4 * Copyright IBM, Corp. 2010
7 * Anthony Liguori <aliguori@us.ibm.com>
9 * This work is licensed under the terms of the GNU GPL, version 2. See
10 * the COPYING file in the top-level directory.
14 #include "qemu/osdep.h"
15 #include <glib/gprintf.h>
16 #include "hw/virtio/virtio.h"
17 #include "qapi/error.h"
18 #include "qemu/error-report.h"
20 #include "qemu/main-loop.h"
21 #include "qemu/sockets.h"
22 #include "virtio-9p.h"
23 #include "fsdev/qemu-fsdev.h"
27 #include "migration/blocker.h"
28 #include "sysemu/qtest.h"
29 #include "qemu/xxhash.h"
31 #include <linux/limits.h>
35 static int open_fd_rc
;
49 static ssize_t
pdu_marshal(V9fsPDU
*pdu
, size_t offset
, const char *fmt
, ...)
55 ret
= pdu
->s
->transport
->pdu_vmarshal(pdu
, offset
, fmt
, ap
);
61 static ssize_t
pdu_unmarshal(V9fsPDU
*pdu
, size_t offset
, const char *fmt
, ...)
67 ret
= pdu
->s
->transport
->pdu_vunmarshal(pdu
, offset
, fmt
, ap
);
73 static int omode_to_uflags(int8_t mode
)
107 typedef struct DotlOpenflagMap
{
112 static int dotl_to_open_flags(int flags
)
116 * We have same bits for P9_DOTL_READONLY, P9_DOTL_WRONLY
117 * and P9_DOTL_NOACCESS
119 int oflags
= flags
& O_ACCMODE
;
121 DotlOpenflagMap dotl_oflag_map
[] = {
122 { P9_DOTL_CREATE
, O_CREAT
},
123 { P9_DOTL_EXCL
, O_EXCL
},
124 { P9_DOTL_NOCTTY
, O_NOCTTY
},
125 { P9_DOTL_TRUNC
, O_TRUNC
},
126 { P9_DOTL_APPEND
, O_APPEND
},
127 { P9_DOTL_NONBLOCK
, O_NONBLOCK
} ,
128 { P9_DOTL_DSYNC
, O_DSYNC
},
129 { P9_DOTL_FASYNC
, FASYNC
},
130 { P9_DOTL_DIRECT
, O_DIRECT
},
131 { P9_DOTL_LARGEFILE
, O_LARGEFILE
},
132 { P9_DOTL_DIRECTORY
, O_DIRECTORY
},
133 { P9_DOTL_NOFOLLOW
, O_NOFOLLOW
},
134 { P9_DOTL_NOATIME
, O_NOATIME
},
135 { P9_DOTL_SYNC
, O_SYNC
},
138 for (i
= 0; i
< ARRAY_SIZE(dotl_oflag_map
); i
++) {
139 if (flags
& dotl_oflag_map
[i
].dotl_flag
) {
140 oflags
|= dotl_oflag_map
[i
].open_flag
;
147 void cred_init(FsCred
*credp
)
155 static int get_dotl_openflags(V9fsState
*s
, int oflags
)
159 * Filter the client open flags
161 flags
= dotl_to_open_flags(oflags
);
162 flags
&= ~(O_NOCTTY
| O_ASYNC
| O_CREAT
);
164 * Ignore direct disk access hint until the server supports it.
170 void v9fs_path_init(V9fsPath
*path
)
176 void v9fs_path_free(V9fsPath
*path
)
184 void GCC_FMT_ATTR(2, 3)
185 v9fs_path_sprintf(V9fsPath
*path
, const char *fmt
, ...)
189 v9fs_path_free(path
);
192 /* Bump the size for including terminating NULL */
193 path
->size
= g_vasprintf(&path
->data
, fmt
, ap
) + 1;
197 void v9fs_path_copy(V9fsPath
*dst
, const V9fsPath
*src
)
200 dst
->size
= src
->size
;
201 dst
->data
= g_memdup(src
->data
, src
->size
);
204 int v9fs_name_to_path(V9fsState
*s
, V9fsPath
*dirpath
,
205 const char *name
, V9fsPath
*path
)
208 err
= s
->ops
->name_to_path(&s
->ctx
, dirpath
, name
, path
);
216 * Return TRUE if s1 is an ancestor of s2.
218 * E.g. "a/b" is an ancestor of "a/b/c" but not of "a/bc/d".
219 * As a special case, We treat s1 as ancestor of s2 if they are same!
221 static int v9fs_path_is_ancestor(V9fsPath
*s1
, V9fsPath
*s2
)
223 if (!strncmp(s1
->data
, s2
->data
, s1
->size
- 1)) {
224 if (s2
->data
[s1
->size
- 1] == '\0' || s2
->data
[s1
->size
- 1] == '/') {
231 static size_t v9fs_string_size(V9fsString
*str
)
237 * returns 0 if fid got re-opened, 1 if not, < 0 on error */
238 static int coroutine_fn
v9fs_reopen_fid(V9fsPDU
*pdu
, V9fsFidState
*f
)
241 if (f
->fid_type
== P9_FID_FILE
) {
242 if (f
->fs
.fd
== -1) {
244 err
= v9fs_co_open(pdu
, f
, f
->open_flags
);
245 } while (err
== -EINTR
&& !pdu
->cancelled
);
247 } else if (f
->fid_type
== P9_FID_DIR
) {
248 if (f
->fs
.dir
.stream
== NULL
) {
250 err
= v9fs_co_opendir(pdu
, f
);
251 } while (err
== -EINTR
&& !pdu
->cancelled
);
257 static V9fsFidState
*coroutine_fn
get_fid(V9fsPDU
*pdu
, int32_t fid
)
261 V9fsState
*s
= pdu
->s
;
263 for (f
= s
->fid_list
; f
; f
= f
->next
) {
267 * Update the fid ref upfront so that
268 * we don't get reclaimed when we yield
273 * check whether we need to reopen the
274 * file. We might have closed the fd
275 * while trying to free up some file
278 err
= v9fs_reopen_fid(pdu
, f
);
284 * Mark the fid as referenced so that the LRU
285 * reclaim won't close the file descriptor
287 f
->flags
|= FID_REFERENCED
;
294 static V9fsFidState
*alloc_fid(V9fsState
*s
, int32_t fid
)
298 for (f
= s
->fid_list
; f
; f
= f
->next
) {
299 /* If fid is already there return NULL */
305 f
= g_malloc0(sizeof(V9fsFidState
));
307 f
->fid_type
= P9_FID_NONE
;
310 * Mark the fid as referenced so that the LRU
311 * reclaim won't close the file descriptor
313 f
->flags
|= FID_REFERENCED
;
314 f
->next
= s
->fid_list
;
317 v9fs_readdir_init(&f
->fs
.dir
);
318 v9fs_readdir_init(&f
->fs_reclaim
.dir
);
323 static int coroutine_fn
v9fs_xattr_fid_clunk(V9fsPDU
*pdu
, V9fsFidState
*fidp
)
327 if (fidp
->fs
.xattr
.xattrwalk_fid
) {
328 /* getxattr/listxattr fid */
332 * if this is fid for setxattr. clunk should
333 * result in setxattr localcall
335 if (fidp
->fs
.xattr
.len
!= fidp
->fs
.xattr
.copied_len
) {
336 /* clunk after partial write */
340 if (fidp
->fs
.xattr
.len
) {
341 retval
= v9fs_co_lsetxattr(pdu
, &fidp
->path
, &fidp
->fs
.xattr
.name
,
342 fidp
->fs
.xattr
.value
,
344 fidp
->fs
.xattr
.flags
);
346 retval
= v9fs_co_lremovexattr(pdu
, &fidp
->path
, &fidp
->fs
.xattr
.name
);
349 v9fs_string_free(&fidp
->fs
.xattr
.name
);
351 g_free(fidp
->fs
.xattr
.value
);
355 static int coroutine_fn
free_fid(V9fsPDU
*pdu
, V9fsFidState
*fidp
)
359 if (fidp
->fid_type
== P9_FID_FILE
) {
360 /* If we reclaimed the fd no need to close */
361 if (fidp
->fs
.fd
!= -1) {
362 retval
= v9fs_co_close(pdu
, &fidp
->fs
);
364 } else if (fidp
->fid_type
== P9_FID_DIR
) {
365 if (fidp
->fs
.dir
.stream
!= NULL
) {
366 retval
= v9fs_co_closedir(pdu
, &fidp
->fs
);
368 } else if (fidp
->fid_type
== P9_FID_XATTR
) {
369 retval
= v9fs_xattr_fid_clunk(pdu
, fidp
);
371 v9fs_path_free(&fidp
->path
);
376 static int coroutine_fn
put_fid(V9fsPDU
*pdu
, V9fsFidState
*fidp
)
381 * Don't free the fid if it is in reclaim list
383 if (!fidp
->ref
&& fidp
->clunked
) {
384 if (fidp
->fid
== pdu
->s
->root_fid
) {
386 * if the clunked fid is root fid then we
387 * have unmounted the fs on the client side.
388 * delete the migration blocker. Ideally, this
389 * should be hooked to transport close notification
391 if (pdu
->s
->migration_blocker
) {
392 migrate_del_blocker(pdu
->s
->migration_blocker
);
393 error_free(pdu
->s
->migration_blocker
);
394 pdu
->s
->migration_blocker
= NULL
;
397 return free_fid(pdu
, fidp
);
402 static V9fsFidState
*clunk_fid(V9fsState
*s
, int32_t fid
)
404 V9fsFidState
**fidpp
, *fidp
;
406 for (fidpp
= &s
->fid_list
; *fidpp
; fidpp
= &(*fidpp
)->next
) {
407 if ((*fidpp
)->fid
== fid
) {
411 if (*fidpp
== NULL
) {
420 void coroutine_fn
v9fs_reclaim_fd(V9fsPDU
*pdu
)
422 int reclaim_count
= 0;
423 V9fsState
*s
= pdu
->s
;
424 V9fsFidState
*f
, *reclaim_list
= NULL
;
426 for (f
= s
->fid_list
; f
; f
= f
->next
) {
428 * Unlink fids cannot be reclaimed. Check
429 * for them and skip them. Also skip fids
430 * currently being operated on.
432 if (f
->ref
|| f
->flags
& FID_NON_RECLAIMABLE
) {
436 * if it is a recently referenced fid
437 * we leave the fid untouched and clear the
438 * reference bit. We come back to it later
439 * in the next iteration. (a simple LRU without
440 * moving list elements around)
442 if (f
->flags
& FID_REFERENCED
) {
443 f
->flags
&= ~FID_REFERENCED
;
447 * Add fids to reclaim list.
449 if (f
->fid_type
== P9_FID_FILE
) {
450 if (f
->fs
.fd
!= -1) {
452 * Up the reference count so that
453 * a clunk request won't free this fid
456 f
->rclm_lst
= reclaim_list
;
458 f
->fs_reclaim
.fd
= f
->fs
.fd
;
462 } else if (f
->fid_type
== P9_FID_DIR
) {
463 if (f
->fs
.dir
.stream
!= NULL
) {
465 * Up the reference count so that
466 * a clunk request won't free this fid
469 f
->rclm_lst
= reclaim_list
;
471 f
->fs_reclaim
.dir
.stream
= f
->fs
.dir
.stream
;
472 f
->fs
.dir
.stream
= NULL
;
476 if (reclaim_count
>= open_fd_rc
) {
481 * Now close the fid in reclaim list. Free them if they
482 * are already clunked.
484 while (reclaim_list
) {
486 reclaim_list
= f
->rclm_lst
;
487 if (f
->fid_type
== P9_FID_FILE
) {
488 v9fs_co_close(pdu
, &f
->fs_reclaim
);
489 } else if (f
->fid_type
== P9_FID_DIR
) {
490 v9fs_co_closedir(pdu
, &f
->fs_reclaim
);
494 * Now drop the fid reference, free it
501 static int coroutine_fn
v9fs_mark_fids_unreclaim(V9fsPDU
*pdu
, V9fsPath
*path
)
504 V9fsState
*s
= pdu
->s
;
505 V9fsFidState
*fidp
, head_fid
;
507 head_fid
.next
= s
->fid_list
;
508 for (fidp
= s
->fid_list
; fidp
; fidp
= fidp
->next
) {
509 if (fidp
->path
.size
!= path
->size
) {
512 if (!memcmp(fidp
->path
.data
, path
->data
, path
->size
)) {
513 /* Mark the fid non reclaimable. */
514 fidp
->flags
|= FID_NON_RECLAIMABLE
;
516 /* reopen the file/dir if already closed */
517 err
= v9fs_reopen_fid(pdu
, fidp
);
522 * Go back to head of fid list because
523 * the list could have got updated when
524 * switched to the worker thread
534 static void coroutine_fn
virtfs_reset(V9fsPDU
*pdu
)
536 V9fsState
*s
= pdu
->s
;
540 while (s
->fid_list
) {
546 s
->fid_list
= fidp
->next
;
553 #define P9_QID_TYPE_DIR 0x80
554 #define P9_QID_TYPE_SYMLINK 0x02
556 #define P9_STAT_MODE_DIR 0x80000000
557 #define P9_STAT_MODE_APPEND 0x40000000
558 #define P9_STAT_MODE_EXCL 0x20000000
559 #define P9_STAT_MODE_MOUNT 0x10000000
560 #define P9_STAT_MODE_AUTH 0x08000000
561 #define P9_STAT_MODE_TMP 0x04000000
562 #define P9_STAT_MODE_SYMLINK 0x02000000
563 #define P9_STAT_MODE_LINK 0x01000000
564 #define P9_STAT_MODE_DEVICE 0x00800000
565 #define P9_STAT_MODE_NAMED_PIPE 0x00200000
566 #define P9_STAT_MODE_SOCKET 0x00100000
567 #define P9_STAT_MODE_SETUID 0x00080000
568 #define P9_STAT_MODE_SETGID 0x00040000
569 #define P9_STAT_MODE_SETVTX 0x00010000
571 #define P9_STAT_MODE_TYPE_BITS (P9_STAT_MODE_DIR | \
572 P9_STAT_MODE_SYMLINK | \
573 P9_STAT_MODE_LINK | \
574 P9_STAT_MODE_DEVICE | \
575 P9_STAT_MODE_NAMED_PIPE | \
578 /* Mirrors all bits of a byte. So e.g. binary 10100000 would become 00000101. */
579 static inline uint8_t mirror8bit(uint8_t byte
)
581 return (byte
* 0x0202020202ULL
& 0x010884422010ULL
) % 1023;
584 /* Same as mirror8bit() just for a 64 bit data type instead for a byte. */
585 static inline uint64_t mirror64bit(uint64_t value
)
587 return ((uint64_t)mirror8bit(value
& 0xff) << 56) |
588 ((uint64_t)mirror8bit((value
>> 8) & 0xff) << 48) |
589 ((uint64_t)mirror8bit((value
>> 16) & 0xff) << 40) |
590 ((uint64_t)mirror8bit((value
>> 24) & 0xff) << 32) |
591 ((uint64_t)mirror8bit((value
>> 32) & 0xff) << 24) |
592 ((uint64_t)mirror8bit((value
>> 40) & 0xff) << 16) |
593 ((uint64_t)mirror8bit((value
>> 48) & 0xff) << 8) |
594 ((uint64_t)mirror8bit((value
>> 56) & 0xff));
598 * @brief Parameter k for the Exponential Golomb algorihm to be used.
