1 /*
2 FUSE: Filesystem in Userspace
3 Copyright (C) 2001-2007 Miklos Szeredi <miklos@szeredi.hu>
4
5 Implementation of (most of) the low-level FUSE API. The session loop
6 functions are implemented in separate files.
7
8 This program can be distributed under the terms of the GNU LGPLv2.
9 See the file COPYING.LIB
10 */
11
12 #define _GNU_SOURCE
13
14 #include "config.h"
15 #include "fuse_i.h"
16 #include "fuse_kernel.h"
17 #include "fuse_opt.h"
18 #include "fuse_misc.h"
19 #include "mount_util.h"
20
21 #include <stdio.h>
22 #include <stdlib.h>
23 #include <stddef.h>
24 #include <string.h>
25 #include <unistd.h>
26 #include <limits.h>
27 #include <errno.h>
28 #include <assert.h>
29 #include <sys/file.h>
30 #include <sys/ioctl.h>
31
32 #ifndef F_LINUX_SPECIFIC_BASE
33 #define F_LINUX_SPECIFIC_BASE 1024
34 #endif
35 #ifndef F_SETPIPE_SZ
36 #define F_SETPIPE_SZ (F_LINUX_SPECIFIC_BASE + 7)
37 #endif
38
39
40 #define PARAM(inarg) (((char *)(inarg)) + sizeof(*(inarg)))
41 #define OFFSET_MAX 0x7fffffffffffffffLL
42
43 #define container_of(ptr, type, member) ({ \
44 const typeof( ((type *)0)->member ) *__mptr = (ptr); \
45 (type *)( (char *)__mptr - offsetof(type,member) );})
46
47 struct fuse_pollhandle {
48 uint64_t kh;
49 struct fuse_session *se;
50 };
51
52 static size_t pagesize;
53
fuse_ll_init_pagesize(void)54 static __attribute__((constructor)) void fuse_ll_init_pagesize(void)
55 {
56 pagesize = getpagesize();
57 }
58
convert_stat(const struct stat * stbuf,struct fuse_attr * attr)59 static void convert_stat(const struct stat *stbuf, struct fuse_attr *attr)
60 {
61 attr->ino = stbuf->st_ino;
62 attr->mode = stbuf->st_mode;
63 attr->nlink = stbuf->st_nlink;
64 attr->uid = stbuf->st_uid;
65 attr->gid = stbuf->st_gid;
66 attr->rdev = stbuf->st_rdev;
67 attr->size = stbuf->st_size;
68 attr->blksize = stbuf->st_blksize;
69 attr->blocks = stbuf->st_blocks;
70 attr->atime = stbuf->st_atime;
71 attr->mtime = stbuf->st_mtime;
72 attr->ctime = stbuf->st_ctime;
73 attr->atimensec = ST_ATIM_NSEC(stbuf);
74 attr->mtimensec = ST_MTIM_NSEC(stbuf);
75 attr->ctimensec = ST_CTIM_NSEC(stbuf);
76 }
77
convert_attr(const struct fuse_setattr_in * attr,struct stat * stbuf)78 static void convert_attr(const struct fuse_setattr_in *attr, struct stat *stbuf)
79 {
80 stbuf->st_mode = attr->mode;
81 stbuf->st_uid = attr->uid;
82 stbuf->st_gid = attr->gid;
83 stbuf->st_size = attr->size;
84 stbuf->st_atime = attr->atime;
85 stbuf->st_mtime = attr->mtime;
86 stbuf->st_ctime = attr->ctime;
87 ST_ATIM_NSEC_SET(stbuf, attr->atimensec);
88 ST_MTIM_NSEC_SET(stbuf, attr->mtimensec);
89 ST_CTIM_NSEC_SET(stbuf, attr->ctimensec);
90 }
91
iov_length(const struct iovec * iov,size_t count)92 static size_t iov_length(const struct iovec *iov, size_t count)
93 {
94 size_t seg;
95 size_t ret = 0;
96
97 for (seg = 0; seg < count; seg++)
98 ret += iov[seg].iov_len;
99 return ret;
100 }
101
list_init_req(struct fuse_req * req)102 static void list_init_req(struct fuse_req *req)
103 {
104 req->next = req;
105 req->prev = req;
106 }
107
list_del_req(struct fuse_req * req)108 static void list_del_req(struct fuse_req *req)
109 {
110 struct fuse_req *prev = req->prev;
111 struct fuse_req *next = req->next;
112 prev->next = next;
113 next->prev = prev;
114 }
115
list_add_req(struct fuse_req * req,struct fuse_req * next)116 static void list_add_req(struct fuse_req *req, struct fuse_req *next)
117 {
118 struct fuse_req *prev = next->prev;
119 req->next = next;
120 req->prev = prev;
121 prev->next = req;
122 next->prev = req;
123 }
124
destroy_req(fuse_req_t req)125 static void destroy_req(fuse_req_t req)
126 {
127 pthread_mutex_destroy(&req->lock);
128 free(req);
129 }
130
fuse_free_req(fuse_req_t req)131 void fuse_free_req(fuse_req_t req)
132 {
133 int ctr;
134 struct fuse_session *se = req->se;
135
136 pthread_mutex_lock(&se->lock);
137 req->u.ni.func = NULL;
138 req->u.ni.data = NULL;
139 list_del_req(req);
140 ctr = --req->ctr;
141 fuse_chan_put(req->ch);
142 req->ch = NULL;
143 pthread_mutex_unlock(&se->lock);
144 if (!ctr)
145 destroy_req(req);
146 }
147
fuse_ll_alloc_req(struct fuse_session * se)148 static struct fuse_req *fuse_ll_alloc_req(struct fuse_session *se)
149 {
150 struct fuse_req *req;
151
152 req = (struct fuse_req *) calloc(1, sizeof(struct fuse_req));
153 if (req == NULL) {
154 fuse_log(FUSE_LOG_ERR, "fuse: failed to allocate request\n");
155 } else {
156 req->se = se;
157 req->ctr = 1;
158 list_init_req(req);
159 pthread_mutex_init(&req->lock, NULL);
160 }
161
162 return req;
163 }
164
165 /* Send data. If *ch* is NULL, send via session master fd */
fuse_send_msg(struct fuse_session * se,struct fuse_chan * ch,struct iovec * iov,int count)166 static int fuse_send_msg(struct fuse_session *se, struct fuse_chan *ch,
167 struct iovec *iov, int count)
168 {
169 struct fuse_out_header *out = iov[0].iov_base;
170
171 assert(se != NULL);
172 out->len = iov_length(iov, count);
173 if (se->debug) {
174 if (out->unique == 0) {
175 fuse_log(FUSE_LOG_DEBUG, "NOTIFY: code=%d length=%u\n",
176 out->error, out->len);
177 } else if (out->error) {
178 fuse_log(FUSE_LOG_DEBUG,
179 " unique: %llu, error: %i (%s), outsize: %i\n",
180 (unsigned long long) out->unique, out->error,
181 strerror(-out->error), out->len);
182 } else {
183 fuse_log(FUSE_LOG_DEBUG,
184 " unique: %llu, success, outsize: %i\n",
185 (unsigned long long) out->unique, out->len);
186 }
187 }
188
189 ssize_t res = writev(ch ? ch->fd : se->fd,
190 iov, count);
191 int err = errno;
192
193 if (res == -1) {
194 /* ENOENT means the operation was interrupted */
195 if (!fuse_session_exited(se) && err != ENOENT)
196 perror("fuse: writing device");
197 return -err;
198 }
199
200 return 0;
201 }
202
203
fuse_send_reply_iov_nofree(fuse_req_t req,int error,struct iovec * iov,int count)204 int fuse_send_reply_iov_nofree(fuse_req_t req, int error, struct iovec *iov,
205 int count)
206 {
207 struct fuse_out_header out;
208
209 if (error <= -1000 || error > 0) {
210 fuse_log(FUSE_LOG_ERR, "fuse: bad error value: %i\n", error);
211 error = -ERANGE;
212 }
213
214 out.unique = req->unique;
215 out.error = error;
216
217 iov[0].iov_base = &out;
218 iov[0].iov_len = sizeof(struct fuse_out_header);
219
220 return fuse_send_msg(req->se, req->ch, iov, count);
221 }
222
send_reply_iov(fuse_req_t req,int error,struct iovec * iov,int count)223 static int send_reply_iov(fuse_req_t req, int error, struct iovec *iov,
224 int count)
225 {
226 int res;
227
228 res = fuse_send_reply_iov_nofree(req, error, iov, count);
229 fuse_free_req(req);
230 return res;
231 }
232
send_reply(fuse_req_t req,int error,const void * arg,size_t argsize)233 static int send_reply(fuse_req_t req, int error, const void *arg,
234 size_t argsize)
235 {
236 struct iovec iov[2];
237 int count = 1;
238 if (argsize) {
239 iov[1].iov_base = (void *) arg;
240 iov[1].iov_len = argsize;
241 count++;
242 }
243 return send_reply_iov(req, error, iov, count);
244 }
245
fuse_reply_iov(fuse_req_t req,const struct iovec * iov,int count)246 int fuse_reply_iov(fuse_req_t req, const struct iovec *iov, int count)
247 {
248 int res;
249 struct iovec *padded_iov;
250
251 padded_iov = malloc((count + 1) * sizeof(struct iovec));
252 if (padded_iov == NULL)
253 return fuse_reply_err(req, ENOMEM);
254
255 memcpy(padded_iov + 1, iov, count * sizeof(struct iovec));
256 count++;
257
258 res = send_reply_iov(req, 0, padded_iov, count);
259 free(padded_iov);
260
261 return res;
262 }
263
264
265 /* `buf` is allowed to be empty so that the proper size may be
266 allocated by the caller */
fuse_add_direntry(fuse_req_t req,char * buf,size_t bufsize,const char * name,const struct stat * stbuf,off_t off)267 size_t fuse_add_direntry(fuse_req_t req, char *buf, size_t bufsize,
268 const char *name, const struct stat *stbuf, off_t off)
269 {
270 (void)req;
271 size_t namelen;
272 size_t entlen;
273 size_t entlen_padded;
274 struct fuse_dirent *dirent;
275
276 namelen = strlen(name);
277 entlen = FUSE_NAME_OFFSET + namelen;
278 entlen_padded = FUSE_DIRENT_ALIGN(entlen);
279
280 if ((buf == NULL) || (entlen_padded > bufsize))
281 return entlen_padded;
282
283 dirent = (struct fuse_dirent*) buf;
284 dirent->ino = stbuf->st_ino;
285 dirent->off = off;
286 dirent->namelen = namelen;
287 dirent->type = (stbuf->st_mode & S_IFMT) >> 12;
288 memcpy(dirent->name, name, namelen);
289 memset(dirent->name + namelen, 0, entlen_padded - entlen);
290
291 return entlen_padded;
292 }
293
convert_statfs(const struct statvfs * stbuf,struct fuse_kstatfs * kstatfs)294 static void convert_statfs(const struct statvfs *stbuf,
295 struct fuse_kstatfs *kstatfs)
296 {
297 kstatfs->bsize = stbuf->f_bsize;
298 kstatfs->frsize = stbuf->f_frsize;
299 kstatfs->blocks = stbuf->f_blocks;
300 kstatfs->bfree = stbuf->f_bfree;
301 kstatfs->bavail = stbuf->f_bavail;
302 kstatfs->files = stbuf->f_files;
303 kstatfs->ffree = stbuf->f_ffree;
304 kstatfs->namelen = stbuf->f_namemax;
305 }
306
send_reply_ok(fuse_req_t req,const void * arg,size_t argsize)307 static int send_reply_ok(fuse_req_t req, const void *arg, size_t argsize)
308 {
309 return send_reply(req, 0, arg, argsize);
310 }
311
fuse_reply_err(fuse_req_t req,int err)312 int fuse_reply_err(fuse_req_t req, int err)
313 {
314 return send_reply(req, -err, NULL, 0);
315 }
316
fuse_reply_none(fuse_req_t req)317 void fuse_reply_none(fuse_req_t req)
318 {
319 fuse_free_req(req);
320 }
321
calc_timeout_sec(double t)322 static unsigned long calc_timeout_sec(double t)
323 {
324 if (t > (double) ULONG_MAX)
325 return ULONG_MAX;
326 else if (t < 0.0)
327 return 0;
328 else
329 return (unsigned long) t;
330 }
331
calc_timeout_nsec(double t)332 static unsigned int calc_timeout_nsec(double t)
333 {
334 double f = t - (double) calc_timeout_sec(t);
335 if (f < 0.0)
336 return 0;
337 else if (f >= 0.999999999)
338 return 999999999;
339 else
340 return (unsigned int) (f * 1.0e9);
341 }
342
fill_entry(struct fuse_entry_out * arg,const struct fuse_entry_param * e)343 static void fill_entry(struct fuse_entry_out *arg,
344 const struct fuse_entry_param *e)
345 {
346 arg->nodeid = e->ino;
347 arg->generation = e->generation;
348 arg->entry_valid = calc_timeout_sec(e->entry_timeout);
349 arg->entry_valid_nsec = calc_timeout_nsec(e->entry_timeout);
350 arg->attr_valid = calc_timeout_sec(e->attr_timeout);
351 arg->attr_valid_nsec = calc_timeout_nsec(e->attr_timeout);
352 convert_stat(&e->attr, &arg->attr);
353 }
354
355 /* `buf` is allowed to be empty so that the proper size may be
356 allocated by the caller */
fuse_add_direntry_plus(fuse_req_t req,char * buf,size_t bufsize,const char * name,const struct fuse_entry_param * e,off_t off)357 size_t fuse_add_direntry_plus(fuse_req_t req, char *buf, size_t bufsize,
358 const char *name,
359 const struct fuse_entry_param *e, off_t off)
360 {
361 (void)req;
362 size_t namelen;
363 size_t entlen;
364 size_t entlen_padded;
365
366 namelen = strlen(name);
367 entlen = FUSE_NAME_OFFSET_DIRENTPLUS + namelen;
368 entlen_padded = FUSE_DIRENT_ALIGN(entlen);
369 if ((buf == NULL) || (entlen_padded > bufsize))
370 return entlen_padded;
371
372 struct fuse_direntplus *dp = (struct fuse_direntplus *) buf;
373 memset(&dp->entry_out, 0, sizeof(dp->entry_out));
374 fill_entry(&dp->entry_out, e);
375
376 struct fuse_dirent *dirent = &dp->dirent;
377 dirent->ino = e->attr.st_ino;
378 dirent->off = off;
379 dirent->namelen = namelen;
380 dirent->type = (e->attr.st_mode & S_IFMT) >> 12;
381 memcpy(dirent->name, name, namelen);
382 memset(dirent->name + namelen, 0, entlen_padded - entlen);
383
384 return entlen_padded;
385 }
386
fill_open(struct fuse_open_out * arg,const struct fuse_file_info * f)387 static void fill_open(struct fuse_open_out *arg,
388 const struct fuse_file_info *f)
389 {
390 arg->fh = f->fh;
391 arg->passthrough_fh = f->passthrough_fh;
392 if (f->direct_io)
393 arg->open_flags |= FOPEN_DIRECT_IO;
394 if (f->keep_cache)
395 arg->open_flags |= FOPEN_KEEP_CACHE;
396 if (f->cache_readdir)
397 arg->open_flags |= FOPEN_CACHE_DIR;
398 if (f->nonseekable)
399 arg->open_flags |= FOPEN_NONSEEKABLE;
400 }
401
fuse_reply_entry(fuse_req_t req,const struct fuse_entry_param * e)402 int fuse_reply_entry(fuse_req_t req, const struct fuse_entry_param* e) {
403 struct {
404 struct fuse_entry_out arg;
405 struct fuse_entry_bpf_out bpf_arg;
406 } __attribute__((packed)) arg_ext = {0};
407
408 struct fuse_entry_out arg;
409 struct fuse_entry_bpf_out bpf_arg;
410 size_t size;
411 int extended_args = e->bpf_action || bpf_arg.bpf_fd || e->backing_action || e->backing_fd;
412
413 if (extended_args) {
414 size = req->se->conn.proto_minor < 9 ? FUSE_COMPAT_ENTRY_OUT_SIZE : sizeof(arg_ext);
415 } else {
416 size = req->se->conn.proto_minor < 9 ? FUSE_COMPAT_ENTRY_OUT_SIZE : sizeof(arg);
417 }
418
419 /* before ABI 7.4 e->ino == 0 was invalid, only ENOENT meant
420 negative entry */
421 if (!e->ino && req->se->conn.proto_minor < 4) return fuse_reply_err(req, ENOENT);
422
423 memset(&arg, 0, sizeof(arg));
424
425 if (extended_args) {
426 memset(&bpf_arg, 0, sizeof(bpf_arg));
427
428 bpf_arg.bpf_action = e->bpf_action;
429 bpf_arg.bpf_fd = e->bpf_fd;
430 bpf_arg.backing_action = e->backing_action;
431 bpf_arg.backing_fd = e->backing_fd;
432
433 arg_ext.arg = arg;
434 arg_ext.bpf_arg = bpf_arg;
435
436 return send_reply_ok(req, &arg_ext, size);
437 } else {
438 fill_entry(&arg, e);
439 return send_reply_ok(req, &arg, size);
440 }
441 }
442
fuse_reply_create(fuse_req_t req,const struct fuse_entry_param * e,const struct fuse_file_info * f)443 int fuse_reply_create(fuse_req_t req, const struct fuse_entry_param *e,
444 const struct fuse_file_info *f)
445 {
446 char buf[sizeof(struct fuse_entry_out) + sizeof(struct fuse_open_out)];
447 size_t entrysize = req->se->conn.proto_minor < 9 ?
