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udf_subr.c revision 1.32
      1  1.32        ad /* $NetBSD: udf_subr.c,v 1.32 2007/02/20 16:21:04 ad Exp $ */
      2   1.1   reinoud 
      3   1.1   reinoud /*
      4   1.1   reinoud  * Copyright (c) 2006 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  * 3. All advertising materials mentioning features or use of this software
     16   1.1   reinoud  *    must display the following acknowledgement:
     17   1.1   reinoud  *          This product includes software developed for the
     18   1.1   reinoud  *          NetBSD Project.  See http://www.NetBSD.org/ for
     19   1.1   reinoud  *          information about NetBSD.
     20   1.1   reinoud  * 4. The name of the author may not be used to endorse or promote products
     21   1.1   reinoud  *    derived from this software without specific prior written permission.
     22   1.1   reinoud  *
     23   1.1   reinoud  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     24   1.1   reinoud  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     25   1.1   reinoud  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     26   1.1   reinoud  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     27   1.1   reinoud  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     28   1.1   reinoud  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     29   1.1   reinoud  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     30   1.1   reinoud  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     31   1.1   reinoud  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     32   1.1   reinoud  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     33   1.1   reinoud  *
     34   1.1   reinoud  */
     35   1.1   reinoud 
     36   1.1   reinoud 
     37   1.1   reinoud #include <sys/cdefs.h>
     38   1.1   reinoud #ifndef lint
     39  1.32        ad __RCSID("$NetBSD: udf_subr.c,v 1.32 2007/02/20 16:21:04 ad Exp $");
     40   1.1   reinoud #endif /* not lint */
     41   1.1   reinoud 
     42   1.1   reinoud 
     43   1.1   reinoud #if defined(_KERNEL_OPT)
     44   1.1   reinoud #include "opt_quota.h"
     45   1.1   reinoud #include "opt_compat_netbsd.h"
     46   1.1   reinoud #endif
     47   1.1   reinoud 
     48   1.1   reinoud #include <sys/param.h>
     49   1.1   reinoud #include <sys/systm.h>
     50   1.1   reinoud #include <sys/sysctl.h>
     51   1.1   reinoud #include <sys/namei.h>
     52   1.1   reinoud #include <sys/proc.h>
     53   1.1   reinoud #include <sys/kernel.h>
     54   1.1   reinoud #include <sys/vnode.h>
     55   1.1   reinoud #include <miscfs/genfs/genfs_node.h>
     56   1.1   reinoud #include <sys/mount.h>
     57   1.1   reinoud #include <sys/buf.h>
     58   1.1   reinoud #include <sys/file.h>
     59   1.1   reinoud #include <sys/device.h>
     60   1.1   reinoud #include <sys/disklabel.h>
     61   1.1   reinoud #include <sys/ioctl.h>
     62   1.1   reinoud #include <sys/malloc.h>
     63   1.1   reinoud #include <sys/dirent.h>
     64   1.1   reinoud #include <sys/stat.h>
     65   1.1   reinoud #include <sys/conf.h>
     66   1.8  christos #include <sys/kauth.h>
     67  1.30   reinoud #include <dev/clock_subr.h>
     68   1.1   reinoud 
     69   1.1   reinoud #include <fs/udf/ecma167-udf.h>
     70   1.1   reinoud #include <fs/udf/udf_mount.h>
     71   1.1   reinoud 
     72   1.1   reinoud #include "udf.h"
     73   1.1   reinoud #include "udf_subr.h"
     74   1.1   reinoud #include "udf_bswap.h"
     75   1.1   reinoud 
     76   1.1   reinoud 
     77   1.1   reinoud #define VTOI(vnode) ((struct udf_node *) vnode->v_data)
     78   1.1   reinoud 
     79   1.1   reinoud 
     80   1.1   reinoud /* predefines */
     81   1.1   reinoud 
     82   1.1   reinoud 
     83   1.1   reinoud #if 0
     84   1.1   reinoud {
     85   1.1   reinoud 	int i, j, dlen;
     86   1.1   reinoud 	uint8_t *blob;
     87   1.1   reinoud 
     88   1.1   reinoud 	blob = (uint8_t *) fid;
     89   1.1   reinoud 	dlen = file_size - (*offset);
     90   1.1   reinoud 
     91   1.1   reinoud 	printf("blob = %p\n", blob);
     92   1.1   reinoud 	printf("dump of %d bytes\n", dlen);
     93   1.1   reinoud 
     94   1.1   reinoud 	for (i = 0; i < dlen; i+ = 16) {
     95   1.1   reinoud 		printf("%04x ", i);
     96   1.1   reinoud 		for (j = 0; j < 16; j++) {
     97   1.1   reinoud 			if (i+j < dlen) {
     98   1.1   reinoud 				printf("%02x ", blob[i+j]);
     99   1.1   reinoud 			} else {
    100   1.1   reinoud 				printf("   ");
    101   1.9  christos 			}
    102   1.9  christos 		}
    103   1.1   reinoud 		for (j = 0; j < 16; j++) {
    104   1.1   reinoud 			if (i+j < dlen) {
    105   1.1   reinoud 				if (blob[i+j]>32 && blob[i+j]! = 127) {
    106   1.1   reinoud 					printf("%c", blob[i+j]);
    107   1.1   reinoud 				} else {
    108   1.1   reinoud 					printf(".");
    109   1.9  christos 				}
    110   1.9  christos 			}
    111   1.9  christos 		}
    112   1.1   reinoud 		printf("\n");
    113   1.9  christos 	}
    114   1.1   reinoud 	printf("\n");
    115   1.9  christos }
    116   1.1   reinoud Debugger();
    117   1.1   reinoud #endif
    118   1.1   reinoud 
    119   1.1   reinoud 
    120   1.1   reinoud /* --------------------------------------------------------------------- */
    121   1.1   reinoud 
    122   1.1   reinoud /* STUB */
    123   1.1   reinoud 
    124   1.1   reinoud static int
    125   1.1   reinoud udf_bread(struct udf_mount *ump, uint32_t sector, struct buf **bpp)
    126   1.1   reinoud {
    127   1.1   reinoud 	int sector_size = ump->discinfo.sector_size;
    128   1.1   reinoud 	int blks = sector_size / DEV_BSIZE;
    129   1.1   reinoud 
    130   1.1   reinoud 	/* NOTE bread() checks if block is in cache or not */
    131   1.1   reinoud 	return bread(ump->devvp, sector*blks, sector_size, NOCRED, bpp);
    132   1.1   reinoud }
    133   1.1   reinoud 
    134   1.1   reinoud 
    135   1.1   reinoud /* --------------------------------------------------------------------- */
    136   1.1   reinoud 
    137   1.1   reinoud /*
    138   1.1   reinoud  * Check if the blob starts with a good UDF tag. Tags are protected by a
    139   1.1   reinoud  * checksum over the reader except one byte at position 4 that is the checksum
    140   1.1   reinoud  * itself.
    141   1.1   reinoud  */
    142   1.1   reinoud 
    143   1.1   reinoud int
    144   1.1   reinoud udf_check_tag(void *blob)
    145   1.1   reinoud {
    146   1.1   reinoud 	struct desc_tag *tag = blob;
    147   1.1   reinoud 	uint8_t *pos, sum, cnt;
    148   1.1   reinoud 
    149   1.1   reinoud 	/* check TAG header checksum */
    150   1.1   reinoud 	pos = (uint8_t *) tag;
    151   1.1   reinoud 	sum = 0;
    152   1.1   reinoud 
    153   1.1   reinoud 	for(cnt = 0; cnt < 16; cnt++) {
    154   1.1   reinoud 		if (cnt != 4)
    155   1.1   reinoud 			sum += *pos;
    156   1.1   reinoud 		pos++;
    157   1.1   reinoud 	}
    158   1.1   reinoud 	if (sum != tag->cksum) {
    159   1.1   reinoud 		/* bad tag header checksum; this is not a valid tag */
    160   1.1   reinoud 		return EINVAL;
    161   1.1   reinoud 	}
    162   1.1   reinoud 
    163   1.1   reinoud 	return 0;
    164   1.1   reinoud }
    165   1.1   reinoud 
    166   1.1   reinoud /* --------------------------------------------------------------------- */
    167   1.1   reinoud 
    168   1.1   reinoud /*
    169   1.1   reinoud  * check tag payload will check descriptor CRC as specified.
    170   1.1   reinoud  * If the descriptor is too short, it will return EIO otherwise EINVAL.
    171   1.1   reinoud  */
    172   1.1   reinoud 
    173   1.1   reinoud int
    174   1.1   reinoud udf_check_tag_payload(void *blob, uint32_t max_length)
    175   1.1   reinoud {
    176   1.1   reinoud 	struct desc_tag *tag = blob;
    177   1.1   reinoud 	uint16_t crc, crc_len;
    178   1.1   reinoud 
    179   1.1   reinoud 	crc_len = udf_rw16(tag->desc_crc_len);
    180   1.1   reinoud 
    181   1.1   reinoud 	/* check payload CRC if applicable */
    182   1.1   reinoud 	if (crc_len == 0)
    183   1.1   reinoud 		return 0;
    184   1.1   reinoud 
    185   1.1   reinoud 	if (crc_len > max_length)
    186   1.1   reinoud 		return EIO;
    187   1.1   reinoud 
    188   1.1   reinoud 	crc = udf_cksum(((uint8_t *) tag) + UDF_DESC_TAG_LENGTH, crc_len);
    189   1.1   reinoud 	if (crc != udf_rw16(tag->desc_crc)) {
    190   1.1   reinoud 		/* bad payload CRC; this is a broken tag */
    191   1.1   reinoud 		return EINVAL;
    192   1.9  christos 	}
    193   1.1   reinoud 
    194   1.1   reinoud 	return 0;
    195   1.1   reinoud }
    196   1.1   reinoud 
    197   1.1   reinoud /* --------------------------------------------------------------------- */
    198   1.1   reinoud 
    199   1.1   reinoud int
    200   1.1   reinoud udf_validate_tag_sum(void *blob)
    201   1.1   reinoud {
    202   1.1   reinoud 	struct desc_tag *tag = blob;
    203   1.1   reinoud 	uint8_t *pos, sum, cnt;
    204   1.1   reinoud 
    205   1.1   reinoud 	/* calculate TAG header checksum */
    206   1.1   reinoud 	pos = (uint8_t *) tag;
    207   1.1   reinoud 	sum = 0;
    208   1.1   reinoud 
    209   1.1   reinoud 	for(cnt = 0; cnt < 16; cnt++) {
    210   1.1   reinoud 		if (cnt != 4) sum += *pos;
    211   1.1   reinoud 		pos++;
    212   1.9  christos 	}
    213   1.1   reinoud 	tag->cksum = sum;	/* 8 bit */
    214   1.1   reinoud 
    215   1.1   reinoud 	return 0;
    216   1.1   reinoud }
    217   1.1   reinoud 
    218   1.1   reinoud /* --------------------------------------------------------------------- */
    219   1.1   reinoud 
    220   1.6       snj /* assumes sector number of descriptor to be saved already present */
    221   1.1   reinoud 
    222   1.1   reinoud int
    223   1.1   reinoud udf_validate_tag_and_crc_sums(void *blob)
    224   1.1   reinoud {
    225   1.1   reinoud 	struct desc_tag *tag  = blob;
    226   1.1   reinoud 	uint8_t         *btag = (uint8_t *) tag;
    227   1.1   reinoud 	uint16_t crc, crc_len;
    228   1.1   reinoud 
    229   1.1   reinoud 	crc_len = udf_rw16(tag->desc_crc_len);
    230   1.1   reinoud 
    231   1.1   reinoud 	/* check payload CRC if applicable */
    232   1.1   reinoud 	if (crc_len > 0) {
    233   1.1   reinoud 		crc = udf_cksum(btag + UDF_DESC_TAG_LENGTH, crc_len);
    234   1.1   reinoud 		tag->desc_crc = udf_rw16(crc);
    235   1.9  christos 	}
    236   1.1   reinoud 
    237   1.1   reinoud 	/* calculate TAG header checksum */
    238   1.1   reinoud 	return udf_validate_tag_sum(blob);
    239   1.1   reinoud }
    240   1.1   reinoud 
    241   1.1   reinoud /* --------------------------------------------------------------------- */
    242   1.1   reinoud 
    243   1.1   reinoud /*
    244   1.1   reinoud  * XXX note the different semantics from udfclient: for FIDs it still rounds
    245   1.1   reinoud  * up to sectors. Use udf_fidsize() for a correct length.
    246   1.1   reinoud  */
    247   1.1   reinoud 
    248   1.1   reinoud int
    249   1.1   reinoud udf_tagsize(union dscrptr *dscr, uint32_t udf_sector_size)
    250   1.1   reinoud {
    251   1.1   reinoud 	uint32_t size, tag_id, num_secs, elmsz;
    252   1.1   reinoud 
    253   1.1   reinoud 	tag_id = udf_rw16(dscr->tag.id);
    254   1.1   reinoud 
    255   1.1   reinoud 	switch (tag_id) {
    256   1.1   reinoud 	case TAGID_LOGVOL :
    257   1.1   reinoud 		size  = sizeof(struct logvol_desc) - 1;
    258   1.1   reinoud 		size += udf_rw32(dscr->lvd.mt_l);
    259   1.1   reinoud 		break;
    260   1.1   reinoud 	case TAGID_UNALLOC_SPACE :
    261   1.1   reinoud 		elmsz = sizeof(struct extent_ad);
    262   1.1   reinoud 		size  = sizeof(struct unalloc_sp_desc) - elmsz;
    263   1.1   reinoud 		size += udf_rw32(dscr->usd.alloc_desc_num) * elmsz;
    264   1.1   reinoud 		break;
    265   1.1   reinoud 	case TAGID_FID :
    266   1.1   reinoud 		size = UDF_FID_SIZE + dscr->fid.l_fi + udf_rw16(dscr->fid.l_iu);
    267   1.1   reinoud 		size = (size + 3) & ~3;
    268   1.1   reinoud 		break;
    269   1.1   reinoud 	case TAGID_LOGVOL_INTEGRITY :
    270   1.1   reinoud 		size  = sizeof(struct logvol_int_desc) - sizeof(uint32_t);
    271   1.1   reinoud 		size += udf_rw32(dscr->lvid.l_iu);
    272   1.1   reinoud 		size += (2 * udf_rw32(dscr->lvid.num_part) * sizeof(uint32_t));
    273   1.1   reinoud 		break;
    274   1.1   reinoud 	case TAGID_SPACE_BITMAP :
    275   1.1   reinoud 		size  = sizeof(struct space_bitmap_desc) - 1;
    276   1.1   reinoud 		size += udf_rw32(dscr->sbd.num_bytes);
    277   1.1   reinoud 		break;
    278   1.1   reinoud 	case TAGID_SPARING_TABLE :
    279   1.1   reinoud 		elmsz = sizeof(struct spare_map_entry);
    280   1.1   reinoud 		size  = sizeof(struct udf_sparing_table) - elmsz;
    281   1.1   reinoud 		size += udf_rw16(dscr->spt.rt_l) * elmsz;
    282   1.1   reinoud 		break;
    283   1.1   reinoud 	case TAGID_FENTRY :
    284   1.1   reinoud 		size  = sizeof(struct file_entry);
    285   1.1   reinoud 		size += udf_rw32(dscr->fe.l_ea) + udf_rw32(dscr->fe.l_ad)-1;
    286   1.1   reinoud 		break;
    287   1.1   reinoud 	case TAGID_EXTFENTRY :
    288   1.1   reinoud 		size  = sizeof(struct extfile_entry);
    289   1.1   reinoud 		size += udf_rw32(dscr->efe.l_ea) + udf_rw32(dscr->efe.l_ad)-1;
    290   1.1   reinoud 		break;
    291   1.1   reinoud 	case TAGID_FSD :
    292   1.1   reinoud 		size  = sizeof(struct fileset_desc);
    293   1.1   reinoud 		break;
    294   1.1   reinoud 	default :
    295   1.1   reinoud 		size = sizeof(union dscrptr);
    296   1.1   reinoud 		break;
    297   1.9  christos 	}
    298   1.1   reinoud 
    299   1.1   reinoud 	if ((size == 0) || (udf_sector_size == 0)) return 0;
    300   1.1   reinoud 
    301   1.1   reinoud 	/* round up in sectors */
    302   1.1   reinoud 	num_secs = (size + udf_sector_size -1) / udf_sector_size;
    303   1.1   reinoud 	return num_secs * udf_sector_size;
    304   1.1   reinoud }
    305   1.1   reinoud 
    306   1.1   reinoud 
    307   1.1   reinoud static int
    308  1.23  christos udf_fidsize(struct fileid_desc *fid, uint32_t udf_sector_size)
    309   1.1   reinoud {
    310   1.1   reinoud 	uint32_t size;
    311   1.1   reinoud 
    312   1.1   reinoud 	if (udf_rw16(fid->tag.id) != TAGID_FID)
    313   1.1   reinoud 		panic("got udf_fidsize on non FID\n");
    314   1.1   reinoud 
    315   1.1   reinoud 	size = UDF_FID_SIZE + fid->l_fi + udf_rw16(fid->l_iu);
    316   1.1   reinoud 	size = (size + 3) & ~3;
    317   1.1   reinoud 
    318   1.1   reinoud 	return size;
    319   1.1   reinoud }
    320   1.1   reinoud 
    321   1.1   reinoud /* --------------------------------------------------------------------- */
    322   1.1   reinoud 
    323   1.1   reinoud /*
    324   1.1   reinoud  * Problem with read_descriptor are long descriptors spanning more than one
    325   1.1   reinoud  * sector. Luckily long descriptors can't be in `logical space'.
    326   1.1   reinoud  *
    327   1.1   reinoud  * Size of allocated piece is returned in multiple of sector size due to
    328   1.1   reinoud  * udf_calc_udf_malloc_size().
    329   1.1   reinoud  */
    330   1.1   reinoud 
    331   1.1   reinoud int
    332   1.1   reinoud udf_read_descriptor(struct udf_mount *ump, uint32_t sector,
    333   1.1   reinoud 		    struct malloc_type *mtype, union dscrptr **dstp)
    334   1.1   reinoud {
    335   1.1   reinoud 	union dscrptr *src, *dst;
    336   1.1   reinoud 	struct buf *bp;
    337   1.1   reinoud 	uint8_t *pos;
    338   1.1   reinoud 	int blks, blk, dscrlen;
    339   1.1   reinoud 	int i, error, sector_size;
    340   1.1   reinoud 
    341   1.1   reinoud 	sector_size = ump->discinfo.sector_size;
    342   1.1   reinoud 
    343   1.1   reinoud 	*dstp = dst = NULL;
    344   1.1   reinoud 	dscrlen = sector_size;
    345   1.1   reinoud 
    346   1.1   reinoud 	/* read initial piece */
    347   1.1   reinoud 	error = udf_bread(ump, sector, &bp);
    348   1.1   reinoud 	DPRINTFIF(DESCRIPTOR, error, ("read error (%d)\n", error));
    349   1.1   reinoud 
    350   1.1   reinoud 	if (!error) {
    351   1.1   reinoud 		/* check if its a valid tag */
    352   1.1   reinoud 		error = udf_check_tag(bp->b_data);
    353   1.1   reinoud 		if (error) {
    354   1.1   reinoud 			/* check if its an empty block */
    355   1.1   reinoud 			pos = bp->b_data;
    356   1.1   reinoud 			for (i = 0; i < sector_size; i++, pos++) {
    357   1.1   reinoud 				if (*pos) break;
    358   1.9  christos 			}
    359   1.1   reinoud 			if (i == sector_size) {
    360   1.1   reinoud 				/* return no error but with no dscrptr */
    361   1.1   reinoud 				/* dispose first block */
    362   1.1   reinoud 				brelse(bp);
    363   1.1   reinoud 				return 0;
    364   1.9  christos 			}
    365   1.9  christos 		}
    366   1.9  christos 	}
    367   1.1   reinoud 	DPRINTFIF(DESCRIPTOR, error, ("bad tag checksum\n"));
    368   1.1   reinoud 	if (!error) {
    369   1.1   reinoud 		src = (union dscrptr *) bp->b_data;
    370   1.1   reinoud 		dscrlen = udf_tagsize(src, sector_size);
    371   1.1   reinoud 		dst = malloc(dscrlen, mtype, M_WAITOK);
    372  1.15   reinoud 		memcpy(dst, src, sector_size);
    373   1.9  christos 	}
    374   1.1   reinoud 	/* dispose first block */
    375   1.1   reinoud 	bp->b_flags |= B_AGE;
    376   1.1   reinoud 	brelse(bp);
    377   1.1   reinoud 
    378   1.1   reinoud 	if (!error && (dscrlen > sector_size)) {
    379   1.1   reinoud 		DPRINTF(DESCRIPTOR, ("multi block descriptor read\n"));
    380   1.1   reinoud 		/*
    381   1.1   reinoud 		 * Read the rest of descriptor. Since it is only used at mount
    382   1.1   reinoud 		 * time its overdone to define and use a specific udf_breadn
    383   1.1   reinoud 		 * for this alone.
