udf_strat_sequential.c revision 1.1 1 1.1 reinoud /* $NetBSD: udf_strat_sequential.c,v 1.1 2008/05/14 16:49:48 reinoud Exp $ */
2 1.1 reinoud
3 1.1 reinoud /*
4 1.1 reinoud * Copyright (c) 2006, 2008 Reinoud Zandijk
5 1.1 reinoud * All rights reserved.
6 1.1 reinoud *
7 1.1 reinoud * Redistribution and use in source and binary forms, with or without
8 1.1 reinoud * modification, are permitted provided that the following conditions
9 1.1 reinoud * are met:
10 1.1 reinoud * 1. Redistributions of source code must retain the above copyright
11 1.1 reinoud * notice, this list of conditions and the following disclaimer.
12 1.1 reinoud * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 reinoud * notice, this list of conditions and the following disclaimer in the
14 1.1 reinoud * documentation and/or other materials provided with the distribution.
15 1.1 reinoud *
16 1.1 reinoud * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
17 1.1 reinoud * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
18 1.1 reinoud * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
19 1.1 reinoud * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
20 1.1 reinoud * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
21 1.1 reinoud * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
22 1.1 reinoud * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
23 1.1 reinoud * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
24 1.1 reinoud * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
25 1.1 reinoud * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
26 1.1 reinoud *
27 1.1 reinoud */
28 1.1 reinoud
29 1.1 reinoud #include <sys/cdefs.h>
30 1.1 reinoud #ifndef lint
31 1.1 reinoud __KERNEL_RCSID(0, "$NetBSD: udf_strat_sequential.c,v 1.1 2008/05/14 16:49:48 reinoud Exp $");
32 1.1 reinoud #endif /* not lint */
33 1.1 reinoud
34 1.1 reinoud
35 1.1 reinoud #if defined(_KERNEL_OPT)
36 1.1 reinoud #include "opt_quota.h"
37 1.1 reinoud #include "opt_compat_netbsd.h"
38 1.1 reinoud #endif
39 1.1 reinoud
40 1.1 reinoud #include <sys/param.h>
41 1.1 reinoud #include <sys/systm.h>
42 1.1 reinoud #include <sys/sysctl.h>
43 1.1 reinoud #include <sys/namei.h>
44 1.1 reinoud #include <sys/proc.h>
45 1.1 reinoud #include <sys/kernel.h>
46 1.1 reinoud #include <sys/vnode.h>
47 1.1 reinoud #include <miscfs/genfs/genfs_node.h>
48 1.1 reinoud #include <sys/mount.h>
49 1.1 reinoud #include <sys/buf.h>
50 1.1 reinoud #include <sys/file.h>
51 1.1 reinoud #include <sys/device.h>
52 1.1 reinoud #include <sys/disklabel.h>
53 1.1 reinoud #include <sys/ioctl.h>
54 1.1 reinoud #include <sys/malloc.h>
55 1.1 reinoud #include <sys/dirent.h>
56 1.1 reinoud #include <sys/stat.h>
57 1.1 reinoud #include <sys/conf.h>
58 1.1 reinoud #include <sys/kauth.h>
59 1.1 reinoud #include <sys/kthread.h>
60 1.1 reinoud #include <dev/clock_subr.h>
61 1.1 reinoud
62 1.1 reinoud #include <fs/udf/ecma167-udf.h>
63 1.1 reinoud #include <fs/udf/udf_mount.h>
64 1.1 reinoud
65 1.1 reinoud #if defined(_KERNEL_OPT)
66 1.1 reinoud #include "opt_udf.h"
67 1.1 reinoud #endif
68 1.1 reinoud
69 1.1 reinoud #include "udf.h"
70 1.1 reinoud #include "udf_subr.h"
71 1.1 reinoud #include "udf_bswap.h"
72 1.1 reinoud
73 1.1 reinoud
74 1.1 reinoud #define VTOI(vnode) ((struct udf_node *) vnode->v_data)
75 1.1 reinoud #define PRIV(ump) ((struct strat_private *) ump->strategy_private)
76 1.1 reinoud
77 1.1 reinoud /* --------------------------------------------------------------------- */
78 1.1 reinoud
79 1.1 reinoud /* BUFQ's */
80 1.1 reinoud #define UDF_SHED_MAX 3
81 1.1 reinoud
82 1.1 reinoud #define UDF_SHED_READING 0
83 1.1 reinoud #define UDF_SHED_WRITING 1
84 1.1 reinoud #define UDF_SHED_SEQWRITING 2
85 1.1 reinoud
86 1.1 reinoud struct strat_private {
87 1.1 reinoud struct pool desc_pool; /* node descriptors */
88 1.1 reinoud
89 1.1 reinoud lwp_t *queue_lwp;
90 1.1 reinoud kcondvar_t discstrat_cv; /* to wait on */
91 1.1 reinoud kmutex_t discstrat_mutex; /* disc strategy */
92 1.1 reinoud
93 1.1 reinoud int run_thread; /* thread control */
94 1.1 reinoud int cur_queue;
95 1.1 reinoud
96 1.1 reinoud struct disk_strategy old_strategy_setting;
97 1.1 reinoud struct bufq_state *queues[UDF_SHED_MAX];
98 1.1 reinoud struct timespec last_queued[UDF_SHED_MAX];
99 1.1 reinoud };
100 1.1 reinoud
101 1.1 reinoud
102 1.1 reinoud /* --------------------------------------------------------------------- */