448 FUSE_COMPAT_ENTRY_OUT_SIZE : sizeof(struct fuse_entry_out);
449 struct fuse_entry_out *earg = (struct fuse_entry_out *) buf;
450 struct fuse_open_out *oarg = (struct fuse_open_out *) (buf + entrysize);
451
452 memset(buf, 0, sizeof(buf));
453 fill_entry(earg, e);
454 fill_open(oarg, f);
455 return send_reply_ok(req, buf,
456 entrysize + sizeof(struct fuse_open_out));
457 }
458
fuse_reply_attr(fuse_req_t req,const struct stat * attr,double attr_timeout)459 int fuse_reply_attr(fuse_req_t req, const struct stat *attr,
460 double attr_timeout)
461 {
462 struct fuse_attr_out arg;
463 size_t size = req->se->conn.proto_minor < 9 ?
464 FUSE_COMPAT_ATTR_OUT_SIZE : sizeof(arg);
465
466 memset(&arg, 0, sizeof(arg));
467 arg.attr_valid = calc_timeout_sec(attr_timeout);
468 arg.attr_valid_nsec = calc_timeout_nsec(attr_timeout);
469 convert_stat(attr, &arg.attr);
470
471 return send_reply_ok(req, &arg, size);
472 }
473
fuse_reply_readlink(fuse_req_t req,const char * linkname)474 int fuse_reply_readlink(fuse_req_t req, const char *linkname)
475 {
476 return send_reply_ok(req, linkname, strlen(linkname));
477 }
478
fuse_reply_canonical_path(fuse_req_t req,const char * path)479 int fuse_reply_canonical_path(fuse_req_t req, const char *path)
480 {
481 // The kernel expects a buffer containing the null terminator for this op
482 // So we add the null terminator size to strlen
483 return send_reply_ok(req, path, strlen(path) + 1);
484 }
485
486 enum {
487 FUSE_PASSTHROUGH_API_UNAVAILABLE,
488 FUSE_PASSTHROUGH_API_V0,
489 FUSE_PASSTHROUGH_API_V1,
490 FUSE_PASSTHROUGH_API_V2,
491 FUSE_PASSTHROUGH_API_STABLE,
492 };
493
494 /*
495 * Requests the FUSE passthrough feature to be enabled on a specific file
496 * through the passed fd.
497 * This function returns an identifier that must be used as passthrough_fh
498 * when the open/create_open request reply is sent back to /dev/fuse.
499 * As for the current FUSE passthrough implementation, passthrough_fh values
500 * are only valid if > 0, so in case the FUSE passthrough open ioctl returns
501 * a value <= 0, this must be considered an error and is returned as-is by
502 * this function.
503 */
fuse_passthrough_enable(fuse_req_t req,unsigned int fd)504 int fuse_passthrough_enable(fuse_req_t req, unsigned int fd) {
505 static sig_atomic_t passthrough_version = FUSE_PASSTHROUGH_API_STABLE;
506 int ret = 0; /* values <= 0 represent errors in FUSE passthrough */
507
508 /*
509 * The interface of FUSE passthrough is still unstable in the kernel,
510 * so the following solution is to search for the most updated API
511 * version and, if not found, fall back to an older one.
512 * This happens when ioctl() returns -1 and errno is set to ENOTTY,
513 * an error code that corresponds to the lack of a specific ioctl.
514 */
515 switch (passthrough_version) {
516 case FUSE_PASSTHROUGH_API_STABLE:
517 /* There is not a stable API yet */
518 passthrough_version = FUSE_PASSTHROUGH_API_V2;
519 case FUSE_PASSTHROUGH_API_V2: {
520 ret = ioctl(req->se->fd, FUSE_DEV_IOC_PASSTHROUGH_OPEN_V2, &fd);
521 if (ret == -1 && errno == ENOTTY)
522 passthrough_version = FUSE_PASSTHROUGH_API_V1;
523 else
524 break;
525 }
526 case FUSE_PASSTHROUGH_API_V1: {
527 struct fuse_passthrough_out_v0 out = {};
528 out.fd = fd;
529
530 ret = ioctl(req->se->fd, FUSE_DEV_IOC_PASSTHROUGH_OPEN_V1, &out);
531 if (ret == -1 && errno == ENOTTY)
532 passthrough_version = FUSE_PASSTHROUGH_API_V0;
533 else
534 break;
535 }
536 case FUSE_PASSTHROUGH_API_V0: {
537 struct fuse_passthrough_out_v0 out = {};
538 out.fd = fd;
539
540 ret = ioctl(req->se->fd, FUSE_DEV_IOC_PASSTHROUGH_OPEN_V0, &out);
541 if (ret == -1 && errno == ENOTTY)
542 passthrough_version = FUSE_PASSTHROUGH_API_UNAVAILABLE;
543 else
544 break;
545 }
546 default:
547 fuse_log(FUSE_LOG_ERR, "fuse: passthrough_enable no valid API\n");
548 return -ENOTTY;
549 }
550
551 if (ret <= 0)
552 fuse_log(FUSE_LOG_ERR, "fuse: passthrough_enable: %s\n", strerror(errno));
553
554 return ret;
555 }
556
fuse_reply_open(fuse_req_t req,const struct fuse_file_info * f)557 int fuse_reply_open(fuse_req_t req, const struct fuse_file_info *f)
558 {
559 struct fuse_open_out arg;
560
561 memset(&arg, 0, sizeof(arg));
562 fill_open(&arg, f);
563 return send_reply_ok(req, &arg, sizeof(arg));
564 }
565
fuse_reply_write(fuse_req_t req,size_t count)566 int fuse_reply_write(fuse_req_t req, size_t count)
567 {
568 struct fuse_write_out arg;
569
570 memset(&arg, 0, sizeof(arg));
571 arg.size = count;
572
573 return send_reply_ok(req, &arg, sizeof(arg));
574 }
575
fuse_reply_buf(fuse_req_t req,const char * buf,size_t size)576 int fuse_reply_buf(fuse_req_t req, const char *buf, size_t size)
577 {
578 return send_reply_ok(req, buf, size);
579 }
580
fuse_send_data_iov_fallback(struct fuse_session * se,struct fuse_chan * ch,struct iovec * iov,int iov_count,struct fuse_bufvec * buf,size_t len)581 static int fuse_send_data_iov_fallback(struct fuse_session *se,
582 struct fuse_chan *ch,
583 struct iovec *iov, int iov_count,
584 struct fuse_bufvec *buf,
585 size_t len)
586 {
587 struct fuse_bufvec mem_buf = FUSE_BUFVEC_INIT(len);
588 void *mbuf;
589 int res;
590
591 /* Optimize common case */
592 if (buf->count == 1 && buf->idx == 0 && buf->off == 0 &&
593 !(buf->buf[0].flags & FUSE_BUF_IS_FD)) {
594 /* FIXME: also avoid memory copy if there are multiple buffers
595 but none of them contain an fd */
596
597 iov[iov_count].iov_base = buf->buf[0].mem;
598 iov[iov_count].iov_len = len;
599 iov_count++;
600 return fuse_send_msg(se, ch, iov, iov_count);
601 }
602
603 res = posix_memalign(&mbuf, pagesize, len);
604 if (res != 0)
605 return res;
606
607 mem_buf.buf[0].mem = mbuf;
608 res = fuse_buf_copy(&mem_buf, buf, 0);
609 if (res < 0) {
610 free(mbuf);
611 return -res;
612 }
613 len = res;
614
615 iov[iov_count].iov_base = mbuf;
616 iov[iov_count].iov_len = len;
617 iov_count++;
618 res = fuse_send_msg(se, ch, iov, iov_count);
619 free(mbuf);
620
621 return res;
622 }
623
624 struct fuse_ll_pipe {
625 size_t size;
626 int can_grow;
627 int pipe[2];
628 };
629
fuse_ll_pipe_free(struct fuse_ll_pipe * llp)630 static void fuse_ll_pipe_free(struct fuse_ll_pipe *llp)
631 {
632 close(llp->pipe[0]);
633 close(llp->pipe[1]);
634 free(llp);
635 }
636
637 #ifdef HAVE_SPLICE
638 #if !defined(HAVE_PIPE2) || !defined(O_CLOEXEC)
fuse_pipe(int fds[2])639 static int fuse_pipe(int fds[2])
640 {
641 int rv = pipe(fds);
642
643 if (rv == -1)
644 return rv;
645
646 if (fcntl(fds[0], F_SETFL, O_NONBLOCK) == -1 ||
647 fcntl(fds[1], F_SETFL, O_NONBLOCK) == -1 ||
648 fcntl(fds[0], F_SETFD, FD_CLOEXEC) == -1 ||
649 fcntl(fds[1], F_SETFD, FD_CLOEXEC) == -1) {
650 close(fds[0]);
651 close(fds[1]);
652 rv = -1;
653 }
654 return rv;
655 }
656 #else
fuse_pipe(int fds[2])657 static int fuse_pipe(int fds[2])
658 {
659 return pipe2(fds, O_CLOEXEC | O_NONBLOCK);
660 }
661 #endif
662
fuse_ll_get_pipe(struct fuse_session * se)663 static struct fuse_ll_pipe *fuse_ll_get_pipe(struct fuse_session *se)
664 {
665 struct fuse_ll_pipe *llp = pthread_getspecific(se->pipe_key);
666 if (llp == NULL) {
667 int res;
668
669 llp = malloc(sizeof(struct fuse_ll_pipe));
670 if (llp == NULL)
671 return NULL;
672
673 res = fuse_pipe(llp->pipe);
674 if (res == -1) {
675 free(llp);
676 return NULL;
677 }
678
679 /*
680 *the default size is 16 pages on linux
681 */
682 llp->size = pagesize * 16;
683 llp->can_grow = 1;
684
685 pthread_setspecific(se->pipe_key, llp);
686 }
687
688 return llp;
689 }
690 #endif
691
fuse_ll_clear_pipe(struct fuse_session * se)692 static void fuse_ll_clear_pipe(struct fuse_session *se)
693 {
694 struct fuse_ll_pipe *llp = pthread_getspecific(se->pipe_key);
695 if (llp) {
696 pthread_setspecific(se->pipe_key, NULL);
697 fuse_ll_pipe_free(llp);
698 }
699 }
700
701 #if defined(HAVE_SPLICE) && defined(HAVE_VMSPLICE)
read_back(int fd,char * buf,size_t len)702 static int read_back(int fd, char *buf, size_t len)
703 {
704 int res;
705
706 res = read(fd, buf, len);
707 if (res == -1) {
708 fuse_log(FUSE_LOG_ERR, "fuse: internal error: failed to read back from pipe: %s\n", strerror(errno));
709 return -EIO;
710 }
711 if (res != len) {
712 fuse_log(FUSE_LOG_ERR, "fuse: internal error: short read back from pipe: %i from %zi\n", res, len);
713 return -EIO;
714 }
715 return 0;
716 }
717
grow_pipe_to_max(int pipefd)718 static int grow_pipe_to_max(int pipefd)
719 {
720 int max;
721 int res;
722 int maxfd;
723 char buf[32];
724
725 maxfd = open("/proc/sys/fs/pipe-max-size", O_RDONLY);
726 if (maxfd < 0)
727 return -errno;
728
729 res = read(maxfd, buf, sizeof(buf) - 1);
730 if (res < 0) {
731 int saved_errno;
732
733 saved_errno = errno;
734 close(maxfd);
735 return -saved_errno;
736 }
737 close(maxfd);
738 buf[res] = '\0';
739
740 max = atoi(buf);
741 res = fcntl(pipefd, F_SETPIPE_SZ, max);
742 if (res < 0)
743 return -errno;
744 return max;
745 }
746
fuse_send_data_iov(struct fuse_session * se,struct fuse_chan * ch,struct iovec * iov,int iov_count,struct fuse_bufvec * buf,unsigned int flags)747 static int fuse_send_data_iov(struct fuse_session *se, struct fuse_chan *ch,
748 struct iovec *iov, int iov_count,
749 struct fuse_bufvec *buf, unsigned int flags)
750 {
751 int res;
752 size_t len = fuse_buf_size(buf);
753 struct fuse_out_header *out = iov[0].iov_base;
754 struct fuse_ll_pipe *llp;
755 int splice_flags;
756 size_t pipesize;
757 size_t total_buf_size;
758 size_t idx;
759 size_t headerlen;
760 struct fuse_bufvec pipe_buf = FUSE_BUFVEC_INIT(len);
761
762 if (se->broken_splice_nonblock)
763 goto fallback;
764
765 if (flags & FUSE_BUF_NO_SPLICE)
766 goto fallback;
767
768 total_buf_size = 0;
769 for (idx = buf->idx; idx < buf->count; idx++) {
770 total_buf_size += buf->buf[idx].size;
771 if (idx == buf->idx)
772 total_buf_size -= buf->off;
773 }
774 if (total_buf_size < 2 * pagesize)
775 goto fallback;
776
777 if (se->conn.proto_minor < 14 ||
778 !(se->conn.want & FUSE_CAP_SPLICE_WRITE))
779 goto fallback;
780
781 llp = fuse_ll_get_pipe(se);
782 if (llp == NULL)
783 goto fallback;
784
785
786 headerlen = iov_length(iov, iov_count);
787
788 out->len = headerlen + len;
789
790 /*
791 * Heuristic for the required pipe size, does not work if the
792 * source contains less than page size fragments
793 */
794 pipesize = pagesize * (iov_count + buf->count + 1) + out->len;
795
796 if (llp->size < pipesize) {
797 if (llp->can_grow) {
798 res = fcntl(llp->pipe[0], F_SETPIPE_SZ, pipesize);
799 if (res == -1) {
800 res = grow_pipe_to_max(llp->pipe[0]);
801 if (res > 0)
802 llp->size = res;
803 llp->can_grow = 0;
804 goto fallback;
805 }
806 llp->size = res;
807 }
808 if (llp->size < pipesize)
809 goto fallback;
810 }
811
812
813 res = vmsplice(llp->pipe[1], iov, iov_count, SPLICE_F_NONBLOCK);
814 if (res == -1)
815 goto fallback;
816
817 if (res != headerlen) {
818 res = -EIO;
819 fuse_log(FUSE_LOG_ERR, "fuse: short vmsplice to pipe: %u/%zu\n", res,
820 headerlen);
821 goto clear_pipe;
822 }
823
824 pipe_buf.buf[0].flags = FUSE_BUF_IS_FD;
825 pipe_buf.buf[0].fd = llp->pipe[1];
826
827 res = fuse_buf_copy(&pipe_buf, buf,
828 FUSE_BUF_FORCE_SPLICE | FUSE_BUF_SPLICE_NONBLOCK);
829 if (res < 0) {
830 if (res == -EAGAIN || res == -EINVAL) {
831 /*
832 * Should only get EAGAIN on kernels with
833 * broken SPLICE_F_NONBLOCK support (<=
834 * 2.6.35) where this error or a short read is
835 * returned even if the pipe itself is not
836 * full
837 *
838 * EINVAL might mean that splice can't handle
839 * this combination of input and output.
