb wapbl_biodone(struct buf *bp)
1445 1.2 simonb {
1446 1.2 simonb struct wapbl_entry *we = bp->b_private;
1447 1.2 simonb struct wapbl *wl = we->we_wapbl;
1448 1.53 hannken #ifdef WAPBL_DEBUG_BUFBYTES
1449 1.53 hannken const int bufsize = bp->b_bufsize;
1450 1.53 hannken #endif
1451 1.2 simonb
1452 1.2 simonb /*
1453 1.2 simonb * Handle possible flushing of buffers after log has been
1454 1.2 simonb * decomissioned.
1455 1.2 simonb */
1456 1.2 simonb if (!wl) {
1457 1.2 simonb KASSERT(we->we_bufcount > 0);
1458 1.2 simonb we->we_bufcount--;
1459 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
1460 1.53 hannken KASSERT(we->we_unsynced_bufbytes >= bufsize);
1461 1.53 hannken we->we_unsynced_bufbytes -= bufsize;
1462 1.2 simonb #endif
1463 1.2 simonb
1464 1.2 simonb if (we->we_bufcount == 0) {
1465 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
1466 1.2 simonb KASSERT(we->we_unsynced_bufbytes == 0);
1467 1.2 simonb #endif
1468 1.51 para pool_put(&wapbl_entry_pool, we);
1469 1.2 simonb }
1470 1.2 simonb
1471 1.2 simonb brelse(bp, 0);
1472 1.2 simonb return;
1473 1.2 simonb }
1474 1.2 simonb
1475 1.2 simonb #ifdef ohbother
1476 1.44 uebayasi KDASSERT(bp->b_oflags & BO_DONE);
1477 1.44 uebayasi KDASSERT(!(bp->b_oflags & BO_DELWRI));
1478 1.2 simonb KDASSERT(bp->b_flags & B_ASYNC);
1479 1.44 uebayasi KDASSERT(bp->b_cflags & BC_BUSY);
1480 1.2 simonb KDASSERT(!(bp->b_flags & B_LOCKED));
1481 1.2 simonb KDASSERT(!(bp->b_flags & B_READ));
1482 1.44 uebayasi KDASSERT(!(bp->b_cflags & BC_INVAL));
1483 1.44 uebayasi KDASSERT(!(bp->b_cflags & BC_NOCACHE));
1484 1.2 simonb #endif
1485 1.2 simonb
1486 1.2 simonb if (bp->b_error) {
1487 1.26 apb /*
1488 1.78 riastrad * If an error occurs, it would be nice to leave the buffer
1489 1.78 riastrad * as a delayed write on the LRU queue so that we can retry
1490 1.78 riastrad * it later. But buffercache(9) can't handle dirty buffer
1491 1.78 riastrad * reuse, so just mark the log permanently errored out.
1492 1.26 apb */
1493 1.2 simonb mutex_enter(&wl->wl_mtx);
1494 1.2 simonb if (wl->wl_error_count == 0) {
1495 1.2 simonb wl->wl_error_count++;
1496 1.2 simonb cv_broadcast(&wl->wl_reclaimable_cv);
1497 1.2 simonb }
1498 1.2 simonb mutex_exit(&wl->wl_mtx);
1499 1.2 simonb }
1500 1.2 simonb
1501 1.53 hannken /*
1502 1.53 hannken * Release the buffer here. wapbl_flush() may wait for the
1503 1.53 hannken * log to become empty and we better unbusy the buffer before
1504 1.53 hannken * wapbl_flush() returns.
1505 1.53 hannken */
1506 1.53 hannken brelse(bp, 0);
1507 1.53 hannken
1508 1.2 simonb mutex_enter(&wl->wl_mtx);
1509 1.2 simonb
1510 1.2 simonb KASSERT(we->we_bufcount > 0);
1511 1.2 simonb we->we_bufcount--;
1512 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
1513 1.53 hannken KASSERT(we->we_unsynced_bufbytes >= bufsize);
1514 1.53 hannken we->we_unsynced_bufbytes -= bufsize;
1515 1.53 hannken KASSERT(wl->wl_unsynced_bufbytes >= bufsize);
1516 1.53 hannken wl->wl_unsynced_bufbytes -= bufsize;
1517 1.2 simonb #endif
1518 1.87 jdolecek wl->wl_ev_metawrite.ev_count++;
1519 1.2 simonb
1520 1.2 simonb /*
1521 1.2 simonb * If the current transaction can be reclaimed, start
1522 1.2 simonb * at the beginning and reclaim any consecutive reclaimable
1523 1.2 simonb * transactions. If we successfully reclaim anything,
1524 1.2 simonb * then wakeup anyone waiting for the reclaim.
1525 1.2 simonb */
1526 1.2 simonb if (we->we_bufcount == 0) {
1527 1.2 simonb size_t delta = 0;
1528 1.2 simonb int errcnt = 0;
1529 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
1530 1.2 simonb KDASSERT(we->we_unsynced_bufbytes == 0);
1531 1.2 simonb #endif
1532 1.2 simonb /*
1533 1.2 simonb * clear any posted error, since the buffer it came from
1534 1.2 simonb * has successfully flushed by now
1535 1.2 simonb */
1536 1.2 simonb while ((we = SIMPLEQ_FIRST(&wl->wl_entries)) &&
1537 1.2 simonb (we->we_bufcount == 0)) {
1538 1.2 simonb delta += we->we_reclaimable_bytes;
1539 1.2 simonb if (we->we_error)
1540 1.2 simonb errcnt++;
1541 1.2 simonb SIMPLEQ_REMOVE_HEAD(&wl->wl_entries, we_entries);
1542 1.51 para pool_put(&wapbl_entry_pool, we);
1543 1.2 simonb }
1544 1.2 simonb
1545 1.2 simonb if (delta) {
1546 1.2 simonb wl->wl_reclaimable_bytes += delta;
1547 1.2 simonb KASSERT(wl->wl_error_count >= errcnt);
1548 1.2 simonb wl->wl_error_count -= errcnt;
1549 1.2 simonb cv_broadcast(&wl->wl_reclaimable_cv);
1550 1.2 simonb }
1551 1.2 simonb }
1552 1.2 simonb
1553 1.2 simonb mutex_exit(&wl->wl_mtx);
1554 1.2 simonb }
1555 1.2 simonb
1556 1.2 simonb /*
1557 1.71 riastrad * wapbl_flush(wl, wait)
1558 1.71 riastrad *
1559 1.71 riastrad * Flush pending block writes, deallocations, and inodes from
1560 1.71 riastrad * the current transaction in memory to the log on disk:
1561 1.71 riastrad *
1562 1.71 riastrad * 1. Call the file system's wl_flush callback to flush any
1563 1.71 riastrad * per-file-system pending updates.
1564 1.71 riastrad * 2. Wait for enough space in the log for the current transaction.
1565 1.71 riastrad * 3. Synchronously write the new log records, advancing the
1566 1.71 riastrad * circular queue head.
1567 1.77 riastrad * 4. Issue the pending block writes asynchronously, now that they
1568 1.77 riastrad * are recorded in the log and can be replayed after crash.
1569 1.77 riastrad * 5. If wait is true, wait for all writes to complete and for the
1570 1.77 riastrad * log to become empty.
1571 1.71 riastrad *
1572 1.71 riastrad * On failure, call the file system's wl_flush_abort callback.
1573 1.2 simonb */
1574 1.2 simonb int
1575 1.2 simonb wapbl_flush(struct wapbl *wl, int waitfor)
1576 1.2 simonb {
1577 1.2 simonb struct buf *bp;
1578 1.2 simonb struct wapbl_entry *we;
1579 1.2 simonb off_t off;
1580 1.2 simonb off_t head;
1581 1.2 simonb off_t tail;
1582 1.2 simonb size_t delta = 0;
1583 1.2 simonb size_t flushsize;
1584 1.2 simonb size_t reserved;
1585 1.2 simonb int error = 0;
1586 1.2 simonb
1587 1.2 simonb /*
1588 1.2 simonb * Do a quick check to see if a full flush can be skipped
1589 1.2 simonb * This assumes that the flush callback does not need to be called
1590 1.2 simonb * unless there are other outstanding bufs.
1591 1.2 simonb */
1592 1.2 simonb if (!waitfor) {
1593 1.2 simonb size_t nbufs;
1594 1.2 simonb mutex_enter(&wl->wl_mtx); /* XXX need mutex here to
1595 1.2 simonb protect the KASSERTS */
1596 1.2 simonb nbufs = wl->wl_bufcount;
1597 1.2 simonb KASSERT((wl->wl_bufcount == 0) == (wl->wl_bufbytes == 0));
1598 1.2 simonb KASSERT((wl->wl_bufcount == 0) == (wl->wl_bcount == 0));
1599 1.2 simonb mutex_exit(&wl->wl_mtx);
1600 1.2 simonb if (nbufs == 0)
1601 1.2 simonb return 0;
1602 1.2 simonb }
1603 1.2 simonb
1604 1.2 simonb /*
1605 1.2 simonb * XXX we may consider using LK_UPGRADE here
1606 1.2 simonb * if we want to call flush from inside a transaction
1607 1.2 simonb */
1608 1.2 simonb rw_enter(&wl->wl_rwlock, RW_WRITER);
1609 1.86 jdolecek wl->wl_flush(wl->wl_mount, TAILQ_FIRST(&wl->wl_dealloclist));
1610 1.2 simonb
1611 1.2 simonb /*
1612 1.75 riastrad * Now that we are exclusively locked and the file system has
1613 1.75 riastrad * issued any deferred block writes for this transaction, check
1614 1.75 riastrad * whether there are any blocks to write to the log. If not,
1615 1.75 riastrad * skip waiting for space or writing any log entries.
1616 1.75 riastrad *
1617 1.75 riastrad * XXX Shouldn't this also check wl_dealloccnt and
1618 1.75 riastrad * wl_inohashcnt? Perhaps wl_dealloccnt doesn't matter if the
1619 1.75 riastrad * file system didn't produce any blocks as a consequence of
1620 1.75 riastrad * it, but the same does not seem to be so of wl_inohashcnt.
1621 1.2 simonb */
1622 1.2 simonb if (wl->wl_bufcount == 0) {
1623 1.69 riastrad goto wait_out;
1624 1.2 simonb }
1625 1.2 simonb
1626 1.2 simonb #if 0
1627 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_FLUSH,
1628 1.2 simonb ("wapbl_flush thread %d.%d flushing entries with "
1629 1.2 simonb "bufcount=%zu bufbytes=%zu\n",
1630 1.2 simonb curproc->p_pid, curlwp->l_lid, wl->wl_bufcount,
1631 1.2 simonb wl->wl_bufbytes));
1632 1.2 simonb #endif
1633 1.2 simonb
1634 1.2 simonb /* Calculate amount of space needed to flush */
1635 1.2 simonb flushsize = wapbl_transaction_len(wl);
1636 1.39 christos if (wapbl_verbose_commit) {
1637 1.39 christos struct timespec ts;
1638 1.39 christos getnanotime(&ts);
1639 1.43 nakayama printf("%s: %lld.%09ld this transaction = %zu bytes\n",
1640 1.39 christos __func__, (long long)ts.tv_sec,
1641 1.39 christos (long)ts.tv_nsec, flushsize);
1642 1.39 christos }
1643 1.2 simonb
1644 1.2 simonb if (flushsize > (wl->wl_circ_size - wl->wl_reserved_bytes)) {
1645 1.2 simonb /*
1646 1.2 simonb * XXX this could be handled more gracefully, perhaps place
1647 1.2 simonb * only a partial transaction in the log and allow the
1648 1.2 simonb * remaining to flush without the protection of the journal.