    384   1.1   reinoud 		 */
    385   1.1   reinoud 		blks = (dscrlen + sector_size -1) / sector_size;
    386   1.1   reinoud 		for (blk = 1; blk < blks; blk++) {
    387   1.1   reinoud 			error = udf_bread(ump, sector + blk, &bp);
    388   1.1   reinoud 			if (error) {
    389   1.1   reinoud 				brelse(bp);
    390   1.1   reinoud 				break;
    391   1.9  christos 			}
    392   1.1   reinoud 			pos = (uint8_t *) dst + blk*sector_size;
    393   1.1   reinoud 			memcpy(pos, bp->b_data, sector_size);
    394   1.1   reinoud 
    395   1.1   reinoud 			/* dispose block */
    396   1.1   reinoud 			bp->b_flags |= B_AGE;
    397   1.1   reinoud 			brelse(bp);
    398   1.9  christos 		}
    399   1.1   reinoud 		DPRINTFIF(DESCRIPTOR, error, ("read error on multi (%d)\n",
    400   1.1   reinoud 		    error));
    401   1.9  christos 	}
    402   1.1   reinoud 	if (!error) {
    403   1.1   reinoud 		error = udf_check_tag_payload(dst, dscrlen);
    404   1.1   reinoud 		DPRINTFIF(DESCRIPTOR, error, ("bad payload check sum\n"));
    405   1.9  christos 	}
    406   1.1   reinoud 	if (error && dst) {
    407   1.1   reinoud 		free(dst, mtype);
    408   1.1   reinoud 		dst = NULL;
    409   1.9  christos 	}
    410   1.1   reinoud 	*dstp = dst;
    411   1.1   reinoud 
    412   1.1   reinoud 	return error;
    413   1.1   reinoud }
    414   1.1   reinoud 
    415   1.1   reinoud /* --------------------------------------------------------------------- */
    416   1.1   reinoud #ifdef DEBUG
    417   1.1   reinoud static void
    418   1.1   reinoud udf_dump_discinfo(struct udf_mount *ump)
    419   1.1   reinoud {
    420   1.1   reinoud 	char   bits[128];
    421   1.1   reinoud 	struct mmc_discinfo *di = &ump->discinfo;
    422   1.1   reinoud 
    423   1.1   reinoud 	if ((udf_verbose & UDF_DEBUG_VOLUMES) == 0)
    424   1.1   reinoud 		return;
    425   1.1   reinoud 
    426   1.1   reinoud 	printf("Device/media info  :\n");
    427   1.1   reinoud 	printf("\tMMC profile        0x%02x\n", di->mmc_profile);
    428   1.1   reinoud 	printf("\tderived class      %d\n", di->mmc_class);
    429   1.1   reinoud 	printf("\tsector size        %d\n", di->sector_size);
    430   1.1   reinoud 	printf("\tdisc state         %d\n", di->disc_state);
    431   1.1   reinoud 	printf("\tlast ses state     %d\n", di->last_session_state);
    432   1.1   reinoud 	printf("\tbg format state    %d\n", di->bg_format_state);
    433   1.1   reinoud 	printf("\tfrst track         %d\n", di->first_track);
    434   1.1   reinoud 	printf("\tfst on last ses    %d\n", di->first_track_last_session);
    435   1.1   reinoud 	printf("\tlst on last ses    %d\n", di->last_track_last_session);
    436   1.1   reinoud 	printf("\tlink block penalty %d\n", di->link_block_penalty);
    437   1.1   reinoud 	bitmask_snprintf(di->disc_flags, MMC_DFLAGS_FLAGBITS, bits,
    438   1.1   reinoud 		sizeof(bits));
    439   1.1   reinoud 	printf("\tdisc flags         %s\n", bits);
    440   1.1   reinoud 	printf("\tdisc id            %x\n", di->disc_id);
    441   1.1   reinoud 	printf("\tdisc barcode       %"PRIx64"\n", di->disc_barcode);
    442   1.1   reinoud 
    443   1.1   reinoud 	printf("\tnum sessions       %d\n", di->num_sessions);
    444   1.1   reinoud 	printf("\tnum tracks         %d\n", di->num_tracks);
    445   1.1   reinoud 
    446   1.1   reinoud 	bitmask_snprintf(di->mmc_cur, MMC_CAP_FLAGBITS, bits, sizeof(bits));
    447   1.1   reinoud 	printf("\tcapabilities cur   %s\n", bits);
    448   1.1   reinoud 	bitmask_snprintf(di->mmc_cap, MMC_CAP_FLAGBITS, bits, sizeof(bits));
    449   1.1   reinoud 	printf("\tcapabilities cap   %s\n", bits);
    450   1.1   reinoud }
    451   1.1   reinoud #else
    452   1.1   reinoud #define udf_dump_discinfo(a);
    453   1.1   reinoud #endif
    454   1.1   reinoud 
    455   1.1   reinoud /* not called often */
    456   1.1   reinoud int
    457   1.1   reinoud udf_update_discinfo(struct udf_mount *ump)
    458   1.1   reinoud {
    459   1.1   reinoud 	struct vnode *devvp = ump->devvp;
    460   1.1   reinoud 	struct partinfo dpart;
    461   1.1   reinoud 	struct mmc_discinfo *di;
    462   1.1   reinoud 	int error;
    463   1.1   reinoud 
    464   1.1   reinoud 	DPRINTF(VOLUMES, ("read/update disc info\n"));
    465   1.1   reinoud 	di = &ump->discinfo;
    466   1.1   reinoud 	memset(di, 0, sizeof(struct mmc_discinfo));
    467   1.1   reinoud 
    468   1.1   reinoud 	/* check if we're on a MMC capable device, i.e. CD/DVD */
    469   1.1   reinoud 	error = VOP_IOCTL(devvp, MMCGETDISCINFO, di, FKIOCTL, NOCRED, NULL);
    470   1.1   reinoud 	if (error == 0) {
    471   1.1   reinoud 		udf_dump_discinfo(ump);
    472   1.1   reinoud 		return 0;
    473   1.9  christos 	}
    474   1.1   reinoud 
    475   1.1   reinoud 	/* disc partition support */
    476   1.1   reinoud 	error = VOP_IOCTL(devvp, DIOCGPART, &dpart, FREAD, NOCRED, NULL);
    477   1.1   reinoud 	if (error)
    478   1.1   reinoud 		return ENODEV;
    479   1.1   reinoud 
    480   1.1   reinoud 	/* set up a disc info profile for partitions */
    481   1.1   reinoud 	di->mmc_profile		= 0x01;	/* disc type */
    482   1.1   reinoud 	di->mmc_class		= MMC_CLASS_DISC;
    483   1.1   reinoud 	di->disc_state		= MMC_STATE_CLOSED;
    484   1.1   reinoud 	di->last_session_state	= MMC_STATE_CLOSED;
    485   1.1   reinoud 	di->bg_format_state	= MMC_BGFSTATE_COMPLETED;
    486   1.1   reinoud 	di->link_block_penalty	= 0;
    487   1.1   reinoud 
    488   1.1   reinoud 	di->mmc_cur     = MMC_CAP_RECORDABLE | MMC_CAP_REWRITABLE |
    489   1.4   reinoud 		MMC_CAP_ZEROLINKBLK | MMC_CAP_HW_DEFECTFREE;
    490   1.1   reinoud 	di->mmc_cap    = di->mmc_cur;
    491   1.1   reinoud 	di->disc_flags = MMC_DFLAGS_UNRESTRICTED;
    492   1.1   reinoud 
    493   1.1   reinoud 	/* TODO problem with last_possible_lba on resizable VND; request */
    494   1.1   reinoud 	di->last_possible_lba = dpart.part->p_size;
    495   1.1   reinoud 	di->sector_size       = dpart.disklab->d_secsize;
    496   1.1   reinoud 	di->blockingnr        = 1;
    497   1.1   reinoud 
    498   1.1   reinoud 	di->num_sessions = 1;
    499   1.1   reinoud 	di->num_tracks   = 1;
    500   1.1   reinoud 
    501   1.1   reinoud 	di->first_track  = 1;
    502   1.1   reinoud 	di->first_track_last_session = di->last_track_last_session = 1;
    503   1.1   reinoud 
    504   1.1   reinoud 	udf_dump_discinfo(ump);
    505   1.1   reinoud 	return 0;
    506   1.1   reinoud }
    507   1.1   reinoud 
    508   1.1   reinoud /* --------------------------------------------------------------------- */
    509   1.1   reinoud 
    510   1.1   reinoud int
    511   1.1   reinoud udf_update_trackinfo(struct udf_mount *ump, struct mmc_trackinfo *ti)
    512   1.1   reinoud {
    513   1.1   reinoud 	struct vnode *devvp = ump->devvp;
    514   1.1   reinoud 	struct mmc_discinfo *di = &ump->discinfo;
    515   1.1   reinoud 	int error, class;
    516   1.1   reinoud 
    517   1.1   reinoud 	DPRINTF(VOLUMES, ("read track info\n"));
    518   1.1   reinoud 
    519   1.1   reinoud 	class = di->mmc_class;
    520   1.1   reinoud 	if (class != MMC_CLASS_DISC) {
    521   1.1   reinoud 		/* tracknr specified in struct ti */
    522   1.1   reinoud 		error = VOP_IOCTL(devvp, MMCGETTRACKINFO, ti, FKIOCTL,
    523   1.1   reinoud 			NOCRED, NULL);
    524   1.1   reinoud 		return error;
    525   1.9  christos 	}
    526   1.1   reinoud 
    527   1.1   reinoud 	/* disc partition support */
    528   1.1   reinoud 	if (ti->tracknr != 1)
    529   1.1   reinoud 		return EIO;
    530   1.1   reinoud 
    531   1.1   reinoud 	/* create fake ti (TODO check for resized vnds) */
    532   1.1   reinoud 	ti->sessionnr  = 1;
    533   1.1   reinoud 
    534   1.1   reinoud 	ti->track_mode = 0;	/* XXX */
    535   1.1   reinoud 	ti->data_mode  = 0;	/* XXX */
    536   1.1   reinoud 	ti->flags = MMC_TRACKINFO_LRA_VALID | MMC_TRACKINFO_NWA_VALID;
    537   1.1   reinoud 
    538   1.1   reinoud 	ti->track_start    = 0;
    539   1.1   reinoud 	ti->packet_size    = 1;
    540   1.1   reinoud 
    541   1.1   reinoud 	/* TODO support for resizable vnd */
    542   1.1   reinoud 	ti->track_size    = di->last_possible_lba;
    543   1.1   reinoud 	ti->next_writable = di->last_possible_lba;
    544   1.1   reinoud 	ti->last_recorded = ti->next_writable;
    545   1.1   reinoud 	ti->free_blocks   = 0;
    546   1.1   reinoud 
    547   1.1   reinoud 	return 0;
    548   1.1   reinoud }
    549   1.1   reinoud 
    550   1.1   reinoud /* --------------------------------------------------------------------- */
    551   1.1   reinoud 
    552   1.1   reinoud /* track/session searching for mounting */
    553   1.1   reinoud 
    554   1.1   reinoud static int
    555   1.1   reinoud udf_search_tracks(struct udf_mount *ump, struct udf_args *args,
    556   1.1   reinoud 		  int *first_tracknr, int *last_tracknr)
    557   1.1   reinoud {
    558   1.1   reinoud 	struct mmc_trackinfo trackinfo;
    559   1.1   reinoud 	uint32_t tracknr, start_track, num_tracks;
    560   1.1   reinoud 	int error;
    561   1.1   reinoud 
    562   1.1   reinoud 	/* if negative, sessionnr is relative to last session */
    563   1.1   reinoud 	if (args->sessionnr < 0) {
    564   1.1   reinoud 		args->sessionnr += ump->discinfo.num_sessions;
    565   1.1   reinoud 		/* sanity */
    566   1.1   reinoud 		if (args->sessionnr < 0)
    567   1.1   reinoud 			args->sessionnr = 0;
    568   1.9  christos 	}
    569   1.1   reinoud 
    570   1.1   reinoud 	/* sanity */
    571   1.1   reinoud 	if (args->sessionnr > ump->discinfo.num_sessions)
    572   1.1   reinoud 		args->sessionnr = ump->discinfo.num_sessions;
    573   1.1   reinoud 
    574   1.1   reinoud 	/* search the tracks for this session, zero session nr indicates last */
    575   1.1   reinoud 	if (args->sessionnr == 0) {
    576   1.1   reinoud 		args->sessionnr = ump->discinfo.num_sessions;
    577   1.1   reinoud 		if (ump->discinfo.last_session_state == MMC_STATE_EMPTY) {
    578   1.1   reinoud 			args->sessionnr--;
    579   1.1   reinoud 		}
    580   1.9  christos 	}
    581   1.1   reinoud 
    582   1.1   reinoud 	/* search the first and last track of the specified session */
    583   1.1   reinoud 	num_tracks  = ump->discinfo.num_tracks;
    584   1.1   reinoud 	start_track = ump->discinfo.first_track;
    585   1.1   reinoud 
    586   1.1   reinoud 	/* search for first track of this session */
    587   1.1   reinoud 	for (tracknr = start_track; tracknr <= num_tracks; tracknr++) {
    588   1.1   reinoud 		/* get track info */
    589   1.1   reinoud 		trackinfo.tracknr = tracknr;
    590   1.1   reinoud 		error = udf_update_trackinfo(ump, &trackinfo);
    591   1.1   reinoud 		if (error)
    592   1.1   reinoud 			return error;
    593   1.1   reinoud 
    594   1.1   reinoud 		if (trackinfo.sessionnr == args->sessionnr)
    595   1.1   reinoud 			break;
    596   1.1   reinoud 	}
    597   1.1   reinoud 	*first_tracknr = tracknr;
    598   1.1   reinoud 
    599   1.1   reinoud 	/* search for last track of this session */
    600   1.1   reinoud 	for (;tracknr <= num_tracks; tracknr++) {
    601   1.1   reinoud 		/* get track info */
    602   1.1   reinoud 		trackinfo.tracknr = tracknr;
    603   1.1   reinoud 		error = udf_update_trackinfo(ump, &trackinfo);
    604   1.1   reinoud 		if (error || (trackinfo.sessionnr != args->sessionnr)) {
    605   1.1   reinoud 			tracknr--;
    606   1.1   reinoud 			break;
    607   1.9  christos 		}
    608   1.9  christos 	}
    609   1.1   reinoud 	if (tracknr > num_tracks)
    610   1.1   reinoud 		tracknr--;
    611   1.1   reinoud 
    612   1.1   reinoud 	*last_tracknr = tracknr;
    613   1.1   reinoud 
    614   1.1   reinoud 	assert(*last_tracknr >= *first_tracknr);
    615   1.1   reinoud 	return 0;
    616   1.1   reinoud }
    617   1.1   reinoud 
    618   1.1   reinoud /* --------------------------------------------------------------------- */
    619   1.1   reinoud 
    620   1.1   reinoud static int
    621   1.1   reinoud udf_read_anchor(struct udf_mount *ump, uint32_t sector, struct anchor_vdp **dst)
    622   1.1   reinoud {
    623   1.1   reinoud 	int error;
    624   1.1   reinoud 
    625   1.1   reinoud 	error = udf_read_descriptor(ump, sector, M_UDFVOLD,
    626   1.1   reinoud 			(union dscrptr **) dst);
    627   1.1   reinoud 	if (!error) {
    628   1.1   reinoud 		/* blank terminator blocks are not allowed here */
    629   1.1   reinoud 		if (*dst == NULL)
    630   1.1   reinoud 			return ENOENT;
    631   1.1   reinoud 		if (udf_rw16((*dst)->tag.id) != TAGID_ANCHOR) {
    632   1.1   reinoud 			error = ENOENT;
    633   1.1   reinoud 			free(*dst, M_UDFVOLD);
    634   1.1   reinoud 			*dst = NULL;
    635   1.1   reinoud 			DPRINTF(VOLUMES, ("Not an anchor\n"));
    636   1.9  christos 		}
    637   1.9  christos 	}
    638   1.1   reinoud 
    639   1.1   reinoud 	return error;
    640   1.1   reinoud }
    641   1.1   reinoud 
    642   1.1   reinoud 
    643   1.1   reinoud int
    644   1.1   reinoud udf_read_anchors(struct udf_mount *ump, struct udf_args *args)
    645   1.1   reinoud {
    646   1.1   reinoud 	struct mmc_trackinfo first_track;
    647   1.1   reinoud 	struct mmc_trackinfo last_track;
    648   1.1   reinoud 	struct anchor_vdp **anchorsp;
    649   1.1   reinoud 	uint32_t track_start;
    650   1.1   reinoud 	uint32_t track_end;
    651   1.1   reinoud 	uint32_t positions[4];
    652   1.1   reinoud 	int first_tracknr, last_tracknr;
    653   1.1   reinoud 	int error, anch, ok, first_anchor;
    654   1.1   reinoud 
    655   1.1   reinoud 	/* search the first and last track of the specified session */
    656   1.1   reinoud 	error = udf_search_tracks(ump, args, &first_tracknr, &last_tracknr);
    657   1.1   reinoud 	if (!error) {
    658   1.1   reinoud 		first_track.tracknr = first_tracknr;
    659   1.1   reinoud 		error = udf_update_trackinfo(ump, &first_track);
    660   1.9  christos 	}
    661   1.1   reinoud 	if (!error) {
    662   1.1   reinoud 		last_track.tracknr = last_tracknr;
    663   1.1   reinoud 		error = udf_update_trackinfo(ump, &last_track);
    664   1.9  christos 	}
    665   1.1   reinoud 	if (error) {
    666   1.1   reinoud 		printf("UDF mount: reading disc geometry failed\n");
    667   1.1   reinoud 		return 0;
    668   1.9  christos 	}
    669   1.1   reinoud 
    670   1.1   reinoud 	track_start = first_track.track_start;
    671   1.1   reinoud 
    672   1.1   reinoud 	/* `end' is not as straitforward as start. */
    673   1.1   reinoud 	track_end =   last_track.track_start
    674   1.1   reinoud 		    + last_track.track_size - last_track.free_blocks - 1;
    675   1.1   reinoud 
    676   1.1   reinoud 	if (ump->discinfo.mmc_cur & MMC_CAP_SEQUENTIAL) {
    677   1.1   reinoud 		/* end of track is not straitforward here */
    678   1.1   reinoud 		if (last_track.flags & MMC_TRACKINFO_LRA_VALID)
    679   1.1   reinoud 			track_end = last_track.last_recorded;
    680   1.1   reinoud 		else if (last_track.flags & MMC_TRACKINFO_NWA_VALID)
    681   1.1   reinoud 			track_end = last_track.next_writable
    682   1.1   reinoud 				    - ump->discinfo.link_block_penalty;
    683   1.9  christos 	}
    684   1.1   reinoud 
    685   1.1   reinoud 	/* its no use reading a blank track */
    686   1.1   reinoud 	first_anchor = 0;
    687   1.1   reinoud 	if (first_track.flags & MMC_TRACKINFO_BLANK)
    688   1.1   reinoud 		first_anchor = 1;
    689   1.1   reinoud 
    690   1.1   reinoud 	/* read anchors start+256, start+512, end-256, end */
    691   1.1   reinoud 	positions[0] = track_start+256;
    692   1.1   reinoud 	positions[1] =   track_end-256;
    693   1.1   reinoud 	positions[2] =   track_end;
    694   1.1   reinoud 	positions[3] = track_start+512;	/* [UDF 2.60/6.11.2] */
    695   1.1   reinoud 	/* XXX shouldn't +512 be prefered above +256 for compat with Roxio CD */
    696   1.1   reinoud 
    697   1.1   reinoud 	ok = 0;
    698   1.1   reinoud 	anchorsp = ump->anchors;
    699   1.1   reinoud 	for (anch = first_anchor; anch < 4; anch++) {
    700   1.1   reinoud 		DPRINTF(VOLUMES, ("Read anchor %d at sector %d\n", anch,
    701   1.1   reinoud 		    positions[anch]));
    702   1.1   reinoud 		error = udf_read_anchor(ump, positions[anch], anchorsp);
    703   1.1   reinoud 		if (!error) {
    704   1.1   reinoud 			anchorsp++;
    705   1.1   reinoud 			ok++;
    706   1.9  christos 		}
    707   1.9  christos 	}
    708   1.1   reinoud 
    709  1.13   reinoud 	/* VATs are only recorded on sequential media, but initialise */
    710  1.13   reinoud 	ump->first_possible_vat_location = track_start + 256 + 1;
    711  1.14   reinoud 	ump->last_possible_vat_location  = track_end
    712  1.14   reinoud 		+ ump->discinfo.blockingnr;
    713  1.13   reinoud 
    714   1.1   reinoud 	return ok;
    715   1.1   reinoud }
    716   1.1   reinoud 
    717   1.1   reinoud /* --------------------------------------------------------------------- */
    718   1.1   reinoud 
    719   1.1   reinoud /* we dont try to be smart; we just record the parts */
    720   1.1   reinoud #define UDF_UPDATE_DSCR(name, dscr) \
    721   1.1   reinoud 	if (name) \
    722   1.1   reinoud 		free(name, M_UDFVOLD); \
    723   1.1   reinoud 	name = dscr;
    724   1.1   reinoud 
    725   1.1   reinoud static int
    726   1.1   reinoud udf_process_vds_descriptor(struct udf_mount *ump, union dscrptr *dscr)
    727   1.1   reinoud {
    728   1.1   reinoud 	uint16_t partnr;
    729   1.1   reinoud 
    730   1.1   reinoud 	DPRINTF(VOLUMES, ("\tprocessing VDS descr %d\n",
    731   1.1   reinoud 	    udf_rw16(dscr->tag.id)));
    732   1.1   reinoud 	switch (udf_rw16(dscr->tag.id)) {
    733   1.1   reinoud 	case TAGID_PRI_VOL :		/* primary partition		*/
    734   1.1   reinoud 		UDF_UPDATE_DSCR(ump->primary_vol, &dscr->pvd);
    735   1.1   reinoud 		break;
    736   1.1   reinoud 	case TAGID_LOGVOL :		/* logical volume		*/
    737   1.1   reinoud 		UDF_UPDATE_DSCR(ump->logical_vol, &dscr->lvd);
    738   1.1   reinoud 		break;
    739   1.1   reinoud 	case TAGID_UNALLOC_SPACE :	/* unallocated space		*/
    740   1.1   reinoud 		UDF_UPDATE_DSCR(ump->unallocated, &dscr->usd);
    741   1.1   reinoud 		break;
    742   1.1   reinoud 	case TAGID_IMP_VOL :		/* implementation		*/
    743   1.1   reinoud 		/* XXX do we care about multiple impl. descr ? */
    744   1.1   reinoud 		UDF_UPDATE_DSCR(ump->implementation, &dscr->ivd);
    745   1.1   reinoud 		break;
    746   1.1   reinoud 	case TAGID_PARTITION :		/* physical partition		*/
    747   1.1   reinoud 		/* not much use if its not allocated */
    748   1.1   reinoud 		if ((udf_rw16(dscr->pd.flags) & UDF_PART_FLAG_ALLOCATED) == 0) {
    749   1.1   reinoud 			free(dscr, M_UDFVOLD);
    750   1.1   reinoud 			break;
    751   1.9  christos 		}
    752   1.1   reinoud 
    753   1.1   reinoud 		/* check partnr boundaries */
    754   1.1   reinoud 		partnr = udf_rw16(dscr->pd.part_num);
    755  1.20   reinoud 		if (partnr >= UDF_PARTITIONS) {
    756  1.20   reinoud 			free(dscr, M_UDFVOLD);
    757   1.1   reinoud 			return EINVAL;
    758  1.20   reinoud 		}
    759   1.1   reinoud 
    760   1.1   reinoud 		UDF_UPDATE_DSCR(ump->partitions[partnr], &dscr->pd);
    761   1.1   reinoud 		break;
    762   1.1   reinoud 	case TAGID_VOL :		/* volume space extender; rare	*/
    763   1.1   reinoud 		DPRINTF(VOLUMES, ("VDS extender ignored\n"));
    764   1.1   reinoud 		free(dscr, M_UDFVOLD);
    765   1.1   reinoud 		break;
    766   1.1   reinoud 	default :
    767   1.1   reinoud 		DPRINTF(VOLUMES, ("Unhandled VDS type %d\n",
    768   1.1   reinoud 		    udf_rw16(dscr->tag.id)));
    769   1.1   reinoud 		free(dscr, M_UDFVOLD);
    770   1.9  christos 	}
    771   1.1   reinoud 
    772   1.1   reinoud 	return 0;
    773   1.1   reinoud }
    774   1.1   reinoud #undef UDF_UPDATE_DSCR
    775   1.1   reinoud 
    776   1.1   reinoud /* --------------------------------------------------------------------- */
    777   1.1   reinoud 
    778   1.1   reinoud static int
    779   1.1   reinoud udf_read_vds_extent(struct udf_mount *ump, uint32_t loc, uint32_t len)
    780   1.1   reinoud {
    781   1.1   reinoud 	union dscrptr *dscr;
    782   1.1   reinoud 	uint32_t sector_size, dscr_size;
    783   1.1   reinoud 	int error;
    784   1.1   reinoud 
    785   1.1   reinoud 	sector_size = ump->discinfo.sector_size;
    786   1.1   reinoud 
    787   1.1   reinoud 	/* loc is sectornr, len is in bytes */
    788   1.1   reinoud 	error = EIO;
    789   1.1   reinoud 	while (len) {
    790   1.1   reinoud 		error = udf_read_descriptor(ump, loc, M_UDFVOLD, &dscr);
    791   1.1   reinoud 		if (error)
    792   1.1   reinoud 			return error;
    793   1.1   reinoud 
    794   1.1   reinoud 		/* blank block is a terminator */
    795   1.1   reinoud 		if (dscr == NULL)
    796   1.1   reinoud 			return 0;
    797   1.1   reinoud 
    798   1.1   reinoud 		/* TERM descriptor is a terminator */
    799  1.20   reinoud 		if (udf_rw16(dscr->tag.id) == TAGID_TERM) {
    800  1.20   reinoud 			free(dscr, M_UDFVOLD);
    801   1.1   reinoud 			return 0;
    802  1.20   reinoud 		}
    803   1.1   reinoud 
    804   1.1   reinoud 		/* process all others */
    805   1.1   reinoud 		dscr_size = udf_tagsize(dscr, sector_size);
    806   1.1   reinoud 		error = udf_process_vds_descriptor(ump, dscr);
    807   1.1   reinoud 		if (error) {
    808   1.1   reinoud 			free(dscr, M_UDFVOLD);
    809   1.1   reinoud 			break;
    810   1.9  christos 		}
    811   1.1   reinoud 		assert((dscr_size % sector_size) == 0);
    812   1.1   reinoud 
    813   1.1   reinoud 		len -= dscr_size;
    814   1.1   reinoud 		loc += dscr_size / sector_size;
    815   1.9  christos 	}
    816   1.1   reinoud 
    817   1.1   reinoud 	return error;
    818   1.1   reinoud }
    819   1.1   reinoud 
    820   1.1   reinoud 
    821   1.1   reinoud int
    822   1.1   reinoud udf_read_vds_space(struct udf_mount *ump)
    823   1.1   reinoud {
    824   1.1   reinoud 	struct anchor_vdp *anchor, *anchor2;
    825   1.1   reinoud 	size_t size;
    826   1.1   reinoud 	uint32_t main_loc, main_len;
    827   1.1   reinoud 	uint32_t reserve_loc, reserve_len;
    828   1.1   reinoud 	int error;
    829   1.1   reinoud 
    830   1.1   reinoud 	/*
    831   1.1   reinoud 	 * read in VDS space provided by the anchors; if one descriptor read
    832   1.1   reinoud 	 * fails, try the mirror sector.
