1 /*
2 * daemon/remote.c - remote control for the unbound daemon.
3 *
4 * Copyright (c) 2008, NLnet Labs. All rights reserved.
5 *
6 * This software is open source.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 *
12 * Redistributions of source code must retain the above copyright notice,
13 * this list of conditions and the following disclaimer.
14 *
15 * Redistributions in binary form must reproduce the above copyright notice,
16 * this list of conditions and the following disclaimer in the documentation
17 * and/or other materials provided with the distribution.
18 *
19 * Neither the name of the NLNET LABS nor the names of its contributors may
20 * be used to endorse or promote products derived from this software without
21 * specific prior written permission.
22 *
23 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
24 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
25 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
26 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
27 * HOLDER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
28 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED
29 * TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
30 * PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
31 * LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
32 * NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
33 * SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
34 */
35
36 /**
37 * \file
38 *
39 * This file contains the remote control functionality for the daemon.
40 * The remote control can be performed using either the commandline
41 * unbound-control tool, or a TLS capable web browser.
42 * The channel is secured using TLSv1, and certificates.
43 * Both the server and the client(control tool) have their own keys.
44 */
45 #include "config.h"
46 #ifdef HAVE_OPENSSL_ERR_H
47 #include <openssl/err.h>
48 #endif
49 #ifdef HAVE_OPENSSL_DH_H
50 #include <openssl/dh.h>
51 #endif
52 #ifdef HAVE_OPENSSL_BN_H
53 #include <openssl/bn.h>
54 #endif
55 #ifdef HAVE_STDATOMIC_H
56 #include <stdatomic.h>
57 #endif
58
59 #include <ctype.h>
60 #include "daemon/remote.h"
61 #include "daemon/worker.h"
62 #include "daemon/daemon.h"
63 #include "daemon/stats.h"
64 #include "daemon/cachedump.h"
65 #include "util/log.h"
66 #include "util/config_file.h"
67 #include "util/net_help.h"
68 #include "util/module.h"
69 #include "util/ub_event.h"
70 #include "services/listen_dnsport.h"
71 #include "services/cache/rrset.h"
72 #include "services/cache/infra.h"
73 #include "services/mesh.h"
74 #include "services/localzone.h"
75 #include "services/authzone.h"
76 #include "services/rpz.h"
77 #include "util/storage/slabhash.h"
78 #include "util/fptr_wlist.h"
79 #include "util/data/dname.h"
80 #include "validator/validator.h"
81 #include "validator/val_kcache.h"
82 #include "validator/val_kentry.h"
83 #include "validator/val_anchor.h"
84 #include "validator/val_neg.h"
85 #include "iterator/iterator.h"
86 #include "iterator/iter_fwd.h"
87 #include "iterator/iter_hints.h"
88 #include "iterator/iter_delegpt.h"
89 #include "iterator/iter_utils.h"
90 #include "iterator/iter_donotq.h"
91 #include "iterator/iter_priv.h"
92 #include "services/outbound_list.h"
93 #include "services/outside_network.h"
94 #include "sldns/str2wire.h"
95 #include "sldns/parseutil.h"
96 #include "sldns/wire2str.h"
97 #include "sldns/sbuffer.h"
98 #include "util/timeval_func.h"
99 #include "util/tcp_conn_limit.h"
100 #include "util/edns.h"
101 #ifdef USE_CACHEDB
102 #include "cachedb/cachedb.h"
103 #endif
104 #ifdef CLIENT_SUBNET
105 #include "edns-subnet/subnetmod.h"
106 #include "edns-subnet/addrtree.h"
107 #endif
108
109 #ifdef HAVE_SYS_TYPES_H
110 # include <sys/types.h>
111 #endif
112 #ifdef HAVE_SYS_STAT_H
113 #include <sys/stat.h>
114 #endif
115 #ifdef HAVE_NETDB_H
116 #include <netdb.h>
117 #endif
118 #ifdef HAVE_POLL_H
119 #include <poll.h>
120 #endif
121
122 /* just for portability */
123 #ifdef SQ
124 #undef SQ
125 #endif
126
127 /** what to put on statistics lines between var and value, ": " or "=" */
128 #define SQ "="
129
130 /** Acceptable lengths of str lines */
131 #define MAX_CMD_STRLINE 1024
132 #define MAX_STDIN_STRLINE 2048
133 /** What number of loop iterations is too much for ipc retries */
134 #define IPC_LOOP_MAX 200
135 /** Timeout in msec for ipc socket poll. */
136 #define IPC_NOTIFICATION_WAIT 200
137
138 static void fr_printq_delete(struct fast_reload_printq* printq);
139 static void fr_main_perform_printout(struct fast_reload_thread* fr);
140 static int fr_printq_empty(struct fast_reload_printq* printq);
141 static void fr_printq_list_insert(struct fast_reload_printq* printq,
142 struct daemon* daemon);
143 static void fr_printq_remove(struct fast_reload_printq* printq);
144 static void fr_check_cmd_from_thread(struct fast_reload_thread* fr);
145
146 static int
remote_setup_ctx(struct daemon_remote * rc,struct config_file * cfg)147 remote_setup_ctx(struct daemon_remote* rc, struct config_file* cfg)
148 {
149 char* s_cert;
150 char* s_key;
151 rc->ctx = SSL_CTX_new(SSLv23_server_method());
152 if(!rc->ctx) {
153 log_crypto_err("could not SSL_CTX_new");
154 return 0;
155 }
156 if(!listen_sslctx_setup(rc->ctx, cfg->tls_protocols)) {
157 return 0;
158 }
159
160 s_cert = fname_after_chroot(cfg->server_cert_file, cfg, 1);
161 s_key = fname_after_chroot(cfg->server_key_file, cfg, 1);
162 if(!s_cert || !s_key) {
163 log_err("out of memory in remote control fname");
164 goto setup_error;
165 }
166 verbose(VERB_ALGO, "setup SSL certificates");
167 if (!SSL_CTX_use_certificate_chain_file(rc->ctx,s_cert)) {
168 log_err("Error for server-cert-file: %s", s_cert);
169 log_crypto_err("Error in SSL_CTX use_certificate_chain_file");
170 goto setup_error;
171 }
172 if(!SSL_CTX_use_PrivateKey_file(rc->ctx,s_key,SSL_FILETYPE_PEM)) {
173 log_err("Error for server-key-file: %s", s_key);
174 log_crypto_err("Error in SSL_CTX use_PrivateKey_file");
175 goto setup_error;
176 }
177 if(!SSL_CTX_check_private_key(rc->ctx)) {
178 log_err("Error for server-key-file: %s", s_key);
179 log_crypto_err("Error in SSL_CTX check_private_key");
180 goto setup_error;
181 }
182 listen_sslctx_setup_2(rc->ctx);
183 if(!SSL_CTX_load_verify_locations(rc->ctx, s_cert, NULL)) {
184 log_crypto_err("Error setting up SSL_CTX verify locations");
185 setup_error:
186 free(s_cert);
187 free(s_key);
188 return 0;
189 }
190 SSL_CTX_set_client_CA_list(rc->ctx, SSL_load_client_CA_file(s_cert));
191 SSL_CTX_set_verify(rc->ctx, SSL_VERIFY_PEER, NULL);
192 free(s_cert);
193 free(s_key);
194 return 1;
195 }
196
197 struct daemon_remote*
daemon_remote_create(struct config_file * cfg)198 daemon_remote_create(struct config_file* cfg)
199 {
200 struct daemon_remote* rc = (struct daemon_remote*)calloc(1,
201 sizeof(*rc));
202 if(!rc) {
203 log_err("out of memory in daemon_remote_create");
204 return NULL;
205 }
206 rc->max_active = 10;
207
208 if(!cfg->remote_control_enable) {
209 rc->ctx = NULL;
210 return rc;
211 }
212 if(options_remote_is_address(cfg) && cfg->control_use_cert) {
213 if(!remote_setup_ctx(rc, cfg)) {
214 daemon_remote_delete(rc);
215 return NULL;
216 }
217 rc->use_cert = 1;
218 } else {
219 struct config_strlist* p;
220 rc->ctx = NULL;
221 rc->use_cert = 0;
222 if(!options_remote_is_address(cfg))
223 for(p = cfg->control_ifs.first; p; p = p->next) {
224 if(p->str && p->str[0] != '/')
225 log_warn("control-interface %s is not using TLS, but plain transfer, because first control-interface in config file is a local socket (starts with a /).", p->str);
226 }
227 }
228 return rc;
229 }
230
daemon_remote_clear(struct daemon_remote * rc)231 void daemon_remote_clear(struct daemon_remote* rc)
232 {
233 struct rc_state* p, *np;
234 if(!rc) return;
235 /* but do not close the ports */
236 listen_list_delete(rc->accept_list);
237 rc->accept_list = NULL;
238 /* do close these sockets */
239 p = rc->busy_list;
240 while(p) {
241 np = p->next;
242 if(p->ssl)
243 SSL_free(p->ssl);
244 comm_point_delete(p->c);
245 free(p);
246 p = np;
247 }
248 rc->busy_list = NULL;
249 rc->active = 0;
250 rc->worker = NULL;
251 }
252
daemon_remote_delete(struct daemon_remote * rc)253 void daemon_remote_delete(struct daemon_remote* rc)
254 {
255 if(!rc) return;
256 daemon_remote_clear(rc);
257 if(rc->ctx) {
258 SSL_CTX_free(rc->ctx);
259 }
260 free(rc);
261 }
262
263 /**
264 * Add and open a new control port
265 * @param ip: ip str
266 * @param nr: port nr
267 * @param list: list head
268 * @param noproto_is_err: if lack of protocol support is an error.
269 * @param cfg: config with username for chown of unix-sockets.
270 * @return false on failure.
271 */
272 static int
add_open(const char * ip,int nr,struct listen_port ** list,int noproto_is_err,struct config_file * cfg)273 add_open(const char* ip, int nr, struct listen_port** list, int noproto_is_err,
274 struct config_file* cfg)
275 {
276 struct addrinfo hints;
277 struct addrinfo* res;
278 struct listen_port* n;
279 int noproto = 0;
280 int fd, r;
281 char port[15];
282 snprintf(port, sizeof(port), "%d", nr);
283 port[sizeof(port)-1]=0;
284 memset(&hints, 0, sizeof(hints));
285 log_assert(ip);
286
287 if(ip[0] == '/') {
288 /* This looks like a local socket */
289 fd = create_local_accept_sock(ip, &noproto, cfg->use_systemd);
290 /*
291 * Change socket ownership and permissions so users other
292 * than root can access it provided they are in the same
293 * group as the user we run as.
294 */
295 if(fd != -1) {
296 #ifdef HAVE_CHOWN
297 chmod(ip, (mode_t)(S_IRUSR | S_IWUSR | S_IRGRP | S_IWGRP));
298 if (cfg->username && cfg->username[0] &&
299 cfg_uid != (uid_t)-1) {
300 if(chown(ip, cfg_uid, cfg_gid) == -1)
301 verbose(VERB_QUERY, "cannot chown %u.%u %s: %s",
302 (unsigned)cfg_uid, (unsigned)cfg_gid,
303 ip, strerror(errno));
304 }
305 #else
306 (void)cfg;
307 #endif
308 }
309 } else {
310 char* s = strchr(ip, '@');
311 char newif[128];
312 if(s) {
313 /* override port with ifspec@port */
314 int portnr;
315 if((size_t)(s-ip) >= sizeof(newif)) {
316 log_err("ifname too long: %s", ip);
317 return -1;
318 }
319 portnr = atoi(s+1);
320 if(portnr < 0 || 0 == portnr || portnr > 65535) {
321 log_err("invalid portnumber in control-interface: %s", ip);
322 return -1;
323 }
324 (void)strlcpy(newif, ip, sizeof(newif));
325 newif[s-ip] = 0;
326 ip = newif;
327 snprintf(port, sizeof(port), "%d", portnr);
328 port[sizeof(port)-1]=0;
329 }
330 hints.ai_socktype = SOCK_STREAM;
331 hints.ai_flags = AI_PASSIVE | AI_NUMERICHOST;
332 if((r = getaddrinfo(ip, port, &hints, &res)) != 0 || !res) {
333 #ifdef USE_WINSOCK
334 if(!noproto_is_err && r == EAI_NONAME) {
335 /* tried to lookup the address as name */
336 return 1; /* return success, but do nothing */
337 }
338 #endif /* USE_WINSOCK */
339 log_err("control interface %s:%s getaddrinfo: %s %s",
340 ip?ip:"default", port, gai_strerror(r),
341 #ifdef EAI_SYSTEM
342 r==EAI_SYSTEM?(char*)strerror(errno):""
343 #else
344 ""
345 #endif
346 );
347 return 0;
348 }
349
350 /* open fd */
351 fd = create_tcp_accept_sock(res, 1, &noproto, 0,
352 cfg->ip_transparent, 0, 0, cfg->ip_freebind,
353 cfg->use_systemd, cfg->ip_dscp, "unbound-control");
354 freeaddrinfo(res);
355 }
356
357 if(fd == -1 && noproto) {
358 if(!noproto_is_err)
359 return 1; /* return success, but do nothing */
360 log_err("cannot open control interface %s %d : "
361 "protocol not supported", ip, nr);
362 return 0;
363 }
364 if(fd == -1) {
365 log_err("cannot open control interface %s %d", ip, nr);
366 return 0;
367 }
368
369 /* alloc */
370 n = (struct listen_port*)calloc(1, sizeof(*n));
371 if(!n) {
372 sock_close(fd);
373 log_err("out of memory");
374 return 0;
375 }
376 n->next = *list;
377 *list = n;
378 n->fd = fd;
379 return 1;
380 }
381
daemon_remote_open_ports(struct config_file * cfg)382 struct listen_port* daemon_remote_open_ports(struct config_file* cfg)
383 {
384 struct listen_port* l = NULL;
385 log_assert(cfg->remote_control_enable && cfg->control_port);
386 if(cfg->control_ifs.first) {
387 char** rcif = NULL;
388 int i, num_rcif = 0;
389 if(!resolve_interface_names(NULL, 0, cfg->control_ifs.first,
390 &rcif, &num_rcif)) {
391 return NULL;
392 }
393 for(i=0; i<num_rcif; i++) {
394 if(!add_open(rcif[i], cfg->control_port, &l, 1, cfg)) {
395 listening_ports_free(l);
396 config_del_strarray(rcif, num_rcif);
397 return NULL;
398 }
399 }
400 config_del_strarray(rcif, num_rcif);
401 } else {
402 /* defaults */
403 if(cfg->do_ip6 &&
404 !add_open("::1", cfg->control_port, &l, 0, cfg)) {
405 listening_ports_free(l);
406 return NULL;
407 }
408 if(cfg->do_ip4 &&
409 !add_open("127.0.0.1", cfg->control_port, &l, 1, cfg)) {
410 listening_ports_free(l);
411 return NULL;
412 }
413 }
414 return l;
415 }
416
417 /** open accept commpoint */
418 static int
accept_open(struct daemon_remote * rc,int fd)419 accept_open(struct daemon_remote* rc, int fd)
420 {
421 struct listen_list* n = (struct listen_list*)malloc(sizeof(*n));
422 if(!n) {
423 log_err("out of memory");
424 return 0;
425 }
426 n->next = rc->accept_list;
427 rc->accept_list = n;
428 /* open commpt */
429 n->com = comm_point_create_raw(rc->worker->base, fd, 0,
430 &remote_accept_callback, rc);
431 if(!n->com)
432 return 0;
433 /* keep this port open, its fd is kept in the rc portlist */
434 n->com->do_not_close = 1;
435 return 1;
436 }
437
daemon_remote_open_accept(struct daemon_remote * rc,struct listen_port * ports,struct worker * worker)438 int daemon_remote_open_accept(struct daemon_remote* rc,
439 struct listen_port* ports, struct worker* worker)
440 {
441 struct listen_port* p;
442 rc->worker = worker;
443 for(p = ports; p; p = p->next) {
444 if(!accept_open(rc, p->fd)) {
445 log_err("could not create accept comm point");
446 return 0;
447 }
448 }
449 return 1;
450 }
451
daemon_remote_stop_accept(struct daemon_remote * rc)452 void daemon_remote_stop_accept(struct daemon_remote* rc)
453 {
454 struct listen_list* p;
455 for(p=rc->accept_list; p; p=p->next) {
456 comm_point_stop_listening(p->com);
457 }
458 }
459
daemon_remote_start_accept(struct daemon_remote * rc)460 void daemon_remote_start_accept(struct daemon_remote* rc)
461 {
462 struct listen_list* p;
463 for(p=rc->accept_list; p; p=p->next) {
464 comm_point_start_listening(p->com, -1, -1);
465 }
466 }
467
remote_accept_callback(struct comm_point * c,void * arg,int err,struct comm_reply * ATTR_UNUSED (rep))468 int remote_accept_callback(struct comm_point* c, void* arg, int err,
469 struct comm_reply* ATTR_UNUSED(rep))
470 {
471 struct daemon_remote* rc = (struct daemon_remote*)arg;
472 struct sockaddr_storage addr;
473 socklen_t addrlen;
474 int newfd;
475 struct rc_state* n;
476 if(err != NETEVENT_NOERROR) {
477 log_err("error %d on remote_accept_callback", err);
478 return 0;
479 }
480 /* perform the accept */
481 newfd = comm_point_perform_accept(c, &addr, &addrlen);
482 if(newfd == -1)
483 return 0;
484 /* create new commpoint unless we are servicing already */
485 if(rc->active >= rc->max_active) {
486 log_warn("drop incoming remote control: too many connections");
487 close_exit:
488 sock_close(newfd);
489 return 0;
490 }
491
492 /* setup commpoint to service the remote control command */
493 n = (struct rc_state*)calloc(1, sizeof(*n));
494 if(!n) {
495 log_err("out of memory");
496 goto close_exit;
497 }
498 n->fd = newfd;
499 /* start in reading state */
500 n->c = comm_point_create_raw(rc->worker->base, newfd, 0,
501 &remote_control_callback, n);
502 if(!n->c) {
503 log_err("out of memory");
504 free(n);
505 goto close_exit;
506 }
507 log_addr(VERB_QUERY, "new control connection from", &addr, addrlen);
508 n->c->do_not_close = 0;
509 comm_point_stop_listening(n->c);
510 comm_point_start_listening(n->c, -1, REMOTE_CONTROL_TCP_TIMEOUT);
511 memcpy(&n->c->repinfo.remote_addr, &addr, addrlen);
512 n->c->repinfo.remote_addrlen = addrlen;
513 if(rc->use_cert) {
514 n->shake_state = rc_hs_read;
515 n->ssl = SSL_new(rc->ctx);
516 if(!n->ssl) {
517 log_crypto_err("could not SSL_new");
518 comm_point_delete(n->c);
519 free(n);
520 goto close_exit;
521 }
522 SSL_set_accept_state(n->ssl);
523 (void)SSL_set_mode(n->ssl, (long)SSL_MODE_AUTO_RETRY);
524 if(!SSL_set_fd(n->ssl, newfd)) {
525 log_crypto_err("could not SSL_set_fd");
526 SSL_free(n->ssl);
527 comm_point_delete(n->c);
528 free(n);
529 goto close_exit;
530 }
531 } else {
532 n->ssl = NULL;
533 }
534
535 n->rc = rc;
536 n->next = rc->busy_list;
537 rc->busy_list = n;
538 rc->active ++;
539
540 /* perform the first nonblocking read already, for windows,
541 * so it can return wouldblock. could be faster too. */
542 (void)remote_control_callback(n->c, n, NETEVENT_NOERROR, NULL);
543 return 0;
544 }
545
546 /** delete from list */
547 static void
state_list_remove_elem(struct rc_state ** list,struct comm_point * c)548 state_list_remove_elem(struct rc_state** list, struct comm_point* c)
549 {
550 while(*list) {
551 if( (*list)->c == c) {
552 *list = (*list)->next;
553 return;
554 }
555 list = &(*list)->next;
556 }
557 }
558
559 /** decrease active count and remove commpoint from busy list */
560 static void
clean_point(struct daemon_remote * rc,struct rc_state * s)561 clean_point(struct daemon_remote* rc, struct rc_state* s)
562 {
563 if(!s->rc) {
564 /* the state has been picked up and moved away */
565 free(s);
566 return;
567 }
568 state_list_remove_elem(&rc->busy_list, s->c);
569 rc->active --;
570 if(s->ssl) {
571 SSL_shutdown(s->ssl);
572 SSL_free(s->ssl);
573 }
574 comm_point_delete(s->c);
575 free(s);
576 }
577
578 int
ssl_print_text(RES * res,const char * text)579 ssl_print_text(RES* res, const char* text)
580 {
581 int r;
582 if(!res)
583 return 0;
584 if(res->ssl) {
585 ERR_clear_error();
586 if((r=SSL_write(res->ssl, text, (int)strlen(text))) <= 0) {
587 int r2;
588 if((r2=SSL_get_error(res->ssl, r)) == SSL_ERROR_ZERO_RETURN) {
589 verbose(VERB_QUERY, "warning, in SSL_write, peer "
590 "closed connection");
591 return 0;
592 }
593 log_crypto_err_io("could not SSL_write", r2);
594 return 0;
595 }
596 } else {
597 size_t at = 0;
598 while(at < strlen(text)) {
599 ssize_t r = send(res->fd, text+at, strlen(text)-at, 0);
600 if(r == -1) {
601 if(errno == EAGAIN || errno == EINTR)
602 continue;
603 log_err("could not send: %s",
604 sock_strerror(errno));
605 return 0;
606 }
607 at += r;
608 }
609 }
610 return 1;
611 }
612
613 /** print text over the ssl connection */
614 static int
ssl_print_vmsg(RES * ssl,const char * format,va_list args)615 ssl_print_vmsg(RES* ssl, const char* format, va_list args)
616 {
617 char msg[65535];
618 vsnprintf(msg, sizeof(msg), format, args);
619 return ssl_print_text(ssl, msg);
620 }
621
622 /** printf style printing to the ssl connection */
ssl_printf(RES * ssl,const char * format,...)623 int ssl_printf(RES* ssl, const char* format, ...)
624 {
625 va_list args;
626 int ret;
627 va_start(args, format);
628 ret = ssl_print_vmsg(ssl, format, args);
629 va_end(args);
630 return ret;
631 }
632
633 int
ssl_read_line(RES * res,char * buf,size_t max)634 ssl_read_line(RES* res, char* buf, size_t max)
635 {
636 int r;
637 size_t len = 0;
638 if(!res)
639 return 0;
640 while(len < max) {
641 if(res->ssl) {
642 ERR_clear_error();
643 if((r=SSL_read(res->ssl, buf+len, 1)) <= 0) {
644 int r2;
645 if((r2=SSL_get_error(res->ssl, r)) == SSL_ERROR_ZERO_RETURN) {
646 buf[len] = 0;
647 return 1;
648 }
649 log_crypto_err_io("could not SSL_read", r2);
650 return 0;
651 }
652 } else {
653 while(1) {
654 ssize_t rr = recv(res->fd, buf+len, 1, 0);
655 if(rr <= 0) {
656 if(rr == 0) {
657 buf[len] = 0;
658 return 1;
659 }
660 if(errno == EINTR || errno == EAGAIN)
661 continue;
662 if(rr < 0) log_err("could not recv: %s",
663 sock_strerror(errno));
664 return 0;
665 }
666 break;
667 }
668 }
669 if(buf[len] == '\n') {
670 /* return string without \n */
671 buf[len] = 0;
672 return 1;
673 }
674 len++;
675 }
676 buf[max-1] = 0;
677 log_err("control line too long (%d): %s", (int)max, buf);
678 return 0;
679 }
680
681 /** skip whitespace, return new pointer into string */
682 static char*
skipwhite(char * str)683 skipwhite(char* str)
684 {
685 /* EOS \0 is not a space */
686 while( isspace((unsigned char)*str) )
687 str++;
688 return str;
689 }
690
691 /** send the OK to the control client */
send_ok(RES * ssl)692 static void send_ok(RES* ssl)
693 {
694 (void)ssl_printf(ssl, "ok\n");
695 }
696
697 /** tell other processes to execute the command */
698 static void
distribute_cmd(struct daemon_remote * rc,RES * ssl,char * cmd)699 distribute_cmd(struct daemon_remote* rc, RES* ssl, char* cmd)
700 {
701 int i;
702 if(!cmd || !ssl)
703 return;
704 /* skip i=0 which is me */
705 for(i=1; i<rc->worker->daemon->num; i++) {
706 worker_send_cmd(rc->worker->daemon->workers[i],
707 worker_cmd_remote);
708 if(!tube_write_msg(rc->worker->daemon->workers[i]->cmd,
709 (uint8_t*)cmd, strlen(cmd)+1, 0)) {
710 (void)ssl_printf(ssl, "error could not distribute cmd\n");
711 return;
712 }
713 }
714 }
715
716 /** do the stop command */
717 static void
do_stop(RES * ssl,struct worker * worker)718 do_stop(RES* ssl, struct worker* worker)
719 {
720 worker->need_to_exit = 1;
721 comm_base_exit(worker->base);
722 send_ok(ssl);
723 }
724
725 /** do the reload command */
726 static void
do_reload(RES * ssl,struct worker * worker,int reuse_cache)727 do_reload(RES* ssl, struct worker* worker, int reuse_cache)
728 {
729 worker->reuse_cache = reuse_cache;
730 worker->need_to_exit = 0;
731 comm_base_exit(worker->base);
732 send_ok(ssl);
733 }
734
735 #ifndef THREADS_DISABLED
736 /** parse fast reload command options. */
737 static int
fr_parse_options(RES * ssl,char * arg,int * fr_verb,int * fr_nopause,int * fr_drop_mesh)738 fr_parse_options(RES* ssl, char* arg, int* fr_verb, int* fr_nopause,
739 int* fr_drop_mesh)
740 {
741 char* argp = arg;
742 while(*argp=='+') {
743 argp++;
744 while(*argp!=0 && *argp!=' ' && *argp!='\t') {
745 if(*argp == 'v') {
746 (*fr_verb)++;
747 } else if(*argp == 'p') {
748 (*fr_nopause) = 1;
749 } else if(*argp == 'd') {
750 (*fr_drop_mesh) = 1;
751 } else {
752 if(!ssl_printf(ssl,
753 "error: unknown option '+%c'\n",
754 *argp))
755 return 0;
756 return 0;
757 }
758 argp++;
759 }
760 argp = skipwhite(argp);
761 }
762 if(*argp!=0) {
763 if(!ssl_printf(ssl, "error: unknown option '%s'\n", argp))
764 return 0;
765 return 0;
766 }
767 return 1;
768 }
769 #endif /* !THREADS_DISABLED */
770
771 /** do the fast_reload command */
772 static void
do_fast_reload(RES * ssl,struct worker * worker,struct rc_state * s,char * arg)773 do_fast_reload(RES* ssl, struct worker* worker, struct rc_state* s, char* arg)
774 {
775 #ifdef THREADS_DISABLED
776 if(!ssl_printf(ssl, "error: no threads for fast_reload, compiled without threads.\n"))
777 return;
778 (void)worker;
779 (void)s;
780 (void)arg;
781 #else
782 int fr_verb = 0, fr_nopause = 0, fr_drop_mesh = 0;
783 if(!fr_parse_options(ssl, arg, &fr_verb, &fr_nopause, &fr_drop_mesh))
784 return;
785 if(fr_verb >= 1) {
786 if(!ssl_printf(ssl, "start fast_reload\n"))
787 return;
788 }
789 fast_reload_thread_start(ssl, worker, s, fr_verb, fr_nopause,
790 fr_drop_mesh);
791 #endif
792 }
793
794 /** do the verbosity command */
795 static void
do_verbosity(RES * ssl,char * str)796 do_verbosity(RES* ssl, char* str)
797 {
798 int val = atoi(str);
799 if(val == 0 && strcmp(str, "0") != 0) {
800 ssl_printf(ssl, "error in verbosity number syntax: %s\n", str);
801 return;
802 }
803 verbosity = val;
804 send_ok(ssl);
805 }
806
807 /** print stats from statinfo */
808 static int
print_stats(RES * ssl,const char * nm,struct ub_stats_info * s)809 print_stats(RES* ssl, const char* nm, struct ub_stats_info* s)
810 {
811 struct timeval sumwait, avg;
812 if(!ssl_printf(ssl, "%s.num.queries"SQ"%lu\n", nm,
813 (unsigned long)s->svr.num_queries)) return 0;
814 if(!ssl_printf(ssl, "%s.num.queries_ip_ratelimited"SQ"%lu\n", nm,
815 (unsigned long)s->svr.num_queries_ip_ratelimited)) return 0;
816 if(!ssl_printf(ssl, "%s.num.queries_cookie_valid"SQ"%lu\n", nm,
817 (unsigned long)s->svr.num_queries_cookie_valid)) return 0;
818 if(!ssl_printf(ssl, "%s.num.queries_cookie_client"SQ"%lu\n", nm,
819 (unsigned long)s->svr.num_queries_cookie_client)) return 0;
820 if(!ssl_printf(ssl, "%s.num.queries_cookie_invalid"SQ"%lu\n", nm,
821 (unsigned long)s->svr.num_queries_cookie_invalid)) return 0;
822 if(!ssl_printf(ssl, "%s.num.queries_discard_timeout"SQ"%lu\n", nm,
823 (unsigned long)s->svr.num_queries_discard_timeout)) return 0;
824 if(!ssl_printf(ssl, "%s.num.queries_replyaddr_limit"SQ"%lu\n", nm,
825 (unsigned long)s->svr.num_queries_replyaddr_limit)) return 0;
826 if(!ssl_printf(ssl, "%s.num.queries_wait_limit"SQ"%lu\n", nm,
827 (unsigned long)s->svr.num_queries_wait_limit)) return 0;
828 if(!ssl_printf(ssl, "%s.num.cachehits"SQ"%lu\n", nm,
829 (unsigned long)(s->svr.num_queries
830 - s->svr.num_queries_missed_cache))) return 0;
831 if(!ssl_printf(ssl, "%s.num.cachemiss"SQ"%lu\n", nm,
832 (unsigned long)s->svr.num_queries_missed_cache)) return 0;
833 if(!ssl_printf(ssl, "%s.num.prefetch"SQ"%lu\n", nm,
834 (unsigned long)s->svr.num_queries_prefetch)) return 0;
835 if(!ssl_printf(ssl, "%s.num.queries_timed_out"SQ"%lu\n", nm,
836 (unsigned long)s->svr.num_queries_timed_out)) return 0;
837 if(!ssl_printf(ssl, "%s.query.queue_time_us.max"SQ"%lu\n", nm,
838 (unsigned long)s->svr.max_query_time_us)) return 0;
839 if(!ssl_printf(ssl, "%s.num.expired"SQ"%lu\n", nm,
840 (unsigned long)s->svr.ans_expired)) return 0;
841 if(!ssl_printf(ssl, "%s.num.recursivereplies"SQ"%lu\n", nm,
842 (unsigned long)s->mesh_replies_sent)) return 0;
843 #ifdef USE_DNSCRYPT
844 if(!ssl_printf(ssl, "%s.num.dnscrypt.crypted"SQ"%lu\n", nm,
845 (unsigned long)s->svr.num_query_dnscrypt_crypted)) return 0;
846 if(!ssl_printf(ssl, "%s.num.dnscrypt.cert"SQ"%lu\n", nm,
847 (unsigned long)s->svr.num_query_dnscrypt_cert)) return 0;
848 if(!ssl_printf(ssl, "%s.num.dnscrypt.cleartext"SQ"%lu\n", nm,
849 (unsigned long)s->svr.num_query_dnscrypt_cleartext)) return 0;
850 if(!ssl_printf(ssl, "%s.num.dnscrypt.malformed"SQ"%lu\n", nm,
851 (unsigned long)s->svr.num_query_dnscrypt_crypted_malformed)) return 0;
852 #endif
853 if(!ssl_printf(ssl, "%s.num.dns_error_reports"SQ"%lu\n", nm,
854 (unsigned long)s->svr.num_dns_error_reports)) return 0;
855 if(!ssl_printf(ssl, "%s.requestlist.avg"SQ"%g\n", nm,
856 (s->svr.num_queries_missed_cache+s->svr.num_queries_prefetch)?
