1 /*
2  * CDDL HEADER START
3  *
4  * The contents of this file are subject to the terms of the
5  * Common Development and Distribution License (the "License").
6  * You may not use this file except in compliance with the License.
7  *
8  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9  * or http://www.opensolaris.org/os/licensing.
10  * See the License for the specific language governing permissions
11  * and limitations under the License.
12  *
13  * When distributing Covered Code, include this CDDL HEADER in each
14  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15  * If applicable, add the following below this CDDL HEADER, with the
16  * fields enclosed by brackets "[]" replaced with your own identifying
17  * information: Portions Copyright [yyyy] [name of copyright owner]
18  *
19  * CDDL HEADER END
20  */
21 /*
22  * Copyright 2015 Nexenta Systems, Inc. All rights reserved.
23  * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
24  * Copyright (c) 2012, 2018 by Delphix. All rights reserved.
25  * Copyright 2015 RackTop Systems.
26  * Copyright (c) 2016, Intel Corporation.
27  */
28 
29 /*
30  * Pool import support functions.
31  *
32  * Used by zpool, ztest, zdb, and zhack to locate importable configs. Since
33  * these commands are expected to run in the global zone, we can assume
34  * that the devices are all readable when called.
35  *
36  * To import a pool, we rely on reading the configuration information from the
37  * ZFS label of each device.  If we successfully read the label, then we
38  * organize the configuration information in the following hierarchy:
39  *
40  *	pool guid -> toplevel vdev guid -> label txg
41  *
42  * Duplicate entries matching this same tuple will be discarded.  Once we have
43  * examined every device, we pick the best label txg config for each toplevel
44  * vdev.  We then arrange these toplevel vdevs into a complete pool config, and
45  * update any paths that have changed.  Finally, we attempt to import the pool
46  * using our derived config, and record the results.
47  */
48 
49 #include <ctype.h>
50 #include <dirent.h>
51 #include <errno.h>
52 #include <libintl.h>
53 #include <libgen.h>
54 #include <stddef.h>
55 #include <stdlib.h>
56 #include <string.h>
57 #include <sys/stat.h>
58 #include <unistd.h>
59 #include <fcntl.h>
60 #include <sys/dktp/fdisk.h>
61 #include <sys/vdev_impl.h>
62 #include <sys/fs/zfs.h>
63 #include <sys/vdev_impl.h>
64 
65 #include <thread_pool.h>
66 #include <libzutil.h>
67 #include <libnvpair.h>
68 
69 #include "zutil_import.h"
70 
71 /*PRINTFLIKE2*/
72 static void
73 zutil_error_aux(libpc_handle_t *hdl, const char *fmt, ...)
74 {
75 	va_list ap;
76 
77 	va_start(ap, fmt);
78 
79 	(void) vsnprintf(hdl->lpc_desc, sizeof (hdl->lpc_desc), fmt, ap);
80 	hdl->lpc_desc_active = B_TRUE;
81 
82 	va_end(ap);
83 }
84 
85 static void
86 zutil_verror(libpc_handle_t *hdl, const char *error, const char *fmt,
87     va_list ap)
88 {
89 	char action[1024];
90 
91 	(void) vsnprintf(action, sizeof (action), fmt, ap);
92 
93 	if (hdl->lpc_desc_active)
94 		hdl->lpc_desc_active = B_FALSE;
95 	else
96 		hdl->lpc_desc[0] = '\0';
97 
98 	if (hdl->lpc_printerr) {
99 		if (hdl->lpc_desc[0] != '\0')
100 			error = hdl->lpc_desc;
101 
102 		(void) fprintf(stderr, "%s: %s\n", action, error);
103 	}
104 }
105 
106 /*PRINTFLIKE3*/
107 static int
108 zutil_error_fmt(libpc_handle_t *hdl, const char *error, const char *fmt, ...)
109 {
110 	va_list ap;
111 
112 	va_start(ap, fmt);
113 
114 	zutil_verror(hdl, error, fmt, ap);
115 
116 	va_end(ap);
117 
118 	return (-1);
119 }
120 
121 static int
122 zutil_error(libpc_handle_t *hdl, const char *error, const char *msg)
123 {
124 	return (zutil_error_fmt(hdl, error, "%s", msg));
125 }
126 
127 static int
128 zutil_no_memory(libpc_handle_t *hdl)
129 {
130 	zutil_error(hdl, EZFS_NOMEM, "internal error");
131 	exit(1);
132 }
133 
134 void *
135 zutil_alloc(libpc_handle_t *hdl, size_t size)
136 {
137 	void *data;
138 
139 	if ((data = calloc(1, size)) == NULL)
140 		(void) zutil_no_memory(hdl);
141 
142 	return (data);
143 }
144 
145 char *
146 zutil_strdup(libpc_handle_t *hdl, const char *str)
147 {
148 	char *ret;
149 
150 	if ((ret = strdup(str)) == NULL)
151 		(void) zutil_no_memory(hdl);
152 
153 	return (ret);
154 }
155 
156 /*
157  * Intermediate structures used to gather configuration information.
158  */
159 typedef struct config_entry {
160 	uint64_t		ce_txg;
161 	nvlist_t		*ce_config;
162 	struct config_entry	*ce_next;
163 } config_entry_t;
164 
165 typedef struct vdev_entry {
166 	uint64_t		ve_guid;
167 	config_entry_t		*ve_configs;
168 	struct vdev_entry	*ve_next;
169 } vdev_entry_t;
170 
171 typedef struct pool_entry {
172 	uint64_t		pe_guid;
173 	vdev_entry_t		*pe_vdevs;
174 	struct pool_entry	*pe_next;
175 } pool_entry_t;
176 
177 typedef struct name_entry {
178 	char			*ne_name;
179 	uint64_t		ne_guid;
180 	uint64_t		ne_order;
181 	uint64_t		ne_num_labels;
182 	struct name_entry	*ne_next;
183 } name_entry_t;
184 
185 typedef struct pool_list {
186 	pool_entry_t		*pools;
187 	name_entry_t		*names;
188 } pool_list_t;
189 
190 /*
191  * Go through and fix up any path and/or devid information for the given vdev
192  * configuration.
193  */
194 static int
195 fix_paths(libpc_handle_t *hdl, nvlist_t *nv, name_entry_t *names)
196 {
197 	nvlist_t **child;
198 	uint_t c, children;
199 	uint64_t guid;
200 	name_entry_t *ne, *best;
201 	char *path;
202 
203 	if (nvlist_lookup_nvlist_array(nv, ZPOOL_CONFIG_CHILDREN,
204 	    &child, &children) == 0) {
205 		for (c = 0; c < children; c++)
206 			if (fix_paths(hdl, child[c], names) != 0)
207 				return (-1);
208 		return (0);
209 	}
210 
211 	/*
212 	 * This is a leaf (file or disk) vdev.  In either case, go through
213 	 * the name list and see if we find a matching guid.  If so, replace
214 	 * the path and see if we can calculate a new devid.
215 	 *
216 	 * There may be multiple names associated with a particular guid, in
217 	 * which case we have overlapping partitions or multiple paths to the
218 	 * same disk.  In this case we prefer to use the path name which
219 	 * matches the ZPOOL_CONFIG_PATH.  If no matching entry is found we
220 	 * use the lowest order device which corresponds to the first match
221 	 * while traversing the ZPOOL_IMPORT_PATH search path.