    833   1.1   reinoud 	 *
    834   1.1   reinoud 	 * check if 2nd anchor is different from 1st; if so, go for 2nd. This
    835   1.1   reinoud 	 * avoids the `compatibility features' of DirectCD that may confuse
    836   1.1   reinoud 	 * stuff completely.
    837   1.1   reinoud 	 */
    838   1.1   reinoud 
    839   1.1   reinoud 	anchor  = ump->anchors[0];
    840   1.1   reinoud 	anchor2 = ump->anchors[1];
    841   1.1   reinoud 	assert(anchor);
    842   1.1   reinoud 
    843   1.1   reinoud 	if (anchor2) {
    844   1.1   reinoud 		size = sizeof(struct extent_ad);
    845   1.1   reinoud 		if (memcmp(&anchor->main_vds_ex, &anchor2->main_vds_ex, size))
    846   1.1   reinoud 			anchor = anchor2;
    847   1.1   reinoud 		/* reserve is specified to be a literal copy of main */
    848   1.9  christos 	}
    849   1.1   reinoud 
    850   1.1   reinoud 	main_loc    = udf_rw32(anchor->main_vds_ex.loc);
    851   1.1   reinoud 	main_len    = udf_rw32(anchor->main_vds_ex.len);
    852   1.1   reinoud 
    853   1.1   reinoud 	reserve_loc = udf_rw32(anchor->reserve_vds_ex.loc);
    854   1.1   reinoud 	reserve_len = udf_rw32(anchor->reserve_vds_ex.len);
    855   1.1   reinoud 
    856   1.1   reinoud 	error = udf_read_vds_extent(ump, main_loc, main_len);
    857   1.1   reinoud 	if (error) {
    858   1.1   reinoud 		printf("UDF mount: reading in reserve VDS extent\n");
    859   1.1   reinoud 		error = udf_read_vds_extent(ump, reserve_loc, reserve_len);
    860   1.9  christos 	}
    861   1.1   reinoud 
    862   1.1   reinoud 	return error;
    863   1.1   reinoud }
    864   1.1   reinoud 
    865   1.1   reinoud /* --------------------------------------------------------------------- */
    866   1.1   reinoud 
    867   1.1   reinoud /*
    868   1.1   reinoud  * Read in the logical volume integrity sequence pointed to by our logical
    869   1.1   reinoud  * volume descriptor. Its a sequence that can be extended using fields in the
    870   1.1   reinoud  * integrity descriptor itself. On sequential media only one is found, on
    871   1.1   reinoud  * rewritable media a sequence of descriptors can be found as a form of
    872   1.1   reinoud  * history keeping and on non sequential write-once media the chain is vital
    873   1.1   reinoud  * to allow more and more descriptors to be written. The last descriptor
    874   1.1   reinoud  * written in an extent needs to claim space for a new extent.
    875   1.1   reinoud  */
    876   1.1   reinoud 
    877   1.1   reinoud static int
    878   1.1   reinoud udf_retrieve_lvint(struct udf_mount *ump, struct logvol_int_desc **lvintp)
    879   1.1   reinoud {
    880   1.1   reinoud 	union dscrptr *dscr;
    881   1.1   reinoud 	struct logvol_int_desc *lvint;
    882   1.1   reinoud 	uint32_t sector_size, sector, len;
    883   1.1   reinoud 	int dscr_type, error;
    884   1.1   reinoud 
    885   1.1   reinoud 	sector_size = ump->discinfo.sector_size;
    886   1.1   reinoud 	len    = udf_rw32(ump->logical_vol->integrity_seq_loc.len);
    887   1.1   reinoud 	sector = udf_rw32(ump->logical_vol->integrity_seq_loc.loc);
    888   1.1   reinoud 
    889   1.1   reinoud 	lvint = NULL;
    890   1.1   reinoud 	dscr  = NULL;
    891   1.1   reinoud 	error = 0;
    892   1.1   reinoud 	while (len) {
    893   1.1   reinoud 		/* read in our integrity descriptor */
    894   1.1   reinoud 		error = udf_read_descriptor(ump, sector, M_UDFVOLD, &dscr);
    895   1.1   reinoud 		if (!error) {
    896   1.1   reinoud 			if (dscr == NULL)
    897   1.1   reinoud 				break;		/* empty terminates */
    898   1.1   reinoud 			dscr_type = udf_rw16(dscr->tag.id);
    899   1.1   reinoud 			if (dscr_type == TAGID_TERM) {
    900   1.1   reinoud 				break;		/* clean terminator */
    901   1.9  christos 			}
    902   1.1   reinoud 			if (dscr_type != TAGID_LOGVOL_INTEGRITY) {
    903   1.1   reinoud 				/* fatal... corrupt disc */
    904   1.1   reinoud 				error = ENOENT;
    905   1.1   reinoud 				break;
    906   1.9  christos 			}
    907   1.1   reinoud 			if (lvint)
    908   1.1   reinoud 				free(lvint, M_UDFVOLD);
    909   1.1   reinoud 			lvint = &dscr->lvid;
    910   1.1   reinoud 			dscr = NULL;
    911   1.9  christos 		} /* else hope for the best... maybe the next is ok */
    912   1.1   reinoud 
    913   1.1   reinoud 		DPRINTFIF(VOLUMES, lvint, ("logvol integrity read, state %s\n",
    914   1.1   reinoud 		    udf_rw32(lvint->integrity_type) ? "CLOSED" : "OPEN"));
    915   1.1   reinoud 
    916   1.1   reinoud 		/* proceed sequential */
    917   1.1   reinoud 		sector += 1;
    918   1.1   reinoud 		len    -= sector_size;
    919   1.1   reinoud 
    920   1.1   reinoud 		/* are we linking to a new piece? */
    921   1.1   reinoud 		if (lvint->next_extent.len) {
    922   1.1   reinoud 			len    = udf_rw32(lvint->next_extent.len);
    923   1.1   reinoud 			sector = udf_rw32(lvint->next_extent.loc);
    924   1.9  christos 		}
    925   1.9  christos 	}
    926   1.1   reinoud 
    927   1.1   reinoud 	/* clean up the mess, esp. when there is an error */
    928   1.1   reinoud 	if (dscr)
    929   1.1   reinoud 		free(dscr, M_UDFVOLD);
    930   1.3   reinoud 
    931   1.3   reinoud 	if (error && lvint) {
    932   1.1   reinoud 		free(lvint, M_UDFVOLD);
    933   1.3   reinoud 		lvint = NULL;
    934   1.9  christos 	}
    935   1.1   reinoud 
    936   1.1   reinoud 	if (!lvint)
    937   1.1   reinoud 		error = ENOENT;
    938   1.1   reinoud 
    939   1.3   reinoud 	*lvintp = lvint;
    940   1.1   reinoud 	return error;
    941   1.1   reinoud }
    942   1.1   reinoud 
    943   1.1   reinoud /* --------------------------------------------------------------------- */
    944   1.1   reinoud 
    945   1.1   reinoud /*
    946   1.1   reinoud  * Checks if ump's vds information is correct and complete
    947   1.1   reinoud  */
    948   1.1   reinoud 
    949   1.1   reinoud int
    950  1.23  christos udf_process_vds(struct udf_mount *ump, struct udf_args *args)
    951  1.22  christos {
    952   1.1   reinoud 	union udf_pmap *mapping;
    953   1.1   reinoud 	struct logvol_int_desc *lvint;
    954   1.1   reinoud 	struct udf_logvol_info *lvinfo;
    955   1.1   reinoud 	uint32_t n_pm, mt_l;
    956   1.1   reinoud 	uint8_t *pmap_pos;
    957   1.1   reinoud 	char *domain_name, *map_name;
    958   1.1   reinoud 	const char *check_name;
    959   1.1   reinoud 	int pmap_stype, pmap_size;
    960   1.1   reinoud 	int pmap_type, log_part, phys_part;
    961   1.1   reinoud 	int n_phys, n_virt, n_spar, n_meta;
    962   1.1   reinoud 	int len, error;
    963   1.1   reinoud 
    964   1.1   reinoud 	if (ump == NULL)
    965   1.1   reinoud 		return ENOENT;
    966   1.1   reinoud 
    967   1.1   reinoud 	/* we need at least an anchor (trivial, but for safety) */
    968   1.1   reinoud 	if (ump->anchors[0] == NULL)
    969   1.1   reinoud 		return EINVAL;
    970   1.1   reinoud 
    971   1.1   reinoud 	/* we need at least one primary and one logical volume descriptor */
    972   1.1   reinoud 	if ((ump->primary_vol == NULL) || (ump->logical_vol) == NULL)
    973   1.1   reinoud 		return EINVAL;
    974   1.1   reinoud 
    975   1.1   reinoud 	/* we need at least one partition descriptor */
    976   1.1   reinoud 	if (ump->partitions[0] == NULL)
    977   1.1   reinoud 		return EINVAL;
    978   1.1   reinoud 
    979   1.1   reinoud 	/* check logical volume sector size verses device sector size */
    980   1.1   reinoud 	if (udf_rw32(ump->logical_vol->lb_size) != ump->discinfo.sector_size) {
    981   1.1   reinoud 		printf("UDF mount: format violation, lb_size != sector size\n");
    982   1.1   reinoud 		return EINVAL;
    983   1.9  christos 	}
    984   1.1   reinoud 
    985   1.1   reinoud 	domain_name = ump->logical_vol->domain_id.id;
    986   1.1   reinoud 	if (strncmp(domain_name, "*OSTA UDF Compliant", 20)) {
    987   1.1   reinoud 		printf("mount_udf: disc not OSTA UDF Compliant, aborting\n");
    988   1.1   reinoud 		return EINVAL;
    989   1.9  christos 	}
    990   1.1   reinoud 
    991   1.1   reinoud 	/* retrieve logical volume integrity sequence */
    992   1.1   reinoud 	error = udf_retrieve_lvint(ump, &ump->logvol_integrity);
    993   1.1   reinoud 
    994   1.1   reinoud 	/*
    995   1.1   reinoud 	 * We need at least one logvol integrity descriptor recorded.  Note
    996   1.1   reinoud 	 * that its OK to have an open logical volume integrity here. The VAT
    997   1.1   reinoud 	 * will close/update the integrity.
    998   1.1   reinoud 	 */
    999   1.1   reinoud 	if (ump->logvol_integrity == NULL)
   1000   1.1   reinoud 		return EINVAL;
   1001   1.1   reinoud 
   1002   1.1   reinoud 	/* process derived structures */
   1003   1.1   reinoud 	n_pm   = udf_rw32(ump->logical_vol->n_pm);   /* num partmaps         */
   1004   1.1   reinoud 	lvint  = ump->logvol_integrity;
   1005   1.1   reinoud 	lvinfo = (struct udf_logvol_info *) (&lvint->tables[2 * n_pm]);
   1006   1.1   reinoud 	ump->logvol_info = lvinfo;
   1007   1.1   reinoud 
   1008   1.1   reinoud 	/* TODO check udf versions? */
   1009   1.1   reinoud 
   1010   1.1   reinoud 	/*
   1011   1.1   reinoud 	 * check logvol mappings: effective virt->log partmap translation
   1012   1.1   reinoud 	 * check and recording of the mapping results. Saves expensive
   1013   1.1   reinoud 	 * strncmp() in tight places.
   1014   1.1   reinoud 	 */
   1015   1.1   reinoud 	DPRINTF(VOLUMES, ("checking logvol mappings\n"));
   1016   1.1   reinoud 	n_pm = udf_rw32(ump->logical_vol->n_pm);   /* num partmaps         */
   1017   1.1   reinoud 	mt_l = udf_rw32(ump->logical_vol->mt_l);   /* partmaps data length */
   1018   1.1   reinoud 	pmap_pos =  ump->logical_vol->maps;
   1019   1.1   reinoud 
   1020   1.1   reinoud 	if (n_pm > UDF_PMAPS) {
   1021   1.1   reinoud 		printf("UDF mount: too many mappings\n");
   1022   1.1   reinoud 		return EINVAL;
   1023   1.9  christos 	}
   1024   1.1   reinoud 
   1025   1.1   reinoud 	n_phys = n_virt = n_spar = n_meta = 0;
   1026   1.1   reinoud 	for (log_part = 0; log_part < n_pm; log_part++) {
   1027   1.1   reinoud 		mapping = (union udf_pmap *) pmap_pos;
   1028   1.1   reinoud 		pmap_stype = pmap_pos[0];
   1029   1.1   reinoud 		pmap_size  = pmap_pos[1];
   1030   1.1   reinoud 		switch (pmap_stype) {
   1031   1.1   reinoud 		case 1:	/* physical mapping */
   1032   1.1   reinoud 			/* volseq    = udf_rw16(mapping->pm1.vol_seq_num); */
   1033   1.1   reinoud 			phys_part = udf_rw16(mapping->pm1.part_num);
   1034   1.1   reinoud 			pmap_type = UDF_VTOP_TYPE_PHYS;
   1035   1.1   reinoud 			n_phys++;
   1036   1.1   reinoud 			break;
   1037   1.1   reinoud 		case 2: /* virtual/sparable/meta mapping */
   1038   1.1   reinoud 			map_name  = mapping->pm2.part_id.id;
   1039   1.1   reinoud 			/* volseq  = udf_rw16(mapping->pm2.vol_seq_num); */
   1040   1.1   reinoud 			phys_part = udf_rw16(mapping->pm2.part_num);
   1041   1.1   reinoud 			pmap_type = UDF_VTOP_TYPE_UNKNOWN;
   1042   1.1   reinoud 			len = UDF_REGID_ID_SIZE;
   1043   1.1   reinoud 
   1044   1.1   reinoud 			check_name = "*UDF Virtual Partition";
   1045   1.1   reinoud 			if (strncmp(map_name, check_name, len) == 0) {
   1046   1.1   reinoud 				pmap_type = UDF_VTOP_TYPE_VIRT;
   1047   1.1   reinoud 				n_virt++;
   1048   1.1   reinoud 				break;
   1049   1.9  christos 			}
   1050   1.1   reinoud 			check_name = "*UDF Sparable Partition";
   1051   1.1   reinoud 			if (strncmp(map_name, check_name, len) == 0) {
   1052   1.1   reinoud 				pmap_type = UDF_VTOP_TYPE_SPARABLE;
   1053   1.1   reinoud 				n_spar++;
   1054   1.1   reinoud 				break;
   1055   1.9  christos 			}
   1056   1.1   reinoud 			check_name = "*UDF Metadata Partition";
   1057   1.1   reinoud 			if (strncmp(map_name, check_name, len) == 0) {
   1058   1.1   reinoud 				pmap_type = UDF_VTOP_TYPE_META;
   1059   1.1   reinoud 				n_meta++;
   1060   1.1   reinoud 				break;
   1061   1.9  christos 			}
   1062   1.1   reinoud 			break;
   1063   1.1   reinoud 		default:
   1064   1.1   reinoud 			return EINVAL;
   1065   1.9  christos 		}
   1066   1.1   reinoud 
   1067   1.1   reinoud 		DPRINTF(VOLUMES, ("\t%d -> %d type %d\n", log_part, phys_part,
   1068   1.1   reinoud 		    pmap_type));
   1069   1.1   reinoud 		if (pmap_type == UDF_VTOP_TYPE_UNKNOWN)
   1070   1.1   reinoud 			return EINVAL;
   1071   1.1   reinoud 
   1072   1.1   reinoud 		ump->vtop   [log_part] = phys_part;
   1073   1.1   reinoud 		ump->vtop_tp[log_part] = pmap_type;
   1074   1.1   reinoud 
   1075   1.1   reinoud 		pmap_pos += pmap_size;
   1076   1.9  christos 	}
   1077   1.1   reinoud 	/* not winning the beauty contest */
   1078   1.1   reinoud 	ump->vtop_tp[UDF_VTOP_RAWPART] = UDF_VTOP_TYPE_RAW;
   1079   1.1   reinoud 
   1080   1.1   reinoud 	/* test some basic UDF assertions/requirements */
   1081   1.1   reinoud 	if ((n_virt > 1) || (n_spar > 1) || (n_meta > 1))
   1082   1.1   reinoud 		return EINVAL;
   1083   1.1   reinoud 
   1084   1.1   reinoud 	if (n_virt) {
   1085   1.1   reinoud 		if ((n_phys == 0) || n_spar || n_meta)
   1086   1.1   reinoud 			return EINVAL;
   1087   1.9  christos 	}
   1088   1.1   reinoud 	if (n_spar + n_phys == 0)
   1089   1.1   reinoud 		return EINVAL;
   1090   1.1   reinoud 
   1091   1.1   reinoud 	/* vat's can only be on a sequential media */
   1092   1.1   reinoud 	ump->data_alloc = UDF_ALLOC_SPACEMAP;
   1093   1.1   reinoud 	if (n_virt)
   1094   1.1   reinoud 		ump->data_alloc = UDF_ALLOC_SEQUENTIAL;
   1095   1.1   reinoud 
   1096   1.1   reinoud 	ump->meta_alloc = UDF_ALLOC_SPACEMAP;
   1097   1.1   reinoud 	if (n_virt)
   1098   1.1   reinoud 		ump->meta_alloc = UDF_ALLOC_VAT;
   1099   1.1   reinoud 	if (n_meta)
   1100   1.1   reinoud 		ump->meta_alloc = UDF_ALLOC_METABITMAP;
   1101   1.1   reinoud 
   1102   1.1   reinoud 	/* special cases for pseudo-overwrite */
   1103   1.1   reinoud 	if (ump->discinfo.mmc_cur & MMC_CAP_PSEUDOOVERWRITE) {
   1104   1.1   reinoud 		ump->data_alloc = UDF_ALLOC_SEQUENTIAL;
   1105   1.1   reinoud 		if (n_meta) {
   1106   1.1   reinoud 			ump->meta_alloc = UDF_ALLOC_METASEQUENTIAL;
   1107   1.1   reinoud 		} else {
   1108   1.1   reinoud 			ump->meta_alloc = UDF_ALLOC_RELAXEDSEQUENTIAL;
   1109   1.9  christos 		}
   1110   1.9  christos 	}
   1111   1.1   reinoud 
   1112   1.1   reinoud 	DPRINTF(VOLUMES, ("\tdata alloc scheme %d, meta alloc scheme %d\n",
   1113   1.1   reinoud 	    ump->data_alloc, ump->meta_alloc));
   1114   1.1   reinoud 	/* TODO determine partitions to write data and metadata ? */
   1115   1.1   reinoud 
   1116   1.1   reinoud 	/* signal its OK for now */
   1117   1.1   reinoud 	return 0;
   1118   1.1   reinoud }
   1119   1.1   reinoud 
   1120   1.1   reinoud /* --------------------------------------------------------------------- */
   1121   1.1   reinoud 
   1122   1.1   reinoud /*
   1123   1.1   reinoud  * Read in complete VAT file and check if its indeed a VAT file descriptor
   1124   1.1   reinoud  */
   1125   1.1   reinoud 
   1126   1.1   reinoud static int
   1127   1.1   reinoud udf_check_for_vat(struct udf_node *vat_node)
   1128   1.1   reinoud {
   1129   1.1   reinoud 	struct udf_mount *ump;
   1130   1.1   reinoud 	struct icb_tag   *icbtag;
   1131   1.1   reinoud 	struct timestamp *mtime;
   1132   1.1   reinoud 	struct regid     *regid;
   1133   1.1   reinoud 	struct udf_vat   *vat;
   1134   1.1   reinoud 	struct udf_logvol_info *lvinfo;
   1135   1.1   reinoud 	uint32_t  vat_length, alloc_length;
   1136   1.1   reinoud 	uint32_t  vat_offset, vat_entries;
   1137   1.1   reinoud 	uint32_t  sector_size;
   1138   1.1   reinoud 	uint32_t  sectors;
   1139   1.1   reinoud 	uint32_t *raw_vat;
   1140   1.1   reinoud 	char     *regid_name;
   1141   1.1   reinoud 	int filetype;
   1142   1.1   reinoud 	int error;
   1143   1.1   reinoud 
   1144   1.1   reinoud 	/* vat_length is really 64 bits though impossible */
   1145   1.1   reinoud 
   1146   1.1   reinoud 	DPRINTF(VOLUMES, ("Checking for VAT\n"));
   1147   1.1   reinoud 	if (!vat_node)
   1148   1.1   reinoud 		return ENOENT;
   1149   1.1   reinoud 
   1150   1.1   reinoud 	/* get mount info */
   1151   1.1   reinoud 	ump = vat_node->ump;
   1152   1.1   reinoud 
   1153   1.1   reinoud 	/* check assertions */
   1154   1.1   reinoud 	assert(vat_node->fe || vat_node->efe);
   1155   1.1   reinoud 	assert(ump->logvol_integrity);
   1156   1.1   reinoud 
   1157   1.1   reinoud 	/* get information from fe/efe */
   1158   1.1   reinoud 	if (vat_node->fe) {
   1159   1.1   reinoud 		vat_length = udf_rw64(vat_node->fe->inf_len);
   1160   1.1   reinoud 		icbtag = &vat_node->fe->icbtag;
   1161   1.1   reinoud 		mtime  = &vat_node->fe->mtime;
   1162   1.1   reinoud 	} else {
   1163   1.1   reinoud 		vat_length = udf_rw64(vat_node->efe->inf_len);
   1164   1.1   reinoud 		icbtag = &vat_node->efe->icbtag;
   1165   1.1   reinoud 		mtime  = &vat_node->efe->mtime;
   1166   1.9  christos 	}
   1167   1.1   reinoud 
   1168   1.1   reinoud 	/* Check icb filetype! it has to be 0 or UDF_ICB_FILETYPE_VAT */
   1169   1.1   reinoud 	filetype = icbtag->file_type;
   1170   1.1   reinoud 	if ((filetype != 0) && (filetype != UDF_ICB_FILETYPE_VAT))
   1171   1.1   reinoud 		return ENOENT;
   1172   1.1   reinoud 
   1173   1.1   reinoud 	DPRINTF(VOLUMES, ("\tPossible VAT length %d\n", vat_length));
   1174   1.1   reinoud 	/* place a sanity check on the length; currently 1Mb in size */
   1175   1.1   reinoud 	if (vat_length > 1*1024*1024)
   1176   1.1   reinoud 		return ENOENT;
   1177   1.1   reinoud 
   1178   1.1   reinoud 	/* get sector size */
   1179   1.1   reinoud 	sector_size = vat_node->ump->discinfo.sector_size;
   1180   1.1   reinoud 
   1181   1.1   reinoud 	/* calculate how many sectors to read in and how much to allocate */
   1182   1.1   reinoud 	sectors = (vat_length + sector_size -1) / sector_size;
   1183   1.1   reinoud 	alloc_length = (sectors + 2) * sector_size;
   1184   1.1   reinoud 
   1185   1.1   reinoud 	/* try to allocate the space */
   1186   1.1   reinoud 	ump->vat_table_alloc_length = alloc_length;
   1187  1.21   reinoud 	ump->vat_table = malloc(alloc_length, M_UDFVOLD, M_CANFAIL | M_WAITOK);
   1188   1.1   reinoud 	if (!ump->vat_table)
   1189   1.1   reinoud 		return ENOMEM;		/* impossible to allocate */
   1190   1.1   reinoud 	DPRINTF(VOLUMES, ("\talloced fine\n"));
   1191   1.1   reinoud 
   1192   1.1   reinoud 	/* read it in! */
   1193   1.1   reinoud 	raw_vat = (uint32_t *) ump->vat_table;
   1194   1.1   reinoud 	error = udf_read_file_extent(vat_node, 0, sectors, (uint8_t *) raw_vat);
   1195   1.1   reinoud 	if (error) {
   1196   1.1   reinoud 		DPRINTF(VOLUMES, ("\tread failed : %d\n", error));
   1197   1.1   reinoud 		/* not completely readable... :( bomb out */
   1198  1.21   reinoud 		free(ump->vat_table, M_UDFVOLD);
   1199   1.1   reinoud 		ump->vat_table = NULL;
   1200   1.1   reinoud 		return error;
   1201   1.9  christos 	}
   1202   1.1   reinoud 	DPRINTF(VOLUMES, ("VAT read in fine!\n"));
   1203   1.1   reinoud 
   1204   1.1   reinoud 	/*
   1205   1.1   reinoud 	 * check contents of the file if its the old 1.50 VAT table format.