857 (double)s->svr.sum_query_list_size/
858 (double)(s->svr.num_queries_missed_cache+
859 s->svr.num_queries_prefetch) : 0.0)) return 0;
860 if(!ssl_printf(ssl, "%s.requestlist.max"SQ"%lu\n", nm,
861 (unsigned long)s->svr.max_query_list_size)) return 0;
862 if(!ssl_printf(ssl, "%s.requestlist.overwritten"SQ"%lu\n", nm,
863 (unsigned long)s->mesh_jostled)) return 0;
864 if(!ssl_printf(ssl, "%s.requestlist.exceeded"SQ"%lu\n", nm,
865 (unsigned long)s->mesh_dropped)) return 0;
866 if(!ssl_printf(ssl, "%s.requestlist.current.all"SQ"%lu\n", nm,
867 (unsigned long)s->mesh_num_states)) return 0;
868 if(!ssl_printf(ssl, "%s.requestlist.current.user"SQ"%lu\n", nm,
869 (unsigned long)s->mesh_num_reply_states)) return 0;
870 if(!ssl_printf(ssl, "%s.requestlist.current.replies"SQ"%lu\n", nm,
871 (unsigned long)s->mesh_num_reply_addrs)) return 0;
872 #ifndef S_SPLINT_S
873 sumwait.tv_sec = s->mesh_replies_sum_wait_sec;
874 sumwait.tv_usec = s->mesh_replies_sum_wait_usec;
875 #endif
876 timeval_divide(&avg, &sumwait, s->mesh_replies_sent);
877 if(!ssl_printf(ssl, "%s.recursion.time.avg"SQ ARG_LL "d.%6.6d\n", nm,
878 (long long)avg.tv_sec, (int)avg.tv_usec)) return 0;
879 if(!ssl_printf(ssl, "%s.recursion.time.median"SQ"%g\n", nm,
880 s->mesh_time_median)) return 0;
881 if(!ssl_printf(ssl, "%s.tcpusage"SQ"%lu\n", nm,
882 (unsigned long)s->svr.tcp_accept_usage)) return 0;
883 return 1;
884 }
885
886 /** print stats for one thread */
887 static int
print_thread_stats(RES * ssl,int i,struct ub_stats_info * s)888 print_thread_stats(RES* ssl, int i, struct ub_stats_info* s)
889 {
890 char nm[32];
891 snprintf(nm, sizeof(nm), "thread%d", i);
892 nm[sizeof(nm)-1]=0;
893 return print_stats(ssl, nm, s);
894 }
895
896 /** print long number */
897 static int
print_longnum(RES * ssl,const char * desc,size_t x)898 print_longnum(RES* ssl, const char* desc, size_t x)
899 {
900 if(x > 1024*1024*1024) {
901 /* more than a Gb */
902 size_t front = x / (size_t)1000000;
903 size_t back = x % (size_t)1000000;
904 return ssl_printf(ssl, "%s%u%6.6u\n", desc,
905 (unsigned)front, (unsigned)back);
906 } else {
907 return ssl_printf(ssl, "%s%lu\n", desc, (unsigned long)x);
908 }
909 }
910
911 /** print mem stats */
912 static int
print_mem(RES * ssl,struct worker * worker,struct daemon * daemon,struct ub_stats_info * s)913 print_mem(RES* ssl, struct worker* worker, struct daemon* daemon,
914 struct ub_stats_info* s)
915 {
916 size_t msg, rrset, val, iter, respip;
917 #ifdef CLIENT_SUBNET
918 size_t subnet = 0;
919 #endif /* CLIENT_SUBNET */
920 #ifdef USE_IPSECMOD
921 size_t ipsecmod = 0;
922 #endif /* USE_IPSECMOD */
923 #ifdef USE_DNSCRYPT
924 size_t dnscrypt_shared_secret = 0;
925 size_t dnscrypt_nonce = 0;
926 #endif /* USE_DNSCRYPT */
927 #ifdef WITH_DYNLIBMODULE
928 size_t dynlib = 0;
929 #endif /* WITH_DYNLIBMODULE */
930 msg = slabhash_get_mem(daemon->env->msg_cache);
931 rrset = slabhash_get_mem(&daemon->env->rrset_cache->table);
932 val = mod_get_mem(&worker->env, "validator");
933 iter = mod_get_mem(&worker->env, "iterator");
934 respip = mod_get_mem(&worker->env, "respip");
935 #ifdef CLIENT_SUBNET
936 subnet = mod_get_mem(&worker->env, "subnetcache");
937 #endif /* CLIENT_SUBNET */
938 #ifdef USE_IPSECMOD
939 ipsecmod = mod_get_mem(&worker->env, "ipsecmod");
940 #endif /* USE_IPSECMOD */
941 #ifdef USE_DNSCRYPT
942 if(daemon->dnscenv) {
943 dnscrypt_shared_secret = slabhash_get_mem(
944 daemon->dnscenv->shared_secrets_cache);
945 dnscrypt_nonce = slabhash_get_mem(daemon->dnscenv->nonces_cache);
946 }
947 #endif /* USE_DNSCRYPT */
948 #ifdef WITH_DYNLIBMODULE
949 dynlib = mod_get_mem(&worker->env, "dynlib");
950 #endif /* WITH_DYNLIBMODULE */
951
952 if(!print_longnum(ssl, "mem.cache.rrset"SQ, rrset))
953 return 0;
954 if(!print_longnum(ssl, "mem.cache.message"SQ, msg))
955 return 0;
956 if(!print_longnum(ssl, "mem.mod.iterator"SQ, iter))
957 return 0;
958 if(!print_longnum(ssl, "mem.mod.validator"SQ, val))
959 return 0;
960 if(!print_longnum(ssl, "mem.mod.respip"SQ, respip))
961 return 0;
962 #ifdef CLIENT_SUBNET
963 if(!print_longnum(ssl, "mem.mod.subnet"SQ, subnet))
964 return 0;
965 #endif /* CLIENT_SUBNET */
966 #ifdef USE_IPSECMOD
967 if(!print_longnum(ssl, "mem.mod.ipsecmod"SQ, ipsecmod))
968 return 0;
969 #endif /* USE_IPSECMOD */
970 #ifdef USE_DNSCRYPT
971 if(!print_longnum(ssl, "mem.cache.dnscrypt_shared_secret"SQ,
972 dnscrypt_shared_secret))
973 return 0;
974 if(!print_longnum(ssl, "mem.cache.dnscrypt_nonce"SQ,
975 dnscrypt_nonce))
976 return 0;
977 #endif /* USE_DNSCRYPT */
978 #ifdef WITH_DYNLIBMODULE
979 if(!print_longnum(ssl, "mem.mod.dynlibmod"SQ, dynlib))
980 return 0;
981 #endif /* WITH_DYNLIBMODULE */
982 if(!print_longnum(ssl, "mem.streamwait"SQ,
983 (size_t)s->svr.mem_stream_wait))
984 return 0;
985 if(!print_longnum(ssl, "mem.http.query_buffer"SQ,
986 (size_t)s->svr.mem_http2_query_buffer))
987 return 0;
988 if(!print_longnum(ssl, "mem.http.response_buffer"SQ,
989 (size_t)s->svr.mem_http2_response_buffer))
990 return 0;
991 #ifdef HAVE_NGTCP2
992 if(!print_longnum(ssl, "mem.quic"SQ, (size_t)s->svr.mem_quic))
993 return 0;
994 #endif /* HAVE_NGTCP2 */
995 return 1;
996 }
997
998 /** print uptime stats */
999 static int
print_uptime(RES * ssl,struct worker * worker,int reset)1000 print_uptime(RES* ssl, struct worker* worker, int reset)
1001 {
1002 struct timeval now = *worker->env.now_tv;
1003 struct timeval up, dt;
1004 timeval_subtract(&up, &now, &worker->daemon->time_boot);
1005 timeval_subtract(&dt, &now, &worker->daemon->time_last_stat);
1006 if(reset)
1007 worker->daemon->time_last_stat = now;
1008 if(!ssl_printf(ssl, "time.now"SQ ARG_LL "d.%6.6d\n",
1009 (long long)now.tv_sec, (unsigned)now.tv_usec)) return 0;
1010 if(!ssl_printf(ssl, "time.up"SQ ARG_LL "d.%6.6d\n",
1011 (long long)up.tv_sec, (unsigned)up.tv_usec)) return 0;
1012 if(!ssl_printf(ssl, "time.elapsed"SQ ARG_LL "d.%6.6d\n",
1013 (long long)dt.tv_sec, (unsigned)dt.tv_usec)) return 0;
1014 return 1;
1015 }
1016
1017 /** print extended histogram */
1018 static int
print_hist(RES * ssl,struct ub_stats_info * s)1019 print_hist(RES* ssl, struct ub_stats_info* s)
1020 {
1021 struct timehist* hist;
1022 size_t i;
1023 hist = timehist_setup();
1024 if(!hist) {
1025 log_err("out of memory");
1026 return 0;
1027 }
1028 timehist_import(hist, s->svr.hist, NUM_BUCKETS_HIST);
1029 for(i=0; i<hist->num; i++) {
1030 if(!ssl_printf(ssl,
1031 "histogram.%6.6d.%6.6d.to.%6.6d.%6.6d=%lu\n",
1032 (int)hist->buckets[i].lower.tv_sec,
1033 (int)hist->buckets[i].lower.tv_usec,
1034 (int)hist->buckets[i].upper.tv_sec,
1035 (int)hist->buckets[i].upper.tv_usec,
1036 (unsigned long)hist->buckets[i].count)) {
1037 timehist_delete(hist);
1038 return 0;
1039 }
1040 }
1041 timehist_delete(hist);
1042 return 1;
1043 }
1044
1045 /** print extended stats */
1046 static int
print_ext(RES * ssl,struct ub_stats_info * s,int inhibit_zero)1047 print_ext(RES* ssl, struct ub_stats_info* s, int inhibit_zero)
1048 {
1049 int i;
1050 char nm[32];
1051 const sldns_rr_descriptor* desc;
1052 const sldns_lookup_table* lt;
1053 /* TYPE */
1054 for(i=0; i<UB_STATS_QTYPE_NUM; i++) {
1055 if(inhibit_zero && s->svr.qtype[i] == 0)
1056 continue;
1057 desc = sldns_rr_descript((uint16_t)i);
1058 if(desc && desc->_name) {
1059 snprintf(nm, sizeof(nm), "%s", desc->_name);
1060 } else if (i == LDNS_RR_TYPE_IXFR) {
1061 snprintf(nm, sizeof(nm), "IXFR");
1062 } else if (i == LDNS_RR_TYPE_AXFR) {
1063 snprintf(nm, sizeof(nm), "AXFR");
1064 } else if (i == LDNS_RR_TYPE_MAILA) {
1065 snprintf(nm, sizeof(nm), "MAILA");
1066 } else if (i == LDNS_RR_TYPE_MAILB) {
1067 snprintf(nm, sizeof(nm), "MAILB");
1068 } else if (i == LDNS_RR_TYPE_ANY) {
1069 snprintf(nm, sizeof(nm), "ANY");
1070 } else {
1071 snprintf(nm, sizeof(nm), "TYPE%d", i);
1072 }
1073 if(!ssl_printf(ssl, "num.query.type.%s"SQ"%lu\n",
1074 nm, (unsigned long)s->svr.qtype[i])) return 0;
1075 }
1076 if(!inhibit_zero || s->svr.qtype_big) {
1077 if(!ssl_printf(ssl, "num.query.type.other"SQ"%lu\n",
1078 (unsigned long)s->svr.qtype_big)) return 0;
1079 }
1080 /* CLASS */
1081 for(i=0; i<UB_STATS_QCLASS_NUM; i++) {
1082 if(inhibit_zero && s->svr.qclass[i] == 0)
1083 continue;
1084 lt = sldns_lookup_by_id(sldns_rr_classes, i);
1085 if(lt && lt->name) {
1086 snprintf(nm, sizeof(nm), "%s", lt->name);
1087 } else {
1088 snprintf(nm, sizeof(nm), "CLASS%d", i);
1089 }
1090 if(!ssl_printf(ssl, "num.query.class.%s"SQ"%lu\n",
1091 nm, (unsigned long)s->svr.qclass[i])) return 0;
1092 }
1093 if(!inhibit_zero || s->svr.qclass_big) {
1094 if(!ssl_printf(ssl, "num.query.class.other"SQ"%lu\n",
1095 (unsigned long)s->svr.qclass_big)) return 0;
1096 }
1097 /* OPCODE */
1098 for(i=0; i<UB_STATS_OPCODE_NUM; i++) {
1099 if(inhibit_zero && s->svr.qopcode[i] == 0)
1100 continue;
1101 lt = sldns_lookup_by_id(sldns_opcodes, i);
1102 if(lt && lt->name) {
1103 snprintf(nm, sizeof(nm), "%s", lt->name);
1104 } else {
1105 snprintf(nm, sizeof(nm), "OPCODE%d", i);
1106 }
1107 if(!ssl_printf(ssl, "num.query.opcode.%s"SQ"%lu\n",
1108 nm, (unsigned long)s->svr.qopcode[i])) return 0;
1109 }
1110 /* transport */
1111 if(!ssl_printf(ssl, "num.query.tcp"SQ"%lu\n",
1112 (unsigned long)s->svr.qtcp)) return 0;
1113 if(!ssl_printf(ssl, "num.query.tcpout"SQ"%lu\n",
1114 (unsigned long)s->svr.qtcp_outgoing)) return 0;
1115 if(!ssl_printf(ssl, "num.query.udpout"SQ"%lu\n",
1116 (unsigned long)s->svr.qudp_outgoing)) return 0;
1117 if(!ssl_printf(ssl, "num.query.tls"SQ"%lu\n",
1118 (unsigned long)s->svr.qtls)) return 0;
1119 if(!ssl_printf(ssl, "num.query.tls.resume"SQ"%lu\n",
1120 (unsigned long)s->svr.qtls_resume)) return 0;
1121 if(!ssl_printf(ssl, "num.query.ipv6"SQ"%lu\n",
1122 (unsigned long)s->svr.qipv6)) return 0;
1123 if(!ssl_printf(ssl, "num.query.https"SQ"%lu\n",
1124 (unsigned long)s->svr.qhttps)) return 0;
1125 #ifdef HAVE_NGTCP2
1126 if(!ssl_printf(ssl, "num.query.quic"SQ"%lu\n",
1127 (unsigned long)s->svr.qquic)) return 0;
1128 #endif /* HAVE_NGTCP2 */
1129 /* flags */
1130 if(!ssl_printf(ssl, "num.query.flags.QR"SQ"%lu\n",
1131 (unsigned long)s->svr.qbit_QR)) return 0;
1132 if(!ssl_printf(ssl, "num.query.flags.AA"SQ"%lu\n",
1133 (unsigned long)s->svr.qbit_AA)) return 0;
1134 if(!ssl_printf(ssl, "num.query.flags.TC"SQ"%lu\n",
1135 (unsigned long)s->svr.qbit_TC)) return 0;
1136 if(!ssl_printf(ssl, "num.query.flags.RD"SQ"%lu\n",
1137 (unsigned long)s->svr.qbit_RD)) return 0;
1138 if(!ssl_printf(ssl, "num.query.flags.RA"SQ"%lu\n",
1139 (unsigned long)s->svr.qbit_RA)) return 0;
1140 if(!ssl_printf(ssl, "num.query.flags.Z"SQ"%lu\n",
1141 (unsigned long)s->svr.qbit_Z)) return 0;
1142 if(!ssl_printf(ssl, "num.query.flags.AD"SQ"%lu\n",
1143 (unsigned long)s->svr.qbit_AD)) return 0;
1144 if(!ssl_printf(ssl, "num.query.flags.CD"SQ"%lu\n",
1145 (unsigned long)s->svr.qbit_CD)) return 0;
1146 if(!ssl_printf(ssl, "num.query.edns.present"SQ"%lu\n",
1147 (unsigned long)s->svr.qEDNS)) return 0;
1148 if(!ssl_printf(ssl, "num.query.edns.DO"SQ"%lu\n",
1149 (unsigned long)s->svr.qEDNS_DO)) return 0;
1150
1151 /* RCODE */
1152 for(i=0; i<UB_STATS_RCODE_NUM; i++) {
1153 /* Always include RCODEs 0-5 */
1154 if(inhibit_zero && i > LDNS_RCODE_REFUSED && s->svr.ans_rcode[i] == 0)
1155 continue;
1156 lt = sldns_lookup_by_id(sldns_rcodes, i);
1157 if(lt && lt->name) {
1158 snprintf(nm, sizeof(nm), "%s", lt->name);
1159 } else {
1160 snprintf(nm, sizeof(nm), "RCODE%d", i);
1161 }
1162 if(!ssl_printf(ssl, "num.answer.rcode.%s"SQ"%lu\n",
1163 nm, (unsigned long)s->svr.ans_rcode[i])) return 0;
1164 }
1165 if(!inhibit_zero || s->svr.ans_rcode_nodata) {
1166 if(!ssl_printf(ssl, "num.answer.rcode.nodata"SQ"%lu\n",
1167 (unsigned long)s->svr.ans_rcode_nodata)) return 0;
1168 }
1169 /* iteration */
1170 if(!ssl_printf(ssl, "num.query.ratelimited"SQ"%lu\n",
1171 (unsigned long)s->svr.queries_ratelimited)) return 0;
1172 /* validation */
1173 if(!ssl_printf(ssl, "num.answer.secure"SQ"%lu\n",
1174 (unsigned long)s->svr.ans_secure)) return 0;
1175 if(!ssl_printf(ssl, "num.answer.bogus"SQ"%lu\n",
1176 (unsigned long)s->svr.ans_bogus)) return 0;
1177 if(!ssl_printf(ssl, "num.rrset.bogus"SQ"%lu\n",
1178 (unsigned long)s->svr.rrset_bogus)) return 0;
1179 if(!ssl_printf(ssl, "num.valops"SQ"%lu\n",
1180 (unsigned long)s->svr.val_ops)) return 0;
1181 if(!ssl_printf(ssl, "num.query.aggressive.NOERROR"SQ"%lu\n",
1182 (unsigned long)s->svr.num_neg_cache_noerror)) return 0;
1183 if(!ssl_printf(ssl, "num.query.aggressive.NXDOMAIN"SQ"%lu\n",
1184 (unsigned long)s->svr.num_neg_cache_nxdomain)) return 0;
1185 /* threat detection */
1186 if(!ssl_printf(ssl, "unwanted.queries"SQ"%lu\n",
1187 (unsigned long)s->svr.unwanted_queries)) return 0;
1188 if(!ssl_printf(ssl, "unwanted.replies"SQ"%lu\n",
1189 (unsigned long)s->svr.unwanted_replies)) return 0;
1190 /* cache counts */
1191 if(!ssl_printf(ssl, "msg.cache.count"SQ"%u\n",
1192 (unsigned)s->svr.msg_cache_count)) return 0;
1193 if(!ssl_printf(ssl, "rrset.cache.count"SQ"%u\n",
1194 (unsigned)s->svr.rrset_cache_count)) return 0;
1195 if(!ssl_printf(ssl, "infra.cache.count"SQ"%u\n",
1196 (unsigned)s->svr.infra_cache_count)) return 0;
1197 if(!ssl_printf(ssl, "key.cache.count"SQ"%u\n",
1198 (unsigned)s->svr.key_cache_count)) return 0;
1199 /* max collisions */
1200 if(!ssl_printf(ssl, "msg.cache.max_collisions"SQ"%u\n",
1201 (unsigned)s->svr.msg_cache_max_collisions)) return 0;
1202 if(!ssl_printf(ssl, "rrset.cache.max_collisions"SQ"%u\n",
1203 (unsigned)s->svr.rrset_cache_max_collisions)) return 0;
1204 /* applied RPZ actions */
1205 for(i=0; i<UB_STATS_RPZ_ACTION_NUM; i++) {
1206 if(i == RPZ_NO_OVERRIDE_ACTION)
1207 continue;
1208 if(inhibit_zero && s->svr.rpz_action[i] == 0)
1209 continue;
1210 if(!ssl_printf(ssl, "num.rpz.action.%s"SQ"%lu\n",
1211 rpz_action_to_string(i),
1212 (unsigned long)s->svr.rpz_action[i])) return 0;
1213 }
1214 #ifdef USE_DNSCRYPT
1215 if(!ssl_printf(ssl, "dnscrypt_shared_secret.cache.count"SQ"%u\n",
1216 (unsigned)s->svr.shared_secret_cache_count)) return 0;
1217 if(!ssl_printf(ssl, "dnscrypt_nonce.cache.count"SQ"%u\n",
1218 (unsigned)s->svr.nonce_cache_count)) return 0;
1219 if(!ssl_printf(ssl, "num.query.dnscrypt.shared_secret.cachemiss"SQ"%lu\n",
1220 (unsigned long)s->svr.num_query_dnscrypt_secret_missed_cache)) return 0;
1221 if(!ssl_printf(ssl, "num.query.dnscrypt.replay"SQ"%lu\n",
1222 (unsigned long)s->svr.num_query_dnscrypt_replay)) return 0;
1223 #endif /* USE_DNSCRYPT */
1224 if(!ssl_printf(ssl, "num.query.authzone.up"SQ"%lu\n",
1225 (unsigned long)s->svr.num_query_authzone_up)) return 0;
1226 if(!ssl_printf(ssl, "num.query.authzone.down"SQ"%lu\n",
1227 (unsigned long)s->svr.num_query_authzone_down)) return 0;
1228 #ifdef CLIENT_SUBNET
1229 if(!ssl_printf(ssl, "num.query.subnet"SQ"%lu\n",
1230 (unsigned long)s->svr.num_query_subnet)) return 0;
1231 if(!ssl_printf(ssl, "num.query.subnet_cache"SQ"%lu\n",
1232 (unsigned long)s->svr.num_query_subnet_cache)) return 0;
1233 #endif /* CLIENT_SUBNET */
1234 #ifdef USE_CACHEDB
1235 if(!ssl_printf(ssl, "num.query.cachedb"SQ"%lu\n",
1236 (unsigned long)s->svr.num_query_cachedb)) return 0;
1237 #endif /* USE_CACHEDB */
1238 return 1;
1239 }
1240
1241 /** do the stats command */
1242 static void
do_stats(RES * ssl,struct worker * worker,int reset)1243 do_stats(RES* ssl, struct worker* worker, int reset)
1244 {
1245 struct daemon* daemon = worker->daemon;
1246 struct ub_stats_info total;
1247 struct ub_stats_info s;
1248 int i;
1249 memset(&total, 0, sizeof(total));
1250 log_assert(daemon->num > 0);
1251 /* gather all thread statistics in one place */
1252 for(i=0; i<daemon->num; i++) {
1253 server_stats_obtain(worker, daemon->workers[i], &s, reset);
1254 if(!print_thread_stats(ssl, i, &s))
1255 return;
1256 if(i == 0)
1257 total = s;
1258 else server_stats_add(&total, &s);
1259 }
1260 /* print the thread statistics */
1261 total.mesh_time_median /= (double)daemon->num;
1262 if(!print_stats(ssl, "total", &total))
1263 return;
1264 if(!print_uptime(ssl, worker, reset))
1265 return;
1266 if(daemon->cfg->stat_extended) {
1267 if(!print_mem(ssl, worker, daemon, &total))
1268 return;
1269 if(!print_hist(ssl, &total))
1270 return;
1271 if(!print_ext(ssl, &total, daemon->cfg->stat_inhibit_zero))
1272 return;
1273 }
1274 }
1275
1276 /** parse commandline argument domain name */
1277 static int
parse_arg_name(RES * ssl,char * str,uint8_t ** res,size_t * len,int * labs)1278 parse_arg_name(RES* ssl, char* str, uint8_t** res, size_t* len, int* labs)
1279 {
1280 uint8_t nm[LDNS_MAX_DOMAINLEN+1];
1281 size_t nmlen = sizeof(nm);
1282 int status;
1283 *res = NULL;
1284 *len = 0;
1285 *labs = 0;
1286 if(str[0] == '\0') {
1287 ssl_printf(ssl, "error: this option requires a domain name\n");
1288 return 0;
1289 }
1290 status = sldns_str2wire_dname_buf(str, nm, &nmlen);
1291 if(status != 0) {
1292 ssl_printf(ssl, "error cannot parse name %s at %d: %s\n", str,
1293 LDNS_WIREPARSE_OFFSET(status),
1294 sldns_get_errorstr_parse(status));
1295 return 0;
1296 }
1297 *res = memdup(nm, nmlen);
1298 if(!*res) {
1299 ssl_printf(ssl, "error out of memory\n");
1300 return 0;
1301 }
1302 *labs = dname_count_size_labels(*res, len);
1303 return 1;
1304 }
1305
1306 /** find second argument, modifies string */
1307 static int
find_arg2(RES * ssl,char * arg,char ** arg2)1308 find_arg2(RES* ssl, char* arg, char** arg2)
1309 {
1310 char* as = strchr(arg, ' ');
1311 char* at = strchr(arg, '\t');
1312 if(as && at) {
1313 if(at < as)
1314 as = at;
1315 as[0]=0;
1316 *arg2 = skipwhite(as+1);
1317 } else if(as) {
1318 as[0]=0;
1319 *arg2 = skipwhite(as+1);
1320 } else if(at) {
1321 at[0]=0;
1322 *arg2 = skipwhite(at+1);
1323 } else {
1324 ssl_printf(ssl, "error could not find next argument "
1325 "after %s\n", arg);
1326 return 0;
1327 }
1328 return 1;
1329 }
1330
1331 /** Add a new zone */
1332 static int
perform_zone_add(RES * ssl,struct local_zones * zones,char * arg)1333 perform_zone_add(RES* ssl, struct local_zones* zones, char* arg)
1334 {
1335 uint8_t* nm;
1336 int nmlabs;
1337 size_t nmlen;
1338 char* arg2;
1339 enum localzone_type t;
1340 struct local_zone* z;
1341 if(!find_arg2(ssl, arg, &arg2))
1342 return 0;
1343 if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1344 return 0;
1345 if(!local_zone_str2type(arg2, &t)) {
1346 ssl_printf(ssl, "error not a zone type. %s\n", arg2);
1347 free(nm);
1348 return 0;
1349 }
1350 lock_rw_wrlock(&zones->lock);
1351 if((z=local_zones_find(zones, nm, nmlen,
1352 nmlabs, LDNS_RR_CLASS_IN))) {
1353 /* already present in tree */
1354 lock_rw_wrlock(&z->lock);
1355 z->type = t; /* update type anyway */
1356 lock_rw_unlock(&z->lock);
1357 free(nm);
1358 lock_rw_unlock(&zones->lock);
1359 return 1;
1360 }
1361 if(!local_zones_add_zone(zones, nm, nmlen,
1362 nmlabs, LDNS_RR_CLASS_IN, t)) {
1363 lock_rw_unlock(&zones->lock);
1364 ssl_printf(ssl, "error out of memory\n");
1365 return 0;
1366 }
1367 lock_rw_unlock(&zones->lock);
1368 return 1;
1369 }
1370
1371 /** Do the local_zone command */
1372 static void
do_zone_add(RES * ssl,struct local_zones * zones,char * arg)1373 do_zone_add(RES* ssl, struct local_zones* zones, char* arg)
1374 {
1375 if(!perform_zone_add(ssl, zones, arg))
1376 return;
1377 send_ok(ssl);
1378 }
1379
1380 /** Do the local_zones command */
1381 static void
do_zones_add(struct daemon_remote * rc,RES * ssl,struct worker * worker)1382 do_zones_add(struct daemon_remote* rc, RES* ssl, struct worker* worker)
1383 {
1384 char buf[MAX_CMD_STRLINE + MAX_STDIN_STRLINE] = "local_zone ";
1385 int num = 0;
1386 size_t cmd_len = strlen(buf);
1387 while(ssl_read_line(ssl, buf+cmd_len, MAX_STDIN_STRLINE)) {
1388 if(buf[0+cmd_len] == 0 ||
1389 (buf[0+cmd_len] == 0x04 && buf[1+cmd_len] == 0))
1390 break; /* zero byte line or end of transmission */
1391 #ifdef THREADS_DISABLED
1392 /* distribute single item command */
1393 if(rc) distribute_cmd(rc, ssl, buf);
1394 #else
1395 (void)rc; /* unused */
1396 #endif
1397 if(!perform_zone_add(ssl, worker->daemon->local_zones,
1398 buf+cmd_len)) {
1399 if(!ssl_printf(ssl, "error for input line: %s\n",
1400 buf+cmd_len))
1401 return;
1402 }
1403 else num++;
1404 }
1405 (void)ssl_printf(ssl, "added %d zones\n", num);
1406 }
1407
1408 /** Remove a zone */
1409 static int
perform_zone_remove(RES * ssl,struct local_zones * zones,char * arg)1410 perform_zone_remove(RES* ssl, struct local_zones* zones, char* arg)
1411 {
1412 uint8_t* nm;
1413 int nmlabs;
1414 size_t nmlen;
1415 struct local_zone* z;
1416 if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1417 return 0;
1418 lock_rw_wrlock(&zones->lock);
1419 if((z=local_zones_find(zones, nm, nmlen,
1420 nmlabs, LDNS_RR_CLASS_IN))) {
1421 /* present in tree */
1422 local_zones_del_zone(zones, z);
1423 }
1424 lock_rw_unlock(&zones->lock);
1425 free(nm);
1426 return 1;
1427 }
1428
1429 /** Do the local_zone_remove command */
1430 static void
do_zone_remove(RES * ssl,struct local_zones * zones,char * arg)1431 do_zone_remove(RES* ssl, struct local_zones* zones, char* arg)
1432 {
1433 if(!perform_zone_remove(ssl, zones, arg))
1434 return;
1435 send_ok(ssl);
1436 }
1437
1438 /** Do the local_zones_remove command */
1439 static void
do_zones_remove(struct daemon_remote * rc,RES * ssl,struct worker * worker)1440 do_zones_remove(struct daemon_remote* rc, RES* ssl, struct worker* worker)
1441 {
1442 char buf[MAX_CMD_STRLINE + MAX_STDIN_STRLINE] = "local_zone_remove ";
1443 int num = 0;
1444 size_t cmd_len = strlen(buf);
1445 while(ssl_read_line(ssl, buf+cmd_len, MAX_STDIN_STRLINE)) {
1446 if(buf[0+cmd_len] == 0 ||
1447 (buf[0+cmd_len] == 0x04 && buf[1+cmd_len] == 0))
1448 break; /* zero byte line or end of transmission */
1449 #ifdef THREADS_DISABLED
1450 /* distribute single item command */
1451 if(rc) distribute_cmd(rc, ssl, buf);
1452 #else
1453 (void)rc; /* unused */
1454 #endif
1455 if(!perform_zone_remove(ssl, worker->daemon->local_zones,
1456 buf+cmd_len)) {
1457 if(!ssl_printf(ssl, "error for input line: %s\n",
1458 buf+cmd_len))
1459 return;
1460 }
1461 else num++;
1462 }
1463 (void)ssl_printf(ssl, "removed %d zones\n", num);
1464 }
1465
1466 /** check syntax of newly added RR */
1467 static int
check_RR_syntax(RES * ssl,char * str,int line)1468 check_RR_syntax(RES* ssl, char* str, int line)
1469 {
1470 uint8_t rr[LDNS_RR_BUF_SIZE];
1471 size_t len = sizeof(rr), dname_len = 0;
1472 int s = sldns_str2wire_rr_buf(str, rr, &len, &dname_len, 3600,
1473 NULL, 0, NULL, 0);
1474 if(s != 0) {
1475 char linestr[32];
1476 if(line == 0)
1477 linestr[0]=0;
1478 else snprintf(linestr, sizeof(linestr), "line %d ", line);
1479 if(!ssl_printf(ssl, "error parsing local-data at %sposition %d '%s': %s\n",
1480 linestr, LDNS_WIREPARSE_OFFSET(s), str,
1481 sldns_get_errorstr_parse(s)))
1482 return 0;
1483 return 0;
1484 }
1485 return 1;
1486 }
1487
1488 /** Add new RR data */
1489 static int
perform_data_add(RES * ssl,struct local_zones * zones,char * arg,int line)1490 perform_data_add(RES* ssl, struct local_zones* zones, char* arg, int line)
1491 {
1492 if(!check_RR_syntax(ssl, arg, line)) {
1493 return 0;
1494 }
1495 if(!local_zones_add_RR(zones, arg)) {
1496 ssl_printf(ssl,"error in syntax or out of memory, %s\n", arg);
1497 return 0;
1498 }
1499 return 1;
1500 }
1501
1502 /** Do the local_data command */
1503 static void
do_data_add(RES * ssl,struct local_zones * zones,char * arg)1504 do_data_add(RES* ssl, struct local_zones* zones, char* arg)
1505 {
1506 if(!perform_data_add(ssl, zones, arg, 0))
1507 return;
1508 send_ok(ssl);
1509 }
1510
1511 /** Do the local_datas command */
1512 static void
do_datas_add(struct daemon_remote * rc,RES * ssl,struct worker * worker)1513 do_datas_add(struct daemon_remote* rc, RES* ssl, struct worker* worker)
1514 {
1515 char buf[MAX_CMD_STRLINE + MAX_STDIN_STRLINE] = "local_data ";
1516 int num = 0, line = 0;
1517 size_t cmd_len = strlen(buf);
1518 while(ssl_read_line(ssl, buf+cmd_len, MAX_STDIN_STRLINE)) {
1519 if(buf[0+cmd_len] == 0 ||
1520 (buf[0+cmd_len] == 0x04 && buf[1+cmd_len] == 0))
1521 break; /* zero byte line or end of transmission */
1522 #ifdef THREADS_DISABLED
1523 /* distribute single item command */
1524 if(rc) distribute_cmd(rc, ssl, buf);
1525 #else
1526 (void)rc; /* unused */
1527 #endif
1528 line++;
1529 if(perform_data_add(ssl, worker->daemon->local_zones,
1530 buf+cmd_len, line))
1531 num++;
1532 }
1533 (void)ssl_printf(ssl, "added %d datas\n", num);
1534 }
1535
1536 /** Remove RR data */
1537 static int
perform_data_remove(RES * ssl,struct local_zones * zones,char * arg)1538 perform_data_remove(RES* ssl, struct local_zones* zones, char* arg)
1539 {
1540 uint8_t* nm;
1541 int nmlabs;
1542 size_t nmlen;
1543 if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1544 return 0;
1545 local_zones_del_data(zones, nm,
1546 nmlen, nmlabs, LDNS_RR_CLASS_IN);
1547 free(nm);
1548 return 1;
1549 }
1550
1551 /** Do the local_data_remove command */
1552 static void
do_data_remove(RES * ssl,struct local_zones * zones,char * arg)1553 do_data_remove(RES* ssl, struct local_zones* zones, char* arg)
1554 {
1555 if(!perform_data_remove(ssl, zones, arg))
1556 return;
1557 send_ok(ssl);
1558 }
1559
1560 /** Do the local_datas_remove command */
1561 static void
do_datas_remove(struct daemon_remote * rc,RES * ssl,struct worker * worker)1562 do_datas_remove(struct daemon_remote* rc, RES* ssl, struct worker* worker)
1563 {
1564 char buf[MAX_CMD_STRLINE + MAX_STDIN_STRLINE] = "local_data_remove ";
1565 int num = 0;
1566 size_t cmd_len = strlen(buf);
1567 while(ssl_read_line(ssl, buf+cmd_len, MAX_STDIN_STRLINE)) {
1568 if(buf[0+cmd_len] == 0 ||
1569 (buf[0+cmd_len] == 0x04 && buf[1+cmd_len] == 0))
1570 break; /* zero byte line or end of transmission */
1571 #ifdef THREADS_DISABLED
1572 /* distribute single item command */
1573 if(rc) distribute_cmd(rc, ssl, buf);
1574 #else
1575 (void)rc; /* unused */
1576 #endif
1577 if(!perform_data_remove(ssl, worker->daemon->local_zones,
1578 buf+cmd_len)) {
1579 if(!ssl_printf(ssl, "error for input line: %s\n",
1580 buf+cmd_len))
1581 return;
1582 }
1583 else num++;
1584 }
1585 (void)ssl_printf(ssl, "removed %d datas\n", num);
1586 }
1587
1588 /** Add a new zone to view */
1589 static void
do_view_zone_add(RES * ssl,struct worker * worker,char * arg)1590 do_view_zone_add(RES* ssl, struct worker* worker, char* arg)
1591 {
1592 char* arg2;
1593 struct view* v;
1594 if(!find_arg2(ssl, arg, &arg2))
1595 return;
1596 v = views_find_view(worker->env.views, arg, 1 /* get write lock*/);
1597 if(!v) {
1598 ssl_printf(ssl,"no view with name: %s\n", arg);
1599 return;
1600 }
1601 if(!v->local_zones) {
1602 if(!(v->local_zones = local_zones_create())){
1603 lock_rw_unlock(&v->lock);
1604 ssl_printf(ssl,"error out of memory\n");
1605 return;
1606 }
1607 if(!v->isfirst) {
1608 /* Global local-zone is not used for this view,
1609 * therefore add defaults to this view-specific
1610 * local-zone. */
1611 struct config_file lz_cfg;
1612 memset(&lz_cfg, 0, sizeof(lz_cfg));
1613 local_zone_enter_defaults(v->local_zones, &lz_cfg);
1614 }
1615 }
1616 do_zone_add(ssl, v->local_zones, arg2);
1617 lock_rw_unlock(&v->lock);
1618 }
1619
1620 /** Remove a zone from view */
1621 static void
do_view_zone_remove(RES * ssl,struct worker * worker,char * arg)1622 do_view_zone_remove(RES* ssl, struct worker* worker, char* arg)
1623 {
1624 char* arg2;
1625 struct view* v;
1626 if(!find_arg2(ssl, arg, &arg2))
1627 return;
1628 v = views_find_view(worker->env.views, arg, 1 /* get write lock*/);
1629 if(!v) {
1630 ssl_printf(ssl,"no view with name: %s\n", arg);
1631 return;
1632 }
1633 if(!v->local_zones) {
1634 lock_rw_unlock(&v->lock);
1635 send_ok(ssl);
1636 return;
1637 }
1638 do_zone_remove(ssl, v->local_zones, arg2);
1639 lock_rw_unlock(&v->lock);
1640 }
1641
1642 /** Add new RR data to view */
1643 static void
do_view_data_add(RES * ssl,struct worker * worker,char * arg)1644 do_view_data_add(RES* ssl, struct worker* worker, char* arg)
1645 {
1646 char* arg2;
1647 struct view* v;
1648 if(!find_arg2(ssl, arg, &arg2))
1649 return;
1650 v = views_find_view(worker->env.views, arg, 1 /* get write lock*/);
1651 if(!v) {
1652 ssl_printf(ssl,"no view with name: %s\n", arg);
1653 return;
1654 }
1655 if(!v->local_zones) {
1656 if(!(v->local_zones = local_zones_create())){
1657 lock_rw_unlock(&v->lock);
1658 ssl_printf(ssl,"error out of memory\n");
1659 return;
1660 }
1661 }
1662 do_data_add(ssl, v->local_zones, arg2);
1663 lock_rw_unlock(&v->lock);
1664 }
1665
1666 /** Add new RR data from stdin to view */
1667 static void
do_view_datas_add(struct daemon_remote * rc,RES * ssl,struct worker * worker,char * arg)1668 do_view_datas_add(struct daemon_remote* rc, RES* ssl, struct worker* worker,
1669 char* arg)
1670 {
1671 struct view* v;
1672 char buf[MAX_CMD_STRLINE + MAX_STDIN_STRLINE] = "view_local_data ";
1673 size_t cmd_len;
1674 int num = 0, line = 0;
1675 v = views_find_view(worker->env.views, arg, 1 /* get write lock*/);
1676 if(!v) {
1677 ssl_printf(ssl,"no view with name: %s\n", arg);
1678 return;
1679 }
1680 if(!v->local_zones) {
1681 if(!(v->local_zones = local_zones_create())){
1682 lock_rw_unlock(&v->lock);
1683 ssl_printf(ssl,"error out of memory\n");
1684 return;
1685 }
1686 }
1687 /* put the view name in the command buf */
1688 (void)snprintf(buf+strlen(buf), sizeof(buf)-strlen(buf), "%s ", arg);
1689 cmd_len = strlen(buf);
1690 while(ssl_read_line(ssl, buf+cmd_len, MAX_STDIN_STRLINE)) {
1691 if(buf[0+cmd_len] == 0 ||
1692 (buf[0+cmd_len] == 0x04 && buf[1+cmd_len] == 0))
1693 break; /* zero byte line or end of transmission */
1694 #ifdef THREADS_DISABLED
1695 /* distribute single item command */
1696 if(rc) distribute_cmd(rc, ssl, buf);
1697 #else
1698 (void)rc; /* unused */
1699 #endif
1700 line++;
1701 if(perform_data_add(ssl, v->local_zones, buf+cmd_len, line))
1702 num++;
1703 }
1704 lock_rw_unlock(&v->lock);
1705 (void)ssl_printf(ssl, "added %d datas\n", num);
1706 }
1707
1708 /** Remove RR data from view */
1709 static void
do_view_data_remove(RES * ssl,struct worker * worker,char * arg)1710 do_view_data_remove(RES* ssl, struct worker* worker, char* arg)
1711 {
1712 char* arg2;
1713 struct view* v;
1714 if(!find_arg2(ssl, arg, &arg2))
1715 return;
1716 v = views_find_view(worker->env.views, arg, 1 /* get write lock*/);
1717 if(!v) {
1718 ssl_printf(ssl,"no view with name: %s\n", arg);
1719 return;
1720 }
1721 if(!v->local_zones) {
1722 lock_rw_unlock(&v->lock);
1723 send_ok(ssl);
1724 return;
1725 }
1726 do_data_remove(ssl, v->local_zones, arg2);
1727 lock_rw_unlock(&v->lock);
1728 }
1729
1730 /** Remove RR data from stdin from view */
1731 static void
do_view_datas_remove(struct daemon_remote * rc,RES * ssl,struct worker * worker,char * arg)1732 do_view_datas_remove(struct daemon_remote* rc, RES* ssl, struct worker* worker,
1733 char* arg)
1734 {
1735 struct view* v;
1736 char buf[MAX_CMD_STRLINE + MAX_STDIN_STRLINE] = "view_local_data_remove ";
1737 int num = 0;
1738 size_t cmd_len;
1739 v = views_find_view(worker->env.views, arg, 1 /* get write lock*/);
1740 if(!v) {
1741 ssl_printf(ssl,"no view with name: %s\n", arg);
1742 return;
1743 }
1744 if(!v->local_zones){
1745 lock_rw_unlock(&v->lock);
1746 ssl_printf(ssl, "removed 0 datas\n");
1747 return;
1748 }
1749 /* put the view name in the command buf */
1750 (void)snprintf(buf+strlen(buf), sizeof(buf)-strlen(buf), "%s ", arg);
1751 cmd_len = strlen(buf);
1752 while(ssl_read_line(ssl, buf+cmd_len, MAX_STDIN_STRLINE)) {
1753 if(buf[0+cmd_len] == 0 ||
1754 (buf[0+cmd_len] == 0x04 && buf[1+cmd_len] == 0))
1755 break; /* zero byte line or end of transmission */
1756 #ifdef THREADS_DISABLED
1757 /* distribute single item command */
1758 if(rc) distribute_cmd(rc, ssl, buf);
1759 #else
1760 (void)rc; /* unused */
1761 #endif
1762 if(!perform_data_remove(ssl, v->local_zones, buf+cmd_len)) {
1763 if(!ssl_printf(ssl, "error for input line: %s\n",
1764 buf+cmd_len))
1765 return;
1766 }
1767 else num++;
1768 }
1769 lock_rw_unlock(&v->lock);
1770 (void)ssl_printf(ssl, "removed %d datas\n", num);
1771 }
1772
1773 /** information for the domain search */
1774 struct cache_lookup_info {
1775 /** The connection to print on. */
1776 RES* ssl;
1777 /** The worker. */
1778 struct worker* worker;
1779 /** The domain, in wireformat. */
1780 uint8_t* nm;
1781 /** The length of nm. */
1782 size_t nmlen;
1783 };
1784
1785 #ifdef CLIENT_SUBNET
1786 static void addrtree_traverse_visit_node(struct addrnode* n, addrkey_t* addr,
1787 size_t addr_size, int is_ipv6, time_t now, struct query_info* q,
1788 void (*func)(struct query_info*, struct reply_info*, addrkey_t*,
1789 size_t, int, addrlen_t, int, time_t, void*), void* arg);
1790
1791 /** Lookup in subnet addrtree */
1792 static void
cache_lookup_subnet_addrnode(struct query_info * q,struct reply_info * d,addrkey_t * addr,size_t addr_size,int is_ipv6,addrlen_t scope,int only_match_scope_zero,time_t ttl,void * arg)1793 cache_lookup_subnet_addrnode(struct query_info* q, struct reply_info* d,
1794 addrkey_t* addr, size_t addr_size, int is_ipv6, addrlen_t scope,
1795 int only_match_scope_zero, time_t ttl, void* arg)
1796 {
1797 size_t i;
1798 char s[65535], tp[32], cl[32], rc[32], fg[32], astr[64];
1799 struct cache_lookup_info* inf = (struct cache_lookup_info*)arg;
1800 if(is_ipv6) {
1801 if(addr_size < 16 || inet_ntop(AF_INET6, addr, astr,
1802 sizeof(astr)) == NULL)
1803 snprintf(astr, sizeof(astr), "(inet6ntoperror)");
1804 } else {
1805 if(addr_size < 4 || inet_ntop(AF_INET, addr, astr,
1806 sizeof(astr)) == NULL)
1807 snprintf(astr, sizeof(astr), "(inetntoperror)");
1808 }
1809 sldns_wire2str_dname_buf(q->qname, q->qname_len, s, sizeof(s));
1810 sldns_wire2str_type_buf(q->qtype, tp, sizeof(tp));
1811 sldns_wire2str_class_buf(q->qclass, cl, sizeof(cl));
1812 sldns_wire2str_rcode_buf(FLAGS_GET_RCODE(d->flags),
1813 rc, sizeof(rc));
1814 snprintf(fg, sizeof(fg), "%s%s%s%s%s%s%s%s",
1815 ((d->flags&BIT_QR)?" QR":""),
1816 ((d->flags&BIT_AA)?" AA":""),
1817 ((d->flags&BIT_TC)?" TC":""),
1818 ((d->flags&BIT_RD)?" RD":""),
1819 ((d->flags&BIT_RA)?" RA":""),
1820 ((d->flags&BIT_Z)?" Z":""),
1821 ((d->flags&BIT_AD)?" AD":""),
1822 ((d->flags&BIT_CD)?" CD":""));
1823 if(!rrset_array_lock(d->ref, d->rrset_count,
1824 *inf->worker->env.now)) {
1825 /* rrsets have timed out or do not exist */
1826 return;
1827 }
1828 if(!ssl_printf(inf->ssl, "subnet %s/%d%s %s %s %s " ARG_LL "d\n", astr,
1829 (int)scope, (only_match_scope_zero?" scope_zero":""),
1830 s, cl, tp, (long long)(ttl-*inf->worker->env.now))) {
1831 rrset_array_unlock(d->ref, d->rrset_count);
1832 return;
1833 }
1834 ssl_printf(inf->ssl,
1835 "subnet msg %s %s %s%s %s %d %d " ARG_LL "d %d %u %u %u %d %s\n",
1836 s, cl, tp, fg, rc,
1837 (int)d->flags, (int)d->qdcount,
1838 (long long)(d->ttl-*inf->worker->env.now),
1839 (int)d->security,
1840 (unsigned)d->an_numrrsets,
1841 (unsigned)d->ns_numrrsets,
1842 (unsigned)d->ar_numrrsets,
1843 (int)d->reason_bogus,
1844 d->reason_bogus_str?d->reason_bogus_str:"");
1845 for(i=0; i<d->rrset_count; i++) {
1846 struct ub_packed_rrset_key* rk = d->rrsets[i];
1847 struct packed_rrset_data* rd = (struct packed_rrset_data*)rk->entry.data;
1848 size_t j;
1849 for(j=0; j<rd->count + rd->rrsig_count; j++) {
1850 if(!packed_rr_to_string(rk, j,
1851 *inf->worker->env.now, s, sizeof(s))) {
1852 ssl_printf(inf->ssl, "BADRR\n");
1853 } else {
1854 ssl_printf(inf->ssl, "%s", s);
1855 }
1856 }
1857 }
1858 rrset_array_unlock(d->ref, d->rrset_count);
1859 ssl_printf(inf->ssl, "\n");
1860 }
1861
1862 /** Visit an edge in subnet addrtree traverse */
1863 static void
addrtree_traverse_visit_edge(struct addredge * edge,addrkey_t * addr,size_t addr_size,int is_ipv6,time_t now,struct query_info * q,void (* func)(struct query_info *,struct reply_info *,addrkey_t *,size_t,int,addrlen_t,int,time_t,void *),void * arg)1864 addrtree_traverse_visit_edge(struct addredge* edge, addrkey_t* addr,
1865 size_t addr_size, int is_ipv6, time_t now, struct query_info* q,
1866 void (*func)(struct query_info*, struct reply_info*, addrkey_t*,
1867 size_t, int, addrlen_t, int, time_t, void*), void* arg)
1868 {
1869 size_t n;
1870 addrlen_t addrlen;
1871 if(!edge || !edge->node)
1872 return;
1873 addrlen = edge->len;
1874 /* ceil() */
1875 n = (size_t)((addrlen / KEYWIDTH) + ((addrlen % KEYWIDTH != 0)?1:0));
1876 if(n > addr_size)
1877 n = addr_size;
1878 memset(addr, 0, addr_size);
1879 memcpy(addr, edge->str, n);
1880 addrtree_traverse_visit_node(edge->node, addr, addr_size, is_ipv6,
1881 now, q, func, arg);
1882 }
1883
1884 /** Visit a node in subnet addrtree traverse */
1885 static void
addrtree_traverse_visit_node(struct addrnode * n,addrkey_t * addr,size_t addr_size,int is_ipv6,time_t now,struct query_info * q,void (* func)(struct query_info *,struct reply_info *,addrkey_t *,size_t,int,addrlen_t,int,time_t,void *),void * arg)1886 addrtree_traverse_visit_node(struct addrnode* n, addrkey_t* addr,
