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udf_readwrite.c revision 1.1.4.2
      1 /* $NetBSD: udf_readwrite.c,v 1.1.4.2 2008/05/18 12:35:06 yamt Exp $ */
      2 
      3 /*
      4  * Copyright (c) 2007, 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_readwrite.c,v 1.1.4.2 2008/05/18 12:35:06 yamt Exp $");
     32 #endif /* not lint */
     33 
     34 
     35 #if defined(_KERNEL_OPT)
     36 #include "opt_quota.h"
     37 #include "opt_compat_netbsd.h"
     38 #endif
     39 
     40 #include <sys/param.h>
     41 #include <sys/systm.h>
     42 #include <sys/sysctl.h>
     43 #include <sys/namei.h>
     44 #include <sys/proc.h>
     45 #include <sys/kernel.h>
     46 #include <sys/vnode.h>
     47 #include <miscfs/genfs/genfs_node.h>
     48 #include <sys/mount.h>
     49 #include <sys/buf.h>
     50 #include <sys/file.h>
     51 #include <sys/device.h>
     52 #include <sys/disklabel.h>
     53 #include <sys/ioctl.h>
     54 #include <sys/malloc.h>
     55 #include <sys/dirent.h>
     56 #include <sys/stat.h>
     57 #include <sys/conf.h>
     58 #include <sys/kauth.h>
     59 #include <sys/kthread.h>
     60 #include <dev/clock_subr.h>
     61 
     62 #include <fs/udf/ecma167-udf.h>
     63 #include <fs/udf/udf_mount.h>
     64 
     65 #if defined(_KERNEL_OPT)
     66 #include "opt_udf.h"
     67 #endif
     68 
     69 #include "udf.h"
     70 #include "udf_subr.h"
     71 #include "udf_bswap.h"
     72 
     73 
     74 #define VTOI(vnode) ((struct udf_node *) vnode->v_data)
     75 
     76 /* --------------------------------------------------------------------- */
     77 
     78 void
     79 udf_fixup_fid_block(uint8_t *blob, int lb_size,
     80 	int rfix_pos, int max_rfix_pos, uint32_t lb_num)
     81 {
     82 	struct fileid_desc *fid;
     83 	uint8_t *fid_pos;
     84 	int fid_len, found;
     85 
     86 	/* needs to be word aligned */
     87 	KASSERT(rfix_pos % 4 == 0);
     88 
     89 	/* first resync with the FID stream !!! */
     90 	found = 0;
     91 	while (rfix_pos + sizeof(struct desc_tag) <= max_rfix_pos) {
     92 		fid_pos = blob + rfix_pos;
     93 		fid = (struct fileid_desc *) fid_pos;
     94 		if (udf_rw16(fid->tag.id) == TAGID_FID) {
     95 			if (udf_check_tag((union dscrptr *) fid) == 0)
     96 				found = 1;
     97 		}
     98 		if (found)
     99 			break;
    100 		/* try next location; can only be 4 bytes aligned */
    101 		rfix_pos += 4;
    102 	}
    103 
    104 	/* walk over the fids */
    105 	fid_pos = blob + rfix_pos;
    106 	while (rfix_pos + sizeof(struct desc_tag) <= max_rfix_pos) {
    107 		fid = (struct fileid_desc *) fid_pos;
    108 		if (udf_rw16(fid->tag.id) != TAGID_FID) {
    109 			/* end of FID stream; end of directory or currupted */
    110 			break;
    111 		}
    112 
    113 		/* update sector number and recalculate checkum */
    114 		fid->tag.tag_loc = udf_rw32(lb_num);
    115 		udf_validate_tag_sum((union dscrptr *) fid);
    116 
    117 		/* if the FID crosses the memory, we're done! */
    118 		if (rfix_pos + UDF_FID_SIZE >= max_rfix_pos)
    119 			break;
    120 
    121 		fid_len = udf_fidsize(fid);
    122 		fid_pos  += fid_len;
    123 		rfix_pos += fid_len;
    124 	}
    125 }
    126 
    127 
    128 void
    129 udf_fixup_internal_extattr(uint8_t *blob, uint32_t lb_num)
    130 {
    131 	struct desc_tag        *tag;
    132 	struct file_entry      *fe;
    133 	struct extfile_entry   *efe;
    134 	struct extattrhdr_desc *eahdr;
    135 	int l_ea, error;
    136 
    137 	/* get information from fe/efe */
    138 	tag = (struct desc_tag *) blob;
    139 	switch (udf_rw16(tag->id)) {
    140 	case TAGID_FENTRY :
    141 		fe = (struct file_entry *) blob;
    142 		l_ea  = udf_rw32(fe->l_ea);
