archive_read_disk_posix.c revision 348607
1/*-
2 * Copyright (c) 2003-2009 Tim Kientzle
3 * Copyright (c) 2010-2012 Michihiro NAKAJIMA
4 * All rights reserved.
5 *
6 * Redistribution and use in source and binary forms, with or without
7 * modification, are permitted provided that the following conditions
8 * are met:
9 * 1. Redistributions of source code must retain the above copyright
10 *    notice, this list of conditions and the following disclaimer
11 *    in this position and unchanged.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 *    notice, this list of conditions and the following disclaimer in the
14 *    documentation and/or other materials provided with the distribution.
15 *
16 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR(S) ``AS IS'' AND ANY EXPRESS OR
17 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
18 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
19 * IN NO EVENT SHALL THE AUTHOR(S) BE LIABLE FOR ANY DIRECT, INDIRECT,
20 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
21 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
22 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
23 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
24 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
25 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
26 */
27
28/* This is the tree-walking code for POSIX systems. */
29#if !defined(_WIN32) || defined(__CYGWIN__)
30
31#include "archive_platform.h"
32__FBSDID("$FreeBSD$");
33
34#ifdef HAVE_SYS_PARAM_H
35#include <sys/param.h>
36#endif
37#ifdef HAVE_SYS_MOUNT_H
38#include <sys/mount.h>
39#endif
40#ifdef HAVE_SYS_STAT_H
41#include <sys/stat.h>
42#endif
43#ifdef HAVE_SYS_STATFS_H
44#include <sys/statfs.h>
45#endif
46#ifdef HAVE_SYS_STATVFS_H
47#include <sys/statvfs.h>
48#endif
49#ifdef HAVE_SYS_TIME_H
50#include <sys/time.h>
51#endif
52#ifdef HAVE_LINUX_MAGIC_H
53#include <linux/magic.h>
54#endif
55#ifdef HAVE_LINUX_FS_H
56#include <linux/fs.h>
57#endif
58/*
59 * Some Linux distributions have both linux/ext2_fs.h and ext2fs/ext2_fs.h.
60 * As the include guards don't agree, the order of include is important.
61 */
62#ifdef HAVE_LINUX_EXT2_FS_H
63#include <linux/ext2_fs.h>      /* for Linux file flags */
64#endif
65#if defined(HAVE_EXT2FS_EXT2_FS_H) && !defined(__CYGWIN__)
66#include <ext2fs/ext2_fs.h>     /* Linux file flags, broken on Cygwin */
67#endif
68#ifdef HAVE_DIRECT_H
69#include <direct.h>
70#endif
71#ifdef HAVE_DIRENT_H
72#include <dirent.h>
73#endif
74#ifdef HAVE_ERRNO_H
75#include <errno.h>
76#endif
77#ifdef HAVE_FCNTL_H
78#include <fcntl.h>
79#endif
80#ifdef HAVE_LIMITS_H
81#include <limits.h>
82#endif
83#ifdef HAVE_STDLIB_H
84#include <stdlib.h>
85#endif
86#ifdef HAVE_STRING_H
87#include <string.h>
88#endif
89#ifdef HAVE_UNISTD_H
90#include <unistd.h>
91#endif
92#ifdef HAVE_SYS_IOCTL_H
93#include <sys/ioctl.h>
94#endif
95
96#include "archive.h"
97#include "archive_string.h"
98#include "archive_entry.h"
99#include "archive_private.h"
100#include "archive_read_disk_private.h"
101
102#ifndef HAVE_FCHDIR
103#error fchdir function required.
104#endif
105#ifndef O_BINARY
106#define O_BINARY	0
107#endif
108#ifndef O_CLOEXEC
109#define O_CLOEXEC	0
110#endif
111
112/*-
113 * This is a new directory-walking system that addresses a number
114 * of problems I've had with fts(3).  In particular, it has no
115 * pathname-length limits (other than the size of 'int'), handles
116 * deep logical traversals, uses considerably less memory, and has
117 * an opaque interface (easier to modify in the future).
118 *
119 * Internally, it keeps a single list of "tree_entry" items that
120 * represent filesystem objects that require further attention.
121 * Non-directories are not kept in memory: they are pulled from
122 * readdir(), returned to the client, then freed as soon as possible.
123 * Any directory entry to be traversed gets pushed onto the stack.
124 *
125 * There is surprisingly little information that needs to be kept for
126 * each item on the stack.  Just the name, depth (represented here as the
127 * string length of the parent directory's pathname), and some markers
128 * indicating how to get back to the parent (via chdir("..") for a
129 * regular dir or via fchdir(2) for a symlink).
130 */
131/*
132 * TODO:
133 *    1) Loop checking.
134 *    3) Arbitrary logical traversals by closing/reopening intermediate fds.
135 */
136
137struct restore_time {
138	const char		*name;
139	time_t			 mtime;
140	long			 mtime_nsec;
141	time_t			 atime;
142	long			 atime_nsec;
143	mode_t			 filetype;
144	int			 noatime;
145};
146
147struct tree_entry {
148	int			 depth;
149	struct tree_entry	*next;
150	struct tree_entry	*parent;
151	struct archive_string	 name;
152	size_t			 dirname_length;
153	int64_t			 dev;
154	int64_t			 ino;
155	int			 flags;
156	int			 filesystem_id;
157	/* How to return back to the parent of a symlink. */
158	int			 symlink_parent_fd;
159	/* How to restore time of a directory. */
160	struct restore_time	 restore_time;
161};
162
163struct filesystem {
164	int64_t		dev;
165	int		synthetic;
166	int		remote;
167	int		noatime;
168#if defined(USE_READDIR_R)
169	size_t		name_max;
170#endif
171	long		incr_xfer_size;
172	long		max_xfer_size;
173	long		min_xfer_size;
174	long		xfer_align;
175
176	/*
177	 * Buffer used for reading file contents.
178	 */
179	/* Exactly allocated memory pointer. */
180	unsigned char	*allocation_ptr;
181	/* Pointer adjusted to the filesystem alignment . */
182	unsigned char	*buff;
183	size_t		 buff_size;
184};
185
186/* Definitions for tree_entry.flags bitmap. */
187#define	isDir		1  /* This entry is a regular directory. */
188#define	isDirLink	2  /* This entry is a symbolic link to a directory. */
189#define	needsFirstVisit	4  /* This is an initial entry. */
190#define	needsDescent	8  /* This entry needs to be previsited. */
191#define	needsOpen	16 /* This is a directory that needs to be opened. */
192#define	needsAscent	32 /* This entry needs to be postvisited. */
193
194/*
195 * Local data for this package.
196 */
197struct tree {
198	struct tree_entry	*stack;
199	struct tree_entry	*current;
200	DIR			*d;
201#define	INVALID_DIR_HANDLE NULL
202	struct dirent		*de;
203#if defined(USE_READDIR_R)
204	struct dirent		*dirent;
205	size_t			 dirent_allocated;
206#endif
207	int			 flags;
208	int			 visit_type;
209	/* Error code from last failed operation. */
210	int			 tree_errno;
211
212	/* Dynamically-sized buffer for holding path */
213	struct archive_string	 path;
214
215	/* Last path element */
216	const char		*basename;
217	/* Leading dir length */
218	size_t			 dirname_length;
219
220	int			 depth;
221	int			 openCount;
222	int			 maxOpenCount;
223	int			 initial_dir_fd;
224	int			 working_dir_fd;
225
226	struct stat		 lst;
227	struct stat		 st;
228	int			 descend;
229	int			 nlink;
230	/* How to restore time of a file. */
231	struct restore_time	 restore_time;
232
233	struct entry_sparse {
234		int64_t		 length;
235		int64_t		 offset;
236	}			*sparse_list, *current_sparse;
237	int			 sparse_count;
238	int			 sparse_list_size;
239
240	char			 initial_symlink_mode;
241	char			 symlink_mode;
242	struct filesystem	*current_filesystem;
243	struct filesystem	*filesystem_table;
244	int			 initial_filesystem_id;
245	int			 current_filesystem_id;
246	int			 max_filesystem_id;
247	int			 allocated_filesystem;
248
249	int			 entry_fd;
250	int			 entry_eof;
251	int64_t			 entry_remaining_bytes;
252	int64_t			 entry_total;
253	unsigned char		*entry_buff;
254	size_t			 entry_buff_size;
255};
256
257/* Definitions for tree.flags bitmap. */
258#define	hasStat		16 /* The st entry is valid. */
259#define	hasLstat	32 /* The lst entry is valid. */
260#define	onWorkingDir	64 /* We are on the working dir where we are
261			    * reading directory entry at this time. */
262#define	needsRestoreTimes 128
263#define	onInitialDir	256 /* We are on the initial dir. */
264
265static int
266tree_dir_next_posix(struct tree *t);
267
268#ifdef HAVE_DIRENT_D_NAMLEN
269/* BSD extension; avoids need for a strlen() call. */
270#define	D_NAMELEN(dp)	(dp)->d_namlen
271#else
272#define	D_NAMELEN(dp)	(strlen((dp)->d_name))
273#endif
274
275/* Initiate/terminate a tree traversal. */
276static struct tree *tree_open(const char *, int, int);
277static struct tree *tree_reopen(struct tree *, const char *, int);
278static void tree_close(struct tree *);
279static void tree_free(struct tree *);
280static void tree_push(struct tree *, const char *, int, int64_t, int64_t,
281		struct restore_time *);
282static int tree_enter_initial_dir(struct tree *);
283static int tree_enter_working_dir(struct tree *);
284static int tree_current_dir_fd(struct tree *);
285
286/*
287 * tree_next() returns Zero if there is no next entry, non-zero if
288 * there is.  Note that directories are visited three times.
289 * Directories are always visited first as part of enumerating their
290 * parent; that is a "regular" visit.  If tree_descend() is invoked at
291 * that time, the directory is added to a work list and will
292 * subsequently be visited two more times: once just after descending
293 * into the directory ("postdescent") and again just after ascending
294 * back to the parent ("postascent").
295 *
296 * TREE_ERROR_DIR is returned if the descent failed (because the
297 * directory couldn't be opened, for instance).  This is returned
298 * instead of TREE_POSTDESCENT/TREE_POSTASCENT.  TREE_ERROR_DIR is not a
299 * fatal error, but it does imply that the relevant subtree won't be
300 * visited.  TREE_ERROR_FATAL is returned for an error that left the
301 * traversal completely hosed.  Right now, this is only returned for
302 * chdir() failures during ascent.
303 */
304#define	TREE_REGULAR		1
305#define	TREE_POSTDESCENT	2
306#define	TREE_POSTASCENT		3
307#define	TREE_ERROR_DIR		-1
308#define	TREE_ERROR_FATAL	-2
309
310static int tree_next(struct tree *);
311
312/*
313 * Return information about the current entry.
314 */
315
316/*
317 * The current full pathname, length of the full pathname, and a name
318 * that can be used to access the file.  Because tree does use chdir
319 * extensively, the access path is almost never the same as the full
320 * current path.
321 *
322 * TODO: On platforms that support it, use openat()-style operations
323 * to eliminate the chdir() operations entirely while still supporting
324 * arbitrarily deep traversals.  This makes access_path troublesome to
325 * support, of course, which means we'll need a rich enough interface
326 * that clients can function without it.  (In particular, we'll need
327 * tree_current_open() that returns an open file descriptor.)
328 *
329 */
330static const char *tree_current_path(struct tree *);
331static const char *tree_current_access_path(struct tree *);
332
333/*
334 * Request the lstat() or stat() data for the current path.  Since the
335 * tree package needs to do some of this anyway, and caches the
336 * results, you should take advantage of it here if you need it rather
337 * than make a redundant stat() or lstat() call of your own.