   1206   1.1   reinoud 	 * Its notoriously broken and allthough some implementations support an
   1207   1.1   reinoud 	 * extention as defined in the UDF 1.50 errata document, its doubtfull
   1208   1.1   reinoud 	 * to be useable since a lot of implementations don't maintain it.
   1209   1.1   reinoud 	 */
   1210   1.1   reinoud 	lvinfo = ump->logvol_info;
   1211   1.1   reinoud 
   1212   1.1   reinoud 	if (filetype == 0) {
   1213   1.1   reinoud 		/* definition */
   1214   1.1   reinoud 		vat_offset  = 0;
   1215   1.1   reinoud 		vat_entries = (vat_length-36)/4;
   1216   1.1   reinoud 
   1217   1.1   reinoud 		/* check 1.50 VAT */
   1218   1.1   reinoud 		regid = (struct regid *) (raw_vat + vat_entries);
   1219   1.1   reinoud 		regid_name = (char *) regid->id;
   1220   1.1   reinoud 		error = strncmp(regid_name, "*UDF Virtual Alloc Tbl", 22);
   1221   1.1   reinoud 		if (error) {
   1222   1.1   reinoud 			DPRINTF(VOLUMES, ("VAT format 1.50 rejected\n"));
   1223  1.21   reinoud 			free(ump->vat_table, M_UDFVOLD);
   1224   1.1   reinoud 			ump->vat_table = NULL;
   1225   1.1   reinoud 			return ENOENT;
   1226   1.9  christos 		}
   1227   1.1   reinoud 		/* TODO update LVID from "*UDF VAT LVExtension" ext. attr. */
   1228   1.1   reinoud 	} else {
   1229   1.1   reinoud 		vat = (struct udf_vat *) raw_vat;
   1230   1.1   reinoud 
   1231   1.1   reinoud 		/* definition */
   1232   1.1   reinoud 		vat_offset  = vat->header_len;
   1233   1.1   reinoud 		vat_entries = (vat_length - vat_offset)/4;
   1234   1.1   reinoud 
   1235   1.1   reinoud 		assert(lvinfo);
   1236   1.1   reinoud 		lvinfo->num_files        = vat->num_files;
   1237   1.1   reinoud 		lvinfo->num_directories  = vat->num_directories;
   1238   1.1   reinoud 		lvinfo->min_udf_readver  = vat->min_udf_readver;
   1239   1.1   reinoud 		lvinfo->min_udf_writever = vat->min_udf_writever;
   1240   1.1   reinoud 		lvinfo->max_udf_writever = vat->max_udf_writever;
   1241   1.9  christos 	}
   1242   1.1   reinoud 
   1243   1.1   reinoud 	ump->vat_offset  = vat_offset;
   1244   1.1   reinoud 	ump->vat_entries = vat_entries;
   1245   1.1   reinoud 
   1246   1.1   reinoud 	DPRINTF(VOLUMES, ("VAT format accepted, marking it closed\n"));
   1247   1.1   reinoud 	ump->logvol_integrity->integrity_type = udf_rw32(UDF_INTEGRITY_CLOSED);
   1248   1.1   reinoud 	ump->logvol_integrity->time           = *mtime;
   1249   1.1   reinoud 
   1250   1.1   reinoud 	return 0;	/* success! */
   1251   1.1   reinoud }
   1252   1.1   reinoud 
   1253   1.1   reinoud /* --------------------------------------------------------------------- */
   1254   1.1   reinoud 
   1255   1.1   reinoud static int
   1256   1.1   reinoud udf_search_vat(struct udf_mount *ump, union udf_pmap *mapping)
   1257   1.1   reinoud {
   1258   1.1   reinoud 	struct udf_node *vat_node;
   1259   1.1   reinoud 	struct long_ad	 icb_loc;
   1260   1.1   reinoud 	uint32_t early_vat_loc, late_vat_loc, vat_loc;
   1261   1.1   reinoud 	int error;
   1262   1.1   reinoud 
   1263   1.1   reinoud 	/* mapping info not needed */
   1264   1.1   reinoud 	mapping = mapping;
   1265   1.1   reinoud 
   1266  1.13   reinoud 	vat_loc = ump->last_possible_vat_location;
   1267  1.14   reinoud 	early_vat_loc = vat_loc - 2 * ump->discinfo.blockingnr;
   1268  1.13   reinoud 	early_vat_loc = MAX(early_vat_loc, ump->first_possible_vat_location);
   1269   1.1   reinoud 	late_vat_loc  = vat_loc + 1024;
   1270   1.1   reinoud 
   1271   1.1   reinoud 	/* TODO first search last sector? */
   1272   1.1   reinoud 	do {
   1273   1.1   reinoud 		DPRINTF(VOLUMES, ("Checking for VAT at sector %d\n", vat_loc));
   1274   1.1   reinoud 		icb_loc.loc.part_num = udf_rw16(UDF_VTOP_RAWPART);
   1275   1.1   reinoud 		icb_loc.loc.lb_num   = udf_rw32(vat_loc);
   1276   1.1   reinoud 
   1277   1.1   reinoud 		error = udf_get_node(ump, &icb_loc, &vat_node);
   1278   1.1   reinoud 		if (!error) error = udf_check_for_vat(vat_node);
   1279   1.1   reinoud 		if (!error) break;
   1280   1.1   reinoud 		if (vat_node) {
   1281   1.1   reinoud 			vput(vat_node->vnode);
   1282   1.1   reinoud 			udf_dispose_node(vat_node);
   1283   1.9  christos 		}
   1284   1.1   reinoud 		vat_loc--;	/* walk backwards */
   1285   1.1   reinoud 	} while (vat_loc >= early_vat_loc);
   1286   1.1   reinoud 
   1287   1.1   reinoud 	/* we don't need our VAT node anymore */
   1288   1.1   reinoud 	if (vat_node) {
   1289   1.1   reinoud 		vput(vat_node->vnode);
   1290   1.1   reinoud 		udf_dispose_node(vat_node);
   1291   1.9  christos 	}
   1292   1.1   reinoud 
   1293   1.1   reinoud 	return error;
   1294   1.1   reinoud }
   1295   1.1   reinoud 
   1296   1.1   reinoud /* --------------------------------------------------------------------- */
   1297   1.1   reinoud 
   1298   1.1   reinoud static int
   1299   1.1   reinoud udf_read_sparables(struct udf_mount *ump, union udf_pmap *mapping)
   1300   1.1   reinoud {
   1301   1.1   reinoud 	union dscrptr *dscr;
   1302  1.26   reinoud 	struct part_map_spare *pms = &mapping->pms;
   1303   1.1   reinoud 	uint32_t lb_num;
   1304   1.1   reinoud 	int spar, error;
   1305   1.1   reinoud 
   1306   1.1   reinoud 	/*
   1307   1.1   reinoud 	 * The partition mapping passed on to us specifies the information we
   1308   1.1   reinoud 	 * need to locate and initialise the sparable partition mapping
   1309   1.1   reinoud 	 * information we need.
   1310   1.1   reinoud 	 */
   1311   1.1   reinoud 
   1312   1.1   reinoud 	DPRINTF(VOLUMES, ("Read sparable table\n"));
   1313   1.1   reinoud 	ump->sparable_packet_len = udf_rw16(pms->packet_len);
   1314   1.1   reinoud 	for (spar = 0; spar < pms->n_st; spar++) {
   1315   1.1   reinoud 		lb_num = pms->st_loc[spar];
   1316   1.1   reinoud 		DPRINTF(VOLUMES, ("Checking for sparing table %d\n", lb_num));
   1317   1.1   reinoud 		error = udf_read_descriptor(ump, lb_num, M_UDFVOLD, &dscr);
   1318   1.1   reinoud 		if (!error && dscr) {
   1319   1.1   reinoud 			if (udf_rw16(dscr->tag.id) == TAGID_SPARING_TABLE) {
   1320   1.1   reinoud 				if (ump->sparing_table)
   1321   1.1   reinoud 					free(ump->sparing_table, M_UDFVOLD);
   1322   1.1   reinoud 				ump->sparing_table = &dscr->spt;
   1323   1.1   reinoud 				dscr = NULL;
   1324   1.1   reinoud 				DPRINTF(VOLUMES,
   1325   1.1   reinoud 				    ("Sparing table accepted (%d entries)\n",
   1326   1.1   reinoud 				     udf_rw16(ump->sparing_table->rt_l)));
   1327   1.1   reinoud 				break;	/* we're done */
   1328   1.9  christos 			}
   1329   1.9  christos 		}
   1330   1.1   reinoud 		if (dscr)
   1331   1.1   reinoud 			free(dscr, M_UDFVOLD);
   1332   1.9  christos 	}
   1333   1.1   reinoud 
   1334   1.1   reinoud 	if (ump->sparing_table)
   1335   1.1   reinoud 		return 0;
   1336   1.1   reinoud 
   1337   1.1   reinoud 	return ENOENT;
   1338   1.1   reinoud }
   1339   1.1   reinoud 
   1340   1.1   reinoud /* --------------------------------------------------------------------- */
   1341   1.1   reinoud 
   1342  1.26   reinoud #define UDF_SET_SYSTEMFILE(vp) \
   1343  1.26   reinoud 	simple_lock(&(vp)->v_interlock);	\
   1344  1.26   reinoud 	(vp)->v_flag |= VSYSTEM;		\
   1345  1.26   reinoud 	simple_unlock(&(vp)->v_interlock);\
   1346  1.26   reinoud 	vref(vp);			\
   1347  1.26   reinoud 	vput(vp);			\
   1348  1.26   reinoud 
   1349  1.26   reinoud static int
   1350  1.26   reinoud udf_read_metadata_files(struct udf_mount *ump, union udf_pmap *mapping)
   1351  1.26   reinoud {
   1352  1.26   reinoud 	struct part_map_meta *pmm = &mapping->pmm;
   1353  1.26   reinoud 	struct long_ad	 icb_loc;
   1354  1.26   reinoud 	struct vnode *vp;
   1355  1.26   reinoud 	int error;
   1356  1.26   reinoud 
   1357  1.26   reinoud 	DPRINTF(VOLUMES, ("Reading in Metadata files\n"));
   1358  1.26   reinoud 	icb_loc.loc.part_num = pmm->part_num;
   1359  1.26   reinoud 	icb_loc.loc.lb_num   = pmm->meta_file_lbn;
   1360  1.26   reinoud 	DPRINTF(VOLUMES, ("Metadata file\n"));
   1361  1.26   reinoud 	error = udf_get_node(ump, &icb_loc, &ump->metadata_file);
   1362  1.26   reinoud 	if (ump->metadata_file) {
   1363  1.26   reinoud 		vp = ump->metadata_file->vnode;
   1364  1.26   reinoud 		UDF_SET_SYSTEMFILE(vp);
   1365  1.26   reinoud 	}
   1366  1.26   reinoud 
   1367  1.26   reinoud 	icb_loc.loc.lb_num   = pmm->meta_mirror_file_lbn;
   1368  1.26   reinoud 	if (icb_loc.loc.lb_num != -1) {
   1369  1.26   reinoud 		DPRINTF(VOLUMES, ("Metadata copy file\n"));
   1370  1.26   reinoud 		error = udf_get_node(ump, &icb_loc, &ump->metadatamirror_file);
   1371  1.26   reinoud 		if (ump->metadatamirror_file) {
   1372  1.26   reinoud 			vp = ump->metadatamirror_file->vnode;
   1373  1.26   reinoud 			UDF_SET_SYSTEMFILE(vp);
   1374  1.26   reinoud 		}
   1375  1.26   reinoud 	}
   1376  1.26   reinoud 
   1377  1.26   reinoud 	icb_loc.loc.lb_num   = pmm->meta_bitmap_file_lbn;
   1378  1.26   reinoud 	if (icb_loc.loc.lb_num != -1) {
   1379  1.26   reinoud 		DPRINTF(VOLUMES, ("Metadata bitmap file\n"));
   1380  1.26   reinoud 		error = udf_get_node(ump, &icb_loc, &ump->metadatabitmap_file);
   1381  1.26   reinoud 		if (ump->metadatabitmap_file) {
   1382  1.26   reinoud 			vp = ump->metadatabitmap_file->vnode;
   1383  1.26   reinoud 			UDF_SET_SYSTEMFILE(vp);
   1384  1.26   reinoud 		}
   1385  1.26   reinoud 	}
   1386  1.26   reinoud 
   1387  1.26   reinoud 	/* if we're mounting read-only we relax the requirements */
   1388  1.26   reinoud 	if (ump->vfs_mountp->mnt_flag & MNT_RDONLY) {
   1389  1.26   reinoud 		error = EFAULT;
   1390  1.26   reinoud 		if (ump->metadata_file)
   1391  1.26   reinoud 			error = 0;
   1392  1.26   reinoud 		if ((ump->metadata_file == NULL) && (ump->metadatamirror_file)) {
   1393  1.26   reinoud 			printf( "udf mount: Metadata file not readable, "
   1394  1.26   reinoud 				"substituting Metadata copy file\n");
   1395  1.26   reinoud 			ump->metadata_file = ump->metadatamirror_file;
   1396  1.26   reinoud 			ump->metadatamirror_file = NULL;
   1397  1.26   reinoud 			error = 0;
   1398  1.26   reinoud 		}
   1399  1.26   reinoud 	} else {
   1400  1.26   reinoud 		/* mounting read/write */
   1401  1.26   reinoud 		DPRINTF(VOLUMES, ("udf mount: read only file system\n"));
   1402  1.26   reinoud 		error = EROFS;
   1403  1.26   reinoud 	}
   1404  1.26   reinoud 	DPRINTFIF(VOLUMES, error, ("udf mount: failed to read "
   1405  1.26   reinoud 				   "metadata files\n"));
   1406  1.26   reinoud 	return error;
   1407  1.26   reinoud }
   1408  1.26   reinoud #undef UDF_SET_SYSTEMFILE
   1409  1.26   reinoud 
   1410  1.26   reinoud /* --------------------------------------------------------------------- */
   1411  1.26   reinoud 
   1412   1.1   reinoud int
   1413  1.23  christos udf_read_vds_tables(struct udf_mount *ump, struct udf_args *args)
   1414   1.1   reinoud {
   1415   1.1   reinoud 	union udf_pmap *mapping;
   1416   1.1   reinoud 	uint32_t n_pm, mt_l;
   1417   1.1   reinoud 	uint32_t log_part;
   1418   1.1   reinoud 	uint8_t *pmap_pos;
   1419   1.1   reinoud 	int pmap_size;
   1420   1.1   reinoud 	int error;
   1421   1.1   reinoud 
   1422   1.1   reinoud 	/* We have to iterate again over the part mappings for locations   */
   1423   1.1   reinoud 	n_pm = udf_rw32(ump->logical_vol->n_pm);   /* num partmaps         */
   1424   1.1   reinoud 	mt_l = udf_rw32(ump->logical_vol->mt_l);   /* partmaps data length */
   1425   1.1   reinoud 	pmap_pos =  ump->logical_vol->maps;
   1426   1.1   reinoud 
   1427   1.1   reinoud 	for (log_part = 0; log_part < n_pm; log_part++) {
   1428   1.1   reinoud 		mapping = (union udf_pmap *) pmap_pos;
   1429   1.1   reinoud 		switch (ump->vtop_tp[log_part]) {
   1430   1.1   reinoud 		case UDF_VTOP_TYPE_PHYS :
   1431   1.1   reinoud 			/* nothing */
   1432   1.1   reinoud 			break;
   1433   1.1   reinoud 		case UDF_VTOP_TYPE_VIRT :
   1434   1.1   reinoud 			/* search and load VAT */
   1435   1.1   reinoud 			error = udf_search_vat(ump, mapping);
   1436   1.1   reinoud 			if (error)
   1437   1.1   reinoud 				return ENOENT;
   1438   1.1   reinoud 			break;
   1439   1.1   reinoud 		case UDF_VTOP_TYPE_SPARABLE :
   1440   1.1   reinoud 			/* load one of the sparable tables */
   1441   1.1   reinoud 			error = udf_read_sparables(ump, mapping);
   1442  1.16   reinoud 			if (error)
   1443  1.16   reinoud 				return ENOENT;
   1444   1.1   reinoud 			break;
   1445   1.1   reinoud 		case UDF_VTOP_TYPE_META :
   1446  1.26   reinoud 			/* load the associated file descriptors */
   1447  1.26   reinoud 			error = udf_read_metadata_files(ump, mapping);
   1448  1.26   reinoud 			if (error)
   1449  1.26   reinoud 				return ENOENT;
   1450  1.26   reinoud 			break;
   1451   1.1   reinoud 		default:
   1452   1.1   reinoud 			break;
   1453   1.9  christos 		}
   1454   1.1   reinoud 		pmap_size  = pmap_pos[1];
   1455   1.1   reinoud 		pmap_pos  += pmap_size;
   1456   1.9  christos 	}
   1457   1.1   reinoud 
   1458   1.1   reinoud 	return 0;
   1459   1.1   reinoud }
   1460   1.1   reinoud 
   1461   1.1   reinoud /* --------------------------------------------------------------------- */
   1462   1.1   reinoud 
   1463   1.1   reinoud int
   1464  1.23  christos udf_read_rootdirs(struct udf_mount *ump, struct udf_args *args)
   1465   1.1   reinoud {
   1466   1.1   reinoud 	struct udf_node *rootdir_node, *streamdir_node;
   1467   1.1   reinoud 	union dscrptr *dscr;
   1468   1.1   reinoud 	struct long_ad  fsd_loc, *dir_loc;
   1469   1.1   reinoud 	uint32_t lb_num, dummy;
   1470   1.1   reinoud 	uint32_t fsd_len;
   1471   1.1   reinoud 	int dscr_type;
   1472   1.1   reinoud 	int error;
   1473   1.1   reinoud 
   1474  1.25       wiz 	/* TODO implement FSD reading in separate function like integrity? */
   1475   1.1   reinoud 	/* get fileset descriptor sequence */
   1476   1.1   reinoud 	fsd_loc = ump->logical_vol->lv_fsd_loc;
   1477   1.1   reinoud 	fsd_len = udf_rw32(fsd_loc.len);
   1478   1.1   reinoud 
   1479   1.1   reinoud 	dscr  = NULL;
   1480   1.1   reinoud 	error = 0;
   1481   1.1   reinoud 	while (fsd_len || error) {
   1482   1.1   reinoud 		DPRINTF(VOLUMES, ("fsd_len = %d\n", fsd_len));
   1483   1.1   reinoud 		/* translate fsd_loc to lb_num */
   1484   1.1   reinoud 		error = udf_translate_vtop(ump, &fsd_loc, &lb_num, &dummy);
   1485   1.1   reinoud 		if (error)
   1486   1.1   reinoud 			break;
   1487   1.1   reinoud 		DPRINTF(VOLUMES, ("Reading FSD at lb %d\n", lb_num));
   1488   1.1   reinoud 		error = udf_read_descriptor(ump, lb_num, M_UDFVOLD, &dscr);
   1489   1.1   reinoud 		/* end markers */
   1490   1.1   reinoud 		if (error || (dscr == NULL))
   1491   1.1   reinoud 			break;
   1492   1.1   reinoud 
   1493   1.1   reinoud 		/* analyse */
   1494   1.1   reinoud 		dscr_type = udf_rw16(dscr->tag.id);
   1495   1.1   reinoud 		if (dscr_type == TAGID_TERM)
   1496   1.1   reinoud 			break;
   1497   1.1   reinoud 		if (dscr_type != TAGID_FSD) {
   1498   1.1   reinoud 			free(dscr, M_UDFVOLD);
   1499   1.1   reinoud 			return ENOENT;
   1500   1.9  christos 		}
   1501   1.1   reinoud 
   1502   1.1   reinoud 		/*
   1503   1.1   reinoud 		 * TODO check for multiple fileset descriptors; its only
   1504   1.1   reinoud 		 * picking the last now. Also check for FSD
   1505   1.1   reinoud 		 * correctness/interpretability
   1506   1.1   reinoud 		 */
   1507   1.1   reinoud 
   1508   1.1   reinoud 		/* update */
   1509   1.1   reinoud 		if (ump->fileset_desc) {
   1510   1.1   reinoud 			free(ump->fileset_desc, M_UDFVOLD);
   1511   1.9  christos 		}
   1512   1.1   reinoud 		ump->fileset_desc = &dscr->fsd;
   1513   1.1   reinoud 		dscr = NULL;
   1514   1.1   reinoud 
   1515   1.1   reinoud 		/* continue to the next fsd */
   1516   1.1   reinoud 		fsd_len -= ump->discinfo.sector_size;
   1517   1.1   reinoud 		fsd_loc.loc.lb_num = udf_rw32(udf_rw32(fsd_loc.loc.lb_num)+1);
   1518   1.1   reinoud 
   1519   1.1   reinoud 		/* follow up to fsd->next_ex (long_ad) if its not null */
   1520   1.1   reinoud 		if (udf_rw32(ump->fileset_desc->next_ex.len)) {
   1521   1.1   reinoud 			DPRINTF(VOLUMES, ("follow up FSD extent\n"));
   1522   1.1   reinoud 			fsd_loc = ump->fileset_desc->next_ex;
   1523   1.1   reinoud 			fsd_len = udf_rw32(ump->fileset_desc->next_ex.len);
   1524   1.9  christos 		}
   1525   1.9  christos 	}
   1526   1.1   reinoud 	if (dscr)
   1527   1.1   reinoud 		free(dscr, M_UDFVOLD);
   1528   1.1   reinoud 
   1529   1.1   reinoud 	/* there has to be one */
   1530   1.1   reinoud 	if (ump->fileset_desc == NULL)
   1531   1.1   reinoud 		return ENOENT;
   1532   1.1   reinoud 
   1533   1.1   reinoud 	DPRINTF(VOLUMES, ("FSD read in fine\n"));
   1534   1.1   reinoud 
   1535   1.1   reinoud 	/*
   1536   1.1   reinoud 	 * Now the FSD is known, read in the rootdirectory and if one exists,
   1537   1.1   reinoud 	 * the system stream dir. Some files in the system streamdir are not
   1538   1.1   reinoud 	 * wanted in this implementation since they are not maintained. If
   1539   1.1   reinoud 	 * writing is enabled we'll delete these files if they exist.
