primary.c revision 211886
1/*-
2 * Copyright (c) 2009 The FreeBSD Foundation
3 * Copyright (c) 2010 Pawel Jakub Dawidek <pjd@FreeBSD.org>
4 * All rights reserved.
5 *
6 * This software was developed by Pawel Jakub Dawidek under sponsorship from
7 * the FreeBSD Foundation.
8 *
9 * Redistribution and use in source and binary forms, with or without
10 * modification, are permitted provided that the following conditions
11 * are met:
12 * 1. Redistributions of source code must retain the above copyright
13 *    notice, this list of conditions and the following disclaimer.
14 * 2. Redistributions in binary form must reproduce the above copyright
15 *    notice, this list of conditions and the following disclaimer in the
16 *    documentation and/or other materials provided with the distribution.
17 *
18 * THIS SOFTWARE IS PROVIDED BY THE AUTHORS AND CONTRIBUTORS ``AS IS'' AND
19 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
20 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
21 * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHORS OR CONTRIBUTORS BE LIABLE
22 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
23 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
24 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
25 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
26 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
27 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
28 * SUCH DAMAGE.
29 */
30
31#include <sys/cdefs.h>
32__FBSDID("$FreeBSD: head/sbin/hastd/primary.c 211886 2010-08-27 15:16:52Z pjd $");
33
34#include <sys/types.h>
35#include <sys/time.h>
36#include <sys/bio.h>
37#include <sys/disk.h>
38#include <sys/refcount.h>
39#include <sys/stat.h>
40
41#include <geom/gate/g_gate.h>
42
43#include <assert.h>
44#include <err.h>
45#include <errno.h>
46#include <fcntl.h>
47#include <libgeom.h>
48#include <pthread.h>
49#include <stdint.h>
50#include <stdio.h>
51#include <string.h>
52#include <sysexits.h>
53#include <unistd.h>
54
55#include <activemap.h>
56#include <nv.h>
57#include <rangelock.h>
58
59#include "control.h"
60#include "hast.h"
61#include "hast_proto.h"
62#include "hastd.h"
63#include "hooks.h"
64#include "metadata.h"
65#include "proto.h"
66#include "pjdlog.h"
67#include "subr.h"
68#include "synch.h"
69
70/* The is only one remote component for now. */
71#define	ISREMOTE(no)	((no) == 1)
72
73struct hio {
74	/*
75	 * Number of components we are still waiting for.
76	 * When this field goes to 0, we can send the request back to the
77	 * kernel. Each component has to decrease this counter by one
78	 * even on failure.
79	 */
80	unsigned int		 hio_countdown;
81	/*
82	 * Each component has a place to store its own error.
83	 * Once the request is handled by all components we can decide if the
84	 * request overall is successful or not.
85	 */
86	int			*hio_errors;
87	/*
88	 * Structure used to comunicate with GEOM Gate class.
89	 */
90	struct g_gate_ctl_io	 hio_ggio;
91	TAILQ_ENTRY(hio)	*hio_next;
92};
93#define	hio_free_next	hio_next[0]
94#define	hio_done_next	hio_next[0]
95
96/*
97 * Free list holds unused structures. When free list is empty, we have to wait
98 * until some in-progress requests are freed.
99 */
100static TAILQ_HEAD(, hio) hio_free_list;
101static pthread_mutex_t hio_free_list_lock;
102static pthread_cond_t hio_free_list_cond;
103/*
104 * There is one send list for every component. One requests is placed on all
105 * send lists - each component gets the same request, but each component is
106 * responsible for managing his own send list.
107 */
108static TAILQ_HEAD(, hio) *hio_send_list;
109static pthread_mutex_t *hio_send_list_lock;
110static pthread_cond_t *hio_send_list_cond;
111/*
112 * There is one recv list for every component, although local components don't
113 * use recv lists as local requests are done synchronously.
114 */
115static TAILQ_HEAD(, hio) *hio_recv_list;
116static pthread_mutex_t *hio_recv_list_lock;
117static pthread_cond_t *hio_recv_list_cond;
118/*
119 * Request is placed on done list by the slowest component (the one that
120 * decreased hio_countdown from 1 to 0).
121 */
122static TAILQ_HEAD(, hio) hio_done_list;
123static pthread_mutex_t hio_done_list_lock;
124static pthread_cond_t hio_done_list_cond;
125/*
126 * Structure below are for interaction with sync thread.
127 */
128static bool sync_inprogress;
129static pthread_mutex_t sync_lock;
130static pthread_cond_t sync_cond;
131/*
132 * The lock below allows to synchornize access to remote connections.
133 */
134static pthread_rwlock_t *hio_remote_lock;
135static pthread_mutex_t hio_guard_lock;
136static pthread_cond_t hio_guard_cond;
137
138/*
139 * Lock to synchronize metadata updates. Also synchronize access to
140 * hr_primary_localcnt and hr_primary_remotecnt fields.
141 */
142static pthread_mutex_t metadata_lock;
143
144/*
145 * Maximum number of outstanding I/O requests.
146 */
147#define	HAST_HIO_MAX	256
148/*
149 * Number of components. At this point there are only two components: local
150 * and remote, but in the future it might be possible to use multiple local
151 * and remote components.
152 */
153#define	HAST_NCOMPONENTS	2
154/*
155 * Number of seconds to sleep between keepalive packets.
156 */
157#define	KEEPALIVE_SLEEP		10
158/*
159 * Number of seconds to sleep between reconnect retries.
160 */
161#define	RECONNECT_SLEEP		5
162
163#define	ISCONNECTED(res, no)	\
164	((res)->hr_remotein != NULL && (res)->hr_remoteout != NULL)
165
166#define	QUEUE_INSERT1(hio, name, ncomp)	do {				\
167	bool _wakeup;							\
168									\
169	mtx_lock(&hio_##name##_list_lock[(ncomp)]);			\
170	_wakeup = TAILQ_EMPTY(&hio_##name##_list[(ncomp)]);		\
171	TAILQ_INSERT_TAIL(&hio_##name##_list[(ncomp)], (hio),		\
172	    hio_next[(ncomp)]);						\
173	mtx_unlock(&hio_##name##_list_lock[ncomp]);			\
174	if (_wakeup)							\
175		cv_signal(&hio_##name##_list_cond[(ncomp)]);		\
176} while (0)
177#define	QUEUE_INSERT2(hio, name)	do {				\
178	bool _wakeup;							\
179									\
180	mtx_lock(&hio_##name##_list_lock);				\
181	_wakeup = TAILQ_EMPTY(&hio_##name##_list);			\
182	TAILQ_INSERT_TAIL(&hio_##name##_list, (hio), hio_##name##_next);\
183	mtx_unlock(&hio_##name##_list_lock);				\
184	if (_wakeup)							\
185		cv_signal(&hio_##name##_list_cond);			\
186} while (0)
187#define	QUEUE_TAKE1(hio, name, ncomp)	do {				\
188	mtx_lock(&hio_##name##_list_lock[(ncomp)]);			\
189	while (((hio) = TAILQ_FIRST(&hio_##name##_list[(ncomp)])) == NULL) { \
190		cv_wait(&hio_##name##_list_cond[(ncomp)],		\
191		    &hio_##name##_list_lock[(ncomp)]);			\
192	}								\
193	TAILQ_REMOVE(&hio_##name##_list[(ncomp)], (hio),		\
194	    hio_next[(ncomp)]);						\
195	mtx_unlock(&hio_##name##_list_lock[(ncomp)]);			\
196} while (0)
197#define	QUEUE_TAKE2(hio, name)	do {					\
198	mtx_lock(&hio_##name##_list_lock);				\
199	while (((hio) = TAILQ_FIRST(&hio_##name##_list)) == NULL) {	\
200		cv_wait(&hio_##name##_list_cond,			\
201		    &hio_##name##_list_lock);				\
202	}								\
203	TAILQ_REMOVE(&hio_##name##_list, (hio), hio_##name##_next);	\
204	mtx_unlock(&hio_##name##_list_lock);				\
205} while (0)
206
207#define	SYNCREQ(hio)		do {					\
208	(hio)->hio_ggio.gctl_unit = -1;					\
209	(hio)->hio_ggio.gctl_seq = 1;					\
210} while (0)
211#define	ISSYNCREQ(hio)		((hio)->hio_ggio.gctl_unit == -1)
212#define	SYNCREQDONE(hio)	do { (hio)->hio_ggio.gctl_unit = -2; } while (0)
213#define	ISSYNCREQDONE(hio)	((hio)->hio_ggio.gctl_unit == -2)
214
215static struct hast_resource *gres;
216
217static pthread_mutex_t range_lock;
218static struct rangelocks *range_regular;
219static bool range_regular_wait;
220static pthread_cond_t range_regular_cond;
221static struct rangelocks *range_sync;
222static bool range_sync_wait;
223static pthread_cond_t range_sync_cond;
224
225static void *ggate_recv_thread(void *arg);
226static void *local_send_thread(void *arg);
227static void *remote_send_thread(void *arg);
228static void *remote_recv_thread(void *arg);
229static void *ggate_send_thread(void *arg);
230static void *sync_thread(void *arg);
231static void *guard_thread(void *arg);
232
233static void sighandler(int sig);
234
235static void
236cleanup(struct hast_resource *res)
237{
238	int rerrno;
239
240	/* Remember errno. */
241	rerrno = errno;
242
243	/*
244	 * Close descriptor to /dev/hast/<name>
245	 * to work-around race in the kernel.