338 */
339static const struct stat *tree_current_stat(struct tree *);
340static const struct stat *tree_current_lstat(struct tree *);
341static int	tree_current_is_symblic_link_target(struct tree *);
342
343/* The following functions use tricks to avoid a certain number of
344 * stat()/lstat() calls. */
345/* "is_physical_dir" is equivalent to S_ISDIR(tree_current_lstat()->st_mode) */
346static int tree_current_is_physical_dir(struct tree *);
347/* "is_dir" is equivalent to S_ISDIR(tree_current_stat()->st_mode) */
348static int tree_current_is_dir(struct tree *);
349static int update_current_filesystem(struct archive_read_disk *a,
350		    int64_t dev);
351static int setup_current_filesystem(struct archive_read_disk *);
352static int tree_target_is_same_as_parent(struct tree *, const struct stat *);
353
354static int	_archive_read_disk_open(struct archive *, const char *);
355static int	_archive_read_free(struct archive *);
356static int	_archive_read_close(struct archive *);
357static int	_archive_read_data_block(struct archive *,
358		    const void **, size_t *, int64_t *);
359static int	_archive_read_next_header(struct archive *,
360		    struct archive_entry **);
361static int	_archive_read_next_header2(struct archive *,
362		    struct archive_entry *);
363static const char *trivial_lookup_gname(void *, int64_t gid);
364static const char *trivial_lookup_uname(void *, int64_t uid);
365static int	setup_sparse(struct archive_read_disk *, struct archive_entry *);
366static int	close_and_restore_time(int fd, struct tree *,
367		    struct restore_time *);
368static int	open_on_current_dir(struct tree *, const char *, int);
369static int	tree_dup(int);
370
371
372static struct archive_vtable *
373archive_read_disk_vtable(void)
374{
375	static struct archive_vtable av;
376	static int inited = 0;
377
378	if (!inited) {
379		av.archive_free = _archive_read_free;
380		av.archive_close = _archive_read_close;
381		av.archive_read_data_block = _archive_read_data_block;
382		av.archive_read_next_header = _archive_read_next_header;
383		av.archive_read_next_header2 = _archive_read_next_header2;
384		inited = 1;
385	}
386	return (&av);
387}
388
389const char *
390archive_read_disk_gname(struct archive *_a, la_int64_t gid)
391{
392	struct archive_read_disk *a = (struct archive_read_disk *)_a;
393	if (ARCHIVE_OK != __archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
394		ARCHIVE_STATE_ANY, "archive_read_disk_gname"))
395		return (NULL);
396	if (a->lookup_gname == NULL)
397		return (NULL);
398	return ((*a->lookup_gname)(a->lookup_gname_data, gid));
399}
400
401const char *
402archive_read_disk_uname(struct archive *_a, la_int64_t uid)
403{
404	struct archive_read_disk *a = (struct archive_read_disk *)_a;
405	if (ARCHIVE_OK != __archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
406		ARCHIVE_STATE_ANY, "archive_read_disk_uname"))
407		return (NULL);
408	if (a->lookup_uname == NULL)
409		return (NULL);
410	return ((*a->lookup_uname)(a->lookup_uname_data, uid));
411}
412
413int
414archive_read_disk_set_gname_lookup(struct archive *_a,
415    void *private_data,
416    const char * (*lookup_gname)(void *private, la_int64_t gid),
417    void (*cleanup_gname)(void *private))
418{
419	struct archive_read_disk *a = (struct archive_read_disk *)_a;
420	archive_check_magic(&a->archive, ARCHIVE_READ_DISK_MAGIC,
421	    ARCHIVE_STATE_ANY, "archive_read_disk_set_gname_lookup");
422
423	if (a->cleanup_gname != NULL && a->lookup_gname_data != NULL)
424		(a->cleanup_gname)(a->lookup_gname_data);
425
426	a->lookup_gname = lookup_gname;
427	a->cleanup_gname = cleanup_gname;
428	a->lookup_gname_data = private_data;
429	return (ARCHIVE_OK);
430}
431
432int
433archive_read_disk_set_uname_lookup(struct archive *_a,
434    void *private_data,
435    const char * (*lookup_uname)(void *private, la_int64_t uid),
436    void (*cleanup_uname)(void *private))
437{
438	struct archive_read_disk *a = (struct archive_read_disk *)_a;
439	archive_check_magic(&a->archive, ARCHIVE_READ_DISK_MAGIC,
440	    ARCHIVE_STATE_ANY, "archive_read_disk_set_uname_lookup");
441
442	if (a->cleanup_uname != NULL && a->lookup_uname_data != NULL)
443		(a->cleanup_uname)(a->lookup_uname_data);
444
445	a->lookup_uname = lookup_uname;
446	a->cleanup_uname = cleanup_uname;
447	a->lookup_uname_data = private_data;
448	return (ARCHIVE_OK);
449}
450
451/*
452 * Create a new archive_read_disk object and initialize it with global state.
453 */
454struct archive *
455archive_read_disk_new(void)
456{
457	struct archive_read_disk *a;
458
459	a = (struct archive_read_disk *)calloc(1, sizeof(*a));
460	if (a == NULL)
461		return (NULL);
462	a->archive.magic = ARCHIVE_READ_DISK_MAGIC;
463	a->archive.state = ARCHIVE_STATE_NEW;
464	a->archive.vtable = archive_read_disk_vtable();
465	a->entry = archive_entry_new2(&a->archive);
466	a->lookup_uname = trivial_lookup_uname;
467	a->lookup_gname = trivial_lookup_gname;
468	a->flags = ARCHIVE_READDISK_MAC_COPYFILE;
469	a->open_on_current_dir = open_on_current_dir;
470	a->tree_current_dir_fd = tree_current_dir_fd;
471	a->tree_enter_working_dir = tree_enter_working_dir;
472	return (&a->archive);
473}
474
475static int
476_archive_read_free(struct archive *_a)
477{
478	struct archive_read_disk *a = (struct archive_read_disk *)_a;
479	int r;
480
481	if (_a == NULL)
482		return (ARCHIVE_OK);
483	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
484	    ARCHIVE_STATE_ANY | ARCHIVE_STATE_FATAL, "archive_read_free");
485
486	if (a->archive.state != ARCHIVE_STATE_CLOSED)
487		r = _archive_read_close(&a->archive);
488	else
489		r = ARCHIVE_OK;
490
491	tree_free(a->tree);
492	if (a->cleanup_gname != NULL && a->lookup_gname_data != NULL)
493		(a->cleanup_gname)(a->lookup_gname_data);
494	if (a->cleanup_uname != NULL && a->lookup_uname_data != NULL)
495		(a->cleanup_uname)(a->lookup_uname_data);
496	archive_string_free(&a->archive.error_string);
497	archive_entry_free(a->entry);
498	a->archive.magic = 0;
499	__archive_clean(&a->archive);
500	free(a);
501	return (r);
502}
503
504static int
505_archive_read_close(struct archive *_a)
506{
507	struct archive_read_disk *a = (struct archive_read_disk *)_a;
508
509	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
510	    ARCHIVE_STATE_ANY | ARCHIVE_STATE_FATAL, "archive_read_close");
511
512	if (a->archive.state != ARCHIVE_STATE_FATAL)
513		a->archive.state = ARCHIVE_STATE_CLOSED;
514
515	tree_close(a->tree);
516
517	return (ARCHIVE_OK);
518}
519
520static void
521setup_symlink_mode(struct archive_read_disk *a, char symlink_mode,
522    int follow_symlinks)
523{
524	a->symlink_mode = symlink_mode;
525	a->follow_symlinks = follow_symlinks;
526	if (a->tree != NULL) {
527		a->tree->initial_symlink_mode = a->symlink_mode;
528		a->tree->symlink_mode = a->symlink_mode;
529	}
530}
531
532int
533archive_read_disk_set_symlink_logical(struct archive *_a)
534{
535	struct archive_read_disk *a = (struct archive_read_disk *)_a;
536	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
537	    ARCHIVE_STATE_ANY, "archive_read_disk_set_symlink_logical");
538	setup_symlink_mode(a, 'L', 1);
539	return (ARCHIVE_OK);
540}
541
542int
543archive_read_disk_set_symlink_physical(struct archive *_a)
544{
545	struct archive_read_disk *a = (struct archive_read_disk *)_a;
546	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
547	    ARCHIVE_STATE_ANY, "archive_read_disk_set_symlink_physical");
548	setup_symlink_mode(a, 'P', 0);
549	return (ARCHIVE_OK);
550}
551
552int
553archive_read_disk_set_symlink_hybrid(struct archive *_a)
554{
555	struct archive_read_disk *a = (struct archive_read_disk *)_a;
556	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
557	    ARCHIVE_STATE_ANY, "archive_read_disk_set_symlink_hybrid");
558	setup_symlink_mode(a, 'H', 1);/* Follow symlinks initially. */
559	return (ARCHIVE_OK);
560}
561
562int
563archive_read_disk_set_atime_restored(struct archive *_a)
564{
565	struct archive_read_disk *a = (struct archive_read_disk *)_a;
566	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
567	    ARCHIVE_STATE_ANY, "archive_read_disk_restore_atime");
568#ifdef HAVE_UTIMES
569	a->flags |= ARCHIVE_READDISK_RESTORE_ATIME;
570	if (a->tree != NULL)
571		a->tree->flags |= needsRestoreTimes;
572	return (ARCHIVE_OK);
573#else
574	/* Display warning and unset flag */
575	archive_set_error(&a->archive, ARCHIVE_ERRNO_MISC,
576	    "Cannot restore access time on this system");
577	a->flags &= ~ARCHIVE_READDISK_RESTORE_ATIME;
578	return (ARCHIVE_WARN);
579#endif
580}
581
582int
583archive_read_disk_set_behavior(struct archive *_a, int flags)
584{
585	struct archive_read_disk *a = (struct archive_read_disk *)_a;
586	int r = ARCHIVE_OK;
587
588	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
589	    ARCHIVE_STATE_ANY, "archive_read_disk_honor_nodump");
590
591	a->flags = flags;
592
593	if (flags & ARCHIVE_READDISK_RESTORE_ATIME)
594		r = archive_read_disk_set_atime_restored(_a);
595	else {
596		if (a->tree != NULL)
597			a->tree->flags &= ~needsRestoreTimes;
598	}
599	return (r);
600}
601
602/*
603 * Trivial implementations of gname/uname lookup functions.
604 * These are normally overridden by the client, but these stub
605 * versions ensure that we always have something that works.
606 */
607static const char *
608trivial_lookup_gname(void *private_data, int64_t gid)
609{
610	(void)private_data; /* UNUSED */
611	(void)gid; /* UNUSED */
612	return (NULL);
613}
614
615static const char *
616trivial_lookup_uname(void *private_data, int64_t uid)
617{
618	(void)private_data; /* UNUSED */
619	(void)uid; /* UNUSED */
620	return (NULL);
621}
622
623/*
624 * Allocate memory for the reading buffer adjusted to the filesystem
625 * alignment.
626 */
627static int
628setup_suitable_read_buffer(struct archive_read_disk *a)
629{
630	struct tree *t = a->tree;
631	struct filesystem *cf = t->current_filesystem;
632	size_t asize;
633	size_t s;
634
635	if (cf->allocation_ptr == NULL) {
636		/* If we couldn't get a filesystem alignment,
637		 * we use 4096 as default value but we won't use
638		 * O_DIRECT to open() and openat() operations. */
639		long xfer_align = (cf->xfer_align == -1)?4096:cf->xfer_align;
640
641		if (cf->max_xfer_size != -1)
642			asize = cf->max_xfer_size + xfer_align;
643		else {
644			long incr = cf->incr_xfer_size;
645			/* Some platform does not set a proper value to
646			 * incr_xfer_size.*/
647			if (incr < 0)
648				incr = cf->min_xfer_size;
649			if (cf->min_xfer_size < 0) {
650				incr = xfer_align;
651				asize = xfer_align;
652			} else
653				asize = cf->min_xfer_size;
654
655			/* Increase a buffer size up to 64K bytes in
656			 * a proper increment size. */
657			while (asize < 1024*64)
658				asize += incr;
659			/* Take a margin to adjust to the filesystem
660			 * alignment. */
661			asize += xfer_align;
662		}
663		cf->allocation_ptr = malloc(asize);
664		if (cf->allocation_ptr == NULL) {
665			archive_set_error(&a->archive, ENOMEM,
666			    "Couldn't allocate memory");
667			a->archive.state = ARCHIVE_STATE_FATAL;
668			return (ARCHIVE_FATAL);
669		}
670
671		/*
672		 * Calculate proper address for the filesystem.
673		 */
674		s = (uintptr_t)cf->allocation_ptr;
675		s %= xfer_align;
676		if (s > 0)
677			s = xfer_align - s;
678
679		/*
680		 * Set a read buffer pointer in the proper alignment of
681		 * the current filesystem.
682		 */
683		cf->buff = cf->allocation_ptr + s;
684		cf->buff_size = asize - xfer_align;
685	}
686	return (ARCHIVE_OK);
687}
688
689static int
690_archive_read_data_block(struct archive *_a, const void **buff,
691    size_t *size, int64_t *offset)
692{
693	struct archive_read_disk *a = (struct archive_read_disk *)_a;
694	struct tree *t = a->tree;
695	int r;
696	ssize_t bytes;
697	size_t buffbytes;
698	int empty_sparse_region = 0;
699
700	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC, ARCHIVE_STATE_DATA,
701	    "archive_read_data_block");
702
703	if (t->entry_eof || t->entry_remaining_bytes <= 0) {
704		r = ARCHIVE_EOF;
705		goto abort_read_data;
706	}
707
708	/*
709	 * Open the current file.