   1540   1.1   reinoud 	 */
   1541   1.1   reinoud 
   1542   1.1   reinoud 	rootdir_node = streamdir_node = NULL;
   1543   1.1   reinoud 	dir_loc = NULL;
   1544   1.1   reinoud 
   1545   1.1   reinoud 	/* try to read in the rootdir */
   1546   1.1   reinoud 	dir_loc = &ump->fileset_desc->rootdir_icb;
   1547   1.1   reinoud 	error = udf_get_node(ump, dir_loc, &rootdir_node);
   1548   1.1   reinoud 	if (error)
   1549   1.1   reinoud 		return ENOENT;
   1550   1.1   reinoud 
   1551   1.1   reinoud 	/* aparently it read in fine */
   1552   1.1   reinoud 
   1553   1.1   reinoud 	/*
   1554   1.1   reinoud 	 * Try the system stream directory; not very likely in the ones we
   1555   1.1   reinoud 	 * test, but for completeness.
   1556   1.1   reinoud 	 */
   1557   1.1   reinoud 	dir_loc = &ump->fileset_desc->streamdir_icb;
   1558   1.1   reinoud 	if (udf_rw32(dir_loc->len)) {
   1559   1.1   reinoud 		error = udf_get_node(ump, dir_loc, &streamdir_node);
   1560   1.1   reinoud 		if (error)
   1561   1.1   reinoud 			printf("udf mount: streamdir defined but ignored\n");
   1562   1.1   reinoud 		if (!error) {
   1563   1.1   reinoud 			/*
   1564   1.1   reinoud 			 * TODO process streamdir `baddies' i.e. files we dont
   1565   1.1   reinoud 			 * want if R/W
   1566   1.1   reinoud 			 */
   1567   1.9  christos 		}
   1568   1.9  christos 	}
   1569   1.1   reinoud 
   1570   1.1   reinoud 	DPRINTF(VOLUMES, ("Rootdir(s) read in fine\n"));
   1571   1.1   reinoud 
   1572   1.1   reinoud 	/* release the vnodes again; they'll be auto-recycled later */
   1573   1.1   reinoud 	if (streamdir_node) {
   1574   1.1   reinoud 		vput(streamdir_node->vnode);
   1575   1.9  christos 	}
   1576   1.1   reinoud 	if (rootdir_node) {
   1577   1.1   reinoud 		vput(rootdir_node->vnode);
   1578   1.9  christos 	}
   1579   1.1   reinoud 
   1580   1.1   reinoud 	return 0;
   1581   1.1   reinoud }
   1582   1.1   reinoud 
   1583   1.1   reinoud /* --------------------------------------------------------------------- */
   1584   1.1   reinoud 
   1585   1.1   reinoud int
   1586   1.1   reinoud udf_translate_vtop(struct udf_mount *ump, struct long_ad *icb_loc,
   1587   1.1   reinoud 		   uint32_t *lb_numres, uint32_t *extres)
   1588   1.1   reinoud {
   1589   1.1   reinoud 	struct part_desc       *pdesc;
   1590   1.1   reinoud 	struct spare_map_entry *sme;
   1591  1.26   reinoud 	struct file_entry      *fe;
   1592  1.26   reinoud 	struct extfile_entry   *efe;
   1593  1.26   reinoud 	struct short_ad        *s_ad;
   1594  1.26   reinoud 	struct long_ad         *l_ad;
   1595  1.26   reinoud 	uint64_t  cur_offset;
   1596   1.1   reinoud 	uint32_t *trans;
   1597  1.26   reinoud 	uint32_t  lb_num, plb_num, lb_rel, lb_packet;
   1598  1.26   reinoud 	uint32_t  sector_size, len, alloclen;
   1599  1.26   reinoud 	uint8_t *pos;
   1600  1.26   reinoud 	int rel, vpart, part, addr_type, icblen, icbflags, flags;
   1601   1.1   reinoud 
   1602   1.1   reinoud 	assert(ump && icb_loc && lb_numres);
   1603   1.1   reinoud 
   1604   1.1   reinoud 	vpart  = udf_rw16(icb_loc->loc.part_num);
   1605   1.1   reinoud 	lb_num = udf_rw32(icb_loc->loc.lb_num);
   1606   1.1   reinoud 	if (vpart < 0 || vpart > UDF_VTOP_RAWPART)
   1607   1.1   reinoud 		return EINVAL;
   1608   1.1   reinoud 
   1609  1.26   reinoud 	part = ump->vtop[vpart];
   1610  1.26   reinoud 	pdesc = ump->partitions[part];
   1611  1.26   reinoud 
   1612   1.1   reinoud 	switch (ump->vtop_tp[vpart]) {
   1613   1.1   reinoud 	case UDF_VTOP_TYPE_RAW :
   1614   1.1   reinoud 		/* 1:1 to the end of the device */
   1615   1.1   reinoud 		*lb_numres = lb_num;
   1616   1.1   reinoud 		*extres = INT_MAX;
   1617   1.1   reinoud 		return 0;
   1618   1.1   reinoud 	case UDF_VTOP_TYPE_PHYS :
   1619   1.1   reinoud 		/* transform into its disc logical block */
   1620   1.1   reinoud 		if (lb_num > udf_rw32(pdesc->part_len))
   1621   1.1   reinoud 			return EINVAL;
   1622   1.1   reinoud 		*lb_numres = lb_num + udf_rw32(pdesc->start_loc);
   1623   1.1   reinoud 
   1624   1.1   reinoud 		/* extent from here to the end of the partition */
   1625   1.1   reinoud 		*extres = udf_rw32(pdesc->part_len) - lb_num;
   1626   1.1   reinoud 		return 0;
   1627   1.1   reinoud 	case UDF_VTOP_TYPE_VIRT :
   1628   1.1   reinoud 		/* only maps one sector, lookup in VAT */
   1629   1.1   reinoud 		if (lb_num >= ump->vat_entries)		/* XXX > or >= ? */
   1630   1.1   reinoud 			return EINVAL;
   1631   1.1   reinoud 
   1632   1.1   reinoud 		/* lookup in virtual allocation table */
   1633   1.1   reinoud 		trans  = (uint32_t *) (ump->vat_table + ump->vat_offset);
   1634   1.1   reinoud 		lb_num = udf_rw32(trans[lb_num]);
   1635   1.1   reinoud 
   1636   1.1   reinoud 		/* transform into its disc logical block */
   1637   1.1   reinoud 		if (lb_num > udf_rw32(pdesc->part_len))
   1638   1.1   reinoud 			return EINVAL;
   1639   1.1   reinoud 		*lb_numres = lb_num + udf_rw32(pdesc->start_loc);
   1640   1.1   reinoud 
   1641   1.1   reinoud 		/* just one logical block */
   1642   1.1   reinoud 		*extres = 1;
   1643   1.1   reinoud 		return 0;
   1644   1.1   reinoud 	case UDF_VTOP_TYPE_SPARABLE :
   1645   1.1   reinoud 		/* check if the packet containing the lb_num is remapped */
   1646   1.1   reinoud 		lb_packet = lb_num / ump->sparable_packet_len;
   1647   1.1   reinoud 		lb_rel    = lb_num % ump->sparable_packet_len;
   1648   1.1   reinoud 
   1649   1.1   reinoud 		for (rel = 0; rel < udf_rw16(ump->sparing_table->rt_l); rel++) {
   1650   1.1   reinoud 			sme = &ump->sparing_table->entries[rel];
   1651   1.1   reinoud 			if (lb_packet == udf_rw32(sme->org)) {
   1652   1.1   reinoud 				/* NOTE maps to absolute disc logical block! */
   1653   1.1   reinoud 				*lb_numres = udf_rw32(sme->map) + lb_rel;
   1654   1.1   reinoud 				*extres    = ump->sparable_packet_len - lb_rel;
   1655   1.1   reinoud 				return 0;
   1656   1.9  christos 			}
   1657   1.9  christos 		}
   1658   1.1   reinoud 
   1659   1.1   reinoud 		/* transform into its disc logical block */
   1660   1.1   reinoud 		if (lb_num > udf_rw32(pdesc->part_len))
   1661   1.1   reinoud 			return EINVAL;
   1662   1.1   reinoud 		*lb_numres = lb_num + udf_rw32(pdesc->start_loc);
   1663   1.1   reinoud 
   1664   1.1   reinoud 		/* rest of block */
   1665   1.1   reinoud 		*extres = ump->sparable_packet_len - lb_rel;
   1666   1.1   reinoud 		return 0;
   1667   1.1   reinoud 	case UDF_VTOP_TYPE_META :
   1668  1.26   reinoud 		/* we have to look into the file's allocation descriptors */
   1669  1.26   reinoud 		/* free after udf_translate_file_extent() */
   1670  1.26   reinoud 		/* XXX sector size or lb_size? */
   1671  1.26   reinoud 		sector_size = ump->discinfo.sector_size;
   1672  1.26   reinoud 		/* XXX should we claim exclusive access to the metafile ? */
   1673  1.26   reinoud 		fe  = ump->metadata_file->fe;
   1674  1.26   reinoud 		efe = ump->metadata_file->efe;
   1675  1.26   reinoud 		if (fe) {
   1676  1.26   reinoud 			alloclen = udf_rw32(fe->l_ad);
   1677  1.26   reinoud 			pos      = &fe->data[0] + udf_rw32(fe->l_ea);
   1678  1.26   reinoud 			icbflags = udf_rw16(fe->icbtag.flags);
   1679  1.27   reinoud 		} else {
   1680  1.27   reinoud 			assert(efe);
   1681  1.26   reinoud 			alloclen = udf_rw32(efe->l_ad);
   1682  1.26   reinoud 			pos      = &efe->data[0] + udf_rw32(efe->l_ea);
   1683  1.26   reinoud 			icbflags = udf_rw16(efe->icbtag.flags);
   1684  1.26   reinoud 		}
   1685  1.26   reinoud 		addr_type = icbflags & UDF_ICB_TAG_FLAGS_ALLOC_MASK;
   1686  1.26   reinoud 
   1687  1.26   reinoud 		cur_offset = 0;
   1688  1.26   reinoud 		while (alloclen) {
   1689  1.26   reinoud 			if (addr_type == UDF_ICB_SHORT_ALLOC) {
   1690  1.26   reinoud 				icblen = sizeof(struct short_ad);
   1691  1.26   reinoud 				s_ad   = (struct short_ad *) pos;
   1692  1.26   reinoud 				len        = udf_rw32(s_ad->len);
   1693  1.26   reinoud 				plb_num    = udf_rw32(s_ad->lb_num);
   1694  1.26   reinoud 			} else {
   1695  1.26   reinoud 				/* should not be present, but why not */
   1696  1.26   reinoud 				icblen = sizeof(struct long_ad);
   1697  1.26   reinoud 				l_ad   = (struct long_ad *) pos;
   1698  1.26   reinoud 				len        = udf_rw32(l_ad->len);
   1699  1.26   reinoud 				plb_num    = udf_rw32(l_ad->loc.lb_num);
   1700  1.26   reinoud 				/* pvpart_num = udf_rw16(l_ad->loc.part_num); */
   1701  1.26   reinoud 			}
   1702  1.26   reinoud 			/* process extent */
   1703  1.26   reinoud 			flags   = UDF_EXT_FLAGS(len);
   1704  1.26   reinoud 			len     = UDF_EXT_LEN(len);
   1705  1.26   reinoud 
   1706  1.26   reinoud 			if (cur_offset + len > lb_num * sector_size) {
   1707  1.26   reinoud 				if (flags != UDF_EXT_ALLOCATED)
   1708  1.26   reinoud 					return EINVAL;
   1709  1.26   reinoud 				lb_rel = lb_num - cur_offset / sector_size;
   1710  1.26   reinoud 				/* remainder of this extent */
   1711  1.26   reinoud 				*lb_numres = plb_num + lb_rel +
   1712  1.26   reinoud 					udf_rw32(pdesc->start_loc);
   1713  1.26   reinoud 				*extres = (len / sector_size) - lb_rel;
   1714  1.26   reinoud 				return 0;
   1715  1.26   reinoud 			}
   1716  1.26   reinoud 			cur_offset += len;
   1717  1.26   reinoud 			pos        += icblen;
   1718  1.26   reinoud 			alloclen   -= icblen;
   1719  1.26   reinoud 		}
   1720  1.26   reinoud 		/* not found */
   1721  1.26   reinoud 		DPRINTF(TRANSLATE, ("Metadata partition translation failed\n"));
   1722  1.26   reinoud 		return EINVAL;
   1723   1.1   reinoud 	default:
   1724   1.1   reinoud 		printf("UDF vtop translation scheme %d unimplemented yet\n",
   1725   1.1   reinoud 			ump->vtop_tp[vpart]);
   1726   1.9  christos 	}
   1727   1.1   reinoud 
   1728   1.1   reinoud 	return EINVAL;
   1729   1.1   reinoud }
   1730   1.1   reinoud 
   1731   1.1   reinoud /* --------------------------------------------------------------------- */
   1732   1.1   reinoud 
   1733   1.1   reinoud /* To make absolutely sure we are NOT returning zero, add one :) */
   1734   1.1   reinoud 
   1735   1.1   reinoud long
   1736   1.1   reinoud udf_calchash(struct long_ad *icbptr)
   1737   1.1   reinoud {
   1738   1.1   reinoud 	/* ought to be enough since each mountpoint has its own chain */
   1739   1.1   reinoud 	return udf_rw32(icbptr->loc.lb_num) + 1;
   1740   1.1   reinoud }
   1741   1.1   reinoud 
   1742   1.1   reinoud /* --------------------------------------------------------------------- */
   1743   1.1   reinoud 
   1744   1.1   reinoud static struct udf_node *
   1745   1.1   reinoud udf_hashget(struct udf_mount *ump, struct long_ad *icbptr)
   1746   1.1   reinoud {
   1747   1.1   reinoud 	struct udf_node *unp;
   1748   1.1   reinoud 	struct vnode *vp;
   1749   1.1   reinoud 	uint32_t hashline;
   1750   1.1   reinoud 
   1751   1.1   reinoud loop:
   1752   1.1   reinoud 	simple_lock(&ump->ihash_slock);
   1753   1.1   reinoud 
   1754   1.1   reinoud 	hashline = udf_calchash(icbptr) & UDF_INODE_HASHMASK;
   1755   1.1   reinoud 	LIST_FOREACH(unp, &ump->udf_nodes[hashline], hashchain) {
   1756   1.1   reinoud 		assert(unp);
   1757   1.1   reinoud 		if (unp->loc.loc.lb_num   == icbptr->loc.lb_num &&
   1758   1.1   reinoud 		    unp->loc.loc.part_num == icbptr->loc.part_num) {
   1759   1.1   reinoud 			vp = unp->vnode;
   1760   1.1   reinoud 			assert(vp);
   1761   1.1   reinoud 			simple_lock(&vp->v_interlock);
   1762   1.1   reinoud 			simple_unlock(&ump->ihash_slock);
   1763   1.1   reinoud 			if (vget(vp, LK_EXCLUSIVE | LK_INTERLOCK))
   1764   1.1   reinoud 				goto loop;
   1765   1.1   reinoud 			return unp;
   1766   1.9  christos 		}
   1767   1.9  christos 	}
   1768   1.1   reinoud 	simple_unlock(&ump->ihash_slock);
   1769   1.1   reinoud 
   1770   1.1   reinoud 	return NULL;
   1771   1.9  christos }
   1772   1.1   reinoud 
   1773   1.1   reinoud /* --------------------------------------------------------------------- */
   1774   1.1   reinoud 
   1775   1.1   reinoud static void
   1776   1.1   reinoud udf_hashins(struct udf_node *unp)
   1777   1.1   reinoud {
   1778   1.1   reinoud 	struct udf_mount *ump;
   1779   1.1   reinoud 	uint32_t hashline;
   1780   1.1   reinoud 
   1781   1.1   reinoud 	ump = unp->ump;
   1782   1.1   reinoud 	simple_lock(&ump->ihash_slock);
   1783   1.1   reinoud 
   1784   1.1   reinoud 	hashline = udf_calchash(&unp->loc) & UDF_INODE_HASHMASK;
   1785   1.1   reinoud 	LIST_INSERT_HEAD(&ump->udf_nodes[hashline], unp, hashchain);
   1786   1.1   reinoud 
   1787   1.1   reinoud 	simple_unlock(&ump->ihash_slock);
   1788   1.1   reinoud }
   1789   1.1   reinoud 
   1790   1.1   reinoud /* --------------------------------------------------------------------- */
   1791   1.1   reinoud 
   1792   1.1   reinoud static void
   1793   1.1   reinoud udf_hashrem(struct udf_node *unp)
   1794   1.1   reinoud {
   1795   1.1   reinoud 	struct udf_mount *ump;
   1796   1.1   reinoud 
   1797   1.1   reinoud 	ump = unp->ump;
   1798   1.1   reinoud 	simple_lock(&ump->ihash_slock);
   1799   1.1   reinoud 
   1800   1.1   reinoud 	LIST_REMOVE(unp, hashchain);
   1801   1.1   reinoud 
   1802   1.1   reinoud 	simple_unlock(&ump->ihash_slock);
   1803   1.1   reinoud }
   1804   1.1   reinoud 
   1805   1.1   reinoud /* --------------------------------------------------------------------- */
   1806   1.1   reinoud 
   1807   1.1   reinoud int
   1808   1.1   reinoud udf_dispose_locked_node(struct udf_node *node)
   1809   1.1   reinoud {
   1810   1.1   reinoud 	if (!node)
   1811   1.1   reinoud 		return 0;
   1812   1.1   reinoud 	if (node->vnode)
   1813   1.1   reinoud 		VOP_UNLOCK(node->vnode, 0);
   1814   1.1   reinoud 	return udf_dispose_node(node);
   1815   1.1   reinoud }
   1816   1.1   reinoud 
   1817   1.1   reinoud /* --------------------------------------------------------------------- */
   1818   1.1   reinoud 
   1819   1.1   reinoud int
   1820   1.1   reinoud udf_dispose_node(struct udf_node *node)
   1821   1.1   reinoud {
   1822   1.1   reinoud 	struct vnode *vp;
   1823   1.1   reinoud 
   1824   1.1   reinoud 	DPRINTF(NODE, ("udf_dispose_node called on node %p\n", node));
   1825   1.1   reinoud 	if (!node) {
   1826   1.1   reinoud 		DPRINTF(NODE, ("UDF: Dispose node on node NULL, ignoring\n"));
   1827   1.1   reinoud 		return 0;
   1828   1.9  christos 	}
   1829   1.1   reinoud 
   1830   1.1   reinoud 	vp  = node->vnode;
   1831   1.1   reinoud 
   1832   1.1   reinoud 	/* TODO extended attributes and streamdir */
   1833   1.1   reinoud 
   1834   1.1   reinoud 	/* remove from our hash lookup table */
   1835   1.1   reinoud 	udf_hashrem(node);
   1836   1.1   reinoud 
   1837  1.32        ad 	/* destroy genfs structures */
   1838  1.32        ad 	genfs_node_destroy(vp);
   1839  1.32        ad 
   1840   1.1   reinoud 	/* dissociate our udf_node from the vnode */
   1841   1.1   reinoud 	vp->v_data = NULL;
   1842   1.1   reinoud 
   1843   1.1   reinoud 	/* free associated memory and the node itself */
   1844   1.1   reinoud 	if (node->fe)
   1845  1.14   reinoud 		pool_put(node->ump->desc_pool, node->fe);
   1846   1.1   reinoud 	if (node->efe)
   1847  1.14   reinoud 		pool_put(node->ump->desc_pool, node->efe);
   1848   1.1   reinoud 	pool_put(&udf_node_pool, node);
   1849   1.1   reinoud 
   1850   1.1   reinoud 	return 0;
   1851   1.1   reinoud }
   1852   1.1   reinoud 
   1853   1.1   reinoud /* --------------------------------------------------------------------- */
   1854   1.1   reinoud 
   1855   1.1   reinoud /*
   1856   1.1   reinoud  * Genfs interfacing
   1857   1.1   reinoud  *
   1858   1.1   reinoud  * static const struct genfs_ops udffs_genfsops = {
   1859   1.1   reinoud  * 	.gop_size = genfs_size,
   1860   1.1   reinoud  * 		size of transfers
   1861   1.1   reinoud  * 	.gop_alloc = udf_gop_alloc,
   1862   1.1   reinoud  * 		unknown
   1863   1.1   reinoud  * 	.gop_write = genfs_gop_write,
   1864   1.1   reinoud  * 		putpages interface code
   1865   1.1   reinoud  * 	.gop_markupdate = udf_gop_markupdate,
   1866   1.1   reinoud  * 		set update/modify flags etc.
   1867   1.9  christos  * }
   1868   1.1   reinoud  */
   1869   1.1   reinoud 
   1870   1.1   reinoud /*
   1871   1.1   reinoud  * Genfs interface. These four functions are the only ones defined though not
   1872   1.1   reinoud  * documented... great.... why is chosen for the `.' initialisers i dont know
   1873   1.1   reinoud  * but other filingsystems seem to use it this way.
