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udf_strat_sequential.c revision 1.8
      1 /* $NetBSD: udf_strat_sequential.c,v 1.8 2009/02/08 19:14:52 reinoud Exp $ */
      2 
      3 /*
      4  * Copyright (c) 2006, 2008 Reinoud Zandijk
      5  * All rights reserved.
      6  *
      7  * Redistribution and use in source and binary forms, with or without
      8  * modification, are permitted provided that the following conditions
      9  * are met:
     10  * 1. Redistributions of source code must retain the above copyright
     11  *    notice, this list of conditions and the following disclaimer.
     12  * 2. Redistributions in binary form must reproduce the above copyright
     13  *    notice, this list of conditions and the following disclaimer in the
     14  *    documentation and/or other materials provided with the distribution.
     15  *
     16  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     17  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     18  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     19  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     20  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     21  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     22  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     23  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     24  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     25  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     26  *
     27  */
     28 
     29 #include <sys/cdefs.h>
     30 #ifndef lint
     31 __KERNEL_RCSID(0, "$NetBSD: udf_strat_sequential.c,v 1.8 2009/02/08 19:14:52 reinoud Exp $");
     32 #endif /* not lint */
     33 
     34 
     35 #if defined(_KERNEL_OPT)
     36 #include "opt_compat_netbsd.h"
     37 #endif
     38 
     39 #include <sys/param.h>
     40 #include <sys/systm.h>
     41 #include <sys/sysctl.h>
     42 #include <sys/namei.h>
     43 #include <sys/proc.h>
     44 #include <sys/kernel.h>
     45 #include <sys/vnode.h>
     46 #include <miscfs/genfs/genfs_node.h>
     47 #include <sys/mount.h>
     48 #include <sys/buf.h>
     49 #include <sys/file.h>
     50 #include <sys/device.h>
     51 #include <sys/disklabel.h>
     52 #include <sys/ioctl.h>
     53 #include <sys/malloc.h>
     54 #include <sys/dirent.h>
     55 #include <sys/stat.h>
     56 #include <sys/conf.h>
     57 #include <sys/kauth.h>
     58 #include <sys/kthread.h>
     59 #include <dev/clock_subr.h>
     60 
     61 #include <fs/udf/ecma167-udf.h>
     62 #include <fs/udf/udf_mount.h>
     63 
     64 #include "udf.h"
     65 #include "udf_subr.h"
     66 #include "udf_bswap.h"
     67 
     68 
     69 #define VTOI(vnode) ((struct udf_node *) vnode->v_data)
     70 #define PRIV(ump) ((struct strat_private *) ump->strategy_private)
     71 
     72 /* --------------------------------------------------------------------- */
     73 
     74 /* BUFQ's */
     75 #define UDF_SHED_MAX 3
     76 
     77 #define UDF_SHED_READING	0
     78 #define UDF_SHED_WRITING	1
     79 #define UDF_SHED_SEQWRITING	2
     80 
     81 struct strat_private {
     82 	struct pool		 desc_pool;	 	/* node descriptors */
     83 
     84 	lwp_t			*queue_lwp;
     85 	kcondvar_t		 discstrat_cv;		/* to wait on       */
     86 	kmutex_t		 discstrat_mutex;	/* disc strategy    */
     87 
     88 	int			 run_thread;		/* thread control */
     89 	int			 cur_queue;
     90 
     91 	struct disk_strategy	 old_strategy_setting;
     92 	struct bufq_state	*queues[UDF_SHED_MAX];
     93 	struct timespec		 last_queued[UDF_SHED_MAX];
     94 };
     95 
     96 
     97 /* --------------------------------------------------------------------- */