246	 */
247	close(res->hr_localfd);
248
249	/* Destroy ggate provider if we created one. */
250	if (res->hr_ggateunit >= 0) {
251		struct g_gate_ctl_destroy ggiod;
252
253		ggiod.gctl_version = G_GATE_VERSION;
254		ggiod.gctl_unit = res->hr_ggateunit;
255		ggiod.gctl_force = 1;
256		if (ioctl(res->hr_ggatefd, G_GATE_CMD_DESTROY, &ggiod) < 0) {
257			pjdlog_warning("Unable to destroy hast/%s device",
258			    res->hr_provname);
259		}
260		res->hr_ggateunit = -1;
261	}
262
263	/* Restore errno. */
264	errno = rerrno;
265}
266
267static void
268primary_exit(int exitcode, const char *fmt, ...)
269{
270	va_list ap;
271
272	assert(exitcode != EX_OK);
273	va_start(ap, fmt);
274	pjdlogv_errno(LOG_ERR, fmt, ap);
275	va_end(ap);
276	cleanup(gres);
277	exit(exitcode);
278}
279
280static void
281primary_exitx(int exitcode, const char *fmt, ...)
282{
283	va_list ap;
284
285	va_start(ap, fmt);
286	pjdlogv(exitcode == EX_OK ? LOG_INFO : LOG_ERR, fmt, ap);
287	va_end(ap);
288	cleanup(gres);
289	exit(exitcode);
290}
291
292static int
293hast_activemap_flush(struct hast_resource *res)
294{
295	const unsigned char *buf;
296	size_t size;
297
298	buf = activemap_bitmap(res->hr_amp, &size);
299	assert(buf != NULL);
300	assert((size % res->hr_local_sectorsize) == 0);
301	if (pwrite(res->hr_localfd, buf, size, METADATA_SIZE) !=
302	    (ssize_t)size) {
303		KEEP_ERRNO(pjdlog_errno(LOG_ERR,
304		    "Unable to flush activemap to disk"));
305		return (-1);
306	}
307	return (0);
308}
309
310static bool
311real_remote(const struct hast_resource *res)
312{
313
314	return (strcmp(res->hr_remoteaddr, "none") != 0);
315}
316
317static void
318init_environment(struct hast_resource *res __unused)
319{
320	struct hio *hio;
321	unsigned int ii, ncomps;
322
323	/*
324	 * In the future it might be per-resource value.
325	 */
326	ncomps = HAST_NCOMPONENTS;
327
328	/*
329	 * Allocate memory needed by lists.
330	 */
331	hio_send_list = malloc(sizeof(hio_send_list[0]) * ncomps);
332	if (hio_send_list == NULL) {
333		primary_exitx(EX_TEMPFAIL,
334		    "Unable to allocate %zu bytes of memory for send lists.",
335		    sizeof(hio_send_list[0]) * ncomps);
336	}
337	hio_send_list_lock = malloc(sizeof(hio_send_list_lock[0]) * ncomps);
338	if (hio_send_list_lock == NULL) {
339		primary_exitx(EX_TEMPFAIL,
340		    "Unable to allocate %zu bytes of memory for send list locks.",
341		    sizeof(hio_send_list_lock[0]) * ncomps);
342	}
343	hio_send_list_cond = malloc(sizeof(hio_send_list_cond[0]) * ncomps);
344	if (hio_send_list_cond == NULL) {
345		primary_exitx(EX_TEMPFAIL,
346		    "Unable to allocate %zu bytes of memory for send list condition variables.",
347		    sizeof(hio_send_list_cond[0]) * ncomps);
348	}
349	hio_recv_list = malloc(sizeof(hio_recv_list[0]) * ncomps);
350	if (hio_recv_list == NULL) {
351		primary_exitx(EX_TEMPFAIL,
352		    "Unable to allocate %zu bytes of memory for recv lists.",
353		    sizeof(hio_recv_list[0]) * ncomps);
354	}
355	hio_recv_list_lock = malloc(sizeof(hio_recv_list_lock[0]) * ncomps);
356	if (hio_recv_list_lock == NULL) {
357		primary_exitx(EX_TEMPFAIL,
358		    "Unable to allocate %zu bytes of memory for recv list locks.",
359		    sizeof(hio_recv_list_lock[0]) * ncomps);
360	}
361	hio_recv_list_cond = malloc(sizeof(hio_recv_list_cond[0]) * ncomps);
362	if (hio_recv_list_cond == NULL) {
363		primary_exitx(EX_TEMPFAIL,
364		    "Unable to allocate %zu bytes of memory for recv list condition variables.",
365		    sizeof(hio_recv_list_cond[0]) * ncomps);
366	}
367	hio_remote_lock = malloc(sizeof(hio_remote_lock[0]) * ncomps);
368	if (hio_remote_lock == NULL) {
369		primary_exitx(EX_TEMPFAIL,
370		    "Unable to allocate %zu bytes of memory for remote connections locks.",
371		    sizeof(hio_remote_lock[0]) * ncomps);
372	}
373
374	/*
375	 * Initialize lists, their locks and theirs condition variables.
376	 */
377	TAILQ_INIT(&hio_free_list);
378	mtx_init(&hio_free_list_lock);
379	cv_init(&hio_free_list_cond);
380	for (ii = 0; ii < HAST_NCOMPONENTS; ii++) {
381		TAILQ_INIT(&hio_send_list[ii]);
382		mtx_init(&hio_send_list_lock[ii]);
383		cv_init(&hio_send_list_cond[ii]);
384		TAILQ_INIT(&hio_recv_list[ii]);
385		mtx_init(&hio_recv_list_lock[ii]);
386		cv_init(&hio_recv_list_cond[ii]);
387		rw_init(&hio_remote_lock[ii]);
388	}
389	TAILQ_INIT(&hio_done_list);
390	mtx_init(&hio_done_list_lock);
391	cv_init(&hio_done_list_cond);
392	mtx_init(&hio_guard_lock);
393	cv_init(&hio_guard_cond);
394	mtx_init(&metadata_lock);
395
396	/*
397	 * Allocate requests pool and initialize requests.
398	 */
399	for (ii = 0; ii < HAST_HIO_MAX; ii++) {
400		hio = malloc(sizeof(*hio));
401		if (hio == NULL) {
402			primary_exitx(EX_TEMPFAIL,
403			    "Unable to allocate %zu bytes of memory for hio request.",
404			    sizeof(*hio));
405		}
406		hio->hio_countdown = 0;
407		hio->hio_errors = malloc(sizeof(hio->hio_errors[0]) * ncomps);
408		if (hio->hio_errors == NULL) {
409			primary_exitx(EX_TEMPFAIL,
410			    "Unable allocate %zu bytes of memory for hio errors.",
411			    sizeof(hio->hio_errors[0]) * ncomps);
412		}
413		hio->hio_next = malloc(sizeof(hio->hio_next[0]) * ncomps);
414		if (hio->hio_next == NULL) {
415			primary_exitx(EX_TEMPFAIL,
416			    "Unable allocate %zu bytes of memory for hio_next field.",
417			    sizeof(hio->hio_next[0]) * ncomps);
418		}
419		hio->hio_ggio.gctl_version = G_GATE_VERSION;
420		hio->hio_ggio.gctl_data = malloc(MAXPHYS);
421		if (hio->hio_ggio.gctl_data == NULL) {
422			primary_exitx(EX_TEMPFAIL,
423			    "Unable to allocate %zu bytes of memory for gctl_data.",
424			    MAXPHYS);
425		}
426		hio->hio_ggio.gctl_length = MAXPHYS;
427		hio->hio_ggio.gctl_error = 0;
428		TAILQ_INSERT_HEAD(&hio_free_list, hio, hio_free_next);
429	}
430
431	/*
432	 * Turn on signals handling.
433	 */
434	signal(SIGINT, sighandler);
435	signal(SIGTERM, sighandler);
436	signal(SIGHUP, sighandler);
437	signal(SIGCHLD, sighandler);
438}
439
440static void
441init_local(struct hast_resource *res)
442{
443	unsigned char *buf;
444	size_t mapsize;
445
446	if (metadata_read(res, true) < 0)
447		exit(EX_NOINPUT);
448	mtx_init(&res->hr_amp_lock);
449	if (activemap_init(&res->hr_amp, res->hr_datasize, res->hr_extentsize,
450	    res->hr_local_sectorsize, res->hr_keepdirty) < 0) {
451		primary_exit(EX_TEMPFAIL, "Unable to create activemap");
452	}
453	mtx_init(&range_lock);
454	cv_init(&range_regular_cond);
455	if (rangelock_init(&range_regular) < 0)
456		primary_exit(EX_TEMPFAIL, "Unable to create regular range lock");
457	cv_init(&range_sync_cond);
458	if (rangelock_init(&range_sync) < 0)
459		primary_exit(EX_TEMPFAIL, "Unable to create sync range lock");
460	mapsize = activemap_ondisk_size(res->hr_amp);
461	buf = calloc(1, mapsize);
462	if (buf == NULL) {
463		primary_exitx(EX_TEMPFAIL,
464		    "Unable to allocate buffer for activemap.");
465	}
466	if (pread(res->hr_localfd, buf, mapsize, METADATA_SIZE) !=
467	    (ssize_t)mapsize) {
468		primary_exit(EX_NOINPUT, "Unable to read activemap");
469	}
470	activemap_copyin(res->hr_amp, buf, mapsize);
471	free(buf);
472	if (res->hr_resuid != 0)
473		return;
474	/*
475	 * We're using provider for the first time, so we have to generate
476	 * resource unique identifier and initialize local and remote counts.