1887 size_t addr_size, int is_ipv6, time_t now, struct query_info* q,
1888 void (*func)(struct query_info*, struct reply_info*, addrkey_t*,
1889 size_t, int, addrlen_t, int, time_t, void*), void* arg)
1890 {
1891 /* If this node has data, and not expired. */
1892 if(n->elem && n->ttl >= now) {
1893 func(q, (struct reply_info*)n->elem, addr, addr_size, is_ipv6,
1894 n->scope, n->only_match_scope_zero, n->ttl, arg);
1895 }
1896 /* Traverse edges. */
1897 addrtree_traverse_visit_edge(n->edge[0], addr, addr_size, is_ipv6,
1898 now, q, func, arg);
1899 addrtree_traverse_visit_edge(n->edge[1], addr, addr_size, is_ipv6,
1900 now, q, func, arg);
1901 }
1902
1903 /** Traverse subnet addrtree */
1904 static void
addrtree_traverse(struct addrtree * tree,int is_ipv6,time_t now,struct query_info * q,void (* func)(struct query_info *,struct reply_info *,addrkey_t *,size_t,int,addrlen_t,int,time_t,void *),void * arg)1905 addrtree_traverse(struct addrtree* tree, int is_ipv6, time_t now,
1906 struct query_info* q,
1907 void (*func)(struct query_info*, struct reply_info*, addrkey_t*,
1908 size_t, int, addrlen_t, int, time_t, void*), void* arg)
1909 {
1910 uint8_t addr[16]; /* Large enough for IPv4 and IPv6. */
1911 memset(addr, 0, sizeof(addr));
1912 addrtree_traverse_visit_node(tree->root, (addrkey_t*)addr,
1913 sizeof(addr), is_ipv6, now, q, func, arg);
1914 }
1915
1916 /** Lookup cache_lookup for subnet content. */
1917 static void
cache_lookup_subnet_msg(struct lruhash_entry * e,void * arg)1918 cache_lookup_subnet_msg(struct lruhash_entry* e, void* arg)
1919 {
1920 struct cache_lookup_info* inf = (struct cache_lookup_info*)arg;
1921 struct msgreply_entry *k = (struct msgreply_entry*)e->key;
1922 struct subnet_msg_cache_data* d =
1923 (struct subnet_msg_cache_data*)e->data;
1924 if(!dname_subdomain_c(k->key.qname, inf->nm))
1925 return;
1926
1927 if(d->tree4) {
1928 addrtree_traverse(d->tree4, 0, *inf->worker->env.now, &k->key,
1929 &cache_lookup_subnet_addrnode, inf);
1930 }
1931 if(d->tree6) {
1932 addrtree_traverse(d->tree6, 1, *inf->worker->env.now, &k->key,
1933 &cache_lookup_subnet_addrnode, inf);
1934 }
1935 }
1936 #endif /* CLIENT_SUBNET */
1937
1938 static void
cache_lookup_rrset(struct lruhash_entry * e,void * arg)1939 cache_lookup_rrset(struct lruhash_entry* e, void* arg)
1940 {
1941 struct cache_lookup_info* inf = (struct cache_lookup_info*)arg;
1942 struct ub_packed_rrset_key* k = (struct ub_packed_rrset_key*)e->key;
1943 struct packed_rrset_data* d = (struct packed_rrset_data*)e->data;
1944 if(*inf->worker->env.now < d->ttl &&
1945 k->id != 0 && /* not deleted */
1946 dname_subdomain_c(k->rk.dname, inf->nm)) {
1947 size_t i;
1948 for(i=0; i<d->count + d->rrsig_count; i++) {
1949 char s[65535];
1950 if(!packed_rr_to_string(k, i, *inf->worker->env.now,
1951 s, sizeof(s))) {
1952 ssl_printf(inf->ssl, "BADRR\n");
1953 return;
1954 }
1955 ssl_printf(inf->ssl, "%s", s);
1956 }
1957 ssl_printf(inf->ssl, "\n");
1958 }
1959 }
1960
1961 static void
cache_lookup_msg(struct lruhash_entry * e,void * arg)1962 cache_lookup_msg(struct lruhash_entry* e, void* arg)
1963 {
1964 struct cache_lookup_info* inf = (struct cache_lookup_info*)arg;
1965 struct msgreply_entry* k = (struct msgreply_entry*)e->key;
1966 struct reply_info* d = (struct reply_info*)e->data;
1967 if(*inf->worker->env.now < d->ttl &&
1968 dname_subdomain_c(k->key.qname, inf->nm)) {
1969 size_t i;
1970 char s[65535], tp[32], cl[32], rc[32], fg[32];
1971 sldns_wire2str_dname_buf(k->key.qname, k->key.qname_len,
1972 s, sizeof(s));
1973 sldns_wire2str_type_buf(k->key.qtype, tp, sizeof(tp));
1974 sldns_wire2str_class_buf(k->key.qclass, cl, sizeof(cl));
1975 sldns_wire2str_rcode_buf(FLAGS_GET_RCODE(d->flags),
1976 rc, sizeof(rc));
1977 snprintf(fg, sizeof(fg), "%s%s%s%s%s%s%s%s",
1978 ((d->flags&BIT_QR)?" QR":""),
1979 ((d->flags&BIT_AA)?" AA":""),
1980 ((d->flags&BIT_TC)?" TC":""),
1981 ((d->flags&BIT_RD)?" RD":""),
1982 ((d->flags&BIT_RA)?" RA":""),
1983 ((d->flags&BIT_Z)?" Z":""),
1984 ((d->flags&BIT_AD)?" AD":""),
1985 ((d->flags&BIT_CD)?" CD":""));
1986 if(!rrset_array_lock(d->ref, d->rrset_count,
1987 *inf->worker->env.now)) {
1988 /* rrsets have timed out or do not exist */
1989 return;
1990 }
1991 ssl_printf(inf->ssl,
1992 "msg %s %s %s%s %s %d %d " ARG_LL "d %d %u %u %u %d %s\n",
1993 s, cl, tp, fg, rc,
1994 (int)d->flags, (int)d->qdcount,
1995 (long long)(d->ttl-*inf->worker->env.now),
1996 (int)d->security,
1997 (unsigned)d->an_numrrsets,
1998 (unsigned)d->ns_numrrsets,
1999 (unsigned)d->ar_numrrsets,
2000 (int)d->reason_bogus,
2001 d->reason_bogus_str?d->reason_bogus_str:"");
2002 for(i=0; i<d->rrset_count; i++) {
2003 struct ub_packed_rrset_key* rk = d->rrsets[i];
2004 struct packed_rrset_data* rd = (struct packed_rrset_data*)rk->entry.data;
2005 size_t j;
2006 for(j=0; j<rd->count + rd->rrsig_count; j++) {
2007 if(!packed_rr_to_string(rk, j,
2008 *inf->worker->env.now, s, sizeof(s))) {
2009 rrset_array_unlock(d->ref, d->rrset_count);
2010 ssl_printf(inf->ssl, "BADRR\n");
2011 return;
2012 }
2013 ssl_printf(inf->ssl, "%s", s);
2014 }
2015 }
2016 rrset_array_unlock(d->ref, d->rrset_count);
2017 ssl_printf(inf->ssl, "\n");
2018 }
2019 }
2020
2021 /** perform cache search for domain */
2022 static void
do_cache_lookup_domain(RES * ssl,struct worker * worker,uint8_t * nm,size_t nmlen)2023 do_cache_lookup_domain(RES* ssl, struct worker* worker, uint8_t* nm,
2024 size_t nmlen)
2025 {
2026 #ifdef CLIENT_SUBNET
2027 int m;
2028 struct subnet_env* sn_env = NULL;
2029 #endif /* CLIENT_SUBNET */
2030 struct cache_lookup_info inf;
2031 inf.ssl = ssl;
2032 inf.worker = worker;
2033 inf.nm = nm;
2034 inf.nmlen = nmlen;
2035
2036 #ifdef CLIENT_SUBNET
2037 m = modstack_find(worker->env.modstack, "subnetcache");
2038 if(m != -1) sn_env = (struct subnet_env*)worker->env.modinfo[m];
2039 if(sn_env) {
2040 lock_rw_rdlock(&sn_env->biglock);
2041 slabhash_traverse(sn_env->subnet_msg_cache, 0,
2042 &cache_lookup_subnet_msg, &inf);
2043 lock_rw_unlock(&sn_env->biglock);
2044 }
2045 #endif /* CLIENT_SUBNET */
2046
2047 slabhash_traverse(&worker->env.rrset_cache->table, 0,
2048 &cache_lookup_rrset, &inf);
2049 slabhash_traverse(worker->env.msg_cache, 0, &cache_lookup_msg, &inf);
2050 }
2051
2052 /** cache lookup of domain */
2053 static void
do_cache_lookup(RES * ssl,struct worker * worker,char * arg)2054 do_cache_lookup(RES* ssl, struct worker* worker, char* arg)
2055 {
2056 uint8_t nm[LDNS_MAX_DOMAINLEN+1];
2057 size_t nmlen;
2058 int status;
2059 char* s = arg, *next = NULL;
2060 int allow_long = 0;
2061
2062 if(arg[0] == '+' && arg[1] == 't' && (arg[2]==' ' || arg[2]=='\t')) {
2063 allow_long = 1;
2064 s = arg+2;
2065 }
2066
2067 /* Find the commandline arguments of domains. */
2068 while(s && *s != 0) {
2069 s = skipwhite(s);
2070 if(*s == 0)
2071 break;
2072 if(strchr(s, ' ') || strchr(s, '\t')) {
2073 char* sp = strchr(s, ' ');
2074 if(strchr(s, '\t') != 0 && strchr(s, '\t') < sp)
2075 sp = strchr(s, '\t');
2076 *sp = 0;
2077 next = sp+1;
2078 } else {
2079 next = NULL;
2080 }
2081
2082 nmlen = sizeof(nm);
2083 status = sldns_str2wire_dname_buf(s, nm, &nmlen);
2084 if(status != 0) {
2085 ssl_printf(ssl, "error cannot parse name %s at %d: %s\n", s,
2086 LDNS_WIREPARSE_OFFSET(status),
2087 sldns_get_errorstr_parse(status));
2088 return;
2089 }
2090 if(!allow_long && dname_count_labels(nm) < 3) {
2091 ssl_printf(ssl, "error name too short: '%s'. Need example.com. or longer, short names take very long, use +t to allow them.\n", s);
2092 return;
2093 }
2094
2095 do_cache_lookup_domain(ssl, worker, nm, nmlen);
2096
2097 s = next;
2098 }
2099 }
2100
2101 /** cache lookup of nameservers */
2102 static void
do_lookup(RES * ssl,struct worker * worker,char * arg)2103 do_lookup(RES* ssl, struct worker* worker, char* arg)
2104 {
2105 uint8_t* nm;
2106 int nmlabs;
2107 size_t nmlen;
2108 if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
2109 return;
2110 (void)print_deleg_lookup(ssl, worker, nm, nmlen, nmlabs);
2111 free(nm);
2112 }
2113
2114 /** flush something from rrset and msg caches */
2115 static void
do_cache_remove(struct worker * worker,uint8_t * nm,size_t nmlen,uint16_t t,uint16_t c,int remcachedb)2116 do_cache_remove(struct worker* worker, uint8_t* nm, size_t nmlen,
2117 uint16_t t, uint16_t c, int remcachedb)
2118 {
2119 hashvalue_type h;
2120 struct query_info k;
2121 rrset_cache_remove(worker->env.rrset_cache, nm, nmlen, t, c, 0);
2122 if(t == LDNS_RR_TYPE_SOA)
2123 rrset_cache_remove(worker->env.rrset_cache, nm, nmlen, t, c,
2124 PACKED_RRSET_SOA_NEG);
2125 k.qname = nm;
2126 k.qname_len = nmlen;
2127 k.qtype = t;
2128 k.qclass = c;
2129 k.local_alias = NULL;
2130 h = query_info_hash(&k, 0);
2131 slabhash_remove(worker->env.msg_cache, h, &k);
2132 if(t == LDNS_RR_TYPE_AAAA) {
2133 /* for AAAA also flush dns64 bit_cd packet */
2134 h = query_info_hash(&k, BIT_CD);
2135 slabhash_remove(worker->env.msg_cache, h, &k);
2136 }
2137 #ifdef USE_CACHEDB
2138 if(remcachedb && worker->env.cachedb_enabled)
2139 cachedb_msg_remove_qinfo(&worker->env, &k);
2140 #else
2141 (void)remcachedb;
2142 #endif
2143 }
2144
2145 /** parse '+c' option, modifies string to return remainder. */
2146 static int
parse_remcachedb(RES * ssl,char ** arg,int * pc)2147 parse_remcachedb(RES* ssl, char** arg, int* pc)
2148 {
2149 *arg = skipwhite(*arg);
2150 if((*arg)[0] == '+' && (*arg)[1] == 'c') {
2151 char* arg2;
2152 *pc = 1;
2153 if(!find_arg2(ssl, *arg, &arg2))
2154 return 0;
2155 *arg = arg2;
2156 return 1;
2157 }
2158 /* The option was not found, no problem */
2159 return 1;
2160 }
2161
2162 /** flush a type */
2163 static void
do_flush_type(RES * ssl,struct worker * worker,char * arg)2164 do_flush_type(RES* ssl, struct worker* worker, char* arg)
2165 {
2166 uint8_t* nm;
2167 int nmlabs;
2168 size_t nmlen;
2169 char* arg2;
2170 uint16_t t;
2171 int pc = 0; /* '+c' option */
2172 if(!parse_remcachedb(ssl, &arg, &pc))
2173 return;
2174 if(!find_arg2(ssl, arg, &arg2))
2175 return;
2176 if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
2177 return;
2178 t = sldns_get_rr_type_by_name(arg2);
2179 if(t == 0 && strcmp(arg2, "TYPE0") != 0) {
2180 (void)ssl_printf(ssl, "error parsing RRset type: '%s'\n", arg2);
2181 free(nm);
2182 return;
2183 }
2184 do_cache_remove(worker, nm, nmlen, t, LDNS_RR_CLASS_IN, pc);
2185
2186 free(nm);
2187 send_ok(ssl);
2188 }
2189
2190 /** flush statistics */
2191 static void
do_flush_stats(RES * ssl,struct worker * worker)2192 do_flush_stats(RES* ssl, struct worker* worker)
2193 {
2194 worker_stats_clear(worker);
2195 send_ok(ssl);
2196 }
2197
2198 /**
2199 * Local info for deletion functions
2200 */
2201 struct del_info {
2202 /** worker */
2203 struct worker* worker;
2204 /** name to delete */
2205 uint8_t* name;
2206 /** length */
2207 size_t len;
2208 /** labels */
2209 int labs;
2210 /** time to invalidate to */
2211 time_t expired;
2212 /** number of rrsets removed */
2213 size_t num_rrsets;
2214 /** number of msgs removed */
2215 size_t num_msgs;
2216 /** number of key entries removed */
2217 size_t num_keys;
2218 /** length of addr */
2219 socklen_t addrlen;
2220 /** socket address for host deletion */
2221 struct sockaddr_storage addr;
2222 /** if cachedb information should be flushed too */
2223 int remcachedb;
2224 };
2225
2226 /** callback to delete hosts in infra cache */
2227 static void
infra_del_host(struct lruhash_entry * e,void * arg)2228 infra_del_host(struct lruhash_entry* e, void* arg)
2229 {
2230 /* entry is locked */
2231 struct del_info* inf = (struct del_info*)arg;
2232 struct infra_key* k = (struct infra_key*)e->key;
2233 if(sockaddr_cmp(&inf->addr, inf->addrlen, &k->addr, k->addrlen) == 0) {
2234 struct infra_data* d = (struct infra_data*)e->data;
2235 d->probedelay = 0;
2236 d->timeout_A = 0;
2237 d->timeout_AAAA = 0;
2238 d->timeout_other = 0;
2239 rtt_init(&d->rtt);
2240 if(d->ttl > inf->expired) {
2241 d->ttl = inf->expired;
2242 inf->num_keys++;
2243 }
2244 }
2245 }
2246
2247 /** flush infra cache */
2248 static void
do_flush_infra(RES * ssl,struct worker * worker,char * arg)2249 do_flush_infra(RES* ssl, struct worker* worker, char* arg)
2250 {
2251 struct sockaddr_storage addr;
2252 socklen_t len;
2253 struct del_info inf;
2254 if(strcmp(arg, "all") == 0) {
2255 slabhash_clear(worker->env.infra_cache->hosts);
2256 send_ok(ssl);
2257 return;
2258 }
2259 if(!ipstrtoaddr(arg, UNBOUND_DNS_PORT, &addr, &len)) {
2260 (void)ssl_printf(ssl, "error parsing ip addr: '%s'\n", arg);
2261 return;
2262 }
2263 /* delete all entries from cache */
2264 /* what we do is to set them all expired */
2265 inf.worker = worker;
2266 inf.name = 0;
2267 inf.len = 0;
2268 inf.labs = 0;
2269 inf.expired = *worker->env.now;
2270 inf.expired -= 3; /* handle 3 seconds skew between threads */
2271 inf.num_rrsets = 0;
2272 inf.num_msgs = 0;
2273 inf.num_keys = 0;
2274 inf.addrlen = len;
2275 inf.remcachedb = 0;
2276 memmove(&inf.addr, &addr, len);
2277 slabhash_traverse(worker->env.infra_cache->hosts, 1, &infra_del_host,
2278 &inf);
2279 send_ok(ssl);
2280 }
2281
2282 /** flush requestlist */
2283 static void
do_flush_requestlist(RES * ssl,struct worker * worker)2284 do_flush_requestlist(RES* ssl, struct worker* worker)
2285 {
2286 mesh_delete_all(worker->env.mesh);
2287 send_ok(ssl);
2288 }
2289
2290 /** callback to delete rrsets in a zone */
2291 static void
zone_del_rrset(struct lruhash_entry * e,void * arg)2292 zone_del_rrset(struct lruhash_entry* e, void* arg)
2293 {
2294 /* entry is locked */
2295 struct del_info* inf = (struct del_info*)arg;
2296 struct ub_packed_rrset_key* k = (struct ub_packed_rrset_key*)e->key;
2297 if(dname_subdomain_c(k->rk.dname, inf->name)) {
2298 struct packed_rrset_data* d =
2299 (struct packed_rrset_data*)e->data;
2300 if(d->ttl > inf->expired) {
2301 d->ttl = inf->expired;
2302 inf->num_rrsets++;
2303 }
2304 }
2305 }
2306
2307 /** callback to delete messages in a zone */
2308 static void
zone_del_msg(struct lruhash_entry * e,void * arg)2309 zone_del_msg(struct lruhash_entry* e, void* arg)
2310 {
2311 /* entry is locked */
2312 struct del_info* inf = (struct del_info*)arg;
2313 struct msgreply_entry* k = (struct msgreply_entry*)e->key;
2314 if(dname_subdomain_c(k->key.qname, inf->name)) {
2315 struct reply_info* d = (struct reply_info*)e->data;
2316 if(d->ttl > inf->expired) {
2317 d->ttl = inf->expired;
2318 d->prefetch_ttl = inf->expired;
2319 d->serve_expired_ttl = inf->expired;
2320 inf->num_msgs++;
2321 }
2322 #ifdef USE_CACHEDB
2323 if(inf->remcachedb && inf->worker->env.cachedb_enabled)
2324 cachedb_msg_remove_qinfo(&inf->worker->env, &k->key);
2325 #endif
2326 }
2327 }
2328
2329 /** callback to delete keys in zone */
2330 static void
zone_del_kcache(struct lruhash_entry * e,void * arg)2331 zone_del_kcache(struct lruhash_entry* e, void* arg)
2332 {
2333 /* entry is locked */
2334 struct del_info* inf = (struct del_info*)arg;
2335 struct key_entry_key* k = (struct key_entry_key*)e->key;
2336 if(dname_subdomain_c(k->name, inf->name)) {
2337 struct key_entry_data* d = (struct key_entry_data*)e->data;
2338 if(d->ttl > inf->expired) {
2339 d->ttl = inf->expired;
2340 inf->num_keys++;
2341 }
2342 }
2343 }
2344
2345 /** remove all rrsets and keys from zone from cache */
2346 static void
do_flush_zone(RES * ssl,struct worker * worker,char * arg)2347 do_flush_zone(RES* ssl, struct worker* worker, char* arg)
2348 {
2349 uint8_t* nm;
2350 int nmlabs;
2351 size_t nmlen;
2352 struct del_info inf;
2353 int pc = 0; /* '+c' option */
2354 if(!parse_remcachedb(ssl, &arg, &pc))
2355 return;
2356 if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
2357 return;
2358 /* delete all RRs and key entries from zone */
2359 /* what we do is to set them all expired */
2360 inf.worker = worker;
2361 inf.name = nm;
2362 inf.len = nmlen;
2363 inf.labs = nmlabs;
2364 inf.expired = *worker->env.now;
2365 inf.expired -= 3; /* handle 3 seconds skew between threads */
2366 inf.num_rrsets = 0;
2367 inf.num_msgs = 0;
2368 inf.num_keys = 0;
2369 inf.remcachedb = pc;
2370 slabhash_traverse(&worker->env.rrset_cache->table, 1,
2371 &zone_del_rrset, &inf);
2372
2373 slabhash_traverse(worker->env.msg_cache, 1, &zone_del_msg, &inf);
2374
2375 /* and validator cache */
2376 if(worker->env.key_cache) {
2377 slabhash_traverse(worker->env.key_cache->slab, 1,
2378 &zone_del_kcache, &inf);
2379 }
2380
2381 free(nm);
2382
2383 (void)ssl_printf(ssl, "ok removed %lu rrsets, %lu messages "
2384 "and %lu key entries\n", (unsigned long)inf.num_rrsets,
2385 (unsigned long)inf.num_msgs, (unsigned long)inf.num_keys);
2386 }
2387
2388 /** callback to delete bogus rrsets */
2389 static void
bogus_del_rrset(struct lruhash_entry * e,void * arg)2390 bogus_del_rrset(struct lruhash_entry* e, void* arg)
2391 {
2392 /* entry is locked */
2393 struct del_info* inf = (struct del_info*)arg;
2394 struct packed_rrset_data* d = (struct packed_rrset_data*)e->data;
2395 if(d->security == sec_status_bogus && d->ttl > inf->expired) {
2396 d->ttl = inf->expired;
2397 inf->num_rrsets++;
2398 }
2399 }
2400
2401 /** callback to delete bogus messages */
2402 static void
bogus_del_msg(struct lruhash_entry * e,void * arg)2403 bogus_del_msg(struct lruhash_entry* e, void* arg)
2404 {
2405 /* entry is locked */
2406 struct del_info* inf = (struct del_info*)arg;
2407 struct reply_info* d = (struct reply_info*)e->data;
2408 if(d->security == sec_status_bogus && d->ttl > inf->expired) {
2409 d->ttl = inf->expired;
2410 d->prefetch_ttl = inf->expired;
2411 d->serve_expired_ttl = inf->expired;
2412 inf->num_msgs++;
2413 #ifdef USE_CACHEDB
2414 if(inf->remcachedb && inf->worker->env.cachedb_enabled)
2415 cachedb_msg_remove_qinfo(&inf->worker->env,
2416 &((struct msgreply_entry*)e->key)->key);
2417 #endif
2418 }
2419 }
2420
2421 /** callback to delete bogus keys */
2422 static void
bogus_del_kcache(struct lruhash_entry * e,void * arg)2423 bogus_del_kcache(struct lruhash_entry* e, void* arg)
2424 {
2425 /* entry is locked */
2426 struct del_info* inf = (struct del_info*)arg;
2427 struct key_entry_data* d = (struct key_entry_data*)e->data;
2428 if(d->isbad && d->ttl > inf->expired) {
2429 d->ttl = inf->expired;
2430 inf->num_keys++;
2431 }
2432 }
2433
2434 /** remove all bogus rrsets, msgs and keys from cache */
2435 static void
do_flush_bogus(RES * ssl,struct worker * worker,char * arg)2436 do_flush_bogus(RES* ssl, struct worker* worker, char* arg)
2437 {
2438 struct del_info inf;
2439 int pc = 0; /* '+c' option */
2440 if(!parse_remcachedb(ssl, &arg, &pc))
2441 return;
2442 /* what we do is to set them all expired */
2443 inf.worker = worker;
2444 inf.expired = *worker->env.now;
2445 inf.expired -= 3; /* handle 3 seconds skew between threads */
2446 inf.num_rrsets = 0;
2447 inf.num_msgs = 0;
2448 inf.num_keys = 0;
2449 inf.remcachedb = pc;
2450 slabhash_traverse(&worker->env.rrset_cache->table, 1,
2451 &bogus_del_rrset, &inf);
2452
2453 slabhash_traverse(worker->env.msg_cache, 1, &bogus_del_msg, &inf);
2454
2455 /* and validator cache */
2456 if(worker->env.key_cache) {
2457 slabhash_traverse(worker->env.key_cache->slab, 1,
2458 &bogus_del_kcache, &inf);
2459 }
2460
2461 (void)ssl_printf(ssl, "ok removed %lu rrsets, %lu messages "
2462 "and %lu key entries\n", (unsigned long)inf.num_rrsets,
2463 (unsigned long)inf.num_msgs, (unsigned long)inf.num_keys);
2464 }
2465
2466 /** callback to delete negative and servfail rrsets */
2467 static void
negative_del_rrset(struct lruhash_entry * e,void * arg)2468 negative_del_rrset(struct lruhash_entry* e, void* arg)
2469 {
2470 /* entry is locked */
2471 struct del_info* inf = (struct del_info*)arg;
2472 struct ub_packed_rrset_key* k = (struct ub_packed_rrset_key*)e->key;
2473 struct packed_rrset_data* d = (struct packed_rrset_data*)e->data;
2474 /* delete the parentside negative cache rrsets,
2475 * these are nameserver rrsets that failed lookup, rdata empty */
2476 if((k->rk.flags & PACKED_RRSET_PARENT_SIDE) && d->count == 1 &&
2477 d->rrsig_count == 0 && d->rr_len[0] == 0 &&
2478 d->ttl > inf->expired) {
2479 d->ttl = inf->expired;
2480 inf->num_rrsets++;
2481 }
2482 }
2483
2484 /** callback to delete negative and servfail messages */
2485 static void
negative_del_msg(struct lruhash_entry * e,void * arg)2486 negative_del_msg(struct lruhash_entry* e, void* arg)
2487 {
2488 /* entry is locked */
2489 struct del_info* inf = (struct del_info*)arg;
2490 struct reply_info* d = (struct reply_info*)e->data;
2491 /* rcode not NOERROR: NXDOMAIN, SERVFAIL, ..: an nxdomain or error
2492 * or NOERROR rcode with ANCOUNT==0: a NODATA answer */
2493 if((FLAGS_GET_RCODE(d->flags) != 0 || d->an_numrrsets == 0) &&
2494 d->ttl > inf->expired) {
2495 d->ttl = inf->expired;
2496 d->prefetch_ttl = inf->expired;
2497 d->serve_expired_ttl = inf->expired;
2498 inf->num_msgs++;
2499 #ifdef USE_CACHEDB
2500 if(inf->remcachedb && inf->worker->env.cachedb_enabled)
2501 cachedb_msg_remove_qinfo(&inf->worker->env,
2502 &((struct msgreply_entry*)e->key)->key);
2503 #endif
2504 }
2505 }
2506
2507 /** callback to delete negative key entries */
2508 static void
negative_del_kcache(struct lruhash_entry * e,void * arg)2509 negative_del_kcache(struct lruhash_entry* e, void* arg)
2510 {
2511 /* entry is locked */
2512 struct del_info* inf = (struct del_info*)arg;
2513 struct key_entry_data* d = (struct key_entry_data*)e->data;
2514 /* could be bad because of lookup failure on the DS, DNSKEY, which
2515 * was nxdomain or servfail, and thus a result of negative lookups */
2516 if(d->isbad && d->ttl > inf->expired) {
2517 d->ttl = inf->expired;
2518 inf->num_keys++;
2519 }
2520 }
2521
2522 /** remove all negative(NODATA,NXDOMAIN), and servfail messages from cache */
2523 static void
do_flush_negative(RES * ssl,struct worker * worker,char * arg)2524 do_flush_negative(RES* ssl, struct worker* worker, char* arg)
2525 {
2526 struct del_info inf;
2527 int pc = 0; /* '+c' option */
2528 if(!parse_remcachedb(ssl, &arg, &pc))
2529 return;
2530 /* what we do is to set them all expired */
2531 inf.worker = worker;
2532 inf.expired = *worker->env.now;
2533 inf.expired -= 3; /* handle 3 seconds skew between threads */
2534 inf.num_rrsets = 0;
2535 inf.num_msgs = 0;
2536 inf.num_keys = 0;
2537 inf.remcachedb = pc;
2538 slabhash_traverse(&worker->env.rrset_cache->table, 1,
2539 &negative_del_rrset, &inf);
2540
2541 slabhash_traverse(worker->env.msg_cache, 1, &negative_del_msg, &inf);
2542
2543 /* and validator cache */
2544 if(worker->env.key_cache) {
2545 slabhash_traverse(worker->env.key_cache->slab, 1,
2546 &negative_del_kcache, &inf);
2547 }
2548
2549 (void)ssl_printf(ssl, "ok removed %lu rrsets, %lu messages "
2550 "and %lu key entries\n", (unsigned long)inf.num_rrsets,
2551 (unsigned long)inf.num_msgs, (unsigned long)inf.num_keys);
2552 }
2553
2554 /** remove name rrset from cache */
2555 static void
do_flush_name(RES * ssl,struct worker * w,char * arg)2556 do_flush_name(RES* ssl, struct worker* w, char* arg)
2557 {
2558 uint8_t* nm;
2559 int nmlabs;
2560 size_t nmlen;
2561 int pc = 0; /* '+c' option */
2562 if(!parse_remcachedb(ssl, &arg, &pc))
2563 return;
2564 if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
2565 return;
2566 do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_A, LDNS_RR_CLASS_IN, pc);
2567 do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_AAAA, LDNS_RR_CLASS_IN, pc);
2568 do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_NS, LDNS_RR_CLASS_IN, pc);
2569 do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_SOA, LDNS_RR_CLASS_IN, pc);
2570 do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_CNAME, LDNS_RR_CLASS_IN, pc);
2571 do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_DNAME, LDNS_RR_CLASS_IN, pc);
2572 do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_MX, LDNS_RR_CLASS_IN, pc);
2573 do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_PTR, LDNS_RR_CLASS_IN, pc);
2574 do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_SRV, LDNS_RR_CLASS_IN, pc);
2575 do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_NAPTR, LDNS_RR_CLASS_IN, pc);
2576 do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_SVCB, LDNS_RR_CLASS_IN, pc);
2577 do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_HTTPS, LDNS_RR_CLASS_IN, pc);
2578
2579 free(nm);
2580 send_ok(ssl);
2581 }
2582
2583 /** printout a delegation point info */
2584 static int
ssl_print_name_dp(RES * ssl,const char * str,uint8_t * nm,uint16_t dclass,struct delegpt * dp)2585 ssl_print_name_dp(RES* ssl, const char* str, uint8_t* nm, uint16_t dclass,
2586 struct delegpt* dp)
2587 {
2588 char buf[LDNS_MAX_DOMAINLEN];
2589 struct delegpt_ns* ns;
2590 struct delegpt_addr* a;
2591 int f = 0;
2592 if(str) { /* print header for forward, stub */
2593 char* c = sldns_wire2str_class(dclass);
2594 dname_str(nm, buf);
2595 if(!ssl_printf(ssl, "%s %s %s ", buf, (c?c:"CLASS??"), str)) {
2596 free(c);
2597 return 0;
2598 }
2599 free(c);
2600 }
2601 for(ns = dp->nslist; ns; ns = ns->next) {
2602 dname_str(ns->name, buf);
2603 if(!ssl_printf(ssl, "%s%s", (f?" ":""), buf))
2604 return 0;
2605 f = 1;
2606 }
2607 for(a = dp->target_list; a; a = a->next_target) {
2608 addr_to_str(&a->addr, a->addrlen, buf, sizeof(buf));
2609 if(!ssl_printf(ssl, "%s%s", (f?" ":""), buf))
2610 return 0;
2611 f = 1;
2612 }
2613 return ssl_printf(ssl, "\n");
2614 }
2615
2616
2617 /** print root forwards */
2618 static int
print_root_fwds(RES * ssl,struct iter_forwards * fwds,uint8_t * root)2619 print_root_fwds(RES* ssl, struct iter_forwards* fwds, uint8_t* root)
2620 {
2621 struct delegpt* dp;
2622 int nolock = 0;
2623 dp = forwards_lookup(fwds, root, LDNS_RR_CLASS_IN, nolock);
2624 if(!dp) {
2625 return ssl_printf(ssl, "off (using root hints)\n");
2626 }
2627 /* if dp is returned it must be the root */
2628 log_assert(query_dname_compare(dp->name, root)==0);
2629 if(!ssl_print_name_dp(ssl, NULL, root, LDNS_RR_CLASS_IN, dp)) {
2630 lock_rw_unlock(&fwds->lock);
2631 return 0;
2632 }
2633 lock_rw_unlock(&fwds->lock);
2634 return 1;
2635 }
2636
2637 /** parse args into delegpt */
2638 static struct delegpt*
parse_delegpt(RES * ssl,char * args,uint8_t * nm)2639 parse_delegpt(RES* ssl, char* args, uint8_t* nm)
2640 {
2641 /* parse args and add in */
2642 char* p = args;
2643 char* todo;
2644 struct delegpt* dp = delegpt_create_mlc(nm);
2645 struct sockaddr_storage addr;
2646 socklen_t addrlen;
2647 char* auth_name;
2648 if(!dp) {
2649 (void)ssl_printf(ssl, "error out of memory\n");
2650 return NULL;
2651 }
2652 while(p) {
2653 todo = p;
2654 p = strchr(p, ' '); /* find next spot, if any */
2655 if(p) {
2656 *p++ = 0; /* end this spot */
2657 p = skipwhite(p); /* position at next spot */
2658 }
2659 /* parse address */
2660 if(!authextstrtoaddr(todo, &addr, &addrlen, &auth_name)) {
2661 uint8_t* dname= NULL;
2662 int port;
2663 dname = authextstrtodname(todo, &port, &auth_name);
2664 if(!dname) {
2665 (void)ssl_printf(ssl, "error cannot parse"
2666 " '%s'\n", todo);
2667 delegpt_free_mlc(dp);
2668 return NULL;
2669 }
2670 #if ! defined(HAVE_SSL_SET1_HOST) && ! defined(HAVE_X509_VERIFY_PARAM_SET1_HOST)
2671 if(auth_name)
2672 log_err("no name verification functionality in "
2673 "ssl library, ignored name for %s", todo);
2674 #endif
2675 if(!delegpt_add_ns_mlc(dp, dname, 0, auth_name, port)) {
2676 (void)ssl_printf(ssl, "error out of memory\n");
2677 free(dname);
2678 delegpt_free_mlc(dp);
2679 return NULL;
2680 }
2681 } else {
2682 #if ! defined(HAVE_SSL_SET1_HOST) && ! defined(HAVE_X509_VERIFY_PARAM_SET1_HOST)
2683 if(auth_name)
2684 log_err("no name verification functionality in "
2685 "ssl library, ignored name for %s", todo);
2686 #endif
2687 /* add address */
2688 if(!delegpt_add_addr_mlc(dp, &addr, addrlen, 0, 0,
2689 auth_name, -1)) {
2690 (void)ssl_printf(ssl, "error out of memory\n");
2691 delegpt_free_mlc(dp);
2692 return NULL;
2693 }
2694 }
2695 }
2696 dp->has_parent_side_NS = 1;
2697 return dp;
2698 }
2699
2700 /** do the forward command */
2701 static void
do_forward(RES * ssl,struct worker * worker,char * args)2702 do_forward(RES* ssl, struct worker* worker, char* args)
2703 {
2704 struct iter_forwards* fwd = worker->env.fwds;
2705 uint8_t* root = (uint8_t*)"\000";
2706 int nolock = 0;
2707 if(!fwd) {
2708 (void)ssl_printf(ssl, "error: structure not allocated\n");
2709 return;
2710 }
2711 if(args == NULL || args[0] == 0) {
2712 (void)print_root_fwds(ssl, fwd, root);
2713 return;
2714 }
2715 /* set root forwards for this thread. since we are in remote control
2716 * the actual mesh is not running, so we can freely edit it. */
2717 /* delete all the existing queries first */
2718 mesh_delete_all(worker->env.mesh);
2719 if(strcmp(args, "off") == 0) {
2720 forwards_delete_zone(fwd, LDNS_RR_CLASS_IN, root, nolock);
2721 } else {
2722 struct delegpt* dp;
2723 if(!(dp = parse_delegpt(ssl, args, root)))
2724 return;
2725 if(!forwards_add_zone(fwd, LDNS_RR_CLASS_IN, dp, nolock)) {
2726 (void)ssl_printf(ssl, "error out of memory\n");
2727 return;
2728 }
2729 }
2730 send_ok(ssl);
2731 }
2732
2733 static int
parse_fs_args(RES * ssl,char * args,uint8_t ** nm,struct delegpt ** dp,int * insecure,int * prime,int * tls)2734 parse_fs_args(RES* ssl, char* args, uint8_t** nm, struct delegpt** dp,
2735 int* insecure, int* prime, int* tls)
2736 {
2737 char* zonename;
2738 char* rest;
2739 size_t nmlen;
2740 int nmlabs;
2741 /* parse all -x args */
2742 while(args[0] == '+') {
2743 if(!find_arg2(ssl, args, &rest))
2744 return 0;
2745 while(*(++args) != 0) {
2746 if(*args == 'i' && insecure)
2747 *insecure = 1;
2748 else if(*args == 'p' && prime)
2749 *prime = 1;
2750 else if(*args == 't' && tls)
2751 *tls = 1;
2752 else {
2753 (void)ssl_printf(ssl, "error: unknown option %s\n", args);
2754 return 0;
2755 }
2756 }
2757 args = rest;
2758 }
2759 /* parse name */
2760 if(dp) {
2761 if(!find_arg2(ssl, args, &rest))
2762 return 0;
2763 zonename = args;
2764 args = rest;
2765 } else zonename = args;
2766 if(!parse_arg_name(ssl, zonename, nm, &nmlen, &nmlabs))
2767 return 0;
2768
2769 /* parse dp */
2770 if(dp) {
2771 if(!(*dp = parse_delegpt(ssl, args, *nm))) {
2772 free(*nm);
2773 return 0;
2774 }
2775 }
2776 return 1;
2777 }
2778
2779 /** do the forward_add command */
2780 static void
do_forward_add(RES * ssl,struct worker * worker,char * args)2781 do_forward_add(RES* ssl, struct worker* worker, char* args)
2782 {
2783 struct iter_forwards* fwd = worker->env.fwds;
2784 int insecure = 0, tls = 0;
2785 uint8_t* nm = NULL;
2786 struct delegpt* dp = NULL;
2787 int nolock = 1;
2788 if(!parse_fs_args(ssl, args, &nm, &dp, &insecure, NULL, &tls))
2789 return;
2790 if(tls)
2791 dp->ssl_upstream = 1;
2792 /* prelock forwarders for atomic operation with anchors */
2793 lock_rw_wrlock(&fwd->lock);
2794 if(insecure && worker->env.anchors) {
2795 if(!anchors_add_insecure(worker->env.anchors, LDNS_RR_CLASS_IN,
2796 nm)) {
2797 lock_rw_unlock(&fwd->lock);
2798 (void)ssl_printf(ssl, "error out of memory\n");
2799 delegpt_free_mlc(dp);
2800 free(nm);
2801 return;
2802 }
2803 }
2804 if(!forwards_add_zone(fwd, LDNS_RR_CLASS_IN, dp, nolock)) {
2805 lock_rw_unlock(&fwd->lock);
2806 (void)ssl_printf(ssl, "error out of memory\n");
2807 free(nm);
2808 return;
2809 }
2810 lock_rw_unlock(&fwd->lock);
2811 free(nm);
2812 send_ok(ssl);
2813 }
2814
2815 /** do the forward_remove command */
2816 static void
do_forward_remove(RES * ssl,struct worker * worker,char * args)2817 do_forward_remove(RES* ssl, struct worker* worker, char* args)
2818 {
2819 struct iter_forwards* fwd = worker->env.fwds;
2820 int insecure = 0;
2821 uint8_t* nm = NULL;
2822 int nolock = 1;
2823 if(!parse_fs_args(ssl, args, &nm, NULL, &insecure, NULL, NULL))
2824 return;
2825 /* prelock forwarders for atomic operation with anchors */
2826 lock_rw_wrlock(&fwd->lock);
2827 if(insecure && worker->env.anchors)
2828 anchors_delete_insecure(worker->env.anchors, LDNS_RR_CLASS_IN,
2829 nm);
2830 forwards_delete_zone(fwd, LDNS_RR_CLASS_IN, nm, nolock);
2831 lock_rw_unlock(&fwd->lock);
2832 free(nm);
2833 send_ok(ssl);
2834 }
2835
2836 /** do the stub_add command */
2837 static void
do_stub_add(RES * ssl,struct worker * worker,char * args)2838 do_stub_add(RES* ssl, struct worker* worker, char* args)
2839 {
2840 struct iter_forwards* fwd = worker->env.fwds;
2841 int insecure = 0, prime = 0, tls = 0;
2842 uint8_t* nm = NULL;
2843 struct delegpt* dp = NULL;
2844 int nolock = 1;
2845 if(!parse_fs_args(ssl, args, &nm, &dp, &insecure, &prime, &tls))
2846 return;
2847 if(tls)
2848 dp->ssl_upstream = 1;
2849 /* prelock forwarders and hints for atomic operation with anchors */
2850 lock_rw_wrlock(&fwd->lock);
2851 lock_rw_wrlock(&worker->env.hints->lock);
2852 if(insecure && worker->env.anchors) {
2853 if(!anchors_add_insecure(worker->env.anchors, LDNS_RR_CLASS_IN,
2854 nm)) {
2855 lock_rw_unlock(&fwd->lock);
2856 lock_rw_unlock(&worker->env.hints->lock);
2857 (void)ssl_printf(ssl, "error out of memory\n");
2858 delegpt_free_mlc(dp);
2859 free(nm);
2860 return;
2861 }
2862 }
2863 if(!forwards_add_stub_hole(fwd, LDNS_RR_CLASS_IN, nm, nolock)) {
2864 if(insecure && worker->env.anchors)
2865 anchors_delete_insecure(worker->env.anchors,
2866 LDNS_RR_CLASS_IN, nm);
2867 lock_rw_unlock(&fwd->lock);
2868 lock_rw_unlock(&worker->env.hints->lock);
2869 (void)ssl_printf(ssl, "error out of memory\n");
2870 delegpt_free_mlc(dp);
2871 free(nm);
2872 return;
2873 }
2874 if(!hints_add_stub(worker->env.hints, LDNS_RR_CLASS_IN, dp, !prime,
2875 nolock)) {
2876 (void)ssl_printf(ssl, "error out of memory\n");
2877 forwards_delete_stub_hole(fwd, LDNS_RR_CLASS_IN, nm, nolock);
2878 if(insecure && worker->env.anchors)
2879 anchors_delete_insecure(worker->env.anchors,
2880 LDNS_RR_CLASS_IN, nm);
2881 lock_rw_unlock(&fwd->lock);
2882 lock_rw_unlock(&worker->env.hints->lock);
2883 free(nm);
2884 return;
2885 }
2886 lock_rw_unlock(&fwd->lock);
2887 lock_rw_unlock(&worker->env.hints->lock);
2888 free(nm);
2889 send_ok(ssl);
2890 }
2891
2892 /** do the stub_remove command */
2893 static void
do_stub_remove(RES * ssl,struct worker * worker,char * args)2894 do_stub_remove(RES* ssl, struct worker* worker, char* args)
2895 {
2896 struct iter_forwards* fwd = worker->env.fwds;
2897 int insecure = 0;
2898 uint8_t* nm = NULL;
2899 int nolock = 1;
2900 if(!parse_fs_args(ssl, args, &nm, NULL, &insecure, NULL, NULL))
2901 return;
2902 /* prelock forwarders and hints for atomic operation with anchors */
2903 lock_rw_wrlock(&fwd->lock);
2904 lock_rw_wrlock(&worker->env.hints->lock);
2905 if(insecure && worker->env.anchors)
2906 anchors_delete_insecure(worker->env.anchors, LDNS_RR_CLASS_IN,
2907 nm);
2908 forwards_delete_stub_hole(fwd, LDNS_RR_CLASS_IN, nm, nolock);
2909 hints_delete_stub(worker->env.hints, LDNS_RR_CLASS_IN, nm, nolock);
2910 lock_rw_unlock(&fwd->lock);
2911 lock_rw_unlock(&worker->env.hints->lock);
2912 free(nm);
2913 send_ok(ssl);
2914 }
2915
2916 /** do the insecure_add command */
2917 static void
do_insecure_add(RES * ssl,struct worker * worker,char * arg)2918 do_insecure_add(RES* ssl, struct worker* worker, char* arg)
2919 {
2920 size_t nmlen;
2921 int nmlabs;
2922 uint8_t* nm = NULL;
2923 if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
2924 return;
2925 if(worker->env.anchors) {
2926 if(!anchors_add_insecure(worker->env.anchors,
2927 LDNS_RR_CLASS_IN, nm)) {
2928 (void)ssl_printf(ssl, "error out of memory\n");
2929 free(nm);
2930 return;
2931 }
2932 }
2933 free(nm);
2934 send_ok(ssl);
2935 }
2936
2937 /** do the insecure_remove command */
2938 static void
do_insecure_remove(RES * ssl,struct worker * worker,char * arg)2939 do_insecure_remove(RES* ssl, struct worker* worker, char* arg)
2940 {
2941 size_t nmlen;
2942 int nmlabs;
2943 uint8_t* nm = NULL;
2944 if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
2945 return;
2946 if(worker->env.anchors)
2947 anchors_delete_insecure(worker->env.anchors,
2948 LDNS_RR_CLASS_IN, nm);
2949 free(nm);
2950 send_ok(ssl);
2951 }
2952
2953 static void
do_insecure_list(RES * ssl,struct worker * worker)2954 do_insecure_list(RES* ssl, struct worker* worker)
2955 {
2956 char buf[LDNS_MAX_DOMAINLEN];
2957 struct trust_anchor* a;
2958 if(worker->env.anchors) {
2959 RBTREE_FOR(a, struct trust_anchor*, worker->env.anchors->tree) {
2960 if(a->numDS == 0 && a->numDNSKEY == 0) {
2961 dname_str(a->name, buf);
2962 ssl_printf(ssl, "%s\n", buf);
2963 }
2964 }
2965 }
2966 }
2967
2968 /** do the status command */
2969 static void
do_status(RES * ssl,struct worker * worker)2970 do_status(RES* ssl, struct worker* worker)
2971 {
2972 int i;
2973 time_t uptime;
2974 if(!ssl_printf(ssl, "version: %s\n", PACKAGE_VERSION))
2975 return;
2976 if(!ssl_printf(ssl, "verbosity: %d\n", verbosity))
2977 return;
2978 if(!ssl_printf(ssl, "threads: %d\n", worker->daemon->num))
2979 return;
2980 if(!ssl_printf(ssl, "modules: %d [", worker->daemon->mods.num))