    143 		eahdr = (struct extattrhdr_desc *) fe->data;
    144 		break;
    145 	case TAGID_EXTFENTRY :
    146 		efe = (struct extfile_entry *) blob;
    147 		l_ea  = udf_rw32(efe->l_ea);
    148 		eahdr = (struct extattrhdr_desc *) efe->data;
    149 		break;
    150 	case TAGID_INDIRECTENTRY :
    151 	case TAGID_ALLOCEXTENT :
    152 	case TAGID_EXTATTR_HDR :
    153 		return;
    154 	default:
    155 		panic("%s: passed bad tag\n", __FUNCTION__);
    156 	}
    157 
    158 	/* something recorded here? (why am i called?) */
    159 	if (l_ea == 0)
    160 		return;
    161 
    162 	/* check extended attribute tag */
    163 	/* TODO XXX what to do when we encounter an error here? */
    164 	error = udf_check_tag(eahdr);
    165 	if (error)
    166 		return;	/* for now */
    167 	if (udf_rw16(eahdr->tag.id) != TAGID_EXTATTR_HDR)
    168 		return;	/* for now */
    169 	error = udf_check_tag_payload(eahdr, sizeof(struct extattrhdr_desc));
    170 	if (error)
    171 		return; /* for now */
    172 
    173 	DPRINTF(EXTATTR, ("node fixup: found %d bytes of extended attributes\n",
    174 		l_ea));
    175 
    176 	/* fixup eahdr tag */
    177 	eahdr->tag.tag_loc = udf_rw32(lb_num);
    178 	udf_validate_tag_sum((union dscrptr *) eahdr);
    179 }
    180 
    181 
    182 void
    183 udf_fixup_node_internals(struct udf_mount *ump, uint8_t *blob, int udf_c_type)
    184 {
    185 	struct desc_tag *tag;
    186 	struct file_entry *fe;
    187 	struct extfile_entry *efe;
    188 	uint32_t lb_size, lb_num;
    189 	uint32_t rfid_pos, max_rfid_pos;
    190 	int icbflags, addr_type, has_fids, l_ea;
    191 
    192 	lb_size = udf_rw32(ump->logical_vol->lb_size);
    193 	/* if its not a node we're done */
    194 	if (udf_c_type != UDF_C_NODE)
    195 		return;
    196 
    197 	/* NOTE this could also be done in write_internal */
    198 	/* start of a descriptor */
    199 	has_fids = 0;
    200 	max_rfid_pos = rfid_pos = lb_num = 0;	/* shut up gcc! */
    201 
    202 	tag = (struct desc_tag *) blob;
    203 	switch (udf_rw16(tag->id)) {
    204 	case TAGID_FENTRY :
    205 		fe = (struct file_entry *) tag;
    206 		l_ea = udf_rw32(fe->l_ea);
    207 		icbflags  = udf_rw16(fe->icbtag.flags);
    208 		addr_type = (icbflags & UDF_ICB_TAG_FLAGS_ALLOC_MASK);
    209 		has_fids  = (addr_type == UDF_ICB_INTERN_ALLOC);
    210 		rfid_pos  = UDF_FENTRY_SIZE + l_ea;
    211 		max_rfid_pos = rfid_pos + udf_rw64(fe->inf_len);
    212 		lb_num = udf_rw32(fe->tag.tag_loc);
    213 		break;
    214 	case TAGID_EXTFENTRY :
    215 		efe = (struct extfile_entry *) tag;
    216 		l_ea = udf_rw32(efe->l_ea);
    217 		icbflags  = udf_rw16(efe->icbtag.flags);
    218 		addr_type = (icbflags & UDF_ICB_TAG_FLAGS_ALLOC_MASK);
    219 		has_fids  = (addr_type == UDF_ICB_INTERN_ALLOC);
    220 		rfid_pos  = UDF_EXTFENTRY_SIZE + l_ea;
    221 		max_rfid_pos = rfid_pos + udf_rw64(efe->inf_len);
    222 		lb_num = udf_rw32(efe->tag.tag_loc);
    223 		break;
    224 	case TAGID_INDIRECTENTRY :
    225 	case TAGID_ALLOCEXTENT :
    226 	case TAGID_EXTATTR_HDR :
    227 		l_ea     = 0;
    228 		has_fids = 0;
    229 		break;
    230 	default:
    231 		panic("%s: passed bad tag\n", __FUNCTION__);
    232 		break;
    233 	}
    234 
    235 	/* fixup internal extended attributes if present */
    236 	if (l_ea)
    237 		udf_fixup_internal_extattr(blob, lb_num);
    238 
    239 	if (has_fids) {
    240 		udf_fixup_fid_block(blob, lb_size, rfid_pos,
    241 			max_rfid_pos, lb_num);
    242 	}
    243 	udf_validate_tag_and_crc_sums(blob);
    244 }
    245 
    246 /* --------------------------------------------------------------------- */
    247 
    248 /*
    249  * Set of generic descriptor readers and writers and their helper functions.