477	 */
478	arc4random_buf(&res->hr_resuid, sizeof(res->hr_resuid));
479	res->hr_primary_localcnt = 1;
480	res->hr_primary_remotecnt = 0;
481	if (metadata_write(res) < 0)
482		exit(EX_NOINPUT);
483}
484
485static bool
486init_remote(struct hast_resource *res, struct proto_conn **inp,
487    struct proto_conn **outp)
488{
489	struct proto_conn *in, *out;
490	struct nv *nvout, *nvin;
491	const unsigned char *token;
492	unsigned char *map;
493	const char *errmsg;
494	int32_t extentsize;
495	int64_t datasize;
496	uint32_t mapsize;
497	size_t size;
498
499	assert((inp == NULL && outp == NULL) || (inp != NULL && outp != NULL));
500	assert(real_remote(res));
501
502	in = out = NULL;
503
504	/* Prepare outgoing connection with remote node. */
505	if (proto_client(res->hr_remoteaddr, &out) < 0) {
506		primary_exit(EX_TEMPFAIL, "Unable to create connection to %s",
507		    res->hr_remoteaddr);
508	}
509	/* Try to connect, but accept failure. */
510	if (proto_connect(out) < 0) {
511		pjdlog_errno(LOG_WARNING, "Unable to connect to %s",
512		    res->hr_remoteaddr);
513		goto close;
514	}
515	/* Error in setting timeout is not critical, but why should it fail? */
516	if (proto_timeout(out, res->hr_timeout) < 0)
517		pjdlog_errno(LOG_WARNING, "Unable to set connection timeout");
518	/*
519	 * First handshake step.
520	 * Setup outgoing connection with remote node.
521	 */
522	nvout = nv_alloc();
523	nv_add_string(nvout, res->hr_name, "resource");
524	if (nv_error(nvout) != 0) {
525		pjdlog_common(LOG_WARNING, 0, nv_error(nvout),
526		    "Unable to allocate header for connection with %s",
527		    res->hr_remoteaddr);
528		nv_free(nvout);
529		goto close;
530	}
531	if (hast_proto_send(res, out, nvout, NULL, 0) < 0) {
532		pjdlog_errno(LOG_WARNING,
533		    "Unable to send handshake header to %s",
534		    res->hr_remoteaddr);
535		nv_free(nvout);
536		goto close;
537	}
538	nv_free(nvout);
539	if (hast_proto_recv_hdr(out, &nvin) < 0) {
540		pjdlog_errno(LOG_WARNING,
541		    "Unable to receive handshake header from %s",
542		    res->hr_remoteaddr);
543		goto close;
544	}
545	errmsg = nv_get_string(nvin, "errmsg");
546	if (errmsg != NULL) {
547		pjdlog_warning("%s", errmsg);
548		nv_free(nvin);
549		goto close;
550	}
551	token = nv_get_uint8_array(nvin, &size, "token");
552	if (token == NULL) {
553		pjdlog_warning("Handshake header from %s has no 'token' field.",
554		    res->hr_remoteaddr);
555		nv_free(nvin);
556		goto close;
557	}
558	if (size != sizeof(res->hr_token)) {
559		pjdlog_warning("Handshake header from %s contains 'token' of wrong size (got %zu, expected %zu).",
560		    res->hr_remoteaddr, size, sizeof(res->hr_token));
561		nv_free(nvin);
562		goto close;
563	}
564	bcopy(token, res->hr_token, sizeof(res->hr_token));
565	nv_free(nvin);
566
567	/*
568	 * Second handshake step.
569	 * Setup incoming connection with remote node.
570	 */
571	if (proto_client(res->hr_remoteaddr, &in) < 0) {
572		pjdlog_errno(LOG_WARNING, "Unable to create connection to %s",
573		    res->hr_remoteaddr);
574	}
575	/* Try to connect, but accept failure. */
576	if (proto_connect(in) < 0) {
577		pjdlog_errno(LOG_WARNING, "Unable to connect to %s",
578		    res->hr_remoteaddr);
579		goto close;
580	}
581	/* Error in setting timeout is not critical, but why should it fail? */
582	if (proto_timeout(in, res->hr_timeout) < 0)
583		pjdlog_errno(LOG_WARNING, "Unable to set connection timeout");
584	nvout = nv_alloc();
585	nv_add_string(nvout, res->hr_name, "resource");
586	nv_add_uint8_array(nvout, res->hr_token, sizeof(res->hr_token),
587	    "token");
588	nv_add_uint64(nvout, res->hr_resuid, "resuid");
589	nv_add_uint64(nvout, res->hr_primary_localcnt, "localcnt");
590	nv_add_uint64(nvout, res->hr_primary_remotecnt, "remotecnt");
591	if (nv_error(nvout) != 0) {
592		pjdlog_common(LOG_WARNING, 0, nv_error(nvout),
593		    "Unable to allocate header for connection with %s",
594		    res->hr_remoteaddr);
595		nv_free(nvout);
596		goto close;
597	}
598	if (hast_proto_send(res, in, nvout, NULL, 0) < 0) {
599		pjdlog_errno(LOG_WARNING,
600		    "Unable to send handshake header to %s",
601		    res->hr_remoteaddr);
602		nv_free(nvout);
603		goto close;
604	}
605	nv_free(nvout);
606	if (hast_proto_recv_hdr(out, &nvin) < 0) {
607		pjdlog_errno(LOG_WARNING,
608		    "Unable to receive handshake header from %s",
609		    res->hr_remoteaddr);
610		goto close;
611	}
612	errmsg = nv_get_string(nvin, "errmsg");
613	if (errmsg != NULL) {
614		pjdlog_warning("%s", errmsg);
615		nv_free(nvin);
616		goto close;
617	}
618	datasize = nv_get_int64(nvin, "datasize");
619	if (datasize != res->hr_datasize) {
620		pjdlog_warning("Data size differs between nodes (local=%jd, remote=%jd).",
621		    (intmax_t)res->hr_datasize, (intmax_t)datasize);
622		nv_free(nvin);
623		goto close;
624	}
625	extentsize = nv_get_int32(nvin, "extentsize");
626	if (extentsize != res->hr_extentsize) {
627		pjdlog_warning("Extent size differs between nodes (local=%zd, remote=%zd).",
628		    (ssize_t)res->hr_extentsize, (ssize_t)extentsize);
629		nv_free(nvin);
630		goto close;
631	}
632	res->hr_secondary_localcnt = nv_get_uint64(nvin, "localcnt");
633	res->hr_secondary_remotecnt = nv_get_uint64(nvin, "remotecnt");
634	res->hr_syncsrc = nv_get_uint8(nvin, "syncsrc");
635	map = NULL;
636	mapsize = nv_get_uint32(nvin, "mapsize");
637	if (mapsize > 0) {
638		map = malloc(mapsize);
639		if (map == NULL) {
640			pjdlog_error("Unable to allocate memory for remote activemap (mapsize=%ju).",
641			    (uintmax_t)mapsize);
642			nv_free(nvin);
643			goto close;
644		}
645		/*
646		 * Remote node have some dirty extents on its own, lets
647		 * download its activemap.
648		 */
649		if (hast_proto_recv_data(res, out, nvin, map,
650		    mapsize) < 0) {
651			pjdlog_errno(LOG_ERR,
652			    "Unable to receive remote activemap");
653			nv_free(nvin);
654			free(map);
655			goto close;
656		}
657		/*
658		 * Merge local and remote bitmaps.
659		 */
660		activemap_merge(res->hr_amp, map, mapsize);
661		free(map);
662		/*
663		 * Now that we merged bitmaps from both nodes, flush it to the
664		 * disk before we start to synchronize.
665		 */
666		(void)hast_activemap_flush(res);
667	}
668	pjdlog_info("Connected to %s.", res->hr_remoteaddr);
669	if (inp != NULL && outp != NULL) {
670		*inp = in;
671		*outp = out;
672	} else {
673		res->hr_remotein = in;
674		res->hr_remoteout = out;
675	}
676	return (true);
677close:
678	proto_close(out);
679	if (in != NULL)
680		proto_close(in);
681	return (false);
682}
683
684static void
685sync_start(void)
686{
687
688	mtx_lock(&sync_lock);
689	sync_inprogress = true;
690	mtx_unlock(&sync_lock);
691	cv_signal(&sync_cond);
692}
693
694static void
695sync_stop(void)
696{
697
698	mtx_lock(&sync_lock);
699	if (sync_inprogress)
700		sync_inprogress = false;
701	mtx_unlock(&sync_lock);
702}
703
704static void
705init_ggate(struct hast_resource *res)
706{
707	struct g_gate_ctl_create ggiocreate;
708	struct g_gate_ctl_cancel ggiocancel;
709
710	/*
711	 * We communicate with ggate via /dev/ggctl. Open it.
712	 */
713	res->hr_ggatefd = open("/dev/" G_GATE_CTL_NAME, O_RDWR);
714	if (res->hr_ggatefd < 0)
715		primary_exit(EX_OSFILE, "Unable to open /dev/" G_GATE_CTL_NAME);
716	/*
717	 * Create provider before trying to connect, as connection failure
718	 * is not critical, but may take some time.
719	 */
720	ggiocreate.gctl_version = G_GATE_VERSION;
721	ggiocreate.gctl_mediasize = res->hr_datasize;
722	ggiocreate.gctl_sectorsize = res->hr_local_sectorsize;
723	ggiocreate.gctl_flags = 0;
724	ggiocreate.gctl_maxcount = G_GATE_MAX_QUEUE_SIZE;
725	ggiocreate.gctl_timeout = 0;
726	ggiocreate.gctl_unit = G_GATE_NAME_GIVEN;
727	snprintf(ggiocreate.gctl_name, sizeof(ggiocreate.gctl_name), "hast/%s",
728	    res->hr_provname);
729	bzero(ggiocreate.gctl_info, sizeof(ggiocreate.gctl_info));
730	if (ioctl(res->hr_ggatefd, G_GATE_CMD_CREATE, &ggiocreate) == 0) {
731		pjdlog_info("Device hast/%s created.", res->hr_provname);
732		res->hr_ggateunit = ggiocreate.gctl_unit;
733		return;
734	}
735	if (errno != EEXIST) {
736		primary_exit(EX_OSERR, "Unable to create hast/%s device",
737		    res->hr_provname);
738	}
739	pjdlog_debug(1,
740	    "Device hast/%s already exists, we will try to take it over.",
741	    res->hr_provname);
742	/*
743	 * If we received EEXIST, we assume that the process who created the
744	 * provider died and didn't clean up. In that case we will start from
745	 * where he left of.