840 */
841 if (res == -EAGAIN)
842 se->broken_splice_nonblock = 1;
843
844 pthread_setspecific(se->pipe_key, NULL);
845 fuse_ll_pipe_free(llp);
846 goto fallback;
847 }
848 res = -res;
849 goto clear_pipe;
850 }
851
852 if (res != 0 && res < len) {
853 struct fuse_bufvec mem_buf = FUSE_BUFVEC_INIT(len);
854 void *mbuf;
855 size_t now_len = res;
856 /*
857 * For regular files a short count is either
858 * 1) due to EOF, or
859 * 2) because of broken SPLICE_F_NONBLOCK (see above)
860 *
861 * For other inputs it's possible that we overflowed
862 * the pipe because of small buffer fragments.
863 */
864
865 res = posix_memalign(&mbuf, pagesize, len);
866 if (res != 0)
867 goto clear_pipe;
868
869 mem_buf.buf[0].mem = mbuf;
870 mem_buf.off = now_len;
871 res = fuse_buf_copy(&mem_buf, buf, 0);
872 if (res > 0) {
873 char *tmpbuf;
874 size_t extra_len = res;
875 /*
876 * Trickiest case: got more data. Need to get
877 * back the data from the pipe and then fall
878 * back to regular write.
879 */
880 tmpbuf = malloc(headerlen);
881 if (tmpbuf == NULL) {
882 free(mbuf);
883 res = ENOMEM;
884 goto clear_pipe;
885 }
886 res = read_back(llp->pipe[0], tmpbuf, headerlen);
887 free(tmpbuf);
888 if (res != 0) {
889 free(mbuf);
890 goto clear_pipe;
891 }
892 res = read_back(llp->pipe[0], mbuf, now_len);
893 if (res != 0) {
894 free(mbuf);
895 goto clear_pipe;
896 }
897 len = now_len + extra_len;
898 iov[iov_count].iov_base = mbuf;
899 iov[iov_count].iov_len = len;
900 iov_count++;
901 res = fuse_send_msg(se, ch, iov, iov_count);
902 free(mbuf);
903 return res;
904 }
905 free(mbuf);
906 res = now_len;
907 }
908 len = res;
909 out->len = headerlen + len;
910
911 if (se->debug) {
912 fuse_log(FUSE_LOG_DEBUG,
913 " unique: %llu, success, outsize: %i (splice)\n",
914 (unsigned long long) out->unique, out->len);
915 }
916
917 splice_flags = 0;
918 if ((flags & FUSE_BUF_SPLICE_MOVE) &&
919 (se->conn.want & FUSE_CAP_SPLICE_MOVE))
920 splice_flags |= SPLICE_F_MOVE;
921
922 res = splice(llp->pipe[0], NULL, ch ? ch->fd : se->fd,
923 NULL, out->len, splice_flags);
924 if (res == -1) {
925 res = -errno;
926 perror("fuse: splice from pipe");
927 goto clear_pipe;
928 }
929 if (res != out->len) {
930 res = -EIO;
931 fuse_log(FUSE_LOG_ERR, "fuse: short splice from pipe: %u/%u\n",
932 res, out->len);
933 goto clear_pipe;
934 }
935 return 0;
936
937 clear_pipe:
938 fuse_ll_clear_pipe(se);
939 return res;
940
941 fallback:
942 return fuse_send_data_iov_fallback(se, ch, iov, iov_count, buf, len);
943 }
944 #else
fuse_send_data_iov(struct fuse_session * se,struct fuse_chan * ch,struct iovec * iov,int iov_count,struct fuse_bufvec * buf,unsigned int flags)945 static int fuse_send_data_iov(struct fuse_session *se, struct fuse_chan *ch,
946 struct iovec *iov, int iov_count,
947 struct fuse_bufvec *buf, unsigned int flags)
948 {
949 size_t len = fuse_buf_size(buf);
950 (void) flags;
951
952 return fuse_send_data_iov_fallback(se, ch, iov, iov_count, buf, len);
953 }
954 #endif
955
fuse_reply_data(fuse_req_t req,struct fuse_bufvec * bufv,enum fuse_buf_copy_flags flags)956 int fuse_reply_data(fuse_req_t req, struct fuse_bufvec *bufv,
957 enum fuse_buf_copy_flags flags)
958 {
959 struct iovec iov[2];
960 struct fuse_out_header out;
961 int res;
962
963 iov[0].iov_base = &out;
964 iov[0].iov_len = sizeof(struct fuse_out_header);
965
966 out.unique = req->unique;
967 out.error = 0;
968
969 res = fuse_send_data_iov(req->se, req->ch, iov, 1, bufv, flags);
970 if (res <= 0) {
971 fuse_free_req(req);
972 return res;
973 } else {
974 return fuse_reply_err(req, res);
975 }
976 }
977
fuse_reply_statfs(fuse_req_t req,const struct statvfs * stbuf)978 int fuse_reply_statfs(fuse_req_t req, const struct statvfs *stbuf)
979 {
980 struct fuse_statfs_out arg;
981 size_t size = req->se->conn.proto_minor < 4 ?
982 FUSE_COMPAT_STATFS_SIZE : sizeof(arg);
983
984 memset(&arg, 0, sizeof(arg));
985 convert_statfs(stbuf, &arg.st);
986
987 return send_reply_ok(req, &arg, size);
988 }
989
fuse_reply_xattr(fuse_req_t req,size_t count)990 int fuse_reply_xattr(fuse_req_t req, size_t count)
991 {
992 struct fuse_getxattr_out arg;
993
994 memset(&arg, 0, sizeof(arg));
995 arg.size = count;
996
997 return send_reply_ok(req, &arg, sizeof(arg));
998 }
999
fuse_reply_lock(fuse_req_t req,const struct flock * lock)1000 int fuse_reply_lock(fuse_req_t req, const struct flock *lock)
1001 {
1002 struct fuse_lk_out arg;
1003
1004 memset(&arg, 0, sizeof(arg));
1005 arg.lk.type = lock->l_type;
1006 if (lock->l_type != F_UNLCK) {
1007 arg.lk.start = lock->l_start;
1008 if (lock->l_len == 0)
1009 arg.lk.end = OFFSET_MAX;
1010 else
1011 arg.lk.end = lock->l_start + lock->l_len - 1;
1012 }
1013 arg.lk.pid = lock->l_pid;
1014 return send_reply_ok(req, &arg, sizeof(arg));
1015 }
1016
fuse_reply_bmap(fuse_req_t req,uint64_t idx)1017 int fuse_reply_bmap(fuse_req_t req, uint64_t idx)
1018 {
1019 struct fuse_bmap_out arg;
1020
1021 memset(&arg, 0, sizeof(arg));
1022 arg.block = idx;
1023
1024 return send_reply_ok(req, &arg, sizeof(arg));
1025 }
1026
fuse_ioctl_iovec_copy(const struct iovec * iov,size_t count)1027 static struct fuse_ioctl_iovec *fuse_ioctl_iovec_copy(const struct iovec *iov,
1028 size_t count)
1029 {
1030 struct fuse_ioctl_iovec *fiov;
1031 size_t i;
1032
1033 fiov = malloc(sizeof(fiov[0]) * count);
1034 if (!fiov)
1035 return NULL;
1036
1037 for (i = 0; i < count; i++) {
1038 fiov[i].base = (uintptr_t) iov[i].iov_base;
1039 fiov[i].len = iov[i].iov_len;
1040 }
1041
1042 return fiov;
1043 }
1044
fuse_reply_ioctl_retry(fuse_req_t req,const struct iovec * in_iov,size_t in_count,const struct iovec * out_iov,size_t out_count)1045 int fuse_reply_ioctl_retry(fuse_req_t req,
1046 const struct iovec *in_iov, size_t in_count,
1047 const struct iovec *out_iov, size_t out_count)
1048 {
1049 struct fuse_ioctl_out arg;
1050 struct fuse_ioctl_iovec *in_fiov = NULL;
1051 struct fuse_ioctl_iovec *out_fiov = NULL;
1052 struct iovec iov[4];
1053 size_t count = 1;
1054 int res;
1055
1056 memset(&arg, 0, sizeof(arg));
1057 arg.flags |= FUSE_IOCTL_RETRY;
1058 arg.in_iovs = in_count;
1059 arg.out_iovs = out_count;
1060 iov[count].iov_base = &arg;
1061 iov[count].iov_len = sizeof(arg);
1062 count++;
1063
1064 if (req->se->conn.proto_minor < 16) {
1065 if (in_count) {
1066 iov[count].iov_base = (void *)in_iov;
1067 iov[count].iov_len = sizeof(in_iov[0]) * in_count;
1068 count++;
1069 }
1070
1071 if (out_count) {
1072 iov[count].iov_base = (void *)out_iov;
1073 iov[count].iov_len = sizeof(out_iov[0]) * out_count;
1074 count++;
1075 }
1076 } else {
1077 /* Can't handle non-compat 64bit ioctls on 32bit */
1078 if (sizeof(void *) == 4 && req->ioctl_64bit) {
1079 res = fuse_reply_err(req, EINVAL);
1080 goto out;
1081 }
1082
1083 if (in_count) {
1084 in_fiov = fuse_ioctl_iovec_copy(in_iov, in_count);
1085 if (!in_fiov)
1086 goto enomem;
1087
1088 iov[count].iov_base = (void *)in_fiov;
1089 iov[count].iov_len = sizeof(in_fiov[0]) * in_count;
1090 count++;
1091 }
1092 if (out_count) {
1093 out_fiov = fuse_ioctl_iovec_copy(out_iov, out_count);
1094 if (!out_fiov)
1095 goto enomem;
1096
1097 iov[count].iov_base = (void *)out_fiov;
1098 iov[count].iov_len = sizeof(out_fiov[0]) * out_count;
1099 count++;
1100 }
1101 }
1102
1103 res = send_reply_iov(req, 0, iov, count);
1104 out:
1105 free(in_fiov);
1106 free(out_fiov);
1107
1108 return res;
1109
1110 enomem:
1111 res = fuse_reply_err(req, ENOMEM);
1112 goto out;
1113 }
1114
fuse_reply_ioctl(fuse_req_t req,int result,const void * buf,size_t size)1115 int fuse_reply_ioctl(fuse_req_t req, int result, const void *buf, size_t size)
1116 {
1117 struct fuse_ioctl_out arg;
1118 struct iovec iov[3];
1119 size_t count = 1;
1120
1121 memset(&arg, 0, sizeof(arg));
1122 arg.result = result;
1123 iov[count].iov_base = &arg;
1124 iov[count].iov_len = sizeof(arg);
1125 count++;
1126
1127 if (size) {
1128 iov[count].iov_base = (char *) buf;
1129 iov[count].iov_len = size;
1130 count++;
1131 }
1132
1133 return send_reply_iov(req, 0, iov, count);
1134 }
1135
fuse_reply_ioctl_iov(fuse_req_t req,int result,const struct iovec * iov,int count)1136 int fuse_reply_ioctl_iov(fuse_req_t req, int result, const struct iovec *iov,
1137 int count)
1138 {
1139 struct iovec *padded_iov;
1140 struct fuse_ioctl_out arg;
1141 int res;
1142
1143 padded_iov = malloc((count + 2) * sizeof(struct iovec));
1144 if (padded_iov == NULL)
1145 return fuse_reply_err(req, ENOMEM);
1146
1147 memset(&arg, 0, sizeof(arg));
1148 arg.result = result;
1149 padded_iov[1].iov_base = &arg;
1150 padded_iov[1].iov_len = sizeof(arg);
1151
1152 memcpy(&padded_iov[2], iov, count * sizeof(struct iovec));
1153
1154 res = send_reply_iov(req, 0, padded_iov, count + 2);
1155 free(padded_iov);
1156
1157 return res;
1158 }
1159
fuse_reply_poll(fuse_req_t req,unsigned revents)1160 int fuse_reply_poll(fuse_req_t req, unsigned revents)
1161 {
1162 struct fuse_poll_out arg;
1163
1164 memset(&arg, 0, sizeof(arg));
1165 arg.revents = revents;
1166
1167 return send_reply_ok(req, &arg, sizeof(arg));
1168 }
1169
fuse_reply_lseek(fuse_req_t req,off_t off)1170 int fuse_reply_lseek(fuse_req_t req, off_t off)
1171 {
1172 struct fuse_lseek_out arg;
1173
1174 memset(&arg, 0, sizeof(arg));
1175 arg.offset = off;
1176
1177 return send_reply_ok(req, &arg, sizeof(arg));
1178 }
1179
do_lookup(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1180 static void do_lookup(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1181 {
1182 char *name = (char *) inarg;
1183
1184 if (req->se->op.lookup)
1185 req->se->op.lookup(req, nodeid, name);
1186 else
1187 fuse_reply_err(req, ENOSYS);
1188 }
1189
do_forget(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1190 static void do_forget(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1191 {
1192 struct fuse_forget_in *arg = (struct fuse_forget_in *) inarg;
1193
1194 if (req->se->op.forget)
1195 req->se->op.forget(req, nodeid, arg->nlookup);
1196 else
1197 fuse_reply_none(req);
1198 }
1199
do_batch_forget(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1200 static void do_batch_forget(fuse_req_t req, fuse_ino_t nodeid,
1201 const void *inarg)
1202 {
1203 struct fuse_batch_forget_in *arg = (void *) inarg;
1204 struct fuse_forget_one *param = (void *) PARAM(arg);
1205 unsigned int i;
1206
1207 (void) nodeid;
1208
1209 if (req->se->op.forget_multi) {
1210 req->se->op.forget_multi(req, arg->count,
1211 (struct fuse_forget_data *) param);
1212 } else if (req->se->op.forget) {
1213 for (i = 0; i < arg->count; i++) {
1214 struct fuse_forget_one *forget = ¶m[i];
1215 struct fuse_req *dummy_req;
1216
1217 dummy_req = fuse_ll_alloc_req(req->se);
1218 if (dummy_req == NULL)
1219 break;
1220
1221 dummy_req->unique = req->unique;
1222 dummy_req->ctx = req->ctx;
1223 dummy_req->ch = NULL;
1224
1225 req->se->op.forget(dummy_req, forget->nodeid,
1226 forget->nlookup);
1227 }
1228 fuse_reply_none(req);
1229 } else {
1230 fuse_reply_none(req);
1231 }
1232 }
1233
do_getattr(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1234 static void do_getattr(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1235 {
1236 struct fuse_file_info *fip = NULL;
1237 struct fuse_file_info fi;
1238
1239 if (req->se->conn.proto_minor >= 9) {
1240 struct fuse_getattr_in *arg = (struct fuse_getattr_in *) inarg;
1241
1242 if (arg->getattr_flags & FUSE_GETATTR_FH) {
1243 memset(&fi, 0, sizeof(fi));
1244 fi.fh = arg->fh;
1245 fip = &fi;
1246 }
1247 }
1248
1249 if (req->se->op.getattr)
1250 req->se->op.getattr(req, nodeid, fip);
1251 else
1252 fuse_reply_err(req, ENOSYS);
1253 }
1254
do_setattr(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1255 static void do_setattr(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1256 {
1257 struct fuse_setattr_in *arg = (struct fuse_setattr_in *) inarg;
1258
1259 if (req->se->op.setattr) {
1260 struct fuse_file_info *fi = NULL;
1261 struct fuse_file_info fi_store;
1262 struct stat stbuf;
1263 memset(&stbuf, 0, sizeof(stbuf));
1264 convert_attr(arg, &stbuf);
1265 if (arg->valid & FATTR_FH) {
1266 arg->valid &= ~FATTR_FH;
1267 memset(&fi_store, 0, sizeof(fi_store));
1268 fi = &fi_store;
1269 fi->fh = arg->fh;
1270 }
1271 arg->valid &=
1272 FUSE_SET_ATTR_MODE |
1273 FUSE_SET_ATTR_UID |
1274 FUSE_SET_ATTR_GID |
1275 FUSE_SET_ATTR_SIZE |
1276 FUSE_SET_ATTR_ATIME |
1277 FUSE_SET_ATTR_MTIME |
1278 FUSE_SET_ATTR_ATIME_NOW |
1279 FUSE_SET_ATTR_MTIME_NOW |
1280 FUSE_SET_ATTR_CTIME;
1281
1282 req->se->op.setattr(req, nodeid, &stbuf, arg->valid, fi);
1283 } else
1284 fuse_reply_err(req, ENOSYS);
1285 }
1286
do_access(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1287 static void do_access(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1288 {
1289 struct fuse_access_in *arg = (struct fuse_access_in *) inarg;
1290
1291 if (req->se->op.access)
1292 req->se->op.access(req, nodeid, arg->mask);
1293 else
1294 fuse_reply_err(req, ENOSYS);
1295 }
1296
do_readlink(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1297 static void do_readlink(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1298 {
1299 (void) inarg;
1300
1301 if (req->se->op.readlink)
1302 req->se->op.readlink(req, nodeid);
1303 else
1304 fuse_reply_err(req, ENOSYS);
1305 }
1306