1649 1.2 simonb */
1650 1.66 riastrad panic("wapbl_flush: current transaction too big to flush");
1651 1.2 simonb }
1652 1.2 simonb
1653 1.73 riastrad error = wapbl_truncate(wl, flushsize);
1654 1.2 simonb if (error)
1655 1.69 riastrad goto out;
1656 1.2 simonb
1657 1.2 simonb off = wl->wl_head;
1658 1.70 riastrad KASSERT((off == 0) || (off >= wl->wl_circ_off));
1659 1.70 riastrad KASSERT((off == 0) || (off < wl->wl_circ_off + wl->wl_circ_size));
1660 1.2 simonb error = wapbl_write_blocks(wl, &off);
1661 1.2 simonb if (error)
1662 1.69 riastrad goto out;
1663 1.2 simonb error = wapbl_write_revocations(wl, &off);
1664 1.2 simonb if (error)
1665 1.69 riastrad goto out;
1666 1.2 simonb error = wapbl_write_inodes(wl, &off);
1667 1.2 simonb if (error)
1668 1.69 riastrad goto out;
1669 1.2 simonb
1670 1.2 simonb reserved = 0;
1671 1.2 simonb if (wl->wl_inohashcnt)
1672 1.2 simonb reserved = wapbl_transaction_inodes_len(wl);
1673 1.2 simonb
1674 1.2 simonb head = wl->wl_head;
1675 1.2 simonb tail = wl->wl_tail;
1676 1.2 simonb
1677 1.2 simonb wapbl_advance_head(wl->wl_circ_size, wl->wl_circ_off, flushsize,
1678 1.2 simonb &head, &tail);
1679 1.72 riastrad
1680 1.72 riastrad KASSERTMSG(head == off,
1681 1.72 riastrad "lost head! head=%"PRIdMAX" tail=%" PRIdMAX
1682 1.72 riastrad " off=%"PRIdMAX" flush=%zu",
1683 1.72 riastrad (intmax_t)head, (intmax_t)tail, (intmax_t)off,
1684 1.72 riastrad flushsize);
1685 1.2 simonb
1686 1.2 simonb /* Opportunistically move the tail forward if we can */
1687 1.73 riastrad mutex_enter(&wl->wl_mtx);
1688 1.73 riastrad delta = wl->wl_reclaimable_bytes;
1689 1.73 riastrad mutex_exit(&wl->wl_mtx);
1690 1.73 riastrad wapbl_advance_tail(wl->wl_circ_size, wl->wl_circ_off, delta,
1691 1.73 riastrad &head, &tail);
1692 1.2 simonb
1693 1.2 simonb error = wapbl_write_commit(wl, head, tail);
1694 1.2 simonb if (error)
1695 1.69 riastrad goto out;
1696 1.2 simonb
1697 1.51 para we = pool_get(&wapbl_entry_pool, PR_WAITOK);
1698 1.2 simonb
1699 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
1700 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_FLUSH,
1701 1.2 simonb ("wapbl_flush: thread %d.%d head+=%zu tail+=%zu used=%zu"
1702 1.2 simonb " unsynced=%zu"
1703 1.2 simonb "\n\tbufcount=%zu bufbytes=%zu bcount=%zu deallocs=%d "
1704 1.2 simonb "inodes=%d\n",
1705 1.2 simonb curproc->p_pid, curlwp->l_lid, flushsize, delta,
1706 1.2 simonb wapbl_space_used(wl->wl_circ_size, head, tail),
1707 1.2 simonb wl->wl_unsynced_bufbytes, wl->wl_bufcount,
1708 1.2 simonb wl->wl_bufbytes, wl->wl_bcount, wl->wl_dealloccnt,
1709 1.2 simonb wl->wl_inohashcnt));
1710 1.2 simonb #else
1711 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_FLUSH,
1712 1.2 simonb ("wapbl_flush: thread %d.%d head+=%zu tail+=%zu used=%zu"
1713 1.2 simonb "\n\tbufcount=%zu bufbytes=%zu bcount=%zu deallocs=%d "
1714 1.2 simonb "inodes=%d\n",
1715 1.2 simonb curproc->p_pid, curlwp->l_lid, flushsize, delta,
1716 1.2 simonb wapbl_space_used(wl->wl_circ_size, head, tail),
1717 1.2 simonb wl->wl_bufcount, wl->wl_bufbytes, wl->wl_bcount,
1718 1.2 simonb wl->wl_dealloccnt, wl->wl_inohashcnt));
1719 1.2 simonb #endif
1720 1.2 simonb
1721 1.2 simonb
1722 1.2 simonb mutex_enter(&bufcache_lock);
1723 1.2 simonb mutex_enter(&wl->wl_mtx);
1724 1.2 simonb
1725 1.2 simonb wl->wl_reserved_bytes = reserved;
1726 1.2 simonb wl->wl_head = head;
1727 1.2 simonb wl->wl_tail = tail;
1728 1.2 simonb KASSERT(wl->wl_reclaimable_bytes >= delta);
1729 1.2 simonb wl->wl_reclaimable_bytes -= delta;
1730 1.81 jdolecek KDASSERT(wl->wl_dealloccnt == 0);
1731 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
1732 1.2 simonb wl->wl_unsynced_bufbytes += wl->wl_bufbytes;
1733 1.2 simonb #endif
1734 1.2 simonb
1735 1.2 simonb we->we_wapbl = wl;
1736 1.2 simonb we->we_bufcount = wl->wl_bufcount;
1737 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
1738 1.2 simonb we->we_unsynced_bufbytes = wl->wl_bufbytes;
1739 1.2 simonb #endif
1740 1.2 simonb we->we_reclaimable_bytes = flushsize;
1741 1.2 simonb we->we_error = 0;
1742 1.2 simonb SIMPLEQ_INSERT_TAIL(&wl->wl_entries, we, we_entries);
1743 1.2 simonb
1744 1.2 simonb /*
1745 1.2 simonb * this flushes bufs in reverse order than they were queued
1746 1.2 simonb * it shouldn't matter, but if we care we could use TAILQ instead.
1747 1.2 simonb * XXX Note they will get put on the lru queue when they flush
1748 1.2 simonb * so we might actually want to change this to preserve order.
1749 1.2 simonb */
1750 1.2 simonb while ((bp = LIST_FIRST(&wl->wl_bufs)) != NULL) {
1751 1.2 simonb if (bbusy(bp, 0, 0, &wl->wl_mtx)) {
1752 1.2 simonb continue;
1753 1.2 simonb }
1754 1.2 simonb bp->b_iodone = wapbl_biodone;
1755 1.2 simonb bp->b_private = we;
1756 1.2 simonb bremfree(bp);
1757 1.2 simonb wapbl_remove_buf_locked(wl, bp);
1758 1.2 simonb mutex_exit(&wl->wl_mtx);
1759 1.2 simonb mutex_exit(&bufcache_lock);
1760 1.2 simonb bawrite(bp);
1761 1.2 simonb mutex_enter(&bufcache_lock);
1762 1.2 simonb mutex_enter(&wl->wl_mtx);
1763 1.2 simonb }
1764 1.2 simonb mutex_exit(&wl->wl_mtx);
1765 1.2 simonb mutex_exit(&bufcache_lock);
1766 1.2 simonb
1767 1.2 simonb #if 0
1768 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_FLUSH,
1769 1.2 simonb ("wapbl_flush thread %d.%d done flushing entries...\n",
1770 1.2 simonb curproc->p_pid, curlwp->l_lid));
1771 1.2 simonb #endif
1772 1.2 simonb
1773 1.69 riastrad wait_out:
1774 1.2 simonb
1775 1.2 simonb /*
1776 1.2 simonb * If the waitfor flag is set, don't return until everything is
1777 1.2 simonb * fully flushed and the on disk log is empty.
1778 1.2 simonb */
1779 1.2 simonb if (waitfor) {
1780 1.2 simonb error = wapbl_truncate(wl, wl->wl_circ_size -
1781 1.73 riastrad wl->wl_reserved_bytes);
1782 1.2 simonb }
1783 1.2 simonb
1784 1.69 riastrad out:
1785 1.2 simonb if (error) {
1786 1.81 jdolecek wl->wl_flush_abort(wl->wl_mount,
1787 1.86 jdolecek TAILQ_FIRST(&wl->wl_dealloclist));
1788 1.2 simonb }
1789 1.2 simonb
1790 1.2 simonb #ifdef WAPBL_DEBUG_PRINT
1791 1.2 simonb if (error) {
1792 1.2 simonb pid_t pid = -1;
1793 1.2 simonb lwpid_t lid = -1;
1794 1.2 simonb if (curproc)
1795 1.2 simonb pid = curproc->p_pid;
1796 1.2 simonb if (curlwp)
1797 1.2 simonb lid = curlwp->l_lid;
1798 1.2 simonb mutex_enter(&wl->wl_mtx);
1799 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
1800 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_ERROR,
1801 1.2 simonb ("wapbl_flush: thread %d.%d aborted flush: "
1802 1.2 simonb "error = %d\n"
1803 1.2 simonb "\tbufcount=%zu bufbytes=%zu bcount=%zu "
1804 1.2 simonb "deallocs=%d inodes=%d\n"
1805 1.2 simonb "\terrcnt = %d, reclaimable=%zu reserved=%zu "
1806 1.2 simonb "unsynced=%zu\n",
1807 1.2 simonb pid, lid, error, wl->wl_bufcount,
1808 1.2 simonb wl->wl_bufbytes, wl->wl_bcount,
1809 1.2 simonb wl->wl_dealloccnt, wl->wl_inohashcnt,
1810 1.2 simonb wl->wl_error_count, wl->wl_reclaimable_bytes,
1811 1.2 simonb wl->wl_reserved_bytes, wl->wl_unsynced_bufbytes));
1812 1.2 simonb SIMPLEQ_FOREACH(we, &wl->wl_entries, we_entries) {
1813 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_ERROR,
1814 1.2 simonb ("\tentry: bufcount = %zu, reclaimable = %zu, "
1815 1.2 simonb "error = %d, unsynced = %zu\n",
1816 1.2 simonb we->we_bufcount, we->we_reclaimable_bytes,
1817 1.2 simonb we->we_error, we->we_unsynced_bufbytes));
1818 1.2 simonb }
1819 1.2 simonb #else
1820 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_ERROR,
1821 1.2 simonb ("wapbl_flush: thread %d.%d aborted flush: "
1822 1.2 simonb "error = %d\n"
1823 1.2 simonb "\tbufcount=%zu bufbytes=%zu bcount=%zu "
1824 1.2 simonb "deallocs=%d inodes=%d\n"
1825 1.2 simonb "\terrcnt = %d, reclaimable=%zu reserved=%zu\n",
1826 1.2 simonb pid, lid, error, wl->wl_bufcount,
1827 1.2 simonb wl->wl_bufbytes, wl->wl_bcount,
1828 1.2 simonb wl->wl_dealloccnt, wl->wl_inohashcnt,
1829 1.2 simonb wl->wl_error_count, wl->wl_reclaimable_bytes,
1830 1.2 simonb wl->wl_reserved_bytes));
1831 1.2 simonb SIMPLEQ_FOREACH(we, &wl->wl_entries, we_entries) {
1832 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_ERROR,
1833 1.2 simonb ("\tentry: bufcount = %zu, reclaimable = %zu, "
1834 1.2 simonb "error = %d\n", we->we_bufcount,
1835 1.2 simonb we->we_reclaimable_bytes, we->we_error));
1836 1.2 simonb }
1837 1.2 simonb #endif
1838 1.2 simonb mutex_exit(&wl->wl_mtx);
1839 1.2 simonb }
1840 1.2 simonb #endif
1841 1.2 simonb
1842 1.2 simonb rw_exit(&wl->wl_rwlock);
1843 1.2 simonb return error;
1844 1.2 simonb }
1845 1.2 simonb
1846 1.2 simonb /****************************************************************/
1847 1.2 simonb
1848 1.2 simonb void
1849 1.2 simonb wapbl_jlock_assert(struct wapbl *wl)
1850 1.2 simonb {
1851 1.2 simonb
1852 1.23 ad KASSERT(rw_lock_held(&wl->wl_rwlock));
1853 1.2 simonb }
1854 1.2 simonb
1855 1.2 simonb void
1856 1.2 simonb wapbl_junlock_assert(struct wapbl *wl)
1857 1.2 simonb {
1858 1.2 simonb
1859 1.2 simonb KASSERT(!rw_write_held(&wl->wl_rwlock));
1860 1.2 simonb }
1861 1.2 simonb
1862 1.2 simonb /****************************************************************/
1863 1.2 simonb
1864 1.2 simonb /* locks missing */
1865 1.2 simonb void
1866 1.2 simonb wapbl_print(struct wapbl *wl,
1867 1.2 simonb int full,
1868 1.2 simonb void (*pr)(const char *, ...))