222 	 */
223 	verify(nvlist_lookup_uint64(nv, ZPOOL_CONFIG_GUID, &guid) == 0);
224 	if (nvlist_lookup_string(nv, ZPOOL_CONFIG_PATH, &path) != 0)
225 		path = NULL;
226 
227 	best = NULL;
228 	for (ne = names; ne != NULL; ne = ne->ne_next) {
229 		if (ne->ne_guid == guid) {
230 			if (path == NULL) {
231 				best = ne;
232 				break;
233 			}
234 
235 			if ((strlen(path) == strlen(ne->ne_name)) &&
236 			    strncmp(path, ne->ne_name, strlen(path)) == 0) {
237 				best = ne;
238 				break;
239 			}
240 
241 			if (best == NULL) {
242 				best = ne;
243 				continue;
244 			}
245 
246 			/* Prefer paths with move vdev labels. */
247 			if (ne->ne_num_labels > best->ne_num_labels) {
248 				best = ne;
249 				continue;
250 			}
251 
252 			/* Prefer paths earlier in the search order. */
253 			if (ne->ne_num_labels == best->ne_num_labels &&
254 			    ne->ne_order < best->ne_order) {
255 				best = ne;
256 				continue;
257 			}
258 		}
259 	}
260 
261 	if (best == NULL)
262 		return (0);
263 
264 	if (nvlist_add_string(nv, ZPOOL_CONFIG_PATH, best->ne_name) != 0)
265 		return (-1);
266 
267 	update_vdev_config_dev_strs(nv);
268 
269 	return (0);
270 }
271 
272 /*
273  * Add the given configuration to the list of known devices.
274  */
275 static int
276 add_config(libpc_handle_t *hdl, pool_list_t *pl, const char *path,
277     int order, int num_labels, nvlist_t *config)
278 {
279 	uint64_t pool_guid, vdev_guid, top_guid, txg, state;
280 	pool_entry_t *pe;
281 	vdev_entry_t *ve;
282 	config_entry_t *ce;
283 	name_entry_t *ne;
284 
285 	/*
286 	 * If this is a hot spare not currently in use or level 2 cache
287 	 * device, add it to the list of names to translate, but don't do
288 	 * anything else.
289 	 */
290 	if (nvlist_lookup_uint64(config, ZPOOL_CONFIG_POOL_STATE,
291 	    &state) == 0 &&
292 	    (state == POOL_STATE_SPARE || state == POOL_STATE_L2CACHE) &&
293 	    nvlist_lookup_uint64(config, ZPOOL_CONFIG_GUID, &vdev_guid) == 0) {
294 		if ((ne = zutil_alloc(hdl, sizeof (name_entry_t))) == NULL)
295 			return (-1);
296 
297 		if ((ne->ne_name = zutil_strdup(hdl, path)) == NULL) {
298 			free(ne);
299 			return (-1);
300 		}
301 		ne->ne_guid = vdev_guid;
302 		ne->ne_order = order;
303 		ne->ne_num_labels = num_labels;
304 		ne->ne_next = pl->names;
305 		pl->names = ne;
306 
307 		return (0);
308 	}
309 
310 	/*
311 	 * If we have a valid config but cannot read any of these fields, then
312 	 * it means we have a half-initialized label.  In vdev_label_init()
313 	 * we write a label with txg == 0 so that we can identify the device
314 	 * in case the user refers to the same disk later on.  If we fail to
315 	 * create the pool, we'll be left with a label in this state
316 	 * which should not be considered part of a valid pool.
317 	 */
318 	if (nvlist_lookup_uint64(config, ZPOOL_CONFIG_POOL_GUID,
319 	    &pool_guid) != 0 ||
320 	    nvlist_lookup_uint64(config, ZPOOL_CONFIG_GUID,
321 	    &vdev_guid) != 0 ||
322 	    nvlist_lookup_uint64(config, ZPOOL_CONFIG_TOP_GUID,
323 	    &top_guid) != 0 ||
324 	    nvlist_lookup_uint64(config, ZPOOL_CONFIG_POOL_TXG,
325 	    &txg) != 0 || txg == 0) {
326 		return (0);
327 	}
328 
329 	/*
330 	 * First, see if we know about this pool.  If not, then add it to the
331 	 * list of known pools.
332 	 */
333 	for (pe = pl->pools; pe != NULL; pe = pe->pe_next) {
334 		if (pe->pe_guid == pool_guid)
335 			break;
336 	}
337 
338 	if (pe == NULL) {
339 		if ((pe = zutil_alloc(hdl, sizeof (pool_entry_t))) == NULL) {
340 			return (-1);
341 		}
342 		pe->pe_guid = pool_guid;
343 		pe->pe_next = pl->pools;
344 		pl->pools = pe;
345 	}
346 
347 	/*
348 	 * Second, see if we know about this toplevel vdev.  Add it if its
349 	 * missing.
350 	 */
351 	for (ve = pe->pe_vdevs; ve != NULL; ve = ve->ve_next) {
352 		if (ve->ve_guid == top_guid)
353 			break;
354 	}
355 
356 	if (ve == NULL) {
357 		if ((ve = zutil_alloc(hdl, sizeof (vdev_entry_t))) == NULL) {
358 			return (-1);
359 		}
360 		ve->ve_guid = top_guid;
361 		ve->ve_next = pe->pe_vdevs;
362 		pe->pe_vdevs = ve;
363 	}
364 
365 	/*
366 	 * Third, see if we have a config with a matching transaction group.  If
367 	 * so, then we do nothing.  Otherwise, add it to the list of known
368 	 * configs.
369 	 */
370 	for (ce = ve->ve_configs; ce != NULL; ce = ce->ce_next) {
371 		if (ce->ce_txg == txg)
372 			break;
373 	}
374 
375 	if (ce == NULL) {
376 		if ((ce = zutil_alloc(hdl, sizeof (config_entry_t))) == NULL) {
377 			return (-1);
378 		}
379 		ce->ce_txg = txg;
380 		ce->ce_config = fnvlist_dup(config);
381 		ce->ce_next = ve->ve_configs;
382 		ve->ve_configs = ce;
383 	}
384 
385 	/*
386 	 * At this point we've successfully added our config to the list of
387 	 * known configs.  The last thing to do is add the vdev guid -> path
388 	 * mappings so that we can fix up the configuration as necessary before
389 	 * doing the import.
390 	 */
391 	if ((ne = zutil_alloc(hdl, sizeof (name_entry_t))) == NULL)
392 		return (-1);
393 
394 	if ((ne->ne_name = zutil_strdup(hdl, path)) == NULL) {
395 		free(ne);
396 		return (-1);
397 	}
398 
399 	ne->ne_guid = vdev_guid;
400 	ne->ne_order = order;
401 	ne->ne_num_labels = num_labels;
402 	ne->ne_next = pl->names;
403 	pl->names = ne;
404 
405 	return (0);
406 }
407 
408 static int
409 zutil_pool_active(libpc_handle_t *hdl, const char *name, uint64_t guid,
410     boolean_t *isactive)
411 {
412 	ASSERT(hdl->lpc_ops->pco_pool_active != NULL);
413 
414 	int error = hdl->lpc_ops->pco_pool_active(hdl->lpc_lib_handle, name,
415 	    guid, isactive);
416 
417 	return (error);
418 }
419 
420 static nvlist_t *
421 zutil_refresh_config(libpc_handle_t *hdl, nvlist_t *tryconfig)
422 {
423 	ASSERT(hdl->lpc_ops->pco_refresh_config != NULL);
424 
425 	return (hdl->lpc_ops->pco_refresh_config(hdl->lpc_lib_handle,
426 	    tryconfig));
427 }
428 
429 /*
430  * Determine if the vdev id is a hole in the namespace.