    250  * Descriptors inside `logical space' i.e. inside logically mapped partitions
    251  * can never be longer than one logical sector.
    252  *
    253  * NOTE that these functions *can* be used by the sheduler backends to read
    254  * node descriptors too.
    255  *
    256  * For reading, the size of allocated piece is returned in multiple of sector
    257  * size due to udf_calc_udf_malloc_size().
    258  */
    259 
    260 
    261 /* SYNC reading of n blocks from specified sector */
    262 /* NOTE only used by udf_read_phys_dscr */
    263 static int
    264 udf_read_phys_sectors(struct udf_mount *ump, int what, void *blob,
    265 	uint32_t start, uint32_t sectors)
    266 {
    267 	struct buf *buf, *nestbuf;
    268 	uint32_t buf_offset;
    269 	off_t lblkno, rblkno;
    270 	int sector_size = ump->discinfo.sector_size;
    271 	int blks = sector_size / DEV_BSIZE;
    272 	int piece;
    273 	int error;
    274 
    275 	DPRINTF(READ, ("udf_intbreadn() : sectors = %d, sector_size = %d\n",
    276 		sectors, sector_size));
    277 	buf = getiobuf(ump->devvp, true);
    278 	buf->b_flags    = B_READ;
    279 	buf->b_cflags   = BC_BUSY;	/* needed? */
    280 	buf->b_iodone   = NULL;
    281 	buf->b_data     = blob;
    282 	buf->b_bcount   = sectors * sector_size;
    283 	buf->b_resid    = buf->b_bcount;
    284 	buf->b_bufsize  = buf->b_bcount;
    285 	buf->b_private  = NULL;	/* not needed yet */
    286 	BIO_SETPRIO(buf, BPRIO_DEFAULT);
    287 	buf->b_lblkno   = buf->b_blkno = buf->b_rawblkno = start * blks;
    288 	buf->b_proc     = NULL;
    289 
    290 	error = 0;
    291 	buf_offset = 0;
    292 	rblkno = start;
    293 	lblkno = 0;
    294 	while ((sectors > 0) && (error == 0)) {
    295 		piece = MIN(MAXPHYS/sector_size, sectors);
    296 		DPRINTF(READ, ("read in %d + %d\n", (uint32_t) rblkno, piece));
    297 
    298 		nestbuf = getiobuf(NULL, true);
    299 		nestiobuf_setup(buf, nestbuf, buf_offset, piece * sector_size);
    300 		/* nestbuf is B_ASYNC */
    301 
    302 		/* identify this nestbuf */
    303 		nestbuf->b_lblkno   = lblkno;
    304 
    305 		/* CD shedules on raw blkno */
    306 		nestbuf->b_blkno      = rblkno * blks;
    307 		nestbuf->b_proc       = NULL;
    308 		nestbuf->b_rawblkno   = rblkno * blks;
    309 		nestbuf->b_udf_c_type = what;
    310 
    311 		udf_discstrat_queuebuf(ump, nestbuf);
    312 
    313 		lblkno     += piece;
    314 		rblkno     += piece;
    315 		buf_offset += piece * sector_size;
    316 		sectors    -= piece;
    317 	}
    318 	error = biowait(buf);
    319 	putiobuf(buf);
    320 
    321 	return error;
    322 }
    323 
    324 
    325 /* synchronous generic descriptor read */
    326 int
    327 udf_read_phys_dscr(struct udf_mount *ump, uint32_t sector,
    328 		    struct malloc_type *mtype, union dscrptr **dstp)
    329 {
    330 	union dscrptr *dst, *new_dst;
    331 	uint8_t *pos;
    332 	int sectors, dscrlen;
    333 	int i, error, sector_size;
    334 
    335 	sector_size = ump->discinfo.sector_size;
    336 
    337 	*dstp = dst = NULL;
    338 	dscrlen = sector_size;
    339 
    340 	/* read initial piece */
    341 	dst = malloc(sector_size, mtype, M_WAITOK);
    342 	error = udf_read_phys_sectors(ump, UDF_C_DSCR, dst, sector, 1);
    343 	DPRINTFIF(DESCRIPTOR, error, ("read error (%d)\n", error));