1869 1.2 simonb {
1870 1.2 simonb struct buf *bp;
1871 1.2 simonb struct wapbl_entry *we;
1872 1.2 simonb (*pr)("wapbl %p", wl);
1873 1.2 simonb (*pr)("\nlogvp = %p, devvp = %p, logpbn = %"PRId64"\n",
1874 1.2 simonb wl->wl_logvp, wl->wl_devvp, wl->wl_logpbn);
1875 1.2 simonb (*pr)("circ = %zu, header = %zu, head = %"PRIdMAX" tail = %"PRIdMAX"\n",
1876 1.2 simonb wl->wl_circ_size, wl->wl_circ_off,
1877 1.2 simonb (intmax_t)wl->wl_head, (intmax_t)wl->wl_tail);
1878 1.2 simonb (*pr)("fs_dev_bshift = %d, log_dev_bshift = %d\n",
1879 1.2 simonb wl->wl_log_dev_bshift, wl->wl_fs_dev_bshift);
1880 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
1881 1.2 simonb (*pr)("bufcount = %zu, bufbytes = %zu bcount = %zu reclaimable = %zu "
1882 1.2 simonb "reserved = %zu errcnt = %d unsynced = %zu\n",
1883 1.2 simonb wl->wl_bufcount, wl->wl_bufbytes, wl->wl_bcount,
1884 1.2 simonb wl->wl_reclaimable_bytes, wl->wl_reserved_bytes,
1885 1.2 simonb wl->wl_error_count, wl->wl_unsynced_bufbytes);
1886 1.2 simonb #else
1887 1.2 simonb (*pr)("bufcount = %zu, bufbytes = %zu bcount = %zu reclaimable = %zu "
1888 1.2 simonb "reserved = %zu errcnt = %d\n", wl->wl_bufcount, wl->wl_bufbytes,
1889 1.2 simonb wl->wl_bcount, wl->wl_reclaimable_bytes, wl->wl_reserved_bytes,
1890 1.2 simonb wl->wl_error_count);
1891 1.2 simonb #endif
1892 1.2 simonb (*pr)("\tdealloccnt = %d, dealloclim = %d\n",
1893 1.2 simonb wl->wl_dealloccnt, wl->wl_dealloclim);
1894 1.2 simonb (*pr)("\tinohashcnt = %d, inohashmask = 0x%08x\n",
1895 1.2 simonb wl->wl_inohashcnt, wl->wl_inohashmask);
1896 1.2 simonb (*pr)("entries:\n");
1897 1.2 simonb SIMPLEQ_FOREACH(we, &wl->wl_entries, we_entries) {
1898 1.2 simonb #ifdef WAPBL_DEBUG_BUFBYTES
1899 1.2 simonb (*pr)("\tbufcount = %zu, reclaimable = %zu, error = %d, "
1900 1.2 simonb "unsynced = %zu\n",
1901 1.2 simonb we->we_bufcount, we->we_reclaimable_bytes,
1902 1.2 simonb we->we_error, we->we_unsynced_bufbytes);
1903 1.2 simonb #else
1904 1.2 simonb (*pr)("\tbufcount = %zu, reclaimable = %zu, error = %d\n",
1905 1.2 simonb we->we_bufcount, we->we_reclaimable_bytes, we->we_error);
1906 1.2 simonb #endif
1907 1.2 simonb }
1908 1.2 simonb if (full) {
1909 1.2 simonb int cnt = 0;
1910 1.2 simonb (*pr)("bufs =");
1911 1.2 simonb LIST_FOREACH(bp, &wl->wl_bufs, b_wapbllist) {
1912 1.2 simonb if (!LIST_NEXT(bp, b_wapbllist)) {
1913 1.2 simonb (*pr)(" %p", bp);
1914 1.2 simonb } else if ((++cnt % 6) == 0) {
1915 1.2 simonb (*pr)(" %p,\n\t", bp);
1916 1.2 simonb } else {
1917 1.2 simonb (*pr)(" %p,", bp);
1918 1.2 simonb }
1919 1.2 simonb }
1920 1.2 simonb (*pr)("\n");
1921 1.2 simonb
1922 1.2 simonb (*pr)("dealloced blks = ");
1923 1.2 simonb {
1924 1.81 jdolecek struct wapbl_dealloc *wd;
1925 1.2 simonb cnt = 0;
1926 1.86 jdolecek TAILQ_FOREACH(wd, &wl->wl_dealloclist, wd_entries) {
1927 1.2 simonb (*pr)(" %"PRId64":%d,",
1928 1.81 jdolecek wd->wd_blkno,
1929 1.81 jdolecek wd->wd_len);
1930 1.2 simonb if ((++cnt % 4) == 0) {
1931 1.2 simonb (*pr)("\n\t");
1932 1.2 simonb }
1933 1.2 simonb }
1934 1.2 simonb }
1935 1.2 simonb (*pr)("\n");
1936 1.2 simonb
1937 1.2 simonb (*pr)("registered inodes = ");
1938 1.2 simonb {
1939 1.2 simonb int i;
1940 1.2 simonb cnt = 0;
1941 1.2 simonb for (i = 0; i <= wl->wl_inohashmask; i++) {
1942 1.2 simonb struct wapbl_ino_head *wih;
1943 1.2 simonb struct wapbl_ino *wi;
1944 1.2 simonb
1945 1.2 simonb wih = &wl->wl_inohash[i];
1946 1.2 simonb LIST_FOREACH(wi, wih, wi_hash) {
1947 1.2 simonb if (wi->wi_ino == 0)
1948 1.2 simonb continue;
1949 1.55 christos (*pr)(" %"PRIu64"/0%06"PRIo32",",
1950 1.2 simonb wi->wi_ino, wi->wi_mode);
1951 1.2 simonb if ((++cnt % 4) == 0) {
1952 1.2 simonb (*pr)("\n\t");
1953 1.2 simonb }
1954 1.2 simonb }
1955 1.2 simonb }
1956 1.2 simonb (*pr)("\n");
1957 1.2 simonb }
1958 1.2 simonb }
1959 1.2 simonb }
1960 1.2 simonb
1961 1.2 simonb #if defined(WAPBL_DEBUG) || defined(DDB)
1962 1.2 simonb void
1963 1.2 simonb wapbl_dump(struct wapbl *wl)
1964 1.2 simonb {
1965 1.2 simonb #if defined(WAPBL_DEBUG)
1966 1.2 simonb if (!wl)
1967 1.2 simonb wl = wapbl_debug_wl;
1968 1.2 simonb #endif
1969 1.2 simonb if (!wl)
1970 1.2 simonb return;
1971 1.2 simonb wapbl_print(wl, 1, printf);
1972 1.2 simonb }
1973 1.2 simonb #endif
1974 1.2 simonb
1975 1.2 simonb /****************************************************************/
1976 1.2 simonb
1977 1.85 jdolecek int
1978 1.86 jdolecek wapbl_register_deallocation(struct wapbl *wl, daddr_t blk, int len, bool force,
1979 1.86 jdolecek void **cookiep)
1980 1.2 simonb {
1981 1.81 jdolecek struct wapbl_dealloc *wd;
1982 1.85 jdolecek int error = 0;
1983 1.2 simonb
1984 1.2 simonb wapbl_jlock_assert(wl);
1985 1.2 simonb
1986 1.38 hannken mutex_enter(&wl->wl_mtx);
1987 1.85 jdolecek
1988 1.85 jdolecek if (__predict_false(wl->wl_dealloccnt >= wl->wl_dealloclim)) {
1989 1.85 jdolecek if (!force) {
1990 1.85 jdolecek error = EAGAIN;
1991 1.85 jdolecek goto out;
1992 1.85 jdolecek }
1993 1.85 jdolecek
1994 1.85 jdolecek /*
1995 1.85 jdolecek * Forced registration can only be used when:
1996 1.85 jdolecek * 1) the caller can't cope with failure
1997 1.85 jdolecek * 2) the path can be triggered only bounded, small
1998 1.85 jdolecek * times per transaction
1999 1.85 jdolecek * If this is not fullfilled, and the path would be triggered
2000 1.85 jdolecek * many times, this could overflow maximum transaction size
2001 1.85 jdolecek * and panic later.
2002 1.85 jdolecek */
2003 1.85 jdolecek printf("%s: forced dealloc registration over limit: %d >= %d\n",
2004 1.85 jdolecek wl->wl_mount->mnt_stat.f_mntonname,
2005 1.85 jdolecek wl->wl_dealloccnt, wl->wl_dealloclim);
2006 1.85 jdolecek }
2007 1.27 pooka
2008 1.84 jdolecek wl->wl_dealloccnt++;
2009 1.84 jdolecek mutex_exit(&wl->wl_mtx);
2010 1.84 jdolecek
2011 1.81 jdolecek wd = pool_get(&wapbl_dealloc_pool, PR_WAITOK);
2012 1.81 jdolecek wd->wd_blkno = blk;
2013 1.81 jdolecek wd->wd_len = len;
2014 1.81 jdolecek
2015 1.84 jdolecek mutex_enter(&wl->wl_mtx);
2016 1.86 jdolecek TAILQ_INSERT_TAIL(&wl->wl_dealloclist, wd, wd_entries);
2017 1.86 jdolecek
2018 1.86 jdolecek if (cookiep)
2019 1.86 jdolecek *cookiep = wd;
2020 1.85 jdolecek
2021 1.85 jdolecek out:
2022 1.84 jdolecek mutex_exit(&wl->wl_mtx);
2023 1.81 jdolecek
2024 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_ALLOC,
2025 1.85 jdolecek ("wapbl_register_deallocation: blk=%"PRId64" len=%d error=%d\n",
2026 1.85 jdolecek blk, len, error));
2027 1.85 jdolecek
2028 1.85 jdolecek return error;
2029 1.2 simonb }
2030 1.2 simonb
2031 1.86 jdolecek static void
2032 1.86 jdolecek wapbl_deallocation_free(struct wapbl *wl, struct wapbl_dealloc *wd,
2033 1.86 jdolecek bool locked)
2034 1.86 jdolecek {
2035 1.86 jdolecek KASSERT(!locked
2036 1.86 jdolecek || rw_lock_held(&wl->wl_rwlock) || mutex_owned(&wl->wl_mtx));
2037 1.86 jdolecek
2038 1.86 jdolecek if (!locked)
2039 1.86 jdolecek mutex_enter(&wl->wl_mtx);
2040 1.86 jdolecek
2041 1.86 jdolecek TAILQ_REMOVE(&wl->wl_dealloclist, wd, wd_entries);
2042 1.86 jdolecek wl->wl_dealloccnt--;
2043 1.86 jdolecek
2044 1.86 jdolecek if (!locked)
2045 1.86 jdolecek mutex_exit(&wl->wl_mtx);
2046 1.86 jdolecek
2047 1.86 jdolecek pool_put(&wapbl_dealloc_pool, wd);
2048 1.86 jdolecek }
2049 1.86 jdolecek
2050 1.86 jdolecek void
2051 1.86 jdolecek wapbl_unregister_deallocation(struct wapbl *wl, void *cookie)
2052 1.86 jdolecek {
2053 1.86 jdolecek KASSERT(cookie != NULL);
2054 1.86 jdolecek wapbl_deallocation_free(wl, cookie, false);
2055 1.86 jdolecek }
2056 1.86 jdolecek
2057 1.2 simonb /****************************************************************/
2058 1.2 simonb
2059 1.2 simonb static void
2060 1.2 simonb wapbl_inodetrk_init(struct wapbl *wl, u_int size)
2061 1.2 simonb {
2062 1.2 simonb
2063 1.2 simonb wl->wl_inohash = hashinit(size, HASH_LIST, true, &wl->wl_inohashmask);
2064 1.2 simonb if (atomic_inc_uint_nv(&wapbl_ino_pool_refcount) == 1) {
2065 1.2 simonb pool_init(&wapbl_ino_pool, sizeof(struct wapbl_ino), 0, 0, 0,
2066 1.2 simonb "wapblinopl", &pool_allocator_nointr, IPL_NONE);
2067 1.2 simonb }
2068 1.2 simonb }
2069 1.2 simonb
2070 1.2 simonb static void
2071 1.2 simonb wapbl_inodetrk_free(struct wapbl *wl)
2072 1.2 simonb {
2073 1.2 simonb
2074 1.2 simonb /* XXX this KASSERT needs locking/mutex analysis */
2075 1.2 simonb KASSERT(wl->wl_inohashcnt == 0);
2076 1.2 simonb hashdone(wl->wl_inohash, HASH_LIST, wl->wl_inohashmask);
2077 1.2 simonb if (atomic_dec_uint_nv(&wapbl_ino_pool_refcount) == 0) {
2078 1.2 simonb pool_destroy(&wapbl_ino_pool);
2079 1.2 simonb }
2080 1.2 simonb }
2081 1.2 simonb
2082 1.2 simonb static struct wapbl_ino *
2083 1.2 simonb wapbl_inodetrk_get(struct wapbl *wl, ino_t ino)
2084 1.2 simonb {
2085 1.2 simonb struct wapbl_ino_head *wih;
2086 1.2 simonb struct wapbl_ino *wi;
2087 1.2 simonb
2088 1.2 simonb KASSERT(mutex_owned(&wl->wl_mtx));
2089 1.2 simonb
2090 1.2 simonb wih = &wl->wl_inohash[ino & wl->wl_inohashmask];
2091 1.2 simonb LIST_FOREACH(wi, wih, wi_hash) {
2092 1.2 simonb if (ino == wi->wi_ino)
2093 1.2 simonb return wi;
2094 1.2 simonb }
2095 1.2 simonb return 0;
2096 1.2 simonb }
2097 1.2 simonb
2098 1.2 simonb void
2099 1.2 simonb wapbl_register_inode(struct wapbl *wl, ino_t ino, mode_t mode)
2100 1.2 simonb {
2101 1.2 simonb struct wapbl_ino_head *wih;
2102 1.2 simonb struct wapbl_ino *wi;
2103 1.2 simonb
2104 1.2 simonb wi = pool_get(&wapbl_ino_pool, PR_WAITOK);
2105 1.2 simonb
2106 1.2 simonb mutex_enter(&wl->wl_mtx);
2107 1.2 simonb if (wapbl_inodetrk_get(wl, ino) == NULL) {
2108 1.2 simonb wi->wi_ino = ino;
2109 1.2 simonb wi->wi_mode = mode;
2110 1.2 simonb wih = &wl->wl_inohash[ino & wl->wl_inohashmask];
2111 1.2 simonb LIST_INSERT_HEAD(wih, wi, wi_hash);
2112 1.2 simonb wl->wl_inohashcnt++;
2113 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_INODE,
2114 1.2 simonb ("wapbl_register_inode: ino=%"PRId64"\n", ino));
2115 1.2 simonb mutex_exit(&wl->wl_mtx);
2116 1.2 simonb } else {
2117 1.2 simonb mutex_exit(&wl->wl_mtx);
2118 1.2 simonb pool_put(&wapbl_ino_pool, wi);
2119 1.2 simonb }
2120 1.2 simonb }
2121 1.2 simonb
2122 1.2 simonb void
2123 1.2 simonb wapbl_unregister_inode(struct wapbl *wl, ino_t ino, mode_t mode)
2124 1.2 simonb {
2125 1.2 simonb struct wapbl_ino *wi;
2126 1.2 simonb
2127 1.2 simonb mutex_enter(&wl->wl_mtx);
2128 1.2 simonb wi = wapbl_inodetrk_get(wl, ino);
2129 1.2 simonb if (wi) {
2130 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_INODE,
2131 1.2 simonb ("wapbl_unregister_inode: ino=%"PRId64"\n", ino));
2132 1.2 simonb KASSERT(wl->wl_inohashcnt > 0);
2133 1.2 simonb wl->wl_inohashcnt--;
2134 1.2 simonb LIST_REMOVE(wi, wi_hash);
2135 1.2 simonb mutex_exit(&wl->wl_mtx);
2136 1.2 simonb
2137 1.2 simonb pool_put(&wapbl_ino_pool, wi);
2138 1.2 simonb } else {
2139 1.2 simonb mutex_exit(&wl->wl_mtx);
2140 1.2 simonb }
2141 1.2 simonb }
2142 1.2 simonb
2143 1.2 simonb /****************************************************************/
2144 1.2 simonb
2145 1.71 riastrad /*
2146 1.71 riastrad * wapbl_transaction_inodes_len(wl)
2147 1.71 riastrad *
2148 1.71 riastrad * Calculate the number of bytes required for inode registration
2149 1.71 riastrad * log records in wl.