2981 return;
2982 for(i=0; i<worker->daemon->mods.num; i++) {
2983 if(!ssl_printf(ssl, " %s", worker->daemon->mods.mod[i]->name))
2984 return;
2985 }
2986 if(!ssl_printf(ssl, " ]\n"))
2987 return;
2988 uptime = (time_t)time(NULL) - (time_t)worker->daemon->time_boot.tv_sec;
2989 if(!ssl_printf(ssl, "uptime: " ARG_LL "d seconds\n", (long long)uptime))
2990 return;
2991 if(!ssl_printf(ssl, "options:%s%s%s%s\n" ,
2992 (worker->daemon->reuseport?" reuseport":""),
2993 (worker->daemon->rc->accept_list?" control":""),
2994 (worker->daemon->rc->accept_list && worker->daemon->rc->use_cert?"(ssl)":""),
2995 (worker->daemon->rc->accept_list && worker->daemon->cfg->control_ifs.first && worker->daemon->cfg->control_ifs.first->str && worker->daemon->cfg->control_ifs.first->str[0] == '/'?"(namedpipe)":"")
2996 ))
2997 return;
2998 if(!ssl_printf(ssl, "unbound (pid %d) is running...\n",
2999 (int)getpid()))
3000 return;
3001 }
3002
3003 /** get age for the mesh state */
3004 static void
get_mesh_age(struct mesh_state * m,char * buf,size_t len,struct module_env * env)3005 get_mesh_age(struct mesh_state* m, char* buf, size_t len,
3006 struct module_env* env)
3007 {
3008 if(m->reply_list) {
3009 struct timeval d;
3010 struct mesh_reply* r = m->reply_list;
3011 /* last reply is the oldest */
3012 while(r && r->next)
3013 r = r->next;
3014 timeval_subtract(&d, env->now_tv, &r->start_time);
3015 snprintf(buf, len, ARG_LL "d.%6.6d",
3016 (long long)d.tv_sec, (int)d.tv_usec);
3017 } else {
3018 snprintf(buf, len, "-");
3019 }
3020 }
3021
3022 /** get status of a mesh state */
3023 static void
get_mesh_status(struct mesh_area * mesh,struct mesh_state * m,char * buf,size_t len)3024 get_mesh_status(struct mesh_area* mesh, struct mesh_state* m,
3025 char* buf, size_t len)
3026 {
3027 enum module_ext_state s = m->s.ext_state[m->s.curmod];
3028 const char *modname = mesh->mods.mod[m->s.curmod]->name;
3029 size_t l;
3030 if(strcmp(modname, "iterator") == 0 && s == module_wait_reply &&
3031 m->s.minfo[m->s.curmod]) {
3032 /* break into iterator to find out who its waiting for */
3033 struct iter_qstate* qstate = (struct iter_qstate*)
3034 m->s.minfo[m->s.curmod];
3035 struct outbound_list* ol = &qstate->outlist;
3036 struct outbound_entry* e;
3037 snprintf(buf, len, "%s wait for", modname);
3038 l = strlen(buf);
3039 buf += l; len -= l;
3040 if(ol->first == NULL)
3041 snprintf(buf, len, " (empty_list)");
3042 for(e = ol->first; e; e = e->next) {
3043 snprintf(buf, len, " ");
3044 l = strlen(buf);
3045 buf += l; len -= l;
3046 addr_to_str(&e->qsent->addr, e->qsent->addrlen,
3047 buf, len);
3048 l = strlen(buf);
3049 buf += l; len -= l;
3050 }
3051 } else if(s == module_wait_subquery) {
3052 /* look in subs from mesh state to see what */
3053 char nm[LDNS_MAX_DOMAINLEN];
3054 struct mesh_state_ref* sub;
3055 snprintf(buf, len, "%s wants", modname);
3056 l = strlen(buf);
3057 buf += l; len -= l;
3058 if(m->sub_set.count == 0)
3059 snprintf(buf, len, " (empty_list)");
3060 RBTREE_FOR(sub, struct mesh_state_ref*, &m->sub_set) {
3061 char* t = sldns_wire2str_type(sub->s->s.qinfo.qtype);
3062 char* c = sldns_wire2str_class(sub->s->s.qinfo.qclass);
3063 dname_str(sub->s->s.qinfo.qname, nm);
3064 snprintf(buf, len, " %s %s %s", (t?t:"TYPE??"),
3065 (c?c:"CLASS??"), nm);
3066 l = strlen(buf);
3067 buf += l; len -= l;
3068 free(t);
3069 free(c);
3070 }
3071 } else {
3072 snprintf(buf, len, "%s is %s", modname, strextstate(s));
3073 }
3074 }
3075
3076 /** do the dump_requestlist command */
3077 static void
do_dump_requestlist(RES * ssl,struct worker * worker)3078 do_dump_requestlist(RES* ssl, struct worker* worker)
3079 {
3080 struct mesh_area* mesh;
3081 struct mesh_state* m;
3082 int num = 0;
3083 char buf[LDNS_MAX_DOMAINLEN];
3084 char timebuf[32];
3085 char statbuf[10240];
3086 if(!ssl_printf(ssl, "thread #%d\n", worker->thread_num))
3087 return;
3088 if(!ssl_printf(ssl, "# type cl name seconds module status\n"))
3089 return;
3090 /* show worker mesh contents */
3091 mesh = worker->env.mesh;
3092 if(!mesh) return;
3093 RBTREE_FOR(m, struct mesh_state*, &mesh->all) {
3094 char* t = sldns_wire2str_type(m->s.qinfo.qtype);
3095 char* c = sldns_wire2str_class(m->s.qinfo.qclass);
3096 dname_str(m->s.qinfo.qname, buf);
3097 get_mesh_age(m, timebuf, sizeof(timebuf), &worker->env);
3098 get_mesh_status(mesh, m, statbuf, sizeof(statbuf));
3099 if(!ssl_printf(ssl, "%3d %4s %2s %s %s %s\n",
3100 num, (t?t:"TYPE??"), (c?c:"CLASS??"), buf, timebuf,
3101 statbuf)) {
3102 free(t);
3103 free(c);
3104 return;
3105 }
3106 num++;
3107 free(t);
3108 free(c);
3109 }
3110 }
3111
3112 /** structure for argument data for dump infra host */
3113 struct infra_arg {
3114 /** the infra cache */
3115 struct infra_cache* infra;
3116 /** the SSL connection */
3117 RES* ssl;
3118 /** the time now */
3119 time_t now;
3120 /** ssl failure? stop writing and skip the rest. If the tcp
3121 * connection is broken, and writes fail, we then stop writing. */
3122 int ssl_failed;
3123 };
3124
3125 /** callback for every host element in the infra cache */
3126 static void
dump_infra_host(struct lruhash_entry * e,void * arg)3127 dump_infra_host(struct lruhash_entry* e, void* arg)
3128 {
3129 struct infra_arg* a = (struct infra_arg*)arg;
3130 struct infra_key* k = (struct infra_key*)e->key;
3131 struct infra_data* d = (struct infra_data*)e->data;
3132 char ip_str[1024];
3133 char name[LDNS_MAX_DOMAINLEN];
3134 int port;
3135 if(a->ssl_failed)
3136 return;
3137 addr_to_str(&k->addr, k->addrlen, ip_str, sizeof(ip_str));
3138 dname_str(k->zonename, name);
3139 port = (int)ntohs(((struct sockaddr_in*)&k->addr)->sin_port);
3140 if(port != UNBOUND_DNS_PORT) {
3141 snprintf(ip_str+strlen(ip_str), sizeof(ip_str)-strlen(ip_str),
3142 "@%d", port);
3143 }
3144 /* skip expired stuff (only backed off) */
3145 if(d->ttl < a->now) {
3146 if(d->rtt.rto >= USEFUL_SERVER_TOP_TIMEOUT) {
3147 if(!ssl_printf(a->ssl, "%s %s expired rto %d\n", ip_str,
3148 name, d->rtt.rto)) {
3149 a->ssl_failed = 1;
3150 return;
3151 }
3152 }
3153 return;
3154 }
3155 if(!ssl_printf(a->ssl, "%s %s ttl %lu ping %d var %d rtt %d rto %d "
3156 "tA %d tAAAA %d tother %d "
3157 "ednsknown %d edns %d delay %d lame dnssec %d rec %d A %d "
3158 "other %d\n", ip_str, name, (unsigned long)(d->ttl - a->now),
3159 d->rtt.srtt, d->rtt.rttvar, rtt_notimeout(&d->rtt), d->rtt.rto,
3160 d->timeout_A, d->timeout_AAAA, d->timeout_other,
3161 (int)d->edns_lame_known, (int)d->edns_version,
3162 (int)(a->now<d->probedelay?(d->probedelay - a->now):0),
3163 (int)d->isdnsseclame, (int)d->rec_lame, (int)d->lame_type_A,
3164 (int)d->lame_other)) {
3165 a->ssl_failed = 1;
3166 return;
3167 }
3168 }
3169
3170 /** do the dump_infra command */
3171 static void
do_dump_infra(RES * ssl,struct worker * worker)3172 do_dump_infra(RES* ssl, struct worker* worker)
3173 {
3174 struct infra_arg arg;
3175 arg.infra = worker->env.infra_cache;
3176 arg.ssl = ssl;
3177 arg.now = *worker->env.now;
3178 arg.ssl_failed = 0;
3179 slabhash_traverse(arg.infra->hosts, 0, &dump_infra_host, (void*)&arg);
3180 }
3181
3182 /** do the log_reopen command */
3183 static void
do_log_reopen(RES * ssl,struct worker * worker)3184 do_log_reopen(RES* ssl, struct worker* worker)
3185 {
3186 struct config_file* cfg = worker->env.cfg;
3187 send_ok(ssl);
3188 log_init(cfg->logfile, cfg->use_syslog, cfg->chrootdir);
3189 }
3190
3191 /** do the auth_zone_reload command */
3192 static void
do_auth_zone_reload(RES * ssl,struct worker * worker,char * arg)3193 do_auth_zone_reload(RES* ssl, struct worker* worker, char* arg)
3194 {
3195 size_t nmlen;
3196 int nmlabs;
3197 uint8_t* nm = NULL;
3198 struct auth_zones* az = worker->env.auth_zones;
3199 struct auth_zone* z = NULL;
3200 struct auth_xfer* xfr = NULL;
3201 char* reason = NULL;
3202 if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
3203 return;
3204 if(az) {
3205 lock_rw_rdlock(&az->lock);
3206 z = auth_zone_find(az, nm, nmlen, LDNS_RR_CLASS_IN);
3207 if(z) {
3208 lock_rw_wrlock(&z->lock);
3209 }
3210 xfr = auth_xfer_find(az, nm, nmlen, LDNS_RR_CLASS_IN);
3211 if(xfr) {
3212 lock_basic_lock(&xfr->lock);
3213 }
3214 lock_rw_unlock(&az->lock);
3215 }
3216 free(nm);
3217 if(!z) {
3218 if(xfr) {
3219 lock_basic_unlock(&xfr->lock);
3220 }
3221 (void)ssl_printf(ssl, "error no auth-zone %s\n", arg);
3222 return;
3223 }
3224 if(!auth_zone_read_zonefile(z, worker->env.cfg)) {
3225 lock_rw_unlock(&z->lock);
3226 if(xfr) {
3227 lock_basic_unlock(&xfr->lock);
3228 }
3229 (void)ssl_printf(ssl, "error failed to read %s\n", arg);
3230 return;
3231 }
3232
3233 z->zone_expired = 0;
3234 if(xfr) {
3235 xfr->zone_expired = 0;
3236 if(!xfr_find_soa(z, xfr)) {
3237 if(z->data.count == 0) {
3238 lock_rw_unlock(&z->lock);
3239 lock_basic_unlock(&xfr->lock);
3240 (void)ssl_printf(ssl, "zone %s has no contents\n", arg);
3241 return;
3242 }
3243 lock_rw_unlock(&z->lock);
3244 lock_basic_unlock(&xfr->lock);
3245 (void)ssl_printf(ssl, "error: no SOA in zone after read %s\n", arg);
3246 return;
3247 }
3248 if(xfr->have_zone) {
3249 xfr->lease_time = *worker->env.now;
3250 xfr->soa_zone_acquired = *worker->env.now;
3251 }
3252 lock_basic_unlock(&xfr->lock);
3253 }
3254 z->soa_zone_acquired = *worker->env.now;
3255
3256 auth_zone_verify_zonemd(z, &worker->env, &worker->env.mesh->mods,
3257 &reason, 0, 0);
3258 if(reason && z->zone_expired) {
3259 lock_rw_unlock(&z->lock);
3260 (void)ssl_printf(ssl, "error zonemd for %s failed: %s\n",
3261 arg, reason);
3262 free(reason);
3263 return;
3264 } else if(reason && strcmp(reason, "ZONEMD verification successful")
3265 ==0) {
3266 (void)ssl_printf(ssl, "%s: %s\n", arg, reason);
3267 }
3268 lock_rw_unlock(&z->lock);
3269 free(reason);
3270 send_ok(ssl);
3271 }
3272
3273 /** do the auth_zone_transfer command */
3274 static void
do_auth_zone_transfer(RES * ssl,struct worker * worker,char * arg)3275 do_auth_zone_transfer(RES* ssl, struct worker* worker, char* arg)
3276 {
3277 size_t nmlen;
3278 int nmlabs;
3279 uint8_t* nm = NULL;
3280 struct auth_zones* az = worker->env.auth_zones;
3281 if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
3282 return;
3283 if(!az || !auth_zones_startprobesequence(az, &worker->env, nm, nmlen,
3284 LDNS_RR_CLASS_IN)) {
3285 (void)ssl_printf(ssl, "error zone xfr task not found %s\n", arg);
3286 free(nm);
3287 return;
3288 }
3289 free(nm);
3290 send_ok(ssl);
3291 }
3292
3293 /** do the set_option command */
3294 static void
do_set_option(RES * ssl,struct worker * worker,char * arg)3295 do_set_option(RES* ssl, struct worker* worker, char* arg)
3296 {
3297 char* arg2;
3298 if(!find_arg2(ssl, arg, &arg2))
3299 return;
3300 if(!config_set_option(worker->env.cfg, arg, arg2)) {
3301 (void)ssl_printf(ssl, "error setting option\n");
3302 return;
3303 }
3304 /* effectuate some arguments */
3305 if(strcmp(arg, "val-override-date:") == 0) {
3306 int m = modstack_find(&worker->env.mesh->mods, "validator");
3307 struct val_env* val_env = NULL;
3308 if(m != -1) val_env = (struct val_env*)worker->env.modinfo[m];
3309 if(val_env)
3310 val_env->date_override = worker->env.cfg->val_date_override;
3311 }
3312 send_ok(ssl);
3313 }
3314
3315 /* routine to printout option values over SSL */
remote_get_opt_ssl(char * line,void * arg)3316 void remote_get_opt_ssl(char* line, void* arg)
3317 {
3318 RES* ssl = (RES*)arg;
3319 (void)ssl_printf(ssl, "%s\n", line);
3320 }
3321
3322 /** do the get_option command */
3323 static void
do_get_option(RES * ssl,struct worker * worker,char * arg)3324 do_get_option(RES* ssl, struct worker* worker, char* arg)
3325 {
3326 int r;
3327 r = config_get_option(worker->env.cfg, arg, remote_get_opt_ssl, ssl);
3328 if(!r) {
3329 (void)ssl_printf(ssl, "error unknown option\n");
3330 return;
3331 }
3332 }
3333
3334 /** do the list_forwards command */
3335 static void
do_list_forwards(RES * ssl,struct worker * worker)3336 do_list_forwards(RES* ssl, struct worker* worker)
3337 {
3338 /* since its a per-worker structure no locks needed */
3339 struct iter_forwards* fwds = worker->env.fwds;
3340 struct iter_forward_zone* z;
3341 struct trust_anchor* a;
3342 int insecure;
3343 lock_rw_rdlock(&fwds->lock);
3344 RBTREE_FOR(z, struct iter_forward_zone*, fwds->tree) {
3345 if(!z->dp) continue; /* skip empty marker for stub */
3346
3347 /* see if it is insecure */
3348 insecure = 0;
3349 if(worker->env.anchors &&
3350 (a=anchor_find(worker->env.anchors, z->name,
3351 z->namelabs, z->namelen, z->dclass))) {
3352 if(!a->keylist && !a->numDS && !a->numDNSKEY)
3353 insecure = 1;
3354 lock_basic_unlock(&a->lock);
3355 }
3356
3357 if(!ssl_print_name_dp(ssl, (insecure?"forward +i":"forward"),
3358 z->name, z->dclass, z->dp)) {
3359 lock_rw_unlock(&fwds->lock);
3360 return;
3361 }
3362 }
3363 lock_rw_unlock(&fwds->lock);
3364 }
3365
3366 /** do the list_stubs command */
3367 static void
do_list_stubs(RES * ssl,struct worker * worker)3368 do_list_stubs(RES* ssl, struct worker* worker)
3369 {
3370 struct iter_hints_stub* z;
3371 struct trust_anchor* a;
3372 int insecure;
3373 char str[32];
3374 lock_rw_rdlock(&worker->env.hints->lock);
3375 RBTREE_FOR(z, struct iter_hints_stub*, &worker->env.hints->tree) {
3376
3377 /* see if it is insecure */
3378 insecure = 0;
3379 if(worker->env.anchors &&
3380 (a=anchor_find(worker->env.anchors, z->node.name,
3381 z->node.labs, z->node.len, z->node.dclass))) {
3382 if(!a->keylist && !a->numDS && !a->numDNSKEY)
3383 insecure = 1;
3384 lock_basic_unlock(&a->lock);
3385 }
3386
3387 snprintf(str, sizeof(str), "stub %sprime%s",
3388 (z->noprime?"no":""), (insecure?" +i":""));
3389 if(!ssl_print_name_dp(ssl, str, z->node.name,
3390 z->node.dclass, z->dp)) {
3391 lock_rw_unlock(&worker->env.hints->lock);
3392 return;
3393 }
3394 }
3395 lock_rw_unlock(&worker->env.hints->lock);
3396 }
3397
3398 /** do the list_auth_zones command */
3399 static void
do_list_auth_zones(RES * ssl,struct auth_zones * az)3400 do_list_auth_zones(RES* ssl, struct auth_zones* az)
3401 {
3402 struct auth_zone* z;
3403 char buf[LDNS_MAX_DOMAINLEN], buf2[256], buf3[256];
3404 lock_rw_rdlock(&az->lock);
3405 RBTREE_FOR(z, struct auth_zone*, &az->ztree) {
3406 lock_rw_rdlock(&z->lock);
3407 dname_str(z->name, buf);
3408 if(z->zone_expired)
3409 snprintf(buf2, sizeof(buf2), "expired");
3410 else {
3411 uint32_t serial = 0;
3412 if(auth_zone_get_serial(z, &serial)) {
3413 snprintf(buf2, sizeof(buf2), "serial %u",
3414 (unsigned)serial);
3415 if(z->soa_zone_acquired != 0) {
3416 #if defined(HAVE_STRFTIME) && defined(HAVE_LOCALTIME_R)
3417 char tmbuf[32];
3418 struct tm tm;
3419 struct tm *tm_p;
3420 tm_p = localtime_r(
3421 &z->soa_zone_acquired, &tm);
3422 if(!strftime(tmbuf, sizeof(tmbuf), "%Y-%m-%dT%H:%M:%S", tm_p))
3423 snprintf(tmbuf, sizeof(tmbuf), "strftime-err-%u", (unsigned)z->soa_zone_acquired);
3424 snprintf(buf3, sizeof(buf3),
3425 "\t since %u %s",
3426 (unsigned)z->soa_zone_acquired,
3427 tmbuf);
3428 #else
3429 snprintf(buf3, sizeof(buf3),
3430 "\t since %u",
3431 (unsigned)z->soa_zone_acquired);
3432 #endif
3433 } else {
3434 buf3[0]=0;
3435 }
3436 } else {
3437 snprintf(buf2, sizeof(buf2), "no serial");
3438 buf3[0]=0;
3439 }
3440 }
3441 lock_rw_unlock(&z->lock);
3442 if(!ssl_printf(ssl, "%s\t%s%s\n", buf, buf2, buf3)) {
3443 /* failure to print */
3444 lock_rw_unlock(&az->lock);
3445 return;
3446 }
3447 }
3448 lock_rw_unlock(&az->lock);
3449 }
3450
3451 /** do the list_local_zones command */
3452 static void
do_list_local_zones(RES * ssl,struct local_zones * zones)3453 do_list_local_zones(RES* ssl, struct local_zones* zones)
3454 {
3455 struct local_zone* z;
3456 char buf[LDNS_MAX_DOMAINLEN];
3457 lock_rw_rdlock(&zones->lock);
3458 RBTREE_FOR(z, struct local_zone*, &zones->ztree) {
3459 lock_rw_rdlock(&z->lock);
3460 dname_str(z->name, buf);
3461 if(!ssl_printf(ssl, "%s %s\n", buf,
3462 local_zone_type2str(z->type))) {
3463 /* failure to print */
3464 lock_rw_unlock(&z->lock);
3465 lock_rw_unlock(&zones->lock);
3466 return;
3467 }
3468 lock_rw_unlock(&z->lock);
3469 }
3470 lock_rw_unlock(&zones->lock);
3471 }
3472
3473 /** do the list_local_data command */
3474 static void
do_list_local_data(RES * ssl,struct worker * worker,struct local_zones * zones)3475 do_list_local_data(RES* ssl, struct worker* worker, struct local_zones* zones)
3476 {
3477 struct local_zone* z;
3478 struct local_data* d;
3479 struct local_rrset* p;
3480 char* s = (char*)sldns_buffer_begin(worker->env.scratch_buffer);
3481 size_t slen = sldns_buffer_capacity(worker->env.scratch_buffer);
3482 lock_rw_rdlock(&zones->lock);
3483 RBTREE_FOR(z, struct local_zone*, &zones->ztree) {
3484 lock_rw_rdlock(&z->lock);
3485 RBTREE_FOR(d, struct local_data*, &z->data) {
3486 for(p = d->rrsets; p; p = p->next) {
3487 struct packed_rrset_data* d =
3488 (struct packed_rrset_data*)p->rrset->entry.data;
3489 size_t i;
3490 for(i=0; i<d->count + d->rrsig_count; i++) {
3491 if(!packed_rr_to_string(p->rrset, i,
3492 0, s, slen)) {
3493 if(!ssl_printf(ssl, "BADRR\n")) {
3494 lock_rw_unlock(&z->lock);
3495 lock_rw_unlock(&zones->lock);
3496 return;
3497 }
3498 }
3499 if(!ssl_printf(ssl, "%s\n", s)) {
3500 lock_rw_unlock(&z->lock);
3501 lock_rw_unlock(&zones->lock);
3502 return;
3503 }
3504 }
3505 }
3506 }
3507 lock_rw_unlock(&z->lock);
3508 }
3509 lock_rw_unlock(&zones->lock);
3510 }
3511
3512 /** do the view_list_local_zones command */
3513 static void
do_view_list_local_zones(RES * ssl,struct worker * worker,char * arg)3514 do_view_list_local_zones(RES* ssl, struct worker* worker, char* arg)
3515 {
3516 struct view* v = views_find_view(worker->env.views,
3517 arg, 0 /* get read lock*/);
3518 if(!v) {
3519 ssl_printf(ssl,"no view with name: %s\n", arg);
3520 return;
3521 }
3522 if(v->local_zones) {
3523 do_list_local_zones(ssl, v->local_zones);
3524 }
3525 lock_rw_unlock(&v->lock);
3526 }
3527
3528 /** do the view_list_local_data command */
3529 static void
do_view_list_local_data(RES * ssl,struct worker * worker,char * arg)3530 do_view_list_local_data(RES* ssl, struct worker* worker, char* arg)
3531 {
3532 struct view* v = views_find_view(worker->env.views,
3533 arg, 0 /* get read lock*/);
3534 if(!v) {
3535 ssl_printf(ssl,"no view with name: %s\n", arg);
3536 return;
3537 }
3538 if(v->local_zones) {
3539 do_list_local_data(ssl, worker, v->local_zones);
3540 }
3541 lock_rw_unlock(&v->lock);
3542 }
3543
3544 /** struct for user arg ratelimit list */
3545 struct ratelimit_list_arg {
3546 /** the infra cache */
3547 struct infra_cache* infra;
3548 /** the SSL to print to */
3549 RES* ssl;
3550 /** all or only ratelimited */
3551 int all;
3552 /** current time */
3553 time_t now;
3554 /** if backoff is enabled */
3555 int backoff;
3556 };
3557
3558 #define ip_ratelimit_list_arg ratelimit_list_arg
3559
3560 /** list items in the ratelimit table */
3561 static void
rate_list(struct lruhash_entry * e,void * arg)3562 rate_list(struct lruhash_entry* e, void* arg)
3563 {
3564 struct ratelimit_list_arg* a = (struct ratelimit_list_arg*)arg;
3565 struct rate_key* k = (struct rate_key*)e->key;
3566 struct rate_data* d = (struct rate_data*)e->data;
3567 char buf[LDNS_MAX_DOMAINLEN];
3568 int lim = infra_find_ratelimit(a->infra, k->name, k->namelen);
3569 int max = infra_rate_max(d, a->now, a->backoff);
3570 if(a->all == 0) {
3571 if(max < lim)
3572 return;
3573 }
3574 dname_str(k->name, buf);
3575 ssl_printf(a->ssl, "%s %d limit %d\n", buf, max, lim);
3576 }
3577
3578 /** list items in the ip_ratelimit table */
3579 static void
ip_rate_list(struct lruhash_entry * e,void * arg)3580 ip_rate_list(struct lruhash_entry* e, void* arg)
3581 {
3582 char ip[128];
3583 struct ip_ratelimit_list_arg* a = (struct ip_ratelimit_list_arg*)arg;
3584 struct ip_rate_key* k = (struct ip_rate_key*)e->key;
3585 struct ip_rate_data* d = (struct ip_rate_data*)e->data;
3586 int lim = infra_ip_ratelimit;
3587 int max = infra_rate_max(d, a->now, a->backoff);
3588 if(a->all == 0) {
3589 if(max < lim)
3590 return;
3591 }
3592 addr_to_str(&k->addr, k->addrlen, ip, sizeof(ip));
3593 ssl_printf(a->ssl, "%s %d limit %d\n", ip, max, lim);
3594 }
3595
3596 /** do the ratelimit_list command */
3597 static void
do_ratelimit_list(RES * ssl,struct worker * worker,char * arg)3598 do_ratelimit_list(RES* ssl, struct worker* worker, char* arg)
3599 {
3600 struct ratelimit_list_arg a;
3601 a.all = 0;
3602 a.infra = worker->env.infra_cache;
3603 a.now = *worker->env.now;
3604 a.ssl = ssl;
3605 a.backoff = worker->env.cfg->ratelimit_backoff;
3606 arg = skipwhite(arg);
3607 if(strcmp(arg, "+a") == 0)
3608 a.all = 1;
3609 if(a.infra->domain_rates==NULL ||
3610 (a.all == 0 && infra_dp_ratelimit == 0))
3611 return;
3612 slabhash_traverse(a.infra->domain_rates, 0, rate_list, &a);
3613 }
3614
3615 /** do the ip_ratelimit_list command */
3616 static void
do_ip_ratelimit_list(RES * ssl,struct worker * worker,char * arg)3617 do_ip_ratelimit_list(RES* ssl, struct worker* worker, char* arg)
3618 {
3619 struct ip_ratelimit_list_arg a;
3620 a.all = 0;
3621 a.infra = worker->env.infra_cache;
3622 a.now = *worker->env.now;
3623 a.ssl = ssl;
3624 a.backoff = worker->env.cfg->ip_ratelimit_backoff;
3625 arg = skipwhite(arg);
3626 if(strcmp(arg, "+a") == 0)
3627 a.all = 1;
3628 if(a.infra->client_ip_rates==NULL ||
3629 (a.all == 0 && infra_ip_ratelimit == 0))
3630 return;
3631 slabhash_traverse(a.infra->client_ip_rates, 0, ip_rate_list, &a);
3632 }
3633
3634 /** do the rpz_enable/disable command */
3635 static void
do_rpz_enable_disable(RES * ssl,struct worker * worker,char * arg,int enable)3636 do_rpz_enable_disable(RES* ssl, struct worker* worker, char* arg, int enable) {
3637 size_t nmlen;
3638 int nmlabs;
3639 uint8_t *nm = NULL;
3640 struct auth_zones *az = worker->env.auth_zones;
3641 struct auth_zone *z = NULL;
3642 if (!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
3643 return;
3644 if (az) {
3645 lock_rw_rdlock(&az->lock);
3646 z = auth_zone_find(az, nm, nmlen, LDNS_RR_CLASS_IN);
3647 if (z) {
3648 lock_rw_wrlock(&z->lock);
3649 }
3650 lock_rw_unlock(&az->lock);
3651 }
3652 free(nm);
3653 if (!z) {
3654 (void) ssl_printf(ssl, "error no auth-zone %s\n", arg);
3655 return;
3656 }
3657 if (!z->rpz) {
3658 (void) ssl_printf(ssl, "error auth-zone %s not RPZ\n", arg);
3659 lock_rw_unlock(&z->lock);
3660 return;
3661 }
3662 if (enable) {
3663 rpz_enable(z->rpz);
3664 } else {
3665 rpz_disable(z->rpz);
3666 }
3667 lock_rw_unlock(&z->lock);
3668 send_ok(ssl);
3669 }
3670
3671 /** do the rpz_enable command */
3672 static void
do_rpz_enable(RES * ssl,struct worker * worker,char * arg)3673 do_rpz_enable(RES* ssl, struct worker* worker, char* arg)
3674 {
3675 do_rpz_enable_disable(ssl, worker, arg, 1);
3676 }
3677
3678 /** do the rpz_disable command */
3679 static void
do_rpz_disable(RES * ssl,struct worker * worker,char * arg)3680 do_rpz_disable(RES* ssl, struct worker* worker, char* arg)
3681 {
3682 do_rpz_enable_disable(ssl, worker, arg, 0);
3683 }
3684
3685 /** Write the cookie secrets to file, returns `0` on failure.
3686 * Caller has to hold the lock. */
3687 static int
cookie_secret_file_dump(RES * ssl,struct worker * worker)3688 cookie_secret_file_dump(RES* ssl, struct worker* worker) {
3689 char const* secret_file = worker->env.cfg->cookie_secret_file;
3690 struct cookie_secrets* cookie_secrets = worker->daemon->cookie_secrets;
3691 char secret_hex[UNBOUND_COOKIE_SECRET_SIZE * 2 + 1];
3692 FILE* f;
3693 size_t i;
3694 if(secret_file == NULL || secret_file[0]==0) {
3695 (void)ssl_printf(ssl, "error: no cookie secret file configured\n");
3696 return 0;
3697 }
3698 log_assert( secret_file != NULL );
3699
3700 /* open write only and truncate */
3701 if((f = fopen(secret_file, "w")) == NULL ) {
3702 (void)ssl_printf(ssl, "unable to open cookie secret file %s: %s",
3703 secret_file, strerror(errno));
3704 return 0;
3705 }
3706 if(cookie_secrets == NULL) {
3707 /* nothing to write */
3708 fclose(f);
3709 return 1;
3710 }
3711
3712 for(i = 0; i < cookie_secrets->cookie_count; i++) {
3713 struct cookie_secret const* cs = &cookie_secrets->
3714 cookie_secrets[i];
3715 ssize_t const len = hex_ntop(cs->cookie_secret,
3716 UNBOUND_COOKIE_SECRET_SIZE, secret_hex,
3717 sizeof(secret_hex));
3718 (void)len; /* silence unused variable warning with -DNDEBUG */
3719 log_assert( len == UNBOUND_COOKIE_SECRET_SIZE * 2 );
3720 secret_hex[UNBOUND_COOKIE_SECRET_SIZE * 2] = '\0';
3721 fprintf(f, "%s\n", secret_hex);
3722 }
3723 explicit_bzero(secret_hex, sizeof(secret_hex));
3724 fclose(f);
3725 return 1;
3726 }
3727
3728 /** Activate cookie secret */
3729 static void
do_activate_cookie_secret(RES * ssl,struct worker * worker)3730 do_activate_cookie_secret(RES* ssl, struct worker* worker) {
3731 char const* secret_file = worker->env.cfg->cookie_secret_file;
3732 struct cookie_secrets* cookie_secrets = worker->daemon->cookie_secrets;
3733
3734 if(secret_file == NULL || secret_file[0] == 0) {
3735 (void)ssl_printf(ssl, "error: no cookie secret file configured\n");
3736 return;
3737 }
3738 if(cookie_secrets == NULL) {
3739 (void)ssl_printf(ssl, "error: there are no cookie_secrets.");
3740 return;
3741 }
3742 lock_basic_lock(&cookie_secrets->lock);
3743
3744 if(cookie_secrets->cookie_count <= 1 ) {
3745 lock_basic_unlock(&cookie_secrets->lock);
3746 (void)ssl_printf(ssl, "error: no staging cookie secret to activate\n");
3747 return;
3748 }
3749 /* Only the worker 0 writes to file, the others update state. */
3750 if(worker->thread_num == 0 && !cookie_secret_file_dump(ssl, worker)) {
3751 lock_basic_unlock(&cookie_secrets->lock);
3752 (void)ssl_printf(ssl, "error: writing to cookie secret file: \"%s\"\n",
3753 secret_file);
3754 return;
3755 }
3756 activate_cookie_secret(cookie_secrets);
3757 if(worker->thread_num == 0)
3758 (void)cookie_secret_file_dump(ssl, worker);
3759 lock_basic_unlock(&cookie_secrets->lock);
3760 send_ok(ssl);
3761 }
3762
3763 /** Drop cookie secret */
3764 static void
do_drop_cookie_secret(RES * ssl,struct worker * worker)3765 do_drop_cookie_secret(RES* ssl, struct worker* worker) {
3766 char const* secret_file = worker->env.cfg->cookie_secret_file;
3767 struct cookie_secrets* cookie_secrets = worker->daemon->cookie_secrets;
3768
3769 if(secret_file == NULL || secret_file[0] == 0) {
3770 (void)ssl_printf(ssl, "error: no cookie secret file configured\n");
3771 return;
3772 }
3773 if(cookie_secrets == NULL) {
3774 (void)ssl_printf(ssl, "error: there are no cookie_secrets.");
3775 return;
3776 }
3777 lock_basic_lock(&cookie_secrets->lock);
3778
3779 if(cookie_secrets->cookie_count <= 1 ) {
3780 lock_basic_unlock(&cookie_secrets->lock);
3781 (void)ssl_printf(ssl, "error: can not drop the currently active cookie secret\n");
3782 return;
3783 }
3784 /* Only the worker 0 writes to file, the others update state. */
3785 if(worker->thread_num == 0 && !cookie_secret_file_dump(ssl, worker)) {
3786 lock_basic_unlock(&cookie_secrets->lock);
3787 (void)ssl_printf(ssl, "error: writing to cookie secret file: \"%s\"\n",
3788 secret_file);
3789 return;
3790 }
3791 drop_cookie_secret(cookie_secrets);
3792 if(worker->thread_num == 0)
3793 (void)cookie_secret_file_dump(ssl, worker);
3794 lock_basic_unlock(&cookie_secrets->lock);
3795 send_ok(ssl);
3796 }
3797
3798 /** Add cookie secret */
3799 static void
do_add_cookie_secret(RES * ssl,struct worker * worker,char * arg)3800 do_add_cookie_secret(RES* ssl, struct worker* worker, char* arg) {
3801 uint8_t secret[UNBOUND_COOKIE_SECRET_SIZE];
3802 char const* secret_file = worker->env.cfg->cookie_secret_file;
3803 struct cookie_secrets* cookie_secrets = worker->daemon->cookie_secrets;
3804
3805 if(secret_file == NULL || secret_file[0] == 0) {
3806 (void)ssl_printf(ssl, "error: no cookie secret file configured\n");
3807 return;
3808 }
3809 if(cookie_secrets == NULL) {
3810 worker->daemon->cookie_secrets = cookie_secrets_create();
3811 if(!worker->daemon->cookie_secrets) {
3812 (void)ssl_printf(ssl, "error: out of memory");
3813 return;
3814 }
3815 cookie_secrets = worker->daemon->cookie_secrets;
3816 }
3817 lock_basic_lock(&cookie_secrets->lock);
3818
3819 if(*arg == '\0') {
3820 lock_basic_unlock(&cookie_secrets->lock);
3821 (void)ssl_printf(ssl, "error: missing argument (cookie_secret)\n");
3822 return;
3823 }
3824 if(strlen(arg) != 32) {
3825 lock_basic_unlock(&cookie_secrets->lock);
3826 explicit_bzero(arg, strlen(arg));
3827 (void)ssl_printf(ssl, "invalid cookie secret: invalid argument length\n");
3828 (void)ssl_printf(ssl, "please provide a 128bit hex encoded secret\n");
3829 return;
3830 }
3831 if(hex_pton(arg, secret, UNBOUND_COOKIE_SECRET_SIZE) !=
3832 UNBOUND_COOKIE_SECRET_SIZE ) {
3833 lock_basic_unlock(&cookie_secrets->lock);
3834 explicit_bzero(secret, UNBOUND_COOKIE_SECRET_SIZE);
3835 explicit_bzero(arg, strlen(arg));
3836 (void)ssl_printf(ssl, "invalid cookie secret: parse error\n");
3837 (void)ssl_printf(ssl, "please provide a 128bit hex encoded secret\n");
3838 return;
3839 }
3840 /* Only the worker 0 writes to file, the others update state. */
3841 if(worker->thread_num == 0 && !cookie_secret_file_dump(ssl, worker)) {
3842 lock_basic_unlock(&cookie_secrets->lock);
3843 explicit_bzero(secret, UNBOUND_COOKIE_SECRET_SIZE);
3844 explicit_bzero(arg, strlen(arg));
3845 (void)ssl_printf(ssl, "error: writing to cookie secret file: \"%s\"\n",
3846 secret_file);
3847 return;
3848 }
3849 add_cookie_secret(cookie_secrets, secret, UNBOUND_COOKIE_SECRET_SIZE);
3850 explicit_bzero(secret, UNBOUND_COOKIE_SECRET_SIZE);
3851 if(worker->thread_num == 0)
3852 (void)cookie_secret_file_dump(ssl, worker);
3853 lock_basic_unlock(&cookie_secrets->lock);
3854 explicit_bzero(arg, strlen(arg));
3855 send_ok(ssl);
3856 }
3857
3858 /** Print cookie secrets */
3859 static void
do_print_cookie_secrets(RES * ssl,struct worker * worker)3860 do_print_cookie_secrets(RES* ssl, struct worker* worker) {
3861 struct cookie_secrets* cookie_secrets = worker->daemon->cookie_secrets;
3862 char secret_hex[UNBOUND_COOKIE_SECRET_SIZE * 2 + 1];
3863 int i;
3864
3865 if(!cookie_secrets)
3866 return; /* Output is empty. */
3867 lock_basic_lock(&cookie_secrets->lock);
3868 for(i = 0; (size_t)i < cookie_secrets->cookie_count; i++) {
3869 struct cookie_secret const* cs = &cookie_secrets->
3870 cookie_secrets[i];
3871 ssize_t const len = hex_ntop(cs->cookie_secret,
3872 UNBOUND_COOKIE_SECRET_SIZE, secret_hex,
3873 sizeof(secret_hex));
3874 (void)len; /* silence unused variable warning with -DNDEBUG */
3875 log_assert( len == UNBOUND_COOKIE_SECRET_SIZE * 2 );
3876 secret_hex[UNBOUND_COOKIE_SECRET_SIZE * 2] = '\0';
3877 if (i == 0)
3878 (void)ssl_printf(ssl, "active : %s\n", secret_hex);
3879 else if (cookie_secrets->cookie_count == 2)
3880 (void)ssl_printf(ssl, "staging: %s\n", secret_hex);
3881 else
3882 (void)ssl_printf(ssl, "staging[%d]: %s\n", i,
3883 secret_hex);
3884 }
3885 lock_basic_unlock(&cookie_secrets->lock);
3886 explicit_bzero(secret_hex, sizeof(secret_hex));
3887 }
3888
3889 /** check that there is no argument after a command that takes no arguments. */
3890 static int
cmd_no_args(RES * ssl,char * cmd,char * p)3891 cmd_no_args(RES* ssl, char* cmd, char* p)
3892 {
3893 if(p && *p != 0) {
3894 /* cmd contains the command that is called at the start,
3895 * with space or tab after it. */
3896 char* c = cmd;
3897 if(strchr(c, ' ') && strchr(c, '\t')) {
3898 if(strchr(c, ' ') < strchr(c, '\t'))
3899 *strchr(c, ' ')=0;
3900 else *strchr(c, '\t')=0;
3901 } else if(strchr(c, ' ')) {
3902 *strchr(c, ' ')=0;
3903 } else if(strchr(c, '\t')) {
3904 *strchr(c, '\t')=0;
3905 }
3906 (void)ssl_printf(ssl, "error command %s takes no arguments,"
3907 " have '%s'\n", c, p);
3908 return 1;
3909 }
3910 return 0;
3911 }
3912
3913 /** check for name with end-of-string, space or tab after it */
3914 static int
cmdcmp(char * p,const char * cmd,size_t len)3915 cmdcmp(char* p, const char* cmd, size_t len)
3916 {
3917 return strncmp(p,cmd,len)==0 && (p[len]==0||p[len]==' '||p[len]=='\t');
3918 }
3919
3920 /** execute a remote control command */
3921 static void
execute_cmd(struct daemon_remote * rc,struct rc_state * s,RES * ssl,char * cmd,struct worker * worker)3922 execute_cmd(struct daemon_remote* rc, struct rc_state* s, RES* ssl, char* cmd,
3923 struct worker* worker)
3924 {
3925 char* p = skipwhite(cmd);
3926 /* compare command */
3927 if(cmdcmp(p, "stop", 4)) {
3928 if(cmd_no_args(ssl, p, skipwhite(p+4)))
3929 return;
3930 do_stop(ssl, worker);
3931 return;
3932 } else if(cmdcmp(p, "reload_keep_cache", 17)) {
3933 if(cmd_no_args(ssl, p, skipwhite(p+17)))
3934 return;
3935 do_reload(ssl, worker, 1);
3936 return;
3937 } else if(cmdcmp(p, "reload", 6)) {
3938 if(cmd_no_args(ssl, p, skipwhite(p+6)))
3939 return;
3940 do_reload(ssl, worker, 0);
3941 return;
3942 } else if(cmdcmp(p, "fast_reload", 11)) {
3943 do_fast_reload(ssl, worker, s, skipwhite(p+11));
3944 return;
3945 } else if(cmdcmp(p, "stats_noreset", 13)) {
3946 if(cmd_no_args(ssl, p, skipwhite(p+13)))
3947 return;
3948 do_stats(ssl, worker, 0);
3949 return;
3950 } else if(cmdcmp(p, "stats", 5)) {
3951 if(cmd_no_args(ssl, p, skipwhite(p+5)))
3952 return;
3953 do_stats(ssl, worker, 1);
3954 return;
3955 } else if(cmdcmp(p, "status", 6)) {
3956 if(cmd_no_args(ssl, p, skipwhite(p+6)))
3957 return;
3958 do_status(ssl, worker);
3959 return;
3960 } else if(cmdcmp(p, "dump_cache", 10)) {
3961 if(cmd_no_args(ssl, p, skipwhite(p+10)))
3962 return;
3963 #ifdef THREADS_DISABLED
3964 if(worker->daemon->num > 1) {
3965 (void)ssl_printf(ssl, "dump_cache/load_cache is not "
3966 "supported in multi-process operation\n");
3967 return;
3968 }
3969 #endif
3970 (void)dump_cache(ssl, worker);
3971 return;
3972 } else if(cmdcmp(p, "load_cache", 10)) {
3973 if(cmd_no_args(ssl, p, skipwhite(p+10)))
3974 return;
3975 #ifdef THREADS_DISABLED
3976 if(worker->daemon->num > 1) {
3977 /* The warning can't be printed when stdin is sending
3978 * data; just return */
3979 return;
3980 }
3981 #endif
3982 if(load_cache(ssl, worker)) send_ok(ssl);
3983 return;
3984 } else if(cmdcmp(p, "list_forwards", 13)) {
3985 if(cmd_no_args(ssl, p, skipwhite(p+13)))
3986 return;
3987 do_list_forwards(ssl, worker);
3988 return;
3989 } else if(cmdcmp(p, "list_stubs", 10)) {
3990 if(cmd_no_args(ssl, p, skipwhite(p+10)))
3991 return;
3992 do_list_stubs(ssl, worker);
3993 return;
3994 } else if(cmdcmp(p, "list_insecure", 13)) {
3995 if(cmd_no_args(ssl, p, skipwhite(p+13)))
3996 return;
3997 do_insecure_list(ssl, worker);
3998 return;
3999 } else if(cmdcmp(p, "list_local_zones", 16)) {
4000 if(cmd_no_args(ssl, p, skipwhite(p+16)))
4001 return;
4002 do_list_local_zones(ssl, worker->daemon->local_zones);
4003 return;
4004 } else if(cmdcmp(p, "list_local_data", 15)) {
4005 if(cmd_no_args(ssl, p, skipwhite(p+15)))
4006 return;
4007 do_list_local_data(ssl, worker, worker->daemon->local_zones);
4008 return;
4009 } else if(cmdcmp(p, "view_list_local_zones", 21)) {
4010 do_view_list_local_zones(ssl, worker, skipwhite(p+21));
4011 return;
4012 } else if(cmdcmp(p, "view_list_local_data", 20)) {
4013 do_view_list_local_data(ssl, worker, skipwhite(p+20));
4014 return;
4015 } else if(cmdcmp(p, "ratelimit_list", 14)) {
4016 do_ratelimit_list(ssl, worker, p+14);
4017 return;
4018 } else if(cmdcmp(p, "ip_ratelimit_list", 17)) {
4019 do_ip_ratelimit_list(ssl, worker, p+17);
4020 return;
4021 } else if(cmdcmp(p, "list_auth_zones", 15)) {
4022 if(cmd_no_args(ssl, p, skipwhite(p+15)))
4023 return;
4024 do_list_auth_zones(ssl, worker->env.auth_zones);
4025 return;
4026 } else if(cmdcmp(p, "auth_zone_reload", 16)) {
4027 do_auth_zone_reload(ssl, worker, skipwhite(p+16));
4028 return;
4029 } else if(cmdcmp(p, "auth_zone_transfer", 18)) {
4030 do_auth_zone_transfer(ssl, worker, skipwhite(p+18));
4031 return;
4032 } else if(cmdcmp(p, "insecure_add", 12)) {
4033 /* must always distribute this cmd */
4034 if(rc) distribute_cmd(rc, ssl, cmd);
4035 do_insecure_add(ssl, worker, skipwhite(p+12));
4036 return;
4037 } else if(cmdcmp(p, "insecure_remove", 15)) {
4038 /* must always distribute this cmd */
4039 if(rc) distribute_cmd(rc, ssl, cmd);
4040 do_insecure_remove(ssl, worker, skipwhite(p+15));
4041 return;
4042 } else if(cmdcmp(p, "flush_stats", 11)) {
4043 /* must always distribute this cmd */
4044 if(cmd_no_args(ssl, p, skipwhite(p+11)))
4045 return;
4046 if(rc) distribute_cmd(rc, ssl, cmd);
4047 do_flush_stats(ssl, worker);
4048 return;
4049 } else if(cmdcmp(p, "flush_requestlist", 17)) {
4050 /* must always distribute this cmd */
4051 if(cmd_no_args(ssl, p, skipwhite(p+17)))
4052 return;
4053 if(rc) distribute_cmd(rc, ssl, cmd);
4054 do_flush_requestlist(ssl, worker);
4055 return;
4056 } else if(cmdcmp(p, "cache_lookup", 12)) {
4057 do_cache_lookup(ssl, worker, skipwhite(p+12));
4058 return;
4059 } else if(cmdcmp(p, "lookup", 6)) {
4060 do_lookup(ssl, worker, skipwhite(p+6));
4061 return;
4062 /* The following are commands that read stdin.