103 1.1 reinoud
104 1.1 reinoud static void
105 1.1 reinoud udf_wr_nodedscr_callback(struct buf *buf)
106 1.1 reinoud {
107 1.1 reinoud struct udf_node *udf_node;
108 1.1 reinoud
109 1.1 reinoud KASSERT(buf);
110 1.1 reinoud KASSERT(buf->b_data);
111 1.1 reinoud
112 1.1 reinoud /* called when write action is done */
113 1.1 reinoud DPRINTF(WRITE, ("udf_wr_nodedscr_callback(): node written out\n"));
114 1.1 reinoud
115 1.1 reinoud udf_node = VTOI(buf->b_vp);
116 1.1 reinoud if (udf_node == NULL) {
117 1.1 reinoud putiobuf(buf);
118 1.1 reinoud printf("udf_wr_node_callback: NULL node?\n");
119 1.1 reinoud return;
120 1.1 reinoud }
121 1.1 reinoud
122 1.1 reinoud /* XXX noone is waiting on this outstanding_nodedscr */
123 1.1 reinoud udf_node->outstanding_nodedscr--;
124 1.1 reinoud if (udf_node->outstanding_nodedscr == 0)
125 1.1 reinoud wakeup(&udf_node->outstanding_nodedscr);
126 1.1 reinoud
127 1.1 reinoud /* XXX right flags to mark dirty again on error? */
128 1.1 reinoud if (buf->b_error) {
129 1.1 reinoud udf_node->i_flags |= IN_MODIFIED | IN_ACCESSED;
130 1.1 reinoud /* XXX TODO reshedule on error */
131 1.1 reinoud }
132 1.1 reinoud
133 1.1 reinoud /* first unlock the node */
134 1.1 reinoud KASSERT(udf_node->i_flags & IN_CALLBACK_ULK);
135 1.1 reinoud UDF_UNLOCK_NODE(udf_node, IN_CALLBACK_ULK);
136 1.1 reinoud
137 1.1 reinoud /* unreference the vnode so it can be recycled */
138 1.1 reinoud holdrele(udf_node->vnode);
139 1.1 reinoud
140 1.1 reinoud putiobuf(buf);
141 1.1 reinoud }
142 1.1 reinoud
143 1.1 reinoud /* --------------------------------------------------------------------- */
144 1.1 reinoud
145 1.1 reinoud static int
146 1.1 reinoud udf_create_logvol_dscr_seq(struct udf_strat_args *args)
147 1.1 reinoud {
148 1.1 reinoud union dscrptr **dscrptr = &args->dscr;
149 1.1 reinoud struct udf_mount *ump = args->ump;
150 1.1 reinoud struct strat_private *priv = PRIV(ump);
151 1.1 reinoud uint32_t lb_size;
152 1.1 reinoud
153 1.1 reinoud lb_size = udf_rw32(ump->logical_vol->lb_size);
154 1.1 reinoud *dscrptr = pool_get(&priv->desc_pool, PR_WAITOK);
155 1.1 reinoud memset(*dscrptr, 0, lb_size);
156 1.1 reinoud
157 1.1 reinoud return 0;
158 1.1 reinoud }
159 1.1 reinoud
160 1.1 reinoud
161 1.1 reinoud static void
162 1.1 reinoud udf_free_logvol_dscr_seq(struct udf_strat_args *args)
163 1.1 reinoud {
164 1.1 reinoud union dscrptr *dscr = args->dscr;
165 1.1 reinoud struct udf_mount *ump = args->ump;
166 1.1 reinoud struct strat_private *priv = PRIV(ump);
167 1.1 reinoud
168 1.1 reinoud pool_put(&priv->desc_pool, dscr);
169 1.1 reinoud }
170 1.1 reinoud
171 1.1 reinoud
172 1.1 reinoud static int
173 1.1 reinoud udf_read_logvol_dscr_seq(struct udf_strat_args *args)
174 1.1 reinoud {
175 1.1 reinoud union dscrptr **dscrptr = &args->dscr;
176 1.1 reinoud union dscrptr *tmpdscr;
177 1.1 reinoud struct udf_mount *ump = args->ump;
178 1.1 reinoud struct long_ad *icb = args->icb;
179 1.1 reinoud struct strat_private *priv = PRIV(ump);
180 1.1 reinoud uint32_t lb_size;
181 1.1 reinoud uint32_t sector, dummy;
182 1.1 reinoud int error;
183 1.1 reinoud
184 1.1 reinoud lb_size = udf_rw32(ump->logical_vol->lb_size);
185 1.1 reinoud
186 1.1 reinoud error = udf_translate_vtop(ump, icb, §or, &dummy);
187 1.1 reinoud if (error)
188 1.1 reinoud return error;
189 1.1 reinoud
190 1.1 reinoud /* try to read in fe/efe */
191 1.1 reinoud error = udf_read_phys_dscr(ump, sector, M_UDFTEMP, &tmpdscr);
192 1.1 reinoud if (error)
193 1.1 reinoud return error;
194 1.1 reinoud
195 1.1 reinoud *dscrptr = pool_get(&priv->desc_pool, PR_WAITOK);
196 1.1 reinoud memcpy(*dscrptr, tmpdscr, lb_size);
197 1.1 reinoud free(tmpdscr, M_UDFTEMP);
198 1.1 reinoud
199 1.1 reinoud return 0;
200 1.1 reinoud }
201 1.1 reinoud
202 1.1 reinoud
203 1.1 reinoud static int
204 1.1 reinoud udf_write_logvol_dscr_seq(struct udf_strat_args *args)
205 1.1 reinoud {
206 1.1 reinoud union dscrptr *dscr = args->dscr;
207 1.1 reinoud struct udf_mount *ump = args->ump;
208 1.1 reinoud struct udf_node *udf_node = args->udf_node;
209 1.1 reinoud struct long_ad *icb = args->icb;
210 1.1 reinoud int waitfor = args->waitfor;
211 1.1 reinoud uint32_t logsectornr, sectornr, dummy;
212 1.1 reinoud int error, vpart;
213 1.1 reinoud
214 1.1 reinoud /*
215 1.1 reinoud * we have to decide if we write it out sequential or at its fixed
216 1.1 reinoud * position by examining the partition its (to be) written on.