600 * The smaller this value, the smaller the minimum bit count for the Exp.
601 * Golomb generated affixes will be (at lowest index) however for the
602 * price of having higher maximum bit count of generated affixes (at highest
603 * index). Likewise increasing this parameter yields in smaller maximum bit
604 * count for the price of having higher minimum bit count.
606 * In practice that means: a good value for k depends on the expected amount
607 * of devices to be exposed by one export. For a small amount of devices k
608 * should be small, for a large amount of devices k might be increased
609 * instead. The default of k=0 should be fine for most users though.
611 * @b IMPORTANT: In case this ever becomes a runtime parameter; the value of
612 * k should not change as long as guest is still running! Because that would
613 * cause completely different inode numbers to be generated on guest.
615 #define EXP_GOLOMB_K 0
618 * @brief Exponential Golomb algorithm for arbitrary k (including k=0).
620 * The Exponential Golomb algorithm generates @b prefixes (@b not suffixes!)
621 * with growing length and with the mathematical property of being
622 * "prefix-free". The latter means the generated prefixes can be prepended
623 * in front of arbitrary numbers and the resulting concatenated numbers are
624 * guaranteed to be always unique.
626 * This is a minor adjustment to the original Exp. Golomb algorithm in the
627 * sense that lowest allowed index (@param n) starts with 1, not with zero.
629 * @param n - natural number (or index) of the prefix to be generated
631 * @param k - parameter k of Exp. Golomb algorithm to be used
632 * (see comment on EXP_GOLOMB_K macro for details about k)
634 static VariLenAffix
expGolombEncode(uint64_t n
, int k
)
636 const uint64_t value
= n
+ (1 << k
) - 1;
637 const int bits
= (int) log2(value
) + 1;
638 return (VariLenAffix
) {
639 .type
= AffixType_Prefix
,
641 .bits
= bits
+ MAX((bits
- 1 - k
), 0)
646 * @brief Converts a suffix into a prefix, or a prefix into a suffix.
648 * Simply mirror all bits of the affix value, for the purpose to preserve
649 * respectively the mathematical "prefix-free" or "suffix-free" property
650 * after the conversion.
652 * If a passed prefix is suitable to create unique numbers, then the
653 * returned suffix is suitable to create unique numbers as well (and vice
656 static VariLenAffix
invertAffix(const VariLenAffix
*affix
)
658 return (VariLenAffix
) {
660 (affix
->type
== AffixType_Suffix
) ?
661 AffixType_Prefix
: AffixType_Suffix
,
663 mirror64bit(affix
->value
) >>
664 ((sizeof(affix
->value
) * 8) - affix
->bits
),
670 * @brief Generates suffix numbers with "suffix-free" property.
672 * This is just a wrapper function on top of the Exp. Golomb algorithm.
674 * Since the Exp. Golomb algorithm generates prefixes, but we need suffixes,
675 * this function converts the Exp. Golomb prefixes into appropriate suffixes
676 * which are still suitable for generating unique numbers.
678 * @param n - natural number (or index) of the suffix to be generated
681 static VariLenAffix
affixForIndex(uint64_t index
)
684 prefix
= expGolombEncode(index
, EXP_GOLOMB_K
);
685 return invertAffix(&prefix
); /* convert prefix to suffix */
688 /* creative abuse of tb_hash_func7, which is based on xxhash */
689 static uint32_t qpp_hash(QppEntry e
)
691 return qemu_xxhash7(e
.ino_prefix
, e
.dev
, 0, 0, 0);
694 static uint32_t qpf_hash(QpfEntry e
)
696 return qemu_xxhash7(e
.ino
, e
.dev
, 0, 0, 0);
699 static bool qpd_cmp_func(const void *obj
, const void *userp
)
701 const QpdEntry
*e1
= obj
, *e2
= userp
;
702 return e1
->dev
== e2
->dev
;
705 static bool qpp_cmp_func(const void *obj
, const void *userp
)
707 const QppEntry
*e1
= obj
, *e2
= userp
;
708 return e1
->dev
== e2
->dev
&& e1
->ino_prefix
== e2
->ino_prefix
;
711 static bool qpf_cmp_func(const void *obj
, const void *userp
)
713 const QpfEntry
*e1
= obj
, *e2
= userp
;
714 return e1
->dev
== e2
->dev
&& e1
->ino
== e2
->ino
;
717 static void qp_table_remove(void *p
, uint32_t h
, void *up
)
722 static void qp_table_destroy(struct qht
*ht
)
724 if (!ht
|| !ht
->map
) {
727 qht_iter(ht
, qp_table_remove
, NULL
);
731 static void qpd_table_init(struct qht
*ht
)
733 qht_init(ht
, qpd_cmp_func
, 1, QHT_MODE_AUTO_RESIZE
);
736 static void qpp_table_init(struct qht
*ht
)
738 qht_init(ht
, qpp_cmp_func
, 1, QHT_MODE_AUTO_RESIZE
);
741 static void qpf_table_init(struct qht
*ht
)
743 qht_init(ht
, qpf_cmp_func
, 1 << 16, QHT_MODE_AUTO_RESIZE
);
747 * Returns how many (high end) bits of inode numbers of the passed fs
748 * device shall be used (in combination with the device number) to
749 * generate hash values for qpp_table entries.
751 * This function is required if variable length suffixes are used for inode
752 * number mapping on guest level. Since a device may end up having multiple
753 * entries in qpp_table, each entry most probably with a different suffix
754 * length, we thus need this function in conjunction with qpd_table to
755 * "agree" about a fix amount of bits (per device) to be always used for
756 * generating hash values for the purpose of accessing qpp_table in order
757 * get consistent behaviour when accessing qpp_table.
759 static int qid_inode_prefix_hash_bits(V9fsPDU
*pdu
, dev_t dev
)
767 val
= qht_lookup(&pdu
->s
->qpd_table
, &lookup
, hash
);
769 val
= g_malloc0(sizeof(QpdEntry
));
771 affix
= affixForIndex(pdu
->s
->qp_affix_next
);
772 val
->prefix_bits
= affix
.bits
;
773 qht_insert(&pdu
->s
->qpd_table
, val
, hash
, NULL
);
774 pdu
->s
->qp_ndevices
++;
776 return val
->prefix_bits
;
780 * @brief Slow / full mapping host inode nr -> guest inode nr.
782 * This function performs a slower and much more costly remapping of an
783 * original file inode number on host to an appropriate different inode
784 * number on guest. For every (dev, inode) combination on host a new
785 * sequential number is generated, cached and exposed as inode number on
788 * This is just a "last resort" fallback solution if the much faster/cheaper
789 * qid_path_suffixmap() failed. In practice this slow / full mapping is not
790 * expected ever to be used at all though.
792 * @see qid_path_suffixmap() for details
795 static int qid_path_fullmap(V9fsPDU
*pdu
, const struct stat
*stbuf
,
799 .dev
= stbuf
->st_dev
,
802 uint32_t hash
= qpf_hash(lookup
);
805 val
= qht_lookup(&pdu
->s
->qpf_table
, &lookup
, hash
);
808 if (pdu
->s
->qp_fullpath_next
== 0) {
809 /* no more files can be mapped :'( */
811 "9p: No more prefixes available for remapping inodes from "
817 val
= g_malloc0(sizeof(QppEntry
));
820 /* new unique inode and device combo */
821 affix
= affixForIndex(
822 1ULL << (sizeof(pdu
->s
->qp_affix_next
) * 8)
824 val
->path
= (pdu
->s
->qp_fullpath_next
++ << affix
.bits
) | affix
.value
;
825 pdu
->s
->qp_fullpath_next
&= ((1ULL << (64 - affix
.bits
)) - 1);
826 qht_insert(&pdu
->s
->qpf_table
, val
, hash
, NULL
);
834 * @brief Quick mapping host inode nr -> guest inode nr.
836 * This function performs quick remapping of an original file inode number
837 * on host to an appropriate different inode number on guest. This remapping
838 * of inodes is required to avoid inode nr collisions on guest which would
839 * happen if the 9p export contains more than 1 exported file system (or
840 * more than 1 file system data set), because unlike on host level where the
841 * files would have different device nrs, all files exported by 9p would
842 * share the same device nr on guest (the device nr of the virtual 9p device
845 * Inode remapping is performed by chopping off high end bits of the original
846 * inode number from host, shifting the result upwards and then assigning a
847 * generated suffix number for the low end bits, where the same suffix number
848 * will be shared by all inodes with the same device id AND the same high end
849 * bits that have been chopped off. That approach utilizes the fact that inode
850 * numbers very likely share the same high end bits (i.e. due to their common
851 * sequential generation by file systems) and hence we only have to generate
852 * and track a very limited amount of suffixes in practice due to that.
854 * We generate variable size suffixes for that purpose. The 1st generated
855 * suffix will only have 1 bit and hence we only need to chop off 1 bit from
856 * the original inode number. The subsequent suffixes being generated will
857 * grow in (bit) size subsequently, i.e. the 2nd and 3rd suffix being
858 * generated will have 3 bits and hence we have to chop off 3 bits from their
859 * original inodes, and so on. That approach of using variable length suffixes
860 * (i.e. over fixed size ones) utilizes the fact that in practice only a very
861 * limited amount of devices are shared by the same export (e.g. typically
862 * less than 2 dozen devices per 9p export), so in practice we need to chop
863 * off less bits than with fixed size prefixes and yet are flexible to add
864 * new devices at runtime below host's export directory at any time without
865 * having to reboot guest nor requiring to reconfigure guest for that. And due
866 * to the very limited amount of original high end bits that we chop off that
867 * way, the total amount of suffixes we need to generate is less than by using
868 * fixed size prefixes and hence it also improves performance of the inode
869 * remapping algorithm, and finally has the nice side effect that the inode
870 * numbers on guest will be much smaller & human friendly. ;-)
872 static int qid_path_suffixmap(V9fsPDU
*pdu
, const struct stat
*stbuf
,
875 const int ino_hash_bits
= qid_inode_prefix_hash_bits(pdu
, stbuf
->st_dev
);
877 .dev
= stbuf
->st_dev
,
878 .ino_prefix
= (uint16_t) (stbuf
->st_ino
>> (64 - ino_hash_bits
))
880 uint32_t hash
= qpp_hash(lookup
);
882 val
= qht_lookup(&pdu
->s
->qpp_table
, &lookup
, hash
);
885 if (pdu
->s
->qp_affix_next
== 0) {
886 /* we ran out of affixes */
888 "9p: Potential degraded performance of inode remapping"
893 val
= g_malloc0(sizeof(QppEntry
));
896 /* new unique inode affix and device combo */
897 val
->qp_affix_index
= pdu
->s
->qp_affix_next
++;
898 val
->qp_affix
= affixForIndex(val
->qp_affix_index
);
899 qht_insert(&pdu
->s
->qpp_table
, val
, hash
, NULL
);
901 /* assuming generated affix to be suffix type, not prefix */
902 *path
= (stbuf
->st_ino
<< val
->qp_affix
.bits
) | val
->qp_affix
.value
;
906 static int stat_to_qid(V9fsPDU
*pdu
, const struct stat
*stbuf
, V9fsQID
*qidp
)
911 if (pdu
->s
->ctx
.export_flags
& V9FS_REMAP_INODES
) {
912 /* map inode+device to qid path (fast path) */
913 err
= qid_path_suffixmap(pdu
, stbuf
, &qidp
->path
);
914 if (err
== -ENFILE
) {
915 /* fast path didn't work, fall back to full map */
916 err
= qid_path_fullmap(pdu
, stbuf
, &qidp
->path
);
922 if (pdu
->s
->dev_id
!= stbuf
->st_dev
) {
923 if (pdu
->s
->ctx
.export_flags
& V9FS_FORBID_MULTIDEVS
) {
925 "9p: Multiple devices detected in same VirtFS export. "
926 "Access of guest to additional devices is (partly) "
927 "denied due to virtfs option 'multidevs=forbid' being "
933 "9p: Multiple devices detected in same VirtFS export, "
934 "which might lead to file ID collisions and severe "
935 "misbehaviours on guest! You should either use a "
936 "separate export for each device shared from host or "
937 "use virtfs option 'multidevs=remap'!"
941 memset(&qidp
->path
, 0, sizeof(qidp
->path
));
942 size
= MIN(sizeof(stbuf
->st_ino
), sizeof(qidp
->path
));
943 memcpy(&qidp
->path
, &stbuf
->st_ino
, size
);
946 qidp
->version
= stbuf
->st_mtime
^ (stbuf
->st_size
<< 8);
948 if (S_ISDIR(stbuf
->st_mode
)) {
949 qidp
->type
|= P9_QID_TYPE_DIR
;
951 if (S_ISLNK(stbuf
->st_mode
)) {
952 qidp
->type
|= P9_QID_TYPE_SYMLINK
;
958 static int coroutine_fn
fid_to_qid(V9fsPDU
*pdu
, V9fsFidState
*fidp
,
964 err
= v9fs_co_lstat(pdu
, &fidp
->path
, &stbuf
);
968 err
= stat_to_qid(pdu
, &stbuf
, qidp
);
975 static int coroutine_fn
dirent_to_qid(V9fsPDU
*pdu
, V9fsFidState
*fidp
,
976 struct dirent
*dent
, V9fsQID
*qidp
)
982 v9fs_path_init(&path
);
984 err
= v9fs_co_name_to_path(pdu
, &fidp
->path
, dent
->d_name
, &path
);
988 err
= v9fs_co_lstat(pdu
, &path
, &stbuf
);
992 err
= stat_to_qid(pdu
, &stbuf
, qidp
);
995 v9fs_path_free(&path
);
999 V9fsPDU
*pdu_alloc(V9fsState
*s
)
1001 V9fsPDU
*pdu
= NULL
;
1003 if (!QLIST_EMPTY(&s
->free_list
)) {
1004 pdu
= QLIST_FIRST(&s
->free_list
);
1005 QLIST_REMOVE(pdu
, next
);
1006 QLIST_INSERT_HEAD(&s
->active_list
, pdu
, next
);
1011 void pdu_free(V9fsPDU
*pdu
)
1013 V9fsState
*s
= pdu
->s
;
1015 g_assert(!pdu
->cancelled
);
1016 QLIST_REMOVE(pdu
, next
);
1017 QLIST_INSERT_HEAD(&s
->free_list
, pdu
, next
);
1020 static void coroutine_fn
pdu_complete(V9fsPDU
*pdu
, ssize_t len
)
1022 int8_t id
= pdu
->id
+ 1; /* Response */
1023 V9fsState
*s
= pdu
->s
;
1027 * The 9p spec requires that successfully cancelled pdus receive no reply.