4063 * Each line needs to be distributed if THREADS_DISABLED.
4064 */
4065 } else if(cmdcmp(p, "local_zones_remove", 18)) {
4066 if(cmd_no_args(ssl, p, skipwhite(p+18)))
4067 return;
4068 do_zones_remove(rc, ssl, worker);
4069 return;
4070 } else if(cmdcmp(p, "local_zones", 11)) {
4071 if(cmd_no_args(ssl, p, skipwhite(p+11)))
4072 return;
4073 do_zones_add(rc, ssl, worker);
4074 return;
4075 } else if(cmdcmp(p, "local_datas_remove", 18)) {
4076 if(cmd_no_args(ssl, p, skipwhite(p+18)))
4077 return;
4078 do_datas_remove(rc, ssl, worker);
4079 return;
4080 } else if(cmdcmp(p, "local_datas", 11)) {
4081 if(cmd_no_args(ssl, p, skipwhite(p+11)))
4082 return;
4083 do_datas_add(rc, ssl, worker);
4084 return;
4085 } else if(cmdcmp(p, "view_local_datas_remove", 23)){
4086 do_view_datas_remove(rc, ssl, worker, skipwhite(p+23));
4087 return;
4088 } else if(cmdcmp(p, "view_local_datas", 16)) {
4089 do_view_datas_add(rc, ssl, worker, skipwhite(p+16));
4090 return;
4091 } else if(cmdcmp(p, "print_cookie_secrets", 20)) {
4092 if(cmd_no_args(ssl, p, skipwhite(p+20)))
4093 return;
4094 do_print_cookie_secrets(ssl, worker);
4095 return;
4096 }
4097
4098 #ifdef THREADS_DISABLED
4099 /* other processes must execute the command as well */
4100 /* commands that should not be distributed, returned above. */
4101 if(rc) { /* only if this thread is the master (rc) thread */
4102 /* done before the code below, which may split the string */
4103 distribute_cmd(rc, ssl, cmd);
4104 }
4105 #endif
4106 if(cmdcmp(p, "verbosity", 9)) {
4107 do_verbosity(ssl, skipwhite(p+9));
4108 } else if(cmdcmp(p, "local_zone_remove", 17)) {
4109 do_zone_remove(ssl, worker->daemon->local_zones, skipwhite(p+17));
4110 } else if(cmdcmp(p, "local_zone", 10)) {
4111 do_zone_add(ssl, worker->daemon->local_zones, skipwhite(p+10));
4112 } else if(cmdcmp(p, "local_data_remove", 17)) {
4113 do_data_remove(ssl, worker->daemon->local_zones, skipwhite(p+17));
4114 } else if(cmdcmp(p, "local_data", 10)) {
4115 do_data_add(ssl, worker->daemon->local_zones, skipwhite(p+10));
4116 } else if(cmdcmp(p, "forward_add", 11)) {
4117 do_forward_add(ssl, worker, skipwhite(p+11));
4118 } else if(cmdcmp(p, "forward_remove", 14)) {
4119 do_forward_remove(ssl, worker, skipwhite(p+14));
4120 } else if(cmdcmp(p, "forward", 7)) {
4121 do_forward(ssl, worker, skipwhite(p+7));
4122 } else if(cmdcmp(p, "stub_add", 8)) {
4123 do_stub_add(ssl, worker, skipwhite(p+8));
4124 } else if(cmdcmp(p, "stub_remove", 11)) {
4125 do_stub_remove(ssl, worker, skipwhite(p+11));
4126 } else if(cmdcmp(p, "view_local_zone_remove", 22)) {
4127 do_view_zone_remove(ssl, worker, skipwhite(p+22));
4128 } else if(cmdcmp(p, "view_local_zone", 15)) {
4129 do_view_zone_add(ssl, worker, skipwhite(p+15));
4130 } else if(cmdcmp(p, "view_local_data_remove", 22)) {
4131 do_view_data_remove(ssl, worker, skipwhite(p+22));
4132 } else if(cmdcmp(p, "view_local_data", 15)) {
4133 do_view_data_add(ssl, worker, skipwhite(p+15));
4134 } else if(cmdcmp(p, "flush_zone", 10)) {
4135 do_flush_zone(ssl, worker, skipwhite(p+10));
4136 } else if(cmdcmp(p, "flush_type", 10)) {
4137 do_flush_type(ssl, worker, skipwhite(p+10));
4138 } else if(cmdcmp(p, "flush_infra", 11)) {
4139 do_flush_infra(ssl, worker, skipwhite(p+11));
4140 } else if(cmdcmp(p, "flush", 5)) {
4141 do_flush_name(ssl, worker, skipwhite(p+5));
4142 } else if(cmdcmp(p, "dump_requestlist", 16)) {
4143 if(cmd_no_args(ssl, p, skipwhite(p+16)))
4144 return;
4145 do_dump_requestlist(ssl, worker);
4146 } else if(cmdcmp(p, "dump_infra", 10)) {
4147 if(cmd_no_args(ssl, p, skipwhite(p+10)))
4148 return;
4149 do_dump_infra(ssl, worker);
4150 } else if(cmdcmp(p, "log_reopen", 10)) {
4151 if(cmd_no_args(ssl, p, skipwhite(p+10)))
4152 return;
4153 do_log_reopen(ssl, worker);
4154 } else if(cmdcmp(p, "set_option", 10)) {
4155 do_set_option(ssl, worker, skipwhite(p+10));
4156 } else if(cmdcmp(p, "get_option", 10)) {
4157 do_get_option(ssl, worker, skipwhite(p+10));
4158 } else if(cmdcmp(p, "flush_bogus", 11)) {
4159 do_flush_bogus(ssl, worker, skipwhite(p+11));
4160 } else if(cmdcmp(p, "flush_negative", 14)) {
4161 do_flush_negative(ssl, worker, skipwhite(p+14));
4162 } else if(cmdcmp(p, "rpz_enable", 10)) {
4163 do_rpz_enable(ssl, worker, skipwhite(p+10));
4164 } else if(cmdcmp(p, "rpz_disable", 11)) {
4165 do_rpz_disable(ssl, worker, skipwhite(p+11));
4166 } else if(cmdcmp(p, "add_cookie_secret", 17)) {
4167 do_add_cookie_secret(ssl, worker, skipwhite(p+17));
4168 } else if(cmdcmp(p, "drop_cookie_secret", 18)) {
4169 if(cmd_no_args(ssl, p, skipwhite(p+18)))
4170 return;
4171 do_drop_cookie_secret(ssl, worker);
4172 } else if(cmdcmp(p, "activate_cookie_secret", 22)) {
4173 if(cmd_no_args(ssl, p, skipwhite(p+22)))
4174 return;
4175 do_activate_cookie_secret(ssl, worker);
4176 } else {
4177 (void)ssl_printf(ssl, "error unknown command '%s'\n", p);
4178 }
4179 }
4180
4181 void
daemon_remote_exec(struct worker * worker)4182 daemon_remote_exec(struct worker* worker)
4183 {
4184 /* read the cmd string */
4185 uint8_t* msg = NULL;
4186 uint32_t len = 0;
4187 if(!tube_read_msg(worker->cmd, &msg, &len, 0)) {
4188 log_err("daemon_remote_exec: tube_read_msg failed");
4189 return;
4190 }
4191 verbose(VERB_ALGO, "remote exec distributed: %s", (char*)msg);
4192 execute_cmd(NULL, NULL, NULL, (char*)msg, worker);
4193 free(msg);
4194 }
4195
4196 /** handle remote control request */
4197 static void
handle_req(struct daemon_remote * rc,struct rc_state * s,RES * res)4198 handle_req(struct daemon_remote* rc, struct rc_state* s, RES* res)
4199 {
4200 int r;
4201 char pre[10];
4202 char magic[7];
4203 char buf[MAX_CMD_STRLINE];
4204 #ifdef USE_WINSOCK
4205 /* makes it possible to set the socket blocking again. */
4206 /* basically removes it from winsock_event ... */
4207 WSAEventSelect(s->c->fd, NULL, 0);
4208 #endif
4209 fd_set_block(s->c->fd);
4210
4211 /* try to read magic UBCT[version]_space_ string */
4212 if(res->ssl) {
4213 ERR_clear_error();
4214 if((r=SSL_read(res->ssl, magic, (int)sizeof(magic)-1)) <= 0) {
4215 int r2;
4216 if((r2=SSL_get_error(res->ssl, r)) == SSL_ERROR_ZERO_RETURN)
4217 return;
4218 log_crypto_err_io("could not SSL_read", r2);
4219 return;
4220 }
4221 } else {
4222 while(1) {
4223 ssize_t rr = recv(res->fd, magic, sizeof(magic)-1, 0);
4224 if(rr <= 0) {
4225 if(rr == 0) return;
4226 if(errno == EINTR || errno == EAGAIN)
4227 continue;
4228 log_err("could not recv: %s", sock_strerror(errno));
4229 return;
4230 }
4231 r = (int)rr;
4232 break;
4233 }
4234 }
4235 magic[6] = 0;
4236 if( r != 6 || strncmp(magic, "UBCT", 4) != 0) {
4237 verbose(VERB_QUERY, "control connection has bad magic string");
4238 /* probably wrong tool connected, ignore it completely */
4239 return;
4240 }
4241
4242 /* read the command line */
4243 if(!ssl_read_line(res, buf, sizeof(buf))) {
4244 return;
4245 }
4246 snprintf(pre, sizeof(pre), "UBCT%d ", UNBOUND_CONTROL_VERSION);
4247 if(strcmp(magic, pre) != 0) {
4248 verbose(VERB_QUERY, "control connection had bad "
4249 "version %s, cmd: %s", magic, buf);
4250 ssl_printf(res, "error version mismatch\n");
4251 return;
4252 }
4253 verbose(VERB_DETAIL, "control cmd: %s", buf);
4254
4255 /* figure out what to do */
4256 execute_cmd(rc, s, res, buf, rc->worker);
4257 }
4258
4259 /** handle SSL_do_handshake changes to the file descriptor to wait for later */
4260 static int
remote_handshake_later(struct daemon_remote * rc,struct rc_state * s,struct comm_point * c,int r,int r2)4261 remote_handshake_later(struct daemon_remote* rc, struct rc_state* s,
4262 struct comm_point* c, int r, int r2)
4263 {
4264 if(r2 == SSL_ERROR_WANT_READ) {
4265 if(s->shake_state == rc_hs_read) {
4266 /* try again later */
4267 return 0;
4268 }
4269 s->shake_state = rc_hs_read;
4270 comm_point_listen_for_rw(c, 1, 0);
4271 return 0;
4272 } else if(r2 == SSL_ERROR_WANT_WRITE) {
4273 if(s->shake_state == rc_hs_write) {
4274 /* try again later */
4275 return 0;
4276 }
4277 s->shake_state = rc_hs_write;
4278 comm_point_listen_for_rw(c, 0, 1);
4279 return 0;
4280 } else {
4281 if(r == 0)
4282 log_err("remote control connection closed prematurely");
4283 log_addr(VERB_OPS, "failed connection from",
4284 &s->c->repinfo.remote_addr, s->c->repinfo.remote_addrlen);
4285 log_crypto_err_io("remote control failed ssl", r2);
4286 clean_point(rc, s);
4287 }
4288 return 0;
4289 }
4290
remote_control_callback(struct comm_point * c,void * arg,int err,struct comm_reply * ATTR_UNUSED (rep))4291 int remote_control_callback(struct comm_point* c, void* arg, int err,
4292 struct comm_reply* ATTR_UNUSED(rep))
4293 {
4294 RES res;
4295 struct rc_state* s = (struct rc_state*)arg;
4296 struct daemon_remote* rc = s->rc;
4297 int r;
4298 if(err != NETEVENT_NOERROR) {
4299 if(err==NETEVENT_TIMEOUT)
4300 log_err("remote control timed out");
4301 clean_point(rc, s);
4302 return 0;
4303 }
4304 if(s->ssl) {
4305 /* (continue to) setup the SSL connection */
4306 ERR_clear_error();
4307 r = SSL_do_handshake(s->ssl);
4308 if(r != 1) {
4309 int r2 = SSL_get_error(s->ssl, r);
4310 return remote_handshake_later(rc, s, c, r, r2);
4311 }
4312 s->shake_state = rc_none;
4313 }
4314
4315 /* once handshake has completed, check authentication */
4316 if (!rc->use_cert) {
4317 verbose(VERB_ALGO, "unauthenticated remote control connection");
4318 } else if(SSL_get_verify_result(s->ssl) == X509_V_OK) {
4319 #ifdef HAVE_SSL_GET1_PEER_CERTIFICATE
4320 X509* x = SSL_get1_peer_certificate(s->ssl);
4321 #else
4322 X509* x = SSL_get_peer_certificate(s->ssl);
4323 #endif
4324 if(!x) {
4325 verbose(VERB_DETAIL, "remote control connection "
4326 "provided no client certificate");
4327 clean_point(rc, s);
4328 return 0;
4329 }
4330 verbose(VERB_ALGO, "remote control connection authenticated");
4331 X509_free(x);
4332 } else {
4333 verbose(VERB_DETAIL, "remote control connection failed to "
4334 "authenticate with client certificate");
4335 clean_point(rc, s);
4336 return 0;
4337 }
4338
4339 /* if OK start to actually handle the request */
4340 res.ssl = s->ssl;
4341 res.fd = c->fd;
4342 handle_req(rc, s, &res);
4343
4344 verbose(VERB_ALGO, "remote control operation completed");
4345 clean_point(rc, s);
4346 return 0;
4347 }
4348
4349 /**
4350 * This routine polls a socket for readiness.
4351 * @param fd: file descriptor, -1 uses no fd for a timer only.
4352 * @param timeout: time in msec to wait. 0 means nonblocking test,
4353 * -1 waits blocking for events.
4354 * @param pollin: check for input event.
4355 * @param pollout: check for output event.
4356 * @param event: output variable, set to true if the event happens.
4357 * It is false if there was an error or timeout.
4358 * @return false is system call failure, also logged.
4359 */
4360 static int
sock_poll_timeout(int fd,int timeout,int pollin,int pollout,int * event)4361 sock_poll_timeout(int fd, int timeout, int pollin, int pollout, int* event)
4362 {
4363 int loopcount = 0;
4364 /* Loop if the system call returns an errno to do so, like EINTR. */
4365 log_assert(pollin || pollout);
4366 while(1) {
4367 struct pollfd p, *fds;
4368 int nfds, ret;
4369 if(++loopcount > IPC_LOOP_MAX) {
4370 log_err("sock_poll_timeout: loop");
4371 if(event)
4372 *event = 0;
4373 return 0;
4374 }
4375 if(fd == -1) {
4376 fds = NULL;
4377 nfds = 0;
4378 } else {
4379 fds = &p;
4380 nfds = 1;
4381 memset(&p, 0, sizeof(p));
4382 p.fd = fd;
4383 #ifndef USE_WINSOCK
4384 p.events = POLLERR
4385 | POLLHUP
4386 ;
4387 #endif
4388 if(pollin)
4389 p.events |= POLLIN;
4390 if(pollout)
4391 p.events |= POLLOUT;
4392 }
4393 #ifndef USE_WINSOCK
4394 ret = poll(fds, nfds, timeout);
4395 #else
4396 if(fds == NULL) {
4397 Sleep(timeout);
4398 ret = 0;
4399 } else {
4400 ret = WSAPoll(fds, nfds, timeout);
4401 }
4402 #endif
4403 if(ret == -1) {
4404 #ifndef USE_WINSOCK
4405 if(
4406 errno == EINTR || errno == EAGAIN
4407 # ifdef EWOULDBLOCK
4408 || errno == EWOULDBLOCK
4409 # endif
4410 ) continue; /* Try again. */
4411 #endif
4412 /* For WSAPoll we only get errors here:
4413 * o WSAENETDOWN
4414 * o WSAEFAULT
4415 * o WSAEINVAL
4416 * o WSAENOBUFS
4417 */
4418 log_err("poll: %s", sock_strerror(errno));
4419 if(event)
4420 *event = 0;
4421 return 0;
4422 } else if(ret == 0) {
4423 /* Timeout */
4424 if(event)
4425 *event = 0;
4426 return 1;
4427 }
4428 break;
4429 }
4430 if(event)
4431 *event = 1;
4432 return 1;
4433 }
4434
4435 /** fast reload convert fast reload notification status to string */
4436 static const char*
fr_notification_to_string(enum fast_reload_notification status)4437 fr_notification_to_string(enum fast_reload_notification status)
4438 {
4439 switch(status) {
4440 case fast_reload_notification_none:
4441 return "none";
4442 case fast_reload_notification_done:
4443 return "done";
4444 case fast_reload_notification_done_error:
4445 return "done_error";
4446 case fast_reload_notification_exit:
4447 return "exit";
4448 case fast_reload_notification_exited:
4449 return "exited";
4450 case fast_reload_notification_printout:
4451 return "printout";
4452 case fast_reload_notification_reload_stop:
4453 return "reload_stop";
4454 case fast_reload_notification_reload_ack:
4455 return "reload_ack";
4456 case fast_reload_notification_reload_nopause_poll:
4457 return "reload_nopause_poll";
4458 case fast_reload_notification_reload_start:
4459 return "reload_start";
4460 default:
4461 break;
4462 }
4463 return "unknown";
4464 }
4465
4466 #ifndef THREADS_DISABLED
4467 /** fast reload, poll for notification incoming. True if quit */
4468 static int
fr_poll_for_quit(struct fast_reload_thread * fr)4469 fr_poll_for_quit(struct fast_reload_thread* fr)
4470 {
4471 int inevent, loopexit = 0, bcount = 0;
4472 uint32_t cmd;
4473 ssize_t ret;
4474
4475 if(fr->need_to_quit)
4476 return 1;
4477 /* Is there data? */
4478 if(!sock_poll_timeout(fr->commpair[1], 0, 1, 0, &inevent)) {
4479 log_err("fr_poll_for_quit: poll failed");
4480 return 0;
4481 }
4482 if(!inevent)
4483 return 0;
4484
4485 /* Read the data */
4486 while(1) {
4487 if(++loopexit > IPC_LOOP_MAX) {
4488 log_err("fr_poll_for_quit: recv loops %s",
4489 sock_strerror(errno));
4490 return 0;
4491 }
4492 ret = recv(fr->commpair[1], ((char*)&cmd)+bcount,
4493 sizeof(cmd)-bcount, 0);
4494 if(ret == -1) {
4495 if(
4496 #ifndef USE_WINSOCK
4497 errno == EINTR || errno == EAGAIN
4498 # ifdef EWOULDBLOCK
4499 || errno == EWOULDBLOCK
4500 # endif
4501 #else
4502 WSAGetLastError() == WSAEINTR ||
4503 WSAGetLastError() == WSAEINPROGRESS ||
4504 WSAGetLastError() == WSAEWOULDBLOCK
4505 #endif
4506 )
4507 continue; /* Try again. */
4508 log_err("fr_poll_for_quit: recv: %s",
4509 sock_strerror(errno));
4510 return 0;
4511 } else if(ret+(ssize_t)bcount != sizeof(cmd)) {
4512 bcount += ret;
4513 if((size_t)bcount < sizeof(cmd))
4514 continue;
4515 }
4516 break;
4517 }
4518 if(cmd == fast_reload_notification_exit) {
4519 fr->need_to_quit = 1;
4520 verbose(VERB_ALGO, "fast reload: exit notification received");
4521 return 1;
4522 }
4523 log_err("fr_poll_for_quit: unknown notification status received: %d %s",
4524 cmd, fr_notification_to_string(cmd));
4525 return 0;
4526 }
4527
4528 /** fast reload thread. Send notification from the fast reload thread */
4529 static void
fr_send_notification(struct fast_reload_thread * fr,enum fast_reload_notification status)4530 fr_send_notification(struct fast_reload_thread* fr,
4531 enum fast_reload_notification status)
4532 {
4533 int outevent, loopexit = 0, bcount = 0;
4534 uint32_t cmd;
4535 ssize_t ret;
4536 verbose(VERB_ALGO, "fast reload: send notification %s",
4537 fr_notification_to_string(status));
4538 /* Make a blocking attempt to send. But meanwhile stay responsive,
4539 * once in a while for quit commands. In case the server has to quit. */
4540 /* see if there is incoming quit signals */
4541 if(fr_poll_for_quit(fr))
4542 return;
4543 cmd = status;
4544 while(1) {
4545 if(++loopexit > IPC_LOOP_MAX) {
4546 log_err("fast reload: could not send notification");
4547 return;
4548 }
4549 /* wait for socket to become writable */
4550 if(!sock_poll_timeout(fr->commpair[1], IPC_NOTIFICATION_WAIT,
4551 0, 1, &outevent)) {
4552 log_err("fast reload: poll failed");
4553 return;
4554 }
4555 if(fr_poll_for_quit(fr))
4556 return;
4557 if(!outevent)
4558 continue;
4559 ret = send(fr->commpair[1], ((char*)&cmd)+bcount,
4560 sizeof(cmd)-bcount, 0);
4561 if(ret == -1) {
4562 if(
4563 #ifndef USE_WINSOCK
4564 errno == EINTR || errno == EAGAIN
4565 # ifdef EWOULDBLOCK
4566 || errno == EWOULDBLOCK
4567 # endif
4568 #else
4569 WSAGetLastError() == WSAEINTR ||
4570 WSAGetLastError() == WSAEINPROGRESS ||
4571 WSAGetLastError() == WSAEWOULDBLOCK
4572 #endif
4573 )
4574 continue; /* Try again. */
4575 log_err("fast reload send notification: send: %s",
4576 sock_strerror(errno));
4577 return;
4578 } else if(ret+(ssize_t)bcount != sizeof(cmd)) {
4579 bcount += ret;
4580 if((size_t)bcount < sizeof(cmd))
4581 continue;
4582 }
4583 break;
4584 }
4585 }
4586
4587 /** fast reload thread queue up text string for output */
4588 static int
fr_output_text(struct fast_reload_thread * fr,const char * msg)4589 fr_output_text(struct fast_reload_thread* fr, const char* msg)
4590 {
4591 char* item = strdup(msg);
4592 if(!item) {
4593 log_err("fast reload output text: strdup out of memory");
4594 return 0;
4595 }
4596 lock_basic_lock(&fr->fr_output_lock);
4597 if(!cfg_strlist_append(fr->fr_output, item)) {
4598 lock_basic_unlock(&fr->fr_output_lock);
4599 /* The item is freed by cfg_strlist_append on failure. */
4600 log_err("fast reload output text: append out of memory");
4601 return 0;
4602 }
4603 lock_basic_unlock(&fr->fr_output_lock);
4604 return 1;
4605 }
4606
4607 /** fast reload thread output vmsg function */
4608 static int
fr_output_vmsg(struct fast_reload_thread * fr,const char * format,va_list args)4609 fr_output_vmsg(struct fast_reload_thread* fr, const char* format, va_list args)
4610 {
4611 char msg[1024];
4612 vsnprintf(msg, sizeof(msg), format, args);
4613 return fr_output_text(fr, msg);
4614 }
4615
4616 /** fast reload thread printout function, with printf arguments */
4617 static int fr_output_printf(struct fast_reload_thread* fr,
4618 const char* format, ...) ATTR_FORMAT(printf, 2, 3);
4619
4620 /** fast reload thread printout function, prints to list and signals
4621 * the remote control thread to move that to get written to the socket
4622 * of the remote control connection. */
4623 static int
fr_output_printf(struct fast_reload_thread * fr,const char * format,...)4624 fr_output_printf(struct fast_reload_thread* fr, const char* format, ...)
4625 {
4626 va_list args;
4627 int ret;
4628 va_start(args, format);
4629 ret = fr_output_vmsg(fr, format, args);
4630 va_end(args);
4631 return ret;
4632 }
4633
4634 /** fast reload thread, init time counters */
4635 static void
fr_init_time(struct timeval * time_start,struct timeval * time_read,struct timeval * time_construct,struct timeval * time_reload,struct timeval * time_end)4636 fr_init_time(struct timeval* time_start, struct timeval* time_read,
4637 struct timeval* time_construct, struct timeval* time_reload,
4638 struct timeval* time_end)
4639 {
4640 memset(time_start, 0, sizeof(*time_start));
4641 memset(time_read, 0, sizeof(*time_read));
4642 memset(time_construct, 0, sizeof(*time_construct));
4643 memset(time_reload, 0, sizeof(*time_reload));
4644 memset(time_end, 0, sizeof(*time_end));
4645 if(gettimeofday(time_start, NULL) < 0)
4646 log_err("gettimeofday: %s", strerror(errno));
4647 }
4648
4649 /**
4650 * Structure with constructed elements for use during fast reload.
4651 * At the start it contains the tree items for the new config.
4652 * After the tree items are swapped into the server, the old elements
4653 * are kept in here. They can then be deleted.
4654 */
4655 struct fast_reload_construct {
4656 /** ssl context for listening to dnstcp over ssl */
4657 void* listen_dot_sslctx;
4658 /** ssl context for connecting to dnstcp over ssl */
4659 void* connect_dot_sslctx;
4660 /** ssl context for listening to DoH */
4661 void* listen_doh_sslctx;
4662 /** ssl context for listening to quic */
4663 void* listen_quic_sslctx;
4664 /** the file name that the ssl context is made with, private key. */
4665 char* ssl_service_key;
4666 /** the file name that the ssl context is made with, certificate. */
4667 char* ssl_service_pem;
4668 /** modification time for ssl_service_key, in sec and ns. Like
4669 * in a struct timespec, but without that for portability. */
4670 time_t mtime_ssl_service_key;
4671 long mtime_ns_ssl_service_key;
4672 /** modification time for ssl_service_pem, in sec and ns. Like
4673 * in a struct timespec, but without that for portability. */
4674 time_t mtime_ssl_service_pem;
4675 long mtime_ns_ssl_service_pem;
4676 /** construct for views */
4677 struct views* views;
4678 /** construct for auth zones */
4679 struct auth_zones* auth_zones;
4680 /** construct for forwards */
4681 struct iter_forwards* fwds;
4682 /** construct for stubs */
4683 struct iter_hints* hints;
4684 /** construct for respip_set */
4685 struct respip_set* respip_set;
4686 /** construct for access control */
4687 struct acl_list* acl;
4688 /** construct for access control interface */
4689 struct acl_list* acl_interface;
4690 /** construct for tcp connection limit */
4691 struct tcl_list* tcl;
4692 /** construct for local zones */
4693 struct local_zones* local_zones;
4694 /** if there is response ip configuration in use */
4695 int use_response_ip;
4696 /** if there is an rpz zone */
4697 int use_rpz;
4698 /** construct for edns strings */
4699 struct edns_strings* edns_strings;
4700 /** construct for trust anchors */
4701 struct val_anchors* anchors;
4702 /** construct for nsec3 key size */
4703 size_t* nsec3_keysize;
4704 /** construct for nsec3 max iter */
4705 size_t* nsec3_maxiter;
4706 /** construct for nsec3 keyiter count */
4707 int nsec3_keyiter_count;
4708 /** construct for target fetch policy */
4709 int* target_fetch_policy;
4710 /** construct for max dependency depth */
4711 int max_dependency_depth;
4712 /** construct for donotquery addresses */
4713 struct iter_donotq* donotq;
4714 /** construct for private addresses and domains */
4715 struct iter_priv* priv;
4716 /** construct whitelist for capsforid names */
4717 struct rbtree_type* caps_white;
4718 /** construct for nat64 */
4719 struct iter_nat64 nat64;
4720 /** construct for wait_limits_netblock */
4721 struct rbtree_type wait_limits_netblock;
4722 /** construct for wait_limits_cookie_netblock */
4723 struct rbtree_type wait_limits_cookie_netblock;
4724 /** construct for domain limits */
4725 struct rbtree_type domain_limits;
4726 /** storage for the old configuration elements. The outer struct
4727 * is allocated with malloc here, the items are from config. */
4728 struct config_file* oldcfg;
4729 };
4730
4731 /** fast reload thread, read config */
4732 static int
fr_read_config(struct fast_reload_thread * fr,struct config_file ** newcfg)4733 fr_read_config(struct fast_reload_thread* fr, struct config_file** newcfg)
4734 {
4735 /* Create new config structure. */
4736 *newcfg = config_create();
4737 if(!*newcfg) {
4738 if(!fr_output_printf(fr, "config_create failed: out of memory\n"))
4739 return 0;
4740 fr_send_notification(fr, fast_reload_notification_printout);
4741 return 0;
4742 }
4743 if(fr_poll_for_quit(fr))
4744 return 1;
4745
4746 /* Read new config from file */
4747 if(!config_read(*newcfg, fr->worker->daemon->cfgfile,
4748 fr->worker->daemon->chroot)) {
4749 config_delete(*newcfg);
4750 if(!fr_output_printf(fr, "config_read %s%s%s%s failed: %s\n",
4751 (fr->worker->daemon->chroot?"<chroot:":""),
4752 (fr->worker->daemon->chroot?fr->worker->daemon->chroot:""),
4753 (fr->worker->daemon->chroot?"> ":""),
4754 fr->worker->daemon->cfgfile, strerror(errno)))
4755 return 0;
4756 fr_send_notification(fr, fast_reload_notification_printout);
4757 return 0;
4758 }
4759 if(fr_poll_for_quit(fr))
4760 return 1;
4761 if(fr->fr_verb >= 1) {
4762 if(!fr_output_printf(fr, "done read config file %s%s%s%s\n",
4763 (fr->worker->daemon->chroot?"<chroot:":""),
4764 (fr->worker->daemon->chroot?fr->worker->daemon->chroot:""),
4765 (fr->worker->daemon->chroot?"> ":""),
4766 fr->worker->daemon->cfgfile))
4767 return 0;
4768 fr_send_notification(fr, fast_reload_notification_printout);
4769 }
4770
4771 return 1;
4772 }
4773
4774 /** Check if two taglists are equal. */
4775 static int
taglist_equal(char ** tagname_a,int num_tags_a,char ** tagname_b,int num_tags_b)4776 taglist_equal(char** tagname_a, int num_tags_a, char** tagname_b,
4777 int num_tags_b)
4778 {
4779 int i;
4780 if(num_tags_a != num_tags_b)
4781 return 0;
4782 for(i=0; i<num_tags_a; i++) {
4783 if(strcmp(tagname_a[i], tagname_b[i]) != 0)
4784 return 0;
4785 }
4786 return 1;
4787 }
4788
4789 /** Check the change from a to b is only new entries at the end. */
4790 static int
taglist_change_at_end(char ** tagname_a,int num_tags_a,char ** tagname_b,int num_tags_b)4791 taglist_change_at_end(char** tagname_a, int num_tags_a, char** tagname_b,
4792 int num_tags_b)
4793 {
4794 if(num_tags_a < 0 || num_tags_b < 0)
4795 return 0;
4796 if(num_tags_a >= num_tags_b)
4797 return 0;
4798 /* So, b is longer than a. Check if the initial start of the two
4799 * taglists is the same. */
4800 if(!taglist_equal(tagname_a, num_tags_a, tagname_b, num_tags_a))
4801 return 0;
4802 return 1;
4803 }
4804
4805 /** fast reload thread, check tag defines. */
4806 static int
fr_check_tag_defines(struct fast_reload_thread * fr,struct config_file * newcfg)4807 fr_check_tag_defines(struct fast_reload_thread* fr, struct config_file* newcfg)
4808 {
4809 /* The tags are kept in a bitlist for items. Some of them are stored
4810 * in query info. If the tags change, then the old values are
4811 * inaccurate. The solution is to then flush the query list.
4812 * Unless the change only involves adding new tags at the end, that
4813 * needs no changes. */
4814 if(!taglist_equal(fr->worker->daemon->cfg->tagname,
4815 fr->worker->daemon->cfg->num_tags, newcfg->tagname,
4816 newcfg->num_tags) &&
4817 !taglist_change_at_end(fr->worker->daemon->cfg->tagname,
4818 fr->worker->daemon->cfg->num_tags, newcfg->tagname,
4819 newcfg->num_tags)) {
4820 /* The tags have changed too much, the define-tag config. */
4821 if(fr->fr_drop_mesh)
4822 return 1; /* already dropping queries */
4823 fr->fr_drop_mesh = 1;
4824 fr->worker->daemon->fast_reload_drop_mesh = fr->fr_drop_mesh;
4825 if(!fr_output_printf(fr, "tags have changed, with "
4826 "'define-tag', and the queries have to be dropped "
4827 "for consistency, setting '+d'\n"))
4828 return 0;
4829 fr_send_notification(fr, fast_reload_notification_printout);
4830 }
4831 return 1;
4832 }
4833
4834 /** fast reload thread, add incompatible option to the explanatory string */
4835 static void
fr_add_incompatible_option(const char * desc,char * str,size_t len)4836 fr_add_incompatible_option(const char* desc, char* str, size_t len)
4837 {
4838 size_t slen = strlen(str);
4839 size_t desclen = strlen(desc);
4840 if(slen == 0) {
4841 snprintf(str, len, "%s", desc);
4842 return;
4843 }
4844 if(len - slen < desclen+2)
4845 return; /* It does not fit */
4846 snprintf(str+slen, len-slen, " %s", desc);
4847 }
4848
4849 /** fast reload thread, check if config item has changed; thus incompatible */
4850 #define FR_CHECK_CHANGED_CFG(desc, var, str) \
4851 do { \
4852 if(cfg->var != newcfg->var) { \
4853 fr_add_incompatible_option(desc, str, sizeof(str)); \
4854 } \
4855 } while(0);
4856
4857 /** fast reload thread, check if config string has changed, checks NULLs. */
4858 #define FR_CHECK_CHANGED_CFG_STR(desc, var, str) \
4859 do { \
4860 if((!cfg->var && newcfg->var) || \
4861 (cfg->var && !newcfg->var) || \
4862 (cfg->var && newcfg->var \
4863 && strcmp(cfg->var, newcfg->var) != 0)) { \
4864 fr_add_incompatible_option(desc, str, sizeof(str)); \
4865 } \
4866 } while(0);
4867
4868 /** fast reload thread, check if config strlist has changed. */
4869 #define FR_CHECK_CHANGED_CFG_STRLIST(desc, var, str) do { \
4870 fr_check_changed_cfg_strlist(cfg->var, newcfg->var, desc, str, \
4871 sizeof(str)); \
4872 } while(0);
4873 static void
fr_check_changed_cfg_strlist(struct config_strlist * cmp1,struct config_strlist * cmp2,const char * desc,char * str,size_t len)4874 fr_check_changed_cfg_strlist(struct config_strlist* cmp1,
4875 struct config_strlist* cmp2, const char* desc, char* str, size_t len)
4876 {
4877 struct config_strlist* p1 = cmp1, *p2 = cmp2;
4878 while(p1 && p2) {
4879 if((!p1->str && p2->str) ||
4880 (p1->str && !p2->str) ||
4881 (p1->str && p2->str && strcmp(p1->str, p2->str) != 0)) {
4882 /* The strlist is different. */
4883 fr_add_incompatible_option(desc, str, len);
4884 return;
4885 }
4886 p1 = p1->next;
4887 p2 = p2->next;
4888 }
4889 if((!p1 && p2) || (p1 && !p2)) {
4890 fr_add_incompatible_option(desc, str, len);
4891 }
4892 }
4893
4894 /** fast reload thread, check if config str2list has changed. */
4895 #define FR_CHECK_CHANGED_CFG_STR2LIST(desc, var, buff) do { \
4896 fr_check_changed_cfg_str2list(cfg->var, newcfg->var, desc, buff,\
4897 sizeof(buff)); \
4898 } while(0);
4899 static void
fr_check_changed_cfg_str2list(struct config_str2list * cmp1,struct config_str2list * cmp2,const char * desc,char * str,size_t len)4900 fr_check_changed_cfg_str2list(struct config_str2list* cmp1,
4901 struct config_str2list* cmp2, const char* desc, char* str, size_t len)
4902 {
4903 struct config_str2list* p1 = cmp1, *p2 = cmp2;
4904 while(p1 && p2) {
4905 if((!p1->str && p2->str) ||
4906 (p1->str && !p2->str) ||
4907 (p1->str && p2->str && strcmp(p1->str, p2->str) != 0)) {
4908 /* The str2list is different. */
4909 fr_add_incompatible_option(desc, str, len);
4910 return;
4911 }
4912 if((!p1->str2 && p2->str2) ||
4913 (p1->str2 && !p2->str2) ||
4914 (p1->str2 && p2->str2 &&
4915 strcmp(p1->str2, p2->str2) != 0)) {
4916 /* The str2list is different. */
4917 fr_add_incompatible_option(desc, str, len);
4918 return;
4919 }
4920 p1 = p1->next;
4921 p2 = p2->next;
4922 }
4923 if((!p1 && p2) || (p1 && !p2)) {
4924 fr_add_incompatible_option(desc, str, len);
4925 }
4926 }
4927
4928 /** fast reload thread, check compatible config items */
4929 static int
fr_check_compat_cfg(struct fast_reload_thread * fr,struct config_file * newcfg)4930 fr_check_compat_cfg(struct fast_reload_thread* fr, struct config_file* newcfg)
4931 {
4932 int i;
4933 char changed_str[1024];
4934 struct config_file* cfg = fr->worker->env.cfg;
4935 changed_str[0]=0;
4936
4937 /* Find incompatible options, and if so, print an error. */
4938 FR_CHECK_CHANGED_CFG("num-threads", num_threads, changed_str);
4939 FR_CHECK_CHANGED_CFG("do-ip4", do_ip4, changed_str);
4940 FR_CHECK_CHANGED_CFG("do-ip6", do_ip6, changed_str);
4941 FR_CHECK_CHANGED_CFG("do-udp", do_udp, changed_str);
4942 FR_CHECK_CHANGED_CFG("do-tcp", do_tcp, changed_str);
4943 FR_CHECK_CHANGED_CFG("port", port, changed_str);
4944 /* But cfg->outgoing_num_ports has been changed at startup,
4945 * possibly to reduce it, so do not check it here. */
4946 FR_CHECK_CHANGED_CFG("outgoing-num-tcp", outgoing_num_tcp, changed_str);
4947 FR_CHECK_CHANGED_CFG("incoming-num-tcp", incoming_num_tcp, changed_str);
4948 FR_CHECK_CHANGED_CFG("outgoing-interface", num_out_ifs, changed_str);
4949 if(cfg->num_out_ifs == newcfg->num_out_ifs) {
4950 for(i=0; i<cfg->num_out_ifs; i++)
4951 FR_CHECK_CHANGED_CFG_STR("outgoing-interface",
4952 out_ifs[i], changed_str);
4953 }
4954 FR_CHECK_CHANGED_CFG("interface", num_ifs, changed_str);
4955 if(cfg->num_ifs == newcfg->num_ifs) {
4956 for(i=0; i<cfg->num_ifs; i++)
4957 FR_CHECK_CHANGED_CFG_STR("interface",
4958 ifs[i], changed_str);
4959 }
4960 FR_CHECK_CHANGED_CFG("interface-automatic", if_automatic, changed_str);
4961 FR_CHECK_CHANGED_CFG("so-rcvbuf", so_rcvbuf, changed_str);
4962 FR_CHECK_CHANGED_CFG("so-sndbuf", so_sndbuf, changed_str);
4963 FR_CHECK_CHANGED_CFG("so-reuseport", so_reuseport, changed_str);
4964 FR_CHECK_CHANGED_CFG("ip-transparent", ip_transparent, changed_str);
4965 FR_CHECK_CHANGED_CFG("ip-freebind", ip_freebind, changed_str);
4966 FR_CHECK_CHANGED_CFG("udp-connect", udp_connect, changed_str);
4967 FR_CHECK_CHANGED_CFG("msg-buffer-size", msg_buffer_size, changed_str);
4968 FR_CHECK_CHANGED_CFG("edns-tcp-keepalive", do_tcp_keepalive, changed_str);
4969 FR_CHECK_CHANGED_CFG("edns-tcp-keepalive-timeout", tcp_keepalive_timeout, changed_str);
4970 FR_CHECK_CHANGED_CFG("tcp-idle-timeout", tcp_idle_timeout, changed_str);
4971 /* Not changed, only if DoH is used, it is then stored in commpoints,
4972 * as well as used from cfg. */
4973 FR_CHECK_CHANGED_CFG("harden-large-queries", harden_large_queries, changed_str);
4974 FR_CHECK_CHANGED_CFG("http-max-streams", http_max_streams, changed_str);
4975 FR_CHECK_CHANGED_CFG_STR("http-endpoint", http_endpoint, changed_str);
4976 FR_CHECK_CHANGED_CFG("http_notls_downstream", http_notls_downstream, changed_str);
4977 FR_CHECK_CHANGED_CFG("https-port", https_port, changed_str);
4978 FR_CHECK_CHANGED_CFG("tls-port", ssl_port, changed_str);
4979 FR_CHECK_CHANGED_CFG_STR("tls-protocols", tls_protocols, changed_str);
4980 FR_CHECK_CHANGED_CFG_STRLIST("proxy-protocol-port", proxy_protocol_port, changed_str);
4981 FR_CHECK_CHANGED_CFG_STRLIST("tls-additional-port", tls_additional_port, changed_str);
4982 FR_CHECK_CHANGED_CFG_STR("interface-automatic-ports", if_automatic_ports, changed_str);
4983 FR_CHECK_CHANGED_CFG("udp-upstream-without-downstream", udp_upstream_without_downstream, changed_str);
4984
4985 if(changed_str[0] != 0) {
4986 /* The new config changes some items that do not work with
4987 * fast reload. */
4988 if(!fr_output_printf(fr, "The config changes items that are "
4989 "not compatible with fast_reload, perhaps do reload "
4990 "or restart: %s", changed_str) ||
4991 !fr_output_printf(fr, "\n"))
4992 return 0;
4993 fr_send_notification(fr, fast_reload_notification_printout);
4994 return 0;
4995 }
4996 return 1;
4997 }
4998
4999 /** fast reload thread, check nopause config items */
5000 static int
fr_check_nopause_compat_cfg(struct fast_reload_thread * fr,struct config_file * newcfg)5001 fr_check_nopause_compat_cfg(struct fast_reload_thread* fr, struct config_file* newcfg)
5002 {
5003 char changed_str[1024];
5004 struct config_file* cfg = fr->worker->env.cfg;
5005 if(!fr->fr_nopause)
5006 return 1; /* The nopause is not enabled, so no problem. */
5007 changed_str[0]=0;
5008
5009 /* Check for iter_env. */
5010 FR_CHECK_CHANGED_CFG("outbound-msg-retry", outbound_msg_retry, changed_str);
5011 FR_CHECK_CHANGED_CFG("max-sent-count", max_sent_count, changed_str);
5012 FR_CHECK_CHANGED_CFG("max-query-restarts", max_query_restarts, changed_str);
5013 FR_CHECK_CHANGED_CFG_STR("target-fetch-policy", target_fetch_policy, changed_str);
5014 FR_CHECK_CHANGED_CFG("do-not-query-localhost", donotquery_localhost, changed_str);
5015 FR_CHECK_CHANGED_CFG_STRLIST("do-not-query-address", donotqueryaddrs, changed_str);
5016 FR_CHECK_CHANGED_CFG_STRLIST("private-address", private_address, changed_str);
5017 FR_CHECK_CHANGED_CFG_STRLIST("private-domain", private_domain, changed_str);
5018 FR_CHECK_CHANGED_CFG_STRLIST("caps-exempt", caps_whitelist, changed_str);
5019 FR_CHECK_CHANGED_CFG("do-nat64", do_nat64, changed_str);
5020 FR_CHECK_CHANGED_CFG_STR("nat64-prefix", nat64_prefix, changed_str);
5021
5022 /* Check for val_env. */
5023 FR_CHECK_CHANGED_CFG("val-bogus-ttl", bogus_ttl, changed_str);
5024 FR_CHECK_CHANGED_CFG("val-date-override", val_date_override, changed_str);
5025 FR_CHECK_CHANGED_CFG("val-sig-skew-min", val_sig_skew_min, changed_str);
5026 FR_CHECK_CHANGED_CFG("val-sig-skew-max", val_sig_skew_max, changed_str);
5027 FR_CHECK_CHANGED_CFG("val-max-restart", val_max_restart, changed_str);
5028 FR_CHECK_CHANGED_CFG_STR("val-nsec3-keysize-iterations",
5029 val_nsec3_key_iterations, changed_str);
5030
5031 /* Check for infra. */
5032 FR_CHECK_CHANGED_CFG("infra-host-ttl", host_ttl, changed_str);
5033 FR_CHECK_CHANGED_CFG("infra-keep-probing", infra_keep_probing, changed_str);
5034 FR_CHECK_CHANGED_CFG("ratelimit", ratelimit, changed_str);
5035 FR_CHECK_CHANGED_CFG("ip-ratelimit", ip_ratelimit, changed_str);
5036 FR_CHECK_CHANGED_CFG("ip-ratelimit-cookie", ip_ratelimit_cookie, changed_str);
5037 FR_CHECK_CHANGED_CFG_STR2LIST("wait-limit-netblock", wait_limit_netblock, changed_str);
5038 FR_CHECK_CHANGED_CFG_STR2LIST("wait-limit-cookie-netblock", wait_limit_cookie_netblock, changed_str);
5039 FR_CHECK_CHANGED_CFG_STR2LIST("ratelimit-below-domain", ratelimit_below_domain, changed_str);
5040 FR_CHECK_CHANGED_CFG_STR2LIST("ratelimit-for-domain", ratelimit_for_domain, changed_str);
5041
5042 /* Check for dnstap. */
5043 FR_CHECK_CHANGED_CFG("dnstap-send-identity", dnstap_send_identity, changed_str);
5044 FR_CHECK_CHANGED_CFG("dnstap-send-version", dnstap_send_version, changed_str);
5045 FR_CHECK_CHANGED_CFG_STR("dnstap-identity", dnstap_identity, changed_str);
5046 FR_CHECK_CHANGED_CFG_STR("dnstap-version", dnstap_version, changed_str);
5047
5048 if(changed_str[0] != 0) {
5049 /* The new config changes some items that need a pause,
5050 * to be able to update the variables. */
5051 if(!fr_output_printf(fr, "The config changes items that need "
5052 "the fast_reload +p option, for nopause, "
5053 "disabled to be reloaded: %s", changed_str) ||
5054 !fr_output_printf(fr, "\n"))
5055 return 0;
5056 fr_send_notification(fr, fast_reload_notification_printout);
5057 return 0;
5058 }
5059 return 1;
5060 }
5061
5062 /** fast reload thread, clear construct information, deletes items */
5063 static void
fr_construct_clear(struct fast_reload_construct * ct)5064 fr_construct_clear(struct fast_reload_construct* ct)
5065 {
5066 if(!ct)
5067 return;
5068 auth_zones_delete(ct->auth_zones);
5069 forwards_delete(ct->fwds);
5070 hints_delete(ct->hints);
5071 respip_set_delete(ct->respip_set);
5072 local_zones_delete(ct->local_zones);
5073 acl_list_delete(ct->acl);
5074 acl_list_delete(ct->acl_interface);
5075 tcl_list_delete(ct->tcl);
5076 edns_strings_delete(ct->edns_strings);
5077 anchors_delete(ct->anchors);
5078 views_delete(ct->views);
5079 free(ct->nsec3_keysize);
5080 free(ct->nsec3_maxiter);
5081 free(ct->target_fetch_policy);
5082 donotq_delete(ct->donotq);
5083 priv_delete(ct->priv);
5084 caps_white_delete(ct->caps_white);
5085 wait_limits_free(&ct->wait_limits_netblock);
5086 wait_limits_free(&ct->wait_limits_cookie_netblock);
5087 domain_limits_free(&ct->domain_limits);
5088 #ifdef HAVE_SSL
5089 /* The SSL contexts can be SSL_CTX_free here. It is reference
5090 * counted. So ongoing transfers with can continue.