   1874   1.1   reinoud  */
   1875   1.1   reinoud 
   1876   1.1   reinoud static int
   1877  1.23  christos udf_gop_alloc(struct vnode *vp, off_t off,
   1878  1.23  christos     off_t len, int flags, kauth_cred_t cred)
   1879   1.1   reinoud {
   1880   1.1   reinoud 	return 0;
   1881   1.1   reinoud }
   1882   1.1   reinoud 
   1883   1.1   reinoud 
   1884   1.1   reinoud static void
   1885  1.23  christos udf_gop_markupdate(struct vnode *vp, int flags)
   1886   1.1   reinoud {
   1887   1.1   reinoud 	struct udf_node *udf_node = VTOI(vp);
   1888   1.1   reinoud 	u_long mask;
   1889   1.1   reinoud 
   1890   1.1   reinoud 	udf_node = udf_node;	/* shut up gcc */
   1891   1.1   reinoud 
   1892   1.1   reinoud 	mask = 0;
   1893   1.1   reinoud #ifdef notyet
   1894   1.1   reinoud 	if ((flags & GOP_UPDATE_ACCESSED) != 0) {
   1895   1.1   reinoud 		mask = UDF_SET_ACCESS;
   1896   1.1   reinoud 	}
   1897   1.1   reinoud 	if ((flags & GOP_UPDATE_MODIFIED) != 0) {
   1898   1.1   reinoud 		mask |= UDF_SET_UPDATE;
   1899   1.1   reinoud 	}
   1900   1.1   reinoud 	if (mask) {
   1901   1.1   reinoud 		udf_node->update_flag |= mask;
   1902   1.1   reinoud 	}
   1903   1.1   reinoud #endif
   1904   1.1   reinoud 	/* msdosfs doesn't do it, but shouldn't we update the times here? */
   1905   1.1   reinoud }
   1906   1.1   reinoud 
   1907   1.1   reinoud 
   1908   1.1   reinoud static const struct genfs_ops udf_genfsops = {
   1909   1.1   reinoud 	.gop_size = genfs_size,
   1910   1.1   reinoud 	.gop_alloc = udf_gop_alloc,
   1911   1.1   reinoud 	.gop_write = genfs_gop_write,
   1912   1.1   reinoud 	.gop_markupdate = udf_gop_markupdate,
   1913   1.1   reinoud };
   1914   1.1   reinoud 
   1915   1.1   reinoud /* --------------------------------------------------------------------- */
   1916   1.1   reinoud 
   1917   1.1   reinoud /*
   1918   1.1   reinoud  * Each node can have an attached streamdir node though not
   1919   1.1   reinoud  * recursively. These are otherwise known as named substreams/named
   1920   1.1   reinoud  * extended attributes that have no size limitations.
   1921   1.1   reinoud  *
   1922   1.1   reinoud  * `Normal' extended attributes are indicated with a number and are recorded
   1923   1.1   reinoud  * in either the fe/efe descriptor itself for small descriptors or recorded in
   1924   1.1   reinoud  * the attached extended attribute file. Since this file can get fragmented,
   1925   1.1   reinoud  * care ought to be taken.
   1926   1.1   reinoud  */
   1927   1.1   reinoud 
   1928   1.1   reinoud int
   1929   1.1   reinoud udf_get_node(struct udf_mount *ump, struct long_ad *node_icb_loc,
   1930   1.1   reinoud 	     struct udf_node **noderes)
   1931   1.1   reinoud {
   1932   1.1   reinoud 	union dscrptr   *dscr, *tmpdscr;
   1933   1.1   reinoud 	struct udf_node *node;
   1934   1.1   reinoud 	struct vnode    *nvp;
   1935   1.1   reinoud 	struct long_ad   icb_loc;
   1936   1.1   reinoud 	extern int (**udf_vnodeop_p)(void *);
   1937   1.1   reinoud 	uint64_t file_size;
   1938   1.1   reinoud 	uint32_t lb_size, sector, dummy;
   1939   1.1   reinoud 	int udf_file_type, dscr_type, strat, strat4096, needs_indirect;
   1940   1.1   reinoud 	int error;
   1941   1.1   reinoud 
   1942   1.1   reinoud 	DPRINTF(NODE, ("udf_get_node called\n"));
   1943   1.1   reinoud 	*noderes = node = NULL;
   1944   1.1   reinoud 
   1945   1.1   reinoud 	/* lock to disallow simultanious creation of same node */
   1946   1.1   reinoud 	lockmgr(&ump->get_node_lock, LK_EXCLUSIVE, NULL);
   1947   1.1   reinoud 
   1948   1.1   reinoud 	DPRINTF(NODE, ("\tlookup in hash table\n"));
   1949   1.1   reinoud 	/* lookup in hash table */
   1950   1.1   reinoud 	assert(ump);
   1951   1.1   reinoud 	assert(node_icb_loc);
   1952   1.1   reinoud 	node = udf_hashget(ump, node_icb_loc);
   1953   1.1   reinoud 	if (node) {
   1954   1.1   reinoud 		DPRINTF(NODE, ("\tgot it from the hash!\n"));
   1955   1.1   reinoud 		/* vnode is returned locked */
   1956   1.1   reinoud 		*noderes = node;
   1957   1.1   reinoud 		lockmgr(&ump->get_node_lock, LK_RELEASE, NULL);
   1958   1.1   reinoud 		return 0;
   1959   1.9  christos 	}
   1960   1.1   reinoud 
   1961   1.1   reinoud 	/* garbage check: translate node_icb_loc to sectornr */
   1962   1.1   reinoud 	error = udf_translate_vtop(ump, node_icb_loc, &sector, &dummy);
   1963   1.1   reinoud 	if (error) {
   1964   1.1   reinoud 		/* no use, this will fail anyway */
   1965   1.1   reinoud 		lockmgr(&ump->get_node_lock, LK_RELEASE, NULL);
   1966   1.1   reinoud 		return EINVAL;
   1967   1.9  christos 	}
   1968   1.1   reinoud 
   1969   1.1   reinoud 	/* build node (do initialise!) */
   1970   1.1   reinoud 	node = pool_get(&udf_node_pool, PR_WAITOK);
   1971   1.1   reinoud 	memset(node, 0, sizeof(struct udf_node));
   1972   1.1   reinoud 
   1973   1.1   reinoud 	DPRINTF(NODE, ("\tget new vnode\n"));
   1974   1.1   reinoud 	/* give it a vnode */
   1975   1.1   reinoud 	error = getnewvnode(VT_UDF, ump->vfs_mountp, udf_vnodeop_p, &nvp);
   1976   1.1   reinoud         if (error) {
   1977   1.1   reinoud 		pool_put(&udf_node_pool, node);
   1978   1.1   reinoud 		lockmgr(&ump->get_node_lock, LK_RELEASE, NULL);
   1979   1.1   reinoud 		return error;
   1980   1.9  christos 	}
   1981   1.1   reinoud 
   1982   1.1   reinoud 	/* allways return locked vnode */
   1983   1.1   reinoud 	if ((error = vn_lock(nvp, LK_EXCLUSIVE | LK_RETRY))) {
   1984   1.1   reinoud 		/* recycle vnode and unlock; simultanious will fail too */
   1985   1.1   reinoud 		ungetnewvnode(nvp);
   1986   1.1   reinoud 		lockmgr(&ump->get_node_lock, LK_RELEASE, NULL);
   1987   1.1   reinoud 		return error;
   1988   1.9  christos 	}
   1989   1.1   reinoud 
   1990   1.1   reinoud 	/* initialise crosslinks, note location of fe/efe for hashing */
   1991   1.1   reinoud 	node->ump    =  ump;
   1992   1.1   reinoud 	node->vnode  =  nvp;
   1993   1.1   reinoud 	nvp->v_data  =  node;
   1994   1.1   reinoud 	node->loc    = *node_icb_loc;
   1995   1.1   reinoud 	node->lockf  =  0;
   1996   1.1   reinoud 
   1997   1.1   reinoud 	/* insert into the hash lookup */
   1998   1.1   reinoud 	udf_hashins(node);
   1999   1.1   reinoud 
   2000   1.1   reinoud 	/* safe to unlock, the entry is in the hash table, vnode is locked */
   2001   1.1   reinoud 	lockmgr(&ump->get_node_lock, LK_RELEASE, NULL);
   2002   1.1   reinoud 
   2003   1.1   reinoud 	icb_loc = *node_icb_loc;
   2004   1.1   reinoud 	needs_indirect = 0;
   2005   1.1   reinoud 	strat4096 = 0;
   2006   1.1   reinoud 	udf_file_type = UDF_ICB_FILETYPE_UNKNOWN;
   2007   1.1   reinoud 	file_size = 0;
   2008   1.1   reinoud 	lb_size = udf_rw32(ump->logical_vol->lb_size);
   2009   1.1   reinoud 
   2010   1.1   reinoud 	do {
   2011   1.1   reinoud 		error = udf_translate_vtop(ump, &icb_loc, &sector, &dummy);
   2012   1.1   reinoud 		if (error)
   2013   1.1   reinoud 			break;
   2014   1.1   reinoud 
   2015   1.1   reinoud 		/* try to read in fe/efe */
   2016   1.1   reinoud 		error = udf_read_descriptor(ump, sector, M_UDFTEMP, &tmpdscr);
   2017   1.1   reinoud 
   2018   1.1   reinoud 		/* blank sector marks end of sequence, check this */
   2019   1.1   reinoud 		if ((tmpdscr == NULL) &&  (!strat4096))
   2020   1.1   reinoud 			error = ENOENT;
   2021   1.1   reinoud 
   2022   1.1   reinoud 		/* break if read error or blank sector */
   2023   1.1   reinoud 		if (error || (tmpdscr == NULL))
   2024   1.1   reinoud 			break;
   2025   1.1   reinoud 
   2026   1.1   reinoud 		/* process descriptor based on the descriptor type */
   2027   1.1   reinoud 		dscr_type = udf_rw16(tmpdscr->tag.id);
   2028   1.1   reinoud 
   2029   1.1   reinoud 		/* if dealing with an indirect entry, follow the link */
   2030   1.1   reinoud 		if (dscr_type == TAGID_INDIRECT_ENTRY) {
   2031   1.1   reinoud 			needs_indirect = 0;
   2032   1.1   reinoud 			icb_loc = tmpdscr->inde.indirect_icb;
   2033   1.1   reinoud 			free(tmpdscr, M_UDFTEMP);
   2034   1.1   reinoud 			continue;
   2035   1.9  christos 		}
   2036   1.1   reinoud 
   2037   1.1   reinoud 		/* only file entries and extended file entries allowed here */
   2038   1.1   reinoud 		if ((dscr_type != TAGID_FENTRY) &&
   2039   1.1   reinoud 		    (dscr_type != TAGID_EXTFENTRY)) {
   2040   1.1   reinoud 			free(tmpdscr, M_UDFTEMP);
   2041   1.1   reinoud 			error = ENOENT;
   2042   1.1   reinoud 			break;
   2043   1.9  christos 		}
   2044   1.1   reinoud 
   2045   1.1   reinoud 		/* get descriptor space from our pool */
   2046   1.1   reinoud 		KASSERT(udf_tagsize(tmpdscr, lb_size) == lb_size);
   2047   1.1   reinoud 
   2048  1.14   reinoud 		dscr = pool_get(ump->desc_pool, PR_WAITOK);
   2049   1.1   reinoud 		memcpy(dscr, tmpdscr, lb_size);
   2050   1.1   reinoud 		free(tmpdscr, M_UDFTEMP);
   2051   1.1   reinoud 
   2052   1.1   reinoud 		/* record and process/update (ext)fentry */
   2053   1.1   reinoud 		if (dscr_type == TAGID_FENTRY) {
   2054   1.1   reinoud 			if (node->fe)
   2055  1.14   reinoud 				pool_put(ump->desc_pool, node->fe);
   2056   1.1   reinoud 			node->fe  = &dscr->fe;
   2057   1.1   reinoud 			strat = udf_rw16(node->fe->icbtag.strat_type);
   2058   1.1   reinoud 			udf_file_type = node->fe->icbtag.file_type;
   2059   1.1   reinoud 			file_size = udf_rw64(node->fe->inf_len);
   2060   1.1   reinoud 		} else {
   2061   1.1   reinoud 			if (node->efe)
   2062  1.14   reinoud 				pool_put(ump->desc_pool, node->efe);
   2063   1.1   reinoud 			node->efe = &dscr->efe;
   2064   1.1   reinoud 			strat = udf_rw16(node->efe->icbtag.strat_type);
   2065   1.1   reinoud 			udf_file_type = node->efe->icbtag.file_type;
   2066   1.1   reinoud 			file_size = udf_rw64(node->efe->inf_len);
   2067   1.9  christos 		}
   2068   1.1   reinoud 
   2069   1.1   reinoud 		/* check recording strategy (structure) */
   2070   1.1   reinoud 
   2071   1.1   reinoud 		/*
   2072   1.1   reinoud 		 * Strategy 4096 is a daisy linked chain terminating with an
   2073   1.1   reinoud 		 * unrecorded sector or a TERM descriptor. The next
   2074   1.1   reinoud 		 * descriptor is to be found in the sector that follows the
   2075   1.1   reinoud 		 * current sector.
   2076   1.1   reinoud 		 */
   2077   1.1   reinoud 		if (strat == 4096) {
   2078   1.1   reinoud 			strat4096 = 1;
   2079   1.1   reinoud 			needs_indirect = 1;
   2080   1.1   reinoud 
   2081   1.1   reinoud 			icb_loc.loc.lb_num = udf_rw32(icb_loc.loc.lb_num) + 1;
   2082   1.9  christos 		}
   2083   1.1   reinoud 
   2084   1.1   reinoud 		/*
   2085   1.1   reinoud 		 * Strategy 4 is the normal strategy and terminates, but if
   2086   1.1   reinoud 		 * we're in strategy 4096, we can't have strategy 4 mixed in
   2087   1.1   reinoud 		 */
   2088   1.1   reinoud 
   2089   1.1   reinoud 		if (strat == 4) {
   2090   1.1   reinoud 			if (strat4096) {
   2091   1.1   reinoud 				error = EINVAL;
   2092   1.1   reinoud 				break;
   2093   1.9  christos 			}
   2094   1.1   reinoud 			break;		/* done */
   2095   1.9  christos 		}
   2096   1.1   reinoud 	} while (!error);
   2097   1.1   reinoud 
   2098   1.1   reinoud 	if (error) {
   2099   1.1   reinoud 		/* recycle udf_node */
   2100   1.1   reinoud 		udf_dispose_node(node);
   2101   1.1   reinoud 
   2102   1.1   reinoud 		/* recycle vnode */
   2103   1.1   reinoud 		nvp->v_data = NULL;
   2104   1.1   reinoud 		ungetnewvnode(nvp);
   2105   1.1   reinoud 
   2106   1.1   reinoud 		return EINVAL;		/* error code ok? */
   2107   1.9  christos 	}
   2108   1.1   reinoud 
   2109   1.1   reinoud 	/* post process and initialise node */
   2110   1.1   reinoud 
   2111   1.1   reinoud 	/* assert no references to dscr anymore beyong this point */
   2112   1.1   reinoud 	assert((node->fe) || (node->efe));
   2113   1.1   reinoud 	dscr = NULL;
   2114   1.1   reinoud 
   2115   1.1   reinoud 	/*
   2116   1.1   reinoud 	 * Record where to record an updated version of the descriptor. If
   2117   1.1   reinoud 	 * there is a sequence of indirect entries, icb_loc will have been
   2118   1.1   reinoud 	 * updated. Its the write disipline to allocate new space and to make
   2119   1.1   reinoud 	 * sure the chain is maintained.
   2120   1.1   reinoud 	 *
   2121   1.1   reinoud 	 * `needs_indirect' flags if the next location is to be filled with
   2122   1.1   reinoud 	 * with an indirect entry.
   2123   1.1   reinoud 	 */
   2124   1.1   reinoud 	node->next_loc = icb_loc;
   2125   1.1   reinoud 	node->needs_indirect = needs_indirect;
   2126   1.1   reinoud 
   2127   1.1   reinoud 	/*
   2128   1.1   reinoud 	 * Translate UDF filetypes into vnode types.
   2129   1.1   reinoud 	 *
   2130   1.1   reinoud 	 * Systemfiles like the meta main and mirror files are not treated as
   2131   1.1   reinoud 	 * normal files, so we type them as having no type. UDF dictates that
   2132   1.1   reinoud 	 * they are not allowed to be visible.