2150 1.71 riastrad */
2151 1.30 uebayasi static inline size_t
2152 1.2 simonb wapbl_transaction_inodes_len(struct wapbl *wl)
2153 1.2 simonb {
2154 1.2 simonb int blocklen = 1<<wl->wl_log_dev_bshift;
2155 1.2 simonb int iph;
2156 1.2 simonb
2157 1.2 simonb /* Calculate number of inodes described in a inodelist header */
2158 1.2 simonb iph = (blocklen - offsetof(struct wapbl_wc_inodelist, wc_inodes)) /
2159 1.2 simonb sizeof(((struct wapbl_wc_inodelist *)0)->wc_inodes[0]);
2160 1.2 simonb
2161 1.2 simonb KASSERT(iph > 0);
2162 1.2 simonb
2163 1.39 christos return MAX(1, howmany(wl->wl_inohashcnt, iph)) * blocklen;
2164 1.2 simonb }
2165 1.2 simonb
2166 1.2 simonb
2167 1.71 riastrad /*
2168 1.71 riastrad * wapbl_transaction_len(wl)
2169 1.71 riastrad *
2170 1.71 riastrad * Calculate number of bytes required for all log records in wl.
2171 1.71 riastrad */
2172 1.2 simonb static size_t
2173 1.2 simonb wapbl_transaction_len(struct wapbl *wl)
2174 1.2 simonb {
2175 1.2 simonb int blocklen = 1<<wl->wl_log_dev_bshift;
2176 1.2 simonb size_t len;
2177 1.2 simonb
2178 1.80 jdolecek /* Calculate number of blocks described in a blocklist header */
2179 1.2 simonb len = wl->wl_bcount;
2180 1.79 jdolecek len += howmany(wl->wl_bufcount, wl->wl_brperjblock) * blocklen;
2181 1.79 jdolecek len += howmany(wl->wl_dealloccnt, wl->wl_brperjblock) * blocklen;
2182 1.2 simonb len += wapbl_transaction_inodes_len(wl);
2183 1.2 simonb
2184 1.2 simonb return len;
2185 1.2 simonb }
2186 1.2 simonb
2187 1.2 simonb /*
2188 1.71 riastrad * wapbl_cache_sync(wl, msg)
2189 1.71 riastrad *
2190 1.71 riastrad * Issue DIOCCACHESYNC to wl->wl_devvp.
2191 1.71 riastrad *
2192 1.71 riastrad * If sysctl(vfs.wapbl.verbose_commit) >= 2, print a message
2193 1.71 riastrad * including msg about the duration of the cache sync.
2194 1.48 yamt */
2195 1.48 yamt static int
2196 1.48 yamt wapbl_cache_sync(struct wapbl *wl, const char *msg)
2197 1.48 yamt {
2198 1.48 yamt const bool verbose = wapbl_verbose_commit >= 2;
2199 1.48 yamt struct bintime start_time;
2200 1.48 yamt int force = 1;
2201 1.48 yamt int error;
2202 1.48 yamt
2203 1.48 yamt if (!wapbl_flush_disk_cache) {
2204 1.48 yamt return 0;
2205 1.48 yamt }
2206 1.48 yamt if (verbose) {
2207 1.48 yamt bintime(&start_time);
2208 1.48 yamt }
2209 1.48 yamt error = VOP_IOCTL(wl->wl_devvp, DIOCCACHESYNC, &force,
2210 1.48 yamt FWRITE, FSCRED);
2211 1.48 yamt if (error) {
2212 1.48 yamt WAPBL_PRINTF(WAPBL_PRINT_ERROR,
2213 1.76 riastrad ("wapbl_cache_sync: DIOCCACHESYNC on dev 0x%jx "
2214 1.76 riastrad "returned %d\n", (uintmax_t)wl->wl_devvp->v_rdev, error));
2215 1.48 yamt }
2216 1.48 yamt if (verbose) {
2217 1.48 yamt struct bintime d;
2218 1.48 yamt struct timespec ts;
2219 1.48 yamt
2220 1.48 yamt bintime(&d);
2221 1.48 yamt bintime_sub(&d, &start_time);
2222 1.48 yamt bintime2timespec(&d, &ts);
2223 1.48 yamt printf("wapbl_cache_sync: %s: dev 0x%jx %ju.%09lu\n",
2224 1.48 yamt msg, (uintmax_t)wl->wl_devvp->v_rdev,
2225 1.48 yamt (uintmax_t)ts.tv_sec, ts.tv_nsec);
2226 1.48 yamt }
2227 1.87 jdolecek
2228 1.87 jdolecek wl->wl_ev_cacheflush.ev_count++;
2229 1.87 jdolecek
2230 1.48 yamt return error;
2231 1.48 yamt }
2232 1.48 yamt
2233 1.48 yamt /*
2234 1.71 riastrad * wapbl_write_commit(wl, head, tail)
2235 1.71 riastrad *
2236 1.71 riastrad * Issue a disk cache sync to wait for all pending writes to the
2237 1.71 riastrad * log to complete, and then synchronously commit the current
2238 1.71 riastrad * circular queue head and tail to the log, in the next of two
2239 1.71 riastrad * locations for commit headers on disk.
2240 1.2 simonb *
2241 1.71 riastrad * Increment the generation number. If the generation number
2242 1.71 riastrad * rolls over to zero, then a subsequent commit would appear to
2243 1.71 riastrad * have an older generation than this one -- in that case, issue a
2244 1.71 riastrad * duplicate commit to avoid this.
2245 1.71 riastrad *
2246 1.71 riastrad * => Caller must have exclusive access to wl, either by holding
2247 1.71 riastrad * wl->wl_rwlock for writer or by being wapbl_start before anyone
2248 1.71 riastrad * else has seen wl.
2249 1.2 simonb */
2250 1.2 simonb static int
2251 1.2 simonb wapbl_write_commit(struct wapbl *wl, off_t head, off_t tail)
2252 1.2 simonb {
2253 1.2 simonb struct wapbl_wc_header *wc = wl->wl_wc_header;
2254 1.2 simonb struct timespec ts;
2255 1.2 simonb int error;
2256 1.34 mlelstv daddr_t pbn;
2257 1.2 simonb
2258 1.54 hannken error = wapbl_buffered_flush(wl);
2259 1.54 hannken if (error)
2260 1.54 hannken return error;
2261 1.49 yamt /*
2262 1.49 yamt * flush disk cache to ensure that blocks we've written are actually
2263 1.49 yamt * written to the stable storage before the commit header.
2264 1.49 yamt *
2265 1.49 yamt * XXX Calc checksum here, instead we do this for now
2266 1.49 yamt */
2267 1.48 yamt wapbl_cache_sync(wl, "1");
2268 1.2 simonb
2269 1.2 simonb wc->wc_head = head;
2270 1.2 simonb wc->wc_tail = tail;
2271 1.2 simonb wc->wc_checksum = 0;
2272 1.2 simonb wc->wc_version = 1;
2273 1.2 simonb getnanotime(&ts);
2274 1.17 yamt wc->wc_time = ts.tv_sec;
2275 1.2 simonb wc->wc_timensec = ts.tv_nsec;
2276 1.2 simonb
2277 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_WRITE,
2278 1.2 simonb ("wapbl_write_commit: head = %"PRIdMAX "tail = %"PRIdMAX"\n",
2279 1.2 simonb (intmax_t)head, (intmax_t)tail));
2280 1.2 simonb
2281 1.2 simonb /*
2282 1.49 yamt * write the commit header.
2283 1.49 yamt *
2284 1.2 simonb * XXX if generation will rollover, then first zero
2285 1.2 simonb * over second commit header before trying to write both headers.
2286 1.2 simonb */
2287 1.2 simonb
2288 1.34 mlelstv pbn = wl->wl_logpbn + (wc->wc_generation % 2);
2289 1.34 mlelstv #ifdef _KERNEL
2290 1.34 mlelstv pbn = btodb(pbn << wc->wc_log_dev_bshift);
2291 1.34 mlelstv #endif
2292 1.54 hannken error = wapbl_buffered_write(wc, wc->wc_len, wl, pbn);
2293 1.54 hannken if (error)
2294 1.54 hannken return error;
2295 1.54 hannken error = wapbl_buffered_flush(wl);
2296 1.2 simonb if (error)
2297 1.2 simonb return error;
2298 1.2 simonb
2299 1.49 yamt /*
2300 1.49 yamt * flush disk cache to ensure that the commit header is actually
2301 1.49 yamt * written before meta data blocks.
2302 1.49 yamt */
2303 1.48 yamt wapbl_cache_sync(wl, "2");
2304 1.2 simonb
2305 1.2 simonb /*
2306 1.2 simonb * If the generation number was zero, write it out a second time.
2307 1.2 simonb * This handles initialization and generation number rollover
2308 1.2 simonb */
2309 1.2 simonb if (wc->wc_generation++ == 0) {
2310 1.2 simonb error = wapbl_write_commit(wl, head, tail);
2311 1.2 simonb /*
2312 1.2 simonb * This panic should be able to be removed if we do the
2313 1.2 simonb * zero'ing mentioned above, and we are certain to roll
2314 1.2 simonb * back generation number on failure.
2315 1.2 simonb */
2316 1.2 simonb if (error)
2317 1.2 simonb panic("wapbl_write_commit: error writing duplicate "
2318 1.66 riastrad "log header: %d", error);
2319 1.2 simonb }
2320 1.87 jdolecek
2321 1.87 jdolecek wl->wl_ev_commit.ev_count++;
2322 1.87 jdolecek
2323 1.2 simonb return 0;
2324 1.2 simonb }
2325 1.2 simonb
2326 1.71 riastrad /*
2327 1.71 riastrad * wapbl_write_blocks(wl, offp)
2328 1.71 riastrad *
2329 1.71 riastrad * Write all pending physical blocks in the current transaction
2330 1.71 riastrad * from wapbl_add_buf to the log on disk, adding to the circular
2331 1.71 riastrad * queue head at byte offset *offp, and returning the new head's
2332 1.71 riastrad * byte offset in *offp.