431  */
432 static boolean_t
433 vdev_is_hole(uint64_t *hole_array, uint_t holes, uint_t id)
434 {
435 	int c;
436 
437 	for (c = 0; c < holes; c++) {
438 
439 		/* Top-level is a hole */
440 		if (hole_array[c] == id)
441 			return (B_TRUE);
442 	}
443 	return (B_FALSE);
444 }
445 
446 /*
447  * Convert our list of pools into the definitive set of configurations.  We
448  * start by picking the best config for each toplevel vdev.  Once that's done,
449  * we assemble the toplevel vdevs into a full config for the pool.  We make a
450  * pass to fix up any incorrect paths, and then add it to the main list to
451  * return to the user.
452  */
453 static nvlist_t *
454 get_configs(libpc_handle_t *hdl, pool_list_t *pl, boolean_t active_ok,
455     nvlist_t *policy)
456 {
457 	pool_entry_t *pe;
458 	vdev_entry_t *ve;
459 	config_entry_t *ce;
460 	nvlist_t *ret = NULL, *config = NULL, *tmp = NULL, *nvtop, *nvroot;
461 	nvlist_t **spares, **l2cache;
462 	uint_t i, nspares, nl2cache;
463 	boolean_t config_seen;
464 	uint64_t best_txg;
465 	char *name, *hostname = NULL;
466 	uint64_t guid;
467 	uint_t children = 0;
468 	nvlist_t **child = NULL;
469 	uint_t holes;
470 	uint64_t *hole_array, max_id;
471 	uint_t c;
472 	boolean_t isactive;
473 	uint64_t hostid;
474 	nvlist_t *nvl;
475 	boolean_t valid_top_config = B_FALSE;
476 
477 	if (nvlist_alloc(&ret, 0, 0) != 0)
478 		goto nomem;
479 
480 	for (pe = pl->pools; pe != NULL; pe = pe->pe_next) {
481 		uint64_t id, max_txg = 0;
482 
483 		if (nvlist_alloc(&config, NV_UNIQUE_NAME, 0) != 0)
484 			goto nomem;
485 		config_seen = B_FALSE;
486 
487 		/*
488 		 * Iterate over all toplevel vdevs.  Grab the pool configuration
489 		 * from the first one we find, and then go through the rest and
490 		 * add them as necessary to the 'vdevs' member of the config.
491 		 */
492 		for (ve = pe->pe_vdevs; ve != NULL; ve = ve->ve_next) {
493 
494 			/*
495 			 * Determine the best configuration for this vdev by
496 			 * selecting the config with the latest transaction
497 			 * group.
498 			 */
499 			best_txg = 0;
500 			for (ce = ve->ve_configs; ce != NULL;
501 			    ce = ce->ce_next) {
502 
503 				if (ce->ce_txg > best_txg) {
504 					tmp = ce->ce_config;
505 					best_txg = ce->ce_txg;
506 				}
507 			}
508 
509 			/*
510 			 * We rely on the fact that the max txg for the
511 			 * pool will contain the most up-to-date information
512 			 * about the valid top-levels in the vdev namespace.
513 			 */
514 			if (best_txg > max_txg) {
515 				(void) nvlist_remove(config,
516 				    ZPOOL_CONFIG_VDEV_CHILDREN,
517 				    DATA_TYPE_UINT64);
518 				(void) nvlist_remove(config,
519 				    ZPOOL_CONFIG_HOLE_ARRAY,
520 				    DATA_TYPE_UINT64_ARRAY);
521 
522 				max_txg = best_txg;
523 				hole_array = NULL;
524 				holes = 0;
525 				max_id = 0;
526 				valid_top_config = B_FALSE;
527 
528 				if (nvlist_lookup_uint64(tmp,
529 				    ZPOOL_CONFIG_VDEV_CHILDREN, &max_id) == 0) {
530 					verify(nvlist_add_uint64(config,
531 					    ZPOOL_CONFIG_VDEV_CHILDREN,
532 					    max_id) == 0);
533 					valid_top_config = B_TRUE;
534 				}
535 
536 				if (nvlist_lookup_uint64_array(tmp,
537 				    ZPOOL_CONFIG_HOLE_ARRAY, &hole_array,
538 				    &holes) == 0) {
539 					verify(nvlist_add_uint64_array(config,
540 					    ZPOOL_CONFIG_HOLE_ARRAY,
541 					    hole_array, holes) == 0);
542 				}
543 			}
544 
545 			if (!config_seen) {
546 				/*
547 				 * Copy the relevant pieces of data to the pool
548 				 * configuration:
549 				 *
550 				 *	version
551 				 *	pool guid
552 				 *	name
553 				 *	comment (if available)
554 				 *	pool state
555 				 *	hostid (if available)
556 				 *	hostname (if available)
557 				 */
558 				uint64_t state, version;
559 				char *comment = NULL;
560 
561 				version = fnvlist_lookup_uint64(tmp,
562 				    ZPOOL_CONFIG_VERSION);
563 				fnvlist_add_uint64(config,
564 				    ZPOOL_CONFIG_VERSION, version);
565 				guid = fnvlist_lookup_uint64(tmp,
566 				    ZPOOL_CONFIG_POOL_GUID);
567 				fnvlist_add_uint64(config,
568 				    ZPOOL_CONFIG_POOL_GUID, guid);
569 				name = fnvlist_lookup_string(tmp,
570 				    ZPOOL_CONFIG_POOL_NAME);
571 				fnvlist_add_string(config,
572 				    ZPOOL_CONFIG_POOL_NAME, name);
573 
574 				if (nvlist_lookup_string(tmp,
575 				    ZPOOL_CONFIG_COMMENT, &comment) == 0)
576 					fnvlist_add_string(config,
577 					    ZPOOL_CONFIG_COMMENT, comment);
578 
579 				state = fnvlist_lookup_uint64(tmp,
580 				    ZPOOL_CONFIG_POOL_STATE);
581 				fnvlist_add_uint64(config,
582 				    ZPOOL_CONFIG_POOL_STATE, state);
583 
584 				hostid = 0;
585 				if (nvlist_lookup_uint64(tmp,
586 				    ZPOOL_CONFIG_HOSTID, &hostid) == 0) {
587 					fnvlist_add_uint64(config,
588 					    ZPOOL_CONFIG_HOSTID, hostid);
589 					hostname = fnvlist_lookup_string(tmp,
590 					    ZPOOL_CONFIG_HOSTNAME);
591 					fnvlist_add_string(config,
592 					    ZPOOL_CONFIG_HOSTNAME, hostname);
593 				}
594 
595 				config_seen = B_TRUE;
596 			}
597 
598 			/*
599 			 * Add this top-level vdev to the child array.
