9cc0350130915feda11e375a32e95e5efcbb2c94
[deliverable/lttng-tools.git] / src / bin / lttng-sessiond / consumer.c
1 /*
2 * Copyright (C) 2012 - David Goulet <dgoulet@efficios.com>
3 *
4 * This program is free software; you can redistribute it and/or modify it
5 * under the terms of the GNU General Public License, version 2 only, as
6 * published by the Free Software Foundation.
7 *
8 * This program is distributed in the hope that it will be useful, but WITHOUT
9 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
10 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
11 * more details.
12 *
13 * You should have received a copy of the GNU General Public License along with
14 * this program; if not, write to the Free Software Foundation, Inc., 51
15 * Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
16 */
17
18 #define _LGPL_SOURCE
19 #include <assert.h>
20 #include <stdio.h>
21 #include <stdlib.h>
22 #include <string.h>
23 #include <sys/stat.h>
24 #include <sys/types.h>
25 #include <unistd.h>
26 #include <inttypes.h>
27
28 #include <common/common.h>
29 #include <common/defaults.h>
30 #include <common/uri.h>
31 #include <common/relayd/relayd.h>
32
33 #include "consumer.h"
34 #include "health-sessiond.h"
35 #include "ust-app.h"
36 #include "utils.h"
37
38 /*
39 * Send a data payload using a given consumer socket of size len.
40 *
41 * The consumer socket lock MUST be acquired before calling this since this
42 * function can change the fd value.
43 *
44 * Return 0 on success else a negative value on error.
45 */
46 int consumer_socket_send(struct consumer_socket *socket, void *msg, size_t len)
47 {
48 int fd;
49 ssize_t size;
50
51 assert(socket);
52 assert(socket->fd_ptr);
53 assert(msg);
54
55 /* Consumer socket is invalid. Stopping. */
56 fd = *socket->fd_ptr;
57 if (fd < 0) {
58 goto error;
59 }
60
61 size = lttcomm_send_unix_sock(fd, msg, len);
62 if (size < 0) {
63 /* The above call will print a PERROR on error. */
64 DBG("Error when sending data to consumer on sock %d", fd);
65 /*
66 * At this point, the socket is not usable anymore thus closing it and
67 * setting the file descriptor to -1 so it is not reused.
68 */
69
70 /* This call will PERROR on error. */
71 (void) lttcomm_close_unix_sock(fd);
72 *socket->fd_ptr = -1;
73 goto error;
74 }
75
76 return 0;
77
78 error:
79 return -1;
80 }
81
82 /*
83 * Receive a data payload using a given consumer socket of size len.
84 *
85 * The consumer socket lock MUST be acquired before calling this since this
86 * function can change the fd value.
87 *
88 * Return 0 on success else a negative value on error.
89 */
90 int consumer_socket_recv(struct consumer_socket *socket, void *msg, size_t len)
91 {
92 int fd;
93 ssize_t size;
94
95 assert(socket);
96 assert(socket->fd_ptr);
97 assert(msg);
98
99 /* Consumer socket is invalid. Stopping. */
100 fd = *socket->fd_ptr;
101 if (fd < 0) {
102 goto error;
103 }
104
105 size = lttcomm_recv_unix_sock(fd, msg, len);
106 if (size <= 0) {
107 /* The above call will print a PERROR on error. */
108 DBG("Error when receiving data from the consumer socket %d", fd);
109 /*
110 * At this point, the socket is not usable anymore thus closing it and
111 * setting the file descriptor to -1 so it is not reused.
112 */
113
114 /* This call will PERROR on error. */
115 (void) lttcomm_close_unix_sock(fd);
116 *socket->fd_ptr = -1;
117 goto error;
118 }
119
120 return 0;
121
122 error:
123 return -1;
124 }
125
126 /*
127 * Receive a reply command status message from the consumer. Consumer socket
128 * lock MUST be acquired before calling this function.
129 *
130 * Return 0 on success, -1 on recv error or a negative lttng error code which
131 * was possibly returned by the consumer.
132 */
133 int consumer_recv_status_reply(struct consumer_socket *sock)
134 {
135 int ret;
136 struct lttcomm_consumer_status_msg reply;
137
138 assert(sock);
139
140 ret = consumer_socket_recv(sock, &reply, sizeof(reply));
141 if (ret < 0) {
142 goto end;
143 }
144
145 if (reply.ret_code == LTTCOMM_CONSUMERD_SUCCESS) {
146 /* All good. */
147 ret = 0;
148 } else {
149 ret = -reply.ret_code;
150 DBG("Consumer ret code %d", ret);
151 }
152
153 end:
154 return ret;
155 }
156
157 /*
158 * Once the ASK_CHANNEL command is sent to the consumer, the channel
159 * information are sent back. This call receives that data and populates key
160 * and stream_count.
161 *
162 * On success return 0 and both key and stream_count are set. On error, a
163 * negative value is sent back and both parameters are untouched.
164 */
165 int consumer_recv_status_channel(struct consumer_socket *sock,
166 uint64_t *key, unsigned int *stream_count)
167 {
168 int ret;
169 struct lttcomm_consumer_status_channel reply;
170
171 assert(sock);
172 assert(stream_count);
173 assert(key);
174
175 ret = consumer_socket_recv(sock, &reply, sizeof(reply));
176 if (ret < 0) {
177 goto end;
178 }
179
180 /* An error is possible so don't touch the key and stream_count. */
181 if (reply.ret_code != LTTCOMM_CONSUMERD_SUCCESS) {
182 ret = -1;
183 goto end;
184 }
185
186 *key = reply.key;
187 *stream_count = reply.stream_count;
188 ret = 0;
189
190 end:
191 return ret;
192 }
193
194 /*
195 * Send destroy relayd command to consumer.
196 *
197 * On success return positive value. On error, negative value.
198 */
199 int consumer_send_destroy_relayd(struct consumer_socket *sock,
200 struct consumer_output *consumer)
201 {
202 int ret;
203 struct lttcomm_consumer_msg msg;
204
205 assert(consumer);
206 assert(sock);
207
208 DBG2("Sending destroy relayd command to consumer sock %d", *sock->fd_ptr);
209
210 memset(&msg, 0, sizeof(msg));
211 msg.cmd_type = LTTNG_CONSUMER_DESTROY_RELAYD;
212 msg.u.destroy_relayd.net_seq_idx = consumer->net_seq_index;
213
214 pthread_mutex_lock(sock->lock);
215 ret = consumer_socket_send(sock, &msg, sizeof(msg));
216 if (ret < 0) {
217 goto error;
218 }
219
220 /* Don't check the return value. The caller will do it. */
221 ret = consumer_recv_status_reply(sock);
222
223 DBG2("Consumer send destroy relayd command done");
224
225 error:
226 pthread_mutex_unlock(sock->lock);
227 return ret;
228 }
229
230 /*
231 * For each consumer socket in the consumer output object, send a destroy
232 * relayd command.