1028 * Sending a reply would confuse clients because they would
1029 * assume that any EINTR is the actual result of the operation,
1030 * rather than a consequence of the cancellation. However, if
1031 * the operation completed (succesfully or with an error other
1032 * than caused be cancellation), we do send out that reply, both
1033 * for efficiency and to avoid confusing the rest of the state machine
1034 * that assumes passing a non-error here will mean a successful
1035 * transmission of the reply.
1037 bool discard
= pdu
->cancelled
&& len
== -EINTR
;
1039 trace_v9fs_rcancel(pdu
->tag
, pdu
->id
);
1048 if (s
->proto_version
!= V9FS_PROTO_2000L
) {
1051 str
.data
= strerror(err
);
1052 str
.size
= strlen(str
.data
);
1054 ret
= pdu_marshal(pdu
, len
, "s", &str
);
1062 ret
= pdu_marshal(pdu
, len
, "d", err
);
1068 if (s
->proto_version
== V9FS_PROTO_2000L
) {
1071 trace_v9fs_rerror(pdu
->tag
, pdu
->id
, err
); /* Trace ERROR */
1074 /* fill out the header */
1075 if (pdu_marshal(pdu
, 0, "dbw", (int32_t)len
, id
, pdu
->tag
) < 0) {
1079 /* keep these in sync */
1084 pdu
->s
->transport
->push_and_notify(pdu
);
1086 /* Now wakeup anybody waiting in flush for this request */
1087 if (!qemu_co_queue_next(&pdu
->complete
)) {
1092 static mode_t
v9mode_to_mode(uint32_t mode
, V9fsString
*extension
)
1097 if (mode
& P9_STAT_MODE_DIR
) {
1101 if (mode
& P9_STAT_MODE_SYMLINK
) {
1104 if (mode
& P9_STAT_MODE_SOCKET
) {
1107 if (mode
& P9_STAT_MODE_NAMED_PIPE
) {
1110 if (mode
& P9_STAT_MODE_DEVICE
) {
1111 if (extension
->size
&& extension
->data
[0] == 'c') {
1122 if (mode
& P9_STAT_MODE_SETUID
) {
1125 if (mode
& P9_STAT_MODE_SETGID
) {
1128 if (mode
& P9_STAT_MODE_SETVTX
) {
1135 static int donttouch_stat(V9fsStat
*stat
)
1137 if (stat
->type
== -1 &&
1139 stat
->qid
.type
== 0xff &&
1140 stat
->qid
.version
== (uint32_t) -1 &&
1141 stat
->qid
.path
== (uint64_t) -1 &&
1143 stat
->atime
== -1 &&
1144 stat
->mtime
== -1 &&
1145 stat
->length
== -1 &&
1150 stat
->n_uid
== -1 &&
1151 stat
->n_gid
== -1 &&
1152 stat
->n_muid
== -1) {
1159 static void v9fs_stat_init(V9fsStat
*stat
)
1161 v9fs_string_init(&stat
->name
);
1162 v9fs_string_init(&stat
->uid
);
1163 v9fs_string_init(&stat
->gid
);
1164 v9fs_string_init(&stat
->muid
);
1165 v9fs_string_init(&stat
->extension
);
1168 static void v9fs_stat_free(V9fsStat
*stat
)
1170 v9fs_string_free(&stat
->name
);
1171 v9fs_string_free(&stat
->uid
);
1172 v9fs_string_free(&stat
->gid
);
1173 v9fs_string_free(&stat
->muid
);
1174 v9fs_string_free(&stat
->extension
);
1177 static uint32_t stat_to_v9mode(const struct stat
*stbuf
)
1181 mode
= stbuf
->st_mode
& 0777;
1182 if (S_ISDIR(stbuf
->st_mode
)) {
1183 mode
|= P9_STAT_MODE_DIR
;
1186 if (S_ISLNK(stbuf
->st_mode
)) {
1187 mode
|= P9_STAT_MODE_SYMLINK
;
1190 if (S_ISSOCK(stbuf
->st_mode
)) {
1191 mode
|= P9_STAT_MODE_SOCKET
;
1194 if (S_ISFIFO(stbuf
->st_mode
)) {
1195 mode
|= P9_STAT_MODE_NAMED_PIPE
;
1198 if (S_ISBLK(stbuf
->st_mode
) || S_ISCHR(stbuf
->st_mode
)) {
1199 mode
|= P9_STAT_MODE_DEVICE
;
1202 if (stbuf
->st_mode
& S_ISUID
) {
1203 mode
|= P9_STAT_MODE_SETUID
;
1206 if (stbuf
->st_mode
& S_ISGID
) {
1207 mode
|= P9_STAT_MODE_SETGID
;
1210 if (stbuf
->st_mode
& S_ISVTX
) {
1211 mode
|= P9_STAT_MODE_SETVTX
;
1217 static int coroutine_fn
stat_to_v9stat(V9fsPDU
*pdu
, V9fsPath
*path
,
1218 const char *basename
,
1219 const struct stat
*stbuf
,
1224 memset(v9stat
, 0, sizeof(*v9stat
));
1226 err
= stat_to_qid(pdu
, stbuf
, &v9stat
->qid
);
1230 v9stat
->mode
= stat_to_v9mode(stbuf
);
1231 v9stat
->atime
= stbuf
->st_atime
;
1232 v9stat
->mtime
= stbuf
->st_mtime
;
1233 v9stat
->length
= stbuf
->st_size
;
1235 v9fs_string_free(&v9stat
->uid
);
1236 v9fs_string_free(&v9stat
->gid
);
1237 v9fs_string_free(&v9stat
->muid
);
1239 v9stat
->n_uid
= stbuf
->st_uid
;
1240 v9stat
->n_gid
= stbuf
->st_gid
;
1243 v9fs_string_free(&v9stat
->extension
);
1245 if (v9stat
->mode
& P9_STAT_MODE_SYMLINK
) {
1246 err
= v9fs_co_readlink(pdu
, path
, &v9stat
->extension
);
1250 } else if (v9stat
->mode
& P9_STAT_MODE_DEVICE
) {
1251 v9fs_string_sprintf(&v9stat
->extension
, "%c %u %u",
1252 S_ISCHR(stbuf
->st_mode
) ? 'c' : 'b',
1253 major(stbuf
->st_rdev
), minor(stbuf
->st_rdev
));
1254 } else if (S_ISDIR(stbuf
->st_mode
) || S_ISREG(stbuf
->st_mode
)) {
1255 v9fs_string_sprintf(&v9stat
->extension
, "%s %lu",
1256 "HARDLINKCOUNT", (unsigned long)stbuf
->st_nlink
);
1259 v9fs_string_sprintf(&v9stat
->name
, "%s", basename
);
1262 v9fs_string_size(&v9stat
->name
) +
1263 v9fs_string_size(&v9stat
->uid
) +
1264 v9fs_string_size(&v9stat
->gid
) +
1265 v9fs_string_size(&v9stat
->muid
) +
1266 v9fs_string_size(&v9stat
->extension
);
1270 #define P9_STATS_MODE 0x00000001ULL
1271 #define P9_STATS_NLINK 0x00000002ULL
1272 #define P9_STATS_UID 0x00000004ULL
1273 #define P9_STATS_GID 0x00000008ULL
1274 #define P9_STATS_RDEV 0x00000010ULL
1275 #define P9_STATS_ATIME 0x00000020ULL
1276 #define P9_STATS_MTIME 0x00000040ULL
1277 #define P9_STATS_CTIME 0x00000080ULL
1278 #define P9_STATS_INO 0x00000100ULL
1279 #define P9_STATS_SIZE 0x00000200ULL
1280 #define P9_STATS_BLOCKS 0x00000400ULL
1282 #define P9_STATS_BTIME 0x00000800ULL
1283 #define P9_STATS_GEN 0x00001000ULL
1284 #define P9_STATS_DATA_VERSION 0x00002000ULL
1286 #define P9_STATS_BASIC 0x000007ffULL /* Mask for fields up to BLOCKS */
1287 #define P9_STATS_ALL 0x00003fffULL /* Mask for All fields above */
1290 static int stat_to_v9stat_dotl(V9fsPDU
*pdu
, const struct stat
*stbuf
,
1291 V9fsStatDotl
*v9lstat
)
1293 memset(v9lstat
, 0, sizeof(*v9lstat
));
1295 v9lstat
->st_mode
= stbuf
->st_mode
;
1296 v9lstat
->st_nlink
= stbuf
->st_nlink
;
1297 v9lstat
->st_uid
= stbuf
->st_uid
;
1298 v9lstat
->st_gid
= stbuf
->st_gid
;
1299 v9lstat
->st_rdev
= stbuf
->st_rdev
;
1300 v9lstat
->st_size
= stbuf
->st_size
;
1301 v9lstat
->st_blksize
= stbuf
->st_blksize
;
1302 v9lstat
->st_blocks
= stbuf
->st_blocks
;
1303 v9lstat
->st_atime_sec
= stbuf
->st_atime
;
1304 v9lstat
->st_atime_nsec
= stbuf
->st_atim
.tv_nsec
;
1305 v9lstat
->st_mtime_sec
= stbuf
->st_mtime
;
1306 v9lstat
->st_mtime_nsec
= stbuf
->st_mtim
.tv_nsec
;
1307 v9lstat
->st_ctime_sec
= stbuf
->st_ctime
;
1308 v9lstat
->st_ctime_nsec
= stbuf
->st_ctim
.tv_nsec
;
1309 /* Currently we only support BASIC fields in stat */
1310 v9lstat
->st_result_mask
= P9_STATS_BASIC
;
1312 return stat_to_qid(pdu
, stbuf
, &v9lstat
->qid
);
1315 static void print_sg(struct iovec
*sg
, int cnt
)
1319 printf("sg[%d]: {", cnt
);
1320 for (i
= 0; i
< cnt
; i
++) {
1324 printf("(%p, %zd)", sg
[i
].iov_base
, sg
[i
].iov_len
);
1329 /* Will call this only for path name based fid */
1330 static void v9fs_fix_path(V9fsPath
*dst
, V9fsPath
*src
, int len
)
1333 v9fs_path_init(&str
);
1334 v9fs_path_copy(&str
, dst
);
1335 v9fs_path_sprintf(dst
, "%s%s", src
->data
, str
.data
+ len
);
1336 v9fs_path_free(&str
);
1339 static inline bool is_ro_export(FsContext
*ctx
)
1341 return ctx
->export_flags
& V9FS_RDONLY
;
1344 static void coroutine_fn
v9fs_version(void *opaque
)
1347 V9fsPDU
*pdu
= opaque
;
1348 V9fsState
*s
= pdu
->s
;
1352 v9fs_string_init(&version
);
1353 err
= pdu_unmarshal(pdu
, offset
, "ds", &s
->msize
, &version
);
1357 trace_v9fs_version(pdu
->tag
, pdu
->id
, s
->msize
, version
.data
);
1361 if (!strcmp(version
.data
, "9P2000.u")) {
1362 s
->proto_version
= V9FS_PROTO_2000U
;
1363 } else if (!strcmp(version
.data
, "9P2000.L")) {
1364 s
->proto_version
= V9FS_PROTO_2000L
;
1366 v9fs_string_sprintf(&version
, "unknown");
1367 /* skip min. msize check, reporting invalid version has priority */
1371 if (s
->msize
< P9_MIN_MSIZE
) {
1374 "9pfs: Client requested msize < minimum msize ("
1375 stringify(P9_MIN_MSIZE
) ") supported by this server."
1381 err
= pdu_marshal(pdu
, offset
, "ds", s
->msize
, &version
);
1386 trace_v9fs_version_return(pdu
->tag
, pdu
->id
, s
->msize
, version
.data
);
1388 pdu_complete(pdu
, err
);
1389 v9fs_string_free(&version
);
1392 static void coroutine_fn
v9fs_attach(void *opaque
)
1394 V9fsPDU
*pdu
= opaque
;
1395 V9fsState
*s
= pdu
->s
;
1396 int32_t fid
, afid
, n_uname
;
1397 V9fsString uname
, aname
;
1402 Error
*local_err
= NULL
;
1404 v9fs_string_init(&uname
);
1405 v9fs_string_init(&aname
);
1406 err
= pdu_unmarshal(pdu
, offset
, "ddssd", &fid
,
1407 &afid
, &uname
, &aname
, &n_uname
);
1411 trace_v9fs_attach(pdu
->tag
, pdu
->id
, fid
, afid
, uname
.data
, aname
.data
);
1413 fidp
= alloc_fid(s
, fid
);
1418 fidp
->uid
= n_uname
;
1419 err
= v9fs_co_name_to_path(pdu
, NULL
, "/", &fidp
->path
);
1425 err
= fid_to_qid(pdu
, fidp
, &qid
);
1433 * disable migration if we haven't done already.
1434 * attach could get called multiple times for the same export.