5091 * Once they are done, the context is freed. */
5092 SSL_CTX_free((SSL_CTX*)ct->listen_dot_sslctx);
5093 SSL_CTX_free((SSL_CTX*)ct->connect_dot_sslctx);
5094 SSL_CTX_free((SSL_CTX*)ct->listen_doh_sslctx);
5095 #endif /* HAVE_SSL */
5096 #ifdef HAVE_NGTCP2
5097 SSL_CTX_free((SSL_CTX*)ct->listen_quic_sslctx);
5098 #endif
5099 free(ct->ssl_service_key);
5100 free(ct->ssl_service_pem);
5101 /* Delete the log identity here so that the global value is not
5102 * reset by config_delete. */
5103 if(ct->oldcfg && ct->oldcfg->log_identity) {
5104 free(ct->oldcfg->log_identity);
5105 ct->oldcfg->log_identity = NULL;
5106 }
5107 config_delete(ct->oldcfg);
5108 }
5109
5110 /** get memory for strlist */
5111 static size_t
getmem_config_strlist(struct config_strlist * p)5112 getmem_config_strlist(struct config_strlist* p)
5113 {
5114 size_t m = 0;
5115 struct config_strlist* s;
5116 for(s = p; s; s = s->next)
5117 m += sizeof(*s) + getmem_str(s->str);
5118 return m;
5119 }
5120
5121 /** get memory for str2list */
5122 static size_t
getmem_config_str2list(struct config_str2list * p)5123 getmem_config_str2list(struct config_str2list* p)
5124 {
5125 size_t m = 0;
5126 struct config_str2list* s;
5127 for(s = p; s; s = s->next)
5128 m += sizeof(*s) + getmem_str(s->str) + getmem_str(s->str2);
5129 return m;
5130 }
5131
5132 /** get memory for str3list */
5133 static size_t
getmem_config_str3list(struct config_str3list * p)5134 getmem_config_str3list(struct config_str3list* p)
5135 {
5136 size_t m = 0;
5137 struct config_str3list* s;
5138 for(s = p; s; s = s->next)
5139 m += sizeof(*s) + getmem_str(s->str) + getmem_str(s->str2)
5140 + getmem_str(s->str3);
5141 return m;
5142 }
5143
5144 /** get memory for strbytelist */
5145 static size_t
getmem_config_strbytelist(struct config_strbytelist * p)5146 getmem_config_strbytelist(struct config_strbytelist* p)
5147 {
5148 size_t m = 0;
5149 struct config_strbytelist* s;
5150 for(s = p; s; s = s->next)
5151 m += sizeof(*s) + getmem_str(s->str) + (s->str2?s->str2len:0);
5152 return m;
5153 }
5154
5155 /** get memory used by ifs array */
5156 static size_t
getmem_ifs(int numifs,char ** ifs)5157 getmem_ifs(int numifs, char** ifs)
5158 {
5159 size_t m = 0;
5160 int i;
5161 m += numifs * sizeof(char*);
5162 for(i=0; i<numifs; i++)
5163 m += getmem_str(ifs[i]);
5164 return m;
5165 }
5166
5167 /** get memory for config_stub */
5168 static size_t
getmem_config_stub(struct config_stub * p)5169 getmem_config_stub(struct config_stub* p)
5170 {
5171 size_t m = 0;
5172 struct config_stub* s;
5173 for(s = p; s; s = s->next)
5174 m += sizeof(*s) + getmem_str(s->name)
5175 + getmem_config_strlist(s->hosts)
5176 + getmem_config_strlist(s->addrs);
5177 return m;
5178 }
5179
5180 /** get memory for config_auth */
5181 static size_t
getmem_config_auth(struct config_auth * p)5182 getmem_config_auth(struct config_auth* p)
5183 {
5184 size_t m = 0;
5185 struct config_auth* s;
5186 for(s = p; s; s = s->next)
5187 m += sizeof(*s) + getmem_str(s->name)
5188 + getmem_config_strlist(s->masters)
5189 + getmem_config_strlist(s->urls)
5190 + getmem_config_strlist(s->allow_notify)
5191 + getmem_str(s->zonefile)
5192 + s->rpz_taglistlen
5193 + getmem_str(s->rpz_action_override)
5194 + getmem_str(s->rpz_log_name)
5195 + getmem_str(s->rpz_cname);
5196 return m;
5197 }
5198
5199 /** get memory for config_view */
5200 static size_t
getmem_config_view(struct config_view * p)5201 getmem_config_view(struct config_view* p)
5202 {
5203 size_t m = 0;
5204 struct config_view* s;
5205 for(s = p; s; s = s->next)
5206 m += sizeof(*s) + getmem_str(s->name)
5207 + getmem_config_str2list(s->local_zones)
5208 + getmem_config_strlist(s->local_data)
5209 + getmem_config_strlist(s->local_zones_nodefault)
5210 #ifdef USE_IPSET
5211 + getmem_config_strlist(s->local_zones_ipset)
5212 #endif
5213 + getmem_config_str2list(s->respip_actions)
5214 + getmem_config_str2list(s->respip_data);
5215
5216 return m;
5217 }
5218
5219 /** get memory used by config_file item, estimate */
5220 static size_t
config_file_getmem(struct config_file * cfg)5221 config_file_getmem(struct config_file* cfg)
5222 {
5223 size_t m = 0;
5224 m += sizeof(*cfg);
5225 m += getmem_config_strlist(cfg->proxy_protocol_port);
5226 m += getmem_str(cfg->ssl_service_key);
5227 m += getmem_str(cfg->ssl_service_pem);
5228 m += getmem_str(cfg->tls_cert_bundle);
5229 m += getmem_config_strlist(cfg->tls_additional_port);
5230 m += getmem_config_strlist(cfg->tls_session_ticket_keys.first);
5231 m += getmem_str(cfg->tls_ciphers);
5232 m += getmem_str(cfg->tls_ciphersuites);
5233 m += getmem_str(cfg->tls_protocols);
5234 m += getmem_str(cfg->http_endpoint);
5235 m += (cfg->outgoing_avail_ports?65536*sizeof(int):0);
5236 m += getmem_str(cfg->target_fetch_policy);
5237 m += getmem_str(cfg->if_automatic_ports);
5238 m += getmem_ifs(cfg->num_ifs, cfg->ifs);
5239 m += getmem_ifs(cfg->num_out_ifs, cfg->out_ifs);
5240 m += getmem_config_strlist(cfg->root_hints);
5241 m += getmem_config_stub(cfg->stubs);
5242 m += getmem_config_stub(cfg->forwards);
5243 m += getmem_config_auth(cfg->auths);
5244 m += getmem_config_view(cfg->views);
5245 m += getmem_config_strlist(cfg->donotqueryaddrs);
5246 #ifdef CLIENT_SUBNET
5247 m += getmem_config_strlist(cfg->client_subnet);
5248 m += getmem_config_strlist(cfg->client_subnet_zone);
5249 #endif
5250 m += getmem_config_str2list(cfg->acls);
5251 m += getmem_config_str2list(cfg->tcp_connection_limits);
5252 m += getmem_config_strlist(cfg->caps_whitelist);
5253 m += getmem_config_strlist(cfg->private_address);
5254 m += getmem_config_strlist(cfg->private_domain);
5255 m += getmem_str(cfg->chrootdir);
5256 m += getmem_str(cfg->username);
5257 m += getmem_str(cfg->directory);
5258 m += getmem_str(cfg->logfile);
5259 m += getmem_str(cfg->pidfile);
5260 m += getmem_str(cfg->log_identity);
5261 m += getmem_str(cfg->identity);
5262 m += getmem_str(cfg->version);
5263 m += getmem_str(cfg->http_user_agent);
5264 m += getmem_str(cfg->nsid_cfg_str);
5265 m += (cfg->nsid?cfg->nsid_len:0);
5266 m += getmem_str(cfg->module_conf);
5267 m += getmem_config_strlist(cfg->trust_anchor_file_list);
5268 m += getmem_config_strlist(cfg->trust_anchor_list);
5269 m += getmem_config_strlist(cfg->auto_trust_anchor_file_list);
5270 m += getmem_config_strlist(cfg->trusted_keys_file_list);
5271 m += getmem_config_strlist(cfg->domain_insecure);
5272 m += getmem_str(cfg->val_nsec3_key_iterations);
5273 m += getmem_config_str2list(cfg->local_zones);
5274 m += getmem_config_strlist(cfg->local_zones_nodefault);
5275 #ifdef USE_IPSET
5276 m += getmem_config_strlist(cfg->local_zones_ipset);
5277 #endif
5278 m += getmem_config_strlist(cfg->local_data);
5279 m += getmem_config_str3list(cfg->local_zone_overrides);
5280 m += getmem_config_strbytelist(cfg->local_zone_tags);
5281 m += getmem_config_strbytelist(cfg->acl_tags);
5282 m += getmem_config_str3list(cfg->acl_tag_actions);
5283 m += getmem_config_str3list(cfg->acl_tag_datas);
5284 m += getmem_config_str2list(cfg->acl_view);
5285 m += getmem_config_str2list(cfg->interface_actions);
5286 m += getmem_config_strbytelist(cfg->interface_tags);
5287 m += getmem_config_str3list(cfg->interface_tag_actions);
5288 m += getmem_config_str3list(cfg->interface_tag_datas);
5289 m += getmem_config_str2list(cfg->interface_view);
5290 m += getmem_config_strbytelist(cfg->respip_tags);
5291 m += getmem_config_str2list(cfg->respip_actions);
5292 m += getmem_config_str2list(cfg->respip_data);
5293 m += getmem_ifs(cfg->num_tags, cfg->tagname);
5294 m += getmem_config_strlist(cfg->control_ifs.first);
5295 m += getmem_str(cfg->server_key_file);
5296 m += getmem_str(cfg->server_cert_file);
5297 m += getmem_str(cfg->control_key_file);
5298 m += getmem_str(cfg->control_cert_file);
5299 m += getmem_config_strlist(cfg->python_script);
5300 m += getmem_config_strlist(cfg->dynlib_file);
5301 m += getmem_str(cfg->dns64_prefix);
5302 m += getmem_config_strlist(cfg->dns64_ignore_aaaa);
5303 m += getmem_str(cfg->nat64_prefix);
5304 m += getmem_str(cfg->dnstap_socket_path);
5305 m += getmem_str(cfg->dnstap_ip);
5306 m += getmem_str(cfg->dnstap_tls_server_name);
5307 m += getmem_str(cfg->dnstap_tls_cert_bundle);
5308 m += getmem_str(cfg->dnstap_tls_client_key_file);
5309 m += getmem_str(cfg->dnstap_tls_client_cert_file);
5310 m += getmem_str(cfg->dnstap_identity);
5311 m += getmem_str(cfg->dnstap_version);
5312 m += getmem_config_str2list(cfg->ratelimit_for_domain);
5313 m += getmem_config_str2list(cfg->ratelimit_below_domain);
5314 m += getmem_config_str2list(cfg->edns_client_strings);
5315 m += getmem_str(cfg->dnscrypt_provider);
5316 m += getmem_config_strlist(cfg->dnscrypt_secret_key);
5317 m += getmem_config_strlist(cfg->dnscrypt_provider_cert);
5318 m += getmem_config_strlist(cfg->dnscrypt_provider_cert_rotated);
5319 #ifdef USE_IPSECMOD
5320 m += getmem_config_strlist(cfg->ipsecmod_whitelist);
5321 m += getmem_str(cfg->ipsecmod_hook);
5322 #endif
5323 #ifdef USE_CACHEDB
5324 m += getmem_str(cfg->cachedb_backend);
5325 m += getmem_str(cfg->cachedb_secret);
5326 #ifdef USE_REDIS
5327 m += getmem_str(cfg->redis_server_host);
5328 m += getmem_str(cfg->redis_replica_server_host);
5329 m += getmem_str(cfg->redis_server_path);
5330 m += getmem_str(cfg->redis_replica_server_path);
5331 m += getmem_str(cfg->redis_server_password);
5332 m += getmem_str(cfg->redis_replica_server_password);
5333 #endif
5334 #endif
5335 #ifdef USE_IPSET
5336 m += getmem_str(cfg->ipset_name_v4);
5337 m += getmem_str(cfg->ipset_name_v6);
5338 #endif
5339 return m;
5340 }
5341
5342 /** fast reload thread, print memory used by construct of items. */
5343 static int
fr_printmem(struct fast_reload_thread * fr,struct config_file * newcfg,struct fast_reload_construct * ct)5344 fr_printmem(struct fast_reload_thread* fr,
5345 struct config_file* newcfg, struct fast_reload_construct* ct)
5346 {
5347 size_t mem = 0;
5348 if(fr_poll_for_quit(fr))
5349 return 1;
5350 mem += getmem_str(ct->ssl_service_key);
5351 mem += getmem_str(ct->ssl_service_pem);
5352 mem += views_get_mem(ct->views);
5353 mem += respip_set_get_mem(ct->respip_set);
5354 mem += auth_zones_get_mem(ct->auth_zones);
5355 mem += forwards_get_mem(ct->fwds);
5356 mem += hints_get_mem(ct->hints);
5357 mem += local_zones_get_mem(ct->local_zones);
5358 mem += acl_list_get_mem(ct->acl);
5359 mem += acl_list_get_mem(ct->acl_interface);
5360 mem += tcl_list_get_mem(ct->tcl);
5361 mem += edns_strings_get_mem(ct->edns_strings);
5362 mem += anchors_get_mem(ct->anchors);
5363 mem += sizeof(*ct->oldcfg);
5364 mem += config_file_getmem(newcfg);
5365
5366 if(!fr_output_printf(fr, "memory use %d bytes\n", (int)mem))
5367 return 0;
5368 fr_send_notification(fr, fast_reload_notification_printout);
5369
5370 return 1;
5371 }
5372
5373 /** fast reload thread, setup the acl_interface for the ports that
5374 * the server has. */
5375 static int
ct_acl_interface_setup_ports(struct acl_list * acl_interface,struct daemon * daemon)5376 ct_acl_interface_setup_ports(struct acl_list* acl_interface,
5377 struct daemon* daemon)
5378 {
5379 /* clean acl_interface */
5380 acl_interface_init(acl_interface);
5381 if(!setup_acl_for_ports(acl_interface, daemon->ports[0]))
5382 return 0;
5383 if(daemon->reuseport) {
5384 size_t i;
5385 for(i=1; i<daemon->num_ports; i++) {
5386 if(!setup_acl_for_ports(acl_interface,
5387 daemon->ports[i]))
5388 return 0;
5389 }
5390 }
5391 return 1;
5392 }
5393
5394 /** fast reload, add new change to list of auth zones */
5395 static int
fr_add_auth_zone_change(struct fast_reload_thread * fr,struct auth_zone * old_z,struct auth_zone * new_z,int is_deleted,int is_added,int is_changed)5396 fr_add_auth_zone_change(struct fast_reload_thread* fr, struct auth_zone* old_z,
5397 struct auth_zone* new_z, int is_deleted, int is_added, int is_changed)
5398 {
5399 struct fast_reload_auth_change* item;
5400 item = calloc(1, sizeof(*item));
5401 if(!item) {
5402 log_err("malloc failure in add auth zone change");
5403 return 0;
5404 }
5405 item->old_z = old_z;
5406 item->new_z = new_z;
5407 item->is_deleted = is_deleted;
5408 item->is_added = is_added;
5409 item->is_changed = is_changed;
5410
5411 item->next = fr->auth_zone_change_list;
5412 fr->auth_zone_change_list = item;
5413 return 1;
5414 }
5415
5416 /** See if auth master is equal */
5417 static int
xfr_auth_master_equal(struct auth_master * m1,struct auth_master * m2)5418 xfr_auth_master_equal(struct auth_master* m1, struct auth_master* m2)
5419 {
5420 if(!m1 && !m2)
5421 return 1;
5422 if(!m1 || !m2)
5423 return 0;
5424
5425 if((m1->host && !m2->host) || (!m1->host && m2->host))
5426 return 0;
5427 if(m1->host && m2->host && strcmp(m1->host, m2->host) != 0)
5428 return 0;
5429
5430 if((m1->file && !m2->file) || (!m1->file && m2->file))
5431 return 0;
5432 if(m1->file && m2->file && strcmp(m1->file, m2->file) != 0)
5433 return 0;
5434
5435 if((m1->http && !m2->http) || (!m1->http && m2->http))
5436 return 0;
5437 if((m1->ixfr && !m2->ixfr) || (!m1->ixfr && m2->ixfr))
5438 return 0;
5439 if((m1->allow_notify && !m2->allow_notify) || (!m1->allow_notify && m2->allow_notify))
5440 return 0;
5441 if((m1->ssl && !m2->ssl) || (!m1->ssl && m2->ssl))
5442 return 0;
5443 if(m1->port != m2->port)
5444 return 0;
5445 return 1;
5446 }
5447
5448 /** See if list of auth masters is equal */
5449 static int
xfr_masterlist_equal(struct auth_master * list1,struct auth_master * list2)5450 xfr_masterlist_equal(struct auth_master* list1, struct auth_master* list2)
5451 {
5452 struct auth_master* p1 = list1, *p2 = list2;
5453 while(p1 && p2) {
5454 if(!xfr_auth_master_equal(p1, p2))
5455 return 0;
5456 p1 = p1->next;
5457 p2 = p2->next;
5458 }
5459 if(!p1 && !p2)
5460 return 1;
5461 return 0;
5462 }
5463
5464 /** See if the list of masters has changed. */
5465 static int
xfr_masters_equal(struct auth_xfer * xfr1,struct auth_xfer * xfr2)5466 xfr_masters_equal(struct auth_xfer* xfr1, struct auth_xfer* xfr2)
5467 {
5468 if(xfr1 == NULL && xfr2 == NULL)
5469 return 1;
5470 if(xfr1 == NULL && xfr2 != NULL)
5471 return 0;
5472 if(xfr1 != NULL && xfr2 == NULL)
5473 return 0;
5474 if(xfr_masterlist_equal(xfr1->task_probe->masters,
5475 xfr2->task_probe->masters) &&
5476 xfr_masterlist_equal(xfr1->task_transfer->masters,
5477 xfr2->task_transfer->masters))
5478 return 1;
5479 return 0;
5480 }
5481
5482 /** Check what has changed in auth zones, like added and deleted zones */
5483 static int
auth_zones_check_changes(struct fast_reload_thread * fr,struct fast_reload_construct * ct)5484 auth_zones_check_changes(struct fast_reload_thread* fr,
5485 struct fast_reload_construct* ct)
5486 {
5487 /* Check every zone in turn. */
5488 struct auth_zone* new_z, *old_z;
5489 struct module_env* env = &fr->worker->env;
5490
5491 fr->old_auth_zones = ct->auth_zones;
5492 /* Nobody is using the new ct version yet.
5493 * Also the ct lock is picked up before the env lock for auth_zones. */
5494 lock_rw_rdlock(&ct->auth_zones->lock);
5495
5496 /* Find deleted zones by looping over the current list and looking
5497 * up in the new tree. */
5498 lock_rw_rdlock(&env->auth_zones->lock);
5499 RBTREE_FOR(old_z, struct auth_zone*, &env->auth_zones->ztree) {
5500 new_z = auth_zone_find(ct->auth_zones, old_z->name,
5501 old_z->namelen, old_z->dclass);
5502 if(!new_z) {
5503 /* The zone has been removed. */
5504 if(!fr_add_auth_zone_change(fr, old_z, NULL, 1, 0,
5505 0)) {
5506 lock_rw_unlock(&env->auth_zones->lock);
5507 lock_rw_unlock(&ct->auth_zones->lock);
5508 return 0;
5509 }
5510 }
5511 }
5512 lock_rw_unlock(&env->auth_zones->lock);
5513
5514 /* Find added zones by looping over new list and lookup in current. */
5515 RBTREE_FOR(new_z, struct auth_zone*, &ct->auth_zones->ztree) {
5516 lock_rw_rdlock(&env->auth_zones->lock);
5517 old_z = auth_zone_find(env->auth_zones, new_z->name,
5518 new_z->namelen, new_z->dclass);
5519 if(!old_z) {
5520 /* The zone has been added. */
5521 lock_rw_unlock(&env->auth_zones->lock);
5522 if(!fr_add_auth_zone_change(fr, NULL, new_z, 0, 1,
5523 0)) {
5524 lock_rw_unlock(&ct->auth_zones->lock);
5525 return 0;
5526 }
5527 } else {
5528 uint32_t old_serial = 0, new_serial = 0;
5529 int have_old = 0, have_new = 0;
5530 struct auth_xfer* old_xfr, *new_xfr;
5531 lock_rw_rdlock(&new_z->lock);
5532 lock_rw_rdlock(&old_z->lock);
5533 new_xfr = auth_xfer_find(ct->auth_zones, new_z->name,
5534 new_z->namelen, new_z->dclass);
5535 old_xfr = auth_xfer_find(env->auth_zones, old_z->name,
5536 old_z->namelen, old_z->dclass);
5537 if(new_xfr) {
5538 lock_basic_lock(&new_xfr->lock);
5539 }
5540 if(old_xfr) {
5541 lock_basic_lock(&old_xfr->lock);
5542 }
5543 lock_rw_unlock(&env->auth_zones->lock);
5544
5545 /* Change in the auth zone can be detected. */
5546 /* A change in serial number means that auth_xfer
5547 * has to be updated. */
5548 have_old = (auth_zone_get_serial(old_z,
5549 &old_serial)!=0);
5550 have_new = (auth_zone_get_serial(new_z,
5551 &new_serial)!=0);
5552 if(have_old != have_new || old_serial != new_serial
5553 || !xfr_masters_equal(old_xfr, new_xfr)) {
5554 /* The zone has been changed. */
5555 if(!fr_add_auth_zone_change(fr, old_z, new_z,
5556 0, 0, 1)) {
5557 lock_rw_unlock(&old_z->lock);
5558 lock_rw_unlock(&new_z->lock);
5559 lock_rw_unlock(&ct->auth_zones->lock);
5560 if(new_xfr) {
5561 lock_basic_unlock(&new_xfr->lock);
5562 }
5563 if(old_xfr) {
5564 lock_basic_unlock(&old_xfr->lock);
5565 }
5566 return 0;
5567 }
5568 }
5569
5570 if(new_xfr) {
5571 lock_basic_unlock(&new_xfr->lock);
5572 }
5573 if(old_xfr) {
5574 lock_basic_unlock(&old_xfr->lock);
5575 }
5576 lock_rw_unlock(&old_z->lock);
5577 lock_rw_unlock(&new_z->lock);
5578 }
5579 }
5580
5581 lock_rw_unlock(&ct->auth_zones->lock);
5582 return 1;
5583 }
5584
5585 /** Check if the sslctxs have changed. */
5586 static int
fr_check_sslctx_change(struct fast_reload_thread * fr,struct config_file * newcfg)5587 fr_check_sslctx_change(struct fast_reload_thread* fr,
5588 struct config_file* newcfg)
5589 {
5590 #ifdef HAVE_SSL
5591 struct daemon* daemon = fr->worker->daemon;
5592 if(newcfg->ssl_service_key && newcfg->ssl_service_key[0]) {
5593 if(!daemon->ssl_service_key ||
5594 ssl_cert_changed(daemon, newcfg))
5595 return 1;
5596 } else {
5597 if(daemon->ssl_service_key)
5598 return 1; /* it is removed */
5599 }
5600 if((daemon->cfg->tls_cert_bundle && !newcfg->tls_cert_bundle) ||
5601 (!daemon->cfg->tls_cert_bundle && newcfg->tls_cert_bundle) ||
5602 (daemon->cfg->tls_cert_bundle && newcfg->tls_cert_bundle &&
5603 strcmp(daemon->cfg->tls_cert_bundle, newcfg->tls_cert_bundle)!=0))
5604 return 1; /* The tls-cert-bundle has changed and return
5605 true here makes it reload the connect_dot_sslctx. */
5606 #else
5607 (void)fr; (void)newcfg;
5608 #endif /* HAVE_SSL */
5609 return 0;
5610 }
5611
5612 /** Create the SSL CTXs when they have changed. */
5613 static int
ct_create_sslctxs(struct fast_reload_construct * ct,struct config_file * newcfg,struct daemon * daemon)5614 ct_create_sslctxs(struct fast_reload_construct* ct,
5615 struct config_file* newcfg, struct daemon* daemon)
5616 {
5617 #ifdef HAVE_SSL
5618 char* chroot = daemon->chroot;
5619 char* key = newcfg->ssl_service_key;
5620 char* pem = newcfg->ssl_service_pem;
5621
5622 if(!(newcfg->ssl_service_key && newcfg->ssl_service_key[0])) {
5623 /* Leave listen ctxs and file str at NULL */
5624 ct->connect_dot_sslctx = daemon_setup_connect_dot_sslctx(
5625 daemon, newcfg);
5626 return 1;
5627 }
5628
5629 if(chroot && strncmp(key, chroot, strlen(chroot)) == 0)
5630 key += strlen(chroot);
5631 if(chroot && pem && strncmp(pem, chroot, strlen(chroot)) == 0)
5632 pem += strlen(chroot);
5633
5634 ct->listen_dot_sslctx = daemon_setup_listen_dot_sslctx(daemon, newcfg);
5635 #ifdef HAVE_NGHTTP2_NGHTTP2_H
5636 if(cfg_has_https(newcfg)) {
5637 ct->listen_doh_sslctx = daemon_setup_listen_doh_sslctx(
5638 daemon, newcfg);
5639 }
5640 #endif
5641 #ifdef HAVE_NGTCP2
5642 if(cfg_has_quic(newcfg)) {
5643 ct->listen_quic_sslctx = daemon_setup_listen_quic_sslctx(
5644 daemon, newcfg);
5645 }
5646 #endif /* HAVE_NGTCP2 */
5647 ct->connect_dot_sslctx = daemon_setup_connect_dot_sslctx(daemon,
5648 newcfg);
5649
5650 /* Store mtime and names */
5651 ct->ssl_service_key = strdup(newcfg->ssl_service_key);
5652 if(!ct->ssl_service_key) {
5653 log_err("ct_create_sslctxs: out of memory");
5654 return 0;
5655 }
5656 ct->ssl_service_pem = strdup(newcfg->ssl_service_pem);
5657 if(!ct->ssl_service_pem) {
5658 log_err("ct_create_sslctxs: out of memory");
5659 return 0;
5660 }
5661 if(!file_get_mtime(key, &ct->mtime_ssl_service_key,
5662 &ct->mtime_ns_ssl_service_key, NULL))
5663 log_err("Could not stat(%s): %s",
5664 key, strerror(errno));
5665 if(!file_get_mtime(pem, &ct->mtime_ssl_service_pem,
5666 &ct->mtime_ns_ssl_service_pem, NULL))
5667 log_err("Could not stat(%s): %s",
5668 pem, strerror(errno));
5669 #else
5670 (void)ct; (void)newcfg; (void)daemon;
5671 #endif /* HAVE_SSL */
5672 return 1;
5673 }
5674
5675 /** fast reload thread, construct from config the new items */
5676 static int
fr_construct_from_config(struct fast_reload_thread * fr,struct config_file * newcfg,struct fast_reload_construct * ct)5677 fr_construct_from_config(struct fast_reload_thread* fr,
5678 struct config_file* newcfg, struct fast_reload_construct* ct)
5679 {
5680 int have_view_respip_cfg = 0;
5681
5682 fr->sslctxs_changed = fr_check_sslctx_change(fr, newcfg);
5683 if(fr->sslctxs_changed) {
5684 if(!ct_create_sslctxs(ct, newcfg, fr->worker->daemon)) {
5685 fr_construct_clear(ct);
5686 return 0;
5687 }
5688 }
5689 if(!(ct->views = views_create())) {
5690 fr_construct_clear(ct);
5691 return 0;
5692 }
5693 if(!views_apply_cfg(ct->views, newcfg)) {
5694 fr_construct_clear(ct);
5695 return 0;
5696 }
5697 if(fr_poll_for_quit(fr))
5698 return 1;
5699
5700 if(!(ct->acl = acl_list_create())) {
5701 fr_construct_clear(ct);
5702 return 0;
5703 }
5704 if(!acl_list_apply_cfg(ct->acl, newcfg, ct->views)) {
5705 fr_construct_clear(ct);
5706 return 0;
5707 }
5708 if(fr_poll_for_quit(fr))
5709 return 1;
5710
5711 if(!(ct->acl_interface = acl_list_create())) {
5712 fr_construct_clear(ct);
5713 return 0;
5714 }
5715 if(!ct_acl_interface_setup_ports(ct->acl_interface,
5716 fr->worker->daemon)) {
5717 fr_construct_clear(ct);
5718 return 0;
5719 }
5720 if(!acl_interface_apply_cfg(ct->acl_interface, newcfg, ct->views)) {
5721 fr_construct_clear(ct);
5722 return 0;
5723 }
5724 if(fr_poll_for_quit(fr))
5725 return 1;
5726
5727 if(!(ct->tcl = tcl_list_create())) {
5728 fr_construct_clear(ct);
5729 return 0;
5730 }
5731 if(!tcl_list_apply_cfg(ct->tcl, newcfg)) {
5732 fr_construct_clear(ct);
5733 return 0;
5734 }
5735 if(fr->worker->daemon->tcl->tree.count != 0)
5736 fr->worker->daemon->fast_reload_tcl_has_changes = 1;
5737 else fr->worker->daemon->fast_reload_tcl_has_changes = 0;
5738 if(fr_poll_for_quit(fr))
5739 return 1;
5740
5741 if(!(ct->auth_zones = auth_zones_create())) {
5742 fr_construct_clear(ct);
5743 return 0;
5744 }
5745 if(!auth_zones_apply_cfg(ct->auth_zones, newcfg, 1, &ct->use_rpz,
5746 fr->worker->daemon->env, &fr->worker->daemon->mods)) {
5747 fr_construct_clear(ct);
5748 return 0;
5749 }
5750 if(!auth_zones_check_changes(fr, ct)) {
5751 fr_construct_clear(ct);
5752 return 0;
5753 }
5754 if(fr_poll_for_quit(fr))
5755 return 1;
5756
5757 if(!(ct->fwds = forwards_create())) {
5758 fr_construct_clear(ct);
5759 return 0;
5760 }
5761 if(!forwards_apply_cfg(ct->fwds, newcfg)) {
5762 fr_construct_clear(ct);
5763 return 0;
5764 }
5765 if(fr_poll_for_quit(fr))
5766 return 1;
5767
5768 if(!(ct->hints = hints_create())) {
5769 fr_construct_clear(ct);
5770 return 0;
5771 }
5772 if(!hints_apply_cfg(ct->hints, newcfg)) {
5773 fr_construct_clear(ct);
5774 return 0;
5775 }
5776 if(fr_poll_for_quit(fr))
5777 return 1;
5778
5779 if(!(ct->local_zones = local_zones_create())) {
5780 fr_construct_clear(ct);
5781 return 0;
5782 }
5783 if(!local_zones_apply_cfg(ct->local_zones, newcfg)) {
5784 fr_construct_clear(ct);
5785 return 0;
5786 }
5787 if(fr_poll_for_quit(fr))
5788 return 1;
5789
5790 if(!(ct->respip_set = respip_set_create())) {
5791 fr_construct_clear(ct);
5792 return 0;
5793 }
5794 if(!respip_global_apply_cfg(ct->respip_set, newcfg)) {
5795 fr_construct_clear(ct);
5796 return 0;
5797 }
5798 if(fr_poll_for_quit(fr))
5799 return 1;
5800 if(!respip_views_apply_cfg(ct->views, newcfg, &have_view_respip_cfg)) {
5801 fr_construct_clear(ct);
5802 return 0;
5803 }
5804 ct->use_response_ip = !respip_set_is_empty(ct->respip_set) ||
5805 have_view_respip_cfg;
5806 if(fr_poll_for_quit(fr))
5807 return 1;
5808
5809 if(!(ct->edns_strings = edns_strings_create())) {
5810 fr_construct_clear(ct);
5811 return 0;
5812 }
5813 if(!edns_strings_apply_cfg(ct->edns_strings, newcfg)) {
5814 fr_construct_clear(ct);
5815 return 0;
5816 }
5817 if(fr_poll_for_quit(fr))
5818 return 1;
5819
5820 if(fr->worker->env.anchors) {
5821 /* There are trust anchors already, so create it for reload. */
5822 if(!(ct->anchors = anchors_create())) {
5823 fr_construct_clear(ct);
5824 return 0;
5825 }
5826 if(!anchors_apply_cfg(ct->anchors, newcfg)) {
5827 fr_construct_clear(ct);
5828 return 0;
5829 }
5830 if(fr_poll_for_quit(fr))
5831 return 1;
5832 }
5833
5834 if(!val_env_parse_key_iter(newcfg->val_nsec3_key_iterations,
5835 &ct->nsec3_keysize, &ct->nsec3_maxiter,
5836 &ct->nsec3_keyiter_count)) {
5837 fr_construct_clear(ct);
5838 return 0;
5839 }
5840 if(fr_poll_for_quit(fr))
5841 return 1;
5842
5843 if(!read_fetch_policy(&ct->target_fetch_policy,
5844 &ct->max_dependency_depth, newcfg->target_fetch_policy)) {
5845 fr_construct_clear(ct);
5846 return 0;
5847 }
5848 if(!(ct->donotq = donotq_create())) {
5849 fr_construct_clear(ct);
5850 return 0;
5851 }
5852 if(!donotq_apply_cfg(ct->donotq, newcfg)) {
5853 fr_construct_clear(ct);
5854 return 0;
5855 }
5856 if(!(ct->priv = priv_create())) {
5857 fr_construct_clear(ct);
5858 return 0;
5859 }
5860 if(!priv_apply_cfg(ct->priv, newcfg)) {
5861 fr_construct_clear(ct);
5862 return 0;
5863 }
5864 if(newcfg->caps_whitelist) {
5865 if(!(ct->caps_white = caps_white_create())) {
5866 fr_construct_clear(ct);
5867 return 0;
5868 }
5869 if(!caps_white_apply_cfg(ct->caps_white, newcfg)) {
5870 fr_construct_clear(ct);
5871 return 0;
5872 }
5873 }
5874 if(!nat64_apply_cfg(&ct->nat64, newcfg)) {
5875 fr_construct_clear(ct);
5876 return 0;
5877 }
5878 if(fr_poll_for_quit(fr))
5879 return 1;
5880
5881 if(!setup_wait_limits(&ct->wait_limits_netblock,
5882 &ct->wait_limits_cookie_netblock, newcfg)) {
5883 fr_construct_clear(ct);
5884 return 0;
5885 }
5886 if(!setup_domain_limits(&ct->domain_limits, newcfg)) {
5887 fr_construct_clear(ct);
5888 return 0;
5889 }
5890 if(fr_poll_for_quit(fr))
5891 return 1;
5892
5893 if(!(ct->oldcfg = (struct config_file*)calloc(1,
5894 sizeof(*ct->oldcfg)))) {
5895 fr_construct_clear(ct);
5896 log_err("out of memory");
5897 return 0;
5898 }
5899 if(fr->fr_verb >= 2) {
5900 if(!fr_printmem(fr, newcfg, ct))
5901 return 0;
5902 }
5903 return 1;
5904 }
5905
5906 /** fast reload thread, finish timers */
5907 static int
fr_finish_time(struct fast_reload_thread * fr,struct timeval * time_start,struct timeval * time_read,struct timeval * time_construct,struct timeval * time_reload,struct timeval * time_end)5908 fr_finish_time(struct fast_reload_thread* fr, struct timeval* time_start,
5909 struct timeval* time_read, struct timeval* time_construct,
5910 struct timeval* time_reload, struct timeval* time_end)
5911 {
5912 struct timeval total, readtime, constructtime, reloadtime, deletetime;
5913 if(gettimeofday(time_end, NULL) < 0)
5914 log_err("gettimeofday: %s", strerror(errno));
5915
5916 timeval_subtract(&total, time_end, time_start);
5917 timeval_subtract(&readtime, time_read, time_start);
5918 timeval_subtract(&constructtime, time_construct, time_read);
5919 timeval_subtract(&reloadtime, time_reload, time_construct);
5920 timeval_subtract(&deletetime, time_end, time_reload);
5921 if(!fr_output_printf(fr, "read disk %3d.%6.6ds\n",
5922 (int)readtime.tv_sec, (int)readtime.tv_usec))
5923 return 0;
5924 if(!fr_output_printf(fr, "construct %3d.%6.6ds\n",
5925 (int)constructtime.tv_sec, (int)constructtime.tv_usec))
5926 return 0;
5927 if(!fr_output_printf(fr, "reload %3d.%6.6ds\n",
5928 (int)reloadtime.tv_sec, (int)reloadtime.tv_usec))
5929 return 0;
5930 if(!fr_output_printf(fr, "deletes %3d.%6.6ds\n",
5931 (int)deletetime.tv_sec, (int)deletetime.tv_usec))
5932 return 0;
5933 if(!fr_output_printf(fr, "total time %3d.%6.6ds\n", (int)total.tv_sec,
5934 (int)total.tv_usec))
5935 return 0;
5936 fr_send_notification(fr, fast_reload_notification_printout);
5937 return 1;
5938 }
5939
5940 /** Swap auth zone information */
5941 static void
auth_zones_swap(struct auth_zones * az,struct auth_zones * data)5942 auth_zones_swap(struct auth_zones* az, struct auth_zones* data)
5943 {
5944 rbtree_type oldztree = az->ztree;
5945 int old_have_downstream = az->have_downstream;
5946 struct auth_zone* old_rpz_first = az->rpz_first;
5947
5948 az->ztree = data->ztree;
5949 data->ztree = oldztree;
5950
5951 az->have_downstream = data->have_downstream;
5952 data->have_downstream = old_have_downstream;
5953
5954 /* Leave num_query_up and num_query_down, the statistics can
5955 * remain counted. */
5956
5957 az->rpz_first = data->rpz_first;
5958 data->rpz_first = old_rpz_first;
5959
5960 /* The xtree is not swapped. This contains the auth_xfer elements
5961 * that contain tasks in progress, like zone transfers.