     98 
     99 static void
    100 udf_wr_nodedscr_callback(struct buf *buf)
    101 {
    102 	struct udf_node *udf_node;
    103 
    104 	KASSERT(buf);
    105 	KASSERT(buf->b_data);
    106 
    107 	/* called when write action is done */
    108 	DPRINTF(WRITE, ("udf_wr_nodedscr_callback(): node written out\n"));
    109 
    110 	udf_node = VTOI(buf->b_vp);
    111 	if (udf_node == NULL) {
    112 		putiobuf(buf);
    113 		printf("udf_wr_node_callback: NULL node?\n");
    114 		return;
    115 	}
    116 
    117 	/* XXX right flags to mark dirty again on error? */
    118 	if (buf->b_error) {
    119 		udf_node->i_flags |= IN_MODIFIED | IN_ACCESSED;
    120 		/* XXX TODO reshedule on error */
    121 	}
    122 
    123 	/* decrement outstanding_nodedscr */
    124 	KASSERT(udf_node->outstanding_nodedscr >= 1);
    125 	udf_node->outstanding_nodedscr--;
    126 	if (udf_node->outstanding_nodedscr == 0) {
    127 		/* first unlock the node */
    128 		KASSERT(udf_node->i_flags & IN_CALLBACK_ULK);
    129 		UDF_UNLOCK_NODE(udf_node, IN_CALLBACK_ULK);
    130 
    131 		wakeup(&udf_node->outstanding_nodedscr);
    132 	}
    133 
    134 	/* unreference the vnode so it can be recycled */
    135 	holdrele(udf_node->vnode);
    136 
    137 	putiobuf(buf);
    138 }
    139 
    140 /* --------------------------------------------------------------------- */
    141 
    142 static int
    143 udf_create_logvol_dscr_seq(struct udf_strat_args *args)
    144 {
    145 	union dscrptr   **dscrptr = &args->dscr;
    146 	struct udf_mount *ump = args->ump;
    147 	struct strat_private *priv = PRIV(ump);
    148 	uint32_t lb_size;
    149 
    150 	lb_size = udf_rw32(ump->logical_vol->lb_size);
    151 	*dscrptr = pool_get(&priv->desc_pool, PR_WAITOK);
    152 	memset(*dscrptr, 0, lb_size);
    153 
    154 	return 0;
    155 }
    156 
    157 
    158 static void
    159 udf_free_logvol_dscr_seq(struct udf_strat_args *args)
    160 {
    161 	union dscrptr    *dscr = args->dscr;
    162 	struct udf_mount *ump  = args->ump;
    163 	struct strat_private *priv = PRIV(ump);
    164 
    165 	pool_put(&priv->desc_pool, dscr);
    166 }
    167 
    168 
    169 static int
    170 udf_read_logvol_dscr_seq(struct udf_strat_args *args)
    171 {
    172 	union dscrptr   **dscrptr = &args->dscr;
    173 	union dscrptr    *tmpdscr;
    174 	struct udf_mount *ump = args->ump;
    175 	struct long_ad   *icb = args->icb;
    176 	struct strat_private *priv = PRIV(ump);
    177 	uint32_t lb_size;
    178 	uint32_t sector, dummy;
    179 	int error;
    180 
    181 	lb_size = udf_rw32(ump->logical_vol->lb_size);
    182 
    183 	error = udf_translate_vtop(ump, icb, &sector, &dummy);
    184 	if (error)
    185 		return error;
    186 
    187 	/* try to read in fe/efe */
    188 	error = udf_read_phys_dscr(ump, sector, M_UDFTEMP, &tmpdscr);
    189 	if (error)
    190 		return error;
    191 
    192 	*dscrptr = pool_get(&priv->desc_pool, PR_WAITOK);
    193 	memcpy(*dscrptr, tmpdscr, lb_size);
    194 	free(tmpdscr, M_UDFTEMP);
    195 
    196 	return 0;
    197 }
    198 
    199 
    200 static int
    201 udf_write_logvol_dscr_seq(struct udf_strat_args *args)
    202 {
    203 	union dscrptr    *dscr     = args->dscr;
    204 	struct udf_mount *ump      = args->ump;
    205 	struct udf_node  *udf_node = args->udf_node;
    206 	struct long_ad   *icb      = args->icb;
    207 	int               waitfor  = args->waitfor;
    208 	uint32_t logsectornr, sectornr, dummy;
    209 	int error, vpart;
    210 
    211 	/*
    212 	 * we have to decide if we write it out sequential or at its fixed
    213 	 * position by examining the partition its (to be) written on.