710	 */
711	if (t->entry_fd < 0) {
712		int flags = O_RDONLY | O_BINARY | O_CLOEXEC;
713
714		/*
715		 * Eliminate or reduce cache effects if we can.
716		 *
717		 * Carefully consider this to be enabled.
718		 */
719#if defined(O_DIRECT) && 0/* Disabled for now */
720		if (t->current_filesystem->xfer_align != -1 &&
721		    t->nlink == 1)
722			flags |= O_DIRECT;
723#endif
724#if defined(O_NOATIME)
725		/*
726		 * Linux has O_NOATIME flag; use it if we need.
727		 */
728		if ((t->flags & needsRestoreTimes) != 0 &&
729		    t->restore_time.noatime == 0)
730			flags |= O_NOATIME;
731		do {
732#endif
733			t->entry_fd = open_on_current_dir(t,
734			    tree_current_access_path(t), flags);
735			__archive_ensure_cloexec_flag(t->entry_fd);
736#if defined(O_NOATIME)
737			/*
738			 * When we did open the file with O_NOATIME flag,
739			 * if successful, set 1 to t->restore_time.noatime
740			 * not to restore an atime of the file later.
741			 * if failed by EPERM, retry it without O_NOATIME flag.
742			 */
743			if (flags & O_NOATIME) {
744				if (t->entry_fd >= 0)
745					t->restore_time.noatime = 1;
746				else if (errno == EPERM) {
747					flags &= ~O_NOATIME;
748					continue;
749				}
750			}
751		} while (0);
752#endif
753		if (t->entry_fd < 0) {
754			archive_set_error(&a->archive, errno,
755			    "Couldn't open %s", tree_current_path(t));
756			r = ARCHIVE_FAILED;
757			tree_enter_initial_dir(t);
758			goto abort_read_data;
759		}
760		tree_enter_initial_dir(t);
761	}
762
763	/*
764	 * Allocate read buffer if not allocated.
765	 */
766	if (t->current_filesystem->allocation_ptr == NULL) {
767		r = setup_suitable_read_buffer(a);
768		if (r != ARCHIVE_OK) {
769			a->archive.state = ARCHIVE_STATE_FATAL;
770			goto abort_read_data;
771		}
772	}
773	t->entry_buff = t->current_filesystem->buff;
774	t->entry_buff_size = t->current_filesystem->buff_size;
775
776	buffbytes = t->entry_buff_size;
777	if ((int64_t)buffbytes > t->current_sparse->length)
778		buffbytes = t->current_sparse->length;
779
780	if (t->current_sparse->length == 0)
781		empty_sparse_region = 1;
782
783	/*
784	 * Skip hole.
785	 * TODO: Should we consider t->current_filesystem->xfer_align?
786	 */
787	if (t->current_sparse->offset > t->entry_total) {
788		if (lseek(t->entry_fd,
789		    (off_t)t->current_sparse->offset, SEEK_SET) < 0) {
790			archive_set_error(&a->archive, errno, "Seek error");
791			r = ARCHIVE_FATAL;
792			a->archive.state = ARCHIVE_STATE_FATAL;
793			goto abort_read_data;
794		}
795		bytes = t->current_sparse->offset - t->entry_total;
796		t->entry_remaining_bytes -= bytes;
797		t->entry_total += bytes;
798	}
799
800	/*
801	 * Read file contents.
802	 */
803	if (buffbytes > 0) {
804		bytes = read(t->entry_fd, t->entry_buff, buffbytes);
805		if (bytes < 0) {
806			archive_set_error(&a->archive, errno, "Read error");
807			r = ARCHIVE_FATAL;
808			a->archive.state = ARCHIVE_STATE_FATAL;
809			goto abort_read_data;
810		}
811	} else
812		bytes = 0;
813	/*
814	 * Return an EOF unless we've read a leading empty sparse region, which
815	 * is used to represent fully-sparse files.
816	*/
817	if (bytes == 0 && !empty_sparse_region) {
818		/* Get EOF */
819		t->entry_eof = 1;
820		r = ARCHIVE_EOF;
821		goto abort_read_data;
822	}
823	*buff = t->entry_buff;
824	*size = bytes;
825	*offset = t->entry_total;
826	t->entry_total += bytes;
827	t->entry_remaining_bytes -= bytes;
828	if (t->entry_remaining_bytes == 0) {
829		/* Close the current file descriptor */
830		close_and_restore_time(t->entry_fd, t, &t->restore_time);
831		t->entry_fd = -1;
832		t->entry_eof = 1;
833	}
834	t->current_sparse->offset += bytes;
835	t->current_sparse->length -= bytes;
836	if (t->current_sparse->length == 0 && !t->entry_eof)
837		t->current_sparse++;
838	return (ARCHIVE_OK);
839
840abort_read_data:
841	*buff = NULL;
842	*size = 0;
843	*offset = t->entry_total;
844	if (t->entry_fd >= 0) {
845		/* Close the current file descriptor */
846		close_and_restore_time(t->entry_fd, t, &t->restore_time);
847		t->entry_fd = -1;
848	}
849	return (r);
850}
851
852static int
853next_entry(struct archive_read_disk *a, struct tree *t,
854    struct archive_entry *entry)
855{
856	const struct stat *st; /* info to use for this entry */
857	const struct stat *lst;/* lstat() information */
858	const char *name;
859	int delayed, delayed_errno, descend, r;
860	struct archive_string delayed_str;
861
862	delayed = ARCHIVE_OK;
863	delayed_errno = 0;
864	archive_string_init(&delayed_str);
865
866	st = NULL;
867	lst = NULL;
868	t->descend = 0;
869	do {
870		switch (tree_next(t)) {
871		case TREE_ERROR_FATAL:
872			archive_set_error(&a->archive, t->tree_errno,
873			    "%s: Unable to continue traversing directory tree",
874			    tree_current_path(t));
875			a->archive.state = ARCHIVE_STATE_FATAL;
876			tree_enter_initial_dir(t);
877			return (ARCHIVE_FATAL);
878		case TREE_ERROR_DIR:
879			archive_set_error(&a->archive, ARCHIVE_ERRNO_MISC,
880			    "%s: Couldn't visit directory",
881			    tree_current_path(t));
882			tree_enter_initial_dir(t);
883			return (ARCHIVE_FAILED);
884		case 0:
885			tree_enter_initial_dir(t);
886			return (ARCHIVE_EOF);
887		case TREE_POSTDESCENT:
888		case TREE_POSTASCENT:
889			break;
890		case TREE_REGULAR:
891			lst = tree_current_lstat(t);
892			if (lst == NULL) {
893			    if (errno == ENOENT && t->depth > 0) {
894				delayed = ARCHIVE_WARN;
895				delayed_errno = errno;
896				if (delayed_str.length == 0) {
897					archive_string_sprintf(&delayed_str,
898					    "%s", tree_current_path(t));
899				} else {
900					archive_string_sprintf(&delayed_str,
901					    " %s", tree_current_path(t));
902				}
903			    } else {
904				archive_set_error(&a->archive, errno,
905				    "%s: Cannot stat",
906				    tree_current_path(t));
907				tree_enter_initial_dir(t);
908				return (ARCHIVE_FAILED);
909			    }
910			}
911			break;
912		}
913	} while (lst == NULL);
914
915#ifdef __APPLE__
916	if (a->flags & ARCHIVE_READDISK_MAC_COPYFILE) {
917		/* If we're using copyfile(), ignore "._XXX" files. */
918		const char *bname = strrchr(tree_current_path(t), '/');
919		if (bname == NULL)
920			bname = tree_current_path(t);
921		else
922			++bname;
923		if (bname[0] == '.' && bname[1] == '_')
924			return (ARCHIVE_RETRY);
925	}
926#endif
927
928	archive_entry_copy_pathname(entry, tree_current_path(t));
929	/*
930	 * Perform path matching.
931	 */
932	if (a->matching) {
933		r = archive_match_path_excluded(a->matching, entry);
934		if (r < 0) {
935			archive_set_error(&(a->archive), errno,
936			    "Failed : %s", archive_error_string(a->matching));
937			return (r);
938		}
939		if (r) {
940			if (a->excluded_cb_func)
941				a->excluded_cb_func(&(a->archive),
942				    a->excluded_cb_data, entry);
943			return (ARCHIVE_RETRY);
944		}
945	}
946
947	/*
948	 * Distinguish 'L'/'P'/'H' symlink following.
949	 */
950	switch(t->symlink_mode) {
951	case 'H':
952		/* 'H': After the first item, rest like 'P'. */
953		t->symlink_mode = 'P';
954		/* 'H': First item (from command line) like 'L'. */
955		/* FALLTHROUGH */
956	case 'L':
957		/* 'L': Do descend through a symlink to dir. */
958		descend = tree_current_is_dir(t);
959		/* 'L': Follow symlinks to files. */
960		a->symlink_mode = 'L';
961		a->follow_symlinks = 1;
962		/* 'L': Archive symlinks as targets, if we can. */
963		st = tree_current_stat(t);
964		if (st != NULL && !tree_target_is_same_as_parent(t, st))
965			break;
966		/* If stat fails, we have a broken symlink;
967		 * in that case, don't follow the link. */
968		/* FALLTHROUGH */
969	default:
970		/* 'P': Don't descend through a symlink to dir. */
971		descend = tree_current_is_physical_dir(t);
972		/* 'P': Don't follow symlinks to files. */
973		a->symlink_mode = 'P';
974		a->follow_symlinks = 0;
975		/* 'P': Archive symlinks as symlinks. */
976		st = lst;
977		break;
978	}
979
980	if (update_current_filesystem(a, st->st_dev) != ARCHIVE_OK) {
981		a->archive.state = ARCHIVE_STATE_FATAL;
982		tree_enter_initial_dir(t);
983		return (ARCHIVE_FATAL);
984	}
985	if (t->initial_filesystem_id == -1)
986		t->initial_filesystem_id = t->current_filesystem_id;
987	if (a->flags & ARCHIVE_READDISK_NO_TRAVERSE_MOUNTS) {
988		if (t->initial_filesystem_id != t->current_filesystem_id)
989			descend = 0;
990	}
991	t->descend = descend;
992
993	/*
994	 * Honor nodump flag.
995	 * If the file is marked with nodump flag, do not return this entry.
996	 */
997	if (a->flags & ARCHIVE_READDISK_HONOR_NODUMP) {
998#if defined(HAVE_STRUCT_STAT_ST_FLAGS) && defined(UF_NODUMP)
999		if (st->st_flags & UF_NODUMP)
1000			return (ARCHIVE_RETRY);
1001#elif (defined(FS_IOC_GETFLAGS) && defined(FS_NODUMP_FL) && \
1002       defined(HAVE_WORKING_FS_IOC_GETFLAGS)) || \
1003      (defined(EXT2_IOC_GETFLAGS) && defined(EXT2_NODUMP_FL) && \
1004       defined(HAVE_WORKING_EXT2_IOC_GETFLAGS))
1005		if (S_ISREG(st->st_mode) || S_ISDIR(st->st_mode)) {
1006			int stflags;
1007
1008			t->entry_fd = open_on_current_dir(t,
1009			    tree_current_access_path(t),
1010			    O_RDONLY | O_NONBLOCK | O_CLOEXEC);
1011			__archive_ensure_cloexec_flag(t->entry_fd);
1012			if (t->entry_fd >= 0) {
1013				r = ioctl(t->entry_fd,
1014#ifdef FS_IOC_GETFLAGS
1015				FS_IOC_GETFLAGS,
1016#else
1017				EXT2_IOC_GETFLAGS,
1018#endif
1019					&stflags);
1020#ifdef FS_NODUMP_FL
1021				if (r == 0 && (stflags & FS_NODUMP_FL) != 0)
1022#else
1023				if (r == 0 && (stflags & EXT2_NODUMP_FL) != 0)
1024#endif
1025					return (ARCHIVE_RETRY);
1026			}
1027		}
1028#endif
1029	}
1030
1031	archive_entry_copy_stat(entry, st);
1032
1033	/* Save the times to be restored. This must be in before
1034	 * calling archive_read_disk_descend() or any chance of it,
1035	 * especially, invoking a callback. */
1036	t->restore_time.mtime = archive_entry_mtime(entry);
1037	t->restore_time.mtime_nsec = archive_entry_mtime_nsec(entry);
1038	t->restore_time.atime = archive_entry_atime(entry);
1039	t->restore_time.atime_nsec = archive_entry_atime_nsec(entry);
1040	t->restore_time.filetype = archive_entry_filetype(entry);
1041	t->restore_time.noatime = t->current_filesystem->noatime;
1042
1043	/*
1044	 * Perform time matching.