do_canonical_path(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1307 static void do_canonical_path(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1308 {
1309 (void) inarg;
1310
1311 if (req->se->op.canonical_path)
1312 req->se->op.canonical_path(req, nodeid);
1313 else
1314 fuse_reply_err(req, ENOSYS);
1315 }
1316
do_mknod(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1317 static void do_mknod(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1318 {
1319 struct fuse_mknod_in *arg = (struct fuse_mknod_in *) inarg;
1320 char *name = PARAM(arg);
1321
1322 if (req->se->conn.proto_minor >= 12)
1323 req->ctx.umask = arg->umask;
1324 else
1325 name = (char *) inarg + FUSE_COMPAT_MKNOD_IN_SIZE;
1326
1327 if (req->se->op.mknod)
1328 req->se->op.mknod(req, nodeid, name, arg->mode, arg->rdev);
1329 else
1330 fuse_reply_err(req, ENOSYS);
1331 }
1332
do_mkdir(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1333 static void do_mkdir(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1334 {
1335 struct fuse_mkdir_in *arg = (struct fuse_mkdir_in *) inarg;
1336
1337 if (req->se->conn.proto_minor >= 12)
1338 req->ctx.umask = arg->umask;
1339
1340 if (req->se->op.mkdir)
1341 req->se->op.mkdir(req, nodeid, PARAM(arg), arg->mode);
1342 else
1343 fuse_reply_err(req, ENOSYS);
1344 }
1345
do_unlink(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1346 static void do_unlink(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1347 {
1348 char *name = (char *) inarg;
1349
1350 if (req->se->op.unlink)
1351 req->se->op.unlink(req, nodeid, name);
1352 else
1353 fuse_reply_err(req, ENOSYS);
1354 }
1355
do_rmdir(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1356 static void do_rmdir(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1357 {
1358 char *name = (char *) inarg;
1359
1360 if (req->se->op.rmdir)
1361 req->se->op.rmdir(req, nodeid, name);
1362 else
1363 fuse_reply_err(req, ENOSYS);
1364 }
1365
do_symlink(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1366 static void do_symlink(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1367 {
1368 char *name = (char *) inarg;
1369 char *linkname = ((char *) inarg) + strlen((char *) inarg) + 1;
1370
1371 if (req->se->op.symlink)
1372 req->se->op.symlink(req, linkname, nodeid, name);
1373 else
1374 fuse_reply_err(req, ENOSYS);
1375 }
1376
do_rename(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1377 static void do_rename(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1378 {
1379 struct fuse_rename_in *arg = (struct fuse_rename_in *) inarg;
1380 char *oldname = PARAM(arg);
1381 char *newname = oldname + strlen(oldname) + 1;
1382
1383 if (req->se->op.rename)
1384 req->se->op.rename(req, nodeid, oldname, arg->newdir, newname,
1385 0);
1386 else
1387 fuse_reply_err(req, ENOSYS);
1388 }
1389
do_rename2(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1390 static void do_rename2(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1391 {
1392 struct fuse_rename2_in *arg = (struct fuse_rename2_in *) inarg;
1393 char *oldname = PARAM(arg);
1394 char *newname = oldname + strlen(oldname) + 1;
1395
1396 if (req->se->op.rename)
1397 req->se->op.rename(req, nodeid, oldname, arg->newdir, newname,
1398 arg->flags);
1399 else
1400 fuse_reply_err(req, ENOSYS);
1401 }
1402
do_link(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1403 static void do_link(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1404 {
1405 struct fuse_link_in *arg = (struct fuse_link_in *) inarg;
1406
1407 if (req->se->op.link)
1408 req->se->op.link(req, arg->oldnodeid, nodeid, PARAM(arg));
1409 else
1410 fuse_reply_err(req, ENOSYS);
1411 }
1412
do_create(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1413 static void do_create(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1414 {
1415 struct fuse_create_in *arg = (struct fuse_create_in *) inarg;
1416
1417 if (req->se->op.create) {
1418 struct fuse_file_info fi;
1419 char *name = PARAM(arg);
1420
1421 memset(&fi, 0, sizeof(fi));
1422 fi.flags = arg->flags;
1423
1424 if (req->se->conn.proto_minor >= 12)
1425 req->ctx.umask = arg->umask;
1426 else
1427 name = (char *) inarg + sizeof(struct fuse_open_in);
1428
1429 req->se->op.create(req, nodeid, name, arg->mode, &fi);
1430 } else
1431 fuse_reply_err(req, ENOSYS);
1432 }
1433
do_open(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1434 static void do_open(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1435 {
1436 struct fuse_open_in *arg = (struct fuse_open_in *) inarg;
1437 struct fuse_file_info fi;
1438
1439 memset(&fi, 0, sizeof(fi));
1440 fi.flags = arg->flags;
1441
1442 if (req->se->op.open)
1443 req->se->op.open(req, nodeid, &fi);
1444 else
1445 fuse_reply_open(req, &fi);
1446 }
1447
do_read(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1448 static void do_read(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1449 {
1450 struct fuse_read_in *arg = (struct fuse_read_in *) inarg;
1451
1452 if (req->se->op.read) {
1453 struct fuse_file_info fi;
1454
1455 memset(&fi, 0, sizeof(fi));
1456 fi.fh = arg->fh;
1457 if (req->se->conn.proto_minor >= 9) {
1458 fi.lock_owner = arg->lock_owner;
1459 fi.flags = arg->flags;
1460 }
1461 req->se->op.read(req, nodeid, arg->size, arg->offset, &fi);
1462 } else
1463 fuse_reply_err(req, ENOSYS);
1464 }
1465
do_write(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1466 static void do_write(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1467 {
1468 struct fuse_write_in *arg = (struct fuse_write_in *) inarg;
1469 struct fuse_file_info fi;
1470 char *param;
1471
1472 memset(&fi, 0, sizeof(fi));
1473 fi.fh = arg->fh;
1474 fi.writepage = (arg->write_flags & FUSE_WRITE_CACHE) != 0;
1475
1476 if (req->se->conn.proto_minor < 9) {
1477 param = ((char *) arg) + FUSE_COMPAT_WRITE_IN_SIZE;
1478 } else {
1479 fi.lock_owner = arg->lock_owner;
1480 fi.flags = arg->flags;
1481 param = PARAM(arg);
1482 }
1483
1484 if (req->se->op.write)
1485 req->se->op.write(req, nodeid, param, arg->size,
1486 arg->offset, &fi);
1487 else
1488 fuse_reply_err(req, ENOSYS);
1489 }
1490
do_write_buf(fuse_req_t req,fuse_ino_t nodeid,const void * inarg,const struct fuse_buf * ibuf)1491 static void do_write_buf(fuse_req_t req, fuse_ino_t nodeid, const void *inarg,
1492 const struct fuse_buf *ibuf)
1493 {
1494 struct fuse_session *se = req->se;
1495 struct fuse_bufvec bufv = {
1496 .buf[0] = *ibuf,
1497 .count = 1,
1498 };
1499 struct fuse_write_in *arg = (struct fuse_write_in *) inarg;
1500 struct fuse_file_info fi;
1501
1502 memset(&fi, 0, sizeof(fi));
1503 fi.fh = arg->fh;
1504 fi.writepage = arg->write_flags & FUSE_WRITE_CACHE;
1505
1506 if (se->conn.proto_minor < 9) {
1507 bufv.buf[0].mem = ((char *) arg) + FUSE_COMPAT_WRITE_IN_SIZE;
1508 bufv.buf[0].size -= sizeof(struct fuse_in_header) +
1509 FUSE_COMPAT_WRITE_IN_SIZE;
1510 assert(!(bufv.buf[0].flags & FUSE_BUF_IS_FD));
1511 } else {
1512 fi.lock_owner = arg->lock_owner;
1513 fi.flags = arg->flags;
1514 if (!(bufv.buf[0].flags & FUSE_BUF_IS_FD))
1515 bufv.buf[0].mem = PARAM(arg);
1516
1517 bufv.buf[0].size -= sizeof(struct fuse_in_header) +
1518 sizeof(struct fuse_write_in);
1519 }
1520 if (bufv.buf[0].size < arg->size) {
1521 fuse_log(FUSE_LOG_ERR, "fuse: do_write_buf: buffer size too small\n");
1522 fuse_reply_err(req, EIO);
1523 goto out;
1524 }
1525 bufv.buf[0].size = arg->size;
1526
1527 se->op.write_buf(req, nodeid, &bufv, arg->offset, &fi);
1528
1529 out:
1530 /* Need to reset the pipe if ->write_buf() didn't consume all data */
1531 if ((ibuf->flags & FUSE_BUF_IS_FD) && bufv.idx < bufv.count)
1532 fuse_ll_clear_pipe(se);
1533 }
1534
do_flush(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1535 static void do_flush(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1536 {
1537 struct fuse_flush_in *arg = (struct fuse_flush_in *) inarg;
1538 struct fuse_file_info fi;
1539
1540 memset(&fi, 0, sizeof(fi));
1541 fi.fh = arg->fh;
1542 fi.flush = 1;
1543 if (req->se->conn.proto_minor >= 7)
1544 fi.lock_owner = arg->lock_owner;
1545
1546 if (req->se->op.flush)
1547 req->se->op.flush(req, nodeid, &fi);
1548 else
1549 fuse_reply_err(req, ENOSYS);
1550 }
1551
do_release(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1552 static void do_release(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1553 {
1554 struct fuse_release_in *arg = (struct fuse_release_in *) inarg;
1555 struct fuse_file_info fi;
1556
1557 memset(&fi, 0, sizeof(fi));
1558 fi.flags = arg->flags;
1559 fi.fh = arg->fh;
1560 if (req->se->conn.proto_minor >= 8) {
1561 fi.flush = (arg->release_flags & FUSE_RELEASE_FLUSH) ? 1 : 0;
1562 fi.lock_owner = arg->lock_owner;
1563 }
1564 if (arg->release_flags & FUSE_RELEASE_FLOCK_UNLOCK) {
1565 fi.flock_release = 1;
1566 fi.lock_owner = arg->lock_owner;
1567 }
1568
1569 if (req->se->op.release)
1570 req->se->op.release(req, nodeid, &fi);
1571 else
1572 fuse_reply_err(req, 0);
1573 }
1574
do_fsync(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1575 static void do_fsync(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1576 {
1577 struct fuse_fsync_in *arg = (struct fuse_fsync_in *) inarg;
1578 struct fuse_file_info fi;
1579 int datasync = arg->fsync_flags & 1;
1580
1581 memset(&fi, 0, sizeof(fi));
1582 fi.fh = arg->fh;
1583
1584 if (req->se->op.fsync)
1585 req->se->op.fsync(req, nodeid, datasync, &fi);
1586 else
1587 fuse_reply_err(req, ENOSYS);
1588 }
1589
do_opendir(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1590 static void do_opendir(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1591 {
1592 struct fuse_open_in *arg = (struct fuse_open_in *) inarg;
1593 struct fuse_file_info fi;
1594
1595 memset(&fi, 0, sizeof(fi));
1596 fi.flags = arg->flags;
1597
1598 if (req->se->op.opendir)
1599 req->se->op.opendir(req, nodeid, &fi);
1600 else
1601 fuse_reply_open(req, &fi);
1602 }
1603
do_readdir(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1604 static void do_readdir(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1605 {
1606 struct fuse_read_in *arg = (struct fuse_read_in *) inarg;
1607 struct fuse_file_info fi;
1608
1609 memset(&fi, 0, sizeof(fi));
1610 fi.fh = arg->fh;
1611
1612 if (req->se->op.readdir)
1613 req->se->op.readdir(req, nodeid, arg->size, arg->offset, &fi);
1614 else
1615 fuse_reply_err(req, ENOSYS);
1616 }
1617
do_readdirplus(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1618 static void do_readdirplus(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1619 {
1620 struct fuse_read_in *arg = (struct fuse_read_in *) inarg;
1621 struct fuse_file_info fi;
1622
1623 memset(&fi, 0, sizeof(fi));
1624 fi.fh = arg->fh;
1625
1626 if (req->se->op.readdirplus)
1627 req->se->op.readdirplus(req, nodeid, arg->size, arg->offset, &fi);
1628 else
1629 fuse_reply_err(req, ENOSYS);
1630 }
1631
do_releasedir(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1632 static void do_releasedir(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1633 {
1634 struct fuse_release_in *arg = (struct fuse_release_in *) inarg;
1635 struct fuse_file_info fi;
1636
1637 memset(&fi, 0, sizeof(fi));
1638 fi.flags = arg->flags;
1639 fi.fh = arg->fh;
1640
1641 if (req->se->op.releasedir)
1642 req->se->op.releasedir(req, nodeid, &fi);
1643 else
1644 fuse_reply_err(req, 0);
1645 }
1646
do_fsyncdir(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1647 static void do_fsyncdir(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1648 {
1649 struct fuse_fsync_in *arg = (struct fuse_fsync_in *) inarg;
1650 struct fuse_file_info fi;
1651 int datasync = arg->fsync_flags & 1;
1652
1653 memset(&fi, 0, sizeof(fi));
1654 fi.fh = arg->fh;
1655
1656 if (req->se->op.fsyncdir)
1657 req->se->op.fsyncdir(req, nodeid, datasync, &fi);
1658 else
1659 fuse_reply_err(req, ENOSYS);
1660 }
1661
do_statfs(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1662 static void do_statfs(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1663 {
1664 (void) nodeid;
1665 (void) inarg;
1666
1667 if (req->se->op.statfs)
1668 req->se->op.statfs(req, nodeid);
1669 else {
1670 struct statvfs buf = {
1671 .f_namemax = 255,
1672 .f_bsize = 512,
1673 };
1674 fuse_reply_statfs(req, &buf);
1675 }
1676 }
1677
do_setxattr(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1678 static void do_setxattr(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1679 {
1680 struct fuse_setxattr_in *arg = (struct fuse_setxattr_in *) inarg;
1681 char *name = PARAM(arg);
1682 char *value = name + strlen(name) + 1;
1683
1684 if (req->se->op.setxattr)
1685 req->se->op.setxattr(req, nodeid, name, value, arg->size,
1686 arg->flags);
1687 else
1688 fuse_reply_err(req, ENOSYS);
1689 }
1690
do_getxattr(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1691 static void do_getxattr(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1692 {
1693 struct fuse_getxattr_in *arg = (struct fuse_getxattr_in *) inarg;
1694
1695 if (req->se->op.getxattr)
1696 req->se->op.getxattr(req, nodeid, PARAM(arg), arg->size);
1697 else
1698 fuse_reply_err(req, ENOSYS);
1699 }
1700
do_listxattr(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1701 static void do_listxattr(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1702 {
1703 struct fuse_getxattr_in *arg = (struct fuse_getxattr_in *) inarg;
1704
1705 if (req->se->op.listxattr)