1436 if (!s
->migration_blocker
) {
1437 error_setg(&s
->migration_blocker
,
1438 "Migration is disabled when VirtFS export path '%s' is mounted in the guest using mount_tag '%s'",
1439 s
->ctx
.fs_root
? s
->ctx
.fs_root
: "NULL", s
->tag
);
1440 err
= migrate_add_blocker(s
->migration_blocker
, &local_err
);
1442 error_free(local_err
);
1443 error_free(s
->migration_blocker
);
1444 s
->migration_blocker
= NULL
;
1451 err
= pdu_marshal(pdu
, offset
, "Q", &qid
);
1458 memcpy(&s
->root_qid
, &qid
, sizeof(qid
));
1459 trace_v9fs_attach_return(pdu
->tag
, pdu
->id
,
1460 qid
.type
, qid
.version
, qid
.path
);
1464 pdu_complete(pdu
, err
);
1465 v9fs_string_free(&uname
);
1466 v9fs_string_free(&aname
);
1469 static void coroutine_fn
v9fs_stat(void *opaque
)
1477 V9fsPDU
*pdu
= opaque
;
1480 err
= pdu_unmarshal(pdu
, offset
, "d", &fid
);
1484 trace_v9fs_stat(pdu
->tag
, pdu
->id
, fid
);
1486 fidp
= get_fid(pdu
, fid
);
1491 err
= v9fs_co_lstat(pdu
, &fidp
->path
, &stbuf
);
1495 basename
= g_path_get_basename(fidp
->path
.data
);
1496 err
= stat_to_v9stat(pdu
, &fidp
->path
, basename
, &stbuf
, &v9stat
);
1501 err
= pdu_marshal(pdu
, offset
, "wS", 0, &v9stat
);
1503 v9fs_stat_free(&v9stat
);
1506 trace_v9fs_stat_return(pdu
->tag
, pdu
->id
, v9stat
.mode
,
1507 v9stat
.atime
, v9stat
.mtime
, v9stat
.length
);
1509 v9fs_stat_free(&v9stat
);
1513 pdu_complete(pdu
, err
);
1516 static void coroutine_fn
v9fs_getattr(void *opaque
)
1523 uint64_t request_mask
;
1524 V9fsStatDotl v9stat_dotl
;
1525 V9fsPDU
*pdu
= opaque
;
1527 retval
= pdu_unmarshal(pdu
, offset
, "dq", &fid
, &request_mask
);
1531 trace_v9fs_getattr(pdu
->tag
, pdu
->id
, fid
, request_mask
);
1533 fidp
= get_fid(pdu
, fid
);
1539 * Currently we only support BASIC fields in stat, so there is no
1540 * need to look at request_mask.
1542 retval
= v9fs_co_lstat(pdu
, &fidp
->path
, &stbuf
);
1546 retval
= stat_to_v9stat_dotl(pdu
, &stbuf
, &v9stat_dotl
);
1551 /* fill st_gen if requested and supported by underlying fs */
1552 if (request_mask
& P9_STATS_GEN
) {
1553 retval
= v9fs_co_st_gen(pdu
, &fidp
->path
, stbuf
.st_mode
, &v9stat_dotl
);
1556 /* we have valid st_gen: update result mask */
1557 v9stat_dotl
.st_result_mask
|= P9_STATS_GEN
;
1560 /* request cancelled, e.g. by Tflush */
1563 /* failed to get st_gen: not fatal, ignore */
1567 retval
= pdu_marshal(pdu
, offset
, "A", &v9stat_dotl
);
1572 trace_v9fs_getattr_return(pdu
->tag
, pdu
->id
, v9stat_dotl
.st_result_mask
,
1573 v9stat_dotl
.st_mode
, v9stat_dotl
.st_uid
,
1574 v9stat_dotl
.st_gid
);
1578 pdu_complete(pdu
, retval
);
1581 /* Attribute flags */
1582 #define P9_ATTR_MODE (1 << 0)
1583 #define P9_ATTR_UID (1 << 1)
1584 #define P9_ATTR_GID (1 << 2)
1585 #define P9_ATTR_SIZE (1 << 3)
1586 #define P9_ATTR_ATIME (1 << 4)
1587 #define P9_ATTR_MTIME (1 << 5)
1588 #define P9_ATTR_CTIME (1 << 6)
1589 #define P9_ATTR_ATIME_SET (1 << 7)
1590 #define P9_ATTR_MTIME_SET (1 << 8)
1592 #define P9_ATTR_MASK 127
1594 static void coroutine_fn
v9fs_setattr(void *opaque
)
1601 V9fsPDU
*pdu
= opaque
;
1603 err
= pdu_unmarshal(pdu
, offset
, "dI", &fid
, &v9iattr
);
1608 trace_v9fs_setattr(pdu
->tag
, pdu
->id
, fid
,
1609 v9iattr
.valid
, v9iattr
.mode
, v9iattr
.uid
, v9iattr
.gid
,
1610 v9iattr
.size
, v9iattr
.atime_sec
, v9iattr
.mtime_sec
);
1612 fidp
= get_fid(pdu
, fid
);
1617 if (v9iattr
.valid
& P9_ATTR_MODE
) {
1618 err
= v9fs_co_chmod(pdu
, &fidp
->path
, v9iattr
.mode
);
1623 if (v9iattr
.valid
& (P9_ATTR_ATIME
| P9_ATTR_MTIME
)) {
1624 struct timespec times
[2];
1625 if (v9iattr
.valid
& P9_ATTR_ATIME
) {
1626 if (v9iattr
.valid
& P9_ATTR_ATIME_SET
) {
1627 times
[0].tv_sec
= v9iattr
.atime_sec
;
1628 times
[0].tv_nsec
= v9iattr
.atime_nsec
;
1630 times
[0].tv_nsec
= UTIME_NOW
;
1633 times
[0].tv_nsec
= UTIME_OMIT
;
1635 if (v9iattr
.valid
& P9_ATTR_MTIME
) {
1636 if (v9iattr
.valid
& P9_ATTR_MTIME_SET
) {
1637 times
[1].tv_sec
= v9iattr
.mtime_sec
;
1638 times
[1].tv_nsec
= v9iattr
.mtime_nsec
;
1640 times
[1].tv_nsec
= UTIME_NOW
;
1643 times
[1].tv_nsec
= UTIME_OMIT
;
1645 err
= v9fs_co_utimensat(pdu
, &fidp
->path
, times
);
1651 * If the only valid entry in iattr is ctime we can call
1652 * chown(-1,-1) to update the ctime of the file
1654 if ((v9iattr
.valid
& (P9_ATTR_UID
| P9_ATTR_GID
)) ||
1655 ((v9iattr
.valid
& P9_ATTR_CTIME
)
1656 && !((v9iattr
.valid
& P9_ATTR_MASK
) & ~P9_ATTR_CTIME
))) {
1657 if (!(v9iattr
.valid
& P9_ATTR_UID
)) {
1660 if (!(v9iattr
.valid
& P9_ATTR_GID
)) {
1663 err
= v9fs_co_chown(pdu
, &fidp
->path
, v9iattr
.uid
,
1669 if (v9iattr
.valid
& (P9_ATTR_SIZE
)) {
1670 err
= v9fs_co_truncate(pdu
, &fidp
->path
, v9iattr
.size
);
1676 trace_v9fs_setattr_return(pdu
->tag
, pdu
->id
);
1680 pdu_complete(pdu
, err
);
1683 static int v9fs_walk_marshal(V9fsPDU
*pdu
, uint16_t nwnames
, V9fsQID
*qids
)
1689 err
= pdu_marshal(pdu
, offset
, "w", nwnames
);
1694 for (i
= 0; i
< nwnames
; i
++) {
1695 err
= pdu_marshal(pdu
, offset
, "Q", &qids
[i
]);
1704 static bool name_is_illegal(const char *name
)
1706 return !*name
|| strchr(name
, '/') != NULL
;
1709 static bool not_same_qid(const V9fsQID
*qid1
, const V9fsQID
*qid2
)
1712 qid1
->type
!= qid2
->type
||
1713 qid1
->version
!= qid2
->version
||
1714 qid1
->path
!= qid2
->path
;
1717 static void coroutine_fn
v9fs_walk(void *opaque
)
1720 V9fsQID
*qids
= NULL
;
1722 V9fsPath dpath
, path
;
1726 int32_t fid
, newfid
;
1727 V9fsString
*wnames
= NULL
;
1729 V9fsFidState
*newfidp
= NULL
;
1730 V9fsPDU
*pdu
= opaque
;
1731 V9fsState
*s
= pdu
->s
;
1734 err
= pdu_unmarshal(pdu
, offset
, "ddw", &fid
, &newfid
, &nwnames
);
1736 pdu_complete(pdu
, err
);
1741 trace_v9fs_walk(pdu
->tag
, pdu
->id
, fid
, newfid
, nwnames
);
1743 if (nwnames
&& nwnames
<= P9_MAXWELEM
) {
1744 wnames
= g_new0(V9fsString
, nwnames
);
1745 qids
= g_new0(V9fsQID
, nwnames
);
1746 for (i
= 0; i
< nwnames
; i
++) {
1747 err
= pdu_unmarshal(pdu
, offset
, "s", &wnames
[i
]);
1751 if (name_is_illegal(wnames
[i
].data
)) {
1757 } else if (nwnames
> P9_MAXWELEM
) {
1761 fidp
= get_fid(pdu
, fid
);
1767 v9fs_path_init(&dpath
);
1768 v9fs_path_init(&path
);
1770 err
= fid_to_qid(pdu
, fidp
, &qid
);
1776 * Both dpath and path initially poin to fidp.
1777 * Needed to handle request with nwnames == 0
1779 v9fs_path_copy(&dpath
, &fidp
->path
);
1780 v9fs_path_copy(&path
, &fidp
->path
);
1781 for (name_idx
= 0; name_idx
< nwnames
; name_idx
++) {
1782 if (not_same_qid(&pdu
->s
->root_qid
, &qid
) ||
1783 strcmp("..", wnames
[name_idx
].data
)) {
1784 err
= v9fs_co_name_to_path(pdu
, &dpath
, wnames
[name_idx
].data
,
1790 err
= v9fs_co_lstat(pdu
, &path
, &stbuf
);
1794 err
= stat_to_qid(pdu
, &stbuf
, &qid
);
1798 v9fs_path_copy(&dpath
, &path
);
1800 memcpy(&qids
[name_idx
], &qid
, sizeof(qid
));
1802 if (fid
== newfid
) {
1803 if (fidp
->fid_type
!= P9_FID_NONE
) {
1807 v9fs_path_write_lock(s
);
1808 v9fs_path_copy(&fidp
->path
, &path
);
1809 v9fs_path_unlock(s
);
1811 newfidp
= alloc_fid(s
, newfid
);
1812 if (newfidp
== NULL
) {
1816 newfidp
->uid
= fidp
->uid
;
1817 v9fs_path_copy(&newfidp
->path
, &path
);
1819 err
= v9fs_walk_marshal(pdu
, nwnames
, qids
);
1820 trace_v9fs_walk_return(pdu
->tag
, pdu
->id
, nwnames
, qids
);
1824 put_fid(pdu
, newfidp
);
1826 v9fs_path_free(&dpath
);
1827 v9fs_path_free(&path
);
1829 pdu_complete(pdu
, err
);
1830 if (nwnames
&& nwnames
<= P9_MAXWELEM
) {
1831 for (name_idx
= 0; name_idx
< nwnames
; name_idx
++) {
1832 v9fs_string_free(&wnames
[name_idx
]);
1839 static int32_t coroutine_fn
get_iounit(V9fsPDU
*pdu
, V9fsPath
*path
)
1841 struct statfs stbuf
;
1843 V9fsState
*s
= pdu
->s
;
1846 * iounit should be multiples of f_bsize (host filesystem block size
1847 * and as well as less than (client msize - P9_IOHDRSZ))
1849 if (!v9fs_co_statfs(pdu
, path
, &stbuf
)) {
1850 if (stbuf
.f_bsize
) {
1851 iounit
= stbuf
.f_bsize
;
1852 iounit
*= (s
->msize
- P9_IOHDRSZ
) / stbuf
.f_bsize
;
1856 iounit
= s
->msize
- P9_IOHDRSZ
;
1861 static void coroutine_fn
v9fs_open(void *opaque
)
1872 V9fsPDU
*pdu
= opaque
;
1873 V9fsState
*s
= pdu
->s
;
1875 if (s
->proto_version
== V9FS_PROTO_2000L
) {
1876 err
= pdu_unmarshal(pdu
, offset
, "dd", &fid
, &mode
);
1879 err
= pdu_unmarshal(pdu
, offset
, "db", &fid
, &modebyte
);
1885 trace_v9fs_open(pdu
->tag
, pdu
->id
, fid
, mode
);
1887 fidp
= get_fid(pdu
, fid
);
1892 if (fidp
->fid_type
!= P9_FID_NONE
) {
1897 err
= v9fs_co_lstat(pdu
, &fidp
->path
, &stbuf
);
1901 err
= stat_to_qid(pdu
, &stbuf
, &qid
);
1905 if (S_ISDIR(stbuf
.st_mode
)) {
1906 err
= v9fs_co_opendir(pdu
, fidp
);
1910 fidp
->fid_type
= P9_FID_DIR
;
1911 err
= pdu_marshal(pdu
, offset
, "Qd", &qid
, 0);
1917 if (s
->proto_version
== V9FS_PROTO_2000L
) {
1918 flags
= get_dotl_openflags(s
, mode
);
1920 flags
= omode_to_uflags(mode
);
1922 if (is_ro_export(&s
->ctx
)) {
1923 if (mode
& O_WRONLY
|| mode
& O_RDWR
||
1924 mode
& O_APPEND
|| mode
& O_TRUNC
) {
1929 err
= v9fs_co_open(pdu
, fidp
, flags
);
1933 fidp
->fid_type
= P9_FID_FILE
;
1934 fidp
->open_flags
= flags
;
1935 if (flags
& O_EXCL
) {
1937 * We let the host file system do O_EXCL check
1938 * We should not reclaim such fd
1940 fidp
->flags
|= FID_NON_RECLAIMABLE
;
1942 iounit
= get_iounit(pdu
, &fidp
->path
);
1943 err
= pdu_marshal(pdu
, offset
, "Qd", &qid
, iounit
);
1949 trace_v9fs_open_return(pdu
->tag
, pdu
->id
,
1950 qid
.type
, qid
.version
, qid
.path
, iounit
);
1954 pdu_complete(pdu
, err
);
1957 static void coroutine_fn
v9fs_lcreate(void *opaque
)
1959 int32_t dfid
, flags
, mode
;
1968 V9fsPDU
*pdu
= opaque
;
1970 v9fs_string_init(&name
);
1971 err
= pdu_unmarshal(pdu
, offset
, "dsddd", &dfid
,
1972 &name
, &flags
, &mode
, &gid
);
1976 trace_v9fs_lcreate(pdu
->tag
, pdu
->id
, dfid
, flags
, mode
, gid
);
1978 if (name_is_illegal(name
.data
)) {
1983 if (!strcmp(".", name
.data
) || !strcmp("..", name
.data
)) {
1988 fidp
= get_fid(pdu
, dfid
);
1993 if (fidp
->fid_type
!= P9_FID_NONE
) {
1998 flags
= get_dotl_openflags(pdu
->s
, flags
);
1999 err
= v9fs_co_open2(pdu
, fidp
, &name
, gid
,
2000 flags
| O_CREAT
, mode
, &stbuf
);
2004 fidp
->fid_type
= P9_FID_FILE
;
2005 fidp
->open_flags
= flags
;
2006 if (flags
& O_EXCL
) {
2008 * We let the host file system do O_EXCL check
2009 * We should not reclaim such fd
2011 fidp
->flags
|= FID_NON_RECLAIMABLE
;
2013 iounit
= get_iounit(pdu
, &fidp
->path
);
2014 err
= stat_to_qid(pdu
, &stbuf
, &qid
);
2018 err
= pdu_marshal(pdu
, offset
, "Qd", &qid
, iounit
);
2023 trace_v9fs_lcreate_return(pdu
->tag
, pdu
->id
,
2024 qid
.type
, qid
.version
, qid
.path
, iounit
);
2028 pdu_complete(pdu
, err
);
2029 v9fs_string_free(&name
);
2032 static void coroutine_fn
v9fs_fsync(void *opaque
)
2039 V9fsPDU
*pdu
= opaque
;
2041 err
= pdu_unmarshal(pdu
, offset
, "dd", &fid
, &datasync
);
2045 trace_v9fs_fsync(pdu
->tag
, pdu
->id
, fid
, datasync
);
2047 fidp
= get_fid(pdu
, fid
);
2052 err
= v9fs_co_fsync(pdu
, fidp
, datasync
);
2058 pdu_complete(pdu
, err
);
2061 static void coroutine_fn
v9fs_clunk(void *opaque
)
2067 V9fsPDU
*pdu
= opaque
;
2068 V9fsState
*s
= pdu
->s
;
2070 err
= pdu_unmarshal(pdu
, offset
, "d", &fid
);
2074 trace_v9fs_clunk(pdu
->tag
, pdu
->id
, fid
);
2076 fidp
= clunk_fid(s
, fid
);
2082 * Bump the ref so that put_fid will
2086 err
= put_fid(pdu
, fidp
);
2091 pdu_complete(pdu
, err
);
2095 * Create a QEMUIOVector for a sub-region of PDU iovecs
2097 * @qiov: uninitialized QEMUIOVector
2098 * @skip: number of bytes to skip from beginning of PDU
2099 * @size: number of bytes to include
2100 * @is_write: true - write, false - read
2102 * The resulting QEMUIOVector has heap-allocated iovecs and must be cleaned up
2103 * with qemu_iovec_destroy().