    344 
    345 	if (!error) {
    346 		/* check if its a valid tag */
    347 		error = udf_check_tag(dst);
    348 		if (error) {
    349 			/* check if its an empty block */
    350 			pos = (uint8_t *) dst;
    351 			for (i = 0; i < sector_size; i++, pos++) {
    352 				if (*pos) break;
    353 			}
    354 			if (i == sector_size) {
    355 				/* return no error but with no dscrptr */
    356 				/* dispose first block */
    357 				free(dst, mtype);
    358 				return 0;
    359 			}
    360 		}
    361 		/* calculate descriptor size */
    362 		dscrlen = udf_tagsize(dst, sector_size);
    363 	}
    364 	DPRINTFIF(DESCRIPTOR, error, ("bad tag checksum\n"));
    365 
    366 	if (!error && (dscrlen > sector_size)) {
    367 		DPRINTF(DESCRIPTOR, ("multi block descriptor read\n"));
    368 		/*
    369 		 * Read the rest of descriptor. Since it is only used at mount
    370 		 * time its overdone to define and use a specific udf_intbreadn
    371 		 * for this alone.
    372 		 */
    373 
    374 		new_dst = realloc(dst, dscrlen, mtype, M_WAITOK);
    375 		if (new_dst == NULL) {
    376 			free(dst, mtype);
    377 			return ENOMEM;
    378 		}
    379 		dst = new_dst;
    380 
    381 		sectors = (dscrlen + sector_size -1) / sector_size;
    382 		DPRINTF(DESCRIPTOR, ("dscrlen = %d (%d blk)\n", dscrlen, sectors));
    383 
    384 		pos = (uint8_t *) dst + sector_size;
    385 		error = udf_read_phys_sectors(ump, UDF_C_DSCR, pos,
    386 				sector + 1, sectors-1);
    387 
    388 		DPRINTFIF(DESCRIPTOR, error, ("read error on multi (%d)\n",
    389 		    error));
    390 	}
    391 	if (!error) {
    392 		error = udf_check_tag_payload(dst, dscrlen);
    393 		DPRINTFIF(DESCRIPTOR, error, ("bad payload check sum\n"));
    394 	}
    395 	if (error && dst) {
    396 		free(dst, mtype);
    397 		dst = NULL;
    398 	}
    399 	*dstp = dst;
    400 
    401 	return error;
    402 }
    403 
    404 
    405 static void
    406 udf_write_phys_buf(struct udf_mount *ump, int what, struct buf *buf)
    407 {
    408 	struct buf *nestbuf;
    409 	uint32_t buf_offset;
    410 	off_t lblkno, rblkno;
    411 	int sector_size = ump->discinfo.sector_size;
    412 	int blks = sector_size / DEV_BSIZE;
    413 	uint32_t sectors;
    414 	int piece;
    415 	int error;
    416 
    417 	sectors = buf->b_bcount / sector_size;
    418 	DPRINTF(WRITE, ("udf_intbwriten() : sectors = %d, sector_size = %d\n",
    419 		sectors, sector_size));
    420 
    421 	/* don't forget to increase pending count for the bwrite itself */
    422 /* panic("NO WRITING\n"); */
    423 	if (buf->b_vp) {
    424 		mutex_enter(&buf->b_vp->v_interlock);
    425 		buf->b_vp->v_numoutput++;
    426 		mutex_exit(&buf->b_vp->v_interlock);
    427 	}
    428 
    429 	error = 0;
    430 	buf_offset = 0;
    431 	rblkno = buf->b_blkno / blks;
    432 	lblkno = 0;
    433 	while ((sectors > 0) && (error == 0)) {
    434 		piece = MIN(MAXPHYS/sector_size, sectors);
    435 		DPRINTF(WRITE, ("write out %d + %d\n",
    436 		    (uint32_t) rblkno, piece));
    437 
    438 		nestbuf = getiobuf(NULL, true);
    439 		nestiobuf_setup(buf, nestbuf, buf_offset, piece * sector_size);
    440 		/* nestbuf is B_ASYNC */
    441 
    442 		/* identify this nestbuf */
    443 		nestbuf->b_lblkno   = lblkno;
    444 