1706 req->se->op.listxattr(req, nodeid, arg->size);
1707 else
1708 fuse_reply_err(req, ENOSYS);
1709 }
1710
do_removexattr(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1711 static void do_removexattr(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1712 {
1713 char *name = (char *) inarg;
1714
1715 if (req->se->op.removexattr)
1716 req->se->op.removexattr(req, nodeid, name);
1717 else
1718 fuse_reply_err(req, ENOSYS);
1719 }
1720
convert_fuse_file_lock(struct fuse_file_lock * fl,struct flock * flock)1721 static void convert_fuse_file_lock(struct fuse_file_lock *fl,
1722 struct flock *flock)
1723 {
1724 memset(flock, 0, sizeof(struct flock));
1725 flock->l_type = fl->type;
1726 flock->l_whence = SEEK_SET;
1727 flock->l_start = fl->start;
1728 if (fl->end == OFFSET_MAX)
1729 flock->l_len = 0;
1730 else
1731 flock->l_len = fl->end - fl->start + 1;
1732 flock->l_pid = fl->pid;
1733 }
1734
do_getlk(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1735 static void do_getlk(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1736 {
1737 struct fuse_lk_in *arg = (struct fuse_lk_in *) inarg;
1738 struct fuse_file_info fi;
1739 struct flock flock;
1740
1741 memset(&fi, 0, sizeof(fi));
1742 fi.fh = arg->fh;
1743 fi.lock_owner = arg->owner;
1744
1745 convert_fuse_file_lock(&arg->lk, &flock);
1746 if (req->se->op.getlk)
1747 req->se->op.getlk(req, nodeid, &fi, &flock);
1748 else
1749 fuse_reply_err(req, ENOSYS);
1750 }
1751
do_setlk_common(fuse_req_t req,fuse_ino_t nodeid,const void * inarg,int sleep)1752 static void do_setlk_common(fuse_req_t req, fuse_ino_t nodeid,
1753 const void *inarg, int sleep)
1754 {
1755 struct fuse_lk_in *arg = (struct fuse_lk_in *) inarg;
1756 struct fuse_file_info fi;
1757 struct flock flock;
1758
1759 memset(&fi, 0, sizeof(fi));
1760 fi.fh = arg->fh;
1761 fi.lock_owner = arg->owner;
1762
1763 if (arg->lk_flags & FUSE_LK_FLOCK) {
1764 int op = 0;
1765
1766 switch (arg->lk.type) {
1767 case F_RDLCK:
1768 op = LOCK_SH;
1769 break;
1770 case F_WRLCK:
1771 op = LOCK_EX;
1772 break;
1773 case F_UNLCK:
1774 op = LOCK_UN;
1775 break;
1776 }
1777 if (!sleep)
1778 op |= LOCK_NB;
1779
1780 if (req->se->op.flock)
1781 req->se->op.flock(req, nodeid, &fi, op);
1782 else
1783 fuse_reply_err(req, ENOSYS);
1784 } else {
1785 convert_fuse_file_lock(&arg->lk, &flock);
1786 if (req->se->op.setlk)
1787 req->se->op.setlk(req, nodeid, &fi, &flock, sleep);
1788 else
1789 fuse_reply_err(req, ENOSYS);
1790 }
1791 }
1792
do_setlk(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1793 static void do_setlk(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1794 {
1795 do_setlk_common(req, nodeid, inarg, 0);
1796 }
1797
do_setlkw(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1798 static void do_setlkw(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1799 {
1800 do_setlk_common(req, nodeid, inarg, 1);
1801 }
1802
find_interrupted(struct fuse_session * se,struct fuse_req * req)1803 static int find_interrupted(struct fuse_session *se, struct fuse_req *req)
1804 {
1805 struct fuse_req *curr;
1806
1807 for (curr = se->list.next; curr != &se->list; curr = curr->next) {
1808 if (curr->unique == req->u.i.unique) {
1809 fuse_interrupt_func_t func;
1810 void *data;
1811
1812 curr->ctr++;
1813 pthread_mutex_unlock(&se->lock);
1814
1815 /* Ugh, ugly locking */
1816 pthread_mutex_lock(&curr->lock);
1817 pthread_mutex_lock(&se->lock);
1818 curr->interrupted = 1;
1819 func = curr->u.ni.func;
1820 data = curr->u.ni.data;
1821 pthread_mutex_unlock(&se->lock);
1822 if (func)
1823 func(curr, data);
1824 pthread_mutex_unlock(&curr->lock);
1825
1826 pthread_mutex_lock(&se->lock);
1827 curr->ctr--;
1828 if (!curr->ctr)
1829 destroy_req(curr);
1830
1831 return 1;
1832 }
1833 }
1834 for (curr = se->interrupts.next; curr != &se->interrupts;
1835 curr = curr->next) {
1836 if (curr->u.i.unique == req->u.i.unique)
1837 return 1;
1838 }
1839 return 0;
1840 }
1841
do_interrupt(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1842 static void do_interrupt(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1843 {
1844 struct fuse_interrupt_in *arg = (struct fuse_interrupt_in *) inarg;
1845 struct fuse_session *se = req->se;
1846
1847 (void) nodeid;
1848 if (se->debug)
1849 fuse_log(FUSE_LOG_DEBUG, "INTERRUPT: %llu\n",
1850 (unsigned long long) arg->unique);
1851
1852 req->u.i.unique = arg->unique;
1853
1854 pthread_mutex_lock(&se->lock);
1855 if (find_interrupted(se, req))
1856 destroy_req(req);
1857 else
1858 list_add_req(req, &se->interrupts);
1859 pthread_mutex_unlock(&se->lock);
1860 }
1861
check_interrupt(struct fuse_session * se,struct fuse_req * req)1862 static struct fuse_req *check_interrupt(struct fuse_session *se,
1863 struct fuse_req *req)
1864 {
1865 struct fuse_req *curr;
1866
1867 for (curr = se->interrupts.next; curr != &se->interrupts;
1868 curr = curr->next) {
1869 if (curr->u.i.unique == req->unique) {
1870 req->interrupted = 1;
1871 list_del_req(curr);
1872 free(curr);
1873 return NULL;
1874 }
1875 }
1876 curr = se->interrupts.next;
1877 if (curr != &se->interrupts) {
1878 list_del_req(curr);
1879 list_init_req(curr);
1880 return curr;
1881 } else
1882 return NULL;
1883 }
1884
do_bmap(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1885 static void do_bmap(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1886 {
1887 struct fuse_bmap_in *arg = (struct fuse_bmap_in *) inarg;
1888
1889 if (req->se->op.bmap)
1890 req->se->op.bmap(req, nodeid, arg->blocksize, arg->block);
1891 else
1892 fuse_reply_err(req, ENOSYS);
1893 }
1894
do_ioctl(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1895 static void do_ioctl(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1896 {
1897 struct fuse_ioctl_in *arg = (struct fuse_ioctl_in *) inarg;
1898 unsigned int flags = arg->flags;
1899 void *in_buf = arg->in_size ? PARAM(arg) : NULL;
1900 struct fuse_file_info fi;
1901
1902 if (flags & FUSE_IOCTL_DIR &&
1903 !(req->se->conn.want & FUSE_CAP_IOCTL_DIR)) {
1904 fuse_reply_err(req, ENOTTY);
1905 return;
1906 }
1907
1908 memset(&fi, 0, sizeof(fi));
1909 fi.fh = arg->fh;
1910
1911 if (sizeof(void *) == 4 && req->se->conn.proto_minor >= 16 &&
1912 !(flags & FUSE_IOCTL_32BIT)) {
1913 req->ioctl_64bit = 1;
1914 }
1915
1916 if (req->se->op.ioctl)
1917 req->se->op.ioctl(req, nodeid, arg->cmd,
1918 (void *)(uintptr_t)arg->arg, &fi, flags,
1919 in_buf, arg->in_size, arg->out_size);
1920 else
1921 fuse_reply_err(req, ENOSYS);
1922 }
1923
fuse_pollhandle_destroy(struct fuse_pollhandle * ph)1924 void fuse_pollhandle_destroy(struct fuse_pollhandle *ph)
1925 {
1926 free(ph);
1927 }
1928
do_poll(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1929 static void do_poll(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1930 {
1931 struct fuse_poll_in *arg = (struct fuse_poll_in *) inarg;
1932 struct fuse_file_info fi;
1933
1934 memset(&fi, 0, sizeof(fi));
1935 fi.fh = arg->fh;
1936 fi.poll_events = arg->events;
1937
1938 if (req->se->op.poll) {
1939 struct fuse_pollhandle *ph = NULL;
1940
1941 if (arg->flags & FUSE_POLL_SCHEDULE_NOTIFY) {
1942 ph = malloc(sizeof(struct fuse_pollhandle));
1943 if (ph == NULL) {
1944 fuse_reply_err(req, ENOMEM);
1945 return;
1946 }
1947 ph->kh = arg->kh;
1948 ph->se = req->se;
1949 }
1950
1951 req->se->op.poll(req, nodeid, &fi, ph);
1952 } else {
1953 fuse_reply_err(req, ENOSYS);
1954 }
1955 }
1956
do_fallocate(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1957 static void do_fallocate(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1958 {
1959 struct fuse_fallocate_in *arg = (struct fuse_fallocate_in *) inarg;
1960 struct fuse_file_info fi;
1961
1962 memset(&fi, 0, sizeof(fi));
1963 fi.fh = arg->fh;
1964
1965 if (req->se->op.fallocate)
1966 req->se->op.fallocate(req, nodeid, arg->mode, arg->offset, arg->length, &fi);
1967 else
1968 fuse_reply_err(req, ENOSYS);
1969 }
1970
do_copy_file_range(fuse_req_t req,fuse_ino_t nodeid_in,const void * inarg)1971 static void do_copy_file_range(fuse_req_t req, fuse_ino_t nodeid_in, const void *inarg)
1972 {
1973 struct fuse_copy_file_range_in *arg = (struct fuse_copy_file_range_in *) inarg;
1974 struct fuse_file_info fi_in, fi_out;
1975
1976 memset(&fi_in, 0, sizeof(fi_in));
1977 fi_in.fh = arg->fh_in;
1978
1979 memset(&fi_out, 0, sizeof(fi_out));
1980 fi_out.fh = arg->fh_out;
1981
1982
1983 if (req->se->op.copy_file_range)
1984 req->se->op.copy_file_range(req, nodeid_in, arg->off_in,
1985 &fi_in, arg->nodeid_out,
1986 arg->off_out, &fi_out, arg->len,
1987 arg->flags);
1988 else
1989 fuse_reply_err(req, ENOSYS);
1990 }
1991
do_lseek(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)1992 static void do_lseek(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
1993 {
1994 struct fuse_lseek_in *arg = (struct fuse_lseek_in *) inarg;
1995 struct fuse_file_info fi;
1996
1997 memset(&fi, 0, sizeof(fi));
1998 fi.fh = arg->fh;
1999
2000 if (req->se->op.lseek)
2001 req->se->op.lseek(req, nodeid, arg->offset, arg->whence, &fi);
2002 else
2003 fuse_reply_err(req, ENOSYS);
2004 }
2005
2006 /* Prevent bogus data races (bogus since "init" is called before
2007 * multi-threading becomes relevant */
2008 static __attribute__((no_sanitize("thread")))
do_init(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)2009 void do_init(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
2010 {
2011 struct fuse_init_in *arg = (struct fuse_init_in *) inarg;
2012 struct fuse_init_out outarg;
2013 struct fuse_session *se = req->se;
2014 size_t bufsize = se->bufsize;
2015 size_t outargsize = sizeof(outarg);
2016
2017 (void) nodeid;
2018 if (se->debug) {
2019 fuse_log(FUSE_LOG_DEBUG, "INIT: %u.%u\n", arg->major, arg->minor);
2020 if (arg->major == 7 && arg->minor >= 6) {
2021 fuse_log(FUSE_LOG_DEBUG, "flags=0x%08x\n", arg->flags);
2022 fuse_log(FUSE_LOG_DEBUG, "max_readahead=0x%08x\n",
2023 arg->max_readahead);
2024 }
2025 }
2026 se->conn.proto_major = arg->major;
2027 se->conn.proto_minor = arg->minor;
2028 se->conn.capable = 0;
2029 se->conn.want = 0;
2030
2031 memset(&outarg, 0, sizeof(outarg));
2032 outarg.major = FUSE_KERNEL_VERSION;
2033 outarg.minor = FUSE_KERNEL_MINOR_VERSION;
2034
2035 if (arg->major < 7) {
2036 fuse_log(FUSE_LOG_ERR, "fuse: unsupported protocol version: %u.%u\n",
2037 arg->major, arg->minor);
2038 fuse_reply_err(req, EPROTO);
2039 return;
2040 }
2041
2042 if (arg->major > 7) {
2043 /* Wait for a second INIT request with a 7.X version */
2044 send_reply_ok(req, &outarg, sizeof(outarg));
2045 return;
2046 }
2047
2048 if (arg->minor >= 6) {
2049 if (arg->max_readahead < se->conn.max_readahead)
2050 se->conn.max_readahead = arg->max_readahead;
2051 if (arg->flags & FUSE_ASYNC_READ)
2052 se->conn.capable |= FUSE_CAP_ASYNC_READ;
2053 if (arg->flags & FUSE_POSIX_LOCKS)
2054 se->conn.capable |= FUSE_CAP_POSIX_LOCKS;
2055 if (arg->flags & FUSE_ATOMIC_O_TRUNC)
2056 se->conn.capable |= FUSE_CAP_ATOMIC_O_TRUNC;
2057 if (arg->flags & FUSE_EXPORT_SUPPORT)
2058 se->conn.capable |= FUSE_CAP_EXPORT_SUPPORT;
2059 if (arg->flags & FUSE_DONT_MASK)
2060 se->conn.capable |= FUSE_CAP_DONT_MASK;
2061 if (arg->flags & FUSE_FLOCK_LOCKS)
2062 se->conn.capable |= FUSE_CAP_FLOCK_LOCKS;
2063 if (arg->flags & FUSE_AUTO_INVAL_DATA)
2064 se->conn.capable |= FUSE_CAP_AUTO_INVAL_DATA;
2065 if (arg->flags & FUSE_DO_READDIRPLUS)
2066 se->conn.capable |= FUSE_CAP_READDIRPLUS;
2067 if (arg->flags & FUSE_READDIRPLUS_AUTO)
2068 se->conn.capable |= FUSE_CAP_READDIRPLUS_AUTO;
2069 if (arg->flags & FUSE_ASYNC_DIO)
2070 se->conn.capable |= FUSE_CAP_ASYNC_DIO;
2071 if (arg->flags & FUSE_WRITEBACK_CACHE)
2072 se->conn.capable |= FUSE_CAP_WRITEBACK_CACHE;
2073 if (arg->flags & FUSE_NO_OPEN_SUPPORT)
2074 se->conn.capable |= FUSE_CAP_NO_OPEN_SUPPORT;
2075 if (arg->flags & FUSE_PARALLEL_DIROPS)
2076 se->conn.capable |= FUSE_CAP_PARALLEL_DIROPS;
2077 if (arg->flags & FUSE_POSIX_ACL)
2078 se->conn.capable |= FUSE_CAP_POSIX_ACL;
2079 if (arg->flags & FUSE_HANDLE_KILLPRIV)
2080 se->conn.capable |= FUSE_CAP_HANDLE_KILLPRIV;
2081 if (arg->flags & FUSE_CACHE_SYMLINKS)
2082 se->conn.capable |= FUSE_CAP_CACHE_SYMLINKS;
2083 if (arg->flags & FUSE_NO_OPENDIR_SUPPORT)
2084 se->conn.capable |= FUSE_CAP_NO_OPENDIR_SUPPORT;
2085 if (arg->flags & FUSE_EXPLICIT_INVAL_DATA)
2086 se->conn.capable |= FUSE_CAP_EXPLICIT_INVAL_DATA;
2087 if (!(arg->flags & FUSE_MAX_PAGES)) {
2088 size_t max_bufsize =
2089 FUSE_DEFAULT_MAX_PAGES_PER_REQ * getpagesize()
2090 + FUSE_BUFFER_HEADER_SIZE;
2091 if (bufsize > max_bufsize) {
2092 bufsize = max_bufsize;
2093 }
2094 }
2095 if (arg->flags & FUSE_PASSTHROUGH)
2096 se->conn.capable |= FUSE_PASSTHROUGH;
2097 } else {
2098 se->conn.max_readahead = 0;
2099 }
2100
2101 if (se->conn.proto_minor >= 14) {
2102 #ifdef HAVE_SPLICE
2103 #ifdef HAVE_VMSPLICE
2104 se->conn.capable |= FUSE_CAP_SPLICE_WRITE | FUSE_CAP_SPLICE_MOVE;
2105 #endif
2106 se->conn.capable |= FUSE_CAP_SPLICE_READ;
2107 #endif
2108 }
2109 if (se->conn.proto_minor >= 18)
2110 se->conn.capable |= FUSE_CAP_IOCTL_DIR;
2111
2112 /* Default settings for modern filesystems.
2113 *
2114 * Most of these capabilities were disabled by default in
2115 * libfuse2 for backwards compatibility reasons. In libfuse3,
2116 * we can finally enable them by default (as long as they're
2117 * supported by the kernel).