2105 static void v9fs_init_qiov_from_pdu(QEMUIOVector
*qiov
, V9fsPDU
*pdu
,
2106 size_t skip
, size_t size
,
2114 pdu
->s
->transport
->init_out_iov_from_pdu(pdu
, &iov
, &niov
, size
+ skip
);
2116 pdu
->s
->transport
->init_in_iov_from_pdu(pdu
, &iov
, &niov
, size
+ skip
);
2119 qemu_iovec_init_external(&elem
, iov
, niov
);
2120 qemu_iovec_init(qiov
, niov
);
2121 qemu_iovec_concat(qiov
, &elem
, skip
, size
);
2124 static int v9fs_xattr_read(V9fsState
*s
, V9fsPDU
*pdu
, V9fsFidState
*fidp
,
2125 uint64_t off
, uint32_t max_count
)
2129 uint64_t read_count
;
2130 QEMUIOVector qiov_full
;
2132 if (fidp
->fs
.xattr
.len
< off
) {
2135 read_count
= fidp
->fs
.xattr
.len
- off
;
2137 if (read_count
> max_count
) {
2138 read_count
= max_count
;
2140 err
= pdu_marshal(pdu
, offset
, "d", read_count
);
2146 v9fs_init_qiov_from_pdu(&qiov_full
, pdu
, offset
, read_count
, false);
2147 err
= v9fs_pack(qiov_full
.iov
, qiov_full
.niov
, 0,
2148 ((char *)fidp
->fs
.xattr
.value
) + off
,
2150 qemu_iovec_destroy(&qiov_full
);
2158 static int coroutine_fn
v9fs_do_readdir_with_stat(V9fsPDU
*pdu
,
2167 off_t saved_dir_pos
;
2168 struct dirent
*dent
;
2170 /* save the directory position */
2171 saved_dir_pos
= v9fs_co_telldir(pdu
, fidp
);
2172 if (saved_dir_pos
< 0) {
2173 return saved_dir_pos
;
2177 v9fs_path_init(&path
);
2179 v9fs_readdir_lock(&fidp
->fs
.dir
);
2181 err
= v9fs_co_readdir(pdu
, fidp
, &dent
);
2185 err
= v9fs_co_name_to_path(pdu
, &fidp
->path
, dent
->d_name
, &path
);
2189 err
= v9fs_co_lstat(pdu
, &path
, &stbuf
);
2193 err
= stat_to_v9stat(pdu
, &path
, dent
->d_name
, &stbuf
, &v9stat
);
2197 if ((count
+ v9stat
.size
+ 2) > max_count
) {
2198 v9fs_readdir_unlock(&fidp
->fs
.dir
);
2200 /* Ran out of buffer. Set dir back to old position and return */
2201 v9fs_co_seekdir(pdu
, fidp
, saved_dir_pos
);
2202 v9fs_stat_free(&v9stat
);
2203 v9fs_path_free(&path
);
2207 /* 11 = 7 + 4 (7 = start offset, 4 = space for storing count) */
2208 len
= pdu_marshal(pdu
, 11 + count
, "S", &v9stat
);
2210 v9fs_readdir_unlock(&fidp
->fs
.dir
);
2213 v9fs_co_seekdir(pdu
, fidp
, saved_dir_pos
);
2214 v9fs_stat_free(&v9stat
);
2215 v9fs_path_free(&path
);
2219 v9fs_stat_free(&v9stat
);
2220 v9fs_path_free(&path
);
2221 saved_dir_pos
= dent
->d_off
;
2224 v9fs_readdir_unlock(&fidp
->fs
.dir
);
2226 v9fs_path_free(&path
);
2233 static void coroutine_fn
v9fs_read(void *opaque
)
2242 V9fsPDU
*pdu
= opaque
;
2243 V9fsState
*s
= pdu
->s
;
2245 err
= pdu_unmarshal(pdu
, offset
, "dqd", &fid
, &off
, &max_count
);
2249 trace_v9fs_read(pdu
->tag
, pdu
->id
, fid
, off
, max_count
);
2251 fidp
= get_fid(pdu
, fid
);
2256 if (fidp
->fid_type
== P9_FID_DIR
) {
2259 v9fs_co_rewinddir(pdu
, fidp
);
2261 count
= v9fs_do_readdir_with_stat(pdu
, fidp
, max_count
);
2266 err
= pdu_marshal(pdu
, offset
, "d", count
);
2270 err
+= offset
+ count
;
2271 } else if (fidp
->fid_type
== P9_FID_FILE
) {
2272 QEMUIOVector qiov_full
;
2276 v9fs_init_qiov_from_pdu(&qiov_full
, pdu
, offset
+ 4, max_count
, false);
2277 qemu_iovec_init(&qiov
, qiov_full
.niov
);
2279 qemu_iovec_reset(&qiov
);
2280 qemu_iovec_concat(&qiov
, &qiov_full
, count
, qiov_full
.size
- count
);
2282 print_sg(qiov
.iov
, qiov
.niov
);
2284 /* Loop in case of EINTR */
2286 len
= v9fs_co_preadv(pdu
, fidp
, qiov
.iov
, qiov
.niov
, off
);
2291 } while (len
== -EINTR
&& !pdu
->cancelled
);
2293 /* IO error return the error */
2295 goto out_free_iovec
;
2297 } while (count
< max_count
&& len
> 0);
2298 err
= pdu_marshal(pdu
, offset
, "d", count
);
2300 goto out_free_iovec
;
2302 err
+= offset
+ count
;
2304 qemu_iovec_destroy(&qiov
);
2305 qemu_iovec_destroy(&qiov_full
);
2306 } else if (fidp
->fid_type
== P9_FID_XATTR
) {
2307 err
= v9fs_xattr_read(s
, pdu
, fidp
, off
, max_count
);
2311 trace_v9fs_read_return(pdu
->tag
, pdu
->id
, count
, err
);
2315 pdu_complete(pdu
, err
);
2318 static size_t v9fs_readdir_data_size(V9fsString
*name
)
2321 * Size of each dirent on the wire: size of qid (13) + size of offset (8)
2322 * size of type (1) + size of name.size (2) + strlen(name.data)
2324 return 24 + v9fs_string_size(name
);
2327 static int coroutine_fn
v9fs_do_readdir(V9fsPDU
*pdu
, V9fsFidState
*fidp
,
2335 off_t saved_dir_pos
;
2336 struct dirent
*dent
;
2338 /* save the directory position */
2339 saved_dir_pos
= v9fs_co_telldir(pdu
, fidp
);
2340 if (saved_dir_pos
< 0) {
2341 return saved_dir_pos
;
2345 v9fs_readdir_lock(&fidp
->fs
.dir
);
2347 err
= v9fs_co_readdir(pdu
, fidp
, &dent
);
2351 v9fs_string_init(&name
);
2352 v9fs_string_sprintf(&name
, "%s", dent
->d_name
);
2353 if ((count
+ v9fs_readdir_data_size(&name
)) > max_count
) {
2354 v9fs_readdir_unlock(&fidp
->fs
.dir
);
2356 /* Ran out of buffer. Set dir back to old position and return */
2357 v9fs_co_seekdir(pdu
, fidp
, saved_dir_pos
);
2358 v9fs_string_free(&name
);
2362 if (pdu
->s
->ctx
.export_flags
& V9FS_REMAP_INODES
) {
2364 * dirent_to_qid() implies expensive stat call for each entry,
2365 * we must do that here though since inode remapping requires
2366 * the device id, which in turn might be different for
2367 * different entries; we cannot make any assumption to avoid
2370 err
= dirent_to_qid(pdu
, fidp
, dent
, &qid
);
2372 v9fs_readdir_unlock(&fidp
->fs
.dir
);
2373 v9fs_co_seekdir(pdu
, fidp
, saved_dir_pos
);
2374 v9fs_string_free(&name
);
2379 * Fill up just the path field of qid because the client uses
2380 * only that. To fill the entire qid structure we will have
2381 * to stat each dirent found, which is expensive. For the
2382 * latter reason we don't call dirent_to_qid() here. Only drawback
2383 * is that no multi-device export detection of stat_to_qid()
2384 * would be done and provided as error to the user here. But
2385 * user would get that error anyway when accessing those
2386 * files/dirs through other ways.
2388 size
= MIN(sizeof(dent
->d_ino
), sizeof(qid
.path
));
2389 memcpy(&qid
.path
, &dent
->d_ino
, size
);
2390 /* Fill the other fields with dummy values */
2395 /* 11 = 7 + 4 (7 = start offset, 4 = space for storing count) */
2396 len
= pdu_marshal(pdu
, 11 + count
, "Qqbs",
2398 dent
->d_type
, &name
);
2400 v9fs_readdir_unlock(&fidp
->fs
.dir
);
2403 v9fs_co_seekdir(pdu
, fidp
, saved_dir_pos
);
2404 v9fs_string_free(&name
);
2408 v9fs_string_free(&name
);
2409 saved_dir_pos
= dent
->d_off
;
2412 v9fs_readdir_unlock(&fidp
->fs
.dir
);
2420 static void coroutine_fn
v9fs_readdir(void *opaque
)
2426 uint64_t initial_offset
;
2429 V9fsPDU
*pdu
= opaque
;
2430 V9fsState
*s
= pdu
->s
;
2432 retval
= pdu_unmarshal(pdu
, offset
, "dqd", &fid
,
2433 &initial_offset
, &max_count
);
2437 trace_v9fs_readdir(pdu
->tag
, pdu
->id
, fid
, initial_offset
, max_count
);
2439 /* Enough space for a R_readdir header: size[4] Rreaddir tag[2] count[4] */
2440 if (max_count
> s
->msize
- 11) {
2441 max_count
= s
->msize
- 11;
2443 "9p: bad client: T_readdir with count > msize - 11"
2447 fidp
= get_fid(pdu
, fid
);
2452 if (!fidp
->fs
.dir
.stream
) {
2456 if (initial_offset
== 0) {
2457 v9fs_co_rewinddir(pdu
, fidp
);
2459 v9fs_co_seekdir(pdu
, fidp
, initial_offset
);
2461 count
= v9fs_do_readdir(pdu
, fidp
, max_count
);
2466 retval
= pdu_marshal(pdu
, offset
, "d", count
);
2470 retval
+= count
+ offset
;
2471 trace_v9fs_readdir_return(pdu
->tag
, pdu
->id
, count
, retval
);
2475 pdu_complete(pdu
, retval
);
2478 static int v9fs_xattr_write(V9fsState
*s
, V9fsPDU
*pdu
, V9fsFidState
*fidp
,
2479 uint64_t off
, uint32_t count
,
2480 struct iovec
*sg
, int cnt
)
2484 uint64_t write_count
;
2488 if (fidp
->fs
.xattr
.len
< off
) {
2491 write_count
= fidp
->fs
.xattr
.len
- off
;
2492 if (write_count
> count
) {
2493 write_count
= count
;
2495 err
= pdu_marshal(pdu
, offset
, "d", write_count
);
2500 fidp
->fs
.xattr
.copied_len
+= write_count
;
2502 * Now copy the content from sg list
2504 for (i
= 0; i
< cnt
; i
++) {
2505 if (write_count
> sg
[i
].iov_len
) {
2506 to_copy
= sg
[i
].iov_len
;
2508 to_copy
= write_count
;
2510 memcpy((char *)fidp
->fs
.xattr
.value
+ off
, sg
[i
].iov_base
, to_copy
);
2511 /* updating vs->off since we are not using below */
2513 write_count
-= to_copy
;
2519 static void coroutine_fn
v9fs_write(void *opaque
)
2529 V9fsPDU
*pdu
= opaque
;
2530 V9fsState
*s
= pdu
->s
;
2531 QEMUIOVector qiov_full
;
2534 err
= pdu_unmarshal(pdu
, offset
, "dqd", &fid
, &off
, &count
);
2536 pdu_complete(pdu
, err
);
2540 v9fs_init_qiov_from_pdu(&qiov_full
, pdu
, offset
, count
, true);
2541 trace_v9fs_write(pdu
->tag
, pdu
->id
, fid
, off
, count
, qiov_full
.niov
);
2543 fidp
= get_fid(pdu
, fid
);
2548 if (fidp
->fid_type
== P9_FID_FILE
) {
2549 if (fidp
->fs
.fd
== -1) {
2553 } else if (fidp
->fid_type
== P9_FID_XATTR
) {
2555 * setxattr operation
2557 err
= v9fs_xattr_write(s
, pdu
, fidp
, off
, count
,
2558 qiov_full
.iov
, qiov_full
.niov
);
2564 qemu_iovec_init(&qiov
, qiov_full
.niov
);
2566 qemu_iovec_reset(&qiov
);
2567 qemu_iovec_concat(&qiov
, &qiov_full
, total
, qiov_full
.size
- total
);
2569 print_sg(qiov
.iov
, qiov
.niov
);
2571 /* Loop in case of EINTR */