746	 */
747	ggiocancel.gctl_version = G_GATE_VERSION;
748	ggiocancel.gctl_unit = G_GATE_NAME_GIVEN;
749	snprintf(ggiocancel.gctl_name, sizeof(ggiocancel.gctl_name), "hast/%s",
750	    res->hr_provname);
751	if (ioctl(res->hr_ggatefd, G_GATE_CMD_CANCEL, &ggiocancel) == 0) {
752		pjdlog_info("Device hast/%s recovered.", res->hr_provname);
753		res->hr_ggateunit = ggiocancel.gctl_unit;
754		return;
755	}
756	primary_exit(EX_OSERR, "Unable to take over hast/%s device",
757	    res->hr_provname);
758}
759
760void
761hastd_primary(struct hast_resource *res)
762{
763	pthread_t td;
764	pid_t pid;
765	int error;
766
767	gres = res;
768
769	/*
770	 * Create communication channel between parent and child.
771	 */
772	if (proto_client("socketpair://", &res->hr_ctrl) < 0) {
773		KEEP_ERRNO((void)pidfile_remove(pfh));
774		primary_exit(EX_OSERR,
775		    "Unable to create control sockets between parent and child");
776	}
777
778	pid = fork();
779	if (pid < 0) {
780		KEEP_ERRNO((void)pidfile_remove(pfh));
781		primary_exit(EX_TEMPFAIL, "Unable to fork");
782	}
783
784	if (pid > 0) {
785		/* This is parent. */
786		res->hr_workerpid = pid;
787		return;
788	}
789	(void)pidfile_close(pfh);
790
791	setproctitle("%s (primary)", res->hr_name);
792
793	signal(SIGHUP, SIG_DFL);
794	signal(SIGCHLD, SIG_DFL);
795
796	hook_init();
797	init_local(res);
798	if (real_remote(res) && init_remote(res, NULL, NULL))
799		sync_start();
800	init_ggate(res);
801	init_environment(res);
802	error = pthread_create(&td, NULL, ggate_recv_thread, res);
803	assert(error == 0);
804	error = pthread_create(&td, NULL, local_send_thread, res);
805	assert(error == 0);
806	error = pthread_create(&td, NULL, remote_send_thread, res);
807	assert(error == 0);
808	error = pthread_create(&td, NULL, remote_recv_thread, res);
809	assert(error == 0);
810	error = pthread_create(&td, NULL, ggate_send_thread, res);
811	assert(error == 0);
812	error = pthread_create(&td, NULL, sync_thread, res);
813	assert(error == 0);
814	error = pthread_create(&td, NULL, ctrl_thread, res);
815	assert(error == 0);
816	(void)guard_thread(res);
817}
818
819static void
820reqlog(int loglevel, int debuglevel, struct g_gate_ctl_io *ggio, const char *fmt, ...)
821{
822	char msg[1024];
823	va_list ap;
824	int len;
825
826	va_start(ap, fmt);
827	len = vsnprintf(msg, sizeof(msg), fmt, ap);
828	va_end(ap);
829	if ((size_t)len < sizeof(msg)) {
830		switch (ggio->gctl_cmd) {
831		case BIO_READ:
832			(void)snprintf(msg + len, sizeof(msg) - len,
833			    "READ(%ju, %ju).", (uintmax_t)ggio->gctl_offset,
834			    (uintmax_t)ggio->gctl_length);
835			break;
836		case BIO_DELETE:
837			(void)snprintf(msg + len, sizeof(msg) - len,
838			    "DELETE(%ju, %ju).", (uintmax_t)ggio->gctl_offset,
839			    (uintmax_t)ggio->gctl_length);
840			break;
841		case BIO_FLUSH:
842			(void)snprintf(msg + len, sizeof(msg) - len, "FLUSH.");
843			break;
844		case BIO_WRITE:
845			(void)snprintf(msg + len, sizeof(msg) - len,
846			    "WRITE(%ju, %ju).", (uintmax_t)ggio->gctl_offset,
847			    (uintmax_t)ggio->gctl_length);
848			break;
849		default:
850			(void)snprintf(msg + len, sizeof(msg) - len,
851			    "UNKNOWN(%u).", (unsigned int)ggio->gctl_cmd);
852			break;
853		}
854	}
855	pjdlog_common(loglevel, debuglevel, -1, "%s", msg);
856}
857
858static void
859remote_close(struct hast_resource *res, int ncomp)
860{
861
862	rw_wlock(&hio_remote_lock[ncomp]);
863	/*
864	 * A race is possible between dropping rlock and acquiring wlock -
865	 * another thread can close connection in-between.
866	 */
867	if (!ISCONNECTED(res, ncomp)) {
868		assert(res->hr_remotein == NULL);
869		assert(res->hr_remoteout == NULL);
870		rw_unlock(&hio_remote_lock[ncomp]);
871		return;
872	}
873
874	assert(res->hr_remotein != NULL);
875	assert(res->hr_remoteout != NULL);
876
877	pjdlog_debug(2, "Closing incoming connection to %s.",
878	    res->hr_remoteaddr);
879	proto_close(res->hr_remotein);
880	res->hr_remotein = NULL;
881	pjdlog_debug(2, "Closing outgoing connection to %s.",
882	    res->hr_remoteaddr);
883	proto_close(res->hr_remoteout);
884	res->hr_remoteout = NULL;
885
886	rw_unlock(&hio_remote_lock[ncomp]);
887
888	pjdlog_warning("Disconnected from %s.", res->hr_remoteaddr);
889
890	/*
891	 * Stop synchronization if in-progress.
892	 */
893	sync_stop();
894
895	/*
896	 * Wake up guard thread (if we are not called from within guard thread),
897	 * so it can immediately start reconnect.
898	 */
899	if (!mtx_owned(&hio_guard_lock)) {
900		mtx_lock(&hio_guard_lock);
901		cv_signal(&hio_guard_cond);
902		mtx_unlock(&hio_guard_lock);
903	}
904}
905
906/*
907 * Thread receives ggate I/O requests from the kernel and passes them to
908 * appropriate threads:
909 * WRITE - always goes to both local_send and remote_send threads
910 * READ (when the block is up-to-date on local component) -
911 *	only local_send thread
912 * READ (when the block isn't up-to-date on local component) -
913 *	only remote_send thread
914 * DELETE - always goes to both local_send and remote_send threads
915 * FLUSH - always goes to both local_send and remote_send threads
916 */
917static void *
918ggate_recv_thread(void *arg)
919{
920	struct hast_resource *res = arg;
921	struct g_gate_ctl_io *ggio;
922	struct hio *hio;
923	unsigned int ii, ncomp, ncomps;
924	int error;
925
926	ncomps = HAST_NCOMPONENTS;
927
928	for (;;) {
929		pjdlog_debug(2, "ggate_recv: Taking free request.");
930		QUEUE_TAKE2(hio, free);
931		pjdlog_debug(2, "ggate_recv: (%p) Got free request.", hio);
932		ggio = &hio->hio_ggio;
933		ggio->gctl_unit = res->hr_ggateunit;
934		ggio->gctl_length = MAXPHYS;
935		ggio->gctl_error = 0;
936		pjdlog_debug(2,
937		    "ggate_recv: (%p) Waiting for request from the kernel.",
938		    hio);
939		if (ioctl(res->hr_ggatefd, G_GATE_CMD_START, ggio) < 0) {
940			if (sigexit_received)
941				pthread_exit(NULL);
942			primary_exit(EX_OSERR, "G_GATE_CMD_START failed");
943		}
944		error = ggio->gctl_error;
945		switch (error) {
946		case 0:
947			break;
948		case ECANCELED:
949			/* Exit gracefully. */
950			if (!sigexit_received) {
951				pjdlog_debug(2,
952				    "ggate_recv: (%p) Received cancel from the kernel.",
953				    hio);
954				pjdlog_info("Received cancel from the kernel, exiting.");
955			}
956			pthread_exit(NULL);
957		case ENOMEM:
958			/*
959			 * Buffer too small? Impossible, we allocate MAXPHYS
960			 * bytes - request can't be bigger than that.
961			 */
962			/* FALLTHROUGH */
963		case ENXIO:
964		default:
965			primary_exitx(EX_OSERR, "G_GATE_CMD_START failed: %s.",
966			    strerror(error));
967		}
968		for (ii = 0; ii < ncomps; ii++)
969			hio->hio_errors[ii] = EINVAL;
970		reqlog(LOG_DEBUG, 2, ggio,
971		    "ggate_recv: (%p) Request received from the kernel: ",
972		    hio);
973		/*
974		 * Inform all components about new write request.
975		 * For read request prefer local component unless the given
976		 * range is out-of-date, then use remote component.
977		 */
978		switch (ggio->gctl_cmd) {
979		case BIO_READ:
980			pjdlog_debug(2,
981			    "ggate_recv: (%p) Moving request to the send queue.",
982			    hio);
983			refcount_init(&hio->hio_countdown, 1);
984			mtx_lock(&metadata_lock);
985			if (res->hr_syncsrc == HAST_SYNCSRC_UNDEF ||
986			    res->hr_syncsrc == HAST_SYNCSRC_PRIMARY) {
987				/*
988				 * This range is up-to-date on local component,
989				 * so handle request locally.
990				 */
991				 /* Local component is 0 for now. */
992				ncomp = 0;
993			} else /* if (res->hr_syncsrc ==
994			    HAST_SYNCSRC_SECONDARY) */ {
995				assert(res->hr_syncsrc ==
996				    HAST_SYNCSRC_SECONDARY);
997				/*
998				 * This range is out-of-date on local component,
999				 * so send request to the remote node.