1045	 */
1046	if (a->matching) {
1047		r = archive_match_time_excluded(a->matching, entry);
1048		if (r < 0) {
1049			archive_set_error(&(a->archive), errno,
1050			    "Failed : %s", archive_error_string(a->matching));
1051			return (r);
1052		}
1053		if (r) {
1054			if (a->excluded_cb_func)
1055				a->excluded_cb_func(&(a->archive),
1056				    a->excluded_cb_data, entry);
1057			return (ARCHIVE_RETRY);
1058		}
1059	}
1060
1061	/* Lookup uname/gname */
1062	name = archive_read_disk_uname(&(a->archive), archive_entry_uid(entry));
1063	if (name != NULL)
1064		archive_entry_copy_uname(entry, name);
1065	name = archive_read_disk_gname(&(a->archive), archive_entry_gid(entry));
1066	if (name != NULL)
1067		archive_entry_copy_gname(entry, name);
1068
1069	/*
1070	 * Perform owner matching.
1071	 */
1072	if (a->matching) {
1073		r = archive_match_owner_excluded(a->matching, entry);
1074		if (r < 0) {
1075			archive_set_error(&(a->archive), errno,
1076			    "Failed : %s", archive_error_string(a->matching));
1077			return (r);
1078		}
1079		if (r) {
1080			if (a->excluded_cb_func)
1081				a->excluded_cb_func(&(a->archive),
1082				    a->excluded_cb_data, entry);
1083			return (ARCHIVE_RETRY);
1084		}
1085	}
1086
1087	/*
1088	 * Invoke a meta data filter callback.
1089	 */
1090	if (a->metadata_filter_func) {
1091		if (!a->metadata_filter_func(&(a->archive),
1092		    a->metadata_filter_data, entry))
1093			return (ARCHIVE_RETRY);
1094	}
1095
1096	/*
1097	 * Populate the archive_entry with metadata from the disk.
1098	 */
1099	archive_entry_copy_sourcepath(entry, tree_current_access_path(t));
1100	r = archive_read_disk_entry_from_file(&(a->archive), entry,
1101		t->entry_fd, st);
1102
1103	if (r == ARCHIVE_OK) {
1104		r = delayed;
1105		if (r != ARCHIVE_OK) {
1106			archive_string_sprintf(&delayed_str, ": %s",
1107			    "File removed before we read it");
1108			archive_set_error(&(a->archive), delayed_errno,
1109			    "%s", delayed_str.s);
1110		}
1111	}
1112	if (!archive_string_empty(&delayed_str))
1113		archive_string_free(&delayed_str);
1114
1115	return (r);
1116}
1117
1118static int
1119_archive_read_next_header(struct archive *_a, struct archive_entry **entryp)
1120{
1121	int ret;
1122	struct archive_read_disk *a = (struct archive_read_disk *)_a;
1123	*entryp = NULL;
1124	ret = _archive_read_next_header2(_a, a->entry);
1125	*entryp = a->entry;
1126	return ret;
1127}
1128
1129static int
1130_archive_read_next_header2(struct archive *_a, struct archive_entry *entry)
1131{
1132	struct archive_read_disk *a = (struct archive_read_disk *)_a;
1133	struct tree *t;
1134	int r;
1135
1136	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
1137	    ARCHIVE_STATE_HEADER | ARCHIVE_STATE_DATA,
1138	    "archive_read_next_header2");
1139
1140	t = a->tree;
1141	if (t->entry_fd >= 0) {
1142		close_and_restore_time(t->entry_fd, t, &t->restore_time);
1143		t->entry_fd = -1;
1144	}
1145
1146	for (;;) {
1147		r = next_entry(a, t, entry);
1148		if (t->entry_fd >= 0) {
1149			close(t->entry_fd);
1150			t->entry_fd = -1;
1151		}
1152
1153		if (r == ARCHIVE_RETRY) {
1154			archive_entry_clear(entry);
1155			continue;
1156		}
1157		break;
1158	}
1159
1160	/* Return to the initial directory. */
1161	tree_enter_initial_dir(t);
1162
1163	/*
1164	 * EOF and FATAL are persistent at this layer.  By
1165	 * modifying the state, we guarantee that future calls to
1166	 * read a header or read data will fail.
1167	 */
1168	switch (r) {
1169	case ARCHIVE_EOF:
1170		a->archive.state = ARCHIVE_STATE_EOF;
1171		break;
1172	case ARCHIVE_OK:
1173	case ARCHIVE_WARN:
1174		/* Overwrite the sourcepath based on the initial directory. */
1175		archive_entry_copy_sourcepath(entry, tree_current_path(t));
1176		t->entry_total = 0;
1177		if (archive_entry_filetype(entry) == AE_IFREG) {
1178			t->nlink = archive_entry_nlink(entry);
1179			t->entry_remaining_bytes = archive_entry_size(entry);
1180			t->entry_eof = (t->entry_remaining_bytes == 0)? 1: 0;
1181			if (!t->entry_eof &&
1182			    setup_sparse(a, entry) != ARCHIVE_OK)
1183				return (ARCHIVE_FATAL);
1184		} else {
1185			t->entry_remaining_bytes = 0;
1186			t->entry_eof = 1;
1187		}
1188		a->archive.state = ARCHIVE_STATE_DATA;
1189		break;
1190	case ARCHIVE_RETRY:
1191		break;
1192	case ARCHIVE_FATAL:
1193		a->archive.state = ARCHIVE_STATE_FATAL;
1194		break;
1195	}
1196
1197	__archive_reset_read_data(&a->archive);
1198	return (r);
1199}
1200
1201static int
1202setup_sparse(struct archive_read_disk *a, struct archive_entry *entry)
1203{
1204	struct tree *t = a->tree;
1205	int64_t length, offset;
1206	int i;
1207
1208	t->sparse_count = archive_entry_sparse_reset(entry);
1209	if (t->sparse_count+1 > t->sparse_list_size) {
1210		free(t->sparse_list);
1211		t->sparse_list_size = t->sparse_count + 1;
1212		t->sparse_list = malloc(sizeof(t->sparse_list[0]) *
1213		    t->sparse_list_size);
1214		if (t->sparse_list == NULL) {
1215			t->sparse_list_size = 0;
1216			archive_set_error(&a->archive, ENOMEM,
1217			    "Can't allocate data");
1218			a->archive.state = ARCHIVE_STATE_FATAL;
1219			return (ARCHIVE_FATAL);
1220		}
1221	}
1222	for (i = 0; i < t->sparse_count; i++) {
1223		archive_entry_sparse_next(entry, &offset, &length);
1224		t->sparse_list[i].offset = offset;
1225		t->sparse_list[i].length = length;
1226	}
1227	if (i == 0) {
1228		t->sparse_list[i].offset = 0;
1229		t->sparse_list[i].length = archive_entry_size(entry);
1230	} else {
1231		t->sparse_list[i].offset = archive_entry_size(entry);
1232		t->sparse_list[i].length = 0;
1233	}
1234	t->current_sparse = t->sparse_list;
1235
1236	return (ARCHIVE_OK);
1237}
1238
1239int
1240archive_read_disk_set_matching(struct archive *_a, struct archive *_ma,
1241    void (*_excluded_func)(struct archive *, void *, struct archive_entry *),
1242    void *_client_data)
1243{
1244	struct archive_read_disk *a = (struct archive_read_disk *)_a;
1245	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
1246	    ARCHIVE_STATE_ANY, "archive_read_disk_set_matching");
1247	a->matching = _ma;
1248	a->excluded_cb_func = _excluded_func;
1249	a->excluded_cb_data = _client_data;
1250	return (ARCHIVE_OK);
1251}
1252
1253int
1254archive_read_disk_set_metadata_filter_callback(struct archive *_a,
1255    int (*_metadata_filter_func)(struct archive *, void *,
1256    struct archive_entry *), void *_client_data)
1257{
1258	struct archive_read_disk *a = (struct archive_read_disk *)_a;
1259
1260	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC, ARCHIVE_STATE_ANY,
1261	    "archive_read_disk_set_metadata_filter_callback");
1262
1263	a->metadata_filter_func = _metadata_filter_func;
1264	a->metadata_filter_data = _client_data;
1265	return (ARCHIVE_OK);
1266}
1267
1268int
1269archive_read_disk_can_descend(struct archive *_a)
1270{
1271	struct archive_read_disk *a = (struct archive_read_disk *)_a;
1272	struct tree *t = a->tree;
1273
1274	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
1275	    ARCHIVE_STATE_HEADER | ARCHIVE_STATE_DATA,
1276	    "archive_read_disk_can_descend");
1277
1278	return (t->visit_type == TREE_REGULAR && t->descend);
1279}
1280
1281/*
1282 * Called by the client to mark the directory just returned from
1283 * tree_next() as needing to be visited.
1284 */
1285int
1286archive_read_disk_descend(struct archive *_a)
1287{
1288	struct archive_read_disk *a = (struct archive_read_disk *)_a;
1289	struct tree *t = a->tree;
1290
1291	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
1292	    ARCHIVE_STATE_HEADER | ARCHIVE_STATE_DATA,
1293	    "archive_read_disk_descend");
1294
1295	if (t->visit_type != TREE_REGULAR || !t->descend)
1296		return (ARCHIVE_OK);
1297
1298	/*
1299	 * We must not treat the initial specified path as a physical dir,
1300	 * because if we do then we will try and ascend out of it by opening
1301	 * ".." which is (a) wrong and (b) causes spurious permissions errors
1302	 * if ".." is not readable by us. Instead, treat it as if it were a
1303	 * symlink. (This uses an extra fd, but it can only happen once at the
1304	 * top level of a traverse.) But we can't necessarily assume t->st is
1305	 * valid here (though t->lst is), which complicates the logic a
1306	 * little.
1307	 */
1308	if (tree_current_is_physical_dir(t)) {
1309		tree_push(t, t->basename, t->current_filesystem_id,
1310		    t->lst.st_dev, t->lst.st_ino, &t->restore_time);
1311		if (t->stack->parent->parent != NULL)
1312			t->stack->flags |= isDir;
1313		else
1314			t->stack->flags |= isDirLink;
1315	} else if (tree_current_is_dir(t)) {
1316		tree_push(t, t->basename, t->current_filesystem_id,
1317		    t->st.st_dev, t->st.st_ino, &t->restore_time);
1318		t->stack->flags |= isDirLink;
1319	}
1320	t->descend = 0;
1321	return (ARCHIVE_OK);
1322}
1323
1324int
1325archive_read_disk_open(struct archive *_a, const char *pathname)
1326{
1327	struct archive_read_disk *a = (struct archive_read_disk *)_a;
1328
1329	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
1330	    ARCHIVE_STATE_NEW | ARCHIVE_STATE_CLOSED,
1331	    "archive_read_disk_open");
1332	archive_clear_error(&a->archive);
1333
1334	return (_archive_read_disk_open(_a, pathname));
1335}
1336
1337int
1338archive_read_disk_open_w(struct archive *_a, const wchar_t *pathname)
1339{
1340	struct archive_read_disk *a = (struct archive_read_disk *)_a;
1341	struct archive_string path;
1342	int ret;
1343
1344	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC,
1345	    ARCHIVE_STATE_NEW | ARCHIVE_STATE_CLOSED,
1346	    "archive_read_disk_open_w");
1347	archive_clear_error(&a->archive);
1348
1349	/* Make a char string from a wchar_t string. */
1350	archive_string_init(&path);
1351	if (archive_string_append_from_wcs(&path, pathname,
1352	    wcslen(pathname)) != 0) {
1353		if (errno == ENOMEM)
1354			archive_set_error(&a->archive, ENOMEM,
1355			    "Can't allocate memory");
1356		else
1357			archive_set_error(&a->archive, ARCHIVE_ERRNO_MISC,
1358			    "Can't convert a path to a char string");
1359		a->archive.state = ARCHIVE_STATE_FATAL;
1360		ret = ARCHIVE_FATAL;
1361	} else
1362		ret = _archive_read_disk_open(_a, path.s);
1363
1364	archive_string_free(&path);
1365	return (ret);
1366}
1367
1368static int
1369_archive_read_disk_open(struct archive *_a, const char *pathname)
1370{
1371	struct archive_read_disk *a = (struct archive_read_disk *)_a;
1372
1373	if (a->tree != NULL)
1374		a->tree = tree_reopen(a->tree, pathname,
1375		    a->flags & ARCHIVE_READDISK_RESTORE_ATIME);
1376	else
1377		a->tree = tree_open(pathname, a->symlink_mode,
1378		    a->flags & ARCHIVE_READDISK_RESTORE_ATIME);
1379	if (a->tree == NULL) {
1380		archive_set_error(&a->archive, ENOMEM,
1381		    "Can't allocate tar data");
1382		a->archive.state = ARCHIVE_STATE_FATAL;
1383		return (ARCHIVE_FATAL);
1384	}
1385	a->archive.state = ARCHIVE_STATE_HEADER;
1386
1387	return (ARCHIVE_OK);
1388}
1389
1390/*
1391 * Return a current filesystem ID which is index of the filesystem entry
1392 * you've visited through archive_read_disk.