2333 1.71 riastrad */
2334 1.2 simonb static int
2335 1.2 simonb wapbl_write_blocks(struct wapbl *wl, off_t *offp)
2336 1.2 simonb {
2337 1.2 simonb struct wapbl_wc_blocklist *wc =
2338 1.2 simonb (struct wapbl_wc_blocklist *)wl->wl_wc_scratch;
2339 1.2 simonb int blocklen = 1<<wl->wl_log_dev_bshift;
2340 1.2 simonb struct buf *bp;
2341 1.2 simonb off_t off = *offp;
2342 1.2 simonb int error;
2343 1.7 joerg size_t padding;
2344 1.2 simonb
2345 1.2 simonb KASSERT(rw_write_held(&wl->wl_rwlock));
2346 1.2 simonb
2347 1.2 simonb bp = LIST_FIRST(&wl->wl_bufs);
2348 1.2 simonb
2349 1.2 simonb while (bp) {
2350 1.2 simonb int cnt;
2351 1.2 simonb struct buf *obp = bp;
2352 1.2 simonb
2353 1.2 simonb KASSERT(bp->b_flags & B_LOCKED);
2354 1.2 simonb
2355 1.2 simonb wc->wc_type = WAPBL_WC_BLOCKS;
2356 1.2 simonb wc->wc_len = blocklen;
2357 1.2 simonb wc->wc_blkcount = 0;
2358 1.79 jdolecek while (bp && (wc->wc_blkcount < wl->wl_brperjblock)) {
2359 1.2 simonb /*
2360 1.2 simonb * Make sure all the physical block numbers are up to
2361 1.2 simonb * date. If this is not always true on a given
2362 1.2 simonb * filesystem, then VOP_BMAP must be called. We
2363 1.2 simonb * could call VOP_BMAP here, or else in the filesystem
2364 1.2 simonb * specific flush callback, although neither of those
2365 1.2 simonb * solutions allow us to take the vnode lock. If a
2366 1.2 simonb * filesystem requires that we must take the vnode lock
2367 1.2 simonb * to call VOP_BMAP, then we can probably do it in
2368 1.2 simonb * bwrite when the vnode lock should already be held
2369 1.2 simonb * by the invoking code.
2370 1.2 simonb */
2371 1.2 simonb KASSERT((bp->b_vp->v_type == VBLK) ||
2372 1.2 simonb (bp->b_blkno != bp->b_lblkno));
2373 1.2 simonb KASSERT(bp->b_blkno > 0);
2374 1.2 simonb
2375 1.2 simonb wc->wc_blocks[wc->wc_blkcount].wc_daddr = bp->b_blkno;
2376 1.2 simonb wc->wc_blocks[wc->wc_blkcount].wc_dlen = bp->b_bcount;
2377 1.2 simonb wc->wc_len += bp->b_bcount;
2378 1.2 simonb wc->wc_blkcount++;
2379 1.2 simonb bp = LIST_NEXT(bp, b_wapbllist);
2380 1.2 simonb }
2381 1.7 joerg if (wc->wc_len % blocklen != 0) {
2382 1.7 joerg padding = blocklen - wc->wc_len % blocklen;
2383 1.7 joerg wc->wc_len += padding;
2384 1.7 joerg } else {
2385 1.7 joerg padding = 0;
2386 1.7 joerg }
2387 1.7 joerg
2388 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_WRITE,
2389 1.7 joerg ("wapbl_write_blocks: len = %u (padding %zu) off = %"PRIdMAX"\n",
2390 1.7 joerg wc->wc_len, padding, (intmax_t)off));
2391 1.2 simonb
2392 1.2 simonb error = wapbl_circ_write(wl, wc, blocklen, &off);
2393 1.2 simonb if (error)
2394 1.2 simonb return error;
2395 1.2 simonb bp = obp;
2396 1.2 simonb cnt = 0;
2397 1.79 jdolecek while (bp && (cnt++ < wl->wl_brperjblock)) {
2398 1.2 simonb error = wapbl_circ_write(wl, bp->b_data,
2399 1.2 simonb bp->b_bcount, &off);
2400 1.2 simonb if (error)
2401 1.2 simonb return error;
2402 1.2 simonb bp = LIST_NEXT(bp, b_wapbllist);
2403 1.2 simonb }
2404 1.7 joerg if (padding) {
2405 1.7 joerg void *zero;
2406 1.7 joerg
2407 1.51 para zero = wapbl_alloc(padding);
2408 1.7 joerg memset(zero, 0, padding);
2409 1.7 joerg error = wapbl_circ_write(wl, zero, padding, &off);
2410 1.18 yamt wapbl_free(zero, padding);
2411 1.7 joerg if (error)
2412 1.7 joerg return error;
2413 1.7 joerg }
2414 1.2 simonb }
2415 1.2 simonb *offp = off;
2416 1.2 simonb return 0;
2417 1.2 simonb }
2418 1.2 simonb
2419 1.71 riastrad /*
2420 1.71 riastrad * wapbl_write_revocations(wl, offp)
2421 1.71 riastrad *
2422 1.71 riastrad * Write all pending deallocations in the current transaction from
2423 1.71 riastrad * wapbl_register_deallocation to the log on disk, adding to the
2424 1.71 riastrad * circular queue's head at byte offset *offp, and returning the
2425 1.71 riastrad * new head's byte offset in *offp.
2426 1.71 riastrad */
2427 1.2 simonb static int
2428 1.2 simonb wapbl_write_revocations(struct wapbl *wl, off_t *offp)
2429 1.2 simonb {
2430 1.2 simonb struct wapbl_wc_blocklist *wc =
2431 1.2 simonb (struct wapbl_wc_blocklist *)wl->wl_wc_scratch;
2432 1.81 jdolecek struct wapbl_dealloc *wd, *lwd;
2433 1.2 simonb int blocklen = 1<<wl->wl_log_dev_bshift;
2434 1.2 simonb off_t off = *offp;
2435 1.2 simonb int error;
2436 1.2 simonb
2437 1.2 simonb if (wl->wl_dealloccnt == 0)
2438 1.2 simonb return 0;
2439 1.2 simonb
2440 1.86 jdolecek while ((wd = TAILQ_FIRST(&wl->wl_dealloclist)) != NULL) {
2441 1.2 simonb wc->wc_type = WAPBL_WC_REVOCATIONS;
2442 1.2 simonb wc->wc_len = blocklen;
2443 1.2 simonb wc->wc_blkcount = 0;
2444 1.81 jdolecek while (wd && (wc->wc_blkcount < wl->wl_brperjblock)) {
2445 1.2 simonb wc->wc_blocks[wc->wc_blkcount].wc_daddr =
2446 1.81 jdolecek wd->wd_blkno;
2447 1.2 simonb wc->wc_blocks[wc->wc_blkcount].wc_dlen =
2448 1.81 jdolecek wd->wd_len;
2449 1.2 simonb wc->wc_blkcount++;
2450 1.81 jdolecek
2451 1.86 jdolecek wd = TAILQ_NEXT(wd, wd_entries);
2452 1.2 simonb }
2453 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_WRITE,
2454 1.2 simonb ("wapbl_write_revocations: len = %u off = %"PRIdMAX"\n",
2455 1.2 simonb wc->wc_len, (intmax_t)off));
2456 1.2 simonb error = wapbl_circ_write(wl, wc, blocklen, &off);
2457 1.2 simonb if (error)
2458 1.2 simonb return error;
2459 1.81 jdolecek
2460 1.81 jdolecek /* free all successfully written deallocs */
2461 1.81 jdolecek lwd = wd;
2462 1.86 jdolecek while ((wd = TAILQ_FIRST(&wl->wl_dealloclist)) != NULL) {
2463 1.83 jdolecek if (wd == lwd)
2464 1.83 jdolecek break;
2465 1.86 jdolecek wapbl_deallocation_free(wl, wd, true);
2466 1.81 jdolecek }
2467 1.2 simonb }
2468 1.2 simonb *offp = off;
2469 1.2 simonb return 0;
2470 1.2 simonb }
2471 1.2 simonb
2472 1.71 riastrad /*
2473 1.71 riastrad * wapbl_write_inodes(wl, offp)
2474 1.71 riastrad *
2475 1.71 riastrad * Write all pending inode allocations in the current transaction
2476 1.71 riastrad * from wapbl_register_inode to the log on disk, adding to the
2477 1.71 riastrad * circular queue's head at byte offset *offp and returning the
2478 1.71 riastrad * new head's byte offset in *offp.
2479 1.71 riastrad */
2480 1.2 simonb static int
2481 1.2 simonb wapbl_write_inodes(struct wapbl *wl, off_t *offp)
2482 1.2 simonb {
2483 1.2 simonb struct wapbl_wc_inodelist *wc =
2484 1.2 simonb (struct wapbl_wc_inodelist *)wl->wl_wc_scratch;
2485 1.2 simonb int i;
2486 1.14 joerg int blocklen = 1 << wl->wl_log_dev_bshift;
2487 1.2 simonb off_t off = *offp;
2488 1.2 simonb int error;
2489 1.2 simonb
2490 1.2 simonb struct wapbl_ino_head *wih;
2491 1.2 simonb struct wapbl_ino *wi;
2492 1.2 simonb int iph;
2493 1.2 simonb
2494 1.2 simonb iph = (blocklen - offsetof(struct wapbl_wc_inodelist, wc_inodes)) /
2495 1.2 simonb sizeof(((struct wapbl_wc_inodelist *)0)->wc_inodes[0]);
2496 1.2 simonb
2497 1.2 simonb i = 0;
2498 1.2 simonb wih = &wl->wl_inohash[0];
2499 1.2 simonb wi = 0;
2500 1.2 simonb do {
2501 1.2 simonb wc->wc_type = WAPBL_WC_INODES;
2502 1.2 simonb wc->wc_len = blocklen;
2503 1.2 simonb wc->wc_inocnt = 0;
2504 1.2 simonb wc->wc_clear = (i == 0);
2505 1.2 simonb while ((i < wl->wl_inohashcnt) && (wc->wc_inocnt < iph)) {
2506 1.2 simonb while (!wi) {
2507 1.2 simonb KASSERT((wih - &wl->wl_inohash[0])
2508 1.2 simonb <= wl->wl_inohashmask);
2509 1.2 simonb wi = LIST_FIRST(wih++);
2510 1.2 simonb }
2511 1.2 simonb wc->wc_inodes[wc->wc_inocnt].wc_inumber = wi->wi_ino;
2512 1.2 simonb wc->wc_inodes[wc->wc_inocnt].wc_imode = wi->wi_mode;
2513 1.2 simonb wc->wc_inocnt++;