217 1.1 reinoud */
218 1.1 reinoud vpart = udf_rw16(udf_node->loc.loc.part_num);
219 1.1 reinoud logsectornr = udf_rw32(icb->loc.lb_num);
220 1.1 reinoud sectornr = 0;
221 1.1 reinoud if (ump->vtop_tp[vpart] != UDF_VTOP_TYPE_VIRT) {
222 1.1 reinoud error = udf_translate_vtop(ump, icb, §ornr, &dummy);
223 1.1 reinoud if (error)
224 1.1 reinoud return error;
225 1.1 reinoud }
226 1.1 reinoud
227 1.1 reinoud UDF_LOCK_NODE(udf_node, IN_CALLBACK_ULK);
228 1.1 reinoud
229 1.1 reinoud if (waitfor) {
230 1.1 reinoud DPRINTF(WRITE, ("udf_write_logvol_dscr: sync write\n"));
231 1.1 reinoud
232 1.1 reinoud error = udf_write_phys_dscr_sync(ump, udf_node, UDF_C_NODE,
233 1.1 reinoud dscr, sectornr, logsectornr);
234 1.1 reinoud UDF_UNLOCK_NODE(udf_node, IN_CALLBACK_ULK);
235 1.1 reinoud } else {
236 1.1 reinoud DPRINTF(WRITE, ("udf_write_logvol_dscr: no wait, async write\n"));
237 1.1 reinoud
238 1.1 reinoud /* add reference to the vnode to prevent recycling */
239 1.1 reinoud vhold(udf_node->vnode);
240 1.1 reinoud
241 1.1 reinoud udf_node->outstanding_nodedscr++;
242 1.1 reinoud
243 1.1 reinoud error = udf_write_phys_dscr_async(ump, udf_node, UDF_C_NODE,
244 1.1 reinoud dscr, sectornr, logsectornr, udf_wr_nodedscr_callback);
245 1.1 reinoud /* will be UNLOCKED in call back */
246 1.1 reinoud }
247 1.1 reinoud
248 1.1 reinoud return error;
249 1.1 reinoud }
250 1.1 reinoud
251 1.1 reinoud /* --------------------------------------------------------------------- */
252 1.1 reinoud
253 1.1 reinoud /*
254 1.1 reinoud * Main file-system specific sheduler. Due to the nature of optical media
255 1.1 reinoud * sheduling can't be performed in the traditional way. Most OS
256 1.1 reinoud * implementations i've seen thus read or write a file atomically giving all
257 1.1 reinoud * kinds of side effects.
258 1.1 reinoud *
259 1.1 reinoud * This implementation uses a kernel thread to shedule the queued requests in
260 1.1 reinoud * such a way that is semi-optimal for optical media; this means aproximately
261 1.1 reinoud * (R*|(Wr*|Ws*))* since switching between reading and writing is expensive in
262 1.1 reinoud * time.