600 			 */
601 			verify(nvlist_lookup_nvlist(tmp,
602 			    ZPOOL_CONFIG_VDEV_TREE, &nvtop) == 0);
603 			verify(nvlist_lookup_uint64(nvtop, ZPOOL_CONFIG_ID,
604 			    &id) == 0);
605 
606 			if (id >= children) {
607 				nvlist_t **newchild;
608 
609 				newchild = zutil_alloc(hdl, (id + 1) *
610 				    sizeof (nvlist_t *));
611 				if (newchild == NULL)
612 					goto nomem;
613 
614 				for (c = 0; c < children; c++)
615 					newchild[c] = child[c];
616 
617 				free(child);
618 				child = newchild;
619 				children = id + 1;
620 			}
621 			if (nvlist_dup(nvtop, &child[id], 0) != 0)
622 				goto nomem;
623 
624 		}
625 
626 		/*
627 		 * If we have information about all the top-levels then
628 		 * clean up the nvlist which we've constructed. This
629 		 * means removing any extraneous devices that are
630 		 * beyond the valid range or adding devices to the end
631 		 * of our array which appear to be missing.
632 		 */
633 		if (valid_top_config) {
634 			if (max_id < children) {
635 				for (c = max_id; c < children; c++)
636 					nvlist_free(child[c]);
637 				children = max_id;
638 			} else if (max_id > children) {
639 				nvlist_t **newchild;
640 
641 				newchild = zutil_alloc(hdl, (max_id) *
642 				    sizeof (nvlist_t *));
643 				if (newchild == NULL)
644 					goto nomem;
645 
646 				for (c = 0; c < children; c++)
647 					newchild[c] = child[c];
648 
649 				free(child);
650 				child = newchild;
651 				children = max_id;
652 			}
653 		}
654 
655 		verify(nvlist_lookup_uint64(config, ZPOOL_CONFIG_POOL_GUID,
656 		    &guid) == 0);
657 
658 		/*
659 		 * The vdev namespace may contain holes as a result of
660 		 * device removal. We must add them back into the vdev
661 		 * tree before we process any missing devices.
662 		 */
663 		if (holes > 0) {
664 			ASSERT(valid_top_config);
665 
666 			for (c = 0; c < children; c++) {
667 				nvlist_t *holey;
668 
669 				if (child[c] != NULL ||
670 				    !vdev_is_hole(hole_array, holes, c))
671 					continue;
672 
673 				if (nvlist_alloc(&holey, NV_UNIQUE_NAME,
674 				    0) != 0)
675 					goto nomem;
676 
677 				/*
678 				 * Holes in the namespace are treated as
679 				 * "hole" top-level vdevs and have a
680 				 * special flag set on them.
681 				 */
682 				if (nvlist_add_string(holey,
683 				    ZPOOL_CONFIG_TYPE,
684 				    VDEV_TYPE_HOLE) != 0 ||
685 				    nvlist_add_uint64(holey,
686 				    ZPOOL_CONFIG_ID, c) != 0 ||
687 				    nvlist_add_uint64(holey,
688 				    ZPOOL_CONFIG_GUID, 0ULL) != 0) {
689 					nvlist_free(holey);
690 					goto nomem;
691 				}
692 				child[c] = holey;
693 			}
694 		}
695 
696 		/*
697 		 * Look for any missing top-level vdevs.  If this is the case,
698 		 * create a faked up 'missing' vdev as a placeholder.  We cannot
699 		 * simply compress the child array, because the kernel performs
700 		 * certain checks to make sure the vdev IDs match their location
701 		 * in the configuration.
702 		 */
703 		for (c = 0; c < children; c++) {
704 			if (child[c] == NULL) {
705 				nvlist_t *missing;
706 				if (nvlist_alloc(&missing, NV_UNIQUE_NAME,
707 				    0) != 0)
708 					goto nomem;
709 				if (nvlist_add_string(missing,
710 				    ZPOOL_CONFIG_TYPE,
711 				    VDEV_TYPE_MISSING) != 0 ||
712 				    nvlist_add_uint64(missing,
713 				    ZPOOL_CONFIG_ID, c) != 0 ||
714 				    nvlist_add_uint64(missing,
715 				    ZPOOL_CONFIG_GUID, 0ULL) != 0) {
716 					nvlist_free(missing);
717 					goto nomem;
718 				}
719 				child[c] = missing;
720 			}
721 		}
722 
723 		/*
724 		 * Put all of this pool's top-level vdevs into a root vdev.
725 		 */
726 		if (nvlist_alloc(&nvroot, NV_UNIQUE_NAME, 0) != 0)
727 			goto nomem;
728 		if (nvlist_add_string(nvroot, ZPOOL_CONFIG_TYPE,
729 		    VDEV_TYPE_ROOT) != 0 ||
730 		    nvlist_add_uint64(nvroot, ZPOOL_CONFIG_ID, 0ULL) != 0 ||
731 		    nvlist_add_uint64(nvroot, ZPOOL_CONFIG_GUID, guid) != 0 ||
732 		    nvlist_add_nvlist_array(nvroot, ZPOOL_CONFIG_CHILDREN,
733 		    child, children) != 0) {
734 			nvlist_free(nvroot);
735 			goto nomem;
736 		}
737 
738 		for (c = 0; c < children; c++)
739 			nvlist_free(child[c]);
740 		free(child);
741 		children = 0;
742 		child = NULL;
743 
744 		/*
745 		 * Go through and fix up any paths and/or devids based on our
746 		 * known list of vdev GUID -> path mappings.
747 		 */
748 		if (fix_paths(hdl, nvroot, pl->names) != 0) {
749 			nvlist_free(nvroot);
750 			goto nomem;
751 		}
752 
753 		/*
754 		 * Add the root vdev to this pool's configuration.
755 		 */
756 		if (nvlist_add_nvlist(config, ZPOOL_CONFIG_VDEV_TREE,
757 		    nvroot) != 0) {
758 			nvlist_free(nvroot);
759 			goto nomem;
760 		}
761 		nvlist_free(nvroot);
762 
763 		/*
764 		 * zdb uses this path to report on active pools that were
765 		 * imported or created using -R.
766 		 */
767 		if (active_ok)
768 			goto add_pool;
769 
770 		/*
771 		 * Determine if this pool is currently active, in which case we
772 		 * can't actually import it.
773 		 */
774 		verify(nvlist_lookup_string(config, ZPOOL_CONFIG_POOL_NAME,
775 		    &name) == 0);
776 		verify(nvlist_lookup_uint64(config, ZPOOL_CONFIG_POOL_GUID,
777 		    &guid) == 0);
778 
779 		if (zutil_pool_active(hdl, name, guid, &isactive) != 0)
780 			goto error;
781 
782 		if (isactive) {
783 			nvlist_free(config);
784 			config = NULL;
785 			continue;
786 		}
787 
788 		if (policy != NULL) {
789 			if (nvlist_add_nvlist(config, ZPOOL_LOAD_POLICY,
790 			    policy) != 0)
791 				goto nomem;
792 		}
793 
794 		if ((nvl = zutil_refresh_config(hdl, config)) == NULL) {
795 			nvlist_free(config);
796 			config = NULL;
797 			continue;
798 		}
799 
800 		nvlist_free(config);
801 		config = nvl;
802 
803 		/*
804 		 * Go through and update the paths for spares, now that we have
805 		 * them.
806 		 */
807 		verify(nvlist_lookup_nvlist(config, ZPOOL_CONFIG_VDEV_TREE,
808 		    &nvroot) == 0);
809 		if (nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_SPARES,
810 		    &spares, &nspares) == 0) {
811 			for (i = 0; i < nspares; i++) {
812 				if (fix_paths(hdl, spares[i], pl->names) != 0)
813 					goto nomem;
814 			}
815 		}
816 
817 		/*
818 		 * Update the paths for l2cache devices.