1000				 */
1001				 /* Remote component is 1 for now. */
1002				ncomp = 1;
1003			}
1004			mtx_unlock(&metadata_lock);
1005			QUEUE_INSERT1(hio, send, ncomp);
1006			break;
1007		case BIO_WRITE:
1008			for (;;) {
1009				mtx_lock(&range_lock);
1010				if (rangelock_islocked(range_sync,
1011				    ggio->gctl_offset, ggio->gctl_length)) {
1012					pjdlog_debug(2,
1013					    "regular: Range offset=%jd length=%zu locked.",
1014					    (intmax_t)ggio->gctl_offset,
1015					    (size_t)ggio->gctl_length);
1016					range_regular_wait = true;
1017					cv_wait(&range_regular_cond, &range_lock);
1018					range_regular_wait = false;
1019					mtx_unlock(&range_lock);
1020					continue;
1021				}
1022				if (rangelock_add(range_regular,
1023				    ggio->gctl_offset, ggio->gctl_length) < 0) {
1024					mtx_unlock(&range_lock);
1025					pjdlog_debug(2,
1026					    "regular: Range offset=%jd length=%zu is already locked, waiting.",
1027					    (intmax_t)ggio->gctl_offset,
1028					    (size_t)ggio->gctl_length);
1029					sleep(1);
1030					continue;
1031				}
1032				mtx_unlock(&range_lock);
1033				break;
1034			}
1035			mtx_lock(&res->hr_amp_lock);
1036			if (activemap_write_start(res->hr_amp,
1037			    ggio->gctl_offset, ggio->gctl_length)) {
1038				(void)hast_activemap_flush(res);
1039			}
1040			mtx_unlock(&res->hr_amp_lock);
1041			/* FALLTHROUGH */
1042		case BIO_DELETE:
1043		case BIO_FLUSH:
1044			pjdlog_debug(2,
1045			    "ggate_recv: (%p) Moving request to the send queues.",
1046			    hio);
1047			refcount_init(&hio->hio_countdown, ncomps);
1048			for (ii = 0; ii < ncomps; ii++)
1049				QUEUE_INSERT1(hio, send, ii);
1050			break;
1051		}
1052	}
1053	/* NOTREACHED */
1054	return (NULL);
1055}
1056
1057/*
1058 * Thread reads from or writes to local component.
1059 * If local read fails, it redirects it to remote_send thread.
1060 */
1061static void *
1062local_send_thread(void *arg)
1063{
1064	struct hast_resource *res = arg;
1065	struct g_gate_ctl_io *ggio;
1066	struct hio *hio;
1067	unsigned int ncomp, rncomp;
1068	ssize_t ret;
1069
1070	/* Local component is 0 for now. */
1071	ncomp = 0;
1072	/* Remote component is 1 for now. */
1073	rncomp = 1;
1074
1075	for (;;) {
1076		pjdlog_debug(2, "local_send: Taking request.");
1077		QUEUE_TAKE1(hio, send, ncomp);
1078		pjdlog_debug(2, "local_send: (%p) Got request.", hio);
1079		ggio = &hio->hio_ggio;
1080		switch (ggio->gctl_cmd) {
1081		case BIO_READ:
1082			ret = pread(res->hr_localfd, ggio->gctl_data,
1083			    ggio->gctl_length,
1084			    ggio->gctl_offset + res->hr_localoff);
1085			if (ret == ggio->gctl_length)
1086				hio->hio_errors[ncomp] = 0;
1087			else {
1088				/*
1089				 * If READ failed, try to read from remote node.
1090				 */
1091				QUEUE_INSERT1(hio, send, rncomp);
1092				continue;
1093			}
1094			break;
1095		case BIO_WRITE:
1096			ret = pwrite(res->hr_localfd, ggio->gctl_data,
1097			    ggio->gctl_length,
1098			    ggio->gctl_offset + res->hr_localoff);
1099			if (ret < 0)
1100				hio->hio_errors[ncomp] = errno;
1101			else if (ret != ggio->gctl_length)
1102				hio->hio_errors[ncomp] = EIO;
1103			else
1104				hio->hio_errors[ncomp] = 0;
1105			break;
1106		case BIO_DELETE:
1107			ret = g_delete(res->hr_localfd,
1108			    ggio->gctl_offset + res->hr_localoff,
1109			    ggio->gctl_length);
1110			if (ret < 0)
1111				hio->hio_errors[ncomp] = errno;
1112			else
1113				hio->hio_errors[ncomp] = 0;
1114			break;
1115		case BIO_FLUSH:
1116			ret = g_flush(res->hr_localfd);
1117			if (ret < 0)
1118				hio->hio_errors[ncomp] = errno;
1119			else
1120				hio->hio_errors[ncomp] = 0;
1121			break;
1122		}
1123		if (refcount_release(&hio->hio_countdown)) {
1124			if (ISSYNCREQ(hio)) {
1125				mtx_lock(&sync_lock);
1126				SYNCREQDONE(hio);
1127				mtx_unlock(&sync_lock);
1128				cv_signal(&sync_cond);
1129			} else {
1130				pjdlog_debug(2,
1131				    "local_send: (%p) Moving request to the done queue.",
1132				    hio);
1133				QUEUE_INSERT2(hio, done);
1134			}
1135		}
1136	}
1137	/* NOTREACHED */
1138	return (NULL);
1139}
1140
1141/*
1142 * Thread sends request to secondary node.
1143 */
1144static void *
1145remote_send_thread(void *arg)
1146{
1147	struct hast_resource *res = arg;
1148	struct g_gate_ctl_io *ggio;
1149	struct hio *hio;
1150	struct nv *nv;
1151	unsigned int ncomp;
1152	bool wakeup;
1153	uint64_t offset, length;
1154	uint8_t cmd;
1155	void *data;
1156
1157	/* Remote component is 1 for now. */
1158	ncomp = 1;
1159
1160	for (;;) {
1161		pjdlog_debug(2, "remote_send: Taking request.");
1162		QUEUE_TAKE1(hio, send, ncomp);
1163		pjdlog_debug(2, "remote_send: (%p) Got request.", hio);
1164		ggio = &hio->hio_ggio;
1165		switch (ggio->gctl_cmd) {
1166		case BIO_READ:
1167			cmd = HIO_READ;
1168			data = NULL;
1169			offset = ggio->gctl_offset;
1170			length = ggio->gctl_length;
1171			break;
1172		case BIO_WRITE:
1173			cmd = HIO_WRITE;
1174			data = ggio->gctl_data;
1175			offset = ggio->gctl_offset;
1176			length = ggio->gctl_length;
1177			break;
1178		case BIO_DELETE:
1179			cmd = HIO_DELETE;
1180			data = NULL;
1181			offset = ggio->gctl_offset;
1182			length = ggio->gctl_length;
1183			break;
1184		case BIO_FLUSH:
1185			cmd = HIO_FLUSH;
1186			data = NULL;
1187			offset = 0;
1188			length = 0;
1189			break;
1190		default:
1191			assert(!"invalid condition");
1192			abort();
1193		}
1194		nv = nv_alloc();
1195		nv_add_uint8(nv, cmd, "cmd");
1196		nv_add_uint64(nv, (uint64_t)ggio->gctl_seq, "seq");
1197		nv_add_uint64(nv, offset, "offset");
1198		nv_add_uint64(nv, length, "length");
1199		if (nv_error(nv) != 0) {
1200			hio->hio_errors[ncomp] = nv_error(nv);
1201			pjdlog_debug(2,
1202			    "remote_send: (%p) Unable to prepare header to send.",
1203			    hio);
1204			reqlog(LOG_ERR, 0, ggio,
1205			    "Unable to prepare header to send (%s): ",
1206			    strerror(nv_error(nv)));
1207			/* Move failed request immediately to the done queue. */
1208			goto done_queue;
1209		}
1210		pjdlog_debug(2,
1211		    "remote_send: (%p) Moving request to the recv queue.",
1212		    hio);
1213		/*
1214		 * Protect connection from disappearing.
1215		 */
1216		rw_rlock(&hio_remote_lock[ncomp]);
1217		if (!ISCONNECTED(res, ncomp)) {
1218			rw_unlock(&hio_remote_lock[ncomp]);
1219			hio->hio_errors[ncomp] = ENOTCONN;
1220			goto done_queue;
1221		}
1222		/*
1223		 * Move the request to recv queue before sending it, because
1224		 * in different order we can get reply before we move request
1225		 * to recv queue.
1226		 */
1227		mtx_lock(&hio_recv_list_lock[ncomp]);
1228		wakeup = TAILQ_EMPTY(&hio_recv_list[ncomp]);
1229		TAILQ_INSERT_TAIL(&hio_recv_list[ncomp], hio, hio_next[ncomp]);
1230		mtx_unlock(&hio_recv_list_lock[ncomp]);
1231		if (hast_proto_send(res, res->hr_remoteout, nv, data,
1232		    data != NULL ? length : 0) < 0) {
1233			hio->hio_errors[ncomp] = errno;
1234			rw_unlock(&hio_remote_lock[ncomp]);
1235			remote_close(res, ncomp);
1236			pjdlog_debug(2,
1237			    "remote_send: (%p) Unable to send request.", hio);
1238			reqlog(LOG_ERR, 0, ggio,
1239			    "Unable to send request (%s): ",
1240			    strerror(hio->hio_errors[ncomp]));
1241			/*
1242			 * Take request back from the receive queue and move
1243			 * it immediately to the done queue.