    214 	 */
    215 	vpart       = udf_rw16(udf_node->loc.loc.part_num);
    216 	logsectornr = udf_rw32(icb->loc.lb_num);
    217 	sectornr    = 0;
    218 	if (ump->vtop_tp[vpart] != UDF_VTOP_TYPE_VIRT) {
    219 		error = udf_translate_vtop(ump, icb, &sectornr, &dummy);
    220 		if (error)
    221 			goto out;
    222 	}
    223 
    224 	/* add reference to the vnode to prevent recycling */
    225 	vhold(udf_node->vnode);
    226 
    227 	if (waitfor) {
    228 		DPRINTF(WRITE, ("udf_write_logvol_dscr: sync write\n"));
    229 
    230 		error = udf_write_phys_dscr_sync(ump, udf_node, UDF_C_NODE,
    231 			dscr, sectornr, logsectornr);
    232 	} else {
    233 		DPRINTF(WRITE, ("udf_write_logvol_dscr: no wait, async write\n"));
    234 
    235 		error = udf_write_phys_dscr_async(ump, udf_node, UDF_C_NODE,
    236 			dscr, sectornr, logsectornr, udf_wr_nodedscr_callback);
    237 		/* will be UNLOCKED in call back */
    238 		return error;
    239 	}
    240 
    241 	holdrele(udf_node->vnode);
    242 out:
    243 	udf_node->outstanding_nodedscr--;
    244 	if (udf_node->outstanding_nodedscr == 0) {
    245 		UDF_UNLOCK_NODE(udf_node, 0);
    246 		wakeup(&udf_node->outstanding_nodedscr);
    247 	}
    248 
    249 	return error;
    250 }
    251 
    252 /* --------------------------------------------------------------------- */
    253 
    254 /*
    255  * Main file-system specific sheduler. Due to the nature of optical media
    256  * sheduling can't be performed in the traditional way. Most OS
    257  * implementations i've seen thus read or write a file atomically giving all
    258  * kinds of side effects.
    259  *
    260  * This implementation uses a kernel thread to shedule the queued requests in
    261  * such a way that is semi-optimal for optical media; this means aproximately
    262  * (R*|(Wr*|Ws*))* since switching between reading and writing is expensive in
    263  * time.
    264  */
    265 
    266 static void
    267 udf_queuebuf_seq(struct udf_strat_args *args)
    268 {
    269 	struct udf_mount *ump = args->ump;
    270 	struct buf *nestbuf = args->nestbuf;
    271 	struct strat_private *priv = PRIV(ump);
    272 	int queue;
    273 	int what;
    274 
    275 	KASSERT(ump);
    276 	KASSERT(nestbuf);
    277 	KASSERT(nestbuf->b_iodone == nestiobuf_iodone);
    278 
    279 	what = nestbuf->b_udf_c_type;
    280 	queue = UDF_SHED_READING;
    281 	if ((nestbuf->b_flags & B_READ) == 0) {
    282 		/* writing */
    283 		queue = UDF_SHED_SEQWRITING;
    284 		if (what == UDF_C_ABSOLUTE)
    285 			queue = UDF_SHED_WRITING;
    286 	}
    287 
    288 	/* use our own sheduler lists for more complex sheduling */
    289 	mutex_enter(&priv->discstrat_mutex);
    290 		bufq_put(priv->queues[queue], nestbuf);
    291 		vfs_timestamp(&priv->last_queued[queue]);
    292 	mutex_exit(&priv->discstrat_mutex);
    293 
    294 	/* signal our thread that there might be something to do */
    295 	cv_signal(&priv->discstrat_cv);
    296 }
    297 
    298 /* --------------------------------------------------------------------- */
    299 
    300 /* TODO convert to lb_size */
    301 static void
    302 udf_VAT_mapping_update(struct udf_mount *ump, struct buf *buf, uint32_t lb_map)
    303 {
    304 	union dscrptr    *fdscr = (union dscrptr *) buf->b_data;
    305 	struct vnode     *vp = buf->b_vp;
    306 	struct udf_node  *udf_node = VTOI(vp);
    307 	uint32_t lb_size, blks;
    308 	uint32_t lb_num;
    309 	uint32_t udf_rw32_lbmap;
    310 	int c_type = buf->b_udf_c_type;
    311 	int error;
    312 
    313 	/* only interested when we're using a VAT */
    314 	KASSERT(ump->vat_node);