5962 * The unchanged zones can keep their tasks in the tree, and thus
5963 * the xfer elements can continue to be their callbacks. */
5964 }
5965
5966 /** Swap two void* */
5967 static void
void_ptr_swap(void ** a,void ** b)5968 void_ptr_swap(void** a, void **b)
5969 {
5970 void* tmp = *a;
5971 *a = *b;
5972 *b = tmp;
5973 }
5974
5975 /** Swap two char* */
5976 static void
char_ptr_swap(char ** a,char ** b)5977 char_ptr_swap(char** a, char **b)
5978 {
5979 char* tmp = *a;
5980 *a = *b;
5981 *b = tmp;
5982 }
5983
5984 /** Swap and set ssl ctx information */
5985 static void
sslctxs_swap(struct daemon * daemon,struct fast_reload_construct * ct)5986 sslctxs_swap(struct daemon* daemon, struct fast_reload_construct* ct)
5987 {
5988 void_ptr_swap(&daemon->listen_dot_sslctx, &ct->listen_dot_sslctx);
5989 void_ptr_swap(&daemon->connect_dot_sslctx, &ct->connect_dot_sslctx);
5990 #ifdef HAVE_NGHTTP2_NGHTTP2_H
5991 void_ptr_swap(&daemon->listen_doh_sslctx, &ct->listen_doh_sslctx);
5992 #endif
5993 #ifdef HAVE_NGTCP2
5994 void_ptr_swap(&daemon->listen_quic_sslctx, &ct->listen_quic_sslctx);
5995 #endif /* HAVE_NGTCP2 */
5996 char_ptr_swap(&daemon->ssl_service_key, &ct->ssl_service_key);
5997 char_ptr_swap(&daemon->ssl_service_pem, &ct->ssl_service_pem);
5998 daemon->mtime_ssl_service_key = ct->mtime_ssl_service_key;
5999 daemon->mtime_ns_ssl_service_key = ct->mtime_ns_ssl_service_key;
6000 daemon->mtime_ssl_service_pem = ct->mtime_ssl_service_pem;
6001 daemon->mtime_ns_ssl_service_pem = ct->mtime_ns_ssl_service_pem;
6002 }
6003
6004 #if defined(ATOMIC_POINTER_LOCK_FREE) && defined(HAVE_LINK_ATOMIC_STORE)
6005 /** Fast reload thread, if atomics are available, copy the config items
6006 * one by one with atomic store operations. */
6007 static void
fr_atomic_copy_cfg(struct config_file * oldcfg,struct config_file * cfg,struct config_file * newcfg)6008 fr_atomic_copy_cfg(struct config_file* oldcfg, struct config_file* cfg,
6009 struct config_file* newcfg)
6010 {
6011 #define COPY_VAR_int(var) oldcfg->var = cfg->var; atomic_store((_Atomic int*)&cfg->var, newcfg->var); newcfg->var = 0;
6012 #define COPY_VAR_ptr(var) oldcfg->var = cfg->var; atomic_store((void* _Atomic*)&cfg->var, newcfg->var); newcfg->var = 0;
6013 #define COPY_VAR_unsigned_int(var) oldcfg->var = cfg->var; atomic_store((_Atomic unsigned*)&cfg->var, newcfg->var); newcfg->var = 0;
6014 #define COPY_VAR_size_t(var) oldcfg->var = cfg->var; atomic_store((_Atomic size_t*)&cfg->var, newcfg->var); newcfg->var = 0;
6015 #define COPY_VAR_uint8_t(var) oldcfg->var = cfg->var; atomic_store((_Atomic uint8_t*)&cfg->var, newcfg->var); newcfg->var = 0;
6016 #define COPY_VAR_uint16_t(var) oldcfg->var = cfg->var; atomic_store((_Atomic uint16_t*)&cfg->var, newcfg->var); newcfg->var = 0;
6017 #define COPY_VAR_uint32_t(var) oldcfg->var = cfg->var; atomic_store((_Atomic uint32_t*)&cfg->var, newcfg->var); newcfg->var = 0;
6018 #define COPY_VAR_int32_t(var) oldcfg->var = cfg->var; atomic_store((_Atomic int32_t*)&cfg->var, newcfg->var); newcfg->var = 0;
6019 /* If config file items are missing from this list, they are
6020 * not updated by fast-reload +p. */
6021 /* For missing items, the oldcfg item is not updated, still NULL,
6022 * and the cfg stays the same. The newcfg item is untouched.
6023 * The newcfg item is then deleted later. */
6024 /* Items that need synchronisation are omitted from the list.
6025 * Use fast-reload without +p to update them together. */
6026 COPY_VAR_int(verbosity);
6027 COPY_VAR_int(stat_interval);
6028 COPY_VAR_int(stat_cumulative);
6029 COPY_VAR_int(stat_extended);
6030 COPY_VAR_int(stat_inhibit_zero);
6031 COPY_VAR_int(num_threads);
6032 COPY_VAR_int(port);
6033 COPY_VAR_int(do_ip4);
6034 COPY_VAR_int(do_ip6);
6035 COPY_VAR_int(do_nat64);
6036 COPY_VAR_int(prefer_ip4);
6037 COPY_VAR_int(prefer_ip6);
6038 COPY_VAR_int(do_udp);
6039 COPY_VAR_int(do_tcp);
6040 COPY_VAR_size_t(max_reuse_tcp_queries);
6041 COPY_VAR_int(tcp_reuse_timeout);
6042 COPY_VAR_int(tcp_auth_query_timeout);
6043 COPY_VAR_int(tcp_upstream);
6044 COPY_VAR_int(udp_upstream_without_downstream);
6045 COPY_VAR_int(tcp_mss);
6046 COPY_VAR_int(outgoing_tcp_mss);
6047 COPY_VAR_int(tcp_idle_timeout);
6048 COPY_VAR_int(do_tcp_keepalive);
6049 COPY_VAR_int(tcp_keepalive_timeout);
6050 COPY_VAR_int(sock_queue_timeout);
6051 COPY_VAR_ptr(proxy_protocol_port);
6052 COPY_VAR_ptr(ssl_service_key);
6053 COPY_VAR_ptr(ssl_service_pem);
6054 COPY_VAR_int(ssl_port);
6055 COPY_VAR_int(ssl_upstream);
6056 COPY_VAR_ptr(tls_cert_bundle);
6057 COPY_VAR_int(tls_win_cert);
6058 COPY_VAR_ptr(tls_additional_port);
6059 /* The first is used to walk through the list but last is
6060 * only used during config read. */
6061 COPY_VAR_ptr(tls_session_ticket_keys.first);
6062 COPY_VAR_ptr(tls_session_ticket_keys.last);
6063 COPY_VAR_ptr(tls_ciphers);
6064 COPY_VAR_ptr(tls_ciphersuites);
6065 COPY_VAR_ptr(tls_protocols);
6066 COPY_VAR_int(tls_use_sni);
6067 COPY_VAR_int(https_port);
6068 COPY_VAR_ptr(http_endpoint);
6069 COPY_VAR_uint32_t(http_max_streams);
6070 COPY_VAR_size_t(http_query_buffer_size);
6071 COPY_VAR_size_t(http_response_buffer_size);
6072 COPY_VAR_int(http_nodelay);
6073 COPY_VAR_int(http_notls_downstream);
6074 COPY_VAR_int(outgoing_num_ports);
6075 COPY_VAR_size_t(outgoing_num_tcp);
6076 COPY_VAR_size_t(incoming_num_tcp);
6077 COPY_VAR_ptr(outgoing_avail_ports);
6078 COPY_VAR_size_t(edns_buffer_size);
6079 COPY_VAR_size_t(stream_wait_size);
6080 COPY_VAR_size_t(msg_buffer_size);
6081 COPY_VAR_size_t(msg_cache_size);
6082 COPY_VAR_size_t(msg_cache_slabs);
6083 COPY_VAR_size_t(num_queries_per_thread);
6084 COPY_VAR_size_t(jostle_time);
6085 COPY_VAR_size_t(rrset_cache_size);
6086 COPY_VAR_size_t(rrset_cache_slabs);
6087 COPY_VAR_int(host_ttl);
6088 COPY_VAR_size_t(infra_cache_slabs);
6089 COPY_VAR_size_t(infra_cache_numhosts);
6090 COPY_VAR_int(infra_cache_min_rtt);
6091 COPY_VAR_int(infra_cache_max_rtt);
6092 COPY_VAR_int(infra_keep_probing);
6093 COPY_VAR_int(delay_close);
6094 COPY_VAR_int(udp_connect);
6095 COPY_VAR_ptr(target_fetch_policy);
6096 COPY_VAR_int(fast_server_permil);
6097 COPY_VAR_size_t(fast_server_num);
6098 COPY_VAR_int(if_automatic);
6099 COPY_VAR_ptr(if_automatic_ports);
6100 COPY_VAR_size_t(so_rcvbuf);
6101 COPY_VAR_size_t(so_sndbuf);
6102 COPY_VAR_int(so_reuseport);
6103 COPY_VAR_int(ip_transparent);
6104 COPY_VAR_int(ip_freebind);
6105 COPY_VAR_int(ip_dscp);
6106 /* Not copied because the length and items could then not match.
6107 num_ifs, ifs, num_out_ifs, out_ifs
6108 */
6109 COPY_VAR_ptr(root_hints);
6110 COPY_VAR_ptr(stubs);
6111 COPY_VAR_ptr(forwards);
6112 COPY_VAR_ptr(auths);
6113 COPY_VAR_ptr(views);
6114 COPY_VAR_ptr(donotqueryaddrs);
6115 #ifdef CLIENT_SUBNET
6116 COPY_VAR_ptr(client_subnet);
6117 COPY_VAR_ptr(client_subnet_zone);
6118 COPY_VAR_uint16_t(client_subnet_opcode);
6119 COPY_VAR_int(client_subnet_always_forward);
6120 COPY_VAR_uint8_t(max_client_subnet_ipv4);
6121 COPY_VAR_uint8_t(max_client_subnet_ipv6);
6122 COPY_VAR_uint8_t(min_client_subnet_ipv4);
6123 COPY_VAR_uint8_t(min_client_subnet_ipv6);
6124 COPY_VAR_uint32_t(max_ecs_tree_size_ipv4);
6125 COPY_VAR_uint32_t(max_ecs_tree_size_ipv6);
6126 #endif
6127 COPY_VAR_ptr(acls);
6128 COPY_VAR_int(donotquery_localhost);
6129 COPY_VAR_ptr(tcp_connection_limits);
6130 COPY_VAR_int(harden_short_bufsize);
6131 COPY_VAR_int(harden_large_queries);
6132 COPY_VAR_int(harden_glue);
6133 COPY_VAR_int(harden_dnssec_stripped);
6134 COPY_VAR_int(harden_below_nxdomain);
6135 COPY_VAR_int(harden_referral_path);
6136 COPY_VAR_int(harden_algo_downgrade);
6137 COPY_VAR_int(harden_unknown_additional);
6138 COPY_VAR_int(use_caps_bits_for_id);
6139 COPY_VAR_ptr(caps_whitelist);
6140 COPY_VAR_ptr(private_address);
6141 COPY_VAR_ptr(private_domain);
6142 COPY_VAR_size_t(unwanted_threshold);
6143 COPY_VAR_int(max_ttl);
6144 COPY_VAR_int(min_ttl);
6145 COPY_VAR_int(max_negative_ttl);
6146 COPY_VAR_int(min_negative_ttl);
6147 COPY_VAR_int(prefetch);
6148 COPY_VAR_int(prefetch_key);
6149 COPY_VAR_int(deny_any);
6150 COPY_VAR_ptr(chrootdir);
6151 COPY_VAR_ptr(username);
6152 COPY_VAR_ptr(directory);
6153 COPY_VAR_ptr(logfile);
6154 COPY_VAR_ptr(pidfile);
6155 COPY_VAR_int(use_syslog);
6156 COPY_VAR_int(log_time_ascii);
6157 COPY_VAR_int(log_queries);
6158 COPY_VAR_int(log_replies);
6159 COPY_VAR_int(log_tag_queryreply);
6160 COPY_VAR_int(log_local_actions);
6161 COPY_VAR_int(log_servfail);
6162 COPY_VAR_ptr(log_identity);
6163 COPY_VAR_int(log_destaddr);
6164 COPY_VAR_int(log_thread_id);
6165 COPY_VAR_int(hide_identity);
6166 COPY_VAR_int(hide_version);
6167 COPY_VAR_int(hide_trustanchor);
6168 COPY_VAR_int(hide_http_user_agent);
6169 COPY_VAR_ptr(identity);
6170 COPY_VAR_ptr(version);
6171 COPY_VAR_ptr(http_user_agent);
6172 COPY_VAR_ptr(nsid_cfg_str);
6173 /* Not copied because the length and items could then not match.
6174 nsid;
6175 nsid_len;
6176 */
6177 COPY_VAR_ptr(module_conf);
6178 COPY_VAR_ptr(trust_anchor_file_list);
6179 COPY_VAR_ptr(trust_anchor_list);
6180 COPY_VAR_ptr(auto_trust_anchor_file_list);
6181 COPY_VAR_ptr(trusted_keys_file_list);
6182 COPY_VAR_ptr(domain_insecure);
6183 COPY_VAR_int(trust_anchor_signaling);
6184 COPY_VAR_int(root_key_sentinel);
6185 COPY_VAR_int32_t(val_date_override);
6186 COPY_VAR_int32_t(val_sig_skew_min);
6187 COPY_VAR_int32_t(val_sig_skew_max);
6188 COPY_VAR_int32_t(val_max_restart);
6189 COPY_VAR_int(bogus_ttl);
6190 COPY_VAR_int(val_clean_additional);
6191 COPY_VAR_int(val_log_level);
6192 COPY_VAR_int(val_log_squelch);
6193 COPY_VAR_int(val_permissive_mode);
6194 COPY_VAR_int(aggressive_nsec);
6195 COPY_VAR_int(ignore_cd);
6196 COPY_VAR_int(disable_edns_do);
6197 COPY_VAR_int(serve_expired);
6198 COPY_VAR_int(serve_expired_ttl);
6199 COPY_VAR_int(serve_expired_ttl_reset);
6200 COPY_VAR_int(serve_expired_reply_ttl);
6201 COPY_VAR_int(serve_expired_client_timeout);
6202 COPY_VAR_int(ede_serve_expired);
6203 COPY_VAR_int(dns_error_reporting);
6204 COPY_VAR_int(serve_original_ttl);
6205 COPY_VAR_ptr(val_nsec3_key_iterations);
6206 COPY_VAR_int(zonemd_permissive_mode);
6207 COPY_VAR_unsigned_int(add_holddown);
6208 COPY_VAR_unsigned_int(del_holddown);
6209 COPY_VAR_unsigned_int(keep_missing);
6210 COPY_VAR_int(permit_small_holddown);
6211 COPY_VAR_size_t(key_cache_size);
6212 COPY_VAR_size_t(key_cache_slabs);
6213 COPY_VAR_size_t(neg_cache_size);
6214 COPY_VAR_ptr(local_zones);
6215 COPY_VAR_ptr(local_zones_nodefault);
6216 #ifdef USE_IPSET
6217 COPY_VAR_ptr(local_zones_ipset);
6218 #endif
6219 COPY_VAR_int(local_zones_disable_default);
6220 COPY_VAR_ptr(local_data);
6221 COPY_VAR_ptr(local_zone_overrides);
6222 COPY_VAR_int(unblock_lan_zones);
6223 COPY_VAR_int(insecure_lan_zones);
6224 /* These reference tags
6225 COPY_VAR_ptr(local_zone_tags);
6226 COPY_VAR_ptr(acl_tags);
6227 COPY_VAR_ptr(acl_tag_actions);
6228 COPY_VAR_ptr(acl_tag_datas);
6229 */
6230 COPY_VAR_ptr(acl_view);
6231 COPY_VAR_ptr(interface_actions);
6232 /* These reference tags
6233 COPY_VAR_ptr(interface_tags);
6234 COPY_VAR_ptr(interface_tag_actions);
6235 COPY_VAR_ptr(interface_tag_datas);
6236 */
6237 COPY_VAR_ptr(interface_view);
6238 /* This references tags
6239 COPY_VAR_ptr(respip_tags);
6240 */
6241 COPY_VAR_ptr(respip_actions);
6242 COPY_VAR_ptr(respip_data);
6243 /* Not copied because the length and items could then not match.
6244 * also the respip module keeps a pointer to the array in its state.
6245 tagname, num_tags
6246 */
6247 COPY_VAR_int(remote_control_enable);
6248 /* The first is used to walk through the list but last is
6249 * only used during config read. */
6250 COPY_VAR_ptr(control_ifs.first);
6251 COPY_VAR_ptr(control_ifs.last);
6252 COPY_VAR_int(control_use_cert);
6253 COPY_VAR_int(control_port);
6254 COPY_VAR_ptr(server_key_file);
6255 COPY_VAR_ptr(server_cert_file);
6256 COPY_VAR_ptr(control_key_file);
6257 COPY_VAR_ptr(control_cert_file);
6258 COPY_VAR_ptr(python_script);
6259 COPY_VAR_ptr(dynlib_file);
6260 COPY_VAR_int(use_systemd);
6261 COPY_VAR_int(do_daemonize);
6262 COPY_VAR_int(minimal_responses);
6263 COPY_VAR_int(rrset_roundrobin);
6264 COPY_VAR_int(unknown_server_time_limit);
6265 COPY_VAR_int(discard_timeout);
6266 COPY_VAR_int(wait_limit);
6267 COPY_VAR_int(wait_limit_cookie);
6268 COPY_VAR_ptr(wait_limit_netblock);
6269 COPY_VAR_ptr(wait_limit_cookie_netblock);
6270 COPY_VAR_size_t(max_udp_size);
6271 COPY_VAR_ptr(dns64_prefix);
6272 COPY_VAR_int(dns64_synthall);
6273 COPY_VAR_ptr(dns64_ignore_aaaa);
6274 COPY_VAR_ptr(nat64_prefix);
6275 COPY_VAR_int(dnstap);
6276 COPY_VAR_int(dnstap_bidirectional);
6277 COPY_VAR_ptr(dnstap_socket_path);
6278 COPY_VAR_ptr(dnstap_ip);
6279 COPY_VAR_int(dnstap_tls);
6280 COPY_VAR_ptr(dnstap_tls_server_name);
6281 COPY_VAR_ptr(dnstap_tls_cert_bundle);
6282 COPY_VAR_ptr(dnstap_tls_client_key_file);
6283 COPY_VAR_ptr(dnstap_tls_client_cert_file);
6284 COPY_VAR_int(dnstap_send_identity);
6285 COPY_VAR_int(dnstap_send_version);
6286 COPY_VAR_ptr(dnstap_identity);
6287 COPY_VAR_ptr(dnstap_version);
6288 COPY_VAR_int(dnstap_sample_rate);
6289 COPY_VAR_int(dnstap_log_resolver_query_messages);
6290 COPY_VAR_int(dnstap_log_resolver_response_messages);
6291 COPY_VAR_int(dnstap_log_client_query_messages);
6292 COPY_VAR_int(dnstap_log_client_response_messages);
6293 COPY_VAR_int(dnstap_log_forwarder_query_messages);
6294 COPY_VAR_int(dnstap_log_forwarder_response_messages);
6295 COPY_VAR_int(disable_dnssec_lame_check);
6296 COPY_VAR_int(ip_ratelimit);
6297 COPY_VAR_int(ip_ratelimit_cookie);
6298 COPY_VAR_size_t(ip_ratelimit_slabs);
6299 COPY_VAR_size_t(ip_ratelimit_size);
6300 COPY_VAR_int(ip_ratelimit_factor);
6301 COPY_VAR_int(ip_ratelimit_backoff);
6302 COPY_VAR_int(ratelimit);
6303 COPY_VAR_size_t(ratelimit_slabs);
6304 COPY_VAR_size_t(ratelimit_size);
6305 COPY_VAR_ptr(ratelimit_for_domain);
6306 COPY_VAR_ptr(ratelimit_below_domain);
6307 COPY_VAR_int(ratelimit_factor);
6308 COPY_VAR_int(ratelimit_backoff);
6309 COPY_VAR_int(outbound_msg_retry);
6310 COPY_VAR_int(max_sent_count);
6311 COPY_VAR_int(max_query_restarts);
6312 COPY_VAR_int(qname_minimisation);
6313 COPY_VAR_int(qname_minimisation_strict);
6314 COPY_VAR_int(shm_enable);
6315 COPY_VAR_int(shm_key);
6316 COPY_VAR_ptr(edns_client_strings);
6317 COPY_VAR_uint16_t(edns_client_string_opcode);
6318 COPY_VAR_int(dnscrypt);
6319 COPY_VAR_int(dnscrypt_port);
6320 COPY_VAR_ptr(dnscrypt_provider);
6321 COPY_VAR_ptr(dnscrypt_secret_key);
6322 COPY_VAR_ptr(dnscrypt_provider_cert);
6323 COPY_VAR_ptr(dnscrypt_provider_cert_rotated);
6324 COPY_VAR_size_t(dnscrypt_shared_secret_cache_size);
6325 COPY_VAR_size_t(dnscrypt_shared_secret_cache_slabs);
6326 COPY_VAR_size_t(dnscrypt_nonce_cache_size);
6327 COPY_VAR_size_t(dnscrypt_nonce_cache_slabs);
6328 COPY_VAR_int(pad_responses);
6329 COPY_VAR_size_t(pad_responses_block_size);
6330 COPY_VAR_int(pad_queries);
6331 COPY_VAR_size_t(pad_queries_block_size);
6332 #ifdef USE_IPSECMOD
6333 COPY_VAR_int(ipsecmod_enabled);
6334 COPY_VAR_ptr(ipsecmod_whitelist);
6335 COPY_VAR_ptr(ipsecmod_hook);
6336 COPY_VAR_int(ipsecmod_ignore_bogus);
6337 COPY_VAR_int(ipsecmod_max_ttl);
6338 COPY_VAR_int(ipsecmod_strict);
6339 #endif
6340 #ifdef USE_CACHEDB
6341 COPY_VAR_ptr(cachedb_backend);
6342 COPY_VAR_ptr(cachedb_secret);
6343 COPY_VAR_int(cachedb_no_store);
6344 COPY_VAR_int(cachedb_check_when_serve_expired);
6345 #ifdef USE_REDIS
6346 COPY_VAR_ptr(redis_server_host);
6347 COPY_VAR_ptr(redis_replica_server_host);
6348 COPY_VAR_int(redis_server_port);
6349 COPY_VAR_int(redis_replica_server_port);
6350 COPY_VAR_ptr(redis_server_path);
6351 COPY_VAR_ptr(redis_replica_server_path);
6352 COPY_VAR_ptr(redis_server_password);
6353 COPY_VAR_ptr(redis_replica_server_password);
6354 COPY_VAR_int(redis_timeout);
6355 COPY_VAR_int(redis_replica_timeout);
6356 COPY_VAR_int(redis_command_timeout);
6357 COPY_VAR_int(redis_replica_command_timeout);
6358 COPY_VAR_int(redis_connect_timeout);
6359 COPY_VAR_int(redis_replica_connect_timeout);
6360 COPY_VAR_int(redis_expire_records);
6361 COPY_VAR_int(redis_logical_db);
6362 COPY_VAR_int(redis_replica_logical_db);
6363 #endif
6364 #endif
6365 COPY_VAR_int(do_answer_cookie);
6366 /* Not copied because the length and content could then not match.
6367 cookie_secret[40], cookie_secret_len
6368 */
6369 #ifdef USE_IPSET
6370 COPY_VAR_ptr(ipset_name_v4);
6371 COPY_VAR_ptr(ipset_name_v6);
6372 #endif
6373 COPY_VAR_int(ede);
6374 COPY_VAR_int(iter_scrub_ns);
6375 COPY_VAR_int(iter_scrub_cname);
6376 COPY_VAR_int(iter_scrub_rrsig);
6377 COPY_VAR_int(max_global_quota);
6378 COPY_VAR_int(iter_scrub_promiscuous);
6379
6380 #undef COPY_VAR_int
6381 #undef COPY_VAR_ptr
6382 #undef COPY_VAR_unsigned_int
6383 #undef COPY_VAR_size_t
6384 #undef COPY_VAR_uint8_t
6385 #undef COPY_VAR_uint16_t
6386 #undef COPY_VAR_uint32_t
6387 #undef COPY_VAR_int32_t
6388 }
6389 #endif /* ATOMIC_POINTER_LOCK_FREE && HAVE_LINK_ATOMIC_STORE */
6390
6391 /** fast reload thread, adjust the cache sizes */
6392 static void
fr_adjust_cache(struct module_env * env,struct config_file * oldcfg)6393 fr_adjust_cache(struct module_env* env, struct config_file* oldcfg)
6394 {
6395 if(env->cfg->msg_cache_size != oldcfg->msg_cache_size)
6396 slabhash_adjust_size(env->msg_cache, env->cfg->msg_cache_size);
6397 if(env->cfg->rrset_cache_size != oldcfg->rrset_cache_size)
6398 slabhash_adjust_size(&env->rrset_cache->table,
6399 env->cfg->rrset_cache_size);
6400 if(env->key_cache &&
6401 env->cfg->key_cache_size != oldcfg->key_cache_size)
6402 slabhash_adjust_size(env->key_cache->slab,
6403 env->cfg->key_cache_size);
6404 if(env->cfg->infra_cache_numhosts != oldcfg->infra_cache_numhosts) {
6405 size_t inframem = env->cfg->infra_cache_numhosts *
6406 (sizeof(struct infra_key) + sizeof(struct infra_data)
6407 + INFRA_BYTES_NAME);
6408 slabhash_adjust_size(env->infra_cache->hosts, inframem);
6409 }
6410 if(env->cfg->ratelimit_size != oldcfg->ratelimit_size) {
6411 slabhash_adjust_size(env->infra_cache->domain_rates,
6412 env->cfg->ratelimit_size);
6413 slabhash_adjust_size(env->infra_cache->client_ip_rates,
6414 env->cfg->ratelimit_size);
6415 }
6416 if(env->neg_cache &&
6417 env->cfg->neg_cache_size != oldcfg->neg_cache_size) {
6418 val_neg_adjust_size(env->neg_cache, env->cfg->neg_cache_size);
6419 }
6420 }
6421
6422 /** fast reload thread, adjust the iterator env */
6423 static void
fr_adjust_iter_env(struct module_env * env,struct fast_reload_construct * ct)6424 fr_adjust_iter_env(struct module_env* env, struct fast_reload_construct* ct)
6425 {
6426 int m;
6427 struct iter_env* iter_env = NULL;
6428 /* There is no comparison here to see if no options changed and thus
6429 * no swap is needed, the trees with addresses and domains can be
6430 * large and that would take too long. Instead the trees are
6431 * swapped in. */
6432
6433 /* Because the iterator env is not locked, the update cannot happen
6434 * when fr nopause is used. Without it the fast reload pauses the
6435 * other threads, so they are not currently using the structure. */
6436 m = modstack_find(env->modstack, "iterator");
6437 if(m != -1) iter_env = (struct iter_env*)env->modinfo[m];
6438 if(iter_env) {
6439 /* Swap the data so that the delete happens afterwards. */
6440 int* oldtargetfetchpolicy = iter_env->target_fetch_policy;
6441 int oldmaxdependencydepth = iter_env->max_dependency_depth;
6442 struct iter_donotq* olddonotq = iter_env->donotq;
6443 struct iter_priv* oldpriv = iter_env->priv;
6444 struct rbtree_type* oldcapswhite = iter_env->caps_white;
6445 struct iter_nat64 oldnat64 = iter_env->nat64;
6446
6447 iter_env->target_fetch_policy = ct->target_fetch_policy;
6448 iter_env->max_dependency_depth = ct->max_dependency_depth;
6449 iter_env->donotq = ct->donotq;
6450 iter_env->priv = ct->priv;
6451 iter_env->caps_white = ct->caps_white;
6452 iter_env->nat64 = ct->nat64;
6453 iter_env->outbound_msg_retry = env->cfg->outbound_msg_retry;
6454 iter_env->max_sent_count = env->cfg->max_sent_count;
6455 iter_env->max_query_restarts = env->cfg->max_query_restarts;
6456
6457 ct->target_fetch_policy = oldtargetfetchpolicy;
6458 ct->max_dependency_depth = oldmaxdependencydepth;
6459 ct->donotq = olddonotq;
6460 ct->priv = oldpriv;
6461 ct->caps_white = oldcapswhite;
6462 ct->nat64 = oldnat64;
6463 }
6464 }
6465
6466 /** fast reload thread, adjust the validator env */
6467 static void
fr_adjust_val_env(struct module_env * env,struct fast_reload_construct * ct,struct config_file * oldcfg)6468 fr_adjust_val_env(struct module_env* env, struct fast_reload_construct* ct,
6469 struct config_file* oldcfg)
6470 {
6471 int m;
6472 struct val_env* val_env = NULL;
6473 if(env->cfg->bogus_ttl == oldcfg->bogus_ttl &&
6474 env->cfg->val_date_override == oldcfg->val_date_override &&
6475 env->cfg->val_sig_skew_min == oldcfg->val_sig_skew_min &&
6476 env->cfg->val_sig_skew_max == oldcfg->val_sig_skew_max &&
6477 env->cfg->val_max_restart == oldcfg->val_max_restart &&
6478 strcmp(env->cfg->val_nsec3_key_iterations,
6479 oldcfg->val_nsec3_key_iterations) == 0)
6480 return; /* no changes */
6481
6482 /* Because the validator env is not locked, the update cannot happen
6483 * when fr nopause is used. Without it the fast reload pauses the
6484 * other threads, so they are not currently using the structure. */
6485 m = modstack_find(env->modstack, "validator");
6486 if(m != -1) val_env = (struct val_env*)env->modinfo[m];
6487 if(val_env) {
6488 /* Swap the arrays so that the delete happens afterwards. */
6489 size_t* oldkeysize = val_env->nsec3_keysize;
6490 size_t* oldmaxiter = val_env->nsec3_maxiter;
6491 val_env->nsec3_keysize = NULL;
6492 val_env->nsec3_maxiter = NULL;
6493 val_env_apply_cfg(val_env, env->cfg, ct->nsec3_keysize,
6494 ct->nsec3_maxiter, ct->nsec3_keyiter_count);
6495 ct->nsec3_keysize = oldkeysize;
6496 ct->nsec3_maxiter = oldmaxiter;
6497 if(env->neg_cache) {
6498 lock_basic_lock(&env->neg_cache->lock);
6499 env->neg_cache->nsec3_max_iter = val_env->
6500 nsec3_maxiter[val_env->nsec3_keyiter_count-1];
6501 lock_basic_unlock(&env->neg_cache->lock);
6502 }
6503 }
6504 }
6505
6506 /** fast reload thread, adjust the infra cache parameters */
6507 static void
fr_adjust_infra(struct module_env * env,struct fast_reload_construct * ct)6508 fr_adjust_infra(struct module_env* env, struct fast_reload_construct* ct)
6509 {
6510 struct infra_cache* infra = env->infra_cache;
6511 struct config_file* cfg = env->cfg;
6512 struct rbtree_type oldwaitlim = infra->wait_limits_netblock;
6513 struct rbtree_type oldwaitlimcookie =
6514 infra->wait_limits_cookie_netblock;
6515 struct rbtree_type olddomainlim = infra->domain_limits;
6516
6517 /* The size of the infra cache and ip rates is changed
6518 * in fr_adjust_cache. */
6519 infra->host_ttl = cfg->host_ttl;
6520 infra->infra_keep_probing = cfg->infra_keep_probing;
6521 infra_dp_ratelimit = cfg->ratelimit;
6522 infra_ip_ratelimit = cfg->ip_ratelimit;
6523 infra_ip_ratelimit_cookie = cfg->ip_ratelimit_cookie;
6524 infra->wait_limits_netblock = ct->wait_limits_netblock;
6525 infra->wait_limits_cookie_netblock = ct->wait_limits_cookie_netblock;
6526 infra->domain_limits = ct->domain_limits;
6527
6528 ct->wait_limits_netblock = oldwaitlim;
6529 ct->wait_limits_cookie_netblock = oldwaitlimcookie;
6530 ct->domain_limits = olddomainlim;
6531 }
6532
6533 /** fast reload thread, reload config with putting the new config items
6534 * in place and swapping out the old items. */
6535 static int
fr_reload_config(struct fast_reload_thread * fr,struct config_file * newcfg,struct fast_reload_construct * ct)6536 fr_reload_config(struct fast_reload_thread* fr, struct config_file* newcfg,
6537 struct fast_reload_construct* ct)
6538 {
6539 struct daemon* daemon = fr->worker->daemon;
6540 struct module_env* env = daemon->env;
6541
6542 /* These are constructed in the fr_construct_from_config routine. */
6543 log_assert(ct->oldcfg);
6544 log_assert(ct->fwds);
6545 log_assert(ct->hints);
6546
6547 /* Grab big locks to satisfy lock conditions. */
6548 lock_rw_wrlock(&ct->views->lock);
6549 lock_rw_wrlock(&env->views->lock);
6550 lock_rw_wrlock(&ct->respip_set->lock);
6551 lock_rw_wrlock(&env->respip_set->lock);
6552 lock_rw_wrlock(&ct->local_zones->lock);
6553 lock_rw_wrlock(&daemon->local_zones->lock);
6554 lock_rw_wrlock(&ct->auth_zones->rpz_lock);
6555 lock_rw_wrlock(&env->auth_zones->rpz_lock);
6556 lock_rw_wrlock(&ct->auth_zones->lock);
6557 lock_rw_wrlock(&env->auth_zones->lock);
6558 lock_rw_wrlock(&ct->fwds->lock);
6559 lock_rw_wrlock(&env->fwds->lock);
6560 lock_rw_wrlock(&ct->hints->lock);
6561 lock_rw_wrlock(&env->hints->lock);
6562 if(ct->anchors) {
6563 lock_basic_lock(&ct->anchors->lock);
6564 lock_basic_lock(&env->anchors->lock);
6565 }
6566
6567 #if defined(ATOMIC_POINTER_LOCK_FREE) && defined(HAVE_LINK_ATOMIC_STORE)
6568 if(fr->fr_nopause) {
6569 fr_atomic_copy_cfg(ct->oldcfg, env->cfg, newcfg);
6570 } else {
6571 #endif
6572 /* Store old config elements. */
6573 *ct->oldcfg = *env->cfg;
6574 /* Insert new config elements. */
6575 *env->cfg = *newcfg;
6576 #if defined(ATOMIC_POINTER_LOCK_FREE) && defined(HAVE_LINK_ATOMIC_STORE)
6577 }
6578 #endif
6579
6580 if(env->cfg->log_identity || ct->oldcfg->log_identity) {
6581 /* pick up new log_identity string to use for log output. */
6582 log_ident_set_or_default(env->cfg->log_identity);
6583 }
6584 /* the newcfg elements are in env->cfg, so should not be freed here. */
6585 #if defined(ATOMIC_POINTER_LOCK_FREE) && defined(HAVE_LINK_ATOMIC_STORE)
6586 /* if used, the routine that copies the config has zeroed items. */
6587 if(!fr->fr_nopause)
6588 #endif
6589 memset(newcfg, 0, sizeof(*newcfg));
6590
6591 /* Quickly swap the tree roots themselves with the already allocated
6592 * elements. This is a quick swap operation on the pointer.
6593 * The other threads are stopped and locks are held, so that a
6594 * consistent view of the configuration, before, and after, exists
6595 * towards the state machine for query resolution. */
6596 forwards_swap_tree(env->fwds, ct->fwds);
6597 hints_swap_tree(env->hints, ct->hints);
6598 views_swap_tree(env->views, ct->views);
6599 acl_list_swap_tree(daemon->acl, ct->acl);
6600 acl_list_swap_tree(daemon->acl_interface, ct->acl_interface);
6601 tcl_list_swap_tree(daemon->tcl, ct->tcl);
6602 local_zones_swap_tree(daemon->local_zones, ct->local_zones);
6603 respip_set_swap_tree(env->respip_set, ct->respip_set);
6604 daemon->use_response_ip = ct->use_response_ip;
6605 daemon->use_rpz = ct->use_rpz;
6606 auth_zones_swap(env->auth_zones, ct->auth_zones);
6607 edns_strings_swap_tree(env->edns_strings, ct->edns_strings);
6608 anchors_swap_tree(env->anchors, ct->anchors);
6609 #ifdef USE_CACHEDB
6610 daemon->env->cachedb_enabled = cachedb_is_enabled(&daemon->mods,
6611 daemon->env);
6612 #endif
6613 if(fr->sslctxs_changed) {
6614 sslctxs_swap(daemon, ct);
6615 }
6616 #ifdef USE_DNSTAP
6617 if(env->cfg->dnstap) {
6618 if(!fr->fr_nopause)
6619 dt_apply_cfg(daemon->dtenv, env->cfg);
6620 else dt_apply_logcfg(daemon->dtenv, env->cfg);
6621 }
6622 #endif
6623 fr_adjust_cache(env, ct->oldcfg);
6624 if(!fr->fr_nopause) {
6625 fr_adjust_iter_env(env, ct);
6626 fr_adjust_val_env(env, ct, ct->oldcfg);
6627 fr_adjust_infra(env, ct);
6628 }
6629
6630 /* Set globals with new config. */
6631 config_apply(env->cfg);
6632
6633 lock_rw_unlock(&ct->views->lock);
6634 lock_rw_unlock(&env->views->lock);
6635 lock_rw_unlock(&ct->respip_set->lock);
6636 lock_rw_unlock(&env->respip_set->lock);
6637 lock_rw_unlock(&ct->local_zones->lock);
6638 lock_rw_unlock(&daemon->local_zones->lock);
6639 lock_rw_unlock(&ct->auth_zones->lock);
6640 lock_rw_unlock(&env->auth_zones->lock);
6641 lock_rw_unlock(&ct->auth_zones->rpz_lock);
6642 lock_rw_unlock(&env->auth_zones->rpz_lock);
6643 lock_rw_unlock(&ct->fwds->lock);
6644 lock_rw_unlock(&env->fwds->lock);
6645 lock_rw_unlock(&ct->hints->lock);
6646 lock_rw_unlock(&env->hints->lock);
6647 if(ct->anchors) {
6648 lock_basic_unlock(&ct->anchors->lock);
6649 lock_basic_unlock(&env->anchors->lock);
6650 }
6651
6652 return 1;
6653 }
6654
6655 /** fast reload, poll for ack incoming. */
6656 static void
fr_poll_for_ack(struct fast_reload_thread * fr)6657 fr_poll_for_ack(struct fast_reload_thread* fr)
6658 {
6659 int loopexit = 0, bcount = 0;
6660 uint32_t cmd;
6661 ssize_t ret;
6662
6663 if(fr->need_to_quit)
6664 return;
6665 /* Is there data? */
6666 if(!sock_poll_timeout(fr->commpair[1], -1, 1, 0, NULL)) {
6667 log_err("fr_poll_for_ack: poll failed");
6668 return;
6669 }
6670
6671 /* Read the data */
6672 while(1) {
6673 if(++loopexit > IPC_LOOP_MAX) {
6674 log_err("fr_poll_for_ack: recv loops %s",
6675 sock_strerror(errno));
6676 return;
6677 }
6678 ret = recv(fr->commpair[1], ((char*)&cmd)+bcount,
6679 sizeof(cmd)-bcount, 0);
6680 if(ret == -1) {
6681 if(
6682 #ifndef USE_WINSOCK
6683 errno == EINTR || errno == EAGAIN
6684 # ifdef EWOULDBLOCK
6685 || errno == EWOULDBLOCK
6686 # endif
6687 #else
6688 WSAGetLastError() == WSAEINTR ||
6689 WSAGetLastError() == WSAEINPROGRESS ||
6690 WSAGetLastError() == WSAEWOULDBLOCK
6691 #endif
6692 )
6693 continue; /* Try again. */
6694 log_err("fr_poll_for_ack: recv: %s",
6695 sock_strerror(errno));
6696 return;
6697 } else if(ret+(ssize_t)bcount != sizeof(cmd)) {
6698 bcount += ret;
6699 if((size_t)bcount < sizeof(cmd))
6700 continue;
6701 }
6702 break;
6703 }
6704 if(cmd == fast_reload_notification_exit) {
6705 fr->need_to_quit = 1;
6706 verbose(VERB_ALGO, "fast reload wait for ack: "
6707 "exit notification received");
6708 return;
6709 }
6710 if(cmd != fast_reload_notification_reload_ack) {
6711 verbose(VERB_ALGO, "fast reload wait for ack: "
6712 "wrong notification %d", (int)cmd);
6713 }
6714 }
6715
6716 /** fast reload thread, reload ipc communication to stop and start threads. */
6717 static int
fr_reload_ipc(struct fast_reload_thread * fr,struct config_file * newcfg,struct fast_reload_construct * ct)6718 fr_reload_ipc(struct fast_reload_thread* fr, struct config_file* newcfg,
6719 struct fast_reload_construct* ct)
6720 {
6721 int result = 1;
6722 if(!fr->fr_nopause) {
6723 fr_send_notification(fr, fast_reload_notification_reload_stop);
6724 fr_poll_for_ack(fr);
6725 }
6726 if(!fr_reload_config(fr, newcfg, ct)) {
6727 result = 0;
6728 }
6729 if(!fr->fr_nopause) {
6730 fr_send_notification(fr, fast_reload_notification_reload_start);
6731 fr_poll_for_ack(fr);
6732 }
6733 return result;
6734 }
6735
6736 /** fast reload thread, load config */
6737 static int
fr_load_config(struct fast_reload_thread * fr,struct timeval * time_read,struct timeval * time_construct,struct timeval * time_reload)6738 fr_load_config(struct fast_reload_thread* fr, struct timeval* time_read,
6739 struct timeval* time_construct, struct timeval* time_reload)
6740 {
6741 struct fast_reload_construct ct;
6742 struct config_file* newcfg = NULL;
6743 memset(&ct, 0, sizeof(ct));
6744
6745 /* Read file. */
6746 if(!fr_read_config(fr, &newcfg))
6747 return 0;
6748 if(gettimeofday(time_read, NULL) < 0)
6749 log_err("gettimeofday: %s", strerror(errno));
6750 if(fr_poll_for_quit(fr)) {
6751 config_delete(newcfg);
6752 return 1;
6753 }
6754
6755 /* Check if the config can be loaded */
6756 if(!fr_check_tag_defines(fr, newcfg)) {
6757 config_delete(newcfg);
6758 return 0;
6759 }
6760 if(!fr_check_compat_cfg(fr, newcfg)) {
6761 config_delete(newcfg);
6762 return 0;
6763 }
6764 if(!fr_check_nopause_compat_cfg(fr, newcfg)) {
6765 config_delete(newcfg);
6766 return 0;
6767 }
6768 if(fr_poll_for_quit(fr)) {
6769 config_delete(newcfg);
6770 return 1;
6771 }
6772
6773 /* Construct items. */
6774 if(!fr_construct_from_config(fr, newcfg, &ct)) {
6775 config_delete(newcfg);
6776 if(!fr_output_printf(fr, "Could not construct from the "
6777 "config, check for errors with unbound-checkconf, or "
6778 "out of memory. The parse errors are printed in "
6779 "the log.\n"))
6780 return 0;
6781 fr_send_notification(fr, fast_reload_notification_printout);
6782 return 0;
6783 }
6784 if(gettimeofday(time_construct, NULL) < 0)
6785 log_err("gettimeofday: %s", strerror(errno));
6786 if(fr_poll_for_quit(fr)) {
6787 config_delete(newcfg);
6788 fr_construct_clear(&ct);
6789 return 1;
6790 }
6791
6792 /* Reload server. */
6793 if(!fr_reload_ipc(fr, newcfg, &ct)) {
6794 config_delete(newcfg);
6795 fr_construct_clear(&ct);
6796 if(!fr_output_printf(fr, "error: reload failed\n"))
6797 return 0;
6798 fr_send_notification(fr, fast_reload_notification_printout);
6799 return 0;
6800 }
6801 if(gettimeofday(time_reload, NULL) < 0)
6802 log_err("gettimeofday: %s", strerror(errno));
6803
6804 if(fr_poll_for_quit(fr)) {
6805 config_delete(newcfg);
6806 fr_construct_clear(&ct);
6807 return 1;
6808 }
6809 if(fr->fr_nopause) {
6810 /* Poll every thread, with a no-work poll item over the
6811 * command pipe. This makes the worker thread surely move
6812 * to deal with that event, and thus the thread is no longer
6813 * holding, eg. a string item from the old config struct.
6814 * And then the old config struct can safely be deleted.
6815 * Only needed when nopause is used, because without that
6816 * the worker threads are already waiting on a command pipe
6817 * item. This nopause command pipe item does not take work,
6818 * it returns immediately, so it does not delay the workers.
6819 * They can be polled one at a time. But its processing causes
6820 * the worker to have released data items from old config.