263 1.1 reinoud */
264 1.1 reinoud
265 1.1 reinoud static void
266 1.1 reinoud udf_queuebuf_seq(struct udf_strat_args *args)
267 1.1 reinoud {
268 1.1 reinoud struct udf_mount *ump = args->ump;
269 1.1 reinoud struct buf *nestbuf = args->nestbuf;
270 1.1 reinoud struct strat_private *priv = PRIV(ump);
271 1.1 reinoud int queue;
272 1.1 reinoud int what;
273 1.1 reinoud
274 1.1 reinoud KASSERT(ump);
275 1.1 reinoud KASSERT(nestbuf);
276 1.1 reinoud KASSERT(nestbuf->b_iodone == nestiobuf_iodone);
277 1.1 reinoud
278 1.1 reinoud what = nestbuf->b_udf_c_type;
279 1.1 reinoud queue = UDF_SHED_READING;
280 1.1 reinoud if ((nestbuf->b_flags & B_READ) == 0) {
281 1.1 reinoud /* writing */
282 1.1 reinoud queue = UDF_SHED_SEQWRITING;
283 1.1 reinoud if (what == UDF_C_DSCR)
284 1.1 reinoud queue = UDF_SHED_WRITING;
285 1.1 reinoud if (what == UDF_C_NODE) {
286 1.1 reinoud if (ump->meta_alloc != UDF_ALLOC_VAT)
287 1.1 reinoud queue = UDF_SHED_WRITING;
288 1.1 reinoud }
289 1.1 reinoud #if 0
290 1.1 reinoud if (queue == UDF_SHED_SEQWRITING) {
291 1.1 reinoud /* TODO do add sector to uncommitted space */
292 1.1 reinoud }
293 1.1 reinoud #endif
294 1.1 reinoud }
295 1.1 reinoud
296 1.1 reinoud /* use our own sheduler lists for more complex sheduling */
297 1.1 reinoud mutex_enter(&priv->discstrat_mutex);
298 1.1 reinoud BUFQ_PUT(priv->queues[queue], nestbuf);
299 1.1 reinoud vfs_timestamp(&priv->last_queued[queue]);
300 1.1 reinoud mutex_exit(&priv->discstrat_mutex);
301 1.1 reinoud
302 1.1 reinoud /* signal our thread that there might be something to do */
303 1.1 reinoud cv_signal(&priv->discstrat_cv);
304 1.1 reinoud }
305 1.1 reinoud
306 1.1 reinoud /* --------------------------------------------------------------------- */
307 1.1 reinoud
308 1.1 reinoud /* TODO convert to lb_size */
309 1.1 reinoud static void
310 1.1 reinoud udf_VAT_mapping_update(struct udf_mount *ump, struct buf *buf)
311 1.1 reinoud {
312 1.1 reinoud union dscrptr *fdscr = (union dscrptr *) buf->b_data;
313 1.1 reinoud struct vnode *vp = buf->b_vp;
314 1.1 reinoud struct udf_node *udf_node = VTOI(vp);
315 1.1 reinoud struct part_desc *pdesc;
316 1.1 reinoud uint32_t lb_size, blks;
317 1.1 reinoud uint32_t lb_num, lb_map;
318 1.1 reinoud uint32_t udf_rw32_lbmap;
319 1.1 reinoud int c_type = buf->b_udf_c_type;
320 1.1 reinoud int error;
321 1.1 reinoud
322 1.1 reinoud /* only interested when we're using a VAT */
323 1.1 reinoud if (ump->meta_alloc != UDF_ALLOC_VAT)
324 1.1 reinoud return;
325 1.1 reinoud KASSERT(ump->vat_node);
326 1.1 reinoud
327 1.1 reinoud /* only nodes are recorded in the VAT */
328 1.1 reinoud /* NOTE: and the fileset descriptor (FIXME ?) */
329 1.1 reinoud if (c_type != UDF_C_NODE)
330 1.1 reinoud return;
331 1.1 reinoud
332 1.1 reinoud /* we now have an UDF FE/EFE node on media with VAT (or VAT itself) */
333 1.1 reinoud lb_size = udf_rw32(ump->logical_vol->lb_size);
334 1.1 reinoud blks = lb_size / DEV_BSIZE;
335 1.1 reinoud
336 1.1 reinoud /* calculate offset from base partition */
337 1.1 reinoud pdesc = ump->partitions[ump->vtop[ump->metadata_part]];
338 1.1 reinoud lb_map = buf->b_blkno / blks;
339 1.1 reinoud lb_map -= udf_rw32(pdesc->start_loc);
340 1.1 reinoud
341 1.1 reinoud udf_rw32_lbmap = udf_rw32(lb_map);
342 1.1 reinoud
343 1.1 reinoud /* if we're the VAT itself, only update our assigned sector number */
344 1.1 reinoud if (udf_node == ump->vat_node) {
345 1.1 reinoud fdscr->tag.tag_loc = udf_rw32_lbmap;
346 1.1 reinoud udf_validate_tag_sum(fdscr);
347 1.1 reinoud DPRINTF(TRANSLATE, ("VAT assigned to sector %u\n",
348 1.1 reinoud udf_rw32(udf_rw32_lbmap)));
349 1.1 reinoud /* no use mapping the VAT node in the VAT */
350 1.1 reinoud return;
351 1.1 reinoud }
352 1.1 reinoud
353 1.1 reinoud /* check for tag location is false for allocation extents */