    445 		/* CD shedules on raw blkno */
    446 		nestbuf->b_blkno      = rblkno * blks;
    447 		nestbuf->b_proc       = NULL;
    448 		nestbuf->b_rawblkno   = rblkno * blks;
    449 		nestbuf->b_udf_c_type = what;
    450 
    451 		udf_discstrat_queuebuf(ump, nestbuf);
    452 
    453 		lblkno     += piece;
    454 		rblkno     += piece;
    455 		buf_offset += piece * sector_size;
    456 		sectors    -= piece;
    457 	}
    458 }
    459 
    460 
    461 /* synchronous generic descriptor write */
    462 int
    463 udf_write_phys_dscr_sync(struct udf_mount *ump, struct udf_node *udf_node, int what,
    464 		     union dscrptr *dscr, uint32_t sector, uint32_t logsector)
    465 {
    466 	struct vnode *vp;
    467 	struct buf *buf;
    468 	int sector_size = ump->discinfo.sector_size;
    469 	int blks = sector_size / DEV_BSIZE;
    470 	int dscrlen;
    471 	int error;
    472 
    473 	/* set sector number in the descriptor and validate */
    474 	dscr->tag.tag_loc = udf_rw32(logsector);
    475 	udf_validate_tag_and_crc_sums(dscr);
    476 
    477 	/* calculate descriptor size */
    478 	dscrlen = udf_tagsize(dscr, sector_size);
    479 
    480 	/* get transfer buffer */
    481 	vp = udf_node ? udf_node->vnode : ump->devvp;
    482 	buf = getiobuf(vp, true);
    483 	buf->b_flags    = B_WRITE;
    484 	buf->b_cflags   = BC_BUSY;	/* needed? */
    485 	buf->b_iodone   = NULL;
    486 	buf->b_data     = (void *) dscr;
    487 	buf->b_bcount   = dscrlen;
    488 	buf->b_resid    = buf->b_bcount;
    489 	buf->b_bufsize  = buf->b_bcount;
    490 	buf->b_private  = NULL;	/* not needed yet */
    491 	BIO_SETPRIO(buf, BPRIO_DEFAULT);
    492 	buf->b_lblkno   = buf->b_blkno = buf->b_rawblkno = sector * blks;
    493 	buf->b_proc     = NULL;
    494 
    495 	/* do the write, wait and return error */
    496 	udf_write_phys_buf(ump, what, buf);
    497 	error = biowait(buf);
    498 	putiobuf(buf);
    499 
    500 	return error;
    501 }
    502 
    503 
    504 /* asynchronous generic descriptor write */
    505 int
    506 udf_write_phys_dscr_async(struct udf_mount *ump, struct udf_node *udf_node,
    507 		      int what, union dscrptr *dscr,
    508 		      uint32_t sector, uint32_t logsector,
    509 		      void (*dscrwr_callback)(struct buf *))
    510 {
    511 	struct vnode *vp;
    512 	struct buf *buf;
    513 	int dscrlen;
    514 	int sector_size = ump->discinfo.sector_size;
    515 	int blks = sector_size / DEV_BSIZE;
    516 
    517 	KASSERT(dscrwr_callback);
    518 	DPRINTF(NODE, ("udf_write_phys_dscr_async() called\n"));
    519 
    520 	/* set sector number in the descriptor and validate */
    521 	dscr->tag.tag_loc = udf_rw32(logsector);
    522 	udf_validate_tag_and_crc_sums(dscr);
    523 
    524 	/* calculate descriptor size */
    525 	dscrlen = udf_tagsize(dscr, sector_size);
    526 
    527 	/* get transfer buffer */
    528 	vp = udf_node ? udf_node->vnode : ump->devvp;
    529 	buf = getiobuf(vp, true);
    530 	buf->b_flags    = B_WRITE; // | B_ASYNC;
    531 	buf->b_cflags   = BC_BUSY;
    532 	buf->b_iodone	= dscrwr_callback;
    533 	buf->b_data     = dscr;
    534 	buf->b_bcount   = dscrlen;
    535 	buf->b_resid    = buf->b_bcount;
    536 	buf->b_bufsize  = buf->b_bcount;
    537 	buf->b_private  = NULL;	/* not needed yet */