233 */
234 void consumer_output_send_destroy_relayd(struct consumer_output *consumer)
235 {
236 struct lttng_ht_iter iter;
237 struct consumer_socket *socket;
238
239 assert(consumer);
240
241 /* Destroy any relayd connection */
242 if (consumer->type == CONSUMER_DST_NET) {
243 rcu_read_lock();
244 cds_lfht_for_each_entry(consumer->socks->ht, &iter.iter, socket,
245 node.node) {
246 int ret;
247
248 /* Send destroy relayd command */
249 ret = consumer_send_destroy_relayd(socket, consumer);
250 if (ret < 0) {
251 DBG("Unable to send destroy relayd command to consumer");
252 /* Continue since we MUST delete everything at this point. */
253 }
254 }
255 rcu_read_unlock();
256 }
257 }
258
259 /*
260 * From a consumer_data structure, allocate and add a consumer socket to the
261 * consumer output.
262 *
263 * Return 0 on success, else negative value on error
264 */
265 int consumer_create_socket(struct consumer_data *data,
266 struct consumer_output *output)
267 {
268 int ret = 0;
269 struct consumer_socket *socket;
270
271 assert(data);
272
273 if (output == NULL || data->cmd_sock < 0) {
274 /*
275 * Not an error. Possible there is simply not spawned consumer or it's
276 * disabled for the tracing session asking the socket.
277 */
278 goto error;
279 }
280
281 rcu_read_lock();
282 socket = consumer_find_socket(data->cmd_sock, output);
283 rcu_read_unlock();
284 if (socket == NULL) {
285 socket = consumer_allocate_socket(&data->cmd_sock);
286 if (socket == NULL) {
287 ret = -1;
288 goto error;
289 }
290
291 socket->registered = 0;
292 socket->lock = &data->lock;
293 rcu_read_lock();
294 consumer_add_socket(socket, output);
295 rcu_read_unlock();
296 }
297
298 socket->type = data->type;
299
300 DBG3("Consumer socket created (fd: %d) and added to output",
301 data->cmd_sock);
302
303 error:
304 return ret;
305 }
306
307 /*
308 * Return the consumer socket from the given consumer output with the right
309 * bitness. On error, returns NULL.
310 *
311 * The caller MUST acquire a rcu read side lock and keep it until the socket
312 * object reference is not needed anymore.
313 */
314 struct consumer_socket *consumer_find_socket_by_bitness(int bits,
315 struct consumer_output *consumer)
316 {
317 int consumer_fd;
318 struct consumer_socket *socket = NULL;
319
320 switch (bits) {
321 case 64:
322 consumer_fd = uatomic_read(&ust_consumerd64_fd);
323 break;
324 case 32:
325 consumer_fd = uatomic_read(&ust_consumerd32_fd);
326 break;
327 default:
328 assert(0);
329 goto end;
330 }
331
332 socket = consumer_find_socket(consumer_fd, consumer);
333 if (!socket) {
334 ERR("Consumer socket fd %d not found in consumer obj %p",
335 consumer_fd, consumer);
336 }
337
338 end:
339 return socket;
340 }
341
342 /*
343 * Find a consumer_socket in a consumer_output hashtable. Read side lock must
344 * be acquired before calling this function and across use of the
345 * returned consumer_socket.
346 */
347 struct consumer_socket *consumer_find_socket(int key,
348 struct consumer_output *consumer)
349 {
350 struct lttng_ht_iter iter;
351 struct lttng_ht_node_ulong *node;
352 struct consumer_socket *socket = NULL;
353
354 /* Negative keys are lookup failures */
355 if (key < 0 || consumer == NULL) {
356 return NULL;
357 }
358
359 lttng_ht_lookup(consumer->socks, (void *)((unsigned long) key),
360 &iter);
361 node = lttng_ht_iter_get_node_ulong(&iter);
362 if (node != NULL) {
363 socket = caa_container_of(node, struct consumer_socket, node);
364 }
365
366 return socket;
367 }
368
369 /*
370 * Allocate a new consumer_socket and return the pointer.
371 */
372 struct consumer_socket *consumer_allocate_socket(int *fd)
373 {
374 struct consumer_socket *socket = NULL;
375
376 assert(fd);
377
378 socket = zmalloc(sizeof(struct consumer_socket));
379 if (socket == NULL) {
380 PERROR("zmalloc consumer socket");
381 goto error;
382 }
383
384 socket->fd_ptr = fd;
385 lttng_ht_node_init_ulong(&socket->node, *fd);
386
387 error:
388 return socket;
389 }
390
391 /*
392 * Add consumer socket to consumer output object. Read side lock must be
393 * acquired before calling this function.
394 */
395 void consumer_add_socket(struct consumer_socket *sock,
396 struct consumer_output *consumer)
397 {
398 assert(sock);
399 assert(consumer);
400
401 lttng_ht_add_unique_ulong(consumer->socks, &sock->node);
402 }
403
404 /*
405 * Delte consumer socket to consumer output object. Read side lock must be
406 * acquired before calling this function.
407 */
408 void consumer_del_socket(struct consumer_socket *sock,
409 struct consumer_output *consumer)
410 {
411 int ret;
412 struct lttng_ht_iter iter;
413
414 assert(sock);
415 assert(consumer);
416
417 iter.iter.node = &sock->node.node;
418 ret = lttng_ht_del(consumer->socks, &iter);
419 assert(!ret);
420 }
421
422 /*
423 * RCU destroy call function.
424 */
425 static void destroy_socket_rcu(struct rcu_head *head)
426 {
427 struct lttng_ht_node_ulong *node =
428 caa_container_of(head, struct lttng_ht_node_ulong, head);
429 struct consumer_socket *socket =
430 caa_container_of(node, struct consumer_socket, node);
431
432 free(socket);
433 }
434
435 /*
436 * Destroy and free socket pointer in a call RCU. Read side lock must be
437 * acquired before calling this function.
438 */
439 void consumer_destroy_socket(struct consumer_socket *sock)
440 {
441 assert(sock);
442
443 /*
444 * We DO NOT close the file descriptor here since it is global to the
445 * session daemon and is closed only if the consumer dies or a custom
446 * consumer was registered,
447 */
448 if (sock->registered) {
449 DBG3("Consumer socket was registered. Closing fd %d", *sock->fd_ptr);
450 lttcomm_close_unix_sock(*sock->fd_ptr);
451 }
452
453 call_rcu(&sock->node.head, destroy_socket_rcu);
454 }
455
456 /*
457 * Allocate and assign data to a consumer_output object.
458 *
459 * Return pointer to structure.
460 */
461 struct consumer_output *consumer_create_output(enum consumer_dst_type type)
462 {
463 struct consumer_output *output = NULL;
464
465 output = zmalloc(sizeof(struct consumer_output));
466 if (output == NULL) {
467 PERROR("zmalloc consumer_output");
468 goto error;
469 }
470
471 /* By default, consumer output is enabled */
472 output->enabled = 1;
473 output->type = type;
474 output->net_seq_index = (uint64_t) -1ULL;
475 urcu_ref_init(&output->ref);
476
477 output->socks = lttng_ht_new(0, LTTNG_HT_TYPE_ULONG);
478
479 error:
480 return output;
481 }
482
483 /*
484 * Iterate over the consumer output socket hash table and destroy them. The
485 * socket file descriptor are only closed if the consumer output was
486 * registered meaning it's an external consumer.
487 */
488 void consumer_destroy_output_sockets(struct consumer_output *obj)
489 {
490 struct lttng_ht_iter iter;
491 struct consumer_socket *socket;
492
493 if (!obj->socks) {
494 return;
495 }
496
497 rcu_read_lock();
498 cds_lfht_for_each_entry(obj->socks->ht, &iter.iter, socket, node.node) {
499 consumer_del_socket(socket, obj);
500 consumer_destroy_socket(socket);
501 }
502 rcu_read_unlock();
503 }
504
505 /*
506 * Delete the consumer_output object from the list and free the ptr.