2514 1.2 simonb i++;
2515 1.2 simonb wi = LIST_NEXT(wi, wi_hash);
2516 1.2 simonb }
2517 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_WRITE,
2518 1.2 simonb ("wapbl_write_inodes: len = %u off = %"PRIdMAX"\n",
2519 1.2 simonb wc->wc_len, (intmax_t)off));
2520 1.2 simonb error = wapbl_circ_write(wl, wc, blocklen, &off);
2521 1.2 simonb if (error)
2522 1.2 simonb return error;
2523 1.2 simonb } while (i < wl->wl_inohashcnt);
2524 1.2 simonb
2525 1.2 simonb *offp = off;
2526 1.2 simonb return 0;
2527 1.2 simonb }
2528 1.2 simonb
2529 1.2 simonb #endif /* _KERNEL */
2530 1.2 simonb
2531 1.2 simonb /****************************************************************/
2532 1.2 simonb
2533 1.2 simonb struct wapbl_blk {
2534 1.2 simonb LIST_ENTRY(wapbl_blk) wb_hash;
2535 1.2 simonb daddr_t wb_blk;
2536 1.2 simonb off_t wb_off; /* Offset of this block in the log */
2537 1.2 simonb };
2538 1.2 simonb #define WAPBL_BLKPOOL_MIN 83
2539 1.2 simonb
2540 1.2 simonb static void
2541 1.2 simonb wapbl_blkhash_init(struct wapbl_replay *wr, u_int size)
2542 1.2 simonb {
2543 1.2 simonb if (size < WAPBL_BLKPOOL_MIN)
2544 1.2 simonb size = WAPBL_BLKPOOL_MIN;
2545 1.2 simonb KASSERT(wr->wr_blkhash == 0);
2546 1.2 simonb #ifdef _KERNEL
2547 1.2 simonb wr->wr_blkhash = hashinit(size, HASH_LIST, true, &wr->wr_blkhashmask);
2548 1.2 simonb #else /* ! _KERNEL */
2549 1.2 simonb /* Manually implement hashinit */
2550 1.2 simonb {
2551 1.25 lukem unsigned long i, hashsize;
2552 1.2 simonb for (hashsize = 1; hashsize < size; hashsize <<= 1)
2553 1.2 simonb continue;
2554 1.51 para wr->wr_blkhash = wapbl_alloc(hashsize * sizeof(*wr->wr_blkhash));
2555 1.37 drochner for (i = 0; i < hashsize; i++)
2556 1.2 simonb LIST_INIT(&wr->wr_blkhash[i]);
2557 1.2 simonb wr->wr_blkhashmask = hashsize - 1;
2558 1.2 simonb }
2559 1.2 simonb #endif /* ! _KERNEL */
2560 1.2 simonb }
2561 1.2 simonb
2562 1.2 simonb static void
2563 1.2 simonb wapbl_blkhash_free(struct wapbl_replay *wr)
2564 1.2 simonb {
2565 1.2 simonb KASSERT(wr->wr_blkhashcnt == 0);
2566 1.2 simonb #ifdef _KERNEL
2567 1.2 simonb hashdone(wr->wr_blkhash, HASH_LIST, wr->wr_blkhashmask);
2568 1.2 simonb #else /* ! _KERNEL */
2569 1.18 yamt wapbl_free(wr->wr_blkhash,
2570 1.18 yamt (wr->wr_blkhashmask + 1) * sizeof(*wr->wr_blkhash));
2571 1.2 simonb #endif /* ! _KERNEL */
2572 1.2 simonb }
2573 1.2 simonb
2574 1.2 simonb static struct wapbl_blk *
2575 1.2 simonb wapbl_blkhash_get(struct wapbl_replay *wr, daddr_t blk)
2576 1.2 simonb {
2577 1.2 simonb struct wapbl_blk_head *wbh;
2578 1.2 simonb struct wapbl_blk *wb;
2579 1.2 simonb wbh = &wr->wr_blkhash[blk & wr->wr_blkhashmask];
2580 1.2 simonb LIST_FOREACH(wb, wbh, wb_hash) {
2581 1.2 simonb if (blk == wb->wb_blk)
2582 1.2 simonb return wb;
2583 1.2 simonb }
2584 1.2 simonb return 0;
2585 1.2 simonb }
2586 1.2 simonb
2587 1.2 simonb static void
2588 1.2 simonb wapbl_blkhash_ins(struct wapbl_replay *wr, daddr_t blk, off_t off)
2589 1.2 simonb {
2590 1.2 simonb struct wapbl_blk_head *wbh;
2591 1.2 simonb struct wapbl_blk *wb;
2592 1.2 simonb wb = wapbl_blkhash_get(wr, blk);
2593 1.2 simonb if (wb) {
2594 1.2 simonb KASSERT(wb->wb_blk == blk);
2595 1.2 simonb wb->wb_off = off;
2596 1.2 simonb } else {
2597 1.51 para wb = wapbl_alloc(sizeof(*wb));
2598 1.2 simonb wb->wb_blk = blk;
2599 1.2 simonb wb->wb_off = off;
2600 1.2 simonb wbh = &wr->wr_blkhash[blk & wr->wr_blkhashmask];
2601 1.2 simonb LIST_INSERT_HEAD(wbh, wb, wb_hash);
2602 1.2 simonb wr->wr_blkhashcnt++;
2603 1.2 simonb }
2604 1.2 simonb }
2605 1.2 simonb
2606 1.2 simonb static void
2607 1.2 simonb wapbl_blkhash_rem(struct wapbl_replay *wr, daddr_t blk)
2608 1.2 simonb {
2609 1.2 simonb struct wapbl_blk *wb = wapbl_blkhash_get(wr, blk);
2610 1.2 simonb if (wb) {
2611 1.2 simonb KASSERT(wr->wr_blkhashcnt > 0);
2612 1.2 simonb wr->wr_blkhashcnt--;
2613 1.2 simonb LIST_REMOVE(wb, wb_hash);
2614 1.18 yamt wapbl_free(wb, sizeof(*wb));
2615 1.2 simonb }
2616 1.2 simonb }
2617 1.2 simonb
2618 1.2 simonb static void
2619 1.2 simonb wapbl_blkhash_clear(struct wapbl_replay *wr)
2620 1.2 simonb {
2621 1.25 lukem unsigned long i;
2622 1.2 simonb for (i = 0; i <= wr->wr_blkhashmask; i++) {
2623 1.2 simonb struct wapbl_blk *wb;
2624 1.2 simonb
2625 1.2 simonb while ((wb = LIST_FIRST(&wr->wr_blkhash[i]))) {
2626 1.2 simonb KASSERT(wr->wr_blkhashcnt > 0);
2627 1.2 simonb wr->wr_blkhashcnt--;
2628 1.2 simonb LIST_REMOVE(wb, wb_hash);
2629 1.18 yamt wapbl_free(wb, sizeof(*wb));
2630 1.2 simonb }
2631 1.2 simonb }
2632 1.2 simonb KASSERT(wr->wr_blkhashcnt == 0);
2633 1.2 simonb }
2634 1.2 simonb
2635 1.2 simonb /****************************************************************/
2636 1.2 simonb
2637 1.71 riastrad /*
2638 1.71 riastrad * wapbl_circ_read(wr, data, len, offp)
2639 1.71 riastrad *
2640 1.71 riastrad * Read len bytes into data from the circular queue of wr,
2641 1.71 riastrad * starting at the linear byte offset *offp, and returning the new
2642 1.71 riastrad * linear byte offset in *offp.
2643 1.71 riastrad *
2644 1.71 riastrad * If the starting linear byte offset precedes wr->wr_circ_off,
2645 1.71 riastrad * the read instead begins at wr->wr_circ_off. XXX WTF? This
2646 1.71 riastrad * should be a KASSERT, not a conditional.
2647 1.71 riastrad */
2648 1.2 simonb static int
2649 1.2 simonb wapbl_circ_read(struct wapbl_replay *wr, void *data, size_t len, off_t *offp)
2650 1.2 simonb {
2651 1.2 simonb size_t slen;
2652 1.2 simonb off_t off = *offp;
2653 1.2 simonb int error;
2654 1.34 mlelstv daddr_t pbn;
2655 1.2 simonb
2656 1.14 joerg KASSERT(((len >> wr->wr_log_dev_bshift) <<
2657 1.14 joerg wr->wr_log_dev_bshift) == len);
2658 1.34 mlelstv
2659 1.14 joerg if (off < wr->wr_circ_off)
2660 1.14 joerg off = wr->wr_circ_off;
2661 1.14 joerg slen = wr->wr_circ_off + wr->wr_circ_size - off;
2662 1.2 simonb if (slen < len) {
2663 1.34 mlelstv pbn = wr->wr_logpbn + (off >> wr->wr_log_dev_bshift);
2664 1.34 mlelstv #ifdef _KERNEL
2665 1.34 mlelstv pbn = btodb(pbn << wr->wr_log_dev_bshift);
2666 1.34 mlelstv #endif
2667 1.34 mlelstv error = wapbl_read(data, slen, wr->wr_devvp, pbn);
2668 1.2 simonb if (error)
2669 1.2 simonb return error;
2670 1.2 simonb data = (uint8_t *)data + slen;
2671 1.2 simonb len -= slen;
2672 1.14 joerg off = wr->wr_circ_off;
2673 1.2 simonb }
2674 1.34 mlelstv pbn = wr->wr_logpbn + (off >> wr->wr_log_dev_bshift);
2675 1.34 mlelstv #ifdef _KERNEL
2676 1.34 mlelstv pbn = btodb(pbn << wr->wr_log_dev_bshift);
2677 1.34 mlelstv #endif
2678 1.34 mlelstv error = wapbl_read(data, len, wr->wr_devvp, pbn);
2679 1.2 simonb if (error)
2680 1.2 simonb return error;
2681 1.2 simonb off += len;
2682 1.14 joerg if (off >= wr->wr_circ_off + wr->wr_circ_size)
2683 1.14 joerg off = wr->wr_circ_off;
2684 1.2 simonb *offp = off;
2685 1.2 simonb return 0;
2686 1.2 simonb }
2687 1.2 simonb
2688 1.71 riastrad /*
2689 1.71 riastrad * wapbl_circ_advance(wr, len, offp)
2690 1.71 riastrad *
2691 1.71 riastrad * Compute the linear byte offset of the circular queue of wr that
2692 1.71 riastrad * is len bytes past *offp, and store it in *offp.
2693 1.71 riastrad *
2694 1.71 riastrad * This is as if wapbl_circ_read, but without actually reading
2695 1.71 riastrad * anything.
2696 1.71 riastrad *
2697 1.71 riastrad * If the starting linear byte offset precedes wr->wr_circ_off, it
2698 1.71 riastrad * is taken to be wr->wr_circ_off instead. XXX WTF? This should
2699 1.71 riastrad * be a KASSERT, not a conditional.