1393 */
1394int
1395archive_read_disk_current_filesystem(struct archive *_a)
1396{
1397	struct archive_read_disk *a = (struct archive_read_disk *)_a;
1398
1399	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC, ARCHIVE_STATE_DATA,
1400	    "archive_read_disk_current_filesystem");
1401
1402	return (a->tree->current_filesystem_id);
1403}
1404
1405static int
1406update_current_filesystem(struct archive_read_disk *a, int64_t dev)
1407{
1408	struct tree *t = a->tree;
1409	int i, fid;
1410
1411	if (t->current_filesystem != NULL &&
1412	    t->current_filesystem->dev == dev)
1413		return (ARCHIVE_OK);
1414
1415	for (i = 0; i < t->max_filesystem_id; i++) {
1416		if (t->filesystem_table[i].dev == dev) {
1417			/* There is the filesystem ID we've already generated. */
1418			t->current_filesystem_id = i;
1419			t->current_filesystem = &(t->filesystem_table[i]);
1420			return (ARCHIVE_OK);
1421		}
1422	}
1423
1424	/*
1425	 * This is the new filesystem which we have to generate a new ID for.
1426	 */
1427	fid = t->max_filesystem_id++;
1428	if (t->max_filesystem_id > t->allocated_filesystem) {
1429		size_t s;
1430		void *p;
1431
1432		s = t->max_filesystem_id * 2;
1433		p = realloc(t->filesystem_table,
1434		        s * sizeof(*t->filesystem_table));
1435		if (p == NULL) {
1436			archive_set_error(&a->archive, ENOMEM,
1437			    "Can't allocate tar data");
1438			return (ARCHIVE_FATAL);
1439		}
1440		t->filesystem_table = (struct filesystem *)p;
1441		t->allocated_filesystem = s;
1442	}
1443	t->current_filesystem_id = fid;
1444	t->current_filesystem = &(t->filesystem_table[fid]);
1445	t->current_filesystem->dev = dev;
1446	t->current_filesystem->allocation_ptr = NULL;
1447	t->current_filesystem->buff = NULL;
1448
1449	/* Setup the current filesystem properties which depend on
1450	 * platform specific. */
1451	return (setup_current_filesystem(a));
1452}
1453
1454/*
1455 * Returns 1 if current filesystem is generated filesystem, 0 if it is not
1456 * or -1 if it is unknown.
1457 */
1458int
1459archive_read_disk_current_filesystem_is_synthetic(struct archive *_a)
1460{
1461	struct archive_read_disk *a = (struct archive_read_disk *)_a;
1462
1463	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC, ARCHIVE_STATE_DATA,
1464	    "archive_read_disk_current_filesystem");
1465
1466	return (a->tree->current_filesystem->synthetic);
1467}
1468
1469/*
1470 * Returns 1 if current filesystem is remote filesystem, 0 if it is not
1471 * or -1 if it is unknown.
1472 */
1473int
1474archive_read_disk_current_filesystem_is_remote(struct archive *_a)
1475{
1476	struct archive_read_disk *a = (struct archive_read_disk *)_a;
1477
1478	archive_check_magic(_a, ARCHIVE_READ_DISK_MAGIC, ARCHIVE_STATE_DATA,
1479	    "archive_read_disk_current_filesystem");
1480
1481	return (a->tree->current_filesystem->remote);
1482}
1483
1484#if defined(_PC_REC_INCR_XFER_SIZE) && defined(_PC_REC_MAX_XFER_SIZE) &&\
1485	defined(_PC_REC_MIN_XFER_SIZE) && defined(_PC_REC_XFER_ALIGN)
1486static int
1487get_xfer_size(struct tree *t, int fd, const char *path)
1488{
1489	t->current_filesystem->xfer_align = -1;
1490	errno = 0;
1491	if (fd >= 0) {
1492		t->current_filesystem->incr_xfer_size =
1493		    fpathconf(fd, _PC_REC_INCR_XFER_SIZE);
1494		t->current_filesystem->max_xfer_size =
1495		    fpathconf(fd, _PC_REC_MAX_XFER_SIZE);
1496		t->current_filesystem->min_xfer_size =
1497		    fpathconf(fd, _PC_REC_MIN_XFER_SIZE);
1498		t->current_filesystem->xfer_align =
1499		    fpathconf(fd, _PC_REC_XFER_ALIGN);
1500	} else if (path != NULL) {
1501		t->current_filesystem->incr_xfer_size =
1502		    pathconf(path, _PC_REC_INCR_XFER_SIZE);
1503		t->current_filesystem->max_xfer_size =
1504		    pathconf(path, _PC_REC_MAX_XFER_SIZE);
1505		t->current_filesystem->min_xfer_size =
1506		    pathconf(path, _PC_REC_MIN_XFER_SIZE);
1507		t->current_filesystem->xfer_align =
1508		    pathconf(path, _PC_REC_XFER_ALIGN);
1509	}
1510	/* At least we need an alignment size. */
1511	if (t->current_filesystem->xfer_align == -1)
1512		return ((errno == EINVAL)?1:-1);
1513	else
1514		return (0);
1515}
1516#else
1517static int
1518get_xfer_size(struct tree *t, int fd, const char *path)
1519{
1520	(void)t; /* UNUSED */
1521	(void)fd; /* UNUSED */
1522	(void)path; /* UNUSED */
1523	return (1);/* Not supported */
1524}
1525#endif
1526
1527#if defined(HAVE_STATFS) && defined(HAVE_FSTATFS) && defined(MNT_LOCAL) \
1528	&& !defined(ST_LOCAL)
1529
1530/*
1531 * Gather current filesystem properties on FreeBSD, OpenBSD and Mac OS X.
1532 */
1533static int
1534setup_current_filesystem(struct archive_read_disk *a)
1535{
1536	struct tree *t = a->tree;
1537	struct statfs sfs;
1538#if defined(HAVE_GETVFSBYNAME) && defined(VFCF_SYNTHETIC)
1539/* TODO: configure should set GETVFSBYNAME_ARG_TYPE to make
1540 * this accurate; some platforms have both and we need the one that's
1541 * used by getvfsbyname()
1542 *
1543 * Then the following would become:
1544 *  #if defined(GETVFSBYNAME_ARG_TYPE)
1545 *   GETVFSBYNAME_ARG_TYPE vfc;
1546 *  #endif
1547 */
1548#  if defined(HAVE_STRUCT_XVFSCONF)
1549	struct xvfsconf vfc;
1550#  else
1551	struct vfsconf vfc;
1552#  endif
1553#endif
1554	int r, xr = 0;
1555#if !defined(HAVE_STRUCT_STATFS_F_NAMEMAX)
1556	long nm;
1557#endif
1558
1559	t->current_filesystem->synthetic = -1;
1560	t->current_filesystem->remote = -1;
1561	if (tree_current_is_symblic_link_target(t)) {
1562#if defined(HAVE_OPENAT)
1563		/*
1564		 * Get file system statistics on any directory
1565		 * where current is.
1566		 */
1567		int fd = openat(tree_current_dir_fd(t),
1568		    tree_current_access_path(t), O_RDONLY | O_CLOEXEC);
1569		__archive_ensure_cloexec_flag(fd);
1570		if (fd < 0) {
1571			archive_set_error(&a->archive, errno,
1572			    "openat failed");
1573			return (ARCHIVE_FAILED);
1574		}
1575		r = fstatfs(fd, &sfs);
1576		if (r == 0)
1577			xr = get_xfer_size(t, fd, NULL);
1578		close(fd);
1579#else
1580		if (tree_enter_working_dir(t) != 0) {
1581			archive_set_error(&a->archive, errno, "fchdir failed");
1582			return (ARCHIVE_FAILED);
1583		}
1584		r = statfs(tree_current_access_path(t), &sfs);
1585		if (r == 0)
1586			xr = get_xfer_size(t, -1, tree_current_access_path(t));
1587#endif
1588	} else {
1589		r = fstatfs(tree_current_dir_fd(t), &sfs);
1590		if (r == 0)
1591			xr = get_xfer_size(t, tree_current_dir_fd(t), NULL);
1592	}
1593	if (r == -1 || xr == -1) {
1594		archive_set_error(&a->archive, errno, "statfs failed");
1595		return (ARCHIVE_FAILED);
1596	} else if (xr == 1) {
1597		/* pathconf(_PC_REX_*) operations are not supported. */
1598		t->current_filesystem->xfer_align = sfs.f_bsize;
1599		t->current_filesystem->max_xfer_size = -1;
1600		t->current_filesystem->min_xfer_size = sfs.f_iosize;
1601		t->current_filesystem->incr_xfer_size = sfs.f_iosize;
1602	}
1603	if (sfs.f_flags & MNT_LOCAL)
1604		t->current_filesystem->remote = 0;
1605	else
1606		t->current_filesystem->remote = 1;
1607
1608#if defined(HAVE_GETVFSBYNAME) && defined(VFCF_SYNTHETIC)
1609	r = getvfsbyname(sfs.f_fstypename, &vfc);
1610	if (r == -1) {
1611		archive_set_error(&a->archive, errno, "getvfsbyname failed");
1612		return (ARCHIVE_FAILED);
1613	}
1614	if (vfc.vfc_flags & VFCF_SYNTHETIC)
1615		t->current_filesystem->synthetic = 1;
1616	else
1617		t->current_filesystem->synthetic = 0;
1618#endif
1619
1620#if defined(MNT_NOATIME)
1621	if (sfs.f_flags & MNT_NOATIME)
1622		t->current_filesystem->noatime = 1;
1623	else
1624#endif
1625		t->current_filesystem->noatime = 0;
1626
1627#if defined(USE_READDIR_R)
1628	/* Set maximum filename length. */
1629#if defined(HAVE_STRUCT_STATFS_F_NAMEMAX)
1630	t->current_filesystem->name_max = sfs.f_namemax;
1631#else
1632# if defined(_PC_NAME_MAX)
1633	/* Mac OS X does not have f_namemax in struct statfs. */
1634	if (tree_current_is_symblic_link_target(t)) {
1635		if (tree_enter_working_dir(t) != 0) {
1636			archive_set_error(&a->archive, errno, "fchdir failed");
1637			return (ARCHIVE_FAILED);
1638		}
1639		nm = pathconf(tree_current_access_path(t), _PC_NAME_MAX);
1640	} else
1641		nm = fpathconf(tree_current_dir_fd(t), _PC_NAME_MAX);
1642# else
1643	nm = -1;
1644# endif
1645	if (nm == -1)
1646		t->current_filesystem->name_max = NAME_MAX;
1647	else
1648		t->current_filesystem->name_max = nm;
1649#endif
1650#endif /* USE_READDIR_R */
1651	return (ARCHIVE_OK);
1652}
1653
1654#elif (defined(HAVE_STATVFS) || defined(HAVE_FSTATVFS)) && defined(ST_LOCAL)
1655
1656/*
1657 * Gather current filesystem properties on NetBSD
1658 */
1659static int
1660setup_current_filesystem(struct archive_read_disk *a)
1661{
1662	struct tree *t = a->tree;
1663	struct statvfs sfs;
1664	int r, xr = 0;
1665
1666	t->current_filesystem->synthetic = -1;
1667	if (tree_enter_working_dir(t) != 0) {
1668		archive_set_error(&a->archive, errno, "fchdir failed");
1669		return (ARCHIVE_FAILED);
1670	}
1671	if (tree_current_is_symblic_link_target(t)) {
1672		r = statvfs(tree_current_access_path(t), &sfs);
1673		if (r == 0)
1674			xr = get_xfer_size(t, -1, tree_current_access_path(t));
1675	} else {
1676#ifdef HAVE_FSTATVFS
1677		r = fstatvfs(tree_current_dir_fd(t), &sfs);
1678		if (r == 0)
1679			xr = get_xfer_size(t, tree_current_dir_fd(t), NULL);
1680#else
1681		r = statvfs(".", &sfs);
1682		if (r == 0)
1683			xr = get_xfer_size(t, -1, ".");
1684#endif
1685	}
1686	if (r == -1 || xr == -1) {
1687		t->current_filesystem->remote = -1;
1688		archive_set_error(&a->archive, errno, "statvfs failed");
1689		return (ARCHIVE_FAILED);
1690	} else if (xr == 1) {
1691		/* Usually come here unless NetBSD supports _PC_REC_XFER_ALIGN
1692		 * for pathconf() function. */
1693		t->current_filesystem->xfer_align = sfs.f_frsize;
1694		t->current_filesystem->max_xfer_size = -1;
1695#if defined(HAVE_STRUCT_STATVFS_F_IOSIZE)
1696		t->current_filesystem->min_xfer_size = sfs.f_iosize;
1697		t->current_filesystem->incr_xfer_size = sfs.f_iosize;
1698#else
1699		t->current_filesystem->min_xfer_size = sfs.f_bsize;
1700		t->current_filesystem->incr_xfer_size = sfs.f_bsize;
1701#endif
1702	}
1703	if (sfs.f_flag & ST_LOCAL)
1704		t->current_filesystem->remote = 0;
1705	else
1706		t->current_filesystem->remote = 1;
1707
1708#if defined(ST_NOATIME)
1709	if (sfs.f_flag & ST_NOATIME)
1710		t->current_filesystem->noatime = 1;
1711	else
1712#endif
1713		t->current_filesystem->noatime = 0;
1714
1715	/* Set maximum filename length. */
1716	t->current_filesystem->name_max = sfs.f_namemax;
1717	return (ARCHIVE_OK);
1718}
1719
1720#elif defined(HAVE_SYS_STATFS_H) && defined(HAVE_LINUX_MAGIC_H) &&\
1721	defined(HAVE_STATFS) && defined(HAVE_FSTATFS)
1722/*
1723 * Note: statfs is deprecated since LSB 3.2
1724 */
1725
1726#ifndef CIFS_SUPER_MAGIC
1727#define CIFS_SUPER_MAGIC 0xFF534D42
1728#endif
1729#ifndef DEVFS_SUPER_MAGIC
1730#define DEVFS_SUPER_MAGIC 0x1373
1731#endif
1732
1733/*
1734 * Gather current filesystem properties on Linux
1735 */
1736static int
1737setup_current_filesystem(struct archive_read_disk *a)
1738{
1739	struct tree *t = a->tree;
1740	struct statfs sfs;
1741#if defined(HAVE_STATVFS)
1742	struct statvfs svfs;
1743#endif
1744	int r, vr = 0, xr = 0;
1745
1746	if (tree_current_is_symblic_link_target(t)) {
1747#if defined(HAVE_OPENAT)
1748		/*
1749		 * Get file system statistics on any directory
1750		 * where current is.