   2133   1.1   reinoud 	 */
   2134   1.1   reinoud 
   2135   1.1   reinoud 	/* TODO specfs, fifofs etc etc. vnops setting */
   2136   1.1   reinoud 	switch (udf_file_type) {
   2137   1.1   reinoud 	case UDF_ICB_FILETYPE_DIRECTORY :
   2138   1.1   reinoud 	case UDF_ICB_FILETYPE_STREAMDIR :
   2139   1.1   reinoud 		nvp->v_type = VDIR;
   2140   1.1   reinoud 		break;
   2141   1.1   reinoud 	case UDF_ICB_FILETYPE_BLOCKDEVICE :
   2142   1.1   reinoud 		nvp->v_type = VBLK;
   2143   1.1   reinoud 		break;
   2144   1.1   reinoud 	case UDF_ICB_FILETYPE_CHARDEVICE :
   2145   1.1   reinoud 		nvp->v_type = VCHR;
   2146   1.1   reinoud 		break;
   2147   1.1   reinoud 	case UDF_ICB_FILETYPE_SYMLINK :
   2148   1.1   reinoud 		nvp->v_type = VLNK;
   2149   1.1   reinoud 		break;
   2150  1.28   reinoud 	case UDF_ICB_FILETYPE_VAT :
   2151   1.1   reinoud 	case UDF_ICB_FILETYPE_META_MAIN :
   2152   1.1   reinoud 	case UDF_ICB_FILETYPE_META_MIRROR :
   2153   1.1   reinoud 		nvp->v_type = VNON;
   2154   1.1   reinoud 		break;
   2155   1.1   reinoud 	case UDF_ICB_FILETYPE_RANDOMACCESS :
   2156  1.28   reinoud 	case UDF_ICB_FILETYPE_REALTIME :
   2157   1.1   reinoud 		nvp->v_type = VREG;
   2158   1.1   reinoud 		break;
   2159   1.1   reinoud 	default:
   2160   1.1   reinoud 		/* YIKES, either a block/char device, fifo or something else */
   2161   1.1   reinoud 		nvp->v_type = VNON;
   2162   1.9  christos 	}
   2163   1.1   reinoud 
   2164   1.1   reinoud 	/* initialise genfs */
   2165   1.1   reinoud 	genfs_node_init(nvp, &udf_genfsops);
   2166   1.1   reinoud 
   2167   1.1   reinoud 	/* don't forget to set vnode's v_size */
   2168   1.1   reinoud 	nvp->v_size = file_size;
   2169   1.1   reinoud 
   2170   1.1   reinoud 	/* TODO ext attr and streamdir nodes */
   2171   1.1   reinoud 
   2172   1.1   reinoud 	*noderes = node;
   2173   1.1   reinoud 
   2174   1.1   reinoud 	return 0;
   2175   1.1   reinoud }
   2176   1.1   reinoud 
   2177   1.1   reinoud /* --------------------------------------------------------------------- */
   2178   1.1   reinoud 
   2179   1.1   reinoud /* UDF<->unix converters */
   2180   1.1   reinoud 
   2181   1.1   reinoud /* --------------------------------------------------------------------- */
   2182   1.1   reinoud 
   2183   1.1   reinoud static mode_t
   2184   1.1   reinoud udf_perm_to_unix_mode(uint32_t perm)
   2185   1.1   reinoud {
   2186   1.1   reinoud 	mode_t mode;
   2187   1.1   reinoud 
   2188   1.1   reinoud 	mode  = ((perm & UDF_FENTRY_PERM_USER_MASK)      );
   2189   1.1   reinoud 	mode |= ((perm & UDF_FENTRY_PERM_GRP_MASK  ) >> 2);
   2190   1.1   reinoud 	mode |= ((perm & UDF_FENTRY_PERM_OWNER_MASK) >> 4);
   2191   1.1   reinoud 
   2192   1.1   reinoud 	return mode;
   2193   1.1   reinoud }
   2194   1.1   reinoud 
   2195   1.1   reinoud /* --------------------------------------------------------------------- */
   2196   1.1   reinoud 
   2197   1.1   reinoud #ifdef notyet
   2198   1.1   reinoud static uint32_t
   2199   1.1   reinoud unix_mode_to_udf_perm(mode_t mode)
   2200   1.1   reinoud {
   2201   1.1   reinoud 	uint32_t perm;
   2202   1.1   reinoud 
   2203   1.1   reinoud 	perm  = ((mode & S_IRWXO)     );
   2204   1.1   reinoud 	perm |= ((mode & S_IRWXG) << 2);
   2205   1.1   reinoud 	perm |= ((mode & S_IRWXU) << 4);
   2206   1.1   reinoud 	perm |= ((mode & S_IWOTH) << 3);
   2207   1.1   reinoud 	perm |= ((mode & S_IWGRP) << 5);
   2208   1.1   reinoud 	perm |= ((mode & S_IWUSR) << 7);
   2209   1.1   reinoud 
   2210   1.1   reinoud 	return perm;
   2211   1.1   reinoud }
   2212   1.1   reinoud #endif
   2213   1.1   reinoud 
   2214   1.1   reinoud /* --------------------------------------------------------------------- */
   2215   1.1   reinoud 
   2216   1.1   reinoud static uint32_t
   2217   1.1   reinoud udf_icb_to_unix_filetype(uint32_t icbftype)
   2218   1.1   reinoud {
   2219   1.1   reinoud 	switch (icbftype) {
   2220   1.1   reinoud 	case UDF_ICB_FILETYPE_DIRECTORY :
   2221   1.1   reinoud 	case UDF_ICB_FILETYPE_STREAMDIR :
   2222   1.1   reinoud 		return S_IFDIR;
   2223   1.1   reinoud 	case UDF_ICB_FILETYPE_FIFO :
   2224   1.1   reinoud 		return S_IFIFO;
   2225   1.1   reinoud 	case UDF_ICB_FILETYPE_CHARDEVICE :
   2226   1.1   reinoud 		return S_IFCHR;
   2227   1.1   reinoud 	case UDF_ICB_FILETYPE_BLOCKDEVICE :
   2228   1.1   reinoud 		return S_IFBLK;
   2229   1.1   reinoud 	case UDF_ICB_FILETYPE_RANDOMACCESS :
   2230  1.29   reinoud 	case UDF_ICB_FILETYPE_REALTIME :
   2231   1.1   reinoud 		return S_IFREG;
   2232   1.1   reinoud 	case UDF_ICB_FILETYPE_SYMLINK :
   2233   1.1   reinoud 		return S_IFLNK;
   2234   1.1   reinoud 	case UDF_ICB_FILETYPE_SOCKET :
   2235   1.1   reinoud 		return S_IFSOCK;
   2236   1.9  christos 	}
   2237   1.1   reinoud 	/* no idea what this is */
   2238   1.1   reinoud 	return 0;
   2239   1.1   reinoud }
   2240   1.1   reinoud 
   2241   1.1   reinoud /* --------------------------------------------------------------------- */
   2242   1.1   reinoud 
   2243   1.1   reinoud /* TODO KNF-ify */
   2244   1.1   reinoud 
   2245   1.1   reinoud void
   2246   1.1   reinoud udf_to_unix_name(char *result, char *id, int len, struct charspec *chsp)
   2247   1.1   reinoud {
   2248   1.9  christos 	uint16_t *raw_name, *unix_name;
   2249   1.1   reinoud 	uint16_t *inchp, ch;
   2250   1.1   reinoud 	uint8_t	 *outchp;
   2251   1.1   reinoud 	int       ucode_chars, nice_uchars;
   2252   1.1   reinoud 
   2253  1.11   reinoud 	raw_name = malloc(2048 * sizeof(uint16_t), M_UDFTEMP, M_WAITOK);
   2254  1.11   reinoud 	unix_name = raw_name + 1024;			/* split space in half */
   2255   1.1   reinoud 	assert(sizeof(char) == sizeof(uint8_t));
   2256   1.1   reinoud 	outchp = (uint8_t *) result;
   2257   1.1   reinoud 	if ((chsp->type == 0) && (strcmp((char*) chsp->inf, "OSTA Compressed Unicode") == 0)) {
   2258   1.1   reinoud 		*raw_name = *unix_name = 0;
   2259   1.1   reinoud 		ucode_chars = udf_UncompressUnicode(len, (uint8_t *) id, raw_name);
   2260   1.1   reinoud 		ucode_chars = MIN(ucode_chars, UnicodeLength((unicode_t *) raw_name));
   2261   1.1   reinoud 		nice_uchars = UDFTransName(unix_name, raw_name, ucode_chars);
   2262   1.1   reinoud 		for (inchp = unix_name; nice_uchars>0; inchp++, nice_uchars--) {
   2263   1.1   reinoud 			ch = *inchp;
   2264   1.1   reinoud 			/* XXX sloppy unicode -> latin */
   2265   1.1   reinoud 			*outchp++ = ch & 255;
   2266   1.1   reinoud 			if (!ch) break;
   2267   1.9  christos 		}
   2268   1.1   reinoud 		*outchp++ = 0;
   2269   1.1   reinoud 	} else {
   2270   1.1   reinoud 		/* assume 8bit char length byte latin-1 */
   2271   1.1   reinoud 		assert(*id == 8);
   2272   1.1   reinoud 		strncpy((char *) result, (char *) (id+1), strlen((char *) (id+1)));
   2273   1.9  christos 	}
   2274   1.9  christos 	free(raw_name, M_UDFTEMP);
   2275   1.1   reinoud }
   2276   1.1   reinoud 
   2277   1.1   reinoud /* --------------------------------------------------------------------- */
   2278   1.1   reinoud 
   2279   1.1   reinoud /* TODO KNF-ify */
   2280   1.1   reinoud 
   2281   1.1   reinoud void
   2282   1.1   reinoud unix_to_udf_name(char *result, char *name,
   2283   1.1   reinoud 		 uint8_t *result_len, struct charspec *chsp)
   2284   1.1   reinoud {
   2285   1.9  christos 	uint16_t *raw_name;
   2286   1.1   reinoud 	int       udf_chars, name_len;
   2287   1.1   reinoud 	char     *inchp;
   2288   1.1   reinoud 	uint16_t *outchp;
   2289   1.1   reinoud 
   2290   1.9  christos 	raw_name = malloc(1024, M_UDFTEMP, M_WAITOK);
   2291   1.1   reinoud 	/* convert latin-1 or whatever to unicode-16 */
   2292   1.1   reinoud 	*raw_name = 0;
   2293   1.1   reinoud 	name_len  = 0;
   2294   1.1   reinoud 	inchp  = name;
   2295   1.1   reinoud 	outchp = raw_name;
   2296   1.1   reinoud 	while (*inchp) {
   2297   1.1   reinoud 		*outchp++ = (uint16_t) (*inchp++);
   2298   1.1   reinoud 		name_len++;
   2299   1.9  christos 	}
   2300   1.1   reinoud 
   2301   1.1   reinoud 	if ((chsp->type == 0) && (strcmp((char *) chsp->inf, "OSTA Compressed Unicode") == 0)) {
   2302   1.1   reinoud 		udf_chars = udf_CompressUnicode(name_len, 8, (unicode_t *) raw_name, (byte *) result);
   2303   1.1   reinoud 	} else {
   2304   1.1   reinoud 		/* XXX assume 8bit char length byte latin-1 */
   2305   1.1   reinoud 		*result++ = 8; udf_chars = 1;
   2306   1.1   reinoud 		strncpy(result, name + 1, strlen(name+1));
   2307   1.1   reinoud 		udf_chars += strlen(name);
   2308   1.9  christos 	}
   2309   1.1   reinoud 	*result_len = udf_chars;
   2310   1.9  christos 	free(raw_name, M_UDFTEMP);
   2311   1.1   reinoud }
   2312   1.1   reinoud 
   2313   1.1   reinoud /* --------------------------------------------------------------------- */
   2314   1.1   reinoud 
   2315   1.1   reinoud void
   2316   1.1   reinoud udf_timestamp_to_timespec(struct udf_mount *ump,
   2317   1.1   reinoud 			  struct timestamp *timestamp,
   2318  1.30   reinoud 			  struct timespec  *timespec)
   2319   1.1   reinoud {
   2320  1.30   reinoud 	struct clock_ymdhms ymdhms;
   2321   1.1   reinoud 	uint32_t usecs, secs, nsecs;
   2322   1.1   reinoud 	uint16_t tz;
   2323   1.1   reinoud 
   2324  1.30   reinoud 	/* fill in ymdhms structure from timestamp */
   2325  1.30   reinoud 	memset(&ymdhms, 0, sizeof(ymdhms));
   2326  1.30   reinoud 	ymdhms.dt_year = udf_rw16(timestamp->year);
   2327  1.30   reinoud 	ymdhms.dt_mon  = timestamp->month;
   2328  1.30   reinoud 	ymdhms.dt_day  = timestamp->day;
   2329  1.30   reinoud 	ymdhms.dt_wday = 0; /* ? */
   2330  1.30   reinoud 	ymdhms.dt_hour = timestamp->hour;
   2331  1.30   reinoud 	ymdhms.dt_min  = timestamp->minute;
   2332  1.30   reinoud 	ymdhms.dt_sec  = timestamp->second;
   2333   1.1   reinoud 
   2334  1.30   reinoud 	secs = clock_ymdhms_to_secs(&ymdhms);
   2335   1.1   reinoud 	usecs = timestamp->usec +
   2336   1.1   reinoud 		100*timestamp->hund_usec + 10000*timestamp->centisec;
   2337   1.1   reinoud 	nsecs = usecs * 1000;
   2338   1.1   reinoud 
   2339   1.1   reinoud 	/*
   2340   1.1   reinoud 	 * Calculate the time zone.  The timezone is 12 bit signed 2's
   2341   1.1   reinoud 	 * compliment, so we gotta do some extra magic to handle it right.
   2342   1.1   reinoud 	 */
   2343   1.1   reinoud 	tz  = udf_rw16(timestamp->type_tz);
   2344   1.1   reinoud 	tz &= 0x0fff;			/* only lower 12 bits are significant */
   2345   1.1   reinoud 	if (tz & 0x0800)		/* sign extention */
   2346   1.1   reinoud 		tz |= 0xf000;
   2347   1.1   reinoud 
   2348   1.1   reinoud 	/* TODO check timezone conversion */
   2349   1.1   reinoud 	/* check if we are specified a timezone to convert */
   2350   1.1   reinoud 	if (udf_rw16(timestamp->type_tz) & 0x1000) {
   2351   1.1   reinoud 		if ((int16_t) tz != -2047)
   2352   1.1   reinoud 			secs -= (int16_t) tz * 60;
   2353   1.1   reinoud 	} else {
   2354   1.1   reinoud 		secs -= ump->mount_args.gmtoff;
   2355   1.9  christos 	}
   2356   1.1   reinoud 
   2357   1.1   reinoud 	timespec->tv_sec  = secs;
   2358   1.1   reinoud 	timespec->tv_nsec = nsecs;
   2359   1.1   reinoud }
   2360   1.1   reinoud 
   2361   1.1   reinoud /* --------------------------------------------------------------------- */
   2362   1.1   reinoud 
   2363   1.1   reinoud /*
   2364   1.1   reinoud  * Attribute and filetypes converters with get/set pairs
   2365   1.1   reinoud  */
   2366   1.1   reinoud 
   2367   1.1   reinoud uint32_t
   2368   1.1   reinoud udf_getaccessmode(struct udf_node *udf_node)
   2369   1.1   reinoud {
   2370   1.1   reinoud 	struct file_entry *fe;
   2371   1.1   reinoud 	struct extfile_entry *efe;
   2372   1.1   reinoud 	uint32_t udf_perm, icbftype;
   2373   1.1   reinoud 	uint32_t mode, ftype;
   2374   1.1   reinoud 	uint16_t icbflags;
   2375   1.1   reinoud 
   2376   1.1   reinoud 	if (udf_node->fe) {
   2377   1.1   reinoud 		fe = udf_node->fe;
   2378   1.1   reinoud 		udf_perm = udf_rw32(fe->perm);
   2379   1.1   reinoud 		icbftype = fe->icbtag.file_type;
   2380   1.1   reinoud 		icbflags = udf_rw16(fe->icbtag.flags);
   2381   1.1   reinoud 	} else {
   2382   1.1   reinoud 		assert(udf_node->efe);
   2383   1.1   reinoud 		efe = udf_node->efe;
   2384   1.1   reinoud 		udf_perm = udf_rw32(efe->perm);
   2385   1.1   reinoud 		icbftype = efe->icbtag.file_type;
   2386   1.1   reinoud 		icbflags = udf_rw16(efe->icbtag.flags);
   2387   1.9  christos 	}
   2388   1.1   reinoud 
   2389   1.1   reinoud 	mode  = udf_perm_to_unix_mode(udf_perm);
   2390   1.1   reinoud 	ftype = udf_icb_to_unix_filetype(icbftype);
   2391   1.1   reinoud 
   2392   1.1   reinoud 	/* set suid, sgid, sticky from flags in fe/efe */
   2393   1.1   reinoud 	if (icbflags & UDF_ICB_TAG_FLAGS_SETUID)
   2394   1.1   reinoud 		mode |= S_ISUID;
   2395   1.1   reinoud 	if (icbflags & UDF_ICB_TAG_FLAGS_SETGID)
   2396   1.1   reinoud 		mode |= S_ISGID;
   2397   1.1   reinoud 	if (icbflags & UDF_ICB_TAG_FLAGS_STICKY)
   2398   1.1   reinoud 		mode |= S_ISVTX;
   2399   1.1   reinoud 
   2400   1.1   reinoud 	return mode | ftype;
   2401   1.1   reinoud }
   2402   1.1   reinoud 
   2403   1.1   reinoud /* --------------------------------------------------------------------- */
   2404   1.1   reinoud 
   2405   1.1   reinoud /*
   2406   1.1   reinoud  * Directory read and manipulation functions
   2407   1.1   reinoud  */
   2408   1.1   reinoud 
   2409   1.1   reinoud int
   2410   1.1   reinoud udf_lookup_name_in_dir(struct vnode *vp, const char *name, int namelen,
   2411   1.1   reinoud 		       struct long_ad *icb_loc)
   2412   1.1   reinoud {
   2413   1.1   reinoud 	struct udf_node  *dir_node = VTOI(vp);
   2414   1.1   reinoud 	struct file_entry    *fe;
   2415   1.1   reinoud 	struct extfile_entry *efe;
   2416   1.1   reinoud 	struct fileid_desc *fid;
   2417   1.1   reinoud 	struct dirent dirent;
   2418   1.1   reinoud 	uint64_t file_size, diroffset;
   2419   1.1   reinoud 	uint32_t lb_size;
   2420   1.1   reinoud 	int found, error;
   2421   1.1   reinoud 
   2422   1.1   reinoud 	/* get directory filesize */
   2423   1.1   reinoud 	if (dir_node->fe) {
   2424   1.1   reinoud 		fe = dir_node->fe;
   2425   1.1   reinoud 		file_size = udf_rw64(fe->inf_len);
   2426   1.1   reinoud 	} else {
   2427   1.1   reinoud 		assert(dir_node->efe);
   2428   1.1   reinoud 		efe = dir_node->efe;
   2429   1.1   reinoud 		file_size = udf_rw64(efe->inf_len);
   2430   1.9  christos 	}
   2431   1.1   reinoud 
   2432   1.1   reinoud 	/* allocate temporary space for fid */
   2433   1.1   reinoud 	lb_size = udf_rw32(dir_node->ump->logical_vol->lb_size);
   2434   1.1   reinoud 	fid = malloc(lb_size, M_TEMP, M_WAITOK);
   2435   1.1   reinoud 
   2436   1.1   reinoud 	found = 0;
   2437  1.18   reinoud 	diroffset = dir_node->last_diroffset;
   2438  1.31   reinoud 
   2439  1.31   reinoud 	/*
   2440  1.31   reinoud 	 * if the directory is trunced or if we have never visited it yet,
   2441  1.31   reinoud 	 * start at the end.
   2442  1.31   reinoud 	 */
   2443  1.31   reinoud 	if ((diroffset >= file_size) || (diroffset == 0)) {
   2444  1.31   reinoud 		diroffset = dir_node->last_diroffset = file_size;
   2445  1.31   reinoud 	}
   2446  1.31   reinoud 
   2447  1.18   reinoud 	while (!found) {
   2448  1.31   reinoud 		/* if at the end, go trough zero */
   2449  1.18   reinoud 		if (diroffset >= file_size)
   2450  1.18   reinoud 			diroffset = 0;
   2451  1.18   reinoud 
   2452   1.1   reinoud 		/* transfer a new fid/dirent */
   2453   1.1   reinoud 		error = udf_read_fid_stream(vp, &diroffset, fid, &dirent);
   2454   1.1   reinoud 		if (error)
   2455   1.1   reinoud 			break;
   2456   1.1   reinoud 
   2457  1.19   reinoud 		/* skip deleted entries */
   2458  1.19   reinoud 		if ((fid->file_char & UDF_FILE_CHAR_DEL) == 0) {
   2459  1.19   reinoud 			if ((strlen(dirent.d_name) == namelen) &&
   2460  1.19   reinoud 			    (strncmp(dirent.d_name, name, namelen) == 0)) {
   2461  1.19   reinoud 				found = 1;
   2462  1.19   reinoud 				*icb_loc = fid->icb;
   2463  1.19   reinoud 			}
   2464  1.19   reinoud 		}
   2465  1.19   reinoud 
   2466  1.18   reinoud 		if (diroffset == dir_node->last_diroffset) {
   2467  1.18   reinoud 			/* we have cycled */
   2468  1.18   reinoud 			break;
   2469  1.18   reinoud 		}
   2470   1.9  christos 	}
   2471   1.1   reinoud 	free(fid, M_TEMP);
   2472  1.18   reinoud 	dir_node->last_diroffset = diroffset;
   2473   1.1   reinoud 
   2474   1.1   reinoud 	return found;
   2475   1.1   reinoud }
   2476   1.1   reinoud 
   2477   1.1   reinoud /* --------------------------------------------------------------------- */
   2478   1.1   reinoud 
   2479   1.1   reinoud /*
   2480   1.1   reinoud  * Read one fid and process it into a dirent and advance to the next (*fid)
   2481   1.1   reinoud  * has to be allocated a logical block in size, (*dirent) struct dirent length
   2482   1.1   reinoud  */
   2483   1.1   reinoud 
   2484   1.1   reinoud int
   2485   1.1   reinoud udf_read_fid_stream(struct vnode *vp, uint64_t *offset,
   2486   1.1   reinoud 		    struct fileid_desc *fid, struct dirent *dirent)
   2487   1.1   reinoud {
   2488   1.1   reinoud 	struct udf_node  *dir_node = VTOI(vp);
   2489   1.1   reinoud 	struct udf_mount *ump = dir_node->ump;
   2490   1.1   reinoud 	struct file_entry    *fe;
   2491   1.1   reinoud 	struct extfile_entry *efe;
   2492   1.1   reinoud 	struct uio    dir_uio;
   2493   1.1   reinoud 	struct iovec  dir_iovec;
   2494   1.1   reinoud 	uint32_t      entry_length, lb_size;
   2495   1.1   reinoud 	uint64_t      file_size;
   2496   1.1   reinoud 	char         *fid_name;
   2497   1.1   reinoud 	int           enough, error;
   2498   1.1   reinoud 
   2499   1.1   reinoud 	assert(fid);
   2500   1.1   reinoud 	assert(dirent);
   2501   1.1   reinoud 	assert(dir_node);
   2502   1.1   reinoud 	assert(offset);
   2503   1.1   reinoud 	assert(*offset != 1);
   2504   1.1   reinoud 
   2505   1.1   reinoud 	DPRINTF(FIDS, ("read_fid_stream called\n"));
   2506   1.1   reinoud 	/* check if we're past the end of the directory */
   2507   1.1   reinoud 	if (dir_node->fe) {
   2508   1.1   reinoud 		fe = dir_node->fe;
   2509   1.1   reinoud 		file_size = udf_rw64(fe->inf_len);
   2510   1.1   reinoud 	} else {
   2511   1.1   reinoud 		assert(dir_node->efe);
   2512   1.1   reinoud 		efe = dir_node->efe;
   2513   1.1   reinoud 		file_size = udf_rw64(efe->inf_len);
   2514   1.9  christos 	}
   2515   1.1   reinoud 	if (*offset >= file_size)
   2516   1.1   reinoud 		return EINVAL;
   2517   1.1   reinoud 
   2518   1.1   reinoud 	/* get maximum length of FID descriptor */
   2519   1.1   reinoud 	lb_size = udf_rw32(ump->logical_vol->lb_size);
   2520   1.1   reinoud 
   2521   1.1   reinoud 	/* initialise return values */
   2522   1.1   reinoud 	entry_length = 0;
   2523   1.1   reinoud 	memset(dirent, 0, sizeof(struct dirent));
   2524   1.1   reinoud 	memset(fid, 0, lb_size);
   2525   1.1   reinoud 
   2526   1.1   reinoud 	/* TODO use vn_rdwr instead of creating our own uio */
   2527   1.1   reinoud 	/* read part of the directory */
   2528   1.1   reinoud 	memset(&dir_uio, 0, sizeof(struct uio));
   2529   1.1   reinoud 	dir_uio.uio_rw     = UIO_READ;	/* read into this space */
   2530   1.1   reinoud 	dir_uio.uio_iovcnt = 1;
   2531   1.1   reinoud 	dir_uio.uio_iov    = &dir_iovec;
   2532   1.5      yamt 	UIO_SETUP_SYSSPACE(&dir_uio);
   2533   1.1   reinoud 	dir_iovec.iov_base = fid;
   2534   1.1   reinoud 	dir_iovec.iov_len  = lb_size;
   2535   1.1   reinoud 	dir_uio.uio_offset = *offset;
   2536   1.1   reinoud 
   2537   1.1   reinoud 	/* limit length of read in piece */
   2538   1.1   reinoud 	dir_uio.uio_resid  = MIN(file_size - (*offset), lb_size);
   2539   1.1   reinoud 
   2540   1.1   reinoud 	/* read the part into the fid space */
   2541   1.1   reinoud 	error = VOP_READ(vp, &dir_uio, IO_ALTSEMANTICS, NOCRED);
   2542   1.1   reinoud 	if (error)
   2543   1.1   reinoud 		return error;
   2544   1.1   reinoud 
   2545   1.1   reinoud 	/*
   2546   1.1   reinoud 	 * Check if we got a whole descriptor.
   2547   1.1   reinoud 	 * XXX Try to `resync' directory stream when something is very wrong.