2700 1.71 riastrad */
2701 1.2 simonb static void
2702 1.2 simonb wapbl_circ_advance(struct wapbl_replay *wr, size_t len, off_t *offp)
2703 1.2 simonb {
2704 1.2 simonb size_t slen;
2705 1.2 simonb off_t off = *offp;
2706 1.2 simonb
2707 1.14 joerg KASSERT(((len >> wr->wr_log_dev_bshift) <<
2708 1.14 joerg wr->wr_log_dev_bshift) == len);
2709 1.2 simonb
2710 1.14 joerg if (off < wr->wr_circ_off)
2711 1.14 joerg off = wr->wr_circ_off;
2712 1.14 joerg slen = wr->wr_circ_off + wr->wr_circ_size - off;
2713 1.2 simonb if (slen < len) {
2714 1.2 simonb len -= slen;
2715 1.14 joerg off = wr->wr_circ_off;
2716 1.2 simonb }
2717 1.2 simonb off += len;
2718 1.14 joerg if (off >= wr->wr_circ_off + wr->wr_circ_size)
2719 1.14 joerg off = wr->wr_circ_off;
2720 1.2 simonb *offp = off;
2721 1.2 simonb }
2722 1.2 simonb
2723 1.2 simonb /****************************************************************/
2724 1.2 simonb
2725 1.2 simonb int
2726 1.2 simonb wapbl_replay_start(struct wapbl_replay **wrp, struct vnode *vp,
2727 1.2 simonb daddr_t off, size_t count, size_t blksize)
2728 1.2 simonb {
2729 1.2 simonb struct wapbl_replay *wr;
2730 1.2 simonb int error;
2731 1.2 simonb struct vnode *devvp;
2732 1.2 simonb daddr_t logpbn;
2733 1.2 simonb uint8_t *scratch;
2734 1.2 simonb struct wapbl_wc_header *wch;
2735 1.2 simonb struct wapbl_wc_header *wch2;
2736 1.2 simonb /* Use this until we read the actual log header */
2737 1.31 mlelstv int log_dev_bshift = ilog2(blksize);
2738 1.2 simonb size_t used;
2739 1.34 mlelstv daddr_t pbn;
2740 1.2 simonb
2741 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_REPLAY,
2742 1.2 simonb ("wapbl_replay_start: vp=%p off=%"PRId64 " count=%zu blksize=%zu\n",
2743 1.2 simonb vp, off, count, blksize));
2744 1.2 simonb
2745 1.2 simonb if (off < 0)
2746 1.2 simonb return EINVAL;
2747 1.2 simonb
2748 1.2 simonb if (blksize < DEV_BSIZE)
2749 1.2 simonb return EINVAL;
2750 1.2 simonb if (blksize % DEV_BSIZE)
2751 1.2 simonb return EINVAL;
2752 1.2 simonb
2753 1.2 simonb #ifdef _KERNEL
2754 1.2 simonb #if 0
2755 1.2 simonb /* XXX vp->v_size isn't reliably set for VBLK devices,
2756 1.2 simonb * especially root. However, we might still want to verify
2757 1.2 simonb * that the full load is readable */
2758 1.2 simonb if ((off + count) * blksize > vp->v_size)
2759 1.2 simonb return EINVAL;
2760 1.2 simonb #endif
2761 1.2 simonb if ((error = VOP_BMAP(vp, off, &devvp, &logpbn, 0)) != 0) {
2762 1.2 simonb return error;
2763 1.2 simonb }
2764 1.2 simonb #else /* ! _KERNEL */
2765 1.2 simonb devvp = vp;
2766 1.2 simonb logpbn = off;
2767 1.2 simonb #endif /* ! _KERNEL */
2768 1.2 simonb
2769 1.51 para scratch = wapbl_alloc(MAXBSIZE);
2770 1.2 simonb
2771 1.34 mlelstv pbn = logpbn;
2772 1.34 mlelstv #ifdef _KERNEL
2773 1.34 mlelstv pbn = btodb(pbn << log_dev_bshift);
2774 1.34 mlelstv #endif
2775 1.34 mlelstv error = wapbl_read(scratch, 2<<log_dev_bshift, devvp, pbn);
2776 1.2 simonb if (error)
2777 1.2 simonb goto errout;
2778 1.2 simonb
2779 1.2 simonb wch = (struct wapbl_wc_header *)scratch;
2780 1.2 simonb wch2 =
2781 1.2 simonb (struct wapbl_wc_header *)(scratch + (1<<log_dev_bshift));
2782 1.2 simonb /* XXX verify checksums and magic numbers */
2783 1.2 simonb if (wch->wc_type != WAPBL_WC_HEADER) {
2784 1.2 simonb printf("Unrecognized wapbl magic: 0x%08x\n", wch->wc_type);
2785 1.2 simonb error = EFTYPE;
2786 1.2 simonb goto errout;
2787 1.2 simonb }
2788 1.2 simonb
2789 1.2 simonb if (wch2->wc_generation > wch->wc_generation)
2790 1.2 simonb wch = wch2;
2791 1.2 simonb
2792 1.2 simonb wr = wapbl_calloc(1, sizeof(*wr));
2793 1.2 simonb
2794 1.2 simonb wr->wr_logvp = vp;
2795 1.2 simonb wr->wr_devvp = devvp;
2796 1.2 simonb wr->wr_logpbn = logpbn;
2797 1.2 simonb
2798 1.2 simonb wr->wr_scratch = scratch;
2799 1.2 simonb
2800 1.14 joerg wr->wr_log_dev_bshift = wch->wc_log_dev_bshift;
2801 1.14 joerg wr->wr_fs_dev_bshift = wch->wc_fs_dev_bshift;
2802 1.14 joerg wr->wr_circ_off = wch->wc_circ_off;
2803 1.14 joerg wr->wr_circ_size = wch->wc_circ_size;
2804 1.14 joerg wr->wr_generation = wch->wc_generation;
2805 1.2 simonb
2806 1.2 simonb used = wapbl_space_used(wch->wc_circ_size, wch->wc_head, wch->wc_tail);
2807 1.2 simonb
2808 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_REPLAY,
2809 1.2 simonb ("wapbl_replay: head=%"PRId64" tail=%"PRId64" off=%"PRId64
2810 1.2 simonb " len=%"PRId64" used=%zu\n",
2811 1.2 simonb wch->wc_head, wch->wc_tail, wch->wc_circ_off,
2812 1.2 simonb wch->wc_circ_size, used));
2813 1.2 simonb
2814 1.2 simonb wapbl_blkhash_init(wr, (used >> wch->wc_fs_dev_bshift));
2815 1.11 joerg
2816 1.14 joerg error = wapbl_replay_process(wr, wch->wc_head, wch->wc_tail);
2817 1.2 simonb if (error) {
2818 1.2 simonb wapbl_replay_stop(wr);
2819 1.2 simonb wapbl_replay_free(wr);
2820 1.2 simonb return error;
2821 1.2 simonb }
2822 1.2 simonb
2823 1.2 simonb *wrp = wr;
2824 1.2 simonb return 0;
2825 1.2 simonb
2826 1.2 simonb errout:
2827 1.18 yamt wapbl_free(scratch, MAXBSIZE);
2828 1.2 simonb return error;
2829 1.2 simonb }
2830 1.2 simonb
2831 1.2 simonb void
2832 1.2 simonb wapbl_replay_stop(struct wapbl_replay *wr)
2833 1.2 simonb {
2834 1.2 simonb
2835 1.4 joerg if (!wapbl_replay_isopen(wr))
2836 1.4 joerg return;
2837 1.4 joerg
2838 1.2 simonb WAPBL_PRINTF(WAPBL_PRINT_REPLAY, ("wapbl_replay_stop called\n"));
2839 1.2 simonb
2840 1.18 yamt wapbl_free(wr->wr_scratch, MAXBSIZE);
2841 1.18 yamt wr->wr_scratch = NULL;
2842 1.2 simonb
2843 1.18 yamt wr->wr_logvp = NULL;
2844 1.2 simonb
2845 1.2 simonb wapbl_blkhash_clear(wr);
2846 1.2 simonb wapbl_blkhash_free(wr);
2847 1.2 simonb }
2848 1.2 simonb
2849 1.2 simonb void
2850 1.2 simonb wapbl_replay_free(struct wapbl_replay *wr)
2851 1.2 simonb {
2852 1.2 simonb
2853 1.2 simonb KDASSERT(!wapbl_replay_isopen(wr));
2854 1.2 simonb
2855 1.2 simonb if (wr->wr_inodes)
2856 1.18 yamt wapbl_free(wr->wr_inodes,
2857 1.18 yamt wr->wr_inodescnt * sizeof(wr->wr_inodes[0]));
2858 1.18 yamt wapbl_free(wr, sizeof(*wr));
2859 1.2 simonb }
2860 1.2 simonb
2861 1.4 joerg #ifdef _KERNEL
2862 1.2 simonb int
2863 1.2 simonb wapbl_replay_isopen1(struct wapbl_replay *wr)
2864 1.2 simonb {
2865 1.2 simonb
2866 1.2 simonb return wapbl_replay_isopen(wr);
2867 1.2 simonb }
2868 1.4 joerg #endif
2869 1.2 simonb
2870 1.62 mlelstv /*
2871 1.62 mlelstv * calculate the disk address for the i'th block in the wc_blockblist
2872 1.62 mlelstv * offset by j blocks of size blen.
2873 1.62 mlelstv *
2874 1.62 mlelstv * wc_daddr is always a kernel disk address in DEV_BSIZE units that
2875 1.62 mlelstv * was written to the journal.
2876 1.62 mlelstv *
2877 1.62 mlelstv * The kernel needs that address plus the offset in DEV_BSIZE units.
2878 1.62 mlelstv *
2879 1.62 mlelstv * Userland needs that address plus the offset in blen units.
2880 1.62 mlelstv *
2881 1.62 mlelstv */
2882 1.62 mlelstv static daddr_t
2883 1.62 mlelstv wapbl_block_daddr(struct wapbl_wc_blocklist *wc, int i, int j, int blen)
2884 1.62 mlelstv {
2885 1.62 mlelstv daddr_t pbn;
2886 1.62 mlelstv
2887 1.62 mlelstv #ifdef _KERNEL
2888 1.62 mlelstv pbn = wc->wc_blocks[i].wc_daddr + btodb(j * blen);
2889 1.62 mlelstv #else
2890 1.62 mlelstv pbn = dbtob(wc->wc_blocks[i].wc_daddr) / blen + j;
2891 1.62 mlelstv #endif
2892 1.62 mlelstv
2893 1.62 mlelstv return pbn;
2894 1.62 mlelstv }
2895 1.62 mlelstv
2896 1.10 joerg static void
2897 1.10 joerg wapbl_replay_process_blocks(struct wapbl_replay *wr, off_t *offp)
2898 1.10 joerg {
2899 1.10 joerg struct wapbl_wc_blocklist *wc =
2900 1.10 joerg (struct wapbl_wc_blocklist *)wr->wr_scratch;
2901 1.14 joerg int fsblklen = 1 << wr->wr_fs_dev_bshift;
2902 1.10 joerg int i, j, n;
2903 1.10 joerg
2904 1.10 joerg for (i = 0; i < wc->wc_blkcount; i++) {
2905 1.10 joerg /*
2906 1.10 joerg * Enter each physical block into the hashtable independently.
2907 1.10 joerg */
2908 1.14 joerg n = wc->wc_blocks[i].wc_dlen >> wr->wr_fs_dev_bshift;
2909 1.10 joerg for (j = 0; j < n; j++) {
2910 1.62 mlelstv wapbl_blkhash_ins(wr, wapbl_block_daddr(wc, i, j, fsblklen),
2911 1.10 joerg *offp);
2912 1.10 joerg wapbl_circ_advance(wr, fsblklen, offp);
2913 1.10 joerg }
2914 1.10 joerg }
2915 1.10 joerg }
2916 1.10 joerg
2917 1.10 joerg static void
2918 1.10 joerg wapbl_replay_process_revocations(struct wapbl_replay *wr)
2919 1.10 joerg {
2920 1.10 joerg struct wapbl_wc_blocklist *wc =
2921 1.10 joerg (struct wapbl_wc_blocklist *)wr->wr_scratch;
2922 1.34 mlelstv int fsblklen = 1 << wr->wr_fs_dev_bshift;
2923 1.10 joerg int i, j, n;
2924 1.10 joerg
2925 1.10 joerg for (i = 0; i < wc->wc_blkcount; i++) {
2926 1.10 joerg /*
2927 1.10 joerg * Remove any blocks found from the hashtable.
2928 1.10 joerg */
2929 1.14 joerg n = wc->wc_blocks[i].wc_dlen >> wr->wr_fs_dev_bshift;
2930 1.10 joerg for (j = 0; j < n; j++)
2931 1.62 mlelstv wapbl_blkhash_rem(wr, wapbl_block_daddr(wc, i, j, fsblklen));
2932 1.10 joerg }
2933 1.10 joerg }
2934 1.10 joerg
2935 1.10 joerg static void
2936 1.10 joerg wapbl_replay_process_inodes(struct wapbl_replay *wr, off_t oldoff, off_t newoff)
2937 1.10 joerg {
2938 1.10 joerg struct wapbl_wc_inodelist *wc =
2939 1.10 joerg (struct wapbl_wc_inodelist *)wr->wr_scratch;
2940 1.18 yamt void *new_inodes;
2941 1.18 yamt const size_t oldsize = wr->wr_inodescnt * sizeof(wr->wr_inodes[0]);
2942 1.18 yamt
2943 1.18 yamt KASSERT(sizeof(wr->wr_inodes[0]) == sizeof(wc->wc_inodes[0]));
2944 1.18 yamt
2945 1.10 joerg /*
2946 1.10 joerg * Keep track of where we found this so location won't be
2947 1.10 joerg * overwritten.