819 		 */
820 		if (nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_L2CACHE,
821 		    &l2cache, &nl2cache) == 0) {
822 			for (i = 0; i < nl2cache; i++) {
823 				if (fix_paths(hdl, l2cache[i], pl->names) != 0)
824 					goto nomem;
825 			}
826 		}
827 
828 		/*
829 		 * Restore the original information read from the actual label.
830 		 */
831 		(void) nvlist_remove(config, ZPOOL_CONFIG_HOSTID,
832 		    DATA_TYPE_UINT64);
833 		(void) nvlist_remove(config, ZPOOL_CONFIG_HOSTNAME,
834 		    DATA_TYPE_STRING);
835 		if (hostid != 0) {
836 			verify(nvlist_add_uint64(config, ZPOOL_CONFIG_HOSTID,
837 			    hostid) == 0);
838 			verify(nvlist_add_string(config, ZPOOL_CONFIG_HOSTNAME,
839 			    hostname) == 0);
840 		}
841 
842 add_pool:
843 		/*
844 		 * Add this pool to the list of configs.
845 		 */
846 		verify(nvlist_lookup_string(config, ZPOOL_CONFIG_POOL_NAME,
847 		    &name) == 0);
848 
849 		if (nvlist_add_nvlist(ret, name, config) != 0)
850 			goto nomem;
851 
852 		nvlist_free(config);
853 		config = NULL;
854 	}
855 
856 	return (ret);
857 
858 nomem:
859 	(void) zutil_no_memory(hdl);
860 error:
861 	nvlist_free(config);
862 	nvlist_free(ret);
863 	for (c = 0; c < children; c++)
864 		nvlist_free(child[c]);
865 	free(child);
866 
867 	return (NULL);
868 }
869 
870 /*
871  * Return the offset of the given label.
872  */
873 static uint64_t
874 label_offset(uint64_t size, int l)
875 {
876 	ASSERT(P2PHASE_TYPED(size, sizeof (vdev_label_t), uint64_t) == 0);
877 	return (l * sizeof (vdev_label_t) + (l < VDEV_LABELS / 2 ?
878 	    0 : size - VDEV_LABELS * sizeof (vdev_label_t)));
879 }
880 
881 /*
882  * Given a file descriptor, read the label information and return an nvlist
883  * describing the configuration, if there is one.  The number of valid
884  * labels found will be returned in num_labels when non-NULL.
885  */
886 int
887 zpool_read_label(int fd, nvlist_t **config, int *num_labels)
888 {
889 	struct stat64 statbuf;
890 	int l, count = 0;
891 	vdev_label_t *label;
892 	nvlist_t *expected_config = NULL;
893 	uint64_t expected_guid = 0, size;
894 	int error;
895 
896 	*config = NULL;
897 
898 	if (fstat64_blk(fd, &statbuf) == -1)
899 		return (0);
900 	size = P2ALIGN_TYPED(statbuf.st_size, sizeof (vdev_label_t), uint64_t);
901 
902 	error = posix_memalign((void **)&label, PAGESIZE, sizeof (*label));
903 	if (error)
904 		return (-1);
905 
906 	for (l = 0; l < VDEV_LABELS; l++) {
907 		uint64_t state, guid, txg;
908 
909 		if (pread64(fd, label, sizeof (vdev_label_t),
910 		    label_offset(size, l)) != sizeof (vdev_label_t))
911 			continue;
912 
913 		if (nvlist_unpack(label->vl_vdev_phys.vp_nvlist,
914 		    sizeof (label->vl_vdev_phys.vp_nvlist), config, 0) != 0)
915 			continue;
916 
917 		if (nvlist_lookup_uint64(*config, ZPOOL_CONFIG_GUID,
918 		    &guid) != 0 || guid == 0) {
919 			nvlist_free(*config);
920 			continue;
921 		}
922 
923 		if (nvlist_lookup_uint64(*config, ZPOOL_CONFIG_POOL_STATE,
924 		    &state) != 0 || state > POOL_STATE_L2CACHE) {
925 			nvlist_free(*config);
926 			continue;
927 		}
928 
929 		if (state != POOL_STATE_SPARE && state != POOL_STATE_L2CACHE &&
930 		    (nvlist_lookup_uint64(*config, ZPOOL_CONFIG_POOL_TXG,
931 		    &txg) != 0 || txg == 0)) {
932 			nvlist_free(*config);
933 			continue;
934 		}
935 
936 		if (expected_guid) {
937 			if (expected_guid == guid)
938 				count++;
939 
940 			nvlist_free(*config);
941 		} else {
942 			expected_config = *config;
943 			expected_guid = guid;
944 			count++;
945 		}
946 	}
947 
948 	if (num_labels != NULL)
949 		*num_labels = count;
950 
951 	free(label);
952 	*config = expected_config;
953 
954 	return (0);
955 }
956 
957 /*
958  * Sorted by full path and then vdev guid to allow for multiple entries with
959  * the same full path name.  This is required because it's possible to
960  * have multiple block devices with labels that refer to the same
961  * ZPOOL_CONFIG_PATH yet have different vdev guids.  In this case both
962  * entries need to be added to the cache.  Scenarios where this can occur
963  * include overwritten pool labels, devices which are visible from multiple
964  * hosts and multipath devices.
965  */
966 int
967 slice_cache_compare(const void *arg1, const void *arg2)
968 {
969 	const char  *nm1 = ((rdsk_node_t *)arg1)->rn_name;
970 	const char  *nm2 = ((rdsk_node_t *)arg2)->rn_name;
971 	uint64_t guid1 = ((rdsk_node_t *)arg1)->rn_vdev_guid;
972 	uint64_t guid2 = ((rdsk_node_t *)arg2)->rn_vdev_guid;
973 	int rv;
974 
975 	rv = TREE_ISIGN(strcmp(nm1, nm2));
976 	if (rv)
977 		return (rv);
978 
979 	return (TREE_CMP(guid1, guid2));
980 }
981 
982 static int
983 label_paths_impl(libpc_handle_t *hdl, nvlist_t *nvroot, uint64_t pool_guid,
984     uint64_t vdev_guid, char **path, char **devid)
985 {
986 	nvlist_t **child;
987 	uint_t c, children;
988 	uint64_t guid;
989 	char *val;
990 	int error;
991 
992 	if (nvlist_lookup_nvlist_array(nvroot, ZPOOL_CONFIG_CHILDREN,
993 	    &child, &children) == 0) {
994 		for (c = 0; c < children; c++) {
995 			error  = label_paths_impl(hdl, child[c],
996 			    pool_guid, vdev_guid, path, devid);
997 			if (error)
998 				return (error);
999 		}
1000 		return (0);
1001 	}
1002 
1003 	if (nvroot == NULL)
1004 		return (0);
1005 
1006 	error = nvlist_lookup_uint64(nvroot, ZPOOL_CONFIG_GUID, &guid);
1007 	if ((error != 0) || (guid != vdev_guid))
1008 		return (0);
1009 
1010 	error = nvlist_lookup_string(nvroot, ZPOOL_CONFIG_PATH, &val);
1011 	if (error == 0)
1012 		*path = val;
1013 
1014 	error = nvlist_lookup_string(nvroot, ZPOOL_CONFIG_DEVID, &val);
1015 	if (error == 0)
1016 		*devid = val;
1017 
1018 	return (0);
1019 }
1020 
1021 /*
1022  * Given a disk label fetch the ZPOOL_CONFIG_PATH and ZPOOL_CONFIG_DEVID
1023  * and store these strings as config_path and devid_path respectively.