354 1.1 reinoud KASSERT(fdscr->tag.tag_loc == udf_node->write_loc.loc.lb_num);
355 1.1 reinoud
356 1.1 reinoud /* record new position in VAT file */
357 1.1 reinoud lb_num = udf_rw32(udf_node->write_loc.loc.lb_num);
358 1.1 reinoud
359 1.1 reinoud DPRINTF(TRANSLATE, ("VAT entry change (log %u -> phys %u)\n",
360 1.1 reinoud lb_num, lb_map));
361 1.1 reinoud
362 1.1 reinoud /* VAT should be the longer than this write, can't go wrong */
363 1.1 reinoud KASSERT(lb_num <= ump->vat_entries);
364 1.1 reinoud
365 1.1 reinoud mutex_enter(&ump->allocate_mutex);
366 1.1 reinoud error = udf_vat_write(ump->vat_node,
367 1.1 reinoud (uint8_t *) &udf_rw32_lbmap, 4,
368 1.1 reinoud ump->vat_offset + lb_num * 4);
369 1.1 reinoud mutex_exit(&ump->allocate_mutex);
370 1.1 reinoud
371 1.1 reinoud if (error)
372 1.1 reinoud panic( "udf_VAT_mapping_update: HELP! i couldn't "
373 1.1 reinoud "write in the VAT file ?\n");
374 1.1 reinoud }
375 1.1 reinoud
376 1.1 reinoud
377 1.1 reinoud static void
378 1.1 reinoud udf_issue_buf(struct udf_mount *ump, int queue, struct buf *buf)
379 1.1 reinoud {
380 1.1 reinoud struct long_ad *node_ad_cpy;
381 1.1 reinoud uint64_t *lmapping, *pmapping, *lmappos, blknr;
382 1.1 reinoud uint32_t our_sectornr, sectornr, bpos;
383 1.1 reinoud uint8_t *fidblk;
384 1.1 reinoud int sector_size = ump->discinfo.sector_size;
385 1.1 reinoud int blks = sector_size / DEV_BSIZE;
386 1.1 reinoud int len, buf_len;
387 1.1 reinoud
388 1.1 reinoud /* if reading, just pass to the device's STRATEGY */
389 1.1 reinoud if (queue == UDF_SHED_READING) {
390 1.1 reinoud DPRINTF(SHEDULE, ("\nudf_issue_buf READ %p : sector %d type %d,"
391 1.1 reinoud "b_resid %d, b_bcount %d, b_bufsize %d\n",
392 1.1 reinoud buf, (uint32_t) buf->b_blkno / blks, buf->b_udf_c_type,
393 1.1 reinoud buf->b_resid, buf->b_bcount, buf->b_bufsize));
394 1.1 reinoud VOP_STRATEGY(ump->devvp, buf);
395 1.1 reinoud return;
396 1.1 reinoud }
397 1.1 reinoud
398 1.1 reinoud blknr = buf->b_blkno;
399 1.1 reinoud our_sectornr = blknr / blks;
400 1.1 reinoud
401 1.1 reinoud if (queue == UDF_SHED_WRITING) {
402 1.1 reinoud DPRINTF(SHEDULE, ("\nudf_issue_buf WRITE %p : sector %d "
403 1.1 reinoud "type %d, b_resid %d, b_bcount %d, b_bufsize %d\n",
404 1.1 reinoud buf, (uint32_t) buf->b_blkno / blks, buf->b_udf_c_type,
405 1.1 reinoud buf->b_resid, buf->b_bcount, buf->b_bufsize));
406 1.1 reinoud /* if we have FIDs fixup using buffer's sector number(s) */
407 1.1 reinoud if (buf->b_udf_c_type == UDF_C_FIDS) {
408 1.1 reinoud panic("UDF_C_FIDS in SHED_WRITING!\n");
409 1.1 reinoud buf_len = buf->b_bcount;
410 1.1 reinoud sectornr = our_sectornr;
411 1.1 reinoud bpos = 0;
412 1.1 reinoud while (buf_len) {
413 1.1 reinoud len = MIN(buf_len, sector_size);
414 1.1 reinoud fidblk = (uint8_t *) buf->b_data + bpos;
415 1.1 reinoud udf_fixup_fid_block(fidblk, sector_size,
416 1.1 reinoud 0, len, sectornr);
417 1.1 reinoud sectornr++;
418 1.1 reinoud bpos += len;
419 1.1 reinoud buf_len -= len;
420 1.1 reinoud }
421 1.1 reinoud }
422 1.1 reinoud udf_fixup_node_internals(ump, buf->b_data, buf->b_udf_c_type);
423 1.1 reinoud VOP_STRATEGY(ump->devvp, buf);
424 1.1 reinoud return;
425 1.1 reinoud }
426 1.1 reinoud
427 1.1 reinoud KASSERT(queue == UDF_SHED_SEQWRITING);
428 1.1 reinoud DPRINTF(SHEDULE, ("\nudf_issue_buf SEQWRITE %p : sector XXXX "
429 1.1 reinoud "type %d, b_resid %d, b_bcount %d, b_bufsize %d\n",
430 1.1 reinoud buf, buf->b_udf_c_type, buf->b_resid, buf->b_bcount,
431 1.1 reinoud buf->b_bufsize));
432 1.1 reinoud
433 1.1 reinoud /*
434 1.1 reinoud * Buffers should not have been allocated to disc addresses yet on
435 1.1 reinoud * this queue. Note that a buffer can get multiple extents allocated.
436 1.1 reinoud *
437 1.1 reinoud * lmapping contains lb_num relative to base partition.