507 *
508 * Should *NOT* be called with RCU read-side lock held.
509 */
510 static void consumer_release_output(struct urcu_ref *ref)
511 {
512 struct consumer_output *obj =
513 caa_container_of(ref, struct consumer_output, ref);
514
515 consumer_destroy_output_sockets(obj);
516
517 if (obj->socks) {
518 /* Finally destroy HT */
519 ht_cleanup_push(obj->socks);
520 }
521
522 free(obj);
523 }
524
525 /*
526 * Get the consumer_output object.
527 */
528 void consumer_output_get(struct consumer_output *obj)
529 {
530 urcu_ref_get(&obj->ref);
531 }
532
533 /*
534 * Put the consumer_output object.
535 *
536 * Should *NOT* be called with RCU read-side lock held.
537 */
538 void consumer_output_put(struct consumer_output *obj)
539 {
540 if (!obj) {
541 return;
542 }
543 urcu_ref_put(&obj->ref, consumer_release_output);
544 }
545
546 /*
547 * Copy consumer output and returned the newly allocated copy.
548 *
549 * Should *NOT* be called with RCU read-side lock held.
550 */
551 struct consumer_output *consumer_copy_output(struct consumer_output *obj)
552 {
553 int ret;
554 struct consumer_output *output;
555
556 assert(obj);
557
558 output = consumer_create_output(obj->type);
559 if (output == NULL) {
560 goto end;
561 }
562 output->enabled = obj->enabled;
563 output->net_seq_index = obj->net_seq_index;
564 memcpy(output->subdir, obj->subdir, PATH_MAX);
565 output->snapshot = obj->snapshot;
566 output->relay_major_version = obj->relay_major_version;
567 output->relay_minor_version = obj->relay_minor_version;
568 memcpy(&output->dst, &obj->dst, sizeof(output->dst));
569 ret = consumer_copy_sockets(output, obj);
570 if (ret < 0) {
571 goto error_put;
572 }
573 end:
574 return output;
575
576 error_put:
577 consumer_output_put(output);
578 return NULL;
579 }
580
581 /*
582 * Copy consumer sockets from src to dst.
583 *
584 * Return 0 on success or else a negative value.
585 */
586 int consumer_copy_sockets(struct consumer_output *dst,
587 struct consumer_output *src)
588 {
589 int ret = 0;
590 struct lttng_ht_iter iter;
591 struct consumer_socket *socket, *copy_sock;
592
593 assert(dst);
594 assert(src);
595
596 rcu_read_lock();
597 cds_lfht_for_each_entry(src->socks->ht, &iter.iter, socket, node.node) {
598 /* Ignore socket that are already there. */
599 copy_sock = consumer_find_socket(*socket->fd_ptr, dst);
600 if (copy_sock) {
601 continue;
602 }
603
604 /* Create new socket object. */
605 copy_sock = consumer_allocate_socket(socket->fd_ptr);
606 if (copy_sock == NULL) {
607 rcu_read_unlock();
608 ret = -ENOMEM;
609 goto error;
610 }
611
612 copy_sock->registered = socket->registered;
613 /*
614 * This is valid because this lock is shared accross all consumer
615 * object being the global lock of the consumer data structure of the
616 * session daemon.
617 */
618 copy_sock->lock = socket->lock;
619 consumer_add_socket(copy_sock, dst);
620 }
621 rcu_read_unlock();
622
623 error:
624 return ret;
625 }
626
627 /*
628 * Set network URI to the consumer output object.
629 *
630 * Return 0 on success. Return 1 if the URI were equal. Else, negative value on
631 * error.
632 */
633 int consumer_set_network_uri(struct consumer_output *obj,
634 struct lttng_uri *uri)
635 {
636 int ret;
637 char tmp_path[PATH_MAX];
638 char hostname[HOST_NAME_MAX];
639 struct lttng_uri *dst_uri = NULL;
640
641 /* Code flow error safety net. */
642 assert(obj);
643 assert(uri);
644
645 switch (uri->stype) {
646 case LTTNG_STREAM_CONTROL:
647 dst_uri = &obj->dst.net.control;
648 obj->dst.net.control_isset = 1;
649 if (uri->port == 0) {
650 /* Assign default port. */
651 uri->port = DEFAULT_NETWORK_CONTROL_PORT;
652 } else {
653 if (obj->dst.net.data_isset && uri->port ==
654 obj->dst.net.data.port) {
655 ret = -LTTNG_ERR_INVALID;
656 goto error;
657 }
658 }
659 DBG3("Consumer control URI set with port %d", uri->port);
660 break;
661 case LTTNG_STREAM_DATA:
662 dst_uri = &obj->dst.net.data;
663 obj->dst.net.data_isset = 1;
664 if (uri->port == 0) {
665 /* Assign default port. */
666 uri->port = DEFAULT_NETWORK_DATA_PORT;
667 } else {
668 if (obj->dst.net.control_isset && uri->port ==
669 obj->dst.net.control.port) {
670 ret = -LTTNG_ERR_INVALID;
671 goto error;
672 }
673 }
674 DBG3("Consumer data URI set with port %d", uri->port);
675 break;
676 default:
677 ERR("Set network uri type unknown %d", uri->stype);
678 ret = -LTTNG_ERR_INVALID;
679 goto error;
680 }
681
682 ret = uri_compare(dst_uri, uri);
683 if (!ret) {
684 /* Same URI, don't touch it and return success. */
685 DBG3("URI network compare are the same");
686 goto equal;
687 }
688
689 /* URIs were not equal, replacing it. */
690 memset(dst_uri, 0, sizeof(struct lttng_uri));
691 memcpy(dst_uri, uri, sizeof(struct lttng_uri));
692 obj->type = CONSUMER_DST_NET;
693
694 /* Handle subdir and add hostname in front. */
695 if (dst_uri->stype == LTTNG_STREAM_CONTROL) {
696 /* Get hostname to append it in the pathname */
697 ret = gethostname(hostname, sizeof(hostname));
698 if (ret < 0) {
699 PERROR("gethostname. Fallback on default localhost");
700 strncpy(hostname, "localhost", sizeof(hostname));
701 }
702 hostname[sizeof(hostname) - 1] = '\0';
703
704 /* Setup consumer subdir if none present in the control URI */
705 if (strlen(dst_uri->subdir) == 0) {
706 ret = snprintf(tmp_path, sizeof(tmp_path), "%s/%s",
707 hostname, obj->subdir);
708 } else {
709 ret = snprintf(tmp_path, sizeof(tmp_path), "%s/%s",
710 hostname, dst_uri->subdir);
711 }
712 if (ret < 0) {
713 PERROR("snprintf set consumer uri subdir");
714 ret = -LTTNG_ERR_NOMEM;
715 goto error;
716 }
717
718 if (lttng_strncpy(obj->dst.net.base_dir, tmp_path,
719 sizeof(obj->dst.net.base_dir))) {
720 ret = -LTTNG_ERR_INVALID;
721 goto error;
722 }
723 DBG3("Consumer set network uri base_dir path %s", tmp_path);
724 }
725
726 return 0;
727 equal:
728 return 1;
729 error:
730 return ret;
731 }
732
733 /*
734 * Send file descriptor to consumer via sock.