1024  * The returned pointers are only valid as long as label remains valid.
1025  */
1026 int
1027 label_paths(libpc_handle_t *hdl, nvlist_t *label, char **path, char **devid)
1028 {
1029 	nvlist_t *nvroot;
1030 	uint64_t pool_guid;
1031 	uint64_t vdev_guid;
1032 
1033 	*path = NULL;
1034 	*devid = NULL;
1035 
1036 	if (nvlist_lookup_nvlist(label, ZPOOL_CONFIG_VDEV_TREE, &nvroot) ||
1037 	    nvlist_lookup_uint64(label, ZPOOL_CONFIG_POOL_GUID, &pool_guid) ||
1038 	    nvlist_lookup_uint64(label, ZPOOL_CONFIG_GUID, &vdev_guid))
1039 		return (ENOENT);
1040 
1041 	return (label_paths_impl(hdl, nvroot, pool_guid, vdev_guid, path,
1042 	    devid));
1043 }
1044 
1045 static void
1046 zpool_find_import_scan_add_slice(libpc_handle_t *hdl, pthread_mutex_t *lock,
1047     avl_tree_t *cache, const char *path, const char *name, int order)
1048 {
1049 	avl_index_t where;
1050 	rdsk_node_t *slice;
1051 
1052 	slice = zutil_alloc(hdl, sizeof (rdsk_node_t));
1053 	if (asprintf(&slice->rn_name, "%s/%s", path, name) == -1) {
1054 		free(slice);
1055 		return;
1056 	}
1057 	slice->rn_vdev_guid = 0;
1058 	slice->rn_lock = lock;
1059 	slice->rn_avl = cache;
1060 	slice->rn_hdl = hdl;
1061 	slice->rn_order = order + IMPORT_ORDER_SCAN_OFFSET;
1062 	slice->rn_labelpaths = B_FALSE;
1063 
1064 	pthread_mutex_lock(lock);
1065 	if (avl_find(cache, slice, &where)) {
1066 		free(slice->rn_name);
1067 		free(slice);
1068 	} else {
1069 		avl_insert(cache, slice, where);
1070 	}
1071 	pthread_mutex_unlock(lock);
1072 }
1073 
1074 static int
1075 zpool_find_import_scan_dir(libpc_handle_t *hdl, pthread_mutex_t *lock,
1076     avl_tree_t *cache, const char *dir, int order)
1077 {
1078 	int error;
1079 	char path[MAXPATHLEN];
1080 	struct dirent64 *dp;
1081 	DIR *dirp;
1082 
1083 	if (realpath(dir, path) == NULL) {
1084 		error = errno;
1085 		if (error == ENOENT)
1086 			return (0);
1087 
1088 		zutil_error_aux(hdl, strerror(error));
1089 		(void) zutil_error_fmt(hdl, EZFS_BADPATH, dgettext(
1090 		    TEXT_DOMAIN, "cannot resolve path '%s'"), dir);
1091 		return (error);
1092 	}
1093 
1094 	dirp = opendir(path);
1095 	if (dirp == NULL) {
1096 		error = errno;
1097 		zutil_error_aux(hdl, strerror(error));
1098 		(void) zutil_error_fmt(hdl, EZFS_BADPATH,
1099 		    dgettext(TEXT_DOMAIN, "cannot open '%s'"), path);
1100 		return (error);
1101 	}
1102 
1103 	while ((dp = readdir64(dirp)) != NULL) {
1104 		const char *name = dp->d_name;
1105 		if (name[0] == '.' &&
1106 		    (name[1] == 0 || (name[1] == '.' && name[2] == 0)))
1107 			continue;
1108 
1109 		zpool_find_import_scan_add_slice(hdl, lock, cache, path, name,
1110 		    order);
1111 	}
1112 
1113 	(void) closedir(dirp);
1114 	return (0);
1115 }
1116 
1117 static int
1118 zpool_find_import_scan_path(libpc_handle_t *hdl, pthread_mutex_t *lock,
1119     avl_tree_t *cache, const char *dir, int order)
1120 {
1121 	int error = 0;
1122 	char path[MAXPATHLEN];
1123 	char *d, *b;
1124 	char *dpath, *name;
1125 
1126 	/*
1127 	 * Separate the directory part and last part of the
1128 	 * path. We do this so that we can get the realpath of
1129 	 * the directory. We don't get the realpath on the
1130 	 * whole path because if it's a symlink, we want the
1131 	 * path of the symlink not where it points to.
1132 	 */
1133 	d = zutil_strdup(hdl, dir);
1134 	b = zutil_strdup(hdl, dir);
1135 	dpath = dirname(d);
1136 	name = basename(b);
1137 
1138 	if (realpath(dpath, path) == NULL) {
1139 		error = errno;
1140 		if (error == ENOENT) {
1141 			error = 0;
1142 			goto out;
1143 		}
1144 
1145 		zutil_error_aux(hdl, strerror(error));
1146 		(void) zutil_error_fmt(hdl, EZFS_BADPATH, dgettext(
1147 		    TEXT_DOMAIN, "cannot resolve path '%s'"), dir);
1148 		goto out;
1149 	}
1150 
1151 	zpool_find_import_scan_add_slice(hdl, lock, cache, path, name, order);
1152 
1153 out:
1154 	free(b);
1155 	free(d);
1156 	return (error);
1157 }
1158 
1159 /*
1160  * Scan a list of directories for zfs devices.
1161  */
1162 static int
1163 zpool_find_import_scan(libpc_handle_t *hdl, pthread_mutex_t *lock,
1164     avl_tree_t **slice_cache, const char * const *dir, size_t dirs)
1165 {
1166 	avl_tree_t *cache;
1167 	rdsk_node_t *slice;
1168 	void *cookie;
1169 	int i, error;
1170 
1171 	*slice_cache = NULL;
1172 	cache = zutil_alloc(hdl, sizeof (avl_tree_t));
1173 	avl_create(cache, slice_cache_compare, sizeof (rdsk_node_t),
1174 	    offsetof(rdsk_node_t, rn_node));
1175 
1176 	for (i = 0; i < dirs; i++) {
1177 		struct stat sbuf;
1178 
1179 		if (stat(dir[i], &sbuf) != 0) {
1180 			error = errno;
1181 			if (error == ENOENT)
1182 				continue;
1183 
1184 			zutil_error_aux(hdl, strerror(error));
1185 			(void) zutil_error_fmt(hdl, EZFS_BADPATH, dgettext(
1186 			    TEXT_DOMAIN, "cannot resolve path '%s'"), dir[i]);
1187 			goto error;
1188 		}
1189 
1190 		/*
1191 		 * If dir[i] is a directory, we walk through it and add all
1192 		 * the entries to the cache. If it's not a directory, we just
1193 		 * add it to the cache.