    315 	KASSERT(ump->vtop_alloc[ump->node_part] == UDF_ALLOC_VAT);
    316 
    317 	/* only nodes are recorded in the VAT */
    318 	/* NOTE: and the fileset descriptor (FIXME ?) */
    319 	if (c_type != UDF_C_NODE)
    320 		return;
    321 
    322 	/* we now have an UDF FE/EFE node on media with VAT (or VAT itself) */
    323 	lb_size = udf_rw32(ump->logical_vol->lb_size);
    324 	blks = lb_size / DEV_BSIZE;
    325 
    326 	udf_rw32_lbmap = udf_rw32(lb_map);
    327 
    328 	/* if we're the VAT itself, only update our assigned sector number */
    329 	if (udf_node == ump->vat_node) {
    330 		fdscr->tag.tag_loc = udf_rw32_lbmap;
    331 		udf_validate_tag_sum(fdscr);
    332 		DPRINTF(TRANSLATE, ("VAT assigned to sector %u\n",
    333 			udf_rw32(udf_rw32_lbmap)));
    334 		/* no use mapping the VAT node in the VAT */
    335 		return;
    336 	}
    337 
    338 	/* record new position in VAT file */
    339 	lb_num = udf_rw32(fdscr->tag.tag_loc);
    340 
    341 	/* lb_num = udf_rw32(udf_node->write_loc.loc.lb_num); */
    342 
    343 	DPRINTF(TRANSLATE, ("VAT entry change (log %u -> phys %u)\n",
    344 			lb_num, lb_map));
    345 
    346 	/* VAT should be the longer than this write, can't go wrong */
    347 	KASSERT(lb_num <= ump->vat_entries);
    348 
    349 	mutex_enter(&ump->allocate_mutex);
    350 	error = udf_vat_write(ump->vat_node,
    351 			(uint8_t *) &udf_rw32_lbmap, 4,
    352 			ump->vat_offset + lb_num * 4);
    353 	mutex_exit(&ump->allocate_mutex);
    354 
    355 	if (error)
    356 		panic( "udf_VAT_mapping_update: HELP! i couldn't "
    357 			"write in the VAT file ?\n");
    358 }
    359 
    360 
    361 static void
    362 udf_issue_buf(struct udf_mount *ump, int queue, struct buf *buf)
    363 {
    364 	union dscrptr *dscr;
    365 	struct long_ad *node_ad_cpy;
    366 	struct part_desc *pdesc;
    367 	uint64_t *lmapping, *lmappos, blknr;
    368 	uint32_t our_sectornr, sectornr, bpos;
    369 	uint32_t ptov;
    370 	uint16_t vpart_num;
    371 	uint8_t *fidblk;
    372 	int sector_size = ump->discinfo.sector_size;
    373 	int blks = sector_size / DEV_BSIZE;
    374 	int len, buf_len;
    375 
    376 	/* if reading, just pass to the device's STRATEGY */
    377 	if (queue == UDF_SHED_READING) {
    378 		DPRINTF(SHEDULE, ("\nudf_issue_buf READ %p : sector %d type %d,"
    379 			"b_resid %d, b_bcount %d, b_bufsize %d\n",
    380 			buf, (uint32_t) buf->b_blkno / blks, buf->b_udf_c_type,
    381 			buf->b_resid, buf->b_bcount, buf->b_bufsize));
    382 		VOP_STRATEGY(ump->devvp, buf);
    383 		return;
    384 	}
    385 
    386 	blknr        = buf->b_blkno;
    387 	our_sectornr = blknr / blks;
    388 
    389 	if (queue == UDF_SHED_WRITING) {
    390 		DPRINTF(SHEDULE, ("\nudf_issue_buf WRITE %p : sector %d "
    391 			"type %d, b_resid %d, b_bcount %d, b_bufsize %d\n",
    392 			buf, (uint32_t) buf->b_blkno / blks, buf->b_udf_c_type,
    393 			buf->b_resid, buf->b_bcount, buf->b_bufsize));
    394 		KASSERT(buf->b_udf_c_type == UDF_C_ABSOLUTE);
    395 
    396 		// udf_fixup_node_internals(ump, buf->b_data, buf->b_udf_c_type);
    397 		VOP_STRATEGY(ump->devvp, buf);
    398 		return;
    399 	}
    400 
    401 	KASSERT(queue == UDF_SHED_SEQWRITING);
    402 	DPRINTF(SHEDULE, ("\nudf_issue_buf SEQWRITE %p : sector XXXX "
    403 		"type %d, b_resid %d, b_bcount %d, b_bufsize %d\n",
    404 		buf, buf->b_udf_c_type, buf->b_resid, buf->b_bcount,
    405 		buf->b_bufsize));
    406 
    407 	/*
    408 	 * Buffers should not have been allocated to disc addresses yet on
    409 	 * this queue. Note that a buffer can get multiple extents allocated.