   2548   1.1   reinoud 	 *
   2549   1.1   reinoud 	 */
   2550   1.1   reinoud 	enough = (dir_uio.uio_offset - (*offset) >= UDF_FID_SIZE);
   2551   1.1   reinoud 	if (!enough) {
   2552   1.1   reinoud 		/* short dir ... */
   2553   1.1   reinoud 		return EIO;
   2554   1.9  christos 	}
   2555   1.1   reinoud 
   2556   1.1   reinoud 	/* check if our FID header is OK */
   2557   1.1   reinoud 	error = udf_check_tag(fid);
   2558   1.1   reinoud 	DPRINTFIF(FIDS, error, ("read fids: tag check failed\n"));
   2559   1.1   reinoud 	if (!error) {
   2560   1.1   reinoud 		if (udf_rw16(fid->tag.id) != TAGID_FID)
   2561   1.1   reinoud 			error = ENOENT;
   2562   1.9  christos 	}
   2563   1.1   reinoud 	DPRINTFIF(FIDS, !error, ("\ttag checked ok: got TAGID_FID\n"));
   2564   1.1   reinoud 
   2565   1.1   reinoud 	/* check for length */
   2566   1.1   reinoud 	if (!error) {
   2567   1.1   reinoud 		entry_length = udf_fidsize(fid, lb_size);
   2568   1.1   reinoud 		enough = (dir_uio.uio_offset - (*offset) >= entry_length);
   2569   1.9  christos 	}
   2570   1.1   reinoud 	DPRINTFIF(FIDS, !error, ("\tentry_length = %d, enough = %s\n",
   2571   1.1   reinoud 	    entry_length, enough?"yes":"no"));
   2572   1.1   reinoud 
   2573   1.1   reinoud 	if (!enough) {
   2574   1.1   reinoud 		/* short dir ... bomb out */
   2575   1.1   reinoud 		return EIO;
   2576   1.9  christos 	}
   2577   1.1   reinoud 
   2578   1.1   reinoud 	/* check FID contents */
   2579   1.1   reinoud 	if (!error) {
   2580   1.1   reinoud 		error = udf_check_tag_payload((union dscrptr *) fid, lb_size);
   2581   1.1   reinoud 		DPRINTF(FIDS, ("\tpayload checked ok\n"));
   2582   1.9  christos 	}
   2583   1.1   reinoud 	if (error) {
   2584   1.1   reinoud 		/* note that is sometimes a bit quick to report */
   2585   1.1   reinoud 		printf("BROKEN DIRECTORY ENTRY\n");
   2586   1.1   reinoud 		/* RESYNC? */
   2587   1.1   reinoud 		/* TODO: use udf_resync_fid_stream */
   2588   1.1   reinoud 		return EIO;
   2589   1.9  christos 	}
   2590   1.1   reinoud 	DPRINTF(FIDS, ("\tinterpret FID\n"));
   2591   1.1   reinoud 
   2592   1.1   reinoud 	/* we got a whole and valid descriptor! */
   2593   1.1   reinoud 
   2594   1.1   reinoud 	/* create resulting dirent structure */
   2595   1.1   reinoud 	fid_name = (char *) fid->data + udf_rw16(fid->l_iu);
   2596   1.1   reinoud 	udf_to_unix_name(dirent->d_name,
   2597   1.1   reinoud 		fid_name, fid->l_fi, &ump->logical_vol->desc_charset);
   2598   1.1   reinoud 
   2599   1.1   reinoud 	/* '..' has no name, so provide one */
   2600   1.1   reinoud 	if (fid->file_char & UDF_FILE_CHAR_PAR)
   2601   1.1   reinoud 		strcpy(dirent->d_name, "..");
   2602   1.1   reinoud 
   2603   1.1   reinoud 	dirent->d_fileno = udf_calchash(&fid->icb);	/* inode hash XXX */
   2604   1.1   reinoud 	dirent->d_namlen = strlen(dirent->d_name);
   2605   1.1   reinoud 	dirent->d_reclen = _DIRENT_SIZE(dirent);
   2606   1.1   reinoud 
   2607   1.1   reinoud 	/*
   2608   1.1   reinoud 	 * Note that its not worth trying to go for the filetypes now... its
   2609   1.1   reinoud 	 * too expensive too
   2610   1.1   reinoud 	 */
   2611   1.1   reinoud 	dirent->d_type = DT_UNKNOWN;
   2612   1.1   reinoud 
   2613   1.1   reinoud 	/* initial guess for filetype we can make */
   2614   1.1   reinoud 	if (fid->file_char & UDF_FILE_CHAR_DIR)
   2615   1.1   reinoud 		dirent->d_type = DT_DIR;
   2616   1.1   reinoud 
   2617   1.1   reinoud 	/* advance */
   2618   1.1   reinoud 	*offset += entry_length;
   2619   1.1   reinoud 
   2620   1.1   reinoud 	return error;
   2621   1.1   reinoud }
   2622   1.1   reinoud 
   2623   1.1   reinoud /* --------------------------------------------------------------------- */
   2624   1.1   reinoud 
   2625   1.1   reinoud /*
   2626   1.1   reinoud  * block based file reading and writing
   2627   1.1   reinoud  */
   2628   1.1   reinoud 
   2629   1.1   reinoud static int
   2630   1.1   reinoud udf_read_internal(struct udf_node *node, uint8_t *blob)
   2631   1.1   reinoud {
   2632   1.1   reinoud 	struct udf_mount *ump;
   2633   1.1   reinoud 	struct file_entry *fe;
   2634   1.1   reinoud 	struct extfile_entry *efe;
   2635   1.1   reinoud 	uint64_t inflen;
   2636   1.1   reinoud 	uint32_t sector_size;
   2637   1.1   reinoud 	uint8_t  *pos;
   2638   1.1   reinoud 	int icbflags, addr_type;
   2639   1.1   reinoud 
   2640   1.1   reinoud 	/* shut up gcc */
   2641   1.1   reinoud 	inflen = addr_type = icbflags = 0;
   2642   1.1   reinoud 	pos = NULL;
   2643   1.1   reinoud 
   2644   1.1   reinoud 	/* get extent and do some paranoia checks */
   2645   1.1   reinoud 	ump = node->ump;
   2646   1.1   reinoud 	sector_size = ump->discinfo.sector_size;
   2647   1.1   reinoud 
   2648   1.1   reinoud 	fe  = node->fe;
   2649   1.1   reinoud 	efe = node->efe;
   2650   1.1   reinoud 	if (fe) {
   2651   1.1   reinoud 		inflen   = udf_rw64(fe->inf_len);
   2652   1.1   reinoud 		pos      = &fe->data[0] + udf_rw32(fe->l_ea);
   2653   1.1   reinoud 		icbflags = udf_rw16(fe->icbtag.flags);
   2654   1.9  christos 	}
   2655   1.1   reinoud 	if (efe) {
   2656   1.1   reinoud 		inflen   = udf_rw64(efe->inf_len);
   2657   1.1   reinoud 		pos      = &efe->data[0] + udf_rw32(efe->l_ea);
   2658   1.1   reinoud 		icbflags = udf_rw16(efe->icbtag.flags);
   2659   1.9  christos 	}
   2660   1.1   reinoud 	addr_type = icbflags & UDF_ICB_TAG_FLAGS_ALLOC_MASK;
   2661   1.1   reinoud 
   2662   1.1   reinoud 	assert(addr_type == UDF_ICB_INTERN_ALLOC);
   2663   1.1   reinoud 	assert(inflen < sector_size);
   2664   1.1   reinoud 
   2665   1.1   reinoud 	/* copy out info */
   2666   1.1   reinoud 	memset(blob, 0, sector_size);
   2667   1.1   reinoud 	memcpy(blob, pos, inflen);
   2668   1.1   reinoud 
   2669   1.1   reinoud 	return 0;
   2670   1.1   reinoud }
   2671   1.1   reinoud 
   2672   1.1   reinoud /* --------------------------------------------------------------------- */
   2673   1.1   reinoud 
   2674   1.1   reinoud /*
   2675   1.1   reinoud  * Read file extent reads an extent specified in sectors from the file. It is
   2676   1.1   reinoud  * sector based; i.e. no `fancy' offsets.
   2677   1.1   reinoud  */
   2678   1.1   reinoud 
   2679   1.1   reinoud int
   2680   1.1   reinoud udf_read_file_extent(struct udf_node *node,
   2681   1.1   reinoud 		     uint32_t from, uint32_t sectors,
   2682   1.1   reinoud 		     uint8_t *blob)
   2683   1.1   reinoud {
   2684   1.1   reinoud 	struct buf buf;
   2685   1.1   reinoud 	uint32_t sector_size;
   2686   1.1   reinoud 
   2687   1.1   reinoud 	BUF_INIT(&buf);
   2688   1.1   reinoud 
   2689   1.1   reinoud 	sector_size = node->ump->discinfo.sector_size;
   2690   1.1   reinoud 
   2691   1.1   reinoud 	buf.b_bufsize = sectors * sector_size;
   2692   1.1   reinoud 	buf.b_data    = blob;
   2693   1.1   reinoud 	buf.b_bcount  = buf.b_bufsize;
   2694   1.1   reinoud 	buf.b_resid   = buf.b_bcount;
   2695   1.1   reinoud 	buf.b_flags   = B_BUSY | B_READ;
   2696   1.1   reinoud 	buf.b_vp      = node->vnode;
   2697   1.1   reinoud 	buf.b_proc    = NULL;
   2698   1.1   reinoud 
   2699   1.1   reinoud 	buf.b_blkno  = from;
   2700   1.1   reinoud 	buf.b_lblkno = 0;
   2701   1.1   reinoud 	BIO_SETPRIO(&buf, BPRIO_TIMELIMITED);
   2702   1.1   reinoud 
   2703   1.1   reinoud 	udf_read_filebuf(node, &buf);
   2704   1.1   reinoud 	return biowait(&buf);
   2705   1.1   reinoud }
   2706   1.1   reinoud 
   2707   1.1   reinoud 
   2708   1.1   reinoud /* --------------------------------------------------------------------- */
   2709   1.1   reinoud 
   2710   1.1   reinoud /*
   2711   1.1   reinoud  * Read file extent in the buffer.
   2712   1.1   reinoud  *
   2713  1.25       wiz  * The splitup of the extent into separate request-buffers is to minimise
   2714   1.1   reinoud  * copying around as much as possible.
   2715   1.1   reinoud  */
   2716   1.1   reinoud 
   2717   1.1   reinoud 
   2718  1.12   reinoud /* maximum of 128 translations (!) (64 kb in 512 byte sectors) */
   2719   1.1   reinoud #define FILEBUFSECT 128
   2720   1.1   reinoud 
   2721   1.1   reinoud void
   2722   1.1   reinoud udf_read_filebuf(struct udf_node *node, struct buf *buf)
   2723   1.1   reinoud {
   2724   1.1   reinoud 	struct buf *nestbuf;
   2725  1.10  christos 	uint64_t   *mapping;
   2726   1.1   reinoud 	uint64_t    run_start;
   2727   1.1   reinoud 	uint32_t    sector_size;
   2728   1.1   reinoud 	uint32_t    buf_offset, sector, rbuflen, rblk;
   2729   1.1   reinoud 	uint8_t    *buf_pos;
   2730   1.1   reinoud 	int error, run_length;
   2731   1.1   reinoud 
   2732   1.1   reinoud 	uint32_t  from;
   2733   1.1   reinoud 	uint32_t  sectors;
   2734   1.1   reinoud 
   2735   1.1   reinoud 	sector_size = node->ump->discinfo.sector_size;
   2736   1.1   reinoud 
   2737   1.1   reinoud 	from    = buf->b_blkno;
   2738   1.1   reinoud 	sectors = buf->b_bcount / sector_size;
   2739   1.1   reinoud 
   2740   1.1   reinoud 	/* assure we have enough translation slots */
   2741   1.1   reinoud 	KASSERT(buf->b_bcount / sector_size <= FILEBUFSECT);
   2742   1.1   reinoud 	KASSERT(MAXPHYS / sector_size <= FILEBUFSECT);
   2743   1.1   reinoud 
   2744   1.1   reinoud 	if (sectors > FILEBUFSECT) {
   2745   1.1   reinoud 		printf("udf_read_filebuf: implementation limit on bufsize\n");
   2746   1.1   reinoud 		buf->b_error  = EIO;
   2747   1.1   reinoud 		buf->b_flags |= B_ERROR;
   2748   1.1   reinoud 		biodone(buf);
   2749   1.1   reinoud 		return;
   2750   1.9  christos 	}
   2751   1.1   reinoud 
   2752  1.10  christos 	mapping = malloc(sizeof(*mapping) * FILEBUFSECT, M_TEMP, M_WAITOK);
   2753  1.10  christos 
   2754   1.1   reinoud 	error = 0;
   2755   1.1   reinoud 	DPRINTF(READ, ("\ttranslate %d-%d\n", from, sectors));
   2756   1.1   reinoud 	error = udf_translate_file_extent(node, from, sectors, mapping);
   2757   1.1   reinoud 	if (error) {
   2758   1.1   reinoud 		buf->b_error  = error;
   2759   1.1   reinoud 		buf->b_flags |= B_ERROR;
   2760   1.1   reinoud 		biodone(buf);
   2761  1.10  christos 		goto out;
   2762   1.9  christos 	}
   2763   1.1   reinoud 	DPRINTF(READ, ("\ttranslate extent went OK\n"));
   2764   1.1   reinoud 
   2765   1.1   reinoud 	/* pre-check if internal or parts are zero */
   2766   1.1   reinoud 	if (*mapping == UDF_TRANS_INTERN) {
   2767   1.1   reinoud 		error = udf_read_internal(node, (uint8_t *) buf->b_data);
   2768   1.1   reinoud 		if (error) {
   2769   1.1   reinoud 			buf->b_error  = error;
   2770   1.1   reinoud 			buf->b_flags |= B_ERROR;
   2771   1.9  christos 		}
   2772   1.1   reinoud 		biodone(buf);
   2773  1.10  christos 		goto out;
   2774   1.9  christos 	}
   2775   1.1   reinoud 	DPRINTF(READ, ("\tnot intern\n"));
   2776   1.1   reinoud 
   2777  1.24       wiz 	/* request read-in of data from disc scheduler */
   2778   1.1   reinoud 	buf->b_resid = buf->b_bcount;
   2779   1.1   reinoud 	for (sector = 0; sector < sectors; sector++) {
   2780   1.1   reinoud 		buf_offset = sector * sector_size;
   2781   1.1   reinoud 		buf_pos    = (uint8_t *) buf->b_data + buf_offset;
   2782   1.1   reinoud 		DPRINTF(READ, ("\tprocessing rel sector %d\n", sector));
   2783   1.1   reinoud 
   2784   1.1   reinoud 		switch (mapping[sector]) {
   2785   1.1   reinoud 		case UDF_TRANS_UNMAPPED:
   2786   1.1   reinoud 		case UDF_TRANS_ZERO:
   2787   1.1   reinoud 			/* copy zero sector */
   2788   1.1   reinoud 			memset(buf_pos, 0, sector_size);
   2789   1.1   reinoud 			DPRINTF(READ, ("\treturning zero sector\n"));
   2790   1.1   reinoud 			nestiobuf_done(buf, sector_size, 0);
   2791   1.1   reinoud 			break;
   2792   1.1   reinoud 		default :
   2793   1.1   reinoud 			DPRINTF(READ, ("\tread sector "
   2794   1.1   reinoud 			    "%"PRIu64"\n", mapping[sector]));
   2795   1.1   reinoud 
   2796   1.1   reinoud 			run_start  = mapping[sector];
   2797   1.1   reinoud 			run_length = 1;
   2798   1.1   reinoud 			while (sector < sectors-1) {
   2799   1.1   reinoud 				if (mapping[sector+1] != mapping[sector]+1)
   2800   1.1   reinoud 					break;
   2801   1.1   reinoud 				run_length++;
   2802   1.1   reinoud 				sector++;
   2803   1.9  christos 			}
   2804   1.1   reinoud 
   2805   1.1   reinoud 			/*
   2806   1.1   reinoud 			 * nest an iobuf and mark it for async reading. Since
   2807   1.1   reinoud 			 * we're using nested buffers, they can't be cached by
   2808   1.1   reinoud 			 * design.
   2809   1.1   reinoud 			 */
   2810   1.1   reinoud 			rbuflen = run_length * sector_size;
   2811   1.1   reinoud 			rblk    = run_start  * (sector_size/DEV_BSIZE);
   2812   1.1   reinoud 
   2813   1.1   reinoud 			nestbuf = getiobuf();
   2814   1.1   reinoud 			nestiobuf_setup(buf, nestbuf, buf_offset, rbuflen);
   2815   1.1   reinoud 			/* nestbuf is B_ASYNC */
   2816   1.1   reinoud 
   2817  1.24       wiz 			/* CD schedules on raw blkno */
   2818   1.1   reinoud 			nestbuf->b_blkno    = rblk;
   2819   1.1   reinoud 			nestbuf->b_proc     = NULL;
   2820   1.1   reinoud 			nestbuf->b_cylinder = 0;
   2821   1.1   reinoud 			nestbuf->b_rawblkno = rblk;
   2822   1.1   reinoud 			VOP_STRATEGY(node->ump->devvp, nestbuf);
   2823   1.9  christos 		}
   2824   1.9  christos 	}
   2825  1.10  christos out:
   2826   1.1   reinoud 	DPRINTF(READ, ("\tend of read_filebuf\n"));
   2827  1.10  christos 	free(mapping, M_TEMP);
   2828  1.10  christos 	return;
   2829   1.1   reinoud }
   2830   1.1   reinoud #undef FILEBUFSECT
   2831   1.1   reinoud 
   2832   1.1   reinoud 
   2833   1.1   reinoud /* --------------------------------------------------------------------- */
   2834   1.1   reinoud 
   2835   1.1   reinoud /*
   2836   1.1   reinoud  * Translate an extent (in sectors) into sector numbers; used for read and
   2837   1.1   reinoud  * write operations. DOESNT't check extents.
   2838   1.1   reinoud  */
   2839   1.1   reinoud 
   2840   1.1   reinoud int
   2841   1.1   reinoud udf_translate_file_extent(struct udf_node *node,
   2842   1.1   reinoud 		          uint32_t from, uint32_t pages,
   2843   1.1   reinoud 			  uint64_t *map)
   2844   1.1   reinoud {
   2845   1.1   reinoud 	struct udf_mount *ump;
   2846   1.1   reinoud 	struct file_entry *fe;
   2847   1.1   reinoud 	struct extfile_entry *efe;
   2848   1.1   reinoud 	struct short_ad *s_ad;
   2849   1.1   reinoud 	struct long_ad  *l_ad, t_ad;
   2850   1.1   reinoud 	uint64_t transsec;
   2851   1.1   reinoud 	uint32_t sector_size, transsec32;
   2852   1.1   reinoud 	uint32_t overlap, translen;
   2853   1.1   reinoud 	uint32_t vpart_num, lb_num, len, alloclen;
   2854   1.1   reinoud 	uint8_t *pos;
   2855   1.1   reinoud 	int error, flags, addr_type, icblen, icbflags;
   2856   1.1   reinoud 
   2857   1.1   reinoud 	if (!node)
   2858   1.1   reinoud 		return ENOENT;
   2859   1.1   reinoud 
   2860   1.1   reinoud 	/* shut up gcc */
   2861   1.1   reinoud 	alloclen = addr_type = icbflags = 0;
   2862   1.1   reinoud 	pos = NULL;
   2863   1.1   reinoud 
   2864   1.1   reinoud 	/* do the work */
   2865   1.1   reinoud 	ump = node->ump;
   2866   1.1   reinoud 	sector_size = ump->discinfo.sector_size;
   2867   1.1   reinoud 	fe  = node->fe;
   2868   1.1   reinoud 	efe = node->efe;
   2869   1.1   reinoud 	if (fe) {
   2870   1.1   reinoud 		alloclen = udf_rw32(fe->l_ad);
   2871   1.1   reinoud 		pos      = &fe->data[0] + udf_rw32(fe->l_ea);
   2872   1.1   reinoud 		icbflags = udf_rw16(fe->icbtag.flags);
   2873   1.9  christos 	}
   2874   1.1   reinoud 	if (efe) {
   2875   1.1   reinoud 		alloclen = udf_rw32(efe->l_ad);
   2876   1.1   reinoud 		pos      = &efe->data[0] + udf_rw32(efe->l_ea);
   2877   1.1   reinoud 		icbflags = udf_rw16(efe->icbtag.flags);
   2878   1.9  christos 	}
   2879   1.1   reinoud 	addr_type = icbflags & UDF_ICB_TAG_FLAGS_ALLOC_MASK;
   2880   1.1   reinoud 
   2881   1.1   reinoud 	DPRINTF(TRANSLATE, ("udf trans: alloc_len = %d, addr_type %d, "
   2882   1.1   reinoud 	    "fe %p, efe %p\n", alloclen, addr_type, fe, efe));
   2883   1.1   reinoud 
   2884   1.1   reinoud 	vpart_num = udf_rw16(node->loc.loc.part_num);
   2885   1.1   reinoud 	lb_num = len = icblen = 0;	/* shut up gcc */
   2886   1.1   reinoud 	while (pages && alloclen) {
   2887   1.1   reinoud 		DPRINTF(TRANSLATE, ("\taddr_type %d\n", addr_type));
   2888   1.1   reinoud 		switch (addr_type) {
   2889   1.1   reinoud 		case UDF_ICB_INTERN_ALLOC :
   2890   1.1   reinoud 			/* TODO check extents? */
   2891   1.1   reinoud 			*map = UDF_TRANS_INTERN;
   2892   1.1   reinoud 			return 0;
   2893   1.1   reinoud 		case UDF_ICB_SHORT_ALLOC :
   2894   1.1   reinoud 			icblen = sizeof(struct short_ad);
   2895   1.1   reinoud 			s_ad   = (struct short_ad *) pos;
   2896   1.1   reinoud 			len       = udf_rw32(s_ad->len);
   2897   1.1   reinoud 			lb_num    = udf_rw32(s_ad->lb_num);
   2898   1.1   reinoud 			break;
   2899   1.1   reinoud 		case UDF_ICB_LONG_ALLOC  :
   2900   1.1   reinoud 			icblen = sizeof(struct long_ad);
   2901   1.1   reinoud 			l_ad   = (struct long_ad *) pos;
   2902   1.1   reinoud 			len       = udf_rw32(l_ad->len);
   2903   1.1   reinoud 			lb_num    = udf_rw32(l_ad->loc.lb_num);
   2904   1.1   reinoud 			vpart_num = udf_rw16(l_ad->loc.part_num);
   2905   1.1   reinoud 			DPRINTFIF(TRANSLATE,
   2906   1.1   reinoud 			    (l_ad->impl.im_used.flags &
   2907   1.1   reinoud 			     UDF_ADIMP_FLAGS_EXTENT_ERASED),
   2908   1.1   reinoud 			    ("UDF: got an `extent erased' flag in long_ad\n"));
   2909   1.1   reinoud 			break;
   2910   1.1   reinoud 		default:
   2911   1.1   reinoud 			/* can't be here */
   2912   1.1   reinoud 			return EINVAL;	/* for sure */
   2913   1.9  christos 		}
   2914   1.1   reinoud 
   2915   1.1   reinoud 		/* process extent */
   2916   1.1   reinoud 		flags   = UDF_EXT_FLAGS(len);
   2917   1.1   reinoud 		len     = UDF_EXT_LEN(len);
   2918   1.1   reinoud 
   2919   1.1   reinoud 		overlap = (len + sector_size -1) / sector_size;
   2920   1.1   reinoud 		if (from) {
   2921   1.1   reinoud 			if (from > overlap) {
   2922   1.1   reinoud 				from -= overlap;
   2923   1.1   reinoud 				overlap = 0;
   2924   1.1   reinoud 			} else {
   2925   1.1   reinoud 				lb_num  += from;	/* advance in extent */
   2926   1.1   reinoud 				overlap -= from;
   2927   1.1   reinoud 				from = 0;
   2928   1.9  christos 			}
   2929   1.9  christos 		}
   2930   1.1   reinoud 
   2931   1.1   reinoud 		overlap = MIN(overlap, pages);
   2932   1.1   reinoud 		while (overlap) {
   2933   1.1   reinoud 			switch (flags) {
   2934   1.1   reinoud 			case UDF_EXT_REDIRECT :
   2935   1.1   reinoud 				/* no support for allocation extentions yet */
   2936   1.1   reinoud 				/* TODO support for allocation extention */
   2937   1.1   reinoud 				return ENOENT;
   2938   1.1   reinoud 			case UDF_EXT_FREED :
   2939   1.1   reinoud 			case UDF_EXT_FREE :
   2940   1.1   reinoud 				transsec = UDF_TRANS_ZERO;
   2941   1.1   reinoud 				translen = overlap;
   2942   1.1   reinoud 				while (overlap && pages && translen) {
   2943   1.1   reinoud 					*map++ = transsec;
   2944  1.17   reinoud 					lb_num++;
   2945   1.1   reinoud 					overlap--; pages--; translen--;
   2946   1.9  christos 				}
   2947   1.1   reinoud 				break;
   2948   1.1   reinoud 			case UDF_EXT_ALLOCATED :
   2949   1.1   reinoud 				t_ad.loc.lb_num   = udf_rw32(lb_num);
   2950   1.1   reinoud 				t_ad.loc.part_num = udf_rw16(vpart_num);
   2951   1.1   reinoud 				error = udf_translate_vtop(ump,
   2952   1.1   reinoud 						&t_ad, &transsec32, &translen);
   2953   1.1   reinoud 				transsec = transsec32;
   2954   1.1   reinoud 				if (error)
   2955   1.1   reinoud 					return error;
   2956   1.1   reinoud 				while (overlap && pages && translen) {
   2957   1.1   reinoud 					*map++ = transsec;
   2958  1.17   reinoud 					lb_num++; transsec++;
   2959   1.1   reinoud 					overlap--; pages--; translen--;
   2960   1.9  christos 				}
   2961   1.1   reinoud 				break;
   2962   1.9  christos 			}
   2963   1.9  christos 		}
   2964   1.1   reinoud 		pos      += icblen;
   2965   1.1   reinoud 		alloclen -= icblen;
   2966   1.9  christos 	}
   2967   1.1   reinoud 	return 0;
   2968   1.1   reinoud }
   2969   1.1   reinoud 
   2970   1.1   reinoud /* --------------------------------------------------------------------- */
   2971   1.1   reinoud 
   2972