1751		 */
1752		int fd = openat(tree_current_dir_fd(t),
1753		    tree_current_access_path(t), O_RDONLY | O_CLOEXEC);
1754		__archive_ensure_cloexec_flag(fd);
1755		if (fd < 0) {
1756			archive_set_error(&a->archive, errno,
1757			    "openat failed");
1758			return (ARCHIVE_FAILED);
1759		}
1760#if defined(HAVE_FSTATVFS)
1761		vr = fstatvfs(fd, &svfs);/* for f_flag, mount flags */
1762#endif
1763		r = fstatfs(fd, &sfs);
1764		if (r == 0)
1765			xr = get_xfer_size(t, fd, NULL);
1766		close(fd);
1767#else
1768		if (tree_enter_working_dir(t) != 0) {
1769			archive_set_error(&a->archive, errno, "fchdir failed");
1770			return (ARCHIVE_FAILED);
1771		}
1772#if defined(HAVE_STATVFS)
1773		vr = statvfs(tree_current_access_path(t), &svfs);
1774#endif
1775		r = statfs(tree_current_access_path(t), &sfs);
1776		if (r == 0)
1777			xr = get_xfer_size(t, -1, tree_current_access_path(t));
1778#endif
1779	} else {
1780#ifdef HAVE_FSTATFS
1781#if defined(HAVE_FSTATVFS)
1782		vr = fstatvfs(tree_current_dir_fd(t), &svfs);
1783#endif
1784		r = fstatfs(tree_current_dir_fd(t), &sfs);
1785		if (r == 0)
1786			xr = get_xfer_size(t, tree_current_dir_fd(t), NULL);
1787#else
1788		if (tree_enter_working_dir(t) != 0) {
1789			archive_set_error(&a->archive, errno, "fchdir failed");
1790			return (ARCHIVE_FAILED);
1791		}
1792#if defined(HAVE_STATVFS)
1793		vr = statvfs(".", &svfs);
1794#endif
1795		r = statfs(".", &sfs);
1796		if (r == 0)
1797			xr = get_xfer_size(t, -1, ".");
1798#endif
1799	}
1800	if (r == -1 || xr == -1 || vr == -1) {
1801		t->current_filesystem->synthetic = -1;
1802		t->current_filesystem->remote = -1;
1803		archive_set_error(&a->archive, errno, "statfs failed");
1804		return (ARCHIVE_FAILED);
1805	} else if (xr == 1) {
1806		/* pathconf(_PC_REX_*) operations are not supported. */
1807#if defined(HAVE_STATVFS)
1808		t->current_filesystem->xfer_align = svfs.f_frsize;
1809		t->current_filesystem->max_xfer_size = -1;
1810		t->current_filesystem->min_xfer_size = svfs.f_bsize;
1811		t->current_filesystem->incr_xfer_size = svfs.f_bsize;
1812#else
1813		t->current_filesystem->xfer_align = sfs.f_frsize;
1814		t->current_filesystem->max_xfer_size = -1;
1815		t->current_filesystem->min_xfer_size = sfs.f_bsize;
1816		t->current_filesystem->incr_xfer_size = sfs.f_bsize;
1817#endif
1818	}
1819	switch (sfs.f_type) {
1820	case AFS_SUPER_MAGIC:
1821	case CIFS_SUPER_MAGIC:
1822	case CODA_SUPER_MAGIC:
1823	case NCP_SUPER_MAGIC:/* NetWare */
1824	case NFS_SUPER_MAGIC:
1825	case SMB_SUPER_MAGIC:
1826		t->current_filesystem->remote = 1;
1827		t->current_filesystem->synthetic = 0;
1828		break;
1829	case DEVFS_SUPER_MAGIC:
1830	case PROC_SUPER_MAGIC:
1831	case USBDEVICE_SUPER_MAGIC:
1832		t->current_filesystem->remote = 0;
1833		t->current_filesystem->synthetic = 1;
1834		break;
1835	default:
1836		t->current_filesystem->remote = 0;
1837		t->current_filesystem->synthetic = 0;
1838		break;
1839	}
1840
1841#if defined(ST_NOATIME)
1842#if defined(HAVE_STATVFS)
1843	if (svfs.f_flag & ST_NOATIME)
1844#else
1845	if (sfs.f_flag & ST_NOATIME)
1846#endif
1847		t->current_filesystem->noatime = 1;
1848	else
1849#endif
1850		t->current_filesystem->noatime = 0;
1851
1852#if defined(USE_READDIR_R)
1853	/* Set maximum filename length. */
1854	t->current_filesystem->name_max = sfs.f_namelen;
1855#endif
1856	return (ARCHIVE_OK);
1857}
1858
1859#elif defined(HAVE_SYS_STATVFS_H) &&\
1860	(defined(HAVE_STATVFS) || defined(HAVE_FSTATVFS))
1861
1862/*
1863 * Gather current filesystem properties on other posix platform.
1864 */
1865static int
1866setup_current_filesystem(struct archive_read_disk *a)
1867{
1868	struct tree *t = a->tree;
1869	struct statvfs sfs;
1870	int r, xr = 0;
1871
1872	t->current_filesystem->synthetic = -1;/* Not supported */
1873	t->current_filesystem->remote = -1;/* Not supported */
1874	if (tree_current_is_symblic_link_target(t)) {
1875#if defined(HAVE_OPENAT)
1876		/*
1877		 * Get file system statistics on any directory
1878		 * where current is.
1879		 */
1880		int fd = openat(tree_current_dir_fd(t),
1881		    tree_current_access_path(t), O_RDONLY | O_CLOEXEC);
1882		__archive_ensure_cloexec_flag(fd);
1883		if (fd < 0) {
1884			archive_set_error(&a->archive, errno,
1885			    "openat failed");
1886			return (ARCHIVE_FAILED);
1887		}
1888		r = fstatvfs(fd, &sfs);
1889		if (r == 0)
1890			xr = get_xfer_size(t, fd, NULL);
1891		close(fd);
1892#else
1893		if (tree_enter_working_dir(t) != 0) {
1894			archive_set_error(&a->archive, errno, "fchdir failed");
1895			return (ARCHIVE_FAILED);
1896		}
1897		r = statvfs(tree_current_access_path(t), &sfs);
1898		if (r == 0)
1899			xr = get_xfer_size(t, -1, tree_current_access_path(t));
1900#endif
1901	} else {
1902#ifdef HAVE_FSTATVFS
1903		r = fstatvfs(tree_current_dir_fd(t), &sfs);
1904		if (r == 0)
1905			xr = get_xfer_size(t, tree_current_dir_fd(t), NULL);
1906#else
1907		if (tree_enter_working_dir(t) != 0) {
1908			archive_set_error(&a->archive, errno, "fchdir failed");
1909			return (ARCHIVE_FAILED);
1910		}
1911		r = statvfs(".", &sfs);
1912		if (r == 0)
1913			xr = get_xfer_size(t, -1, ".");
1914#endif
1915	}
1916	if (r == -1 || xr == -1) {
1917		t->current_filesystem->synthetic = -1;
1918		t->current_filesystem->remote = -1;
1919		archive_set_error(&a->archive, errno, "statvfs failed");
1920		return (ARCHIVE_FAILED);
1921	} else if (xr == 1) {
1922		/* pathconf(_PC_REX_*) operations are not supported. */
1923		t->current_filesystem->xfer_align = sfs.f_frsize;
1924		t->current_filesystem->max_xfer_size = -1;
1925		t->current_filesystem->min_xfer_size = sfs.f_bsize;
1926		t->current_filesystem->incr_xfer_size = sfs.f_bsize;
1927	}
1928
1929#if defined(ST_NOATIME)
1930	if (sfs.f_flag & ST_NOATIME)
1931		t->current_filesystem->noatime = 1;
1932	else
1933#endif
1934		t->current_filesystem->noatime = 0;
1935
1936#if defined(USE_READDIR_R)
1937	/* Set maximum filename length. */
1938	t->current_filesystem->name_max = sfs.f_namemax;
1939#endif
1940	return (ARCHIVE_OK);
1941}
1942
1943#else
1944
1945/*
1946 * Generic: Gather current filesystem properties.
1947 * TODO: Is this generic function really needed?
1948 */
1949static int
1950setup_current_filesystem(struct archive_read_disk *a)
1951{
1952	struct tree *t = a->tree;
1953#if defined(_PC_NAME_MAX) && defined(USE_READDIR_R)
1954	long nm;
1955#endif
1956	t->current_filesystem->synthetic = -1;/* Not supported */
1957	t->current_filesystem->remote = -1;/* Not supported */
1958	t->current_filesystem->noatime = 0;
1959	(void)get_xfer_size(t, -1, ".");/* Dummy call to avoid build error. */
1960	t->current_filesystem->xfer_align = -1;/* Unknown */
1961	t->current_filesystem->max_xfer_size = -1;
1962	t->current_filesystem->min_xfer_size = -1;
1963	t->current_filesystem->incr_xfer_size = -1;
1964
1965#if defined(USE_READDIR_R)
1966	/* Set maximum filename length. */
1967#  if defined(_PC_NAME_MAX)
1968	if (tree_current_is_symblic_link_target(t)) {
1969		if (tree_enter_working_dir(t) != 0) {
1970			archive_set_error(&a->archive, errno, "fchdir failed");
1971			return (ARCHIVE_FAILED);
1972		}
1973		nm = pathconf(tree_current_access_path(t), _PC_NAME_MAX);
1974	} else
1975		nm = fpathconf(tree_current_dir_fd(t), _PC_NAME_MAX);
1976	if (nm == -1)
1977#  endif /* _PC_NAME_MAX */
1978		/*
1979		 * Some systems (HP-UX or others?) incorrectly defined
1980		 * NAME_MAX macro to be a smaller value.