1194 		 */
1195 		if (S_ISDIR(sbuf.st_mode)) {
1196 			if ((error = zpool_find_import_scan_dir(hdl, lock,
1197 			    cache, dir[i], i)) != 0)
1198 				goto error;
1199 		} else {
1200 			if ((error = zpool_find_import_scan_path(hdl, lock,
1201 			    cache, dir[i], i)) != 0)
1202 				goto error;
1203 		}
1204 	}
1205 
1206 	*slice_cache = cache;
1207 	return (0);
1208 
1209 error:
1210 	cookie = NULL;
1211 	while ((slice = avl_destroy_nodes(cache, &cookie)) != NULL) {
1212 		free(slice->rn_name);
1213 		free(slice);
1214 	}
1215 	free(cache);
1216 
1217 	return (error);
1218 }
1219 
1220 /*
1221  * Given a list of directories to search, find all pools stored on disk.  This
1222  * includes partial pools which are not available to import.  If no args are
1223  * given (argc is 0), then the default directory (/dev/dsk) is searched.
1224  * poolname or guid (but not both) are provided by the caller when trying
1225  * to import a specific pool.
1226  */
1227 static nvlist_t *
1228 zpool_find_import_impl(libpc_handle_t *hdl, importargs_t *iarg)
1229 {
1230 	nvlist_t *ret = NULL;
1231 	pool_list_t pools = { 0 };
1232 	pool_entry_t *pe, *penext;
1233 	vdev_entry_t *ve, *venext;
1234 	config_entry_t *ce, *cenext;
1235 	name_entry_t *ne, *nenext;
1236 	pthread_mutex_t lock;
1237 	avl_tree_t *cache;
1238 	rdsk_node_t *slice;
1239 	void *cookie;
1240 	tpool_t *t;
1241 
1242 	verify(iarg->poolname == NULL || iarg->guid == 0);
1243 	pthread_mutex_init(&lock, NULL);
1244 
1245 	/*
1246 	 * Locate pool member vdevs by blkid or by directory scanning.
1247 	 * On success a newly allocated AVL tree which is populated with an
1248 	 * entry for each discovered vdev will be returned in the cache.
1249 	 * It's the caller's responsibility to consume and destroy this tree.
1250 	 */
1251 	if (iarg->scan || iarg->paths != 0) {
1252 		size_t dirs = iarg->paths;
1253 		const char * const *dir = (const char * const *)iarg->path;
1254 
1255 		if (dirs == 0)
1256 			dir = zpool_default_search_paths(&dirs);
1257 
1258 		if (zpool_find_import_scan(hdl, &lock, &cache, dir, dirs) != 0)
1259 			return (NULL);
1260 	} else {
1261 		if (zpool_find_import_blkid(hdl, &lock, &cache) != 0)
1262 			return (NULL);
1263 	}
1264 
1265 	/*
1266 	 * Create a thread pool to parallelize the process of reading and
1267 	 * validating labels, a large number of threads can be used due to
1268 	 * minimal contention.
1269 	 */
1270 	t = tpool_create(1, 2 * sysconf(_SC_NPROCESSORS_ONLN), 0, NULL);
1271 	for (slice = avl_first(cache); slice;
1272 	    (slice = avl_walk(cache, slice, AVL_AFTER)))
1273 		(void) tpool_dispatch(t, zpool_open_func, slice);
1274 
1275 	tpool_wait(t);
1276 	tpool_destroy(t);
1277 
1278 	/*
1279 	 * Process the cache, filtering out any entries which are not
1280 	 * for the specified pool then adding matching label configs.
1281 	 */
1282 	cookie = NULL;
1283 	while ((slice = avl_destroy_nodes(cache, &cookie)) != NULL) {
1284 		if (slice->rn_config != NULL) {
1285 			nvlist_t *config = slice->rn_config;
1286 			boolean_t matched = B_TRUE;
1287 			boolean_t aux = B_FALSE;
1288 			int fd;
1289 
1290 			/*
1291 			 * Check if it's a spare or l2cache device. If it is,
1292 			 * we need to skip the name and guid check since they
1293 			 * don't exist on aux device label.
1294 			 */
1295 			if (iarg->poolname != NULL || iarg->guid != 0) {
1296 				uint64_t state;
1297 				aux = nvlist_lookup_uint64(config,
1298 				    ZPOOL_CONFIG_POOL_STATE, &state) == 0 &&
1299 				    (state == POOL_STATE_SPARE ||
1300 				    state == POOL_STATE_L2CACHE);
1301 			}
1302 
1303 			if (iarg->poolname != NULL && !aux) {
1304 				char *pname;
1305 
1306 				matched = nvlist_lookup_string(config,
1307 				    ZPOOL_CONFIG_POOL_NAME, &pname) == 0 &&
1308 				    strcmp(iarg->poolname, pname) == 0;
1309 			} else if (iarg->guid != 0 && !aux) {
1310 				uint64_t this_guid;
1311 
1312 				matched = nvlist_lookup_uint64(config,
1313 				    ZPOOL_CONFIG_POOL_GUID, &this_guid) == 0 &&
1314 				    iarg->guid == this_guid;
1315 			}
1316 			if (matched) {
1317 				/*
1318 				 * Verify all remaining entries can be opened
1319 				 * exclusively. This will prune all underlying
1320 				 * multipath devices which otherwise could
1321 				 * result in the vdev appearing as UNAVAIL.
1322 				 *
1323 				 * Under zdb, this step isn't required and
1324 				 * would prevent a zdb -e of active pools with
1325 				 * no cachefile.
1326 				 */
1327 				fd = open(slice->rn_name, O_RDONLY | O_EXCL);
1328 				if (fd >= 0 || iarg->can_be_active) {
1329 					if (fd >= 0)
1330 						close(fd);
1331 					add_config(hdl, &pools,
1332 					    slice->rn_name, slice->rn_order,
1333 					    slice->rn_num_labels, config);
1334 				}
1335 			}
1336 			nvlist_free(config);
1337 		}
1338 		free(slice->rn_name);
1339 		free(slice);
1340 	}
1341 	avl_destroy(cache);
1342 	free(cache);
1343 	pthread_mutex_destroy(&lock);
1344 
1345 	ret = get_configs(hdl, &pools, iarg->can_be_active, iarg->policy);
1346 
1347 	for (pe = pools.pools; pe != NULL; pe = penext) {
1348 		penext = pe->pe_next;
1349 		for (ve = pe->pe_vdevs; ve != NULL; ve = venext) {
1350 			venext = ve->ve_next;
1351 			for (ce = ve->ve_configs; ce != NULL; ce = cenext) {
1352 				cenext = ce->ce_next;
1353 				nvlist_free(ce->ce_config);
1354 				free(ce);
1355 			}
1356 			free(ve);
1357 		}
1358 		free(pe);
1359 	}
1360 
1361 	for (ne = pools.names; ne != NULL; ne = nenext) {
1362 		nenext = ne->ne_next;
1363 		free(ne->ne_name);
1364 		free(ne);
1365 	}
1366 
1367 	return (ret);
1368 }
1369 
1370 /*
1371  * Given a cache file, return the contents as a list of importable pools.
1372  * poolname or guid (but not both) are provided by the caller when trying
1373  * to import a specific pool.