2118 */
2119 #define LL_SET_DEFAULT(cond, cap) \
2120 if ((cond) && (se->conn.capable & (cap))) \
2121 se->conn.want |= (cap)
2122 LL_SET_DEFAULT(1, FUSE_CAP_ASYNC_READ);
2123 LL_SET_DEFAULT(1, FUSE_CAP_PARALLEL_DIROPS);
2124 LL_SET_DEFAULT(1, FUSE_CAP_AUTO_INVAL_DATA);
2125 LL_SET_DEFAULT(1, FUSE_CAP_HANDLE_KILLPRIV);
2126 LL_SET_DEFAULT(1, FUSE_CAP_ASYNC_DIO);
2127 LL_SET_DEFAULT(1, FUSE_CAP_IOCTL_DIR);
2128 LL_SET_DEFAULT(1, FUSE_CAP_ATOMIC_O_TRUNC);
2129 LL_SET_DEFAULT(se->op.write_buf, FUSE_CAP_SPLICE_READ);
2130 LL_SET_DEFAULT(se->op.getlk && se->op.setlk,
2131 FUSE_CAP_POSIX_LOCKS);
2132 LL_SET_DEFAULT(se->op.flock, FUSE_CAP_FLOCK_LOCKS);
2133 LL_SET_DEFAULT(se->op.readdirplus, FUSE_CAP_READDIRPLUS);
2134 LL_SET_DEFAULT(se->op.readdirplus && se->op.readdir,
2135 FUSE_CAP_READDIRPLUS_AUTO);
2136 se->conn.time_gran = 1;
2137
2138 if (bufsize < FUSE_MIN_READ_BUFFER) {
2139 fuse_log(FUSE_LOG_ERR, "fuse: warning: buffer size too small: %zu\n",
2140 bufsize);
2141 bufsize = FUSE_MIN_READ_BUFFER;
2142 }
2143 se->bufsize = bufsize;
2144
2145 if (se->conn.max_write > bufsize - FUSE_BUFFER_HEADER_SIZE)
2146 se->conn.max_write = bufsize - FUSE_BUFFER_HEADER_SIZE;
2147
2148 se->got_init = 1;
2149 if (se->op.init)
2150 se->op.init(se->userdata, &se->conn);
2151
2152 if (se->conn.want & (~se->conn.capable)) {
2153 fuse_log(FUSE_LOG_ERR, "fuse: error: filesystem requested capabilities "
2154 "0x%x that are not supported by kernel, aborting.\n",
2155 se->conn.want & (~se->conn.capable));
2156 fuse_reply_err(req, EPROTO);
2157 se->error = -EPROTO;
2158 fuse_session_exit(se);
2159 return;
2160 }
2161
2162 unsigned max_read_mo = get_max_read(se->mo);
2163 if (se->conn.max_read != max_read_mo) {
2164 fuse_log(FUSE_LOG_ERR, "fuse: error: init() and fuse_session_new() "
2165 "requested different maximum read size (%u vs %u)\n",
2166 se->conn.max_read, max_read_mo);
2167 fuse_reply_err(req, EPROTO);
2168 se->error = -EPROTO;
2169 fuse_session_exit(se);
2170 return;
2171 }
2172
2173 if (se->conn.max_write < bufsize - FUSE_BUFFER_HEADER_SIZE) {
2174 se->bufsize = se->conn.max_write + FUSE_BUFFER_HEADER_SIZE;
2175 }
2176 if (arg->flags & FUSE_MAX_PAGES) {
2177 outarg.flags |= FUSE_MAX_PAGES;
2178 outarg.max_pages = (se->conn.max_write - 1) / getpagesize() + 1;
2179 }
2180
2181 /* Always enable big writes, this is superseded
2182 by the max_write option */
2183 outarg.flags |= FUSE_BIG_WRITES;
2184
2185 if (se->conn.want & FUSE_CAP_ASYNC_READ)
2186 outarg.flags |= FUSE_ASYNC_READ;
2187 if (se->conn.want & FUSE_CAP_POSIX_LOCKS)
2188 outarg.flags |= FUSE_POSIX_LOCKS;
2189 if (se->conn.want & FUSE_CAP_ATOMIC_O_TRUNC)
2190 outarg.flags |= FUSE_ATOMIC_O_TRUNC;
2191 if (se->conn.want & FUSE_CAP_EXPORT_SUPPORT)
2192 outarg.flags |= FUSE_EXPORT_SUPPORT;
2193 if (se->conn.want & FUSE_CAP_DONT_MASK)
2194 outarg.flags |= FUSE_DONT_MASK;
2195 if (se->conn.want & FUSE_CAP_FLOCK_LOCKS)
2196 outarg.flags |= FUSE_FLOCK_LOCKS;
2197 if (se->conn.want & FUSE_CAP_AUTO_INVAL_DATA)
2198 outarg.flags |= FUSE_AUTO_INVAL_DATA;
2199 if (se->conn.want & FUSE_CAP_READDIRPLUS)
2200 outarg.flags |= FUSE_DO_READDIRPLUS;
2201 if (se->conn.want & FUSE_CAP_READDIRPLUS_AUTO)
2202 outarg.flags |= FUSE_READDIRPLUS_AUTO;
2203 if (se->conn.want & FUSE_CAP_ASYNC_DIO)
2204 outarg.flags |= FUSE_ASYNC_DIO;
2205 if (se->conn.want & FUSE_CAP_WRITEBACK_CACHE)
2206 outarg.flags |= FUSE_WRITEBACK_CACHE;
2207 if (se->conn.want & FUSE_CAP_POSIX_ACL)
2208 outarg.flags |= FUSE_POSIX_ACL;
2209 if (se->conn.want & FUSE_CAP_PASSTHROUGH)
2210 outarg.flags |= FUSE_PASSTHROUGH;
2211 if (se->conn.want & FUSE_CAP_CACHE_SYMLINKS)
2212 outarg.flags |= FUSE_CACHE_SYMLINKS;
2213 if (se->conn.want & FUSE_CAP_EXPLICIT_INVAL_DATA)
2214 outarg.flags |= FUSE_EXPLICIT_INVAL_DATA;
2215 outarg.max_readahead = se->conn.max_readahead;
2216 outarg.max_write = se->conn.max_write;
2217 if (se->conn.proto_minor >= 13) {
2218 if (se->conn.max_background >= (1 << 16))
2219 se->conn.max_background = (1 << 16) - 1;
2220 if (se->conn.congestion_threshold > se->conn.max_background)
2221 se->conn.congestion_threshold = se->conn.max_background;
2222 if (!se->conn.congestion_threshold) {
2223 se->conn.congestion_threshold =
2224 se->conn.max_background * 3 / 4;
2225 }
2226
2227 outarg.max_background = se->conn.max_background;
2228 outarg.congestion_threshold = se->conn.congestion_threshold;
2229 }
2230 if (se->conn.proto_minor >= 23)
2231 outarg.time_gran = se->conn.time_gran;
2232
2233 if (se->debug) {
2234 fuse_log(FUSE_LOG_DEBUG, " INIT: %u.%u\n", outarg.major, outarg.minor);
2235 fuse_log(FUSE_LOG_DEBUG, " flags=0x%08x\n", outarg.flags);
2236 fuse_log(FUSE_LOG_DEBUG, " max_readahead=0x%08x\n",
2237 outarg.max_readahead);
2238 fuse_log(FUSE_LOG_DEBUG, " max_write=0x%08x\n", outarg.max_write);
2239 fuse_log(FUSE_LOG_DEBUG, " max_background=%i\n",
2240 outarg.max_background);
2241 fuse_log(FUSE_LOG_DEBUG, " congestion_threshold=%i\n",
2242 outarg.congestion_threshold);
2243 fuse_log(FUSE_LOG_DEBUG, " time_gran=%u\n",
2244 outarg.time_gran);
2245 }
2246 if (arg->minor < 5)
2247 outargsize = FUSE_COMPAT_INIT_OUT_SIZE;
2248 else if (arg->minor < 23)
2249 outargsize = FUSE_COMPAT_22_INIT_OUT_SIZE;
2250
2251 send_reply_ok(req, &outarg, outargsize);
2252 }
2253
do_destroy(fuse_req_t req,fuse_ino_t nodeid,const void * inarg)2254 static void do_destroy(fuse_req_t req, fuse_ino_t nodeid, const void *inarg)
2255 {
2256 struct fuse_session *se = req->se;
2257
2258 (void) nodeid;
2259 (void) inarg;
2260
2261 se->got_destroy = 1;
2262 if (se->op.destroy)
2263 se->op.destroy(se->userdata);
2264
2265 send_reply_ok(req, NULL, 0);
2266 }
2267
list_del_nreq(struct fuse_notify_req * nreq)2268 static void list_del_nreq(struct fuse_notify_req *nreq)
2269 {
2270 struct fuse_notify_req *prev = nreq->prev;
2271 struct fuse_notify_req *next = nreq->next;
2272 prev->next = next;
2273 next->prev = prev;
2274 }
2275
list_add_nreq(struct fuse_notify_req * nreq,struct fuse_notify_req * next)2276 static void list_add_nreq(struct fuse_notify_req *nreq,
2277 struct fuse_notify_req *next)
2278 {
2279 struct fuse_notify_req *prev = next->prev;
2280 nreq->next = next;
2281 nreq->prev = prev;
2282 prev->next = nreq;
2283 next->prev = nreq;
2284 }
2285
list_init_nreq(struct fuse_notify_req * nreq)2286 static void list_init_nreq(struct fuse_notify_req *nreq)
2287 {
2288 nreq->next = nreq;
2289 nreq->prev = nreq;
2290 }
2291
do_notify_reply(fuse_req_t req,fuse_ino_t nodeid,const void * inarg,const struct fuse_buf * buf)2292 static void do_notify_reply(fuse_req_t req, fuse_ino_t nodeid,
2293 const void *inarg, const struct fuse_buf *buf)
2294 {
2295 struct fuse_session *se = req->se;
2296 struct fuse_notify_req *nreq;
2297 struct fuse_notify_req *head;
2298
2299 pthread_mutex_lock(&se->lock);
2300 head = &se->notify_list;
2301 for (nreq = head->next; nreq != head; nreq = nreq->next) {
2302 if (nreq->unique == req->unique) {
2303 list_del_nreq(nreq);
2304 break;
2305 }
2306 }
2307 pthread_mutex_unlock(&se->lock);
2308
2309 if (nreq != head)
2310 nreq->reply(nreq, req, nodeid, inarg, buf);
2311 }
2312
send_notify_iov(struct fuse_session * se,int notify_code,struct iovec * iov,int count)2313 static int send_notify_iov(struct fuse_session *se, int notify_code,
2314 struct iovec *iov, int count)
2315 {
2316 struct fuse_out_header out;
2317
2318 if (!se->got_init)
2319 return -ENOTCONN;
2320
2321 out.unique = 0;
2322 out.error = notify_code;
2323 iov[0].iov_base = &out;
2324 iov[0].iov_len = sizeof(struct fuse_out_header);
2325
2326 return fuse_send_msg(se, NULL, iov, count);
2327 }
2328
fuse_lowlevel_notify_poll(struct fuse_pollhandle * ph)2329 int fuse_lowlevel_notify_poll(struct fuse_pollhandle *ph)
2330 {
2331 if (ph != NULL) {
2332 struct fuse_notify_poll_wakeup_out outarg;
2333 struct iovec iov[2];
2334
2335 outarg.kh = ph->kh;
2336
2337 iov[1].iov_base = &outarg;
2338 iov[1].iov_len = sizeof(outarg);
2339
2340 return send_notify_iov(ph->se, FUSE_NOTIFY_POLL, iov, 2);
2341 } else {
2342 return 0;
2343 }
2344 }
2345
fuse_lowlevel_notify_inval_inode(struct fuse_session * se,fuse_ino_t ino,off_t off,off_t len)2346 int fuse_lowlevel_notify_inval_inode(struct fuse_session *se, fuse_ino_t ino,
2347 off_t off, off_t len)
2348 {
2349 struct fuse_notify_inval_inode_out outarg;
2350 struct iovec iov[2];
2351
2352 if (!se)
2353 return -EINVAL;
2354
2355 if (se->conn.proto_minor < 12)
2356 return -ENOSYS;
2357
2358 outarg.ino = ino;
2359 outarg.off = off;
2360 outarg.len = len;
2361
2362 iov[1].iov_base = &outarg;
2363 iov[1].iov_len = sizeof(outarg);
2364
2365 return send_notify_iov(se, FUSE_NOTIFY_INVAL_INODE, iov, 2);
2366 }
2367
fuse_lowlevel_notify_inval_entry(struct fuse_session * se,fuse_ino_t parent,const char * name,size_t namelen)2368 int fuse_lowlevel_notify_inval_entry(struct fuse_session *se, fuse_ino_t parent,
2369 const char *name, size_t namelen)
2370 {
2371 struct fuse_notify_inval_entry_out outarg;
2372 struct iovec iov[3];
2373
2374 if (!se)
2375 return -EINVAL;
2376
2377 if (se->conn.proto_minor < 12)
2378 return -ENOSYS;
2379
2380 outarg.parent = parent;
2381 outarg.namelen = namelen;
2382 outarg.padding = 0;
2383
2384 iov[1].iov_base = &outarg;
2385 iov[1].iov_len = sizeof(outarg);
2386 iov[2].iov_base = (void *)name;
2387 iov[2].iov_len = namelen + 1;
2388
2389 return send_notify_iov(se, FUSE_NOTIFY_INVAL_ENTRY, iov, 3);
2390 }
2391
fuse_lowlevel_notify_delete(struct fuse_session * se,fuse_ino_t parent,fuse_ino_t child,const char * name,size_t namelen)2392 int fuse_lowlevel_notify_delete(struct fuse_session *se,
2393 fuse_ino_t parent, fuse_ino_t child,
2394 const char *name, size_t namelen)
2395 {
2396 struct fuse_notify_delete_out outarg;
2397 struct iovec iov[3];
2398
2399 if (!se)
2400 return -EINVAL;
2401
2402 if (se->conn.proto_minor < 18)
2403 return -ENOSYS;
2404
2405 outarg.parent = parent;
2406 outarg.child = child;
2407 outarg.namelen = namelen;
2408 outarg.padding = 0;
2409
2410 iov[1].iov_base = &outarg;
2411 iov[1].iov_len = sizeof(outarg);
2412 iov[2].iov_base = (void *)name;
2413 iov[2].iov_len = namelen + 1;
2414
2415 return send_notify_iov(se, FUSE_NOTIFY_DELETE, iov, 3);
2416 }
2417
fuse_lowlevel_notify_store(struct fuse_session * se,fuse_ino_t ino,off_t offset,struct fuse_bufvec * bufv,enum fuse_buf_copy_flags flags)2418 int fuse_lowlevel_notify_store(struct fuse_session *se, fuse_ino_t ino,
2419 off_t offset, struct fuse_bufvec *bufv,
2420 enum fuse_buf_copy_flags flags)
2421 {
2422 struct fuse_out_header out;
2423 struct fuse_notify_store_out outarg;
2424 struct iovec iov[3];
2425 size_t size = fuse_buf_size(bufv);
2426 int res;
2427
2428 if (!se)
2429 return -EINVAL;
2430
2431 if (se->conn.proto_minor < 15)
2432 return -ENOSYS;
2433
2434 out.unique = 0;
2435 out.error = FUSE_NOTIFY_STORE;
2436
2437 outarg.nodeid = ino;
2438 outarg.offset = offset;
2439 outarg.size = size;
2440 outarg.padding = 0;
2441
2442 iov[0].iov_base = &out;
2443 iov[0].iov_len = sizeof(out);
2444 iov[1].iov_base = &outarg;
2445 iov[1].iov_len = sizeof(outarg);
2446
2447 res = fuse_send_data_iov(se, NULL, iov, 2, bufv, flags);
2448 if (res > 0)
2449 res = -res;
2450
2451 return res;
2452 }
2453
2454 struct fuse_retrieve_req {
2455 struct fuse_notify_req nreq;
2456 void *cookie;
2457 };
2458
fuse_ll_retrieve_reply(struct fuse_notify_req * nreq,fuse_req_t req,fuse_ino_t ino,const void * inarg,const struct fuse_buf * ibuf)2459 static void fuse_ll_retrieve_reply(struct fuse_notify_req *nreq,
2460 fuse_req_t req, fuse_ino_t ino,
2461 const void *inarg,
2462 const struct fuse_buf *ibuf)
2463 {
2464 struct fuse_session *se = req->se;
2465 struct fuse_retrieve_req *rreq =
2466 container_of(nreq, struct fuse_retrieve_req, nreq);
2467 const struct fuse_notify_retrieve_in *arg = inarg;
2468 struct fuse_bufvec bufv = {
2469 .buf[0] = *ibuf,
2470 .count = 1,
2471 };
2472
2473 if (!(bufv.buf[0].flags & FUSE_BUF_IS_FD))
2474 bufv.buf[0].mem = PARAM(arg);
2475
2476 bufv.buf[0].size -= sizeof(struct fuse_in_header) +
2477 sizeof(struct fuse_notify_retrieve_in);
2478
2479 if (bufv.buf[0].size < arg->size) {
2480 fuse_log(FUSE_LOG_ERR, "fuse: retrieve reply: buffer size too small\n");
2481 fuse_reply_none(req);
2482 goto out;
2483 }
2484 bufv.buf[0].size = arg->size;
2485
2486 if (se->op.retrieve_reply) {
2487 se->op.retrieve_reply(req, rreq->cookie, ino,
2488 arg->offset, &bufv);
2489 } else {
2490 fuse_reply_none(req);
2491 }
2492 out:
2493 free(rreq);
2494 if ((ibuf->flags & FUSE_BUF_IS_FD) && bufv.idx < bufv.count)
2495 fuse_ll_clear_pipe(se);
2496 }
2497
fuse_lowlevel_notify_retrieve(struct fuse_session * se,fuse_ino_t ino,size_t size,off_t offset,void * cookie)2498 int fuse_lowlevel_notify_retrieve(struct fuse_session *se, fuse_ino_t ino,
2499 size_t size, off_t offset, void *cookie)
2500 {
2501 struct fuse_notify_retrieve_out outarg;
2502 struct iovec iov[2];
2503 struct fuse_retrieve_req *rreq;
2504 int err;
2505
2506 if (!se)
2507 return -EINVAL;
2508
2509 if (se->conn.proto_minor < 15)
2510 return -ENOSYS;
2511
2512 rreq = malloc(sizeof(*rreq));
2513 if (rreq == NULL)
2514 return -ENOMEM;
2515
2516 pthread_mutex_lock(&se->lock);
2517 rreq->cookie = cookie;
2518 rreq->nreq.unique = se->notify_ctr++;
2519 rreq->nreq.reply = fuse_ll_retrieve_reply;
2520 list_add_nreq(&rreq->nreq, &se->notify_list);
2521 pthread_mutex_unlock(&se->lock);
2522