1981		 */
1982#  if defined(NAME_MAX) && NAME_MAX >= 255
1983		t->current_filesystem->name_max = NAME_MAX;
1984#  else
1985		/* No way to get a trusted value of maximum filename
1986		 * length. */
1987		t->current_filesystem->name_max = PATH_MAX;
1988#  endif /* NAME_MAX */
1989#  if defined(_PC_NAME_MAX)
1990	else
1991		t->current_filesystem->name_max = nm;
1992#  endif /* _PC_NAME_MAX */
1993#endif /* USE_READDIR_R */
1994	return (ARCHIVE_OK);
1995}
1996
1997#endif
1998
1999static int
2000close_and_restore_time(int fd, struct tree *t, struct restore_time *rt)
2001{
2002#ifndef HAVE_UTIMES
2003	(void)t; /* UNUSED */
2004	(void)rt; /* UNUSED */
2005	return (close(fd));
2006#else
2007#if defined(HAVE_FUTIMENS) && !defined(__CYGWIN__)
2008	struct timespec timespecs[2];
2009#endif
2010	struct timeval times[2];
2011
2012	if ((t->flags & needsRestoreTimes) == 0 || rt->noatime) {
2013		if (fd >= 0)
2014			return (close(fd));
2015		else
2016			return (0);
2017	}
2018
2019#if defined(HAVE_FUTIMENS) && !defined(__CYGWIN__)
2020	timespecs[1].tv_sec = rt->mtime;
2021	timespecs[1].tv_nsec = rt->mtime_nsec;
2022
2023	timespecs[0].tv_sec = rt->atime;
2024	timespecs[0].tv_nsec = rt->atime_nsec;
2025	/* futimens() is defined in POSIX.1-2008. */
2026	if (futimens(fd, timespecs) == 0)
2027		return (close(fd));
2028#endif
2029
2030	times[1].tv_sec = rt->mtime;
2031	times[1].tv_usec = rt->mtime_nsec / 1000;
2032
2033	times[0].tv_sec = rt->atime;
2034	times[0].tv_usec = rt->atime_nsec / 1000;
2035
2036#if !defined(HAVE_FUTIMENS) && defined(HAVE_FUTIMES) && !defined(__CYGWIN__)
2037	if (futimes(fd, times) == 0)
2038		return (close(fd));
2039#endif
2040	close(fd);
2041#if defined(HAVE_FUTIMESAT)
2042	if (futimesat(tree_current_dir_fd(t), rt->name, times) == 0)
2043		return (0);
2044#endif
2045#ifdef HAVE_LUTIMES
2046	if (lutimes(rt->name, times) != 0)
2047#else
2048	if (AE_IFLNK != rt->filetype && utimes(rt->name, times) != 0)
2049#endif
2050		return (-1);
2051#endif
2052	return (0);
2053}
2054
2055static int
2056open_on_current_dir(struct tree *t, const char *path, int flags)
2057{
2058#ifdef HAVE_OPENAT
2059	return (openat(tree_current_dir_fd(t), path, flags));
2060#else
2061	if (tree_enter_working_dir(t) != 0)
2062		return (-1);
2063	return (open(path, flags));
2064#endif
2065}
2066
2067static int
2068tree_dup(int fd)
2069{
2070	int new_fd;
2071#ifdef F_DUPFD_CLOEXEC
2072	static volatile int can_dupfd_cloexec = 1;
2073
2074	if (can_dupfd_cloexec) {
2075		new_fd = fcntl(fd, F_DUPFD_CLOEXEC, 0);
2076		if (new_fd != -1)
2077			return (new_fd);
2078		/* Linux 2.6.18 - 2.6.23 declare F_DUPFD_CLOEXEC,
2079		 * but it cannot be used. So we have to try dup(). */
2080		/* We won't try F_DUPFD_CLOEXEC. */
2081		can_dupfd_cloexec = 0;
2082	}
2083#endif /* F_DUPFD_CLOEXEC */
2084	new_fd = dup(fd);
2085	__archive_ensure_cloexec_flag(new_fd);
2086	return (new_fd);
2087}
2088
2089/*
2090 * Add a directory path to the current stack.
2091 */
2092static void
2093tree_push(struct tree *t, const char *path, int filesystem_id,
2094    int64_t dev, int64_t ino, struct restore_time *rt)
2095{
2096	struct tree_entry *te;
2097
2098	te = calloc(1, sizeof(*te));
2099	te->next = t->stack;
2100	te->parent = t->current;
2101	if (te->parent)
2102		te->depth = te->parent->depth + 1;
2103	t->stack = te;
2104	archive_string_init(&te->name);
2105	te->symlink_parent_fd = -1;
2106	archive_strcpy(&te->name, path);
2107	te->flags = needsDescent | needsOpen | needsAscent;
2108	te->filesystem_id = filesystem_id;
2109	te->dev = dev;
2110	te->ino = ino;
2111	te->dirname_length = t->dirname_length;
2112	te->restore_time.name = te->name.s;
2113	if (rt != NULL) {
2114		te->restore_time.mtime = rt->mtime;
2115		te->restore_time.mtime_nsec = rt->mtime_nsec;
2116		te->restore_time.atime = rt->atime;
2117		te->restore_time.atime_nsec = rt->atime_nsec;
2118		te->restore_time.filetype = rt->filetype;
2119		te->restore_time.noatime = rt->noatime;
2120	}
2121}
2122
2123/*
2124 * Append a name to the current dir path.
2125 */
2126static void
2127tree_append(struct tree *t, const char *name, size_t name_length)
2128{
2129	size_t size_needed;
2130
2131	t->path.s[t->dirname_length] = '\0';
2132	t->path.length = t->dirname_length;
2133	/* Strip trailing '/' from name, unless entire name is "/". */
2134	while (name_length > 1 && name[name_length - 1] == '/')
2135		name_length--;
2136
2137	/* Resize pathname buffer as needed. */
2138	size_needed = name_length + t->dirname_length + 2;
2139	archive_string_ensure(&t->path, size_needed);
2140	/* Add a separating '/' if it's needed. */
2141	if (t->dirname_length > 0 && t->path.s[archive_strlen(&t->path)-1] != '/')
2142		archive_strappend_char(&t->path, '/');
2143	t->basename = t->path.s + archive_strlen(&t->path);
2144	archive_strncat(&t->path, name, name_length);
2145	t->restore_time.name = t->basename;
2146}
2147
2148/*
2149 * Open a directory tree for traversal.
2150 */
2151static struct tree *
2152tree_open(const char *path, int symlink_mode, int restore_time)
2153{
2154	struct tree *t;
2155
2156	if ((t = calloc(1, sizeof(*t))) == NULL)
2157		return (NULL);
2158	archive_string_init(&t->path);
2159	archive_string_ensure(&t->path, 31);
2160	t->initial_symlink_mode = symlink_mode;
2161	return (tree_reopen(t, path, restore_time));
2162}
2163
2164static struct tree *
2165tree_reopen(struct tree *t, const char *path, int restore_time)
2166{
2167#if defined(O_PATH)
2168	/* Linux */
2169	const int o_flag = O_PATH;
2170#elif defined(O_SEARCH)
2171	/* SunOS */
2172	const int o_flag = O_SEARCH;
2173#elif defined(O_EXEC)
2174	/* FreeBSD */
2175	const int o_flag = O_EXEC;
2176#endif
2177
2178	t->flags = (restore_time != 0)?needsRestoreTimes:0;
2179	t->flags |= onInitialDir;
2180	t->visit_type = 0;
2181	t->tree_errno = 0;
2182	t->dirname_length = 0;
2183	t->depth = 0;
2184	t->descend = 0;
2185	t->current = NULL;
2186	t->d = INVALID_DIR_HANDLE;
2187	t->symlink_mode = t->initial_symlink_mode;
2188	archive_string_empty(&t->path);
2189	t->entry_fd = -1;
2190	t->entry_eof = 0;
2191	t->entry_remaining_bytes = 0;
2192	t->initial_filesystem_id = -1;
2193
2194	/* First item is set up a lot like a symlink traversal. */
2195	tree_push(t, path, 0, 0, 0, NULL);
2196	t->stack->flags = needsFirstVisit;
2197	t->maxOpenCount = t->openCount = 1;
2198	t->initial_dir_fd = open(".", O_RDONLY | O_CLOEXEC);
2199#if defined(O_PATH) || defined(O_SEARCH) || defined(O_EXEC)
2200	/*
2201	 * Most likely reason to fail opening "." is that it's not readable,
2202	 * so try again for execute. The consequences of not opening this are
2203	 * unhelpful and unnecessary errors later.
2204	 */
2205	if (t->initial_dir_fd < 0)
2206		t->initial_dir_fd = open(".", o_flag | O_CLOEXEC);
2207#endif
2208	__archive_ensure_cloexec_flag(t->initial_dir_fd);
2209	t->working_dir_fd = tree_dup(t->initial_dir_fd);
2210	return (t);
2211}
2212
2213static int
2214tree_descent(struct tree *t)
2215{
2216	int flag, new_fd, r = 0;
2217
2218	t->dirname_length = archive_strlen(&t->path);
2219	flag = O_RDONLY | O_CLOEXEC;
2220#if defined(O_DIRECTORY)
2221	flag |= O_DIRECTORY;
2222#endif
2223	new_fd = open_on_current_dir(t, t->stack->name.s, flag);
2224	__archive_ensure_cloexec_flag(new_fd);
2225	if (new_fd < 0) {
2226		t->tree_errno = errno;
2227		r = TREE_ERROR_DIR;
2228	} else {
2229		t->depth++;
2230		/* If it is a link, set up fd for the ascent. */
2231		if (t->stack->flags & isDirLink) {
2232			t->stack->symlink_parent_fd = t->working_dir_fd;
2233			t->openCount++;
2234			if (t->openCount > t->maxOpenCount)
2235				t->maxOpenCount = t->openCount;
2236		} else
2237			close(t->working_dir_fd);
2238		/* Renew the current working directory. */
2239		t->working_dir_fd = new_fd;
2240		t->flags &= ~onWorkingDir;
2241	}
2242	return (r);
2243}
2244
2245/*
2246 * We've finished a directory; ascend back to the parent.
2247 */
2248static int
2249tree_ascend(struct tree *t)
2250{
2251	struct tree_entry *te;
2252	int new_fd, r = 0, prev_dir_fd;
2253
2254	te = t->stack;
2255	prev_dir_fd = t->working_dir_fd;
2256	if (te->flags & isDirLink)
2257		new_fd = te->symlink_parent_fd;
2258	else {
2259		new_fd = open_on_current_dir(t, "..", O_RDONLY | O_CLOEXEC);
2260		__archive_ensure_cloexec_flag(new_fd);
2261	}
2262	if (new_fd < 0) {
2263		t->tree_errno = errno;
2264		r = TREE_ERROR_FATAL;
2265	} else {
2266		/* Renew the current working directory. */
2267		t->working_dir_fd = new_fd;
2268		t->flags &= ~onWorkingDir;
2269		/* Current directory has been changed, we should
2270		 * close an fd of previous working directory. */
2271		close_and_restore_time(prev_dir_fd, t, &te->restore_time);
2272		if (te->flags & isDirLink) {
2273			t->openCount--;
2274			te->symlink_parent_fd = -1;
2275		}
2276		t->depth--;
2277	}
2278	return (r);
2279}
2280
2281/*
2282 * Return to the initial directory where tree_open() was performed.
2283 */
2284static int
2285tree_enter_initial_dir(struct tree *t)
2286{
2287	int r = 0;
2288
2289	if ((t->flags & onInitialDir) == 0) {
2290		r = fchdir(t->initial_dir_fd);
2291		if (r == 0) {
2292			t->flags &= ~onWorkingDir;
2293			t->flags |= onInitialDir;
2294		}
2295	}
2296	return (r);
2297}
2298
2299/*
2300 * Restore working directory of directory traversals.
2301 */
2302static int
2303tree_enter_working_dir(struct tree *t)
2304{
2305	int r = 0;
2306
2307	/*
2308	 * Change the current directory if really needed.
2309	 * Sometimes this is unneeded when we did not do
2310	 * descent.
2311	 */
2312	if (t->depth > 0 && (t->flags & onWorkingDir) == 0) {
2313		r = fchdir(t->working_dir_fd);
2314		if (r == 0) {
2315			t->flags &= ~onInitialDir;
2316			t->flags |= onWorkingDir;
2317		}
2318	}
2319	return (r);
2320}
2321
2322static int
2323tree_current_dir_fd(struct tree *t)
2324{
2325	return (t->working_dir_fd);
2326}
2327
2328/*
2329 * Pop the working stack.
2330 */
2331static void
2332tree_pop(struct tree *t)
2333{
2334	struct tree_entry *te;
2335
2336	t->path.s[t->dirname_length] = '\0';
2337	t->path.length = t->dirname_length;
2338	if (t->stack == t->current && t->current != NULL)
2339		t->current = t->current->parent;
2340	te = t->stack;
2341	t->stack = te->next;
2342	t->dirname_length = te->dirname_length;
2343	t->basename = t->path.s + t->dirname_length;
2344	while (t->basename[0] == '/')
2345		t->basename++;
2346	archive_string_free(&te->name);
2347	free(te);
2348}
2349
2350/*
2351 * Get the next item in the tree traversal.