    410 	 *
    411 	 * lmapping contains lb_num relative to base partition.
    412 	 */
    413 	lmapping    = ump->la_lmapping;
    414 	node_ad_cpy = ump->la_node_ad_cpy;
    415 
    416 	/* logically allocate buf and map it in the file */
    417 	udf_late_allocate_buf(ump, buf, lmapping, node_ad_cpy, &vpart_num);
    418 
    419 	/*
    420 	 * NOTE We are using the knowledge here that sequential media will
    421 	 * always be mapped linearly. Thus no use to explicitly translate the
    422 	 * lmapping list.
    423 	 */
    424 
    425 	/* calculate offset from physical base partition */
    426 	pdesc = ump->partitions[ump->vtop[vpart_num]];
    427 	ptov  = udf_rw32(pdesc->start_loc);
    428 
    429 	/* set buffers blkno to the physical block number */
    430 	buf->b_blkno = (*lmapping + ptov) * blks;
    431 
    432 	/* fixate floating descriptors */
    433 	if (buf->b_udf_c_type == UDF_C_FLOAT_DSCR) {
    434 		/* set our tag location to the absolute position */
    435 		dscr = (union dscrptr *) buf->b_data;
    436 		dscr->tag.tag_loc = udf_rw32(*lmapping + ptov);
    437 		udf_validate_tag_and_crc_sums(dscr);
    438 	}
    439 
    440 	/* update mapping in the VAT */
    441 	if (buf->b_udf_c_type == UDF_C_NODE) {
    442 		udf_VAT_mapping_update(ump, buf, *lmapping);
    443 		udf_fixup_node_internals(ump, buf->b_data, buf->b_udf_c_type);
    444 	}
    445 
    446 	/* if we have FIDs, fixup using the new allocation table */
    447 	if (buf->b_udf_c_type == UDF_C_FIDS) {
    448 		buf_len = buf->b_bcount;
    449 		bpos = 0;
    450 		lmappos = lmapping;
    451 		while (buf_len) {
    452 			sectornr = *lmappos++;
    453 			len = MIN(buf_len, sector_size);
    454 			fidblk = (uint8_t *) buf->b_data + bpos;
    455 			udf_fixup_fid_block(fidblk, sector_size,
    456 				0, len, sectornr);
    457 			bpos += len;
    458 			buf_len -= len;
    459 		}
    460 	}
    461 
    462 	VOP_STRATEGY(ump->devvp, buf);
    463 }
    464 
    465 
    466 static void
    467 udf_doshedule(struct udf_mount *ump)
    468 {
    469 	struct buf *buf;
    470 	struct timespec now, *last;
    471 	struct strat_private *priv = PRIV(ump);
    472 	void (*b_callback)(struct buf *);
    473 	int new_queue;
    474 	int error;
    475 
    476 	buf = bufq_get(priv->queues[priv->cur_queue]);
    477 	if (buf) {
    478 		/* transfer from the current queue to the device queue */
    479 		mutex_exit(&priv->discstrat_mutex);
    480 
    481 		/* transform buffer to synchronous; XXX needed? */
    482 		b_callback = buf->b_iodone;
    483 		buf->b_iodone = NULL;
    484 		CLR(buf->b_flags, B_ASYNC);
    485 
    486 		/* issue and wait on completion */
    487 		udf_issue_buf(ump, priv->cur_queue, buf);
    488 		biowait(buf);
    489 
    490 		mutex_enter(&priv->discstrat_mutex);
    491 
    492 		/* if there is an error, repair this error, otherwise propagate */
    493 		if (buf->b_error && ((buf->b_flags & B_READ) == 0)) {
    494 			/* check what we need to do */
    495 			panic("UDF write error, can't handle yet!\n");
    496 		}
    497 
    498 		/* propagate result to higher layers */
    499 		if (b_callback) {
    500 			buf->b_iodone = b_callback;
    501 			(*buf->b_iodone)(buf);
    502 		}
    503 
    504 		return;
    505 	}
    506 
    507 	/* Check if we're idling in this state */
    508 	vfs_timestamp(&now);
    509 	last = &priv->last_queued[priv->cur_queue];
    510 	if (ump->discinfo.mmc_class == MMC_CLASS_CD) {