735 */
736 int consumer_send_fds(struct consumer_socket *sock, int *fds, size_t nb_fd)
737 {
738 int ret;
739
740 assert(fds);
741 assert(sock);
742 assert(nb_fd > 0);
743
744 ret = lttcomm_send_fds_unix_sock(*sock->fd_ptr, fds, nb_fd);
745 if (ret < 0) {
746 /* The above call will print a PERROR on error. */
747 DBG("Error when sending consumer fds on sock %d", *sock->fd_ptr);
748 goto error;
749 }
750
751 ret = consumer_recv_status_reply(sock);
752 error:
753 return ret;
754 }
755
756 /*
757 * Consumer send communication message structure to consumer.
758 */
759 int consumer_send_msg(struct consumer_socket *sock,
760 struct lttcomm_consumer_msg *msg)
761 {
762 int ret;
763
764 assert(msg);
765 assert(sock);
766
767 ret = consumer_socket_send(sock, msg, sizeof(struct lttcomm_consumer_msg));
768 if (ret < 0) {
769 goto error;
770 }
771
772 ret = consumer_recv_status_reply(sock);
773
774 error:
775 return ret;
776 }
777
778 /*
779 * Consumer send channel communication message structure to consumer.
780 */
781 int consumer_send_channel(struct consumer_socket *sock,
782 struct lttcomm_consumer_msg *msg)
783 {
784 int ret;
785
786 assert(msg);
787 assert(sock);
788
789 ret = consumer_send_msg(sock, msg);
790 if (ret < 0) {
791 goto error;
792 }
793
794 error:
795 return ret;
796 }
797
798 /*
799 * Populate the given consumer msg structure with the ask_channel command
800 * information.
801 */
802 void consumer_init_ask_channel_comm_msg(struct lttcomm_consumer_msg *msg,
803 uint64_t subbuf_size,
804 uint64_t num_subbuf,
805 int overwrite,
806 unsigned int switch_timer_interval,
807 unsigned int read_timer_interval,
808 unsigned int live_timer_interval,
809 unsigned int monitor_timer_interval,
810 int output,
811 int type,
812 uint64_t session_id,
813 const char *pathname,
814 const char *name,
815 uid_t uid,
816 gid_t gid,
817 uint64_t relayd_id,
818 uint64_t key,
819 unsigned char *uuid,
820 uint32_t chan_id,
821 uint64_t tracefile_size,
822 uint64_t tracefile_count,
823 uint64_t session_id_per_pid,
824 unsigned int monitor,
825 uint32_t ust_app_uid,
826 int64_t blocking_timeout,
827 const char *root_shm_path,
828 const char *shm_path)
829 {
830 assert(msg);
831
832 /* Zeroed structure */
833 memset(msg, 0, sizeof(struct lttcomm_consumer_msg));
834
835 msg->cmd_type = LTTNG_CONSUMER_ASK_CHANNEL_CREATION;
836 msg->u.ask_channel.subbuf_size = subbuf_size;
837 msg->u.ask_channel.num_subbuf = num_subbuf ;
838 msg->u.ask_channel.overwrite = overwrite;
839 msg->u.ask_channel.switch_timer_interval = switch_timer_interval;
840 msg->u.ask_channel.read_timer_interval = read_timer_interval;
841 msg->u.ask_channel.live_timer_interval = live_timer_interval;
842 msg->u.ask_channel.monitor_timer_interval = monitor_timer_interval;
843 msg->u.ask_channel.output = output;
844 msg->u.ask_channel.type = type;
845 msg->u.ask_channel.session_id = session_id;
846 msg->u.ask_channel.session_id_per_pid = session_id_per_pid;
847 msg->u.ask_channel.uid = uid;
848 msg->u.ask_channel.gid = gid;
849 msg->u.ask_channel.relayd_id = relayd_id;
850 msg->u.ask_channel.key = key;
851 msg->u.ask_channel.chan_id = chan_id;
852 msg->u.ask_channel.tracefile_size = tracefile_size;
853 msg->u.ask_channel.tracefile_count = tracefile_count;
854 msg->u.ask_channel.monitor = monitor;
855 msg->u.ask_channel.ust_app_uid = ust_app_uid;
856 msg->u.ask_channel.blocking_timeout = blocking_timeout;
857
858 memcpy(msg->u.ask_channel.uuid, uuid, sizeof(msg->u.ask_channel.uuid));
859
860 if (pathname) {
861 strncpy(msg->u.ask_channel.pathname, pathname,
862 sizeof(msg->u.ask_channel.pathname));
863 msg->u.ask_channel.pathname[sizeof(msg->u.ask_channel.pathname)-1] = '\0';
864 }
865
866 strncpy(msg->u.ask_channel.name, name, sizeof(msg->u.ask_channel.name));
867 msg->u.ask_channel.name[sizeof(msg->u.ask_channel.name) - 1] = '\0';
868
869 if (root_shm_path) {
870 strncpy(msg->u.ask_channel.root_shm_path, root_shm_path,
871 sizeof(msg->u.ask_channel.root_shm_path));
872 msg->u.ask_channel.root_shm_path[sizeof(msg->u.ask_channel.root_shm_path) - 1] = '\0';
873 }
874 if (shm_path) {
875 strncpy(msg->u.ask_channel.shm_path, shm_path,
876 sizeof(msg->u.ask_channel.shm_path));
877 msg->u.ask_channel.shm_path[sizeof(msg->u.ask_channel.shm_path) - 1] = '\0';
878 }
879 }
880
881 /*
882 * Init channel communication message structure.
883 */
884 void consumer_init_channel_comm_msg(struct lttcomm_consumer_msg *msg,
885 enum lttng_consumer_command cmd,
886 uint64_t channel_key,
887 uint64_t session_id,
888 const char *pathname,
889 uid_t uid,
890 gid_t gid,
891 uint64_t relayd_id,
892 const char *name,
893 unsigned int nb_init_streams,
894 enum lttng_event_output output,
895 int type,
896 uint64_t tracefile_size,
897 uint64_t tracefile_count,
898 unsigned int monitor,
899 unsigned int live_timer_interval,
900 unsigned int monitor_timer_interval)
901 {
902 assert(msg);
903
904 /* Zeroed structure */
905 memset(msg, 0, sizeof(struct lttcomm_consumer_msg));
906
907 /* Send channel */
908 msg->cmd_type = cmd;
909 msg->u.channel.channel_key = channel_key;
910 msg->u.channel.session_id = session_id;
911 msg->u.channel.uid = uid;
912 msg->u.channel.gid = gid;
913 msg->u.channel.relayd_id = relayd_id;
914 msg->u.channel.nb_init_streams = nb_init_streams;
915 msg->u.channel.output = output;
916 msg->u.channel.type = type;
917 msg->u.channel.tracefile_size = tracefile_size;
918 msg->u.channel.tracefile_count = tracefile_count;
919 msg->u.channel.monitor = monitor;
920 msg->u.channel.live_timer_interval = live_timer_interval;
921 msg->u.channel.monitor_timer_interval = monitor_timer_interval;
922
923 strncpy(msg->u.channel.pathname, pathname,
924 sizeof(msg->u.channel.pathname));
925 msg->u.channel.pathname[sizeof(msg->u.channel.pathname) - 1] = '\0';
926
927 strncpy(msg->u.channel.name, name, sizeof(msg->u.channel.name));
928 msg->u.channel.name[sizeof(msg->u.channel.name) - 1] = '\0';
929 }
930
931 /*
932 * Init stream communication message structure.