2573 len
= v9fs_co_pwritev(pdu
, fidp
, qiov
.iov
, qiov
.niov
, off
);
2578 } while (len
== -EINTR
&& !pdu
->cancelled
);
2580 /* IO error return the error */
2584 } while (total
< count
&& len
> 0);
2587 err
= pdu_marshal(pdu
, offset
, "d", total
);
2592 trace_v9fs_write_return(pdu
->tag
, pdu
->id
, total
, err
);
2594 qemu_iovec_destroy(&qiov
);
2598 qemu_iovec_destroy(&qiov_full
);
2599 pdu_complete(pdu
, err
);
2602 static void coroutine_fn
v9fs_create(void *opaque
)
2614 V9fsString extension
;
2616 V9fsPDU
*pdu
= opaque
;
2617 V9fsState
*s
= pdu
->s
;
2619 v9fs_path_init(&path
);
2620 v9fs_string_init(&name
);
2621 v9fs_string_init(&extension
);
2622 err
= pdu_unmarshal(pdu
, offset
, "dsdbs", &fid
, &name
,
2623 &perm
, &mode
, &extension
);
2627 trace_v9fs_create(pdu
->tag
, pdu
->id
, fid
, name
.data
, perm
, mode
);
2629 if (name_is_illegal(name
.data
)) {
2634 if (!strcmp(".", name
.data
) || !strcmp("..", name
.data
)) {
2639 fidp
= get_fid(pdu
, fid
);
2644 if (fidp
->fid_type
!= P9_FID_NONE
) {
2648 if (perm
& P9_STAT_MODE_DIR
) {
2649 err
= v9fs_co_mkdir(pdu
, fidp
, &name
, perm
& 0777,
2650 fidp
->uid
, -1, &stbuf
);
2654 err
= v9fs_co_name_to_path(pdu
, &fidp
->path
, name
.data
, &path
);
2658 v9fs_path_write_lock(s
);
2659 v9fs_path_copy(&fidp
->path
, &path
);
2660 v9fs_path_unlock(s
);
2661 err
= v9fs_co_opendir(pdu
, fidp
);
2665 fidp
->fid_type
= P9_FID_DIR
;
2666 } else if (perm
& P9_STAT_MODE_SYMLINK
) {
2667 err
= v9fs_co_symlink(pdu
, fidp
, &name
,
2668 extension
.data
, -1 , &stbuf
);
2672 err
= v9fs_co_name_to_path(pdu
, &fidp
->path
, name
.data
, &path
);
2676 v9fs_path_write_lock(s
);
2677 v9fs_path_copy(&fidp
->path
, &path
);
2678 v9fs_path_unlock(s
);
2679 } else if (perm
& P9_STAT_MODE_LINK
) {
2680 int32_t ofid
= atoi(extension
.data
);
2681 V9fsFidState
*ofidp
= get_fid(pdu
, ofid
);
2682 if (ofidp
== NULL
) {
2686 err
= v9fs_co_link(pdu
, ofidp
, fidp
, &name
);
2687 put_fid(pdu
, ofidp
);
2691 err
= v9fs_co_name_to_path(pdu
, &fidp
->path
, name
.data
, &path
);
2693 fidp
->fid_type
= P9_FID_NONE
;
2696 v9fs_path_write_lock(s
);
2697 v9fs_path_copy(&fidp
->path
, &path
);
2698 v9fs_path_unlock(s
);
2699 err
= v9fs_co_lstat(pdu
, &fidp
->path
, &stbuf
);
2701 fidp
->fid_type
= P9_FID_NONE
;
2704 } else if (perm
& P9_STAT_MODE_DEVICE
) {
2706 uint32_t major
, minor
;
2709 if (sscanf(extension
.data
, "%c %u %u", &ctype
, &major
, &minor
) != 3) {
2726 nmode
|= perm
& 0777;
2727 err
= v9fs_co_mknod(pdu
, fidp
, &name
, fidp
->uid
, -1,
2728 makedev(major
, minor
), nmode
, &stbuf
);
2732 err
= v9fs_co_name_to_path(pdu
, &fidp
->path
, name
.data
, &path
);
2736 v9fs_path_write_lock(s
);
2737 v9fs_path_copy(&fidp
->path
, &path
);
2738 v9fs_path_unlock(s
);
2739 } else if (perm
& P9_STAT_MODE_NAMED_PIPE
) {
2740 err
= v9fs_co_mknod(pdu
, fidp
, &name
, fidp
->uid
, -1,
2741 0, S_IFIFO
| (perm
& 0777), &stbuf
);
2745 err
= v9fs_co_name_to_path(pdu
, &fidp
->path
, name
.data
, &path
);
2749 v9fs_path_write_lock(s
);
2750 v9fs_path_copy(&fidp
->path
, &path
);
2751 v9fs_path_unlock(s
);
2752 } else if (perm
& P9_STAT_MODE_SOCKET
) {
2753 err
= v9fs_co_mknod(pdu
, fidp
, &name
, fidp
->uid
, -1,
2754 0, S_IFSOCK
| (perm
& 0777), &stbuf
);
2758 err
= v9fs_co_name_to_path(pdu
, &fidp
->path
, name
.data
, &path
);
2762 v9fs_path_write_lock(s
);
2763 v9fs_path_copy(&fidp
->path
, &path
);
2764 v9fs_path_unlock(s
);
2766 err
= v9fs_co_open2(pdu
, fidp
, &name
, -1,
2767 omode_to_uflags(mode
)|O_CREAT
, perm
, &stbuf
);
2771 fidp
->fid_type
= P9_FID_FILE
;
2772 fidp
->open_flags
= omode_to_uflags(mode
);
2773 if (fidp
->open_flags
& O_EXCL
) {
2775 * We let the host file system do O_EXCL check
2776 * We should not reclaim such fd
2778 fidp
->flags
|= FID_NON_RECLAIMABLE
;
2781 iounit
= get_iounit(pdu
, &fidp
->path
);
2782 err
= stat_to_qid(pdu
, &stbuf
, &qid
);
2786 err
= pdu_marshal(pdu
, offset
, "Qd", &qid
, iounit
);
2791 trace_v9fs_create_return(pdu
->tag
, pdu
->id
,
2792 qid
.type
, qid
.version
, qid
.path
, iounit
);
2796 pdu_complete(pdu
, err
);
2797 v9fs_string_free(&name
);
2798 v9fs_string_free(&extension
);
2799 v9fs_path_free(&path
);
2802 static void coroutine_fn
v9fs_symlink(void *opaque
)
2804 V9fsPDU
*pdu
= opaque
;
2807 V9fsFidState
*dfidp
;
2815 v9fs_string_init(&name
);
2816 v9fs_string_init(&symname
);
2817 err
= pdu_unmarshal(pdu
, offset
, "dssd", &dfid
, &name
, &symname
, &gid
);
2821 trace_v9fs_symlink(pdu
->tag
, pdu
->id
, dfid
, name
.data
, symname
.data
, gid
);
2823 if (name_is_illegal(name
.data
)) {
2828 if (!strcmp(".", name
.data
) || !strcmp("..", name
.data
)) {
2833 dfidp
= get_fid(pdu
, dfid
);
2834 if (dfidp
== NULL
) {
2838 err
= v9fs_co_symlink(pdu
, dfidp
, &name
, symname
.data
, gid
, &stbuf
);
2842 err
= stat_to_qid(pdu
, &stbuf
, &qid
);
2846 err
= pdu_marshal(pdu
, offset
, "Q", &qid
);
2851 trace_v9fs_symlink_return(pdu
->tag
, pdu
->id
,
2852 qid
.type
, qid
.version
, qid
.path
);
2854 put_fid(pdu
, dfidp
);
2856 pdu_complete(pdu
, err
);
2857 v9fs_string_free(&name
);
2858 v9fs_string_free(&symname
);
2861 static void coroutine_fn
v9fs_flush(void *opaque
)
2866 V9fsPDU
*cancel_pdu
= NULL
;
2867 V9fsPDU
*pdu
= opaque
;
2868 V9fsState
*s
= pdu
->s
;
2870 err
= pdu_unmarshal(pdu
, offset
, "w", &tag
);
2872 pdu_complete(pdu
, err
);
2875 trace_v9fs_flush(pdu
->tag
, pdu
->id
, tag
);
2877 if (pdu
->tag
== tag
) {
2878 warn_report("the guest sent a self-referencing 9P flush request");
2880 QLIST_FOREACH(cancel_pdu
, &s
->active_list
, next
) {
2881 if (cancel_pdu
->tag
== tag
) {
2887 cancel_pdu
->cancelled
= 1;
2889 * Wait for pdu to complete.
2891 qemu_co_queue_wait(&cancel_pdu
->complete
, NULL
);
2892 if (!qemu_co_queue_next(&cancel_pdu
->complete
)) {
2893 cancel_pdu
->cancelled
= 0;
2894 pdu_free(cancel_pdu
);
2897 pdu_complete(pdu
, 7);
2900 static void coroutine_fn
v9fs_link(void *opaque
)
2902 V9fsPDU
*pdu
= opaque
;
2903 int32_t dfid
, oldfid
;
2904 V9fsFidState
*dfidp
, *oldfidp
;
2909 v9fs_string_init(&name
);
2910 err
= pdu_unmarshal(pdu
, offset
, "dds", &dfid
, &oldfid
, &name
);
2914 trace_v9fs_link(pdu
->tag
, pdu
->id
, dfid
, oldfid
, name
.data
);
2916 if (name_is_illegal(name
.data
)) {
2921 if (!strcmp(".", name
.data
) || !strcmp("..", name
.data
)) {
2926 dfidp
= get_fid(pdu
, dfid
);
2927 if (dfidp
== NULL
) {
2932 oldfidp
= get_fid(pdu
, oldfid
);
2933 if (oldfidp
== NULL
) {
2937 err
= v9fs_co_link(pdu
, oldfidp
, dfidp
, &name
);
2941 put_fid(pdu
, oldfidp
);
2943 put_fid(pdu
, dfidp
);
2945 v9fs_string_free(&name
);
2946 pdu_complete(pdu
, err
);
2949 /* Only works with path name based fid */
2950 static void coroutine_fn
v9fs_remove(void *opaque
)
2956 V9fsPDU
*pdu
= opaque
;
2958 err
= pdu_unmarshal(pdu
, offset
, "d", &fid
);
2962 trace_v9fs_remove(pdu
->tag
, pdu
->id
, fid
);
2964 fidp
= get_fid(pdu
, fid
);
2969 /* if fs driver is not path based, return EOPNOTSUPP */
2970 if (!(pdu
->s
->ctx
.export_flags
& V9FS_PATHNAME_FSCONTEXT
)) {
2975 * IF the file is unlinked, we cannot reopen
2976 * the file later. So don't reclaim fd
2978 err
= v9fs_mark_fids_unreclaim(pdu
, &fidp
->path
);
2982 err
= v9fs_co_remove(pdu
, &fidp
->path
);
2987 /* For TREMOVE we need to clunk the fid even on failed remove */
2988 clunk_fid(pdu
->s
, fidp
->fid
);
2991 pdu_complete(pdu
, err
);
2994 static void coroutine_fn
v9fs_unlinkat(void *opaque
)
2998 int32_t dfid
, flags
, rflags
= 0;
3001 V9fsFidState
*dfidp
;
3002 V9fsPDU
*pdu
= opaque
;
3004 v9fs_string_init(&name
);
3005 err
= pdu_unmarshal(pdu
, offset
, "dsd", &dfid
, &name
, &flags
);
3010 if (name_is_illegal(name
.data
)) {
3015 if (!strcmp(".", name
.data
)) {
3020 if (!strcmp("..", name
.data
)) {
3025 if (flags
& ~P9_DOTL_AT_REMOVEDIR
) {
3030 if (flags
& P9_DOTL_AT_REMOVEDIR
) {
3031 rflags
|= AT_REMOVEDIR
;
3034 dfidp
= get_fid(pdu
, dfid
);
3035 if (dfidp
== NULL
) {
3040 * IF the file is unlinked, we cannot reopen
3041 * the file later. So don't reclaim fd
3043 v9fs_path_init(&path
);
3044 err
= v9fs_co_name_to_path(pdu
, &dfidp
->path
, name
.data
, &path
);
3048 err
= v9fs_mark_fids_unreclaim(pdu
, &path
);
3052 err
= v9fs_co_unlinkat(pdu
, &dfidp
->path
, &name
, rflags
);
3057 put_fid(pdu
, dfidp
);
3058 v9fs_path_free(&path
);
3060 pdu_complete(pdu
, err
);
3061 v9fs_string_free(&name
);
3065 /* Only works with path name based fid */
3066 static int coroutine_fn
v9fs_complete_rename(V9fsPDU
*pdu
, V9fsFidState
*fidp
,
3072 V9fsFidState
*tfidp
;
3073 V9fsState
*s
= pdu
->s
;
3074 V9fsFidState
*dirfidp
= NULL
;
3076 v9fs_path_init(&new_path
);
3077 if (newdirfid
!= -1) {
3078 dirfidp
= get_fid(pdu
, newdirfid
);
3079 if (dirfidp
== NULL
) {
3082 if (fidp
->fid_type
!= P9_FID_NONE
) {
3086 err
= v9fs_co_name_to_path(pdu
, &dirfidp
->path
, name
->data
, &new_path
);
3091 char *dir_name
= g_path_get_dirname(fidp
->path
.data
);
3094 v9fs_path_init(&dir_path
);
3095 v9fs_path_sprintf(&dir_path
, "%s", dir_name
);
3098 err
= v9fs_co_name_to_path(pdu
, &dir_path
, name
->data
, &new_path
);
3099 v9fs_path_free(&dir_path
);
3104 err