1244			 */
1245			mtx_lock(&hio_recv_list_lock[ncomp]);
1246			TAILQ_REMOVE(&hio_recv_list[ncomp], hio, hio_next[ncomp]);
1247			mtx_unlock(&hio_recv_list_lock[ncomp]);
1248			goto done_queue;
1249		}
1250		rw_unlock(&hio_remote_lock[ncomp]);
1251		nv_free(nv);
1252		if (wakeup)
1253			cv_signal(&hio_recv_list_cond[ncomp]);
1254		continue;
1255done_queue:
1256		nv_free(nv);
1257		if (ISSYNCREQ(hio)) {
1258			if (!refcount_release(&hio->hio_countdown))
1259				continue;
1260			mtx_lock(&sync_lock);
1261			SYNCREQDONE(hio);
1262			mtx_unlock(&sync_lock);
1263			cv_signal(&sync_cond);
1264			continue;
1265		}
1266		if (ggio->gctl_cmd == BIO_WRITE) {
1267			mtx_lock(&res->hr_amp_lock);
1268			if (activemap_need_sync(res->hr_amp, ggio->gctl_offset,
1269			    ggio->gctl_length)) {
1270				(void)hast_activemap_flush(res);
1271			}
1272			mtx_unlock(&res->hr_amp_lock);
1273		}
1274		if (!refcount_release(&hio->hio_countdown))
1275			continue;
1276		pjdlog_debug(2,
1277		    "remote_send: (%p) Moving request to the done queue.",
1278		    hio);
1279		QUEUE_INSERT2(hio, done);
1280	}
1281	/* NOTREACHED */
1282	return (NULL);
1283}
1284
1285/*
1286 * Thread receives answer from secondary node and passes it to ggate_send
1287 * thread.
1288 */
1289static void *
1290remote_recv_thread(void *arg)
1291{
1292	struct hast_resource *res = arg;
1293	struct g_gate_ctl_io *ggio;
1294	struct hio *hio;
1295	struct nv *nv;
1296	unsigned int ncomp;
1297	uint64_t seq;
1298	int error;
1299
1300	/* Remote component is 1 for now. */
1301	ncomp = 1;
1302
1303	for (;;) {
1304		/* Wait until there is anything to receive. */
1305		mtx_lock(&hio_recv_list_lock[ncomp]);
1306		while (TAILQ_EMPTY(&hio_recv_list[ncomp])) {
1307			pjdlog_debug(2, "remote_recv: No requests, waiting.");
1308			cv_wait(&hio_recv_list_cond[ncomp],
1309			    &hio_recv_list_lock[ncomp]);
1310		}
1311		mtx_unlock(&hio_recv_list_lock[ncomp]);
1312		rw_rlock(&hio_remote_lock[ncomp]);
1313		if (!ISCONNECTED(res, ncomp)) {
1314			rw_unlock(&hio_remote_lock[ncomp]);
1315			/*
1316			 * Connection is dead, so move all pending requests to
1317			 * the done queue (one-by-one).
1318			 */
1319			mtx_lock(&hio_recv_list_lock[ncomp]);
1320			hio = TAILQ_FIRST(&hio_recv_list[ncomp]);
1321			assert(hio != NULL);
1322			TAILQ_REMOVE(&hio_recv_list[ncomp], hio,
1323			    hio_next[ncomp]);
1324			mtx_unlock(&hio_recv_list_lock[ncomp]);
1325			goto done_queue;
1326		}
1327		if (hast_proto_recv_hdr(res->hr_remotein, &nv) < 0) {
1328			pjdlog_errno(LOG_ERR,
1329			    "Unable to receive reply header");
1330			rw_unlock(&hio_remote_lock[ncomp]);
1331			remote_close(res, ncomp);
1332			continue;
1333		}
1334		rw_unlock(&hio_remote_lock[ncomp]);
1335		seq = nv_get_uint64(nv, "seq");
1336		if (seq == 0) {
1337			pjdlog_error("Header contains no 'seq' field.");
1338			nv_free(nv);
1339			continue;
1340		}
1341		mtx_lock(&hio_recv_list_lock[ncomp]);
1342		TAILQ_FOREACH(hio, &hio_recv_list[ncomp], hio_next[ncomp]) {
1343			if (hio->hio_ggio.gctl_seq == seq) {
1344				TAILQ_REMOVE(&hio_recv_list[ncomp], hio,
1345				    hio_next[ncomp]);
1346				break;
1347			}
1348		}
1349		mtx_unlock(&hio_recv_list_lock[ncomp]);
1350		if (hio == NULL) {
1351			pjdlog_error("Found no request matching received 'seq' field (%ju).",
1352			    (uintmax_t)seq);
1353			nv_free(nv);
1354			continue;
1355		}
1356		error = nv_get_int16(nv, "error");
1357		if (error != 0) {
1358			/* Request failed on remote side. */
1359			hio->hio_errors[ncomp] = 0;
1360			nv_free(nv);
1361			goto done_queue;
1362		}
1363		ggio = &hio->hio_ggio;
1364		switch (ggio->gctl_cmd) {
1365		case BIO_READ:
1366			rw_rlock(&hio_remote_lock[ncomp]);
1367			if (!ISCONNECTED(res, ncomp)) {
1368				rw_unlock(&hio_remote_lock[ncomp]);
1369				nv_free(nv);
1370				goto done_queue;
1371			}
1372			if (hast_proto_recv_data(res, res->hr_remotein, nv,
1373			    ggio->gctl_data, ggio->gctl_length) < 0) {
1374				hio->hio_errors[ncomp] = errno;
1375				pjdlog_errno(LOG_ERR,
1376				    "Unable to receive reply data");
1377				rw_unlock(&hio_remote_lock[ncomp]);
1378				nv_free(nv);
1379				remote_close(res, ncomp);
1380				goto done_queue;
1381			}
1382			rw_unlock(&hio_remote_lock[ncomp]);
1383			break;
1384		case BIO_WRITE:
1385		case BIO_DELETE:
1386		case BIO_FLUSH:
1387			break;
1388		default:
1389			assert(!"invalid condition");
1390			abort();
1391		}
1392		hio->hio_errors[ncomp] = 0;
1393		nv_free(nv);
1394done_queue:
1395		if (refcount_release(&hio->hio_countdown)) {
1396			if (ISSYNCREQ(hio)) {
1397				mtx_lock(&sync_lock);
1398				SYNCREQDONE(hio);
1399				mtx_unlock(&sync_lock);
1400				cv_signal(&sync_cond);
1401			} else {
1402				pjdlog_debug(2,
1403				    "remote_recv: (%p) Moving request to the done queue.",
1404				    hio);
1405				QUEUE_INSERT2(hio, done);
1406			}
1407		}
1408	}
1409	/* NOTREACHED */
1410	return (NULL);
1411}
1412
1413/*
1414 * Thread sends answer to the kernel.
1415 */
1416static void *
1417ggate_send_thread(void *arg)
1418{
1419	struct hast_resource *res = arg;
1420	struct g_gate_ctl_io *ggio;
1421	struct hio *hio;
1422	unsigned int ii, ncomp, ncomps;
1423
1424	ncomps = HAST_NCOMPONENTS;
1425
1426	for (;;) {
1427		pjdlog_debug(2, "ggate_send: Taking request.");
1428		QUEUE_TAKE2(hio, done);
1429		pjdlog_debug(2, "ggate_send: (%p) Got request.", hio);
1430		ggio = &hio->hio_ggio;
1431		for (ii = 0; ii < ncomps; ii++) {
1432			if (hio->hio_errors[ii] == 0) {
1433				/*
1434				 * One successful request is enough to declare
1435				 * success.
1436				 */
1437				ggio->gctl_error = 0;
1438				break;
1439			}
1440		}
1441		if (ii == ncomps) {
1442			/*
1443			 * None of the requests were successful.
1444			 * Use first error.
1445			 */
1446			ggio->gctl_error = hio->hio_errors[0];
1447		}
1448		if (ggio->gctl_error == 0 && ggio->gctl_cmd == BIO_WRITE) {
1449			mtx_lock(&res->hr_amp_lock);
1450			activemap_write_complete(res->hr_amp,
1451			    ggio->gctl_offset, ggio->gctl_length);
1452			mtx_unlock(&res->hr_amp_lock);
1453		}
1454		if (ggio->gctl_cmd == BIO_WRITE) {
1455			/*
1456			 * Unlock range we locked.
1457			 */
1458			mtx_lock(&range_lock);
1459			rangelock_del(range_regular, ggio->gctl_offset,
1460			    ggio->gctl_length);
1461			if (range_sync_wait)
1462				cv_signal(&range_sync_cond);
1463			mtx_unlock(&range_lock);
1464			/*
1465			 * Bump local count if this is first write after
1466			 * connection failure with remote node.
1467			 */
1468			ncomp = 1;
1469			rw_rlock(&hio_remote_lock[ncomp]);
1470			if (!ISCONNECTED(res, ncomp)) {
1471				mtx_lock(&metadata_lock);
1472				if (res->hr_primary_localcnt ==
1473				    res->hr_secondary_remotecnt) {
1474					res->hr_primary_localcnt++;
1475					pjdlog_debug(1,
1476					    "Increasing localcnt to %ju.",
1477					    (uintmax_t)res->hr_primary_localcnt);
1478					(void)metadata_write(res);
1479				}
1480				mtx_unlock(&metadata_lock);
1481			}
1482			rw_unlock(&hio_remote_lock[ncomp]);
1483		}
1484		if (ioctl(res->hr_ggatefd, G_GATE_CMD_DONE, ggio) < 0)
1485			primary_exit(EX_OSERR, "G_GATE_CMD_DONE failed");
1486		pjdlog_debug(2,
1487		    "ggate_send: (%p) Moving request to the free queue.", hio);
1488		QUEUE_INSERT2(hio, free);
1489	}
1490	/* NOTREACHED */
1491	return (NULL);
1492}
1493
1494/*
1495 * Thread synchronize local and remote components.