    511 		/* dont switch too fast for CD media; its expensive in time */
    512 		if (now.tv_sec - last->tv_sec < 3)
    513 			return;
    514 	}
    515 
    516 	/* check if we can/should switch */
    517 	new_queue = priv->cur_queue;
    518 
    519 	if (bufq_peek(priv->queues[UDF_SHED_READING]))
    520 		new_queue = UDF_SHED_READING;
    521 	if (bufq_peek(priv->queues[UDF_SHED_SEQWRITING]))
    522 		new_queue = UDF_SHED_SEQWRITING;
    523 	if (bufq_peek(priv->queues[UDF_SHED_WRITING]))		/* only for unmount */
    524 		new_queue = UDF_SHED_WRITING;
    525 	if (priv->cur_queue == UDF_SHED_READING) {
    526 		if (new_queue == UDF_SHED_SEQWRITING) {
    527 			/* TODO use flag to signal if this is needed */
    528 			mutex_exit(&priv->discstrat_mutex);
    529 
    530 			/* update trackinfo for data and metadata */
    531 			error = udf_update_trackinfo(ump,
    532 					&ump->data_track);
    533 			assert(error == 0);
    534 			error = udf_update_trackinfo(ump,
    535 					&ump->metadata_track);
    536 			assert(error == 0);
    537 			mutex_enter(&priv->discstrat_mutex);
    538 		}
    539 	}
    540 
    541 	if (new_queue != priv->cur_queue) {
    542 		DPRINTF(SHEDULE, ("switching from %d to %d\n",
    543 			priv->cur_queue, new_queue));
    544 	}
    545 
    546 	priv->cur_queue = new_queue;
    547 }
    548 
    549 
    550 static void
    551 udf_discstrat_thread(void *arg)
    552 {
    553 	struct udf_mount *ump = (struct udf_mount *) arg;
    554 	struct strat_private *priv = PRIV(ump);
    555 	int empty;
    556 
    557 	empty = 1;
    558 	mutex_enter(&priv->discstrat_mutex);
    559 	while (priv->run_thread || !empty) {
    560 		/* process the current selected queue */
    561 		udf_doshedule(ump);
    562 		empty  = (bufq_peek(priv->queues[UDF_SHED_READING]) == NULL);
    563 		empty &= (bufq_peek(priv->queues[UDF_SHED_WRITING]) == NULL);
    564 		empty &= (bufq_peek(priv->queues[UDF_SHED_SEQWRITING]) == NULL);
    565 
    566 		/* wait for more if needed */
    567 		if (empty)
    568 			cv_timedwait(&priv->discstrat_cv,
    569 				&priv->discstrat_mutex, hz/8);
    570 	}
    571 	mutex_exit(&priv->discstrat_mutex);
    572 
    573 	wakeup(&priv->run_thread);
    574 	kthread_exit(0);
    575 	/* not reached */
    576 }
    577 
    578 /* --------------------------------------------------------------------- */
    579 
    580 static void
    581 udf_discstrat_init_seq(struct udf_strat_args *args)
    582 {
    583 	struct udf_mount *ump = args->ump;
    584 	struct strat_private *priv = PRIV(ump);
    585 	struct disk_strategy dkstrat;
    586 	uint32_t lb_size;
    587 
    588 	KASSERT(ump);
    589 	KASSERT(ump->logical_vol);
    590 	KASSERT(priv == NULL);
    591 
    592 	lb_size = udf_rw32(ump->logical_vol->lb_size);
    593 	KASSERT(lb_size > 0);
    594 
    595 	/* initialise our memory space */
    596 	ump->strategy_private = malloc(sizeof(struct strat_private),
    597 		M_UDFTEMP, M_WAITOK);
    598 	priv = ump->strategy_private;
    599 	memset(priv, 0 , sizeof(struct strat_private));
    600 
    601 	/* initialise locks */
    602 	cv_init(&priv->discstrat_cv, "udfstrat");
    603 	mutex_init(&priv->discstrat_mutex, MUTEX_DEFAULT, IPL_NONE);
    604 
    605 	/*
    606 	 * Initialise pool for descriptors associated with nodes. This is done
    607 	 * in lb_size units though currently lb_size is dictated to be
    608 	 * sector_size.