= v9fs_co_rename(pdu
, &fidp
->path
, &new_path
);
3109 * Fixup fid's pointing to the old name to
3110 * start pointing to the new name
3112 for (tfidp
= s
->fid_list
; tfidp
; tfidp
= tfidp
->next
) {
3113 if (v9fs_path_is_ancestor(&fidp
->path
, &tfidp
->path
)) {
3114 /* replace the name */
3115 v9fs_fix_path(&tfidp
->path
, &new_path
, strlen(fidp
->path
.data
));
3120 put_fid(pdu
, dirfidp
);
3122 v9fs_path_free(&new_path
);
3126 /* Only works with path name based fid */
3127 static void coroutine_fn
v9fs_rename(void *opaque
)
3135 V9fsPDU
*pdu
= opaque
;
3136 V9fsState
*s
= pdu
->s
;
3138 v9fs_string_init(&name
);
3139 err
= pdu_unmarshal(pdu
, offset
, "dds", &fid
, &newdirfid
, &name
);
3144 if (name_is_illegal(name
.data
)) {
3149 if (!strcmp(".", name
.data
) || !strcmp("..", name
.data
)) {
3154 fidp
= get_fid(pdu
, fid
);
3159 if (fidp
->fid_type
!= P9_FID_NONE
) {
3163 /* if fs driver is not path based, return EOPNOTSUPP */
3164 if (!(pdu
->s
->ctx
.export_flags
& V9FS_PATHNAME_FSCONTEXT
)) {
3168 v9fs_path_write_lock(s
);
3169 err
= v9fs_complete_rename(pdu
, fidp
, newdirfid
, &name
);
3170 v9fs_path_unlock(s
);
3177 pdu_complete(pdu
, err
);
3178 v9fs_string_free(&name
);
3181 static int coroutine_fn
v9fs_fix_fid_paths(V9fsPDU
*pdu
, V9fsPath
*olddir
,
3182 V9fsString
*old_name
,
3184 V9fsString
*new_name
)
3186 V9fsFidState
*tfidp
;
3187 V9fsPath oldpath
, newpath
;
3188 V9fsState
*s
= pdu
->s
;
3191 v9fs_path_init(&oldpath
);
3192 v9fs_path_init(&newpath
);
3193 err
= v9fs_co_name_to_path(pdu
, olddir
, old_name
->data
, &oldpath
);
3197 err
= v9fs_co_name_to_path(pdu
, newdir
, new_name
->data
, &newpath
);
3203 * Fixup fid's pointing to the old name to
3204 * start pointing to the new name
3206 for (tfidp
= s
->fid_list
; tfidp
; tfidp
= tfidp
->next
) {
3207 if (v9fs_path_is_ancestor(&oldpath
, &tfidp
->path
)) {
3208 /* replace the name */
3209 v9fs_fix_path(&tfidp
->path
, &newpath
, strlen(oldpath
.data
));
3213 v9fs_path_free(&oldpath
);
3214 v9fs_path_free(&newpath
);
3218 static int coroutine_fn
v9fs_complete_renameat(V9fsPDU
*pdu
, int32_t olddirfid
,
3219 V9fsString
*old_name
,
3221 V9fsString
*new_name
)
3224 V9fsState
*s
= pdu
->s
;
3225 V9fsFidState
*newdirfidp
= NULL
, *olddirfidp
= NULL
;
3227 olddirfidp
= get_fid(pdu
, olddirfid
);
3228 if (olddirfidp
== NULL
) {
3232 if (newdirfid
!= -1) {
3233 newdirfidp
= get_fid(pdu
, newdirfid
);
3234 if (newdirfidp
== NULL
) {
3239 newdirfidp
= get_fid(pdu
, olddirfid
);
3242 err
= v9fs_co_renameat(pdu
, &olddirfidp
->path
, old_name
,
3243 &newdirfidp
->path
, new_name
);
3247 if (s
->ctx
.export_flags
& V9FS_PATHNAME_FSCONTEXT
) {
3248 /* Only for path based fid we need to do the below fixup */
3249 err
= v9fs_fix_fid_paths(pdu
, &olddirfidp
->path
, old_name
,
3250 &newdirfidp
->path
, new_name
);
3254 put_fid(pdu
, olddirfidp
);
3257 put_fid(pdu
, newdirfidp
);
3262 static void coroutine_fn
v9fs_renameat(void *opaque
)
3266 V9fsPDU
*pdu
= opaque
;
3267 V9fsState
*s
= pdu
->s
;
3268 int32_t olddirfid
, newdirfid
;
3269 V9fsString old_name
, new_name
;
3271 v9fs_string_init(&old_name
);
3272 v9fs_string_init(&new_name
);
3273 err
= pdu_unmarshal(pdu
, offset
, "dsds", &olddirfid
,
3274 &old_name
, &newdirfid
, &new_name
);
3279 if (name_is_illegal(old_name
.data
) || name_is_illegal(new_name
.data
)) {
3284 if (!strcmp(".", old_name
.data
) || !strcmp("..", old_name
.data
) ||
3285 !strcmp(".", new_name
.data
) || !strcmp("..", new_name
.data
)) {
3290 v9fs_path_write_lock(s
);
3291 err
= v9fs_complete_renameat(pdu
, olddirfid
,
3292 &old_name
, newdirfid
, &new_name
);
3293 v9fs_path_unlock(s
);
3299 pdu_complete(pdu
, err
);
3300 v9fs_string_free(&old_name
);
3301 v9fs_string_free(&new_name
);
3304 static void coroutine_fn
v9fs_wstat(void *opaque
)
3313 V9fsPDU
*pdu
= opaque
;
3314 V9fsState
*s
= pdu
->s
;
3316 v9fs_stat_init(&v9stat
);
3317 err
= pdu_unmarshal(pdu
, offset
, "dwS", &fid
, &unused
, &v9stat
);
3321 trace_v9fs_wstat(pdu
->tag
, pdu
->id
, fid
,
3322 v9stat
.mode
, v9stat
.atime
, v9stat
.mtime
);
3324 fidp
= get_fid(pdu
, fid
);
3329 /* do we need to sync the file? */
3330 if (donttouch_stat(&v9stat
)) {
3331 err
= v9fs_co_fsync(pdu
, fidp
, 0);
3334 if (v9stat
.mode
!= -1) {
3336 err
= v9fs_co_lstat(pdu
, &fidp
->path
, &stbuf
);
3340 v9_mode
= stat_to_v9mode(&stbuf
);
3341 if ((v9stat
.mode
& P9_STAT_MODE_TYPE_BITS
) !=
3342 (v9_mode
& P9_STAT_MODE_TYPE_BITS
)) {
3343 /* Attempting to change the type */
3347 err
= v9fs_co_chmod(pdu
, &fidp
->path
,
3348 v9mode_to_mode(v9stat
.mode
,
3349 &v9stat
.extension
));
3354 if (v9stat
.mtime
!= -1 || v9stat
.atime
!= -1) {
3355 struct timespec times
[2];
3356 if (v9stat
.atime
!= -1) {
3357 times
[0].tv_sec
= v9stat
.atime
;
3358 times
[0].tv_nsec
= 0;
3360 times
[0].tv_nsec
= UTIME_OMIT
;
3362 if (v9stat
.mtime
!= -1) {
3363 times
[1].tv_sec
= v9stat
.mtime
;
3364 times
[1].tv_nsec
= 0;
3366 times
[1].tv_nsec
= UTIME_OMIT
;
3368 err
= v9fs_co_utimensat(pdu
, &fidp
->path
, times
);
3373 if (v9stat
.n_gid
!= -1 || v9stat
.n_uid
!= -1) {
3374 err
= v9fs_co_chown(pdu
, &fidp
->path
, v9stat
.n_uid
, v9stat
.n_gid
);
3379 if (v9stat
.name
.size
!= 0) {
3380 v9fs_path_write_lock(s
);
3381 err
= v9fs_complete_rename(pdu
, fidp
, -1, &v9stat
.name
);
3382 v9fs_path_unlock(s
);
3387 if (v9stat
.length
!= -1) {
3388 err
= v9fs_co_truncate(pdu
, &fidp
->path
, v9stat
.length
);
3397 v9fs_stat_free(&v9stat
);
3398 pdu_complete(pdu
, err
);
3401 static int v9fs_fill_statfs(V9fsState
*s
, V9fsPDU
*pdu
, struct statfs
*stbuf
)
3413 int32_t bsize_factor
;
3416 * compute bsize factor based on host file system block size
3419 bsize_factor
= (s
->msize
- P9_IOHDRSZ
)/stbuf
->f_bsize
;
3420 if (!bsize_factor
) {
3423 f_type
= stbuf
->f_type
;
3424 f_bsize
= stbuf
->f_bsize
;
3425 f_bsize
*= bsize_factor
;
3427 * f_bsize is adjusted(multiplied) by bsize factor, so we need to
3428 * adjust(divide) the number of blocks, free blocks and available
3429 * blocks by bsize factor
3431 f_blocks
= stbuf
->f_blocks
/bsize_factor
;
3432 f_bfree
= stbuf
->f_bfree
/bsize_factor
;
3433 f_bavail
= stbuf
->f_bavail
/bsize_factor
;
3434 f_files
= stbuf
->f_files
;
3435 f_ffree
= stbuf
->f_ffree
;
3436 fsid_val
= (unsigned int) stbuf
->f_fsid
.__val
[0] |
3437 (unsigned long long)stbuf
->f_fsid
.__val
[1] << 32;
3438 f_namelen
= stbuf
->f_namelen
;
3440 return pdu_marshal(pdu
, offset
, "ddqqqqqqd",
3441 f_type
, f_bsize
, f_blocks
, f_bfree
,
3442 f_bavail
, f_files
, f_ffree
,
3443 fsid_val
, f_namelen
);
3446 static void coroutine_fn
v9fs_statfs(void *opaque
)
3452 struct statfs stbuf
;
3453 V9fsPDU
*pdu
= opaque
;
3454 V9fsState
*s
= pdu
->s
;
3456 retval
= pdu_unmarshal(pdu
, offset
, "d", &fid
);
3460 fidp
= get_fid(pdu
, fid
);
3465 retval
= v9fs_co_statfs(pdu
, &fidp
->path
, &stbuf
);
3469 retval
= v9fs_fill_statfs(s
, pdu
, &stbuf
);
3477 pdu_complete(pdu
, retval
);
3480 static void coroutine_fn
v9fs_mknod(void *opaque
)
3493 V9fsPDU
*pdu
= opaque
;
3495 v9fs_string_init(&name
);
3496 err
= pdu_unmarshal(pdu
, offset
, "dsdddd", &fid
, &name
, &mode
,
3497 &major
, &minor
, &gid
);
3501 trace_v9fs_mknod(pdu
->tag
, pdu
->id
, fid
, mode
, major
, minor
);
3503 if (name_is_illegal(name
.data
)) {
3508 if (!strcmp(".", name
.data
) || !strcmp("..", name
.data
)) {
3513 fidp
= get_fid(pdu
, fid
);
3518 err
= v9fs_co_mknod(pdu
, fidp
, &name
, fidp
->uid
, gid
,
3519 makedev(major
, minor
), mode
, &stbuf
);
3523 err
= stat_to_qid(pdu
, &stbuf
, &qid
);
3527 err
= pdu_marshal(pdu
, offset
, "Q", &qid
);
3532 trace_v9fs_mknod_return(pdu
->tag
, pdu
->id
,
3533 qid
.type
, qid
.version
, qid
.path
);
3537 pdu_complete(pdu
, err
);
3538 v9fs_string_free(&name
);
3542 * Implement posix byte range locking code
3543 * Server side handling of locking code is very simple, because 9p server in
3544 * QEMU can handle only one client. And most of the lock handling
3545 * (like conflict, merging) etc is done by the VFS layer itself, so no need to
3546 * do any thing in * qemu 9p server side lock code path.
3547 * So when a TLOCK request comes, always return success
3549 static void coroutine_fn
v9fs_lock(void *opaque
)
3555 int32_t fid
, err
= 0;
3556 V9fsPDU
*pdu
= opaque
;
3558 v9fs_string_init(&flock
.client_id
);
3559 err
= pdu_unmarshal(pdu
, offset
, "dbdqqds", &fid
, &flock
.type
,
3560 &flock
.flags
, &flock
.start
, &flock
.length
,
3561 &flock
.proc_id
, &flock
.client_id
);
3565 trace_v9fs_lock(pdu
->tag
, pdu
->id
, fid
,
3566 flock
.type
, flock
.start
, flock
.length
);
3569 /* We support only block flag now (that too ignored currently) */
3570 if (flock
.flags
& ~P9_LOCK_FLAGS_BLOCK
) {
3574 fidp
= get_fid(pdu
, fid
);
3579 err
= v9fs_co_fstat(pdu
, fidp
, &stbuf
);
3583 err
= pdu_marshal(pdu
, offset
, "b", P9_LOCK_SUCCESS
);
3588 trace_v9fs_lock_return(pdu
->tag
, pdu
->id
, P9_LOCK_SUCCESS
);
3592 pdu_complete(pdu
, err
);
3593 v9fs_string_free(&flock
.client_id
);
3597 * When a TGETLOCK request comes, always return success because all lock
3598 * handling is done by client's VFS layer.