438 1.1 reinoud * pmapping contains lb_num as used for disc adressing.
439 1.1 reinoud */
440 1.1 reinoud lmapping = ump->la_lmapping;
441 1.1 reinoud pmapping = ump->la_pmapping;
442 1.1 reinoud node_ad_cpy = ump->la_node_ad_cpy;
443 1.1 reinoud
444 1.1 reinoud /* allocate buf and get its logical and physical mappings */
445 1.1 reinoud udf_late_allocate_buf(ump, buf, lmapping, pmapping, node_ad_cpy);
446 1.1 reinoud udf_VAT_mapping_update(ump, buf); /* XXX could pass *lmapping */
447 1.1 reinoud
448 1.1 reinoud /* if we have FIDs, fixup using the new allocation table */
449 1.1 reinoud if (buf->b_udf_c_type == UDF_C_FIDS) {
450 1.1 reinoud buf_len = buf->b_bcount;
451 1.1 reinoud bpos = 0;
452 1.1 reinoud lmappos = lmapping;
453 1.1 reinoud while (buf_len) {
454 1.1 reinoud sectornr = *lmappos++;
455 1.1 reinoud len = MIN(buf_len, sector_size);
456 1.1 reinoud fidblk = (uint8_t *) buf->b_data + bpos;
457 1.1 reinoud udf_fixup_fid_block(fidblk, sector_size,
458 1.1 reinoud 0, len, sectornr);
459 1.1 reinoud bpos += len;
460 1.1 reinoud buf_len -= len;
461 1.1 reinoud }
462 1.1 reinoud }
463 1.1 reinoud udf_fixup_node_internals(ump, buf->b_data, buf->b_udf_c_type);
464 1.1 reinoud VOP_STRATEGY(ump->devvp, buf);
465 1.1 reinoud }
466 1.1 reinoud
467 1.1 reinoud
468 1.1 reinoud static void
469 1.1 reinoud udf_doshedule(struct udf_mount *ump)
470 1.1 reinoud {
471 1.1 reinoud struct buf *buf;
472 1.1 reinoud struct timespec now, *last;
473 1.1 reinoud struct strat_private *priv = PRIV(ump);
474 1.1 reinoud void (*b_callback)(struct buf *);
475 1.1 reinoud int new_queue;
476 1.1 reinoud int error;
477 1.1 reinoud
478 1.1 reinoud buf = BUFQ_GET(priv->queues[priv->cur_queue]);
479 1.1 reinoud if (buf) {
480 1.1 reinoud /* transfer from the current queue to the device queue */
481 1.1 reinoud mutex_exit(&priv->discstrat_mutex);
482 1.1 reinoud
483 1.1 reinoud /* transform buffer to synchronous; XXX needed? */
484 1.1 reinoud b_callback = buf->b_iodone;
485 1.1 reinoud buf->b_iodone = NULL;
486 1.1 reinoud CLR(buf->b_flags, B_ASYNC);
487 1.1 reinoud
488 1.1 reinoud /* issue and wait on completion */
489 1.1 reinoud udf_issue_buf(ump, priv->cur_queue, buf);
490 1.1 reinoud biowait(buf);
491 1.1 reinoud
492 1.1 reinoud mutex_enter(&priv->discstrat_mutex);
493 1.1 reinoud
494 1.1 reinoud /* if there is an error, repair this error, otherwise propagate */
495 1.1 reinoud if (buf->b_error && ((buf->b_flags & B_READ) == 0)) {
496 1.1 reinoud /* check what we need to do */
497 1.1 reinoud panic("UDF write error, can't handle yet!\n");
498 1.1 reinoud }
499 1.1 reinoud
500 1.1 reinoud /* propagate result to higher layers */
501 1.1 reinoud if (b_callback) {
502 1.1 reinoud buf->b_iodone = b_callback;
503 1.1 reinoud (*buf->b_iodone)(buf);
504 1.1 reinoud }
505 1.1 reinoud
506 1.1 reinoud return;
507 1.1 reinoud }
508 1.1 reinoud
509 1.1 reinoud /* Check if we're idling in this state */
510 1.1 reinoud vfs_timestamp(&now);
511 1.1 reinoud last = &priv->last_queued[priv->cur_queue];
512 1.1 reinoud if (ump->discinfo.mmc_class == MMC_CLASS_CD) {
513 1.1 reinoud /* dont switch too fast for CD media; its expensive in time */
514 1.1 reinoud if (now.tv_sec - last->tv_sec < 3)
515 1.1 reinoud return;
516 1.1 reinoud }
517 1.1 reinoud
518 1.1 reinoud /* check if we can/should switch */
519 1.1 reinoud new_queue = priv->cur_queue;
520 1.1 reinoud
521 1.1 reinoud if (BUFQ_PEEK(priv->queues[UDF_SHED_READING]))
522 1.1 reinoud new_queue = UDF_SHED_READING;
523 1.1 reinoud if (BUFQ_PEEK(priv->queues[UDF_SHED_SEQWRITING]))
524 1.1 reinoud new_queue = UDF_SHED_SEQWRITING;