1496 */
1497static void *
1498sync_thread(void *arg __unused)
1499{
1500	struct hast_resource *res = arg;
1501	struct hio *hio;
1502	struct g_gate_ctl_io *ggio;
1503	unsigned int ii, ncomp, ncomps;
1504	off_t offset, length, synced;
1505	bool dorewind;
1506	int syncext;
1507
1508	ncomps = HAST_NCOMPONENTS;
1509	dorewind = true;
1510	synced = -1;
1511
1512	for (;;) {
1513		mtx_lock(&sync_lock);
1514		if (synced == -1)
1515			synced = 0;
1516		else if (!sync_inprogress) {
1517			pjdlog_info("Synchronization interrupted. "
1518			    "%jd bytes synchronized so far.",
1519			    (intmax_t)synced);
1520		}
1521		while (!sync_inprogress) {
1522			dorewind = true;
1523			synced = 0;
1524			cv_wait(&sync_cond, &sync_lock);
1525		}
1526		mtx_unlock(&sync_lock);
1527		/*
1528		 * Obtain offset at which we should synchronize.
1529		 * Rewind synchronization if needed.
1530		 */
1531		mtx_lock(&res->hr_amp_lock);
1532		if (dorewind)
1533			activemap_sync_rewind(res->hr_amp);
1534		offset = activemap_sync_offset(res->hr_amp, &length, &syncext);
1535		if (syncext != -1) {
1536			/*
1537			 * We synchronized entire syncext extent, we can mark
1538			 * it as clean now.
1539			 */
1540			if (activemap_extent_complete(res->hr_amp, syncext))
1541				(void)hast_activemap_flush(res);
1542		}
1543		mtx_unlock(&res->hr_amp_lock);
1544		if (dorewind) {
1545			dorewind = false;
1546			if (offset < 0)
1547				pjdlog_info("Nodes are in sync.");
1548			else {
1549				pjdlog_info("Synchronization started. %ju bytes to go.",
1550				    (uintmax_t)(res->hr_extentsize *
1551				    activemap_ndirty(res->hr_amp)));
1552			}
1553		}
1554		if (offset < 0) {
1555			sync_stop();
1556			pjdlog_debug(1, "Nothing to synchronize.");
1557			/*
1558			 * Synchronization complete, make both localcnt and
1559			 * remotecnt equal.
1560			 */
1561			ncomp = 1;
1562			rw_rlock(&hio_remote_lock[ncomp]);
1563			if (ISCONNECTED(res, ncomp)) {
1564				if (synced > 0) {
1565					pjdlog_info("Synchronization complete. "
1566					    "%jd bytes synchronized.",
1567					    (intmax_t)synced);
1568				}
1569				mtx_lock(&metadata_lock);
1570				res->hr_syncsrc = HAST_SYNCSRC_UNDEF;
1571				res->hr_primary_localcnt =
1572				    res->hr_secondary_localcnt;
1573				res->hr_primary_remotecnt =
1574				    res->hr_secondary_remotecnt;
1575				pjdlog_debug(1,
1576				    "Setting localcnt to %ju and remotecnt to %ju.",
1577				    (uintmax_t)res->hr_primary_localcnt,
1578				    (uintmax_t)res->hr_secondary_localcnt);
1579				(void)metadata_write(res);
1580				mtx_unlock(&metadata_lock);
1581			}
1582			rw_unlock(&hio_remote_lock[ncomp]);
1583			continue;
1584		}
1585		pjdlog_debug(2, "sync: Taking free request.");
1586		QUEUE_TAKE2(hio, free);
1587		pjdlog_debug(2, "sync: (%p) Got free request.", hio);
1588		/*
1589		 * Lock the range we are going to synchronize. We don't want
1590		 * race where someone writes between our read and write.
1591		 */
1592		for (;;) {
1593			mtx_lock(&range_lock);
1594			if (rangelock_islocked(range_regular, offset, length)) {
1595				pjdlog_debug(2,
1596				    "sync: Range offset=%jd length=%jd locked.",
1597				    (intmax_t)offset, (intmax_t)length);
1598				range_sync_wait = true;
1599				cv_wait(&range_sync_cond, &range_lock);
1600				range_sync_wait = false;
1601				mtx_unlock(&range_lock);
1602				continue;
1603			}
1604			if (rangelock_add(range_sync, offset, length) < 0) {
1605				mtx_unlock(&range_lock);
1606				pjdlog_debug(2,
1607				    "sync: Range offset=%jd length=%jd is already locked, waiting.",
1608				    (intmax_t)offset, (intmax_t)length);
1609				sleep(1);
1610				continue;
1611			}
1612			mtx_unlock(&range_lock);
1613			break;
1614		}
1615		/*
1616		 * First read the data from synchronization source.
1617		 */
1618		SYNCREQ(hio);
1619		ggio = &hio->hio_ggio;
1620		ggio->gctl_cmd = BIO_READ;
1621		ggio->gctl_offset = offset;
1622		ggio->gctl_length = length;
1623		ggio->gctl_error = 0;
1624		for (ii = 0; ii < ncomps; ii++)
1625			hio->hio_errors[ii] = EINVAL;
1626		reqlog(LOG_DEBUG, 2, ggio, "sync: (%p) Sending sync request: ",
1627		    hio);
1628		pjdlog_debug(2, "sync: (%p) Moving request to the send queue.",
1629		    hio);
1630		mtx_lock(&metadata_lock);
1631		if (res->hr_syncsrc == HAST_SYNCSRC_PRIMARY) {
1632			/*
1633			 * This range is up-to-date on local component,
1634			 * so handle request locally.
1635			 */
1636			 /* Local component is 0 for now. */
1637			ncomp = 0;
1638		} else /* if (res->hr_syncsrc == HAST_SYNCSRC_SECONDARY) */ {
1639			assert(res->hr_syncsrc == HAST_SYNCSRC_SECONDARY);
1640			/*
1641			 * This range is out-of-date on local component,
1642			 * so send request to the remote node.
1643			 */
1644			 /* Remote component is 1 for now. */
1645			ncomp = 1;
1646		}
1647		mtx_unlock(&metadata_lock);
1648		refcount_init(&hio->hio_countdown, 1);
1649		QUEUE_INSERT1(hio, send, ncomp);
1650
1651		/*
1652		 * Let's wait for READ to finish.
1653		 */
1654		mtx_lock(&sync_lock);
1655		while (!ISSYNCREQDONE(hio))
1656			cv_wait(&sync_cond, &sync_lock);
1657		mtx_unlock(&sync_lock);
1658
1659		if (hio->hio_errors[ncomp] != 0) {
1660			pjdlog_error("Unable to read synchronization data: %s.",
1661			    strerror(hio->hio_errors[ncomp]));
1662			goto free_queue;
1663		}
1664
1665		/*
1666		 * We read the data from synchronization source, now write it
1667		 * to synchronization target.
1668		 */
1669		SYNCREQ(hio);
1670		ggio->gctl_cmd = BIO_WRITE;
1671		for (ii = 0; ii < ncomps; ii++)
1672			hio->hio_errors[ii] = EINVAL;
1673		reqlog(LOG_DEBUG, 2, ggio, "sync: (%p) Sending sync request: ",
1674		    hio);
1675		pjdlog_debug(2, "sync: (%p) Moving request to the send queue.",
1676		    hio);
1677		mtx_lock(&metadata_lock);
1678		if (res->hr_syncsrc == HAST_SYNCSRC_PRIMARY) {
1679			/*
1680			 * This range is up-to-date on local component,
1681			 * so we update remote component.
1682			 */
1683			 /* Remote component is 1 for now. */
1684			ncomp = 1;
1685		} else /* if (res->hr_syncsrc == HAST_SYNCSRC_SECONDARY) */ {
1686			assert(res->hr_syncsrc == HAST_SYNCSRC_SECONDARY);
1687			/*
1688			 * This range is out-of-date on local component,
1689			 * so we update it.
1690			 */
1691			 /* Local component is 0 for now. */
1692			ncomp = 0;
1693		}
1694		mtx_unlock(&metadata_lock);
1695
1696		pjdlog_debug(2, "sync: (%p) Moving request to the send queues.",
1697		    hio);
1698		refcount_init(&hio->hio_countdown, 1);
1699		QUEUE_INSERT1(hio, send, ncomp);
1700
1701		/*
1702		 * Let's wait for WRITE to finish.
1703		 */
1704		mtx_lock(&sync_lock);
1705		while (!ISSYNCREQDONE(hio))
1706			cv_wait(&sync_cond, &sync_lock);
1707		mtx_unlock(&sync_lock);
1708
1709		if (hio->hio_errors[ncomp] != 0) {
1710			pjdlog_error("Unable to write synchronization data: %s.",
1711			    strerror(hio->hio_errors[ncomp]));
1712			goto free_queue;
1713		}
1714
1715		synced += length;
1716free_queue:
1717		mtx_lock(&range_lock);
1718		rangelock_del(range_sync, offset, length);
1719		if (range_regular_wait)
1720			cv_signal(&range_regular_cond);
1721		mtx_unlock(&range_lock);
1722		pjdlog_debug(2, "sync: (%p) Moving request to the free queue.",
1723		    hio);
1724		QUEUE_INSERT2(hio, free);
1725	}
1726	/* NOTREACHED */
1727	return (NULL);
1728}
1729
1730static void
1731sighandler(int sig)
1732{
1733	bool unlock;
1734
1735	switch (sig) {
1736	case SIGINT:
1737	case SIGTERM:
1738		sigexit_received = true;
1739		break;
1740	case SIGHUP:
1741		sighup_received = true;
1742		break;
1743	case SIGCHLD:
1744		sigchld_received = true;
1745		break;
1746	default:
1747		assert(!"invalid condition");
1748	}
1749	/*
1750	 * Racy, but if we cannot obtain hio_guard_lock here, we don't
1751	 * want to risk deadlock.