6821 * This also makes sure the threads are not holding locks on
6822 * individual items in the local_zones, views, respip_set. */
6823 fr_send_notification(fr,
6824 fast_reload_notification_reload_nopause_poll);
6825 fr_poll_for_ack(fr);
6826 }
6827
6828 /* Delete old. */
6829 config_delete(newcfg);
6830 fr_construct_clear(&ct);
6831 return 1;
6832 }
6833
6834 /** fast reload thread. the thread main function */
fast_reload_thread_main(void * arg)6835 static void* fast_reload_thread_main(void* arg)
6836 {
6837 struct fast_reload_thread* fast_reload_thread = (struct fast_reload_thread*)arg;
6838 struct timeval time_start, time_read, time_construct, time_reload,
6839 time_end;
6840 const char name[16] = "unbound/freload"; /* seems to be the safest size
6841 between different OSes */
6842
6843 #if defined(HAVE_GETTID) && !defined(THREADS_DISABLED)
6844 fast_reload_thread->thread_tid = gettid();
6845 if(fast_reload_thread->thread_tid_log)
6846 log_thread_set(&fast_reload_thread->thread_tid);
6847 else
6848 #endif
6849 log_thread_set(&fast_reload_thread->threadnum);
6850
6851 ub_thread_setname(fast_reload_thread->tid, name);
6852 (void)name; /* When setname is not defined, ignore the name variable. */
6853
6854 verbose(VERB_ALGO, "start fast reload thread");
6855 if(fast_reload_thread->fr_verb >= 1) {
6856 fr_init_time(&time_start, &time_read, &time_construct,
6857 &time_reload, &time_end);
6858 if(fr_poll_for_quit(fast_reload_thread))
6859 goto done;
6860 }
6861
6862 /* print output to the client */
6863 if(fast_reload_thread->fr_verb >= 1) {
6864 if(!fr_output_printf(fast_reload_thread, "thread started\n"))
6865 goto done_error;
6866 fr_send_notification(fast_reload_thread,
6867 fast_reload_notification_printout);
6868 if(fr_poll_for_quit(fast_reload_thread))
6869 goto done;
6870 }
6871
6872 if(!fr_load_config(fast_reload_thread, &time_read, &time_construct,
6873 &time_reload))
6874 goto done_error;
6875 if(fr_poll_for_quit(fast_reload_thread))
6876 goto done;
6877
6878 if(fast_reload_thread->fr_verb >= 1) {
6879 if(!fr_finish_time(fast_reload_thread, &time_start, &time_read,
6880 &time_construct, &time_reload, &time_end))
6881 goto done_error;
6882 if(fr_poll_for_quit(fast_reload_thread))
6883 goto done;
6884 }
6885
6886 if(!fr_output_printf(fast_reload_thread, "ok\n"))
6887 goto done_error;
6888 fr_send_notification(fast_reload_thread,
6889 fast_reload_notification_printout);
6890 verbose(VERB_ALGO, "stop fast reload thread");
6891 /* If this is not an exit due to quit earlier, send regular done. */
6892 if(!fast_reload_thread->need_to_quit)
6893 fr_send_notification(fast_reload_thread,
6894 fast_reload_notification_done);
6895 /* If during the fast_reload_notification_done send,
6896 * fast_reload_notification_exit was received, ack it. If the
6897 * thread is exiting due to quit received earlier, also ack it.*/
6898 done:
6899 if(fast_reload_thread->need_to_quit)
6900 fr_send_notification(fast_reload_thread,
6901 fast_reload_notification_exited);
6902 return NULL;
6903 done_error:
6904 verbose(VERB_ALGO, "stop fast reload thread with done_error");
6905 fr_send_notification(fast_reload_thread,
6906 fast_reload_notification_done_error);
6907 return NULL;
6908 }
6909 #endif /* !THREADS_DISABLED */
6910
6911 /** create a socketpair for bidirectional communication, false on failure */
6912 static int
create_socketpair(int * pair,struct ub_randstate * rand)6913 create_socketpair(int* pair, struct ub_randstate* rand)
6914 {
6915 #ifndef USE_WINSOCK
6916 if(socketpair(AF_UNIX, SOCK_STREAM, 0, pair) == -1) {
6917 log_err("socketpair: %s", strerror(errno));
6918 return 0;
6919 }
6920 (void)rand;
6921 #else
6922 struct sockaddr_in addr, baddr, accaddr, connaddr;
6923 socklen_t baddrlen, accaddrlen, connaddrlen;
6924 uint8_t localhost[] = {127, 0, 0, 1};
6925 uint8_t nonce[16], recvnonce[16];
6926 size_t i;
6927 int lst, pollin_event, bcount, loopcount;
6928 int connect_poll_timeout = 200; /* msec to wait for connection */
6929 ssize_t ret;
6930 pair[0] = -1;
6931 pair[1] = -1;
6932 for(i=0; i<sizeof(nonce); i++) {
6933 nonce[i] = ub_random_max(rand, 256);
6934 }
6935 lst = socket(AF_INET, SOCK_STREAM, 0);
6936 if(lst == -1) {
6937 log_err("create_socketpair: socket: %s", sock_strerror(errno));
6938 return 0;
6939 }
6940 memset(&addr, 0, sizeof(addr));
6941 addr.sin_family = AF_INET;
6942 addr.sin_port = 0;
6943 memcpy(&addr.sin_addr, localhost, 4);
6944 if(bind(lst, (struct sockaddr*)&addr, (socklen_t)sizeof(addr))
6945 == -1) {
6946 log_err("create socketpair: bind: %s", sock_strerror(errno));
6947 sock_close(lst);
6948 return 0;
6949 }
6950 if(listen(lst, 12) == -1) {
6951 log_err("create socketpair: listen: %s", sock_strerror(errno));
6952 sock_close(lst);
6953 return 0;
6954 }
6955
6956 pair[1] = socket(AF_INET, SOCK_STREAM, 0);
6957 if(pair[1] == -1) {
6958 log_err("create socketpair: socket: %s", sock_strerror(errno));
6959 sock_close(lst);
6960 return 0;
6961 }
6962 baddrlen = (socklen_t)sizeof(baddr);
6963 if(getsockname(lst, (struct sockaddr*)&baddr, &baddrlen) == -1) {
6964 log_err("create socketpair: getsockname: %s",
6965 sock_strerror(errno));
6966 sock_close(lst);
6967 sock_close(pair[1]);
6968 pair[1] = -1;
6969 return 0;
6970 }
6971 if(baddrlen > (socklen_t)sizeof(baddr)) {
6972 log_err("create socketpair: getsockname returned addr too big");
6973 sock_close(lst);
6974 sock_close(pair[1]);
6975 pair[1] = -1;
6976 return 0;
6977 }
6978 /* the socket is blocking */
6979 if(connect(pair[1], (struct sockaddr*)&baddr, baddrlen) == -1) {
6980 log_err("create socketpair: connect: %s",
6981 sock_strerror(errno));
6982 sock_close(lst);
6983 sock_close(pair[1]);
6984 pair[1] = -1;
6985 return 0;
6986 }
6987 if(!sock_poll_timeout(lst, connect_poll_timeout, 1, 0, &pollin_event)) {
6988 log_err("create socketpair: poll for accept failed: %s",
6989 sock_strerror(errno));
6990 sock_close(lst);
6991 sock_close(pair[1]);
6992 pair[1] = -1;
6993 return 0;
6994 }
6995 if(!pollin_event) {
6996 log_err("create socketpair: poll timeout for accept");
6997 sock_close(lst);
6998 sock_close(pair[1]);
6999 pair[1] = -1;
7000 return 0;
7001 }
7002 accaddrlen = (socklen_t)sizeof(accaddr);
7003 pair[0] = accept(lst, (struct sockaddr*)&accaddr, &accaddrlen);
7004 if(pair[0] == -1) {
7005 log_err("create socketpair: accept: %s", sock_strerror(errno));
7006 sock_close(lst);
7007 sock_close(pair[1]);
7008 pair[1] = -1;
7009 return 0;
7010 }
7011 if(accaddrlen > (socklen_t)sizeof(accaddr)) {
7012 log_err("create socketpair: accept returned addr too big");
7013 sock_close(lst);
7014 sock_close(pair[0]);
7015 sock_close(pair[1]);
7016 pair[0] = -1;
7017 pair[1] = -1;
7018 return 0;
7019 }
7020 if(accaddr.sin_family != AF_INET ||
7021 memcmp(localhost, &accaddr.sin_addr, 4) != 0) {
7022 log_err("create socketpair: accept from wrong address");
7023 sock_close(lst);
7024 sock_close(pair[0]);
7025 sock_close(pair[1]);
7026 pair[0] = -1;
7027 pair[1] = -1;
7028 return 0;
7029 }
7030 connaddrlen = (socklen_t)sizeof(connaddr);
7031 if(getsockname(pair[1], (struct sockaddr*)&connaddr, &connaddrlen)
7032 == -1) {
7033 log_err("create socketpair: getsockname connectedaddr: %s",
7034 sock_strerror(errno));
7035 sock_close(lst);
7036 sock_close(pair[0]);
7037 sock_close(pair[1]);
7038 pair[0] = -1;
7039 pair[1] = -1;
7040 return 0;
7041 }
7042 if(connaddrlen > (socklen_t)sizeof(connaddr)) {
7043 log_err("create socketpair: getsockname connectedaddr returned addr too big");
7044 sock_close(lst);
7045 sock_close(pair[0]);
7046 sock_close(pair[1]);
7047 pair[0] = -1;
7048 pair[1] = -1;
7049 return 0;
7050 }
7051 if(connaddr.sin_family != AF_INET ||
7052 memcmp(localhost, &connaddr.sin_addr, 4) != 0) {
7053 log_err("create socketpair: getsockname connectedaddr returned wrong address");
7054 sock_close(lst);
7055 sock_close(pair[0]);
7056 sock_close(pair[1]);
7057 pair[0] = -1;
7058 pair[1] = -1;
7059 return 0;
7060 }
7061 if(accaddr.sin_port != connaddr.sin_port) {
7062 log_err("create socketpair: accept from wrong port");
7063 sock_close(lst);
7064 sock_close(pair[0]);
7065 sock_close(pair[1]);
7066 pair[0] = -1;
7067 pair[1] = -1;
7068 return 0;
7069 }
7070 sock_close(lst);
7071
7072 loopcount = 0;
7073 bcount = 0;
7074 while(1) {
7075 if(++loopcount > IPC_LOOP_MAX) {
7076 log_err("create socketpair: send failed due to loop");
7077 sock_close(pair[0]);
7078 sock_close(pair[1]);
7079 pair[0] = -1;
7080 pair[1] = -1;
7081 return 0;
7082 }
7083 ret = send(pair[1], (void*)(nonce+bcount),
7084 sizeof(nonce)-bcount, 0);
7085 if(ret == -1) {
7086 if(
7087 #ifndef USE_WINSOCK
7088 errno == EINTR || errno == EAGAIN
7089 # ifdef EWOULDBLOCK
7090 || errno == EWOULDBLOCK
7091 # endif
7092 #else
7093 WSAGetLastError() == WSAEINTR ||
7094 WSAGetLastError() == WSAEINPROGRESS ||
7095 WSAGetLastError() == WSAEWOULDBLOCK
7096 #endif
7097 )
7098 continue; /* Try again. */
7099 log_err("create socketpair: send: %s", sock_strerror(errno));
7100 sock_close(pair[0]);
7101 sock_close(pair[1]);
7102 pair[0] = -1;
7103 pair[1] = -1;
7104 return 0;
7105 } else if(ret+(ssize_t)bcount != sizeof(nonce)) {
7106 bcount += ret;
7107 if((size_t)bcount < sizeof(nonce))
7108 continue;
7109 }
7110 break;
7111 }
7112
7113 if(!sock_poll_timeout(pair[0], connect_poll_timeout, 1, 0, &pollin_event)) {
7114 log_err("create socketpair: poll failed: %s",
7115 sock_strerror(errno));
7116 sock_close(pair[0]);
7117 sock_close(pair[1]);
7118 pair[0] = -1;
7119 pair[1] = -1;
7120 return 0;
7121 }
7122 if(!pollin_event) {
7123 log_err("create socketpair: poll timeout for recv");
7124 sock_close(pair[0]);
7125 sock_close(pair[1]);
7126 pair[0] = -1;
7127 pair[1] = -1;
7128 return 0;
7129 }
7130
7131 loopcount = 0;
7132 bcount = 0;
7133 while(1) {
7134 if(++loopcount > IPC_LOOP_MAX) {
7135 log_err("create socketpair: recv failed due to loop");
7136 sock_close(pair[0]);
7137 sock_close(pair[1]);
7138 pair[0] = -1;
7139 pair[1] = -1;
7140 return 0;
7141 }
7142 ret = recv(pair[0], (void*)(recvnonce+bcount),
7143 sizeof(nonce)-bcount, 0);
7144 if(ret == -1) {
7145 if(
7146 #ifndef USE_WINSOCK
7147 errno == EINTR || errno == EAGAIN
7148 # ifdef EWOULDBLOCK
7149 || errno == EWOULDBLOCK
7150 # endif
7151 #else
7152 WSAGetLastError() == WSAEINTR ||
7153 WSAGetLastError() == WSAEINPROGRESS ||
7154 WSAGetLastError() == WSAEWOULDBLOCK
7155 #endif
7156 )
7157 continue; /* Try again. */
7158 log_err("create socketpair: recv: %s", sock_strerror(errno));
7159 sock_close(pair[0]);
7160 sock_close(pair[1]);
7161 pair[0] = -1;
7162 pair[1] = -1;
7163 return 0;
7164 } else if(ret == 0) {
7165 log_err("create socketpair: stream closed");
7166 sock_close(pair[0]);
7167 sock_close(pair[1]);
7168 pair[0] = -1;
7169 pair[1] = -1;
7170 return 0;
7171 } else if(ret+(ssize_t)bcount != sizeof(nonce)) {
7172 bcount += ret;
7173 if((size_t)bcount < sizeof(nonce))
7174 continue;
7175 }
7176 break;
7177 }
7178
7179 if(memcmp(nonce, recvnonce, sizeof(nonce)) != 0) {
7180 log_err("create socketpair: recv wrong nonce");
7181 sock_close(pair[0]);
7182 sock_close(pair[1]);
7183 pair[0] = -1;
7184 pair[1] = -1;
7185 return 0;
7186 }
7187 #endif
7188 return 1;
7189 }
7190
7191 /** fast reload thread. setup the thread info */
7192 static int
fast_reload_thread_setup(struct worker * worker,int fr_verb,int fr_nopause,int fr_drop_mesh)7193 fast_reload_thread_setup(struct worker* worker, int fr_verb, int fr_nopause,
7194 int fr_drop_mesh)
7195 {
7196 struct fast_reload_thread* fr;
7197 int numworkers = worker->daemon->num;
7198 worker->daemon->fast_reload_thread = (struct fast_reload_thread*)
7199 calloc(1, sizeof(*worker->daemon->fast_reload_thread));
7200 if(!worker->daemon->fast_reload_thread)
7201 return 0;
7202 fr = worker->daemon->fast_reload_thread;
7203 fr->fr_verb = fr_verb;
7204 fr->fr_nopause = fr_nopause;
7205 fr->fr_drop_mesh = fr_drop_mesh;
7206 worker->daemon->fast_reload_drop_mesh = fr->fr_drop_mesh;
7207 /* The thread id printed in logs, numworker+1 is the dnstap thread.
7208 * This is numworkers+2. */
7209 fr->threadnum = numworkers+2;
7210 fr->commpair[0] = -1;
7211 fr->commpair[1] = -1;
7212 fr->commreload[0] = -1;
7213 fr->commreload[1] = -1;
7214 if(!create_socketpair(fr->commpair, worker->daemon->rand)) {
7215 free(fr);
7216 worker->daemon->fast_reload_thread = NULL;
7217 return 0;
7218 }
7219 fr->worker = worker;
7220 fr->fr_output = (struct config_strlist_head*)calloc(1,
7221 sizeof(*fr->fr_output));
7222 if(!fr->fr_output) {
7223 sock_close(fr->commpair[0]);
7224 sock_close(fr->commpair[1]);
7225 free(fr);
7226 worker->daemon->fast_reload_thread = NULL;
7227 return 0;
7228 }
7229 if(!create_socketpair(fr->commreload, worker->daemon->rand)) {
7230 sock_close(fr->commpair[0]);
7231 sock_close(fr->commpair[1]);
7232 free(fr->fr_output);
7233 free(fr);
7234 worker->daemon->fast_reload_thread = NULL;
7235 return 0;
7236 }
7237 lock_basic_init(&fr->fr_output_lock);
7238 lock_protect(&fr->fr_output_lock, fr->fr_output,
7239 sizeof(*fr->fr_output));
7240 #ifdef HAVE_GETTID
7241 fr->thread_tid_log = worker->env.cfg->log_thread_id;
7242 #endif
7243 return 1;
7244 }
7245
7246 /** fast reload, delete auth zone change list */
7247 static void
fr_auth_change_list_delete(struct fast_reload_auth_change * auth_zone_change_list)7248 fr_auth_change_list_delete(
7249 struct fast_reload_auth_change* auth_zone_change_list)
7250 {
7251 struct fast_reload_auth_change* item, *next;
7252 item = auth_zone_change_list;
7253 while(item) {
7254 next = item->next;
7255 free(item);
7256 item = next;
7257 }
7258 }
7259
7260 /** fast reload thread. desetup and delete the thread info. */
7261 static void
fast_reload_thread_desetup(struct fast_reload_thread * fast_reload_thread)7262 fast_reload_thread_desetup(struct fast_reload_thread* fast_reload_thread)
7263 {
7264 if(!fast_reload_thread)
7265 return;
7266 if(fast_reload_thread->service_event &&
7267 fast_reload_thread->service_event_is_added) {
7268 ub_event_del(fast_reload_thread->service_event);
7269 fast_reload_thread->service_event_is_added = 0;
7270 }
7271 if(fast_reload_thread->service_event)
7272 ub_event_free(fast_reload_thread->service_event);
7273 sock_close(fast_reload_thread->commpair[0]);
7274 sock_close(fast_reload_thread->commpair[1]);
7275 sock_close(fast_reload_thread->commreload[0]);
7276 sock_close(fast_reload_thread->commreload[1]);
7277 if(fast_reload_thread->printq) {
7278 fr_main_perform_printout(fast_reload_thread);
7279 /* If it is empty now, there is nothing to print on fd. */
7280 if(fr_printq_empty(fast_reload_thread->printq)) {
7281 fr_printq_delete(fast_reload_thread->printq);
7282 } else {
7283 /* Keep the printq around to printout the remaining
7284 * text to the remote client. Until it is done, it
7285 * sits on a list, that is in the daemon struct.
7286 * The event can then spool the remaining text to the
7287 * remote client and eventually delete itself from the
7288 * callback. */
7289 fr_printq_list_insert(fast_reload_thread->printq,
7290 fast_reload_thread->worker->daemon);
7291 fast_reload_thread->printq = NULL;
7292 }
7293 }
7294 lock_basic_destroy(&fast_reload_thread->fr_output_lock);
7295 if(fast_reload_thread->fr_output) {
7296 config_delstrlist(fast_reload_thread->fr_output->first);
7297 free(fast_reload_thread->fr_output);
7298 }
7299 fr_auth_change_list_delete(fast_reload_thread->auth_zone_change_list);
7300
7301 free(fast_reload_thread);
7302 }
7303
7304 /**
7305 * Fast reload thread, send a command to the thread. Blocking on timeout.
7306 * It handles received input from the thread, if any is received.
7307 */
7308 static void
fr_send_cmd_to(struct fast_reload_thread * fr,enum fast_reload_notification status,int check_cmds,int blocking)7309 fr_send_cmd_to(struct fast_reload_thread* fr,
7310 enum fast_reload_notification status, int check_cmds, int blocking)
7311 {
7312 int outevent, loopexit = 0, bcount = 0;
7313 uint32_t cmd;
7314 ssize_t ret;
7315 verbose(VERB_ALGO, "send notification to fast reload thread: %s",
7316 fr_notification_to_string(status));
7317 cmd = status;
7318 while(1) {
7319 if(++loopexit > IPC_LOOP_MAX) {
7320 log_err("send notification to fast reload: could not send notification: loop");
7321 return;
7322 }
7323 if(check_cmds)
7324 fr_check_cmd_from_thread(fr);
7325 /* wait for socket to become writable */
7326 if(!sock_poll_timeout(fr->commpair[0],
7327 (blocking?-1:IPC_NOTIFICATION_WAIT),
7328 0, 1, &outevent)) {
7329 log_err("send notification to fast reload: poll failed");
7330 return;
7331 }
7332 if(!outevent)
7333 continue;
7334 /* keep static analyzer happy; send(-1,..) */
7335 log_assert(fr->commpair[0] >= 0);
7336 ret = send(fr->commpair[0], ((char*)&cmd)+bcount,
7337 sizeof(cmd)-bcount, 0);
7338 if(ret == -1) {
7339 if(
7340 #ifndef USE_WINSOCK
7341 errno == EINTR || errno == EAGAIN
7342 # ifdef EWOULDBLOCK
7343 || errno == EWOULDBLOCK
7344 # endif
7345 #else
7346 WSAGetLastError() == WSAEINTR ||
7347 WSAGetLastError() == WSAEINPROGRESS ||
7348 WSAGetLastError() == WSAEWOULDBLOCK
7349 #endif
7350 )
7351 continue; /* Try again. */
7352 log_err("send notification to fast reload: send: %s",
7353 sock_strerror(errno));
7354 return;
7355 } else if(ret+(ssize_t)bcount != sizeof(cmd)) {
7356 bcount += ret;
7357 if((size_t)bcount < sizeof(cmd))
7358 continue;
7359 }
7360 break;
7361 }
7362 }
7363
7364 /** Fast reload, the main thread handles that the fast reload thread has
7365 * exited. */
7366 static void
fr_main_perform_done(struct fast_reload_thread * fr)7367 fr_main_perform_done(struct fast_reload_thread* fr)
7368 {
7369 struct worker* worker = fr->worker;
7370 verbose(VERB_ALGO, "join with fastreload thread");
7371 ub_thread_join(fr->tid);
7372 verbose(VERB_ALGO, "joined with fastreload thread");
7373 fast_reload_thread_desetup(fr);
7374 worker->daemon->fast_reload_thread = NULL;
7375 }
7376
7377 /** Append strlist after strlist */
7378 static void
cfg_strlist_append_listhead(struct config_strlist_head * list,struct config_strlist_head * more)7379 cfg_strlist_append_listhead(struct config_strlist_head* list,
7380 struct config_strlist_head* more)
7381 {
7382 if(!more->first)
7383 return;
7384 if(list->last)
7385 list->last->next = more->first;
7386 else
7387 list->first = more->first;
7388 list->last = more->last;
7389 }
7390
7391 /** Fast reload, the remote control thread handles that the fast reload thread
7392 * has output to be printed, on the linked list that is locked. */
7393 static void
fr_main_perform_printout(struct fast_reload_thread * fr)7394 fr_main_perform_printout(struct fast_reload_thread* fr)
7395 {
7396 struct config_strlist_head out;
7397
7398 /* Fetch the list of items to be printed */
7399 lock_basic_lock(&fr->fr_output_lock);
7400 out.first = fr->fr_output->first;
7401 out.last = fr->fr_output->last;
7402 fr->fr_output->first = NULL;
7403 fr->fr_output->last = NULL;
7404 lock_basic_unlock(&fr->fr_output_lock);
7405
7406 if(!fr->printq || !fr->printq->client_cp) {
7407 /* There is no output socket, delete it. */
7408 config_delstrlist(out.first);
7409 return;
7410 }
7411
7412 /* Put them on the output list, not locked because the list
7413 * producer and consumer are both owned by the remote control thread,
7414 * it moves the items to the list for printing in the event callback
7415 * for the client_cp. */
7416 cfg_strlist_append_listhead(fr->printq->to_print, &out);
7417
7418 /* Set the client_cp to output if not already */
7419 if(!fr->printq->client_cp->event_added)
7420 comm_point_listen_for_rw(fr->printq->client_cp, 0, 1);
7421 }
7422
7423 /** fast reload, receive ack from workers that they are waiting, run
7424 * by the mainthr after sending them reload_stop. */
7425 static void
fr_read_ack_from_workers(struct fast_reload_thread * fr)7426 fr_read_ack_from_workers(struct fast_reload_thread* fr)
7427 {
7428 struct daemon* daemon = fr->worker->daemon;
7429 /* Every worker sends one byte, wait for num-1 bytes. */
7430 int count=0, total=daemon->num-1;
7431 while(count < total) {
7432 uint8_t r;
7433 ssize_t ret;
7434 ret = recv(fr->commreload[0], (void*)&r, 1, 0);
7435 if(ret == -1) {
7436 if(
7437 #ifndef USE_WINSOCK
7438 errno == EINTR || errno == EAGAIN
7439 # ifdef EWOULDBLOCK
7440 || errno == EWOULDBLOCK
7441 # endif
7442 #else
7443 WSAGetLastError() == WSAEINTR ||
7444 WSAGetLastError() == WSAEINPROGRESS ||
7445 WSAGetLastError() == WSAEWOULDBLOCK
7446 #endif
7447 )
7448 continue; /* Try again */
7449 log_err("worker reload ack: recv failed: %s",
7450 sock_strerror(errno));
7451 return;
7452 }
7453 count++;
7454 verbose(VERB_ALGO, "worker reload ack from (uint8_t)%d",
7455 (int)r);
7456 }
7457 }
7458
7459 /** fast reload, poll for reload_start in mainthr waiting on a notification
7460 * from the fast reload thread. */
7461 static void
fr_poll_for_reload_start(struct fast_reload_thread * fr)7462 fr_poll_for_reload_start(struct fast_reload_thread* fr)
7463 {
7464 int loopexit = 0, bcount = 0;
7465 uint32_t cmd;
7466 ssize_t ret;
7467
7468 /* Is there data? */
7469 if(!sock_poll_timeout(fr->commpair[0], -1, 1, 0, NULL)) {
7470 log_err("fr_poll_for_reload_start: poll failed");
7471 return;
7472 }
7473
7474 /* Read the data */
7475 while(1) {
7476 if(++loopexit > IPC_LOOP_MAX) {
7477 log_err("fr_poll_for_reload_start: recv loops %s",
7478 sock_strerror(errno));
7479 return;
7480 }
7481 ret = recv(fr->commpair[0], ((char*)&cmd)+bcount,
7482 sizeof(cmd)-bcount, 0);
7483 if(ret == -1) {
7484 if(
7485 #ifndef USE_WINSOCK
7486 errno == EINTR || errno == EAGAIN
7487 # ifdef EWOULDBLOCK
7488 || errno == EWOULDBLOCK
7489 # endif
7490 #else
7491 WSAGetLastError() == WSAEINTR ||
7492 WSAGetLastError() == WSAEINPROGRESS ||
7493 WSAGetLastError() == WSAEWOULDBLOCK
7494 #endif
7495 )
7496 continue; /* Try again. */
7497 log_err("fr_poll_for_reload_start: recv: %s",
7498 sock_strerror(errno));
7499 return;
7500 } else if(ret+(ssize_t)bcount != sizeof(cmd)) {
7501 bcount += ret;
7502 if((size_t)bcount < sizeof(cmd))
7503 continue;
7504 }
7505 break;
7506 }
7507 if(cmd != fast_reload_notification_reload_start) {
7508 verbose(VERB_ALGO, "fast reload wait for ack: "
7509 "wrong notification %d", (int)cmd);
7510 }
7511 }
7512
7513 /** Pick up the worker mesh changes, after fast reload. */
7514 static void
fr_worker_pickup_mesh(struct worker * worker)7515 fr_worker_pickup_mesh(struct worker* worker)
7516 {
7517 struct mesh_area* mesh = worker->env.mesh;
7518 struct config_file* cfg = worker->env.cfg;
7519 mesh->use_response_ip = worker->daemon->use_response_ip;
7520 mesh->use_rpz = worker->daemon->use_rpz;
7521 mesh->max_reply_states = cfg->num_queries_per_thread;
7522 mesh->max_forever_states = (mesh->max_reply_states+1)/2;
7523 #ifndef S_SPLINT_S
7524 mesh->jostle_max.tv_sec = (time_t)(cfg->jostle_time / 1000);
7525 mesh->jostle_max.tv_usec = (time_t)((cfg->jostle_time % 1000)*1000);
7526 #endif
7527 }
7528
7529 /**
7530 * Remove the old tcl_addr entries from the open connections.
7531 * They are only incremented when an accept is performed on a tcp comm point.
7532 * @param front: listening comm ports of the worker.
7533 */
7534 static void
tcl_remove_old(struct listen_dnsport * front)7535 tcl_remove_old(struct listen_dnsport* front)
7536 {
7537 struct listen_list* l;
7538 l = front->cps;
7539 while(l) {
7540 if(l->com->type == comm_tcp_accept) {
7541 int i;
7542 for(i=0; i<l->com->max_tcp_count; i++) {
7543 if(l->com->tcp_handlers[i]->tcl_addr) {
7544 /* Because the increment of the
7545 * connection limit was in the old
7546 * tcl list, the new list does not
7547 * need a decrement. With NULL it is
7548 * not decremented when the connection
7549 * is done, and also there is no
7550 * reference to the old connection
7551 * limit structure. */
7552 l->com->tcp_handlers[i]->tcl_addr =
7553 NULL;
7554 }
7555 }
7556 }
7557 l = l->next;
7558 }
7559 }
7560
7561 /** Stop zonemd lookup */
7562 static void
auth_zone_zonemd_stop_lookup(struct auth_zone * z,struct mesh_area * mesh)7563 auth_zone_zonemd_stop_lookup(struct auth_zone* z, struct mesh_area* mesh)
7564 {
7565 struct query_info qinfo;
7566 uint16_t qflags = BIT_RD;
7567 qinfo.qname_len = z->namelen;
7568 qinfo.qname = z->name;
7569 qinfo.qclass = z->dclass;
7570 qinfo.qtype = z->zonemd_callback_qtype;
7571 qinfo.local_alias = NULL;
7572
7573 mesh_remove_callback(mesh, &qinfo, qflags,
7574 &auth_zonemd_dnskey_lookup_callback, z);
7575 }
7576
7577 /** Pick up the auth zone locks. */
7578 static void
fr_pickup_auth_locks(struct worker * worker,struct auth_zone * namez,struct auth_zone * old_z,struct auth_zone * new_z,struct auth_xfer ** xfr,struct auth_xfer ** loadxfr)7579 fr_pickup_auth_locks(struct worker* worker, struct auth_zone* namez,
7580 struct auth_zone* old_z, struct auth_zone* new_z,
7581 struct auth_xfer** xfr, struct auth_xfer** loadxfr)
7582 {
7583 uint8_t nm[LDNS_MAX_DOMAINLEN+1];
7584 size_t nmlen;
7585 uint16_t dclass;
7586
7587 log_assert(namez->namelen <= sizeof(nm));
7588 lock_rw_rdlock(&namez->lock);
7589 nmlen = namez->namelen;
7590 dclass = namez->dclass;
7591 memmove(nm, namez->name, nmlen);
7592 lock_rw_unlock(&namez->lock);
7593
7594 lock_rw_wrlock(&worker->daemon->fast_reload_thread->old_auth_zones->lock);
7595 lock_rw_wrlock(&worker->env.auth_zones->lock);
7596 if(new_z) {
7597 lock_rw_wrlock(&new_z->lock);
7598 }
7599 if(old_z) {
7600 lock_rw_wrlock(&old_z->lock);
7601 }
7602 if(loadxfr)
7603 *loadxfr = auth_xfer_find(worker->daemon->fast_reload_thread->
7604 old_auth_zones, nm, nmlen, dclass);
7605 if(xfr)
7606 *xfr = auth_xfer_find(worker->env.auth_zones, nm, nmlen,
7607 dclass);
7608 if(loadxfr && *loadxfr) {
7609 lock_basic_lock(&(*loadxfr)->lock);
7610 }
7611 if(xfr && *xfr) {
7612 lock_basic_lock(&(*xfr)->lock);
7613 }
7614 }
7615
7616 /** Fast reload, worker picks up deleted auth zone */
7617 static void
fr_worker_auth_del(struct worker * worker,struct fast_reload_auth_change * item,int for_change)7618 fr_worker_auth_del(struct worker* worker, struct fast_reload_auth_change* item,
7619 int for_change)
7620 {
7621 int released = 0; /* Did this routine release callbacks. */
7622 struct auth_xfer* xfr = NULL;
7623
7624 lock_rw_wrlock(&item->old_z->lock);
7625 if(item->old_z->zonemd_callback_env &&
7626 item->old_z->zonemd_callback_env->worker == worker){
7627 /* This worker was performing a zonemd lookup,
7628 * stop the lookup and remove that entry. */
7629 auth_zone_zonemd_stop_lookup(item->old_z, worker->env.mesh);
7630 item->old_z->zonemd_callback_env = NULL;
7631 }
7632 lock_rw_unlock(&item->old_z->lock);
7633
7634 fr_pickup_auth_locks(worker, item->old_z, item->old_z, NULL, &xfr,
7635 NULL);
7636 lock_rw_unlock(&worker->daemon->fast_reload_thread->old_auth_zones->lock);
7637 lock_rw_unlock(&worker->env.auth_zones->lock);
7638 lock_rw_unlock(&item->old_z->lock);
7639 if(xfr) {
7640 /* Release callbacks on the xfr, if this worker holds them. */
7641 if(xfr->task_nextprobe->worker == worker ||
7642 xfr->task_probe->worker == worker ||
7643 xfr->task_transfer->worker == worker) {
7644 released = 1;
7645 xfr_disown_tasks(xfr, worker);
7646 }
7647 lock_basic_unlock(&xfr->lock);
7648 }
7649
7650 if(!for_change && (released || worker->thread_num == 0)) {
7651 /* See if the xfr item can be deleted. */
7652 xfr = NULL;
7653 fr_pickup_auth_locks(worker, item->old_z, item->old_z, NULL,
7654 &xfr, NULL);
7655 lock_rw_unlock(&worker->daemon->fast_reload_thread->old_auth_zones->lock);
7656 lock_rw_unlock(&item->old_z->lock);
7657 if(xfr && xfr->task_nextprobe->worker == NULL &&
7658 xfr->task_probe->worker == NULL &&
7659 xfr->task_transfer->worker == NULL) {
7660 (void)rbtree_delete(&worker->env.auth_zones->xtree,
7661 &xfr->node);
7662 lock_rw_unlock(&worker->env.auth_zones->lock);
7663 lock_basic_unlock(&xfr->lock);
7664 auth_xfer_delete(xfr);
7665 } else {
7666 lock_rw_unlock(&worker->env.auth_zones->lock);
7667 if(xfr) {
7668 lock_basic_unlock(&xfr->lock);
7669 }
7670 }
7671 }
7672 }
7673
7674 /** Fast reload, auth xfer config is picked up */
7675 static void
auth_xfr_pickup_config(struct auth_xfer * loadxfr,struct auth_xfer * xfr)7676 auth_xfr_pickup_config(struct auth_xfer* loadxfr, struct auth_xfer* xfr)
7677 {
7678 struct auth_master *probe_masters, *transfer_masters;
7679 log_assert(loadxfr->namelen == xfr->namelen);
7680 log_assert(loadxfr->namelabs == xfr->namelabs);
7681 log_assert(loadxfr->dclass == xfr->dclass);
7682
7683 /* The lists can be swapped in, the other xfr struct will be deleted
7684 * afterwards. */
7685 probe_masters = xfr->task_probe->masters;
7686 transfer_masters = xfr->task_transfer->masters;
7687 xfr->task_probe->masters = loadxfr->task_probe->masters;
7688 xfr->task_transfer->masters = loadxfr->task_transfer->masters;
7689 loadxfr->task_probe->masters = probe_masters;
7690 loadxfr->task_transfer->masters = transfer_masters;
7691 }
7692
7693 /** Fast reload, worker picks up added auth zone */
7694 static void
fr_worker_auth_add(struct worker * worker,struct fast_reload_auth_change * item,int for_change)7695 fr_worker_auth_add(struct worker* worker, struct fast_reload_auth_change* item,
7696 int for_change)
7697 {
7698 struct auth_xfer* xfr = NULL, *loadxfr = NULL;
7699
7700 /* Start zone transfers and lookups. */
7701 fr_pickup_auth_locks(worker, item->new_z, NULL, item->new_z, &xfr,
7702 &loadxfr);
7703 if(xfr == NULL && item->new_z->zone_is_slave) {
7704 /* The xfr item needs to be created. The auth zones lock
7705 * is held to make this possible. */
7706 xfr = auth_xfer_create(worker->env.auth_zones, item->new_z);
7707 auth_xfr_pickup_config(loadxfr, xfr);
7708 /* Serial information is copied into the xfr struct. */
7709 if(!xfr_find_soa(item->new_z, xfr)) {
7710 xfr->serial = 0;
7711 }
7712 } else if(for_change && xfr) {
7713 if(!xfr_find_soa(item->new_z, xfr)) {
7714 xfr->serial = 0;
7715 }
7716 }
7717 auth_zone_pickup_initial_zone(item->new_z, &worker->env);
7718 lock_rw_unlock(&item->new_z->lock);
7719 lock_rw_unlock(&worker->env.auth_zones->lock);
7720 lock_rw_unlock(&worker->daemon->fast_reload_thread->old_auth_zones->lock);
7721 if(loadxfr) {
7722 lock_basic_unlock(&loadxfr->lock);
7723 }
7724 if(xfr) {
7725 auth_xfer_pickup_initial_zone(xfr, &worker->env);
7726 if(for_change) {
7727 xfr->task_probe->only_lookup = 0;
7728 }
7729 lock_basic_unlock(&xfr->lock);
7730 }
7731
7732 /* Perform ZONEMD verification lookups. */
7733 lock_rw_wrlock(&item->new_z->lock);
7734 /* holding only the new_z lock */
7735 auth_zone_verify_zonemd(item->new_z, &worker->env,
7736 &worker->env.mesh->mods, NULL, 0, 1);
7737 lock_rw_unlock(&item->new_z->lock);
7738 }
7739
7740 /** Fast reload, worker picks up changed auth zone */
7741 static void
fr_worker_auth_cha(struct worker * worker,struct fast_reload_auth_change * item)7742 fr_worker_auth_cha(struct worker* worker, struct fast_reload_auth_change* item)
7743 {
7744 int todelete = 0;
7745 struct auth_xfer* loadxfr = NULL, *xfr = NULL;
7746 /* Since the zone has been changed, by rereading it from zone file,
7747 * existing transfers and probes are likely for the old version.
7748 * Stop them, and start new ones if needed. */
7749 fr_worker_auth_del(worker, item, 1);
7750
7751 if(worker->thread_num != 0)
7752 return;
7753
7754 /* The old callbacks are stopped, tasks have been disowned. The
7755 * new config contents can be picked up. SOA information is picked
7756 * up in the auth_add routine, as it has the new_z ready. */
7757
7758 fr_pickup_auth_locks(worker, item->new_z, item->old_z, item->new_z,
7759 &xfr, &loadxfr);
7760
7761 /* The xfr is not there any more if the zone is not set to have
7762 * zone transfers. Or the xfr needs to be created if it is set to
7763 * have zone transfers. */
7764 if(loadxfr && xfr) {
7765 /* Copy the config from loadxfr to the xfr in current use. */
7766 auth_xfr_pickup_config(loadxfr, xfr);
7767 } else if(!loadxfr && xfr) {
7768 /* Delete the xfr. */
7769 (void)rbtree_delete(&worker->env.auth_zones->xtree,
7770 &xfr->node);
7771 todelete = 1;
7772 item->new_z->zone_is_slave = 0;
7773 } else if(loadxfr && !xfr) {
7774 /* Create the xfr. */
7775 xfr = auth_xfer_create(worker->env.auth_zones, item->new_z);
7776 auth_xfr_pickup_config(loadxfr, xfr);
7777 item->new_z->zone_is_slave = 1;
7778 }
7779 lock_rw_unlock(&item->new_z->lock);
7780 lock_rw_unlock(&item->old_z->lock);
7781 lock_rw_unlock(&worker->daemon->fast_reload_thread->old_auth_zones->lock);
7782 lock_rw_unlock(&worker->env.auth_zones->lock);
7783 if(loadxfr) {
7784 lock_basic_unlock(&loadxfr->lock);
7785 }
7786 if(xfr) {
7787 lock_basic_unlock(&xfr->lock);
7788 }
7789 if(todelete) {
7790 auth_xfer_delete(xfr);
7791 }
7792
7793 fr_worker_auth_add(worker, item, 1);
7794 }
7795
7796 /** Fast reload, the worker picks up changes in auth zones. */
7797 static void
fr_worker_pickup_auth_changes(struct worker * worker,struct fast_reload_auth_change * auth_zone_change_list)7798 fr_worker_pickup_auth_changes(struct worker* worker,
7799 struct fast_reload_auth_change* auth_zone_change_list)
7800 {
7801 struct fast_reload_auth_change* item;
7802 for(item = auth_zone_change_list; item; item = item->next) {
7803 if(item->is_deleted) {
7804 fr_worker_auth_del(worker, item, 0);
7805 }
7806 if(item->is_added) {
7807 if(worker->thread_num == 0) {
7808 fr_worker_auth_add(worker, item, 0);
7809 }
7810 }
7811 if(item->is_changed) {
7812 fr_worker_auth_cha(worker, item);
7813 }
7814 }
7815 }
7816
7817 /** Fast reload, the worker picks up changes in listen_dnsport. */
7818 static void
fr_worker_pickup_listen_dnsport(struct worker * worker)7819 fr_worker_pickup_listen_dnsport(struct worker* worker)
7820 {
7821 struct listen_dnsport* front = worker->front;
7822 struct daemon* daemon = worker->daemon;
7823 if(worker->daemon->fast_reload_thread->sslctxs_changed) {
7824 struct listen_list* ll;
7825 void* dot_sslctx = daemon->listen_dot_sslctx;
7826 void* doh_sslctx = daemon->listen_doh_sslctx;
7827 #ifdef HAVE_NGTCP2
7828 void* quic_sslctx = daemon->listen_quic_sslctx;
7829 #endif /* HAVE_NGTCP2 */
7830 for(ll = front->cps; ll; ll = ll->next) {
7831 struct comm_point* cp = ll->com;
7832 if(cp->type == comm_tcp_accept &&
7833 cp->tcp_handlers &&
7834 cp->max_tcp_count > 0 &&
7835 cp->tcp_handlers[0]->type == comm_http) {
7836 if(cp->ssl)
7837 cp->ssl = doh_sslctx;
7838 } else if(cp->type == comm_tcp_accept) {
7839 if(cp->ssl)
7840 cp->ssl = dot_sslctx;
7841 #ifdef HAVE_NGTCP2
7842 } else if(cp->type == comm_doq) {
7843 if(cp->ssl) {
7844 cp->ssl = quic_sslctx;
7845 if(cp->doq_socket)
7846 cp->doq_socket->ctx =
7847 (SSL_CTX*)quic_sslctx;
7848 }
7849 #endif /* HAVE_NGTCP2 */
7850 }
7851 }
7852 }
7853 }
7854
7855 /** Fast reload, the worker picks up changes in outside_network. */
7856 static void
fr_worker_pickup_outside_network(struct worker * worker)7857 fr_worker_pickup_outside_network(struct worker* worker)
7858 {
7859 struct outside_network* outnet = worker->back;
7860 struct config_file* cfg = worker->env.cfg;
7861 outnet->use_caps_for_id = cfg->use_caps_bits_for_id;
7862 outnet->unwanted_threshold = cfg->unwanted_threshold;
7863 outnet->tls_use_sni = cfg->tls_use_sni;
7864 outnet->tcp_mss = cfg->outgoing_tcp_mss;
7865 outnet->ip_dscp = cfg->ip_dscp;
7866 outnet->max_reuse_tcp_queries = cfg->max_reuse_tcp_queries;
7867 outnet->tcp_reuse_timeout = cfg->tcp_reuse_timeout;
7868 outnet->tcp_auth_query_timeout = cfg->tcp_auth_query_timeout;
7869 outnet->delayclose = cfg->delay_close;
7870 if(worker->daemon->fast_reload_thread->sslctxs_changed)
7871 outnet->sslctx = worker->daemon->connect_dot_sslctx;
7872 if(outnet->delayclose) {
7873 #ifndef S_SPLINT_S
7874 outnet->delay_tv.tv_sec = cfg->delay_close/1000;
7875 outnet->delay_tv.tv_usec = (cfg->delay_close%1000)*1000;
7876 #endif
7877 }
7878 }
7879
7880 #ifdef USE_DNSTAP
7881 /** Fast reload, the worker picks up changes to DNSTAP configuration. */
7882 