525 1.1 reinoud if (BUFQ_PEEK(priv->queues[UDF_SHED_WRITING])) /* only for unmount */
526 1.1 reinoud new_queue = UDF_SHED_WRITING;
527 1.1 reinoud if (priv->cur_queue == UDF_SHED_READING) {
528 1.1 reinoud if (new_queue == UDF_SHED_SEQWRITING) {
529 1.1 reinoud /* TODO use flag to signal if this is needed */
530 1.1 reinoud mutex_exit(&priv->discstrat_mutex);
531 1.1 reinoud
532 1.1 reinoud /* update trackinfo for data and metadata */
533 1.1 reinoud error = udf_update_trackinfo(ump,
534 1.1 reinoud &ump->data_track);
535 1.1 reinoud assert(error == 0);
536 1.1 reinoud error = udf_update_trackinfo(ump,
537 1.1 reinoud &ump->metadata_track);
538 1.1 reinoud assert(error == 0);
539 1.1 reinoud mutex_enter(&priv->discstrat_mutex);
540 1.1 reinoud }
541 1.1 reinoud }
542 1.1 reinoud
543 1.1 reinoud if (new_queue != priv->cur_queue) {
544 1.1 reinoud DPRINTF(SHEDULE, ("switching from %d to %d\n",
545 1.1 reinoud priv->cur_queue, new_queue));
546 1.1 reinoud }
547 1.1 reinoud
548 1.1 reinoud priv->cur_queue = new_queue;
549 1.1 reinoud }
550 1.1 reinoud
551 1.1 reinoud
552 1.1 reinoud static void
553 1.1 reinoud udf_discstrat_thread(void *arg)
554 1.1 reinoud {
555 1.1 reinoud struct udf_mount *ump = (struct udf_mount *) arg;
556 1.1 reinoud struct strat_private *priv = PRIV(ump);
557 1.1 reinoud int empty;
558 1.1 reinoud
559 1.1 reinoud empty = 1;
560 1.1 reinoud mutex_enter(&priv->discstrat_mutex);
561 1.1 reinoud while (priv->run_thread || !empty) {
562 1.1 reinoud /* process the current selected queue */
563 1.1 reinoud udf_doshedule(ump);
564 1.1 reinoud empty = (BUFQ_PEEK(priv->queues[UDF_SHED_READING]) == NULL);
565 1.1 reinoud empty &= (BUFQ_PEEK(priv->queues[UDF_SHED_WRITING]) == NULL);
566 1.1 reinoud empty &= (BUFQ_PEEK(priv->queues[UDF_SHED_SEQWRITING]) == NULL);
567 1.1 reinoud
568 1.1 reinoud /* wait for more if needed */
569 1.1 reinoud if (empty)
570 1.1 reinoud cv_timedwait(&priv->discstrat_cv,
571 1.1 reinoud &priv->discstrat_mutex, hz/8);
572 1.1 reinoud }
573 1.1 reinoud mutex_exit(&priv->discstrat_mutex);
574 1.1 reinoud
575 1.1 reinoud wakeup(&priv->run_thread);
576 1.1 reinoud kthread_exit(0);
577 1.1 reinoud /* not reached */
578 1.1 reinoud }
579 1.1 reinoud
580 1.1 reinoud /* --------------------------------------------------------------------- */
581 1.1 reinoud
582 1.1 reinoud static void
583 1.1 reinoud udf_discstrat_init_seq(struct udf_strat_args *args)
584 1.1 reinoud {
585 1.1 reinoud struct udf_mount *ump = args->ump;
586 1.1 reinoud struct strat_private *priv = PRIV(ump);
587 1.1 reinoud struct disk_strategy dkstrat;
588 1.1 reinoud uint32_t lb_size;
589 1.1 reinoud
590 1.1 reinoud KASSERT(ump);
591 1.1 reinoud KASSERT(ump->logical_vol);
592 1.1 reinoud KASSERT(priv == NULL);
593 1.1 reinoud
594 1.1 reinoud lb_size = udf_rw32(ump->logical_vol->lb_size);
595 1.1 reinoud KASSERT(lb_size > 0);
596 1.1 reinoud
597 1.1 reinoud /* initialise our memory space */
598 1.1 reinoud ump->strategy_private = malloc(sizeof(struct strat_private),
599 1.1 reinoud M_UDFTEMP, M_WAITOK);
600 1.1 reinoud priv = ump->strategy_private;
601 1.1 reinoud memset(priv, 0 , sizeof(struct strat_private));
602 1.1 reinoud
603 1.1 reinoud /* initialise locks */
604 1.1 reinoud cv_init(&priv->discstrat_cv, "udfstrat");
605 1.1 reinoud mutex_init(&priv->discstrat_mutex, MUTEX_DEFAULT, IPL_NONE);
606 1.1 reinoud
607 1.1 reinoud /*
608 1.1 reinoud * Initialise pool for descriptors associated with nodes. This is done
609 1.1 reinoud * in lb_size units though currently lb_size is dictated to be
610 1.1 reinoud * sector_size.