933 */
934 void consumer_init_stream_comm_msg(struct lttcomm_consumer_msg *msg,
935 enum lttng_consumer_command cmd,
936 uint64_t channel_key,
937 uint64_t stream_key,
938 int cpu)
939 {
940 assert(msg);
941
942 memset(msg, 0, sizeof(struct lttcomm_consumer_msg));
943
944 msg->cmd_type = cmd;
945 msg->u.stream.channel_key = channel_key;
946 msg->u.stream.stream_key = stream_key;
947 msg->u.stream.cpu = cpu;
948 }
949
950 void consumer_init_streams_sent_comm_msg(struct lttcomm_consumer_msg *msg,
951 enum lttng_consumer_command cmd,
952 uint64_t channel_key, uint64_t net_seq_idx)
953 {
954 assert(msg);
955
956 memset(msg, 0, sizeof(struct lttcomm_consumer_msg));
957
958 msg->cmd_type = cmd;
959 msg->u.sent_streams.channel_key = channel_key;
960 msg->u.sent_streams.net_seq_idx = net_seq_idx;
961 }
962
963 /*
964 * Send stream communication structure to the consumer.
965 */
966 int consumer_send_stream(struct consumer_socket *sock,
967 struct consumer_output *dst, struct lttcomm_consumer_msg *msg,
968 int *fds, size_t nb_fd)
969 {
970 int ret;
971
972 assert(msg);
973 assert(dst);
974 assert(sock);
975 assert(fds);
976
977 ret = consumer_send_msg(sock, msg);
978 if (ret < 0) {
979 goto error;
980 }
981
982 ret = consumer_send_fds(sock, fds, nb_fd);
983 if (ret < 0) {
984 goto error;
985 }
986
987 error:
988 return ret;
989 }
990
991 /*
992 * Send relayd socket to consumer associated with a session name.
993 *
994 * On success return positive value. On error, negative value.
995 */
996 int consumer_send_relayd_socket(struct consumer_socket *consumer_sock,
997 struct lttcomm_relayd_sock *rsock, struct consumer_output *consumer,
998 enum lttng_stream_type type, uint64_t session_id,
999 char *session_name, char *hostname, int session_live_timer)
1000 {
1001 int ret;
1002 struct lttcomm_consumer_msg msg;
1003
1004 /* Code flow error. Safety net. */
1005 assert(rsock);
1006 assert(consumer);
1007 assert(consumer_sock);
1008
1009 memset(&msg, 0, sizeof(msg));
1010 /* Bail out if consumer is disabled */
1011 if (!consumer->enabled) {
1012 ret = LTTNG_OK;
1013 goto error;
1014 }
1015
1016 if (type == LTTNG_STREAM_CONTROL) {
1017 ret = relayd_create_session(rsock,
1018 &msg.u.relayd_sock.relayd_session_id,
1019 session_name, hostname, session_live_timer,
1020 consumer->snapshot);
1021 if (ret < 0) {
1022 /* Close the control socket. */
1023 (void) relayd_close(rsock);
1024 goto error;
1025 }
1026 }
1027
1028 msg.cmd_type = LTTNG_CONSUMER_ADD_RELAYD_SOCKET;
1029 /*
1030 * Assign network consumer output index using the temporary consumer since
1031 * this call should only be made from within a set_consumer_uri() function
1032 * call in the session daemon.
1033 */
1034 msg.u.relayd_sock.net_index = consumer->net_seq_index;
1035 msg.u.relayd_sock.type = type;
1036 msg.u.relayd_sock.session_id = session_id;
1037 memcpy(&msg.u.relayd_sock.sock, rsock, sizeof(msg.u.relayd_sock.sock));
1038
1039 DBG3("Sending relayd sock info to consumer on %d", *consumer_sock->fd_ptr);
1040 ret = consumer_send_msg(consumer_sock, &msg);
1041 if (ret < 0) {
1042 goto error;
1043 }
1044
1045 DBG3("Sending relayd socket file descriptor to consumer");
1046 ret = consumer_send_fds(consumer_sock, &rsock->sock.fd, 1);
1047 if (ret < 0) {
1048 goto error;
1049 }
1050
1051 DBG2("Consumer relayd socket sent");
1052
1053 error:
1054 return ret;
1055 }
1056
1057 int consumer_send_channel_monitor_pipe(struct consumer_socket *consumer_sock,
1058 int pipe)
1059 {
1060 int ret;
1061 struct lttcomm_consumer_msg msg;
1062
1063 /* Code flow error. Safety net. */
1064
1065 memset(&msg, 0, sizeof(msg));
1066 msg.cmd_type = LTTNG_CONSUMER_SET_CHANNEL_MONITOR_PIPE;
1067
1068 DBG3("Sending set_channel_monitor_pipe command to consumer");
1069 ret = consumer_send_msg(consumer_sock, &msg);
1070 if (ret < 0) {
1071 goto error;
1072 }
1073
1074 DBG3("Sending channel monitoring pipe %d to consumer on socket %d",
1075 pipe, *consumer_sock->fd_ptr);
1076 ret = consumer_send_fds(consumer_sock, &pipe, 1);
1077 if (ret < 0) {
1078 goto error;
1079 }
1080
1081 DBG2("Channel monitoring pipe successfully sent");
1082 error:
1083 return ret;
1084 }
1085
1086 int consumer_send_channel_rotate_pipe(struct consumer_socket *consumer_sock,
1087 int pipe)
1088 {
1089 int ret;
1090 struct lttcomm_consumer_msg msg;
1091
1092 /* Code flow error. Safety net. */
1093
1094 memset(&msg, 0, sizeof(msg));
1095 msg.cmd_type = LTTNG_CONSUMER_SET_CHANNEL_ROTATE_PIPE;
1096
1097 DBG3("Sending set_channel_rotate_pipe command to consumer");
1098 ret = consumer_send_msg(consumer_sock, &msg);
1099 if (ret < 0) {
1100 goto error;
1101 }
1102
1103 DBG3("Sending channel rotation pipe %d to consumer on socket %d",
1104 pipe, *consumer_sock->fd_ptr);
1105 ret = consumer_send_fds(consumer_sock, &pipe, 1);
1106 if (ret < 0) {
1107 goto error;
1108 }
1109
1110 DBG2("Channel rotation pipe successfully sent");
1111 error:
1112 return ret;
1113 }
1114
1115 /*
1116 * Set consumer subdirectory using the session name and a generated datetime if
1117 * needed. This is appended to the current subdirectory.