2523 outarg.notify_unique = rreq->nreq.unique;
2524 outarg.nodeid = ino;
2525 outarg.offset = offset;
2526 outarg.size = size;
2527 outarg.padding = 0;
2528
2529 iov[1].iov_base = &outarg;
2530 iov[1].iov_len = sizeof(outarg);
2531
2532 err = send_notify_iov(se, FUSE_NOTIFY_RETRIEVE, iov, 2);
2533 if (err) {
2534 pthread_mutex_lock(&se->lock);
2535 list_del_nreq(&rreq->nreq);
2536 pthread_mutex_unlock(&se->lock);
2537 free(rreq);
2538 }
2539
2540 return err;
2541 }
2542
fuse_req_userdata(fuse_req_t req)2543 void *fuse_req_userdata(fuse_req_t req)
2544 {
2545 return req->se->userdata;
2546 }
2547
fuse_req_ctx(fuse_req_t req)2548 const struct fuse_ctx *fuse_req_ctx(fuse_req_t req)
2549 {
2550 return &req->ctx;
2551 }
2552
fuse_req_interrupt_func(fuse_req_t req,fuse_interrupt_func_t func,void * data)2553 void fuse_req_interrupt_func(fuse_req_t req, fuse_interrupt_func_t func,
2554 void *data)
2555 {
2556 pthread_mutex_lock(&req->lock);
2557 pthread_mutex_lock(&req->se->lock);
2558 req->u.ni.func = func;
2559 req->u.ni.data = data;
2560 pthread_mutex_unlock(&req->se->lock);
2561 if (req->interrupted && func)
2562 func(req, data);
2563 pthread_mutex_unlock(&req->lock);
2564 }
2565
fuse_req_interrupted(fuse_req_t req)2566 int fuse_req_interrupted(fuse_req_t req)
2567 {
2568 int interrupted;
2569
2570 pthread_mutex_lock(&req->se->lock);
2571 interrupted = req->interrupted;
2572 pthread_mutex_unlock(&req->se->lock);
2573
2574 return interrupted;
2575 }
2576
2577 static struct {
2578 void (*func)(fuse_req_t, fuse_ino_t, const void *);
2579 const char *name;
2580 } fuse_ll_ops[] = {
2581 [FUSE_LOOKUP] = { do_lookup, "LOOKUP" },
2582 [FUSE_FORGET] = { do_forget, "FORGET" },
2583 [FUSE_GETATTR] = { do_getattr, "GETATTR" },
2584 [FUSE_SETATTR] = { do_setattr, "SETATTR" },
2585 [FUSE_READLINK] = { do_readlink, "READLINK" },
2586 [FUSE_CANONICAL_PATH] = { do_canonical_path, "CANONICAL_PATH" },
2587 [FUSE_SYMLINK] = { do_symlink, "SYMLINK" },
2588 [FUSE_MKNOD] = { do_mknod, "MKNOD" },
2589 [FUSE_MKDIR] = { do_mkdir, "MKDIR" },
2590 [FUSE_UNLINK] = { do_unlink, "UNLINK" },
2591 [FUSE_RMDIR] = { do_rmdir, "RMDIR" },
2592 [FUSE_RENAME] = { do_rename, "RENAME" },
2593 [FUSE_LINK] = { do_link, "LINK" },
2594 [FUSE_OPEN] = { do_open, "OPEN" },
2595 [FUSE_READ] = { do_read, "READ" },
2596 [FUSE_WRITE] = { do_write, "WRITE" },
2597 [FUSE_STATFS] = { do_statfs, "STATFS" },
2598 [FUSE_RELEASE] = { do_release, "RELEASE" },
2599 [FUSE_FSYNC] = { do_fsync, "FSYNC" },
2600 [FUSE_SETXATTR] = { do_setxattr, "SETXATTR" },
2601 [FUSE_GETXATTR] = { do_getxattr, "GETXATTR" },
2602 [FUSE_LISTXATTR] = { do_listxattr, "LISTXATTR" },
2603 [FUSE_REMOVEXATTR] = { do_removexattr, "REMOVEXATTR" },
2604 [FUSE_FLUSH] = { do_flush, "FLUSH" },
2605 [FUSE_INIT] = { do_init, "INIT" },
2606 [FUSE_OPENDIR] = { do_opendir, "OPENDIR" },
2607 [FUSE_READDIR] = { do_readdir, "READDIR" },
2608 [FUSE_RELEASEDIR] = { do_releasedir, "RELEASEDIR" },
2609 [FUSE_FSYNCDIR] = { do_fsyncdir, "FSYNCDIR" },
2610 [FUSE_GETLK] = { do_getlk, "GETLK" },
2611 [FUSE_SETLK] = { do_setlk, "SETLK" },
2612 [FUSE_SETLKW] = { do_setlkw, "SETLKW" },
2613 [FUSE_ACCESS] = { do_access, "ACCESS" },
2614 [FUSE_CREATE] = { do_create, "CREATE" },
2615 [FUSE_INTERRUPT] = { do_interrupt, "INTERRUPT" },
2616 [FUSE_BMAP] = { do_bmap, "BMAP" },
2617 [FUSE_IOCTL] = { do_ioctl, "IOCTL" },
2618 [FUSE_POLL] = { do_poll, "POLL" },
2619 [FUSE_FALLOCATE] = { do_fallocate, "FALLOCATE" },
2620 [FUSE_DESTROY] = { do_destroy, "DESTROY" },
2621 [FUSE_NOTIFY_REPLY] = { (void *) 1, "NOTIFY_REPLY" },
2622 [FUSE_BATCH_FORGET] = { do_batch_forget, "BATCH_FORGET" },
2623 [FUSE_READDIRPLUS] = { do_readdirplus, "READDIRPLUS"},
2624 [FUSE_RENAME2] = { do_rename2, "RENAME2" },
2625 [FUSE_COPY_FILE_RANGE] = { do_copy_file_range, "COPY_FILE_RANGE" },
2626 [FUSE_LSEEK] = { do_lseek, "LSEEK" },
2627 [CUSE_INIT] = { cuse_lowlevel_init, "CUSE_INIT" },
2628 };
2629
2630 #define FUSE_MAXOP (sizeof(fuse_ll_ops) / sizeof(fuse_ll_ops[0]))
2631
opname(enum fuse_opcode opcode)2632 static const char *opname(enum fuse_opcode opcode)
2633 {
2634 if (opcode >= FUSE_MAXOP || !fuse_ll_ops[opcode].name)
2635 return "???";
2636 else
2637 return fuse_ll_ops[opcode].name;
2638 }
2639
opfiltername(int filter)2640 static const char *opfiltername(int filter)
2641 {
2642 switch (filter) {
2643 case 0:
2644 return "NONE";
2645 case FUSE_PREFILTER:
2646 return "FUSE_PREFILTER";
2647 case FUSE_POSTFILTER:
2648 return "FUSE_POSTFILTER";
2649 case FUSE_PREFILTER | FUSE_POSTFILTER:
2650 return "FUSE_PREFILTER | FUSE_POSTFILTER";
2651 default:
2652 return "???";
2653 }
2654 }
2655
fuse_ll_copy_from_pipe(struct fuse_bufvec * dst,struct fuse_bufvec * src)2656 static int fuse_ll_copy_from_pipe(struct fuse_bufvec *dst,
2657 struct fuse_bufvec *src)
2658 {
2659 ssize_t res = fuse_buf_copy(dst, src, 0);
2660 if (res < 0) {
2661 fuse_log(FUSE_LOG_ERR, "fuse: copy from pipe: %s\n", strerror(-res));
2662 return res;
2663 }
2664 if ((size_t)res < fuse_buf_size(dst)) {
2665 fuse_log(FUSE_LOG_ERR, "fuse: copy from pipe: short read\n");
2666 return -1;
2667 }
2668 return 0;
2669 }
2670
fuse_session_process_buf(struct fuse_session * se,const struct fuse_buf * buf)2671 void fuse_session_process_buf(struct fuse_session *se,
2672 const struct fuse_buf *buf)
2673 {
2674 fuse_session_process_buf_int(se, buf, NULL);
2675 }
2676
fuse_session_process_buf_int(struct fuse_session * se,const struct fuse_buf * buf,struct fuse_chan * ch)2677 void fuse_session_process_buf_int(struct fuse_session *se,
2678 const struct fuse_buf *buf, struct fuse_chan *ch)
2679 {
2680 const size_t write_header_size = sizeof(struct fuse_in_header) +
2681 sizeof(struct fuse_write_in);
2682 struct fuse_bufvec bufv = { .buf[0] = *buf, .count = 1 };
2683 struct fuse_bufvec tmpbuf = FUSE_BUFVEC_INIT(write_header_size);
2684 struct fuse_in_header *in;
2685 const void *inarg;
2686 struct fuse_req *req;
2687 void *mbuf = NULL;
2688 int err;
2689 int res;
2690 int opcode_filter;
2691
2692 if (buf->flags & FUSE_BUF_IS_FD) {
2693 if (buf->size < tmpbuf.buf[0].size)
2694 tmpbuf.buf[0].size = buf->size;
2695
2696 mbuf = malloc(tmpbuf.buf[0].size);
2697 if (mbuf == NULL) {
2698 fuse_log(FUSE_LOG_ERR, "fuse: failed to allocate header\n");
2699 goto clear_pipe;
2700 }
2701 tmpbuf.buf[0].mem = mbuf;
2702
2703 res = fuse_ll_copy_from_pipe(&tmpbuf, &bufv);
2704 if (res < 0)
2705 goto clear_pipe;
2706
2707 in = mbuf;
2708 } else {
2709 in = buf->mem;
2710 }
2711
2712 /* Cleanup opcode most significant bits used by FUSE BPF */
2713 opcode_filter = in->opcode & ~FUSE_OPCODE_FILTER;
2714 in->opcode &= FUSE_OPCODE_FILTER;
2715
2716 if (se->debug) {
2717 fuse_log(FUSE_LOG_DEBUG,
2718 "unique: %llu, opcode: %s (%i), opcode filter: %s (%i), nodeid: %llu, insize: %zu, pid: %u\n",
2719 (unsigned long long) in->unique,
2720 opname((enum fuse_opcode) in->opcode), in->opcode,
2721 opfiltername((enum fuse_opcode) opcode_filter), opcode_filter,
2722 (unsigned long long) in->nodeid, buf->size, in->pid);
2723 }
2724
2725 req = fuse_ll_alloc_req(se);
2726 if (req == NULL) {
2727 struct fuse_out_header out = {
2728 .unique = in->unique,
2729 .error = -ENOMEM,
2730 };
2731 struct iovec iov = {
2732 .iov_base = &out,
2733 .iov_len = sizeof(struct fuse_out_header),
2734 };
2735
2736 fuse_send_msg(se, ch, &iov, 1);
2737 goto clear_pipe;
2738 }
2739
2740 req->unique = in->unique;
2741 req->ctx.uid = in->uid;
2742 req->ctx.gid = in->gid;
2743 req->ctx.pid = in->pid;
2744 req->ch = ch ? fuse_chan_get(ch) : NULL;
2745
2746 err = EIO;
2747 if (!se->got_init) {
2748 enum fuse_opcode expected;
2749
2750 expected = se->cuse_data ? CUSE_INIT : FUSE_INIT;
2751 if (in->opcode != expected)
2752 goto reply_err;
2753 } else if (in->opcode == FUSE_INIT || in->opcode == CUSE_INIT)
2754 goto reply_err;
2755
2756 err = EACCES;
2757 /* Implement -o allow_root */
2758 if (se->deny_others && in->uid != se->owner && in->uid != 0 &&
2759 in->opcode != FUSE_INIT && in->opcode != FUSE_READ &&
2760 in->opcode != FUSE_WRITE && in->opcode != FUSE_FSYNC &&
2761 in->opcode != FUSE_RELEASE && in->opcode != FUSE_READDIR &&
2762 in->opcode != FUSE_FSYNCDIR && in->opcode != FUSE_RELEASEDIR &&
2763 in->opcode != FUSE_NOTIFY_REPLY &&
2764 in->opcode != FUSE_READDIRPLUS)
2765 goto reply_err;
2766
2767 err = ENOSYS;
2768 if (in->opcode >= FUSE_MAXOP || !fuse_ll_ops[in->opcode].func)
2769 goto reply_err;
2770 if (in->opcode != FUSE_INTERRUPT) {
2771 struct fuse_req *intr;
2772 pthread_mutex_lock(&se->lock);
2773 intr = check_interrupt(se, req);
2774 list_add_req(req, &se->list);
2775 pthread_mutex_unlock(&se->lock);
2776 if (intr)
2777 fuse_reply_err(intr, EAGAIN);
2778 }
2779
2780 if ((buf->flags & FUSE_BUF_IS_FD) && write_header_size < buf->size &&
2781 (in->opcode != FUSE_WRITE || !se->op.write_buf) &&
2782 in->opcode != FUSE_NOTIFY_REPLY) {
2783 void *newmbuf;
2784
2785 err = ENOMEM;
2786 newmbuf = realloc(mbuf, buf->size);
2787 if (newmbuf == NULL)
2788 goto reply_err;
2789 mbuf = newmbuf;
2790
2791 tmpbuf = FUSE_BUFVEC_INIT(buf->size - write_header_size);
2792 tmpbuf.buf[0].mem = (char *)mbuf + write_header_size;
2793
2794 res = fuse_ll_copy_from_pipe(&tmpbuf, &bufv);
2795 err = -res;
2796 if (res < 0)
2797 goto reply_err;
2798
2799 in = mbuf;
2800 }
2801
2802 inarg = (void *) &in[1];
2803 if (in->opcode == FUSE_WRITE && se->op.write_buf)
2804 do_write_buf(req, in->nodeid, inarg, buf);
2805 else if (in->opcode == FUSE_NOTIFY_REPLY)
2806 do_notify_reply(req, in->nodeid, inarg, buf);
2807 else
2808 fuse_ll_ops[in->opcode].func(req, in->nodeid, inarg);
2809
2810 out_free:
2811 free(mbuf);
2812 return;
2813
2814 reply_err:
2815 fuse_reply_err(req, err);
2816 clear_pipe:
2817 if (buf->flags & FUSE_BUF_IS_FD)
2818 fuse_ll_clear_pipe(se);
2819 goto out_free;
2820 }
2821
2822 #define LL_OPTION(n,o,v) \
2823 { n, offsetof(struct fuse_session, o), v }
2824
2825 static const struct fuse_opt fuse_ll_opts[] = {
2826 LL_OPTION("debug", debug, 1),
2827 LL_OPTION("-d", debug, 1),
2828 LL_OPTION("--debug", debug, 1),
2829 LL_OPTION("allow_root", deny_others, 1),
2830 FUSE_OPT_END
2831 };
2832
fuse_lowlevel_version(void)2833 void fuse_lowlevel_version(void)
2834 {
2835 printf("using FUSE kernel interface version %i.%i\n",
2836 FUSE_KERNEL_VERSION, FUSE_KERNEL_MINOR_VERSION);
2837 fuse_mount_version();
2838 }
2839
fuse_lowlevel_help(void)2840 void fuse_lowlevel_help(void)
2841 {
2842 /* These are not all options, but the ones that are
2843 potentially of interest to an end-user */
2844 printf(
2845 " -o allow_other allow access by all users\n"
2846 " -o allow_root allow access by root\n"
2847 " -o auto_unmount auto unmount on process termination\n");
2848 }
2849
fuse_session_destroy(struct fuse_session * se)2850 void fuse_session_destroy(struct fuse_session *se)
2851 {
2852 struct fuse_ll_pipe *llp;
2853
2854 if (se->got_init && !se->got_destroy) {
2855 if (se->op.destroy)
2856 se->op.destroy(se->userdata);
2857 }
2858 llp = pthread_getspecific(se->pipe_key);
2859 if (llp != NULL)
2860 fuse_ll_pipe_free(llp);
2861 pthread_key_delete(se->pipe_key);
2862 pthread_mutex_destroy(&se->lock);
2863 free(se->cuse_data);
2864 if (se->fd != -1)
2865 close(se->fd);
2866 destroy_mount_opts(se->mo);
2867 free(se);
2868 }
2869
2870
fuse_ll_pipe_destructor(void * data)2871 static void fuse_ll_pipe_destructor(void *data)
2872 {
2873 struct fuse_ll_pipe *llp = data;
2874 fuse_ll_pipe_free(llp);
2875 }
2876
fuse_session_receive_buf(struct fuse_session * se,struct fuse_buf * buf)2877 int fuse_session_receive_buf(struct fuse_session *se, struct fuse_buf *buf)
2878 {
2879 return fuse_session_receive_buf_int(se, buf, NULL);
2880 }
2881
fuse_session_receive_buf_int(struct fuse_session * se,struct fuse_buf * buf,struct fuse_chan * ch)2882 int fuse_session_receive_buf_int(struct fuse_session *se, struct fuse_buf *buf,
2883 struct fuse_chan *ch)
2884 {
2885 int err;
2886 ssize_t res;
2887 #ifdef HAVE_SPLICE
2888 size_t bufsize = se->bufsize;
2889 struct fuse_ll_pipe *llp;
2890 struct fuse_buf tmpbuf;
2891
2892 if (se->conn.proto_minor < 14 || !(se->conn.want & FUSE_CAP_SPLICE_READ))
2893 goto fallback;
2894
2895 llp = fuse_ll_get_pipe(se);
2896 if (llp == NULL)
2897 goto fallback;
2898
2899 if (llp->size < bufsize) {
2900 if (llp->can_grow) {
2901 res = fcntl(llp->pipe[0], F_SETPIPE_SZ, bufsize);
2902 if (res == -1) {
2903 llp->can_grow = 0;
2904 res = grow_pipe_to_max(llp->pipe[0]);
2905 if (res > 0)
2906 llp->size = res;
2907 goto fallback;
2908 }
2909 llp->size = res;
2910 }
2911 if (llp->size < bufsize)
2912 goto fallback;
2913 }
2914
2915 res = splice(ch ? ch->fd : se->fd,
2916 NULL, llp->pipe[1], NULL, bufsize, 0);
2917 err = errno;
2918
2919 if (fuse_session_exited(se))
2920 return 0;
2921
2922 if (res == -1) {
2923 if (err == ENODEV) {
2924 /* Filesystem was unmounted, or connection was aborted
2925 via /sys/fs/fuse/connections */
2926 fuse_session_exit(se);
2927 return 0;
2928 }
2929 if (err != EINTR && err != EAGAIN)
2930 perror("fuse: splice from device");
2931 return -err;
2932 }
2933
2934 if (res < sizeof(struct fuse_in_header)) {
2935 fuse_log(FUSE_LOG_ERR, "short splice from fuse device\n");
2936 return -EIO;
2937 }
2938
2939 tmpbuf = (struct fuse_buf) {
2940 .size = res,
2941 .flags = FUSE_BUF_IS_FD,
2942 .fd = llp->pipe[0],
2943 };
2944
2945 /*
2946 * Don't bother with zero copy for small requests.