611 1.1 reinoud */
612 1.1 reinoud pool_init(&priv->desc_pool, lb_size, 0, 0, 0, "udf_desc_pool", NULL,
613 1.1 reinoud IPL_NONE);
614 1.1 reinoud
615 1.1 reinoud /*
616 1.1 reinoud * remember old device strategy method and explicit set method
617 1.1 reinoud * `discsort' since we have our own more complex strategy that is not
618 1.1 reinoud * implementable on the CD device and other strategies will get in the
619 1.1 reinoud * way.
620 1.1 reinoud */
621 1.1 reinoud memset(&priv->old_strategy_setting, 0,
622 1.1 reinoud sizeof(struct disk_strategy));
623 1.1 reinoud VOP_IOCTL(ump->devvp, DIOCGSTRATEGY, &priv->old_strategy_setting,
624 1.1 reinoud FREAD | FKIOCTL, NOCRED);
625 1.1 reinoud memset(&dkstrat, 0, sizeof(struct disk_strategy));
626 1.1 reinoud strcpy(dkstrat.dks_name, "discsort");
627 1.1 reinoud VOP_IOCTL(ump->devvp, DIOCSSTRATEGY, &dkstrat, FWRITE | FKIOCTL,
628 1.1 reinoud NOCRED);
629 1.1 reinoud
630 1.1 reinoud /* initialise our internal sheduler */
631 1.1 reinoud priv->cur_queue = UDF_SHED_READING;
632 1.1 reinoud bufq_alloc(&priv->queues[UDF_SHED_READING], "disksort",
633 1.1 reinoud BUFQ_SORT_RAWBLOCK);
634 1.1 reinoud bufq_alloc(&priv->queues[UDF_SHED_WRITING], "disksort",
635 1.1 reinoud BUFQ_SORT_RAWBLOCK);
636 1.1 reinoud bufq_alloc(&priv->queues[UDF_SHED_SEQWRITING], "fcfs", 0);
637 1.1 reinoud vfs_timestamp(&priv->last_queued[UDF_SHED_READING]);
638 1.1 reinoud vfs_timestamp(&priv->last_queued[UDF_SHED_WRITING]);
639 1.1 reinoud vfs_timestamp(&priv->last_queued[UDF_SHED_SEQWRITING]);
640 1.1 reinoud
641 1.1 reinoud /* create our disk strategy thread */
642 1.1 reinoud priv->run_thread = 1;
643 1.1 reinoud if (kthread_create(PRI_NONE, 0 /* KTHREAD_MPSAFE*/, NULL /* cpu_info*/,
644 1.1 reinoud udf_discstrat_thread, ump, &priv->queue_lwp,
645 1.1 reinoud "%s", "udf_rw")) {
646 1.1 reinoud panic("fork udf_rw");
647 1.1 reinoud }
648 1.1 reinoud }
649 1.1 reinoud
650 1.1 reinoud
651 1.1 reinoud static void
652 1.1 reinoud udf_discstrat_finish_seq(struct udf_strat_args *args)
653 1.1 reinoud {
654 1.1 reinoud struct udf_mount *ump = args->ump;
655 1.1 reinoud struct strat_private *priv = PRIV(ump);
656 1.1 reinoud int error;
657 1.1 reinoud
658 1.1 reinoud if (ump == NULL)
659 1.1 reinoud return;
660 1.1 reinoud
661 1.1 reinoud /* stop our sheduling thread */
662 1.1 reinoud KASSERT(priv->run_thread == 1);
663 1.1 reinoud priv->run_thread = 0;
664 1.1 reinoud wakeup(priv->queue_lwp);
665 1.1 reinoud do {
666 1.1 reinoud error = tsleep(&priv->run_thread, PRIBIO+1,
667 1.1 reinoud "udfshedfin", hz);
668 1.1 reinoud } while (error);
669 1.1 reinoud /* kthread should be finished now */
670 1.1 reinoud
671 1.1 reinoud /* set back old device strategy method */
672 1.1 reinoud VOP_IOCTL(ump->devvp, DIOCSSTRATEGY, &priv->old_strategy_setting,
673 1.1 reinoud FWRITE, NOCRED);
674 1.1 reinoud
675 1.1 reinoud /* destroy our pool */
676 1.1 reinoud pool_destroy(&priv->desc_pool);
677 1.1 reinoud
678 1.1 reinoud /* free our private space */
679 1.1 reinoud free(ump->strategy_private, M_UDFTEMP);
680 1.1 reinoud ump->strategy_private = NULL;
681 1.1 reinoud }
682 1.1 reinoud
683 1.1 reinoud /* --------------------------------------------------------------------- */
684 1.1 reinoud
685 1.1 reinoud struct udf_strategy udf_strat_sequential =
686 1.1 reinoud {
687 1.1 reinoud udf_create_logvol_dscr_seq,
688 1.1 reinoud udf_free_logvol_dscr_seq,
689 1.1 reinoud udf_read_logvol_dscr_seq,
690 1.1 reinoud udf_write_logvol_dscr_seq,
691 1.1 reinoud udf_queuebuf_seq,
692 1.1 reinoud udf_discstrat_init_seq,
693 1.1 reinoud udf_discstrat_finish_seq
694 1.1 reinoud };
695 1.1 reinoud
696 1.1 reinoud
697