1118 */
1119 int consumer_set_subdir(struct consumer_output *consumer,
1120 const char *session_name)
1121 {
1122 int ret = 0;
1123 unsigned int have_default_name = 0;
1124 char datetime[16], tmp_path[PATH_MAX];
1125 time_t rawtime;
1126 struct tm *timeinfo;
1127
1128 assert(consumer);
1129 assert(session_name);
1130
1131 memset(tmp_path, 0, sizeof(tmp_path));
1132
1133 /* Flag if we have a default session. */
1134 if (strncmp(session_name, DEFAULT_SESSION_NAME "-",
1135 strlen(DEFAULT_SESSION_NAME) + 1) == 0) {
1136 have_default_name = 1;
1137 } else {
1138 /* Get date and time for session path */
1139 time(&rawtime);
1140 timeinfo = localtime(&rawtime);
1141 strftime(datetime, sizeof(datetime), "%Y%m%d-%H%M%S", timeinfo);
1142 }
1143
1144 if (have_default_name) {
1145 ret = snprintf(tmp_path, sizeof(tmp_path),
1146 "%s/%s", consumer->subdir, session_name);
1147 } else {
1148 ret = snprintf(tmp_path, sizeof(tmp_path),
1149 "%s/%s-%s/", consumer->subdir, session_name, datetime);
1150 }
1151 if (ret < 0) {
1152 PERROR("snprintf session name date");
1153 goto error;
1154 }
1155
1156 if (lttng_strncpy(consumer->subdir, tmp_path,
1157 sizeof(consumer->subdir))) {
1158 ret = -EINVAL;
1159 goto error;
1160 }
1161 DBG2("Consumer subdir set to %s", consumer->subdir);
1162
1163 error:
1164 return ret;
1165 }
1166
1167 /*
1168 * Ask the consumer if the data is pending for the specific session id.
1169 * Returns 1 if data is pending, 0 otherwise, or < 0 on error.
1170 */
1171 int consumer_is_data_pending(uint64_t session_id,
1172 struct consumer_output *consumer)
1173 {
1174 int ret;
1175 int32_t ret_code = 0; /* Default is that the data is NOT pending */
1176 struct consumer_socket *socket;
1177 struct lttng_ht_iter iter;
1178 struct lttcomm_consumer_msg msg;
1179
1180 assert(consumer);
1181
1182 DBG3("Consumer data pending for id %" PRIu64, session_id);
1183
1184 memset(&msg, 0, sizeof(msg));
1185 msg.cmd_type = LTTNG_CONSUMER_DATA_PENDING;
1186 msg.u.data_pending.session_id = session_id;
1187
1188 /* Send command for each consumer */
1189 rcu_read_lock();
1190 cds_lfht_for_each_entry(consumer->socks->ht, &iter.iter, socket,
1191 node.node) {
1192 pthread_mutex_lock(socket->lock);
1193 ret = consumer_socket_send(socket, &msg, sizeof(msg));
1194 if (ret < 0) {
1195 pthread_mutex_unlock(socket->lock);
1196 goto error_unlock;
1197 }
1198
1199 /*
1200 * No need for a recv reply status because the answer to the command is
1201 * the reply status message.
1202 */
1203
1204 ret = consumer_socket_recv(socket, &ret_code, sizeof(ret_code));
1205 if (ret < 0) {
1206 pthread_mutex_unlock(socket->lock);
1207 goto error_unlock;
1208 }
1209 pthread_mutex_unlock(socket->lock);
1210
1211 if (ret_code == 1) {
1212 break;
1213 }
1214 }
1215 rcu_read_unlock();
1216
1217 DBG("Consumer data is %s pending for session id %" PRIu64,
1218 ret_code == 1 ? "" : "NOT", session_id);
1219 return ret_code;
1220
1221 error_unlock:
1222 rcu_read_unlock();
1223 return -1;
1224 }
1225
1226 /*
1227 * Send a flush command to consumer using the given channel key.
1228 *
1229 * Return 0 on success else a negative value.
1230 */
1231 int consumer_flush_channel(struct consumer_socket *socket, uint64_t key)
1232 {
1233 int ret;
1234 struct lttcomm_consumer_msg msg;
1235
1236 assert(socket);
1237
1238 DBG2("Consumer flush channel key %" PRIu64, key);
1239
1240 memset(&msg, 0, sizeof(msg));
1241 msg.cmd_type = LTTNG_CONSUMER_FLUSH_CHANNEL;
1242 msg.u.flush_channel.key = key;
1243
1244 pthread_mutex_lock(socket->lock);
1245 health_code_update();
1246
1247 ret = consumer_send_msg(socket, &msg);
1248 if (ret < 0) {
1249 goto end;
1250 }
1251
1252 end:
1253 health_code_update();
1254 pthread_mutex_unlock(socket->lock);
1255 return ret;
1256 }
1257
1258 /*
1259 * Send a clear quiescent command to consumer using the given channel key.
1260 *
1261 * Return 0 on success else a negative value.
1262 */
1263 int consumer_clear_quiescent_channel(struct consumer_socket *socket, uint64_t key)
1264 {
1265 int ret;
1266 struct lttcomm_consumer_msg msg;
1267
1268 assert(socket);
1269
1270 DBG2("Consumer clear quiescent channel key %" PRIu64, key);
1271
1272 memset(&msg, 0, sizeof(msg));
1273 msg.cmd_type = LTTNG_CONSUMER_CLEAR_QUIESCENT_CHANNEL;
1274 msg.u.clear_quiescent_channel.key = key;
1275
1276 pthread_mutex_lock(socket->lock);
1277 health_code_update();
1278
1279 ret = consumer_send_msg(socket, &msg);
1280 if (ret < 0) {
1281 goto end;
1282 }
1283
1284 end:
1285 health_code_update();
1286 pthread_mutex_unlock(socket->lock);
1287 return ret;
1288 }
1289
1290 /*
1291 * Send a close metadata command to consumer using the given channel key.
1292 * Called with registry lock held.
1293 *
1294 * Return 0 on success else a negative value.
1295 */
1296 int consumer_close_metadata(struct consumer_socket *socket,
1297 uint64_t metadata_key)
1298 {
1299 int ret;
1300 struct lttcomm_consumer_msg msg;
1301
1302 assert(socket);
1303
1304 DBG2("Consumer close metadata channel key %" PRIu64, metadata_key);
1305
1306 memset(&msg, 0, sizeof(msg));
1307 msg.cmd_type = LTTNG_CONSUMER_CLOSE_METADATA;
1308 msg.u.close_metadata.key = metadata_key;
1309
1310 pthread_mutex_lock(socket->lock);
1311 health_code_update();
1312
1313 ret = consumer_send_msg(socket, &msg);
1314 if (ret < 0) {
1315 goto end;
1316 }
1317
1318 end:
1319 health_code_update();
1320 pthread_mutex_unlock(socket->lock);
1321 return ret;
1322 }
1323
1324 /*
1325 * Send a setup metdata command to consumer using the given channel key.
1326 *
1327 * Return 0 on success else a negative value.
1328 */
1329 int consumer_setup_metadata(struct consumer_socket *socket,
1330 uint64_t metadata_key)
1331 {
1332 int ret;
1333 struct lttcomm_consumer_msg msg;
1334
1335 assert(socket);
1336
1337 DBG2("Consumer setup metadata channel key %" PRIu64, metadata_key);
1338
1339 memset(&msg, 0, sizeof(msg));
1340 msg.cmd_type = LTTNG_CONSUMER_SETUP_METADATA;
1341 msg.u.setup_metadata.key = metadata_key;
1342
1343 pthread_mutex_lock(socket->lock);
1344 health_code_update();
1345
1346 ret = consumer_send_msg(socket, &msg);
1347 if (ret < 0) {
1348 goto end;
1349 }
1350
1351 end:
1352 health_code_update();
1353 pthread_mutex_unlock(socket->lock);
1354 return ret;
1355 }
1356
1357 /*
1358 * Send metadata string to consumer.