2948 1.10 joerg */
2949 1.10 joerg if (wc->wc_clear) {
2950 1.10 joerg wr->wr_inodestail = oldoff;
2951 1.10 joerg wr->wr_inodescnt = 0;
2952 1.12 joerg if (wr->wr_inodes != NULL) {
2953 1.18 yamt wapbl_free(wr->wr_inodes, oldsize);
2954 1.12 joerg wr->wr_inodes = NULL;
2955 1.12 joerg }
2956 1.10 joerg }
2957 1.10 joerg wr->wr_inodeshead = newoff;
2958 1.10 joerg if (wc->wc_inocnt == 0)
2959 1.10 joerg return;
2960 1.10 joerg
2961 1.51 para new_inodes = wapbl_alloc((wr->wr_inodescnt + wc->wc_inocnt) *
2962 1.18 yamt sizeof(wr->wr_inodes[0]));
2963 1.18 yamt if (wr->wr_inodes != NULL) {
2964 1.18 yamt memcpy(new_inodes, wr->wr_inodes, oldsize);
2965 1.18 yamt wapbl_free(wr->wr_inodes, oldsize);
2966 1.18 yamt }
2967 1.18 yamt wr->wr_inodes = new_inodes;
2968 1.10 joerg memcpy(&wr->wr_inodes[wr->wr_inodescnt], wc->wc_inodes,
2969 1.18 yamt wc->wc_inocnt * sizeof(wr->wr_inodes[0]));
2970 1.10 joerg wr->wr_inodescnt += wc->wc_inocnt;
2971 1.10 joerg }
2972 1.10 joerg
2973 1.2 simonb static int
2974 1.14 joerg wapbl_replay_process(struct wapbl_replay *wr, off_t head, off_t tail)
2975 1.2 simonb {
2976 1.2 simonb off_t off;
2977 1.2 simonb int error;
2978 1.2 simonb
2979 1.14 joerg int logblklen = 1 << wr->wr_log_dev_bshift;
2980 1.2 simonb
2981 1.2 simonb wapbl_blkhash_clear(wr);
2982 1.2 simonb
2983 1.14 joerg off = tail;
2984 1.14 joerg while (off != head) {
2985 1.2 simonb struct wapbl_wc_null *wcn;
2986 1.2 simonb off_t saveoff = off;
2987 1.2 simonb error = wapbl_circ_read(wr, wr->wr_scratch, logblklen, &off);
2988 1.2 simonb if (error)
2989 1.2 simonb goto errout;
2990 1.2 simonb wcn = (struct wapbl_wc_null *)wr->wr_scratch;
2991 1.2 simonb switch (wcn->wc_type) {
2992 1.2 simonb case WAPBL_WC_BLOCKS:
2993 1.10 joerg wapbl_replay_process_blocks(wr, &off);
2994 1.2 simonb break;
2995 1.2 simonb
2996 1.2 simonb case WAPBL_WC_REVOCATIONS:
2997 1.10 joerg wapbl_replay_process_revocations(wr);
2998 1.2 simonb break;
2999 1.2 simonb
3000 1.2 simonb case WAPBL_WC_INODES:
3001 1.10 joerg wapbl_replay_process_inodes(wr, saveoff, off);
3002 1.2 simonb break;
3003 1.10 joerg
3004 1.2 simonb default:
3005 1.2 simonb printf("Unrecognized wapbl type: 0x%08x\n",
3006 1.2 simonb wcn->wc_type);
3007 1.2 simonb error = EFTYPE;
3008 1.2 simonb goto errout;
3009 1.2 simonb }
3010 1.2 simonb wapbl_circ_advance(wr, wcn->wc_len, &saveoff);
3011 1.2 simonb if (off != saveoff) {
3012 1.2 simonb printf("wapbl_replay: corrupted records\n");
3013 1.2 simonb error = EFTYPE;
3014 1.2 simonb goto errout;
3015 1.2 simonb }
3016 1.2 simonb }
3017 1.2 simonb return 0;
3018 1.2 simonb
3019 1.2 simonb errout:
3020 1.2 simonb wapbl_blkhash_clear(wr);
3021 1.2 simonb return error;
3022 1.2 simonb }
3023 1.2 simonb
3024 1.13 joerg #if 0
3025 1.2 simonb int
3026 1.2 simonb wapbl_replay_verify(struct wapbl_replay *wr, struct vnode *fsdevvp)
3027 1.2 simonb {
3028 1.2 simonb off_t off;
3029 1.2 simonb int mismatchcnt = 0;
3030 1.14 joerg int logblklen = 1 << wr->wr_log_dev_bshift;
3031 1.14 joerg int fsblklen = 1 << wr->wr_fs_dev_bshift;
3032 1.51 para void *scratch1 = wapbl_alloc(MAXBSIZE);
3033 1.51 para void *scratch2 = wapbl_alloc(MAXBSIZE);
3034 1.2 simonb int error = 0;
3035 1.2 simonb
3036 1.2 simonb KDASSERT(wapbl_replay_isopen(wr));
3037 1.2 simonb
3038 1.2 simonb off = wch->wc_tail;
3039 1.2 simonb while (off != wch->wc_head) {
3040 1.2 simonb struct wapbl_wc_null *wcn;
3041 1.2 simonb #ifdef DEBUG
3042 1.2 simonb off_t saveoff = off;
3043 1.2 simonb #endif
3044 1.2 simonb error = wapbl_circ_read(wr, wr->wr_scratch, logblklen, &off);
3045 1.2 simonb if (error)
3046 1.2 simonb goto out;
3047 1.2 simonb wcn = (struct wapbl_wc_null *)wr->wr_scratch;
3048 1.2 simonb switch (wcn->wc_type) {
3049 1.2 simonb case WAPBL_WC_BLOCKS:
3050 1.2 simonb {
3051 1.2 simonb struct wapbl_wc_blocklist *wc =
3052 1.2 simonb (struct wapbl_wc_blocklist *)wr->wr_scratch;
3053 1.2 simonb int i;
3054 1.2 simonb for (i = 0; i < wc->wc_blkcount; i++) {
3055 1.2 simonb int foundcnt = 0;
3056 1.2 simonb int dirtycnt = 0;
3057 1.2 simonb int j, n;
3058 1.2 simonb /*
3059 1.2 simonb * Check each physical block into the
3060 1.2 simonb * hashtable independently
3061 1.2 simonb */
3062 1.2 simonb n = wc->wc_blocks[i].wc_dlen >>
3063 1.2 simonb wch->wc_fs_dev_bshift;
3064 1.2 simonb for (j = 0; j < n; j++) {
3065 1.2 simonb struct wapbl_blk *wb =
3066 1.2 simonb wapbl_blkhash_get(wr,
3067 1.62 mlelstv wapbl_block_daddr(wc, i, j, fsblklen));
3068 1.2 simonb if (wb && (wb->wb_off == off)) {
3069 1.2 simonb foundcnt++;
3070 1.2 simonb error =
3071 1.2 simonb wapbl_circ_read(wr,
3072 1.2 simonb scratch1, fsblklen,
3073 1.2 simonb &off);
3074 1.2 simonb if (error)
3075 1.2 simonb goto out;
3076 1.2 simonb error =
3077 1.2 simonb wapbl_read(scratch2,
3078 1.2 simonb fsblklen, fsdevvp,
3079 1.2 simonb wb->wb_blk);
3080 1.2 simonb if (error)
3081 1.2 simonb goto out;
3082 1.2 simonb if (memcmp(scratch1,
3083 1.2 simonb scratch2,
3084 1.2 simonb fsblklen)) {
3085 1.2 simonb printf(
3086 1.2 simonb "wapbl_verify: mismatch block %"PRId64" at off %"PRIdMAX"\n",
3087 1.2 simonb wb->wb_blk, (intmax_t)off);
3088 1.2 simonb dirtycnt++;
3089 1.2 simonb mismatchcnt++;
3090 1.2 simonb }
3091 1.2 simonb } else {
3092 1.2 simonb wapbl_circ_advance(wr,
3093 1.2 simonb fsblklen, &off);
3094 1.2 simonb }
3095 1.2 simonb }
3096 1.2 simonb #if 0
3097 1.2 simonb /*
3098 1.2 simonb * If all of the blocks in an entry
3099 1.2 simonb * are clean, then remove all of its
3100 1.2 simonb * blocks from the hashtable since they
3101 1.2 simonb * never will need replay.
3102 1.2 simonb */
3103 1.2 simonb if ((foundcnt != 0) &&
3104 1.2 simonb (dirtycnt == 0)) {
3105 1.2 simonb off = saveoff;
3106 1.2 simonb wapbl_circ_advance(wr,
3107 1.2 simonb logblklen, &off);
3108 1.2 simonb for (j = 0; j < n; j++) {
3109 1.2 simonb struct wapbl_blk *wb =
3110 1.2 simonb wapbl_blkhash_get(wr,
3111 1.62 mlelstv wapbl_block_daddr(wc, i, j, fsblklen));
3112 1.2 simonb if (wb &&
3113 1.2 simonb (wb->wb_off == off)) {
3114 1.2 simonb wapbl_blkhash_rem(wr, wb->wb_blk);
3115 1.2 simonb }
3116 1.2 simonb wapbl_circ_advance(wr,
3117 1.2 simonb fsblklen, &off);
3118 1.2 simonb }
3119 1.2 simonb }
3120 1.2 simonb #endif
3121 1.2 simonb }
3122 1.2 simonb }
3123 1.2 simonb break;
3124 1.2 simonb case WAPBL_WC_REVOCATIONS:
3125 1.2 simonb case WAPBL_WC_INODES:
3126 1.2 simonb break;
3127 1.2 simonb default:
3128 1.2 simonb KASSERT(0);
3129 1.2 simonb }
3130 1.2 simonb #ifdef DEBUG
3131 1.2 simonb wapbl_circ_advance(wr, wcn->wc_len, &saveoff);
3132 1.2 simonb KASSERT(off == saveoff);
3133 1.2 simonb #endif
3134 1.2 simonb }
3135 1.2 simonb out:
3136 1.18 yamt wapbl_free(scratch1, MAXBSIZE);
3137 1.18 yamt wapbl_free(scratch2, MAXBSIZE);
3138 1.2 simonb if (!error && mismatchcnt)
3139 1.2 simonb error = EFTYPE;
3140 1.2 simonb return error;
3141 1.2 simonb }
3142 1.2 simonb #endif
3143 1.2 simonb
3144 1.2 simonb int
3145 1.2 simonb wapbl_replay_write(struct wapbl_replay *wr, struct vnode *fsdevvp)
3146 1.2 simonb {
3147 1.9 joerg struct wapbl_blk *wb;
3148 1.9 joerg size_t i;
3149 1.2 simonb off_t off;
3150 1.9 joerg void *scratch;
3151 1.2 simonb int error = 0;
3152 1.14 joerg int fsblklen = 1 << wr->wr_fs_dev_bshift;
3153 1.2 simonb
3154 1.2 simonb KDASSERT(wapbl_replay_isopen(wr));
3155 1.2 simonb
3156 1.51 para scratch = wapbl_alloc(MAXBSIZE);
3157 1.2 simonb
3158 1.37 drochner for (i = 0; i <= wr->wr_blkhashmask; ++i) {
3159 1.9 joerg LIST_FOREACH(wb, &wr->wr_blkhash[i], wb_hash) {
3160 1.9 joerg off = wb->wb_off;
3161 1.9 joerg error = wapbl_circ_read(wr, scratch, fsblklen, &off);
3162 1.9 joerg if (error)
3163 1.9 joerg break;
3164 1.9 joerg error = wapbl_write(scratch, fsblklen, fsdevvp,
3165 1.9 joerg wb->wb_blk);
3166 1.9 joerg if (error)
3167 1.9 joerg break;
3168 1.2 simonb }
3169 1.2 simonb }
3170 1.9 joerg
3171 1.18 yamt wapbl_free(scratch, MAXBSIZE);
3172 1.2 simonb return error;
3173 1.2 simonb }
3174 1.2 simonb
3175 1.2 simonb int
3176 1.6 joerg wapbl_replay_can_read(struct wapbl_replay *wr, daddr_t blk, long len)
3177 1.6 joerg {
3178 1.14 joerg int fsblklen = 1 << wr->wr_fs_dev_bshift;
3179 1.6 joerg
3180 1.6 joerg KDASSERT(wapbl_replay_isopen(wr));
3181 1.6 joerg KASSERT((len % fsblklen) == 0);
3182 1.6 joerg
3183 1.6 joerg while (len != 0) {
3184 1.6 joerg struct wapbl_blk *wb = wapbl_blkhash_get(wr, blk);
3185 1.6 joerg if (wb)
3186 1.6 joerg return 1;
3187 1.6 joerg len -= fsblklen;
3188 1.6 joerg }
3189 1.6 joerg return 0;
3190 1.6 joerg }
3191 1.6 joerg
3192 1.6 joerg int
3193 1.2 simonb wapbl_replay_read(struct wapbl_replay *wr, void *data, daddr_t blk, long len)
3194 1.2 simonb {
3195 1.14 joerg int fsblklen = 1 << wr->wr_fs_dev_bshift;
3196 1.2 simonb
3197 1.2 simonb KDASSERT(wapbl_replay_isopen(wr));
3198 1.2 simonb
3199 1.2 simonb KASSERT((len % fsblklen) == 0);
3200 1.2 simonb
3201 1.2 simonb while (len != 0) {
3202 1.2 simonb struct wapbl_blk *wb = wapbl_blkhash_get(wr, blk);
3203 1.2 simonb if (wb) {
3204 1.2 simonb off_t off = wb->wb_off;
3205 1.2 simonb int error;
3206 1.2 simonb error = wapbl_circ_read(wr, data, fsblklen, &off);
3207 1.2 simonb if (error)
3208 1.2 simonb return error;
3209 1.2 simonb }
3210 1.2 simonb data = (uint8_t *)data + fsblklen;
3211 1.2 simonb len -= fsblklen;
3212 1.2 simonb blk++;
3213 1.2 simonb }
3214 1.2 simonb return 0;
3215 1.2 simonb }
3216 1.35 pooka
3217 1.36 pooka #ifdef _KERNEL
3218 1.64 pgoyette
3219 1.35 pooka MODULE(MODULE_CLASS_VFS, wapbl, NULL);
3220 1.35 pooka
3221 1.35 pooka static int
3222 1.35 pooka wapbl_modcmd(modcmd_t cmd, void *arg)
3223 1.35 pooka {
3224 1.35 pooka
3225 1.35 pooka switch (cmd) {
3226 1.35 pooka case MODULE_CMD_INIT:
3227 1.39 christos wapbl_init();
3228 1.35 pooka return 0;
3229 1.35 pooka case MODULE_CMD_FINI:
3230 1.74 riastrad return wapbl_fini();
3231 1.35 pooka default:
3232 1.35 pooka return ENOTTY;
3233 1.35 pooka }
3234 1.35 pooka }
3235 1.36 pooka #endif /* _KERNEL */
3236