2947 * fuse_loop_mt() needs to check for FORGET so this more than
2948 * just an optimization.
2949 */
2950 if (res < sizeof(struct fuse_in_header) +
2951 sizeof(struct fuse_write_in) + pagesize) {
2952 struct fuse_bufvec src = { .buf[0] = tmpbuf, .count = 1 };
2953 struct fuse_bufvec dst = { .count = 1 };
2954
2955 if (!buf->mem) {
2956 buf->mem = malloc(se->bufsize);
2957 if (!buf->mem) {
2958 fuse_log(FUSE_LOG_ERR,
2959 "fuse: failed to allocate read buffer\n");
2960 return -ENOMEM;
2961 }
2962 }
2963 buf->size = se->bufsize;
2964 buf->flags = 0;
2965 dst.buf[0] = *buf;
2966
2967 res = fuse_buf_copy(&dst, &src, 0);
2968 if (res < 0) {
2969 fuse_log(FUSE_LOG_ERR, "fuse: copy from pipe: %s\n",
2970 strerror(-res));
2971 fuse_ll_clear_pipe(se);
2972 return res;
2973 }
2974 if (res < tmpbuf.size) {
2975 fuse_log(FUSE_LOG_ERR, "fuse: copy from pipe: short read\n");
2976 fuse_ll_clear_pipe(se);
2977 return -EIO;
2978 }
2979 assert(res == tmpbuf.size);
2980
2981 } else {
2982 /* Don't overwrite buf->mem, as that would cause a leak */
2983 buf->fd = tmpbuf.fd;
2984 buf->flags = tmpbuf.flags;
2985 }
2986 buf->size = tmpbuf.size;
2987
2988 return res;
2989
2990 fallback:
2991 #endif
2992 if (!buf->mem) {
2993 buf->mem = malloc(se->bufsize);
2994 if (!buf->mem) {
2995 fuse_log(FUSE_LOG_ERR,
2996 "fuse: failed to allocate read buffer\n");
2997 return -ENOMEM;
2998 }
2999 }
3000
3001 restart:
3002 res = read(ch ? ch->fd : se->fd, buf->mem, se->bufsize);
3003 err = errno;
3004
3005 if (fuse_session_exited(se))
3006 return 0;
3007 if (res == -1) {
3008 /* ENOENT means the operation was interrupted, it's safe
3009 to restart */
3010 if (err == ENOENT)
3011 goto restart;
3012
3013 if (err == ENODEV) {
3014 /* Filesystem was unmounted, or connection was aborted
3015 via /sys/fs/fuse/connections */
3016 fuse_session_exit(se);
3017 return 0;
3018 }
3019 /* Errors occurring during normal operation: EINTR (read
3020 interrupted), EAGAIN (nonblocking I/O), ENODEV (filesystem
3021 umounted) */
3022 if (err != EINTR && err != EAGAIN)
3023 perror("fuse: reading device");
3024 return -err;
3025 }
3026 if ((size_t) res < sizeof(struct fuse_in_header)) {
3027 fuse_log(FUSE_LOG_ERR, "short read on fuse device\n");
3028 return -EIO;
3029 }
3030
3031 buf->size = res;
3032
3033 return res;
3034 }
3035
fuse_session_new(struct fuse_args * args,const struct fuse_lowlevel_ops * op,size_t op_size,void * userdata)3036 struct fuse_session *fuse_session_new(struct fuse_args *args,
3037 const struct fuse_lowlevel_ops *op,
3038 size_t op_size, void *userdata)
3039 {
3040 int err;
3041 struct fuse_session *se;
3042 struct mount_opts *mo;
3043
3044 if (sizeof(struct fuse_lowlevel_ops) < op_size) {
3045 fuse_log(FUSE_LOG_ERR, "fuse: warning: library too old, some operations may not work\n");
3046 op_size = sizeof(struct fuse_lowlevel_ops);
3047 }
3048
3049 if (args->argc == 0) {
3050 fuse_log(FUSE_LOG_ERR, "fuse: empty argv passed to fuse_session_new().\n");
3051 return NULL;
3052 }
3053
3054 se = (struct fuse_session *) calloc(1, sizeof(struct fuse_session));
3055 if (se == NULL) {
3056 fuse_log(FUSE_LOG_ERR, "fuse: failed to allocate fuse object\n");
3057 goto out1;
3058 }
3059 se->fd = -1;
3060 se->conn.max_write = UINT_MAX;
3061 se->conn.max_readahead = UINT_MAX;
3062
3063 /* Parse options */
3064 if(fuse_opt_parse(args, se, fuse_ll_opts, NULL) == -1)
3065 goto out2;
3066 if(se->deny_others) {
3067 /* Allowing access only by root is done by instructing
3068 * kernel to allow access by everyone, and then restricting
3069 * access to root and mountpoint owner in libfuse.
3070 */
3071 // We may be adding the option a second time, but
3072 // that doesn't hurt.
3073 if(fuse_opt_add_arg(args, "-oallow_other") == -1)
3074 goto out2;
3075 }
3076 mo = parse_mount_opts(args);
3077 if (mo == NULL)
3078 goto out3;
3079
3080 if(args->argc == 1 &&
3081 args->argv[0][0] == '-') {
3082 fuse_log(FUSE_LOG_ERR, "fuse: warning: argv[0] looks like an option, but "
3083 "will be ignored\n");
3084 } else if (args->argc != 1) {
3085 int i;
3086 fuse_log(FUSE_LOG_ERR, "fuse: unknown option(s): `");
3087 for(i = 1; i < args->argc-1; i++)
3088 fuse_log(FUSE_LOG_ERR, "%s ", args->argv[i]);
3089 fuse_log(FUSE_LOG_ERR, "%s'\n", args->argv[i]);
3090 goto out4;
3091 }
3092
3093 if (se->debug)
3094 fuse_log(FUSE_LOG_DEBUG, "FUSE library version: %s\n", PACKAGE_VERSION);
3095
3096 se->bufsize = FUSE_MAX_MAX_PAGES * getpagesize() +
3097 FUSE_BUFFER_HEADER_SIZE;
3098
3099 list_init_req(&se->list);
3100 list_init_req(&se->interrupts);
3101 list_init_nreq(&se->notify_list);
3102 se->notify_ctr = 1;
3103 pthread_mutex_init(&se->lock, NULL);
3104
3105 err = pthread_key_create(&se->pipe_key, fuse_ll_pipe_destructor);
3106 if (err) {
3107 fuse_log(FUSE_LOG_ERR, "fuse: failed to create thread specific key: %s\n",
3108 strerror(err));
3109 goto out5;
3110 }
3111
3112 memcpy(&se->op, op, op_size);
3113 se->owner = getuid();
3114 se->userdata = userdata;
3115
3116 se->mo = mo;
3117 return se;
3118
3119 out5:
3120 pthread_mutex_destroy(&se->lock);
3121 out4:
3122 fuse_opt_free_args(args);
3123 out3:
3124 if (mo != NULL)
3125 destroy_mount_opts(mo);
3126 out2:
3127 free(se);
3128 out1:
3129 return NULL;
3130 }
3131
fuse_session_mount(struct fuse_session * se,const char * mountpoint)3132 int fuse_session_mount(struct fuse_session *se, const char *mountpoint)
3133 {
3134 int fd;
3135
3136 /*
3137 * Make sure file descriptors 0, 1 and 2 are open, otherwise chaos
3138 * would ensue.
3139 */
3140 do {
3141 fd = open("/dev/null", O_RDWR);
3142 if (fd > 2)
3143 close(fd);
3144 } while (fd >= 0 && fd <= 2);
3145
3146 /*
3147 * To allow FUSE daemons to run without privileges, the caller may open
3148 * /dev/fuse before launching the file system and pass on the file
3149 * descriptor by specifying /dev/fd/N as the mount point. Note that the
3150 * parent process takes care of performing the mount in this case.
3151 */
3152 fd = fuse_mnt_parse_fuse_fd(mountpoint);
3153 if (fd != -1) {
3154 if (fcntl(fd, F_GETFD) == -1) {
3155 fuse_log(FUSE_LOG_ERR,
3156 "fuse: Invalid file descriptor /dev/fd/%u\n",
3157 fd);
3158 return -1;
3159 }
3160 se->fd = fd;
3161 return 0;
3162 }
3163
3164 /* Open channel */
3165 fd = fuse_kern_mount(mountpoint, se->mo);
3166 if (fd == -1)
3167 return -1;
3168 se->fd = fd;
3169
3170 /* Save mountpoint */
3171 se->mountpoint = strdup(mountpoint);
3172 if (se->mountpoint == NULL)
3173 goto error_out;
3174
3175 return 0;
3176
3177 error_out:
3178 fuse_kern_unmount(mountpoint, fd);
3179 return -1;
3180 }
3181
fuse_session_fd(struct fuse_session * se)3182 int fuse_session_fd(struct fuse_session *se)
3183 {
3184 return se->fd;
3185 }
3186
fuse_session_unmount(struct fuse_session * se)3187 void fuse_session_unmount(struct fuse_session *se)
3188 {
3189 if (se->mountpoint != NULL) {
3190 fuse_kern_unmount(se->mountpoint, se->fd);
3191 se->fd = -1;
3192 free(se->mountpoint);
3193 se->mountpoint = NULL;
3194 }
3195 }
3196
3197 #ifdef linux
fuse_req_getgroups(fuse_req_t req,int size,gid_t list[])3198 int fuse_req_getgroups(fuse_req_t req, int size, gid_t list[])
3199 {
3200 char *buf;
3201 size_t bufsize = 1024;
3202 char path[128];
3203 int ret;
3204 int fd;
3205 unsigned long pid = req->ctx.pid;
3206 char *s;
3207
3208 sprintf(path, "/proc/%lu/task/%lu/status", pid, pid);
3209
3210 retry:
3211 buf = malloc(bufsize);
3212 if (buf == NULL)
3213 return -ENOMEM;
3214
3215 ret = -EIO;
3216 fd = open(path, O_RDONLY);
3217 if (fd == -1)
3218 goto out_free;
3219
3220 ret = read(fd, buf, bufsize);
3221 close(fd);
3222 if (ret < 0) {
3223 ret = -EIO;
3224 goto out_free;
3225 }
3226
3227 if ((size_t)ret == bufsize) {
3228 free(buf);
3229 bufsize *= 4;
3230 goto retry;
3231 }
3232
3233 ret = -EIO;
3234 s = strstr(buf, "\nGroups:");
3235 if (s == NULL)
3236 goto out_free;
3237
3238 s += 8;
3239 ret = 0;
3240 while (1) {
3241 char *end;
3242 unsigned long val = strtoul(s, &end, 0);
3243 if (end == s)
3244 break;
3245
3246 s = end;
3247 if (ret < size)
3248 list[ret] = val;
3249 ret++;
3250 }
3251
3252 out_free:
3253 free(buf);
3254 return ret;
3255 }
3256 #else /* linux */
3257 /*
3258 * This is currently not implemented on other than Linux...
3259 */
fuse_req_getgroups(fuse_req_t req,int size,gid_t list[])3260 int fuse_req_getgroups(fuse_req_t req, int size, gid_t list[])
3261 {
3262 (void) req; (void) size; (void) list;
3263 return -ENOSYS;
3264 }
3265 #endif
3266
3267 /* Prevent spurious data race warning - we don't care
3268 * about races for this flag */
3269 __attribute__((no_sanitize_thread))
fuse_session_exit(struct fuse_session * se)3270 void fuse_session_exit(struct fuse_session *se)
3271 {
3272 se->exited = 1;
3273 }
3274
3275 __attribute__((no_sanitize_thread))
fuse_session_reset(struct fuse_session * se)3276 void fuse_session_reset(struct fuse_session *se)
3277 {
3278 se->exited = 0;
3279 se->error = 0;
3280 }
3281
3282 __attribute__((no_sanitize_thread))
fuse_session_exited(struct fuse_session * se)3283 int fuse_session_exited(struct fuse_session *se)
3284 {
3285 return se->exited;
3286 }
3287