1359 * RCU read-side lock must be held to guarantee existence of socket.
1360 *
1361 * Return 0 on success else a negative value.
1362 */
1363 int consumer_push_metadata(struct consumer_socket *socket,
1364 uint64_t metadata_key, char *metadata_str, size_t len,
1365 size_t target_offset, uint64_t version)
1366 {
1367 int ret;
1368 struct lttcomm_consumer_msg msg;
1369
1370 assert(socket);
1371
1372 DBG2("Consumer push metadata to consumer socket %d", *socket->fd_ptr);
1373
1374 pthread_mutex_lock(socket->lock);
1375
1376 memset(&msg, 0, sizeof(msg));
1377 msg.cmd_type = LTTNG_CONSUMER_PUSH_METADATA;
1378 msg.u.push_metadata.key = metadata_key;
1379 msg.u.push_metadata.target_offset = target_offset;
1380 msg.u.push_metadata.len = len;
1381 msg.u.push_metadata.version = version;
1382
1383 health_code_update();
1384 ret = consumer_send_msg(socket, &msg);
1385 if (ret < 0 || len == 0) {
1386 goto end;
1387 }
1388
1389 DBG3("Consumer pushing metadata on sock %d of len %zu", *socket->fd_ptr,
1390 len);
1391
1392 ret = consumer_socket_send(socket, metadata_str, len);
1393 if (ret < 0) {
1394 goto end;
1395 }
1396
1397 health_code_update();
1398 ret = consumer_recv_status_reply(socket);
1399 if (ret < 0) {
1400 goto end;
1401 }
1402
1403 end:
1404 pthread_mutex_unlock(socket->lock);
1405 health_code_update();
1406 return ret;
1407 }
1408
1409 /*
1410 * Ask the consumer to snapshot a specific channel using the key.
1411 *
1412 * Return 0 on success or else a negative error.
1413 */
1414 int consumer_snapshot_channel(struct consumer_socket *socket, uint64_t key,
1415 struct snapshot_output *output, int metadata, uid_t uid, gid_t gid,
1416 const char *session_path, int wait, uint64_t nb_packets_per_stream)
1417 {
1418 int ret;
1419 struct lttcomm_consumer_msg msg;
1420
1421 assert(socket);
1422 assert(output);
1423 assert(output->consumer);
1424
1425 DBG("Consumer snapshot channel key %" PRIu64, key);
1426
1427 memset(&msg, 0, sizeof(msg));
1428 msg.cmd_type = LTTNG_CONSUMER_SNAPSHOT_CHANNEL;
1429 msg.u.snapshot_channel.key = key;
1430 msg.u.snapshot_channel.nb_packets_per_stream = nb_packets_per_stream;
1431 msg.u.snapshot_channel.metadata = metadata;
1432
1433 if (output->consumer->type == CONSUMER_DST_NET) {
1434 msg.u.snapshot_channel.relayd_id = output->consumer->net_seq_index;
1435 msg.u.snapshot_channel.use_relayd = 1;
1436 ret = snprintf(msg.u.snapshot_channel.pathname,
1437 sizeof(msg.u.snapshot_channel.pathname),
1438 "%s/%s/%s-%s-%" PRIu64 "%s", output->consumer->dst.net.base_dir,
1439 output->consumer->subdir,
1440 output->name, output->datetime, output->nb_snapshot,
1441 session_path);
1442 if (ret < 0) {
1443 ret = -LTTNG_ERR_NOMEM;
1444 goto error;
1445 }
1446 } else {
1447 ret = snprintf(msg.u.snapshot_channel.pathname,
1448 sizeof(msg.u.snapshot_channel.pathname),
1449 "%s/%s-%s-%" PRIu64 "%s", output->consumer->dst.session_root_path,
1450 output->name, output->datetime, output->nb_snapshot,
1451 session_path);
1452 if (ret < 0) {
1453 ret = -LTTNG_ERR_NOMEM;
1454 goto error;
1455 }
1456 msg.u.snapshot_channel.relayd_id = (uint64_t) -1ULL;
1457
1458 /* Create directory. Ignore if exist. */
1459 ret = run_as_mkdir_recursive(msg.u.snapshot_channel.pathname,
1460 S_IRWXU | S_IRWXG, uid, gid);
1461 if (ret < 0) {
1462 if (errno != EEXIST) {
1463 ERR("Trace directory creation error");
1464 goto error;
1465 }
1466 }
1467 }
1468
1469 health_code_update();
1470 ret = consumer_send_msg(socket, &msg);
1471 if (ret < 0) {
1472 goto error;
1473 }
1474
1475 error:
1476 health_code_update();
1477 return ret;
1478 }
1479
1480 /*
1481 * Ask the consumer the number of discarded events for a channel.
1482 */
1483 int consumer_get_discarded_events(uint64_t session_id, uint64_t channel_key,
1484 struct consumer_output *consumer, uint64_t *discarded)
1485 {
1486 int ret;
1487 struct consumer_socket *socket;
1488 struct lttng_ht_iter iter;
1489 struct lttcomm_consumer_msg msg;
1490
1491 assert(consumer);
1492
1493 DBG3("Consumer discarded events id %" PRIu64, session_id);
1494
1495 memset(&msg, 0, sizeof(msg));
1496 msg.cmd_type = LTTNG_CONSUMER_DISCARDED_EVENTS;
1497 msg.u.discarded_events.session_id = session_id;
1498 msg.u.discarded_events.channel_key = channel_key;
1499
1500 *discarded = 0;
1501
1502 /* Send command for each consumer */
1503 rcu_read_lock();
1504 cds_lfht_for_each_entry(consumer->socks->ht, &iter.iter, socket,
1505 node.node) {
1506 uint64_t consumer_discarded = 0;
1507 pthread_mutex_lock(socket->lock);
1508 ret = consumer_socket_send(socket, &msg, sizeof(msg));
1509 if (ret < 0) {
1510 pthread_mutex_unlock(socket->lock);
1511 goto end;
1512 }
1513
1514 /*
1515 * No need for a recv reply status because the answer to the
1516 * command is the reply status message.
1517 */
1518 ret = consumer_socket_recv(socket, &consumer_discarded,
1519 sizeof(consumer_discarded));
1520 if (ret < 0) {
1521 ERR("get discarded events");
1522 pthread_mutex_unlock(socket->lock);
1523 goto end;
1524 }
1525 pthread_mutex_unlock(socket->lock);
1526 *discarded += consumer_discarded;
1527 }
1528 ret = 0;
1529 DBG("Consumer discarded %" PRIu64 " events in session id %" PRIu64,
1530 *discarded, session_id);
1531
1532 end:
1533 rcu_read_unlock();
1534 return ret;
1535 }
1536
1537 /*
1538 * Ask the consumer the number of lost packets for a channel.