    609 	 */
    610 	pool_init(&priv->desc_pool, lb_size, 0, 0, 0, "udf_desc_pool", NULL,
    611 	    IPL_NONE);
    612 
    613 	/*
    614 	 * remember old device strategy method and explicit set method
    615 	 * `discsort' since we have our own more complex strategy that is not
    616 	 * implementable on the CD device and other strategies will get in the
    617 	 * way.
    618 	 */
    619 	memset(&priv->old_strategy_setting, 0,
    620 		sizeof(struct disk_strategy));
    621 	VOP_IOCTL(ump->devvp, DIOCGSTRATEGY, &priv->old_strategy_setting,
    622 		FREAD | FKIOCTL, NOCRED);
    623 	memset(&dkstrat, 0, sizeof(struct disk_strategy));
    624 	strcpy(dkstrat.dks_name, "discsort");
    625 	VOP_IOCTL(ump->devvp, DIOCSSTRATEGY, &dkstrat, FWRITE | FKIOCTL,
    626 		NOCRED);
    627 
    628 	/* initialise our internal sheduler */
    629 	priv->cur_queue = UDF_SHED_READING;
    630 	bufq_alloc(&priv->queues[UDF_SHED_READING], "disksort",
    631 		BUFQ_SORT_RAWBLOCK);
    632 	bufq_alloc(&priv->queues[UDF_SHED_WRITING], "disksort",
    633 		BUFQ_SORT_RAWBLOCK);
    634 	bufq_alloc(&priv->queues[UDF_SHED_SEQWRITING], "fcfs", 0);
    635 	vfs_timestamp(&priv->last_queued[UDF_SHED_READING]);
    636 	vfs_timestamp(&priv->last_queued[UDF_SHED_WRITING]);
    637 	vfs_timestamp(&priv->last_queued[UDF_SHED_SEQWRITING]);
    638 
    639 	/* create our disk strategy thread */
    640 	priv->run_thread = 1;
    641 	if (kthread_create(PRI_NONE, 0 /* KTHREAD_MPSAFE*/, NULL /* cpu_info*/,
    642 		udf_discstrat_thread, ump, &priv->queue_lwp,
    643 		"%s", "udf_rw")) {
    644 		panic("fork udf_rw");
    645 	}
    646 }
    647 
    648 
    649 static void
    650 udf_discstrat_finish_seq(struct udf_strat_args *args)
    651 {
    652 	struct udf_mount *ump = args->ump;
    653 	struct strat_private *priv = PRIV(ump);
    654 	int error;
    655 
    656 	if (ump == NULL)
    657 		return;
    658 
    659 	/* stop our sheduling thread */
    660 	KASSERT(priv->run_thread == 1);
    661 	priv->run_thread = 0;
    662 	wakeup(priv->queue_lwp);
    663 	do {
    664 		error = tsleep(&priv->run_thread, PRIBIO+1,
    665 			"udfshedfin", hz);
    666 	} while (error);
    667 	/* kthread should be finished now */
    668 
    669 	/* set back old device strategy method */
    670 	VOP_IOCTL(ump->devvp, DIOCSSTRATEGY, &priv->old_strategy_setting,
    671 			FWRITE, NOCRED);
    672 
    673 	/* destroy our pool */
    674 	pool_destroy(&priv->desc_pool);
    675 
    676 	/* free our private space */
    677 	free(ump->strategy_private, M_UDFTEMP);
    678 	ump->strategy_private = NULL;
    679 }
    680 
    681 /* --------------------------------------------------------------------- */
    682 
    683 struct udf_strategy udf_strat_sequential =
    684 {
    685 	udf_create_logvol_dscr_seq,
    686 	udf_free_logvol_dscr_seq,
    687 	udf_read_logvol_dscr_seq,
    688 	udf_write_logvol_dscr_seq,
    689 	udf_queuebuf_seq,
    690 	udf_discstrat_init_seq,
    691 	udf_discstrat_finish_seq
    692 };
    693 
    694 
    695