2352 */
2353static int
2354tree_next(struct tree *t)
2355{
2356	int r;
2357
2358	while (t->stack != NULL) {
2359		/* If there's an open dir, get the next entry from there. */
2360		if (t->d != INVALID_DIR_HANDLE) {
2361			r = tree_dir_next_posix(t);
2362			if (r == 0)
2363				continue;
2364			return (r);
2365		}
2366
2367		if (t->stack->flags & needsFirstVisit) {
2368			/* Top stack item needs a regular visit. */
2369			t->current = t->stack;
2370			tree_append(t, t->stack->name.s,
2371			    archive_strlen(&(t->stack->name)));
2372			/* t->dirname_length = t->path_length; */
2373			/* tree_pop(t); */
2374			t->stack->flags &= ~needsFirstVisit;
2375			return (t->visit_type = TREE_REGULAR);
2376		} else if (t->stack->flags & needsDescent) {
2377			/* Top stack item is dir to descend into. */
2378			t->current = t->stack;
2379			tree_append(t, t->stack->name.s,
2380			    archive_strlen(&(t->stack->name)));
2381			t->stack->flags &= ~needsDescent;
2382			r = tree_descent(t);
2383			if (r != 0) {
2384				tree_pop(t);
2385				t->visit_type = r;
2386			} else
2387				t->visit_type = TREE_POSTDESCENT;
2388			return (t->visit_type);
2389		} else if (t->stack->flags & needsOpen) {
2390			t->stack->flags &= ~needsOpen;
2391			r = tree_dir_next_posix(t);
2392			if (r == 0)
2393				continue;
2394			return (r);
2395		} else if (t->stack->flags & needsAscent) {
2396		        /* Top stack item is dir and we're done with it. */
2397			r = tree_ascend(t);
2398			tree_pop(t);
2399			t->visit_type = r != 0 ? r : TREE_POSTASCENT;
2400			return (t->visit_type);
2401		} else {
2402			/* Top item on stack is dead. */
2403			tree_pop(t);
2404			t->flags &= ~hasLstat;
2405			t->flags &= ~hasStat;
2406		}
2407	}
2408	return (t->visit_type = 0);
2409}
2410
2411static int
2412tree_dir_next_posix(struct tree *t)
2413{
2414	int r;
2415	const char *name;
2416	size_t namelen;
2417
2418	if (t->d == NULL) {
2419#if defined(USE_READDIR_R)
2420		size_t dirent_size;
2421#endif
2422
2423#if defined(HAVE_FDOPENDIR)
2424		t->d = fdopendir(tree_dup(t->working_dir_fd));
2425#else /* HAVE_FDOPENDIR */
2426		if (tree_enter_working_dir(t) == 0) {
2427			t->d = opendir(".");
2428#if HAVE_DIRFD || defined(dirfd)
2429			__archive_ensure_cloexec_flag(dirfd(t->d));
2430#endif
2431		}
2432#endif /* HAVE_FDOPENDIR */
2433		if (t->d == NULL) {
2434			r = tree_ascend(t); /* Undo "chdir" */
2435			tree_pop(t);
2436			t->tree_errno = errno;
2437			t->visit_type = r != 0 ? r : TREE_ERROR_DIR;
2438			return (t->visit_type);
2439		}
2440#if defined(USE_READDIR_R)
2441		dirent_size = offsetof(struct dirent, d_name) +
2442		  t->filesystem_table[t->current->filesystem_id].name_max + 1;
2443		if (t->dirent == NULL || t->dirent_allocated < dirent_size) {
2444			free(t->dirent);
2445			t->dirent = malloc(dirent_size);
2446			if (t->dirent == NULL) {
2447				closedir(t->d);
2448				t->d = INVALID_DIR_HANDLE;
2449				(void)tree_ascend(t);
2450				tree_pop(t);
2451				t->tree_errno = ENOMEM;
2452				t->visit_type = TREE_ERROR_DIR;
2453				return (t->visit_type);
2454			}
2455			t->dirent_allocated = dirent_size;
2456		}
2457#endif /* USE_READDIR_R */
2458	}
2459	for (;;) {
2460		errno = 0;
2461#if defined(USE_READDIR_R)
2462		r = readdir_r(t->d, t->dirent, &t->de);
2463#ifdef _AIX
2464		/* Note: According to the man page, return value 9 indicates
2465		 * that the readdir_r was not successful and the error code
2466		 * is set to the global errno variable. And then if the end
2467		 * of directory entries was reached, the return value is 9
2468		 * and the third parameter is set to NULL and errno is
2469		 * unchanged. */
2470		if (r == 9)
2471			r = errno;
2472#endif /* _AIX */
2473		if (r != 0 || t->de == NULL) {
2474#else
2475		t->de = readdir(t->d);
2476		if (t->de == NULL) {
2477			r = errno;
2478#endif
2479			closedir(t->d);
2480			t->d = INVALID_DIR_HANDLE;
2481			if (r != 0) {
2482				t->tree_errno = r;
2483				t->visit_type = TREE_ERROR_DIR;
2484				return (t->visit_type);
2485			} else
2486				return (0);
2487		}
2488		name = t->de->d_name;
2489		namelen = D_NAMELEN(t->de);
2490		t->flags &= ~hasLstat;
2491		t->flags &= ~hasStat;
2492		if (name[0] == '.' && name[1] == '\0')
2493			continue;
2494		if (name[0] == '.' && name[1] == '.' && name[2] == '\0')
2495			continue;
2496		tree_append(t, name, namelen);
2497		return (t->visit_type = TREE_REGULAR);
2498	}
2499}
2500
2501
2502/*
2503 * Get the stat() data for the entry just returned from tree_next().
2504 */
2505static const struct stat *
2506tree_current_stat(struct tree *t)
2507{
2508	if (!(t->flags & hasStat)) {
2509#ifdef HAVE_FSTATAT
2510		if (fstatat(tree_current_dir_fd(t),
2511		    tree_current_access_path(t), &t->st, 0) != 0)
2512#else
2513		if (tree_enter_working_dir(t) != 0)
2514			return NULL;
2515		if (la_stat(tree_current_access_path(t), &t->st) != 0)
2516#endif
2517			return NULL;
2518		t->flags |= hasStat;
2519	}
2520	return (&t->st);
2521}
2522
2523/*
2524 * Get the lstat() data for the entry just returned from tree_next().
2525 */
2526static const struct stat *
2527tree_current_lstat(struct tree *t)
2528{
2529	if (!(t->flags & hasLstat)) {
2530#ifdef HAVE_FSTATAT
2531		if (fstatat(tree_current_dir_fd(t),
2532		    tree_current_access_path(t), &t->lst,
2533		    AT_SYMLINK_NOFOLLOW) != 0)
2534#else
2535		if (tree_enter_working_dir(t) != 0)
2536			return NULL;
2537		if (lstat(tree_current_access_path(t), &t->lst) != 0)
2538#endif
2539			return NULL;
2540		t->flags |= hasLstat;
2541	}
2542	return (&t->lst);
2543}
2544
2545/*
2546 * Test whether current entry is a dir or link to a dir.
2547 */
2548static int
2549tree_current_is_dir(struct tree *t)
2550{
2551	const struct stat *st;
2552	/*
2553	 * If we already have lstat() info, then try some
2554	 * cheap tests to determine if this is a dir.
2555	 */
2556	if (t->flags & hasLstat) {
2557		/* If lstat() says it's a dir, it must be a dir. */
2558		st = tree_current_lstat(t);
2559		if (st == NULL)
2560			return 0;
2561		if (S_ISDIR(st->st_mode))
2562			return 1;
2563		/* Not a dir; might be a link to a dir. */
2564		/* If it's not a link, then it's not a link to a dir. */
2565		if (!S_ISLNK(st->st_mode))
2566			return 0;
2567		/*
2568		 * It's a link, but we don't know what it's a link to,
2569		 * so we'll have to use stat().
2570		 */
2571	}
2572
2573	st = tree_current_stat(t);
2574	/* If we can't stat it, it's not a dir. */
2575	if (st == NULL)
2576		return 0;
2577	/* Use the definitive test.  Hopefully this is cached. */
2578	return (S_ISDIR(st->st_mode));
2579}
2580
2581/*
2582 * Test whether current entry is a physical directory.  Usually, we
2583 * already have at least one of stat() or lstat() in memory, so we
2584 * use tricks to try to avoid an extra trip to the disk.
2585 */
2586static int
2587tree_current_is_physical_dir(struct tree *t)
2588{
2589	const struct stat *st;
2590
2591	/*
2592	 * If stat() says it isn't a dir, then it's not a dir.
2593	 * If stat() data is cached, this check is free, so do it first.
2594	 */
2595	if (t->flags & hasStat) {
2596		st = tree_current_stat(t);
2597		if (st == NULL)
2598			return (0);
2599		if (!S_ISDIR(st->st_mode))
2600			return (0);
2601	}
2602
2603	/*
2604	 * Either stat() said it was a dir (in which case, we have
2605	 * to determine whether it's really a link to a dir) or
2606	 * stat() info wasn't available.  So we use lstat(), which
2607	 * hopefully is already cached.
2608	 */
2609
2610	st = tree_current_lstat(t);
2611	/* If we can't stat it, it's not a dir. */
2612	if (st == NULL)
2613		return 0;
2614	/* Use the definitive test.  Hopefully this is cached. */
2615	return (S_ISDIR(st->st_mode));
2616}
2617
2618/*
2619 * Test whether the same file has been in the tree as its parent.
2620 */
2621static int
2622tree_target_is_same_as_parent(struct tree *t, const struct stat *st)
2623{
2624	struct tree_entry *te;
2625
2626	for (te = t->current->parent; te != NULL; te = te->parent) {
2627		if (te->dev == (int64_t)st->st_dev &&
2628		    te->ino == (int64_t)st->st_ino)
2629			return (1);
2630	}
2631	return (0);
2632}
2633
2634/*
2635 * Test whether the current file is symbolic link target and
2636 * on the other filesystem.
2637 */
2638static int
2639tree_current_is_symblic_link_target(struct tree *t)
2640{
2641	static const struct stat *lst, *st;
2642
2643	lst = tree_current_lstat(t);
2644	st = tree_current_stat(t);
2645	return (st != NULL && lst != NULL &&
2646	    (int64_t)st->st_dev == t->current_filesystem->dev &&
2647	    st->st_dev != lst->st_dev);
2648}
2649
2650/*
2651 * Return the access path for the entry just returned from tree_next().
2652 */
2653static const char *
2654tree_current_access_path(struct tree *t)
2655{
2656	return (t->basename);
2657}
2658
2659/*
2660 * Return the full path for the entry just returned from tree_next().
2661 */
2662static const char *
2663tree_current_path(struct tree *t)
2664{
2665	return (t->path.s);
2666}
2667
2668/*
2669 * Terminate the traversal.
2670 */
2671static void
2672tree_close(struct tree *t)
2673{
2674
2675	if (t == NULL)
2676		return;
2677	if (t->entry_fd >= 0) {
2678		close_and_restore_time(t->entry_fd, t, &t->restore_time);
2679		t->entry_fd = -1;
2680	}
2681	/* Close the handle of readdir(). */
2682	if (t->d != INVALID_DIR_HANDLE) {
2683		closedir(t->d);
2684		t->d = INVALID_DIR_HANDLE;
2685	}
2686	/* Release anything remaining in the stack. */
2687	while (t->stack != NULL) {
2688		if (t->stack->flags & isDirLink)
2689			close(t->stack->symlink_parent_fd);
2690		tree_pop(t);
2691	}
2692	if (t->working_dir_fd >= 0) {
2693		close(t->working_dir_fd);
2694		t->working_dir_fd = -1;
2695	}
2696	if (t->initial_dir_fd >= 0) {
2697		close(t->initial_dir_fd);
2698		t->initial_dir_fd = -1;
2699	}
2700}
2701
2702/*
2703 * Release any resources.
2704 */
2705static void
2706tree_free(struct tree *t)
2707{
2708	int i;
2709
2710	if (t == NULL)
2711		return;
2712	archive_string_free(&t->path);
2713#if defined(USE_READDIR_R)
2714	free(t->dirent);
2715#endif
2716	free(t->sparse_list);
2717	for (i = 0; i < t->max_filesystem_id; i++)
2718		free(t->filesystem_table[i].allocation_ptr);
2719	free(t->filesystem_table);
2720	free(t);
2721}
2722
2723#endif
2724