1539 */
1540 int consumer_get_lost_packets(uint64_t session_id, uint64_t channel_key,
1541 struct consumer_output *consumer, uint64_t *lost)
1542 {
1543 int ret;
1544 struct consumer_socket *socket;
1545 struct lttng_ht_iter iter;
1546 struct lttcomm_consumer_msg msg;
1547
1548 assert(consumer);
1549
1550 DBG3("Consumer lost packets id %" PRIu64, session_id);
1551
1552 memset(&msg, 0, sizeof(msg));
1553 msg.cmd_type = LTTNG_CONSUMER_LOST_PACKETS;
1554 msg.u.lost_packets.session_id = session_id;
1555 msg.u.lost_packets.channel_key = channel_key;
1556
1557 *lost = 0;
1558
1559 /* Send command for each consumer */
1560 rcu_read_lock();
1561 cds_lfht_for_each_entry(consumer->socks->ht, &iter.iter, socket,
1562 node.node) {
1563 uint64_t consumer_lost = 0;
1564 pthread_mutex_lock(socket->lock);
1565 ret = consumer_socket_send(socket, &msg, sizeof(msg));
1566 if (ret < 0) {
1567 pthread_mutex_unlock(socket->lock);
1568 goto end;
1569 }
1570
1571 /*
1572 * No need for a recv reply status because the answer to the
1573 * command is the reply status message.
1574 */
1575 ret = consumer_socket_recv(socket, &consumer_lost,
1576 sizeof(consumer_lost));
1577 if (ret < 0) {
1578 ERR("get lost packets");
1579 pthread_mutex_unlock(socket->lock);
1580 goto end;
1581 }
1582 pthread_mutex_unlock(socket->lock);
1583 *lost += consumer_lost;
1584 }
1585 ret = 0;
1586 DBG("Consumer lost %" PRIu64 " packets in session id %" PRIu64,
1587 *lost, session_id);
1588
1589 end:
1590 rcu_read_unlock();
1591 return ret;
1592 }
1593
1594 /*
1595 * Ask the consumer to rotate a channel.
1596 * app_pathname only used for UST, it contains the path after /ust/.
1597 *
1598 * The new_chunk_id is the session->rotate_count that has been incremented
1599 * when the rotation started. On the relay, this allows to keep track in which
1600 * chunk each stream is currently writing to (for the rotate_pending operation).
1601 */
1602 int consumer_rotate_channel(struct consumer_socket *socket, uint64_t key,
1603 uid_t uid, gid_t gid, struct consumer_output *output,
1604 char *app_pathname, uint32_t metadata, uint64_t new_chunk_id,
1605 bool *rotate_pending_relay)
1606 {
1607 int ret;
1608 struct lttcomm_consumer_msg msg;
1609
1610 assert(socket);
1611
1612 DBG("Consumer rotate channel key %" PRIu64, key);
1613
1614 fprintf(stderr, "rotate socket %p\n", socket);
1615 memset(&msg, 0, sizeof(msg));
1616 msg.cmd_type = LTTNG_CONSUMER_ROTATE_CHANNEL;
1617 msg.u.rotate_channel.key = key;
1618 msg.u.rotate_channel.metadata = metadata;
1619 msg.u.rotate_channel.new_chunk_id = new_chunk_id;
1620
1621 if (output->type == CONSUMER_DST_NET) {
1622 fprintf(stderr, "BASE: %s\n", output->dst.net.base_dir);
1623 fprintf(stderr, "CHUNK: %s\n", output->chunk_path);
1624 msg.u.rotate_channel.relayd_id = output->net_seq_index;
1625 snprintf(msg.u.rotate_channel.pathname, PATH_MAX, "%s%s%s",
1626 output->dst.net.base_dir,
1627 output->chunk_path, app_pathname);
1628 fprintf(stderr, "SENDING: %s\n", msg.u.rotate_channel.pathname);
1629 *rotate_pending_relay = true;
1630 } else {
1631 msg.u.rotate_channel.relayd_id = (uint64_t) -1ULL;
1632 snprintf(msg.u.rotate_channel.pathname, PATH_MAX, "%s%s%s",
1633 output->dst.session_root_path,
1634 output->chunk_path, app_pathname);
1635 fprintf(stderr, "rotate to %s\n",
1636 msg.u.rotate_channel.pathname);
1637 }
1638
1639 health_code_update();
1640 fprintf(stderr, "send %d\n", LTTNG_CONSUMER_ROTATE_CHANNEL);
1641 ret = consumer_send_msg(socket, &msg);
1642 if (ret < 0) {
1643 goto error;
1644 }
1645
1646 error:
1647 health_code_update();
1648 return ret;
1649 }
1650
1651 int consumer_rotate_rename(struct consumer_socket *socket, uint64_t session_id,
1652 struct consumer_output *output, char *current_path, char *new_path,
1653 uid_t uid, gid_t gid)
1654 {
1655 int ret;
1656 struct lttcomm_consumer_msg msg;
1657
1658 assert(socket);
1659
1660 DBG("Consumer rotate rename session %" PRIu64, session_id);
1661
1662 memset(&msg, 0, sizeof(msg));
1663 msg.cmd_type = LTTNG_CONSUMER_ROTATE_RENAME;
1664 msg.u.rotate_rename.session_id = session_id;
1665 msg.u.rotate_rename.uid = uid;
1666 msg.u.rotate_rename.gid = gid;
1667 snprintf(msg.u.rotate_rename.current_path, PATH_MAX, "%s", current_path);
1668 snprintf(msg.u.rotate_rename.new_path, PATH_MAX, "%s", new_path);
1669
1670 if (output->type == CONSUMER_DST_NET) {
1671 msg.u.rotate_rename.relayd_id = output->net_seq_index;
1672 } else {
1673 msg.u.rotate_rename.relayd_id = (uint64_t) -1ULL;
1674 }
1675
1676 health_code_update();
1677 ret = consumer_send_msg(socket, &msg);
1678 if (ret < 0) {
1679 goto error;
1680 }
1681
1682 error:
1683 health_code_update();
1684 return ret;
1685 }
1686
1687 /*
1688 * Ask the relay if a rotation is still pending. Must be called with the socket
1689 * lock held.
1690 *
1691 * Return 1 if the rotation is still pending, 0 if finished, a negative value
1692 * on error.
1693 */
1694 int consumer_rotate_pending_relay(struct consumer_socket *socket,
1695 struct consumer_output *output, uint64_t session_id,
1696 uint64_t chunk_id)
1697 {
1698 int ret;
1699 struct lttcomm_consumer_msg msg;
1700 uint32_t pending = 0;
1701
1702 assert(socket);
1703
1704 DBG("Consumer rotate pending on relay for session %" PRIu64, session_id);
1705 assert(output->type == CONSUMER_DST_NET);
1706
1707 memset(&msg, 0, sizeof(msg));
1708 msg.cmd_type = LTTNG_CONSUMER_ROTATE_PENDING_RELAY;
1709 msg.u.rotate_pending_relay.session_id = session_id;
1710 msg.u.rotate_pending_relay.relayd_id = output->net_seq_index;
1711 msg.u.rotate_pending_relay.chunk_id = chunk_id;
1712
1713 health_code_update();
1714 ret = consumer_send_msg(socket, &msg);
1715 if (ret < 0) {
1716 goto error;
1717 }
1718
1719 ret = consumer_socket_recv(socket, &pending, sizeof(pending));
1720 if (ret < 0) {
1721 goto error;
1722 }
1723
1724 ret = pending;
1725
1726 error:
1727 health_code_update();
1728 return ret;
1729 }
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