3600 static void coroutine_fn
v9fs_getlock(void *opaque
)
3606 int32_t fid
, err
= 0;
3607 V9fsPDU
*pdu
= opaque
;
3609 v9fs_string_init(&glock
.client_id
);
3610 err
= pdu_unmarshal(pdu
, offset
, "dbqqds", &fid
, &glock
.type
,
3611 &glock
.start
, &glock
.length
, &glock
.proc_id
,
3616 trace_v9fs_getlock(pdu
->tag
, pdu
->id
, fid
,
3617 glock
.type
, glock
.start
, glock
.length
);
3619 fidp
= get_fid(pdu
, fid
);
3624 err
= v9fs_co_fstat(pdu
, fidp
, &stbuf
);
3628 glock
.type
= P9_LOCK_TYPE_UNLCK
;
3629 err
= pdu_marshal(pdu
, offset
, "bqqds", glock
.type
,
3630 glock
.start
, glock
.length
, glock
.proc_id
,
3636 trace_v9fs_getlock_return(pdu
->tag
, pdu
->id
, glock
.type
, glock
.start
,
3637 glock
.length
, glock
.proc_id
);
3641 pdu_complete(pdu
, err
);
3642 v9fs_string_free(&glock
.client_id
);
3645 static void coroutine_fn
v9fs_mkdir(void *opaque
)
3647 V9fsPDU
*pdu
= opaque
;
3658 v9fs_string_init(&name
);
3659 err
= pdu_unmarshal(pdu
, offset
, "dsdd", &fid
, &name
, &mode
, &gid
);
3663 trace_v9fs_mkdir(pdu
->tag
, pdu
->id
, fid
, name
.data
, mode
, gid
);
3665 if (name_is_illegal(name
.data
)) {
3670 if (!strcmp(".", name
.data
) || !strcmp("..", name
.data
)) {
3675 fidp
= get_fid(pdu
, fid
);
3680 err
= v9fs_co_mkdir(pdu
, fidp
, &name
, mode
, fidp
->uid
, gid
, &stbuf
);
3684 err
= stat_to_qid(pdu
, &stbuf
, &qid
);
3688 err
= pdu_marshal(pdu
, offset
, "Q", &qid
);
3693 trace_v9fs_mkdir_return(pdu
->tag
, pdu
->id
,
3694 qid
.type
, qid
.version
, qid
.path
, err
);
3698 pdu_complete(pdu
, err
);
3699 v9fs_string_free(&name
);
3702 static void coroutine_fn
v9fs_xattrwalk(void *opaque
)
3708 int32_t fid
, newfid
;
3709 V9fsFidState
*file_fidp
;
3710 V9fsFidState
*xattr_fidp
= NULL
;
3711 V9fsPDU
*pdu
= opaque
;
3712 V9fsState
*s
= pdu
->s
;
3714 v9fs_string_init(&name
);
3715 err
= pdu_unmarshal(pdu
, offset
, "dds", &fid
, &newfid
, &name
);
3719 trace_v9fs_xattrwalk(pdu
->tag
, pdu
->id
, fid
, newfid
, name
.data
);
3721 file_fidp
= get_fid(pdu
, fid
);
3722 if (file_fidp
== NULL
) {
3726 xattr_fidp
= alloc_fid(s
, newfid
);
3727 if (xattr_fidp
== NULL
) {
3731 v9fs_path_copy(&xattr_fidp
->path
, &file_fidp
->path
);
3732 if (!v9fs_string_size(&name
)) {
3734 * listxattr request. Get the size first
3736 size
= v9fs_co_llistxattr(pdu
, &xattr_fidp
->path
, NULL
, 0);
3739 clunk_fid(s
, xattr_fidp
->fid
);
3743 * Read the xattr value
3745 xattr_fidp
->fs
.xattr
.len
= size
;
3746 xattr_fidp
->fid_type
= P9_FID_XATTR
;
3747 xattr_fidp
->fs
.xattr
.xattrwalk_fid
= true;
3748 xattr_fidp
->fs
.xattr
.value
= g_malloc0(size
);
3750 err
= v9fs_co_llistxattr(pdu
, &xattr_fidp
->path
,
3751 xattr_fidp
->fs
.xattr
.value
,
3752 xattr_fidp
->fs
.xattr
.len
);
3754 clunk_fid(s
, xattr_fidp
->fid
);
3758 err
= pdu_marshal(pdu
, offset
, "q", size
);
3765 * specific xattr fid. We check for xattr
3766 * presence also collect the xattr size
3768 size
= v9fs_co_lgetxattr(pdu
, &xattr_fidp
->path
,
3772 clunk_fid(s
, xattr_fidp
->fid
);
3776 * Read the xattr value
3778 xattr_fidp
->fs
.xattr
.len
= size
;
3779 xattr_fidp
->fid_type
= P9_FID_XATTR
;
3780 xattr_fidp
->fs
.xattr
.xattrwalk_fid
= true;
3781 xattr_fidp
->fs
.xattr
.value
= g_malloc0(size
);
3783 err
= v9fs_co_lgetxattr(pdu
, &xattr_fidp
->path
,
3784 &name
, xattr_fidp
->fs
.xattr
.value
,
3785 xattr_fidp
->fs
.xattr
.len
);
3787 clunk_fid(s
, xattr_fidp
->fid
);
3791 err
= pdu_marshal(pdu
, offset
, "q", size
);
3797 trace_v9fs_xattrwalk_return(pdu
->tag
, pdu
->id
, size
);
3799 put_fid(pdu
, file_fidp
);
3801 put_fid(pdu
, xattr_fidp
);
3804 pdu_complete(pdu
, err
);
3805 v9fs_string_free(&name
);
3808 static void coroutine_fn
v9fs_xattrcreate(void *opaque
)
3810 int flags
, rflags
= 0;
3816 V9fsFidState
*file_fidp
;
3817 V9fsFidState
*xattr_fidp
;
3818 V9fsPDU
*pdu
= opaque
;
3820 v9fs_string_init(&name
);
3821 err
= pdu_unmarshal(pdu
, offset
, "dsqd", &fid
, &name
, &size
, &flags
);
3825 trace_v9fs_xattrcreate(pdu
->tag
, pdu
->id
, fid
, name
.data
, size
, flags
);
3827 if (flags
& ~(P9_XATTR_CREATE
| P9_XATTR_REPLACE
)) {
3832 if (flags
& P9_XATTR_CREATE
) {
3833 rflags
|= XATTR_CREATE
;
3836 if (flags
& P9_XATTR_REPLACE
) {
3837 rflags
|= XATTR_REPLACE
;
3840 if (size
> XATTR_SIZE_MAX
) {
3845 file_fidp
= get_fid(pdu
, fid
);
3846 if (file_fidp
== NULL
) {
3850 if (file_fidp
->fid_type
!= P9_FID_NONE
) {
3855 /* Make the file fid point to xattr */
3856 xattr_fidp
= file_fidp
;
3857 xattr_fidp
->fid_type
= P9_FID_XATTR
;
3858 xattr_fidp
->fs
.xattr
.copied_len
= 0;
3859 xattr_fidp
->fs
.xattr
.xattrwalk_fid
= false;
3860 xattr_fidp
->fs
.xattr
.len
= size
;
3861 xattr_fidp
->fs
.xattr
.flags
= rflags
;
3862 v9fs_string_init(&xattr_fidp
->fs
.xattr
.name
);
3863 v9fs_string_copy(&xattr_fidp
->fs
.xattr
.name
, &name
);
3864 xattr_fidp
->fs
.xattr
.value
= g_malloc0(size
);
3867 put_fid(pdu
, file_fidp
);
3869 pdu_complete(pdu
, err
);
3870 v9fs_string_free(&name
);
3873 static void coroutine_fn
v9fs_readlink(void *opaque
)
3875 V9fsPDU
*pdu
= opaque
;
3882 err
= pdu_unmarshal(pdu
, offset
, "d", &fid
);
3886 trace_v9fs_readlink(pdu
->tag
, pdu
->id
, fid
);
3887 fidp
= get_fid(pdu
, fid
);
3893 v9fs_string_init(&target
);
3894 err
= v9fs_co_readlink(pdu
, &fidp
->path
, &target
);
3898 err
= pdu_marshal(pdu
, offset
, "s", &target
);
3900 v9fs_string_free(&target
);
3904 trace_v9fs_readlink_return(pdu
->tag
, pdu
->id
, target
.data
);
3905 v9fs_string_free(&target
);
3909 pdu_complete(pdu
, err
);
3912 static CoroutineEntry
*pdu_co_handlers
[] = {
3913 [P9_TREADDIR
] = v9fs_readdir
,
3914 [P9_TSTATFS
] = v9fs_statfs
,
3915 [P9_TGETATTR
] = v9fs_getattr
,
3916 [P9_TSETATTR
] = v9fs_setattr
,
3917 [P9_TXATTRWALK
] = v9fs_xattrwalk
,
3918 [P9_TXATTRCREATE
] = v9fs_xattrcreate
,
3919 [P9_TMKNOD
] = v9fs_mknod
,
3920 [P9_TRENAME
] = v9fs_rename
,
3921 [P9_TLOCK
] = v9fs_lock
,
3922 [P9_TGETLOCK
] = v9fs_getlock
,
3923 [P9_TRENAMEAT
] = v9fs_renameat
,
3924 [P9_TREADLINK
] = v9fs_readlink
,
3925 [P9_TUNLINKAT
] = v9fs_unlinkat
,
3926 [P9_TMKDIR
] = v9fs_mkdir
,
3927 [P9_TVERSION
] = v9fs_version
,
3928 [P9_TLOPEN
] = v9fs_open
,
3929 [P9_TATTACH
] = v9fs_attach
,
3930 [P9_TSTAT
] = v9fs_stat
,
3931 [P9_TWALK
] = v9fs_walk
,
3932 [P9_TCLUNK
] = v9fs_clunk
,
3933 [P9_TFSYNC
] = v9fs_fsync
,
3934 [P9_TOPEN
] = v9fs_open
,
3935 [P9_TREAD
] = v9fs_read
,
3937 [P9_TAUTH
] = v9fs_auth
,
3939 [P9_TFLUSH
] = v9fs_flush
,
3940 [P9_TLINK
] = v9fs_link
,
3941 [P9_TSYMLINK
] = v9fs_symlink
,
3942 [P9_TCREATE
] = v9fs_create
,
3943 [P9_TLCREATE
] = v9fs_lcreate
,
3944 [P9_TWRITE
] = v9fs_write
,
3945 [P9_TWSTAT
] = v9fs_wstat
,
3946 [P9_TREMOVE
] = v9fs_remove
,
3949 static void coroutine_fn
v9fs_op_not_supp(void *opaque
)
3951 V9fsPDU
*pdu
= opaque
;
3952 pdu_complete(pdu
, -EOPNOTSUPP
);
3955 static void coroutine_fn
v9fs_fs_ro(void *opaque
)
3957 V9fsPDU
*pdu
= opaque
;
3958 pdu_complete(pdu
, -EROFS
);
3961 static inline bool is_read_only_op(V9fsPDU
*pdu
)
3988 void pdu_submit(V9fsPDU
*pdu
, P9MsgHeader
*hdr
)
3991 CoroutineEntry
*handler
;
3992 V9fsState
*s
= pdu
->s
;
3994 pdu
->size
= le32_to_cpu(hdr
->size_le
);
3996 pdu
->tag
= le16_to_cpu(hdr
->tag_le
);
3998 if (pdu
->id
>= ARRAY_SIZE(pdu_co_handlers
) ||
3999 (pdu_co_handlers
[pdu
->id
] == NULL
)) {
4000 handler
= v9fs_op_not_supp
;
4001 } else if (is_ro_export(&s
->ctx
) && !is_read_only_op(pdu
)) {
4002 handler
= v9fs_fs_ro
;
4004 handler
= pdu_co_handlers
[pdu
->id
];
4007 qemu_co_queue_init(&pdu
->complete
);
4008 co
= qemu_coroutine_create(handler
, pdu
);
4009 qemu_coroutine_enter(co
);
4012 /* Returns 0 on success, 1 on failure. */
4013 int v9fs_device_realize_common(V9fsState
*s
, const V9fsTransport
*t
,
4022 assert(!s
->transport
);
4025 /* initialize pdu allocator */
4026 QLIST_INIT(&s
->free_list
);
4027 QLIST_INIT(&s
->active_list
);
4028 for (i
= 0; i
< MAX_REQ
; i
++) {
4029 QLIST_INSERT_HEAD(&s
->free_list
, &s
->pdus
[i
], next
);
4034 v9fs_path_init(&path
);
4036 fse
= get_fsdev_fsentry(s
->fsconf
.fsdev_id
);
4039 /* We don't have a fsdev identified by fsdev_id */
4040 error_setg(errp
, "9pfs device couldn't find fsdev with the "
4042 s
->fsconf
.fsdev_id
? s
->fsconf
.fsdev_id
: "NULL");
4046 if (!s
->fsconf
.tag
) {
4047 /* we haven't specified a mount_tag */
4048 error_setg(errp
, "fsdev with id %s needs mount_tag arguments",
4049 s
->fsconf
.fsdev_id
);
4053 s
->ctx
.export_flags
= fse
->export_flags
;
4054 s
->ctx
.fs_root
= g_strdup(fse
->path
);
4055 s
->ctx
.exops
.get_st_gen
= NULL
;
4056 len
= strlen(s
->fsconf
.tag
);
4057 if (len
> MAX_TAG_LEN
- 1) {
4058 error_setg(errp
, "mount tag '%s' (%d bytes) is longer than "
4059 "maximum (%d bytes)", s
->fsconf
.tag
, len
, MAX_TAG_LEN
- 1);
4063 s
->tag
= g_strdup(s
->fsconf
.tag
);
4068 s
->ctx
.fmode
= fse
->fmode
;
4069 s
->ctx
.dmode
= fse
->dmode
;
4072 qemu_co_rwlock_init(&s
->rename_lock
);
4074 if (s
->ops
->init(&s
->ctx
, errp
) < 0) {
4075 error_prepend(errp
, "cannot initialize fsdev '%s': ",
4076 s
->fsconf
.fsdev_id
);
4081 * Check details of export path, We need to use fs driver
4082 * call back to do that. Since we are in the init path, we don't
4083 * use co-routines here.
4085 if (s
->ops
->name_to_path(&s
->ctx
, NULL
, "/", &path
) < 0) {
4087 "error in converting name to path %s", strerror(errno
));
4090 if (s
->ops
->lstat(&s
->ctx
, &path
, &stat
)) {
4091 error_setg(errp
, "share path %s does not exist", fse
->path
);
4093 } else if (!S_ISDIR(stat
.st_mode
)) {
4094 error_setg(errp
, "share path %s is not a directory", fse
->path
);
4098 s
->dev_id
= stat
.st_dev
;
4100 /* init inode remapping : */
4101 /* hash table for variable length inode suffixes */
4102 qpd_table_init(&s
->qpd_table
);
4103 /* hash table for slow/full inode remapping (most users won't need it) */
4104 qpf_table_init(&s
->qpf_table
);
4105 /* hash table for quick inode remapping */
4106 qpp_table_init(&s
->qpp_table
);
4108 s
->qp_affix_next
= 1; /* reserve 0 to detect overflow */
4109 s
->qp_fullpath_next
= 1;
4111 s
->ctx
.fst
= &fse
->fst
;
4112 fsdev_throttle_init(s
->ctx
.fst
);
4117 v9fs_device_unrealize_common(s
);
4119 v9fs_path_free(&path
);
4123 void v9fs_device_unrealize_common(V9fsState
*s
)
4125 if (s
->ops
&& s
->ops
->cleanup
) {
4126 s
->ops
->cleanup(&s
->ctx
);
4129 fsdev_throttle_cleanup(s
->ctx
.fst
);
4132 qp_table_destroy(&s
->qpd_table
);
4133 qp_table_destroy(&s
->qpp_table
);
4134 qp_table_destroy(&s
->qpf_table
);
4135 g_free(s
->ctx
.fs_root
);
4138 typedef struct VirtfsCoResetData
{
4141 } VirtfsCoResetData
;
4143 static void coroutine_fn
virtfs_co_reset(void *opaque
)
4145 VirtfsCoResetData
*data
= opaque
;
4147 virtfs_reset(&data
->pdu
);
4151 void v9fs_reset(V9fsState
*s
)
4153 VirtfsCoResetData data
= { .pdu
= { .s
= s
}, .done
= false };
4156 while (!QLIST_EMPTY(&s
->active_list
)) {
4157 aio_poll(qemu_get_aio_context(), true);
4160 co
= qemu_coroutine_create(virtfs_co_reset
, &data
);
4161 qemu_coroutine_enter(co
);
4163 while (!data
.done
) {
4164 aio_poll(qemu_get_aio_context(), true);
4168 static void __attribute__((__constructor__
)) v9fs_set_fd_limit(void)
4171 if (getrlimit(RLIMIT_NOFILE
, &rlim
) < 0) {
4172 error_report("Failed to get the resource limit");
4175 open_fd_hw
= rlim
.rlim_cur
- MIN(400, rlim
.rlim_cur
/3);
4176 open_fd_rc
= rlim
.rlim_cur
/2;