1374  */
1375 static nvlist_t *
1376 zpool_find_import_cached(libpc_handle_t *hdl, const char *cachefile,
1377     const char *poolname, uint64_t guid)
1378 {
1379 	char *buf;
1380 	int fd;
1381 	struct stat64 statbuf;
1382 	nvlist_t *raw, *src, *dst;
1383 	nvlist_t *pools;
1384 	nvpair_t *elem;
1385 	char *name;
1386 	uint64_t this_guid;
1387 	boolean_t active;
1388 
1389 	verify(poolname == NULL || guid == 0);
1390 
1391 	if ((fd = open(cachefile, O_RDONLY)) < 0) {
1392 		zutil_error_aux(hdl, "%s", strerror(errno));
1393 		(void) zutil_error(hdl, EZFS_BADCACHE,
1394 		    dgettext(TEXT_DOMAIN, "failed to open cache file"));
1395 		return (NULL);
1396 	}
1397 
1398 	if (fstat64(fd, &statbuf) != 0) {
1399 		zutil_error_aux(hdl, "%s", strerror(errno));
1400 		(void) close(fd);
1401 		(void) zutil_error(hdl, EZFS_BADCACHE,
1402 		    dgettext(TEXT_DOMAIN, "failed to get size of cache file"));
1403 		return (NULL);
1404 	}
1405 
1406 	if ((buf = zutil_alloc(hdl, statbuf.st_size)) == NULL) {
1407 		(void) close(fd);
1408 		return (NULL);
1409 	}
1410 
1411 	if (read(fd, buf, statbuf.st_size) != statbuf.st_size) {
1412 		(void) close(fd);
1413 		free(buf);
1414 		(void) zutil_error(hdl, EZFS_BADCACHE,
1415 		    dgettext(TEXT_DOMAIN,
1416 		    "failed to read cache file contents"));
1417 		return (NULL);
1418 	}
1419 
1420 	(void) close(fd);
1421 
1422 	if (nvlist_unpack(buf, statbuf.st_size, &raw, 0) != 0) {
1423 		free(buf);
1424 		(void) zutil_error(hdl, EZFS_BADCACHE,
1425 		    dgettext(TEXT_DOMAIN,
1426 		    "invalid or corrupt cache file contents"));
1427 		return (NULL);
1428 	}
1429 
1430 	free(buf);
1431 
1432 	/*
1433 	 * Go through and get the current state of the pools and refresh their
1434 	 * state.
1435 	 */
1436 	if (nvlist_alloc(&pools, 0, 0) != 0) {
1437 		(void) zutil_no_memory(hdl);
1438 		nvlist_free(raw);
1439 		return (NULL);
1440 	}
1441 
1442 	elem = NULL;
1443 	while ((elem = nvlist_next_nvpair(raw, elem)) != NULL) {
1444 		src = fnvpair_value_nvlist(elem);
1445 
1446 		name = fnvlist_lookup_string(src, ZPOOL_CONFIG_POOL_NAME);
1447 		if (poolname != NULL && strcmp(poolname, name) != 0)
1448 			continue;
1449 
1450 		this_guid = fnvlist_lookup_uint64(src, ZPOOL_CONFIG_POOL_GUID);
1451 		if (guid != 0 && guid != this_guid)
1452 			continue;
1453 
1454 		if (zutil_pool_active(hdl, name, this_guid, &active) != 0) {
1455 			nvlist_free(raw);
1456 			nvlist_free(pools);
1457 			return (NULL);
1458 		}
1459 
1460 		if (active)
1461 			continue;
1462 
1463 		if (nvlist_add_string(src, ZPOOL_CONFIG_CACHEFILE,
1464 		    cachefile) != 0) {
1465 			(void) zutil_no_memory(hdl);
1466 			nvlist_free(raw);
1467 			nvlist_free(pools);
1468 			return (NULL);
1469 		}
1470 
1471 		if ((dst = zutil_refresh_config(hdl, src)) == NULL) {
1472 			nvlist_free(raw);
1473 			nvlist_free(pools);
1474 			return (NULL);
1475 		}
1476 
1477 		if (nvlist_add_nvlist(pools, nvpair_name(elem), dst) != 0) {
1478 			(void) zutil_no_memory(hdl);
1479 			nvlist_free(dst);
1480 			nvlist_free(raw);
1481 			nvlist_free(pools);
1482 			return (NULL);
1483 		}
1484 		nvlist_free(dst);
1485 	}
1486 
1487 	nvlist_free(raw);
1488 	return (pools);
1489 }
1490 
1491 nvlist_t *
1492 zpool_search_import(void *hdl, importargs_t *import,
1493     const pool_config_ops_t *pco)
1494 {
1495 	libpc_handle_t handle = { 0 };
1496 	nvlist_t *pools = NULL;
1497 
1498 	handle.lpc_lib_handle = hdl;
1499 	handle.lpc_ops = pco;
1500 	handle.lpc_printerr = B_TRUE;
1501 
1502 	verify(import->poolname == NULL || import->guid == 0);
1503 
1504 	if (import->cachefile != NULL)
1505 		pools = zpool_find_import_cached(&handle, import->cachefile,
1506 		    import->poolname, import->guid);
1507 	else
1508 		pools = zpool_find_import_impl(&handle, import);
1509 
1510 	if ((pools == NULL || nvlist_empty(pools)) &&
1511 	    handle.lpc_open_access_error && geteuid() != 0) {
1512 		(void) zutil_error(&handle, EZFS_EACESS, dgettext(TEXT_DOMAIN,
1513 		    "no pools found"));
1514 	}
1515 
1516 	return (pools);
1517 }
1518 
1519 static boolean_t
1520 pool_match(nvlist_t *cfg, char *tgt)
1521 {
1522 	uint64_t v, guid = strtoull(tgt, NULL, 0);
1523 	char *s;
1524 
1525 	if (guid != 0) {
1526 		if (nvlist_lookup_uint64(cfg, ZPOOL_CONFIG_POOL_GUID, &v) == 0)
1527 			return (v == guid);
1528 	} else {
1529 		if (nvlist_lookup_string(cfg, ZPOOL_CONFIG_POOL_NAME, &s) == 0)
1530 			return (strcmp(s, tgt) == 0);
1531 	}
1532 	return (B_FALSE);
1533 }
1534 
1535 int
1536 zpool_find_config(void *hdl, const char *target, nvlist_t **configp,
1537     importargs_t *args, const pool_config_ops_t *pco)
1538 {
1539 	nvlist_t *pools;
1540 	nvlist_t *match = NULL;
1541 	nvlist_t *config = NULL;
1542 	char *sepp = NULL;
1543 	char sep = '\0';
1544 	int count = 0;
1545 	char *targetdup = strdup(target);
1546 
1547 	*configp = NULL;
1548 
1549 	if ((sepp = strpbrk(targetdup, "/@")) != NULL) {
1550 		sep = *sepp;
1551 		*sepp = '\0';
1552 	}
1553 
1554 	pools = zpool_search_import(hdl, args, pco);
1555 
1556 	if (pools != NULL) {
1557 		nvpair_t *elem = NULL;
1558 		while ((elem = nvlist_next_nvpair(pools, elem)) != NULL) {
1559 			VERIFY0(nvpair_value_nvlist(elem, &config));
1560 			if (pool_match(config, targetdup)) {
1561 				count++;
1562 				if (match != NULL) {
1563 					/* multiple matches found */
1564 					continue;
1565 				} else {
1566 					match = fnvlist_dup(config);
1567 				}
1568 			}
1569 		}
1570 		fnvlist_free(pools);
1571 	}
1572 
1573 	if (count == 0) {
1574 		free(targetdup);
1575 		return (ENOENT);
1576 	}
1577 
1578 	if (count > 1) {
1579 		free(targetdup);
1580 		fnvlist_free(match);
1581 		return (EINVAL);
1582 	}
1583 
1584 	*configp = match;
1585 	free(targetdup);
1586 
1587 	return (0);
1588 }
1589