1752	 */
1753	unlock = mtx_trylock(&hio_guard_lock);
1754	cv_signal(&hio_guard_cond);
1755	if (unlock)
1756		mtx_unlock(&hio_guard_lock);
1757}
1758
1759static void
1760config_reload(void)
1761{
1762	struct hastd_config *newcfg;
1763	struct hast_resource *res;
1764	unsigned int ii, ncomps;
1765	int modified;
1766
1767	pjdlog_info("Reloading configuration...");
1768
1769	ncomps = HAST_NCOMPONENTS;
1770
1771	newcfg = yy_config_parse(cfgpath, false);
1772	if (newcfg == NULL)
1773		goto failed;
1774
1775	TAILQ_FOREACH(res, &newcfg->hc_resources, hr_next) {
1776		if (strcmp(res->hr_name, gres->hr_name) == 0)
1777			break;
1778	}
1779	/*
1780	 * If resource was removed from the configuration file, resource
1781	 * name, provider name or path to local component was modified we
1782	 * shouldn't be here. This means that someone modified configuration
1783	 * file and send SIGHUP to us instead of main hastd process.
1784	 * Log advice and ignore the signal.
1785	 */
1786	if (res == NULL || strcmp(gres->hr_name, res->hr_name) != 0 ||
1787	    strcmp(gres->hr_provname, res->hr_provname) != 0 ||
1788	    strcmp(gres->hr_localpath, res->hr_localpath) != 0) {
1789		pjdlog_warning("To reload configuration send SIGHUP to the main hastd process (pid %u).",
1790		    (unsigned int)getppid());
1791		goto failed;
1792	}
1793
1794#define MODIFIED_REMOTEADDR	0x1
1795#define MODIFIED_REPLICATION	0x2
1796#define MODIFIED_TIMEOUT	0x4
1797#define MODIFIED_EXEC		0x8
1798	modified = 0;
1799	if (strcmp(gres->hr_remoteaddr, res->hr_remoteaddr) != 0) {
1800		/*
1801		 * Don't copy res->hr_remoteaddr to gres just yet.
1802		 * We want remote_close() to log disconnect from the old
1803		 * addresses, not from the new ones.
1804		 */
1805		modified |= MODIFIED_REMOTEADDR;
1806	}
1807	if (gres->hr_replication != res->hr_replication) {
1808		gres->hr_replication = res->hr_replication;
1809		modified |= MODIFIED_REPLICATION;
1810	}
1811	if (gres->hr_timeout != res->hr_timeout) {
1812		gres->hr_timeout = res->hr_timeout;
1813		modified |= MODIFIED_TIMEOUT;
1814	}
1815	if (strcmp(gres->hr_exec, res->hr_exec) != 0) {
1816		strlcpy(gres->hr_exec, res->hr_exec, sizeof(gres->hr_exec));
1817		modified |= MODIFIED_EXEC;
1818	}
1819	/*
1820	 * If only timeout was modified we only need to change it without
1821	 * reconnecting.
1822	 */
1823	if (modified == MODIFIED_TIMEOUT) {
1824		for (ii = 0; ii < ncomps; ii++) {
1825			if (!ISREMOTE(ii))
1826				continue;
1827			rw_rlock(&hio_remote_lock[ii]);
1828			if (!ISCONNECTED(gres, ii)) {
1829				rw_unlock(&hio_remote_lock[ii]);
1830				continue;
1831			}
1832			rw_unlock(&hio_remote_lock[ii]);
1833			if (proto_timeout(gres->hr_remotein,
1834			    gres->hr_timeout) < 0) {
1835				pjdlog_errno(LOG_WARNING,
1836				    "Unable to set connection timeout");
1837			}
1838			if (proto_timeout(gres->hr_remoteout,
1839			    gres->hr_timeout) < 0) {
1840				pjdlog_errno(LOG_WARNING,
1841				    "Unable to set connection timeout");
1842			}
1843		}
1844	} else if ((modified &
1845	    (MODIFIED_REMOTEADDR | MODIFIED_REPLICATION)) != 0) {
1846		for (ii = 0; ii < ncomps; ii++) {
1847			if (!ISREMOTE(ii))
1848				continue;
1849			remote_close(gres, ii);
1850		}
1851		if (modified & MODIFIED_REMOTEADDR) {
1852			strlcpy(gres->hr_remoteaddr, res->hr_remoteaddr,
1853			    sizeof(gres->hr_remoteaddr));
1854		}
1855	}
1856#undef	MODIFIED_REMOTEADDR
1857#undef	MODIFIED_REPLICATION
1858#undef	MODIFIED_TIMEOUT
1859#undef	MODIFIED_EXEC
1860
1861	pjdlog_info("Configuration reloaded successfully.");
1862	return;
1863failed:
1864	if (newcfg != NULL) {
1865		if (newcfg->hc_controlconn != NULL)
1866			proto_close(newcfg->hc_controlconn);
1867		if (newcfg->hc_listenconn != NULL)
1868			proto_close(newcfg->hc_listenconn);
1869		yy_config_free(newcfg);
1870	}
1871	pjdlog_warning("Configuration not reloaded.");
1872}
1873
1874static void
1875keepalive_send(struct hast_resource *res, unsigned int ncomp)
1876{
1877	struct nv *nv;
1878
1879	nv = nv_alloc();
1880	nv_add_uint8(nv, HIO_KEEPALIVE, "cmd");
1881	if (nv_error(nv) != 0) {
1882		nv_free(nv);
1883		pjdlog_debug(1,
1884		    "keepalive_send: Unable to prepare header to send.");
1885		return;
1886	}
1887	if (hast_proto_send(res, res->hr_remoteout, nv, NULL, 0) < 0) {
1888		pjdlog_common(LOG_DEBUG, 1, errno,
1889		    "keepalive_send: Unable to send request");
1890		nv_free(nv);
1891		rw_unlock(&hio_remote_lock[ncomp]);
1892		remote_close(res, ncomp);
1893		rw_rlock(&hio_remote_lock[ncomp]);
1894		return;
1895	}
1896	nv_free(nv);
1897	pjdlog_debug(2, "keepalive_send: Request sent.");
1898}
1899
1900/*
1901 * Thread guards remote connections and reconnects when needed, handles
1902 * signals, etc.
1903 */
1904static void *
1905guard_thread(void *arg)
1906{
1907	struct hast_resource *res = arg;
1908	struct proto_conn *in, *out;
1909	unsigned int ii, ncomps;
1910	int timeout;
1911
1912	ncomps = HAST_NCOMPONENTS;
1913
1914	for (;;) {
1915		if (sigexit_received) {
1916			primary_exitx(EX_OK,
1917			    "Termination signal received, exiting.");
1918		}
1919		if (sighup_received) {
1920			sighup_received = false;
1921			config_reload();
1922		}
1923		hook_check(sigchld_received);
1924		if (sigchld_received)
1925			sigchld_received = false;
1926
1927		timeout = KEEPALIVE_SLEEP;
1928		pjdlog_debug(2, "remote_guard: Checking connections.");
1929		mtx_lock(&hio_guard_lock);
1930		for (ii = 0; ii < ncomps; ii++) {
1931			if (!ISREMOTE(ii))
1932				continue;
1933			rw_rlock(&hio_remote_lock[ii]);
1934			if (ISCONNECTED(res, ii)) {
1935				assert(res->hr_remotein != NULL);
1936				assert(res->hr_remoteout != NULL);
1937				keepalive_send(res, ii);
1938			}
1939			if (ISCONNECTED(res, ii)) {
1940				assert(res->hr_remotein != NULL);
1941				assert(res->hr_remoteout != NULL);
1942				rw_unlock(&hio_remote_lock[ii]);
1943				pjdlog_debug(2,
1944				    "remote_guard: Connection to %s is ok.",
1945				    res->hr_remoteaddr);
1946			} else if (real_remote(res)) {
1947				assert(res->hr_remotein == NULL);
1948				assert(res->hr_remoteout == NULL);
1949				/*
1950				 * Upgrade the lock. It doesn't have to be
1951				 * atomic as no other thread can change
1952				 * connection status from disconnected to
1953				 * connected.
1954				 */
1955				rw_unlock(&hio_remote_lock[ii]);
1956				pjdlog_debug(2,
1957				    "remote_guard: Reconnecting to %s.",
1958				    res->hr_remoteaddr);
1959				in = out = NULL;
1960				if (init_remote(res, &in, &out)) {
1961					rw_wlock(&hio_remote_lock[ii]);
1962					assert(res->hr_remotein == NULL);
1963					assert(res->hr_remoteout == NULL);
1964					assert(in != NULL && out != NULL);
1965					res->hr_remotein = in;
1966					res->hr_remoteout = out;
1967					rw_unlock(&hio_remote_lock[ii]);
1968					pjdlog_info("Successfully reconnected to %s.",
1969					    res->hr_remoteaddr);
1970					sync_start();
1971				} else {
1972					/* Both connections should be NULL. */
1973					assert(res->hr_remotein == NULL);
1974					assert(res->hr_remoteout == NULL);
1975					assert(in == NULL && out == NULL);
1976					pjdlog_debug(2,
1977					    "remote_guard: Reconnect to %s failed.",
1978					    res->hr_remoteaddr);
1979					timeout = RECONNECT_SLEEP;
1980				}
1981			} else {
1982				rw_unlock(&hio_remote_lock[ii]);
1983			}
1984		}
1985		(void)cv_timedwait(&hio_guard_cond, &hio_guard_lock, timeout);
1986		mtx_unlock(&hio_guard_lock);
1987	}
1988	/* NOTREACHED */
1989	return (NULL);
1990}
1991