    538 	BIO_SETPRIO(buf, BPRIO_DEFAULT);
    539 	buf->b_lblkno   = buf->b_blkno = buf->b_rawblkno = sector * blks;
    540 	buf->b_proc     = NULL;
    541 
    542 	/* do the write and return no error */
    543 	udf_write_phys_buf(ump, what, buf);
    544 	return 0;
    545 }
    546 
    547 /* --------------------------------------------------------------------- */
    548 
    549 /* disc strategy dispatchers */
    550 
    551 int
    552 udf_create_logvol_dscr(struct udf_mount *ump, struct udf_node *udf_node, struct long_ad *icb,
    553 	union dscrptr **dscrptr)
    554 {
    555 	struct udf_strategy *strategy = ump->strategy;
    556 	struct udf_strat_args args;
    557 	int error;
    558 
    559 	args.ump  = ump;
    560 	args.udf_node = udf_node;
    561 	args.icb  = icb;
    562 	args.dscr = NULL;
    563 
    564 	error = (strategy->create_logvol_dscr)(&args);
    565 	*dscrptr = args.dscr;
    566 
    567 	return error;
    568 }
    569 
    570 
    571 void
    572 udf_free_logvol_dscr(struct udf_mount *ump, struct long_ad *icb,
    573 	void *dscr)
    574 {
    575 	struct udf_strategy *strategy = ump->strategy;
    576 	struct udf_strat_args args;
    577 
    578 	args.ump  = ump;
    579 	args.icb  = icb;
    580 	args.dscr = dscr;
    581 
    582 	(strategy->free_logvol_dscr)(&args);
    583 }
    584 
    585 
    586 int
    587 udf_read_logvol_dscr(struct udf_mount *ump, struct long_ad *icb,
    588 	union dscrptr **dscrptr)
    589 {
    590 	struct udf_strategy *strategy = ump->strategy;
    591 	struct udf_strat_args args;
    592 	int error;
    593 
    594 	args.ump  = ump;
    595 	args.icb  = icb;
    596 	args.dscr = NULL;
    597 
    598 	error = (strategy->read_logvol_dscr)(&args);
    599 	*dscrptr = args.dscr;
    600 
    601 	return error;
    602 }
    603 
    604 
    605 int
    606 udf_write_logvol_dscr(struct udf_node *udf_node, union dscrptr *dscr,
    607 	struct long_ad *icb, int waitfor)
    608 {
    609 	struct udf_strategy *strategy = udf_node->ump->strategy;
    610 	struct udf_strat_args args;
    611 	int error;
    612 
    613 	args.ump      = udf_node->ump;
    614 	args.udf_node = udf_node;
    615 	args.icb      = icb;
    616 	args.dscr     = dscr;
    617 	args.waitfor  = waitfor;
    618 
    619 	error = (strategy->write_logvol_dscr)(&args);
    620 	return error;
    621 }
    622 
    623 
    624 void
    625 udf_discstrat_queuebuf(struct udf_mount *ump, struct buf *nestbuf)
    626 {
    627 	struct udf_strategy *strategy = ump->strategy;
    628 	struct udf_strat_args args;
    629 
    630 	args.ump = ump;
    631 	args.nestbuf = nestbuf;
    632 
    633 	(strategy->queuebuf)(&args);
    634 }
    635 
    636 
    637 void
    638 udf_discstrat_init(struct udf_mount *ump)
    639 {
    640 	struct udf_strategy *strategy = ump->strategy;
    641 	struct udf_strat_args args;
    642 
    643 	args.ump = ump;
    644 	(strategy->discstrat_init)(&args);
    645 }
    646 
    647 
    648 void udf_discstrat_finish(struct udf_mount *ump)
    649 {
    650 	struct udf_strategy *strategy = ump->strategy;
    651 	struct udf_strat_args args;
    652 
    653 	args.ump = ump;
    654 	(strategy->discstrat_finish)(&args);
    655 }
    656 
    657 /* --------------------------------------------------------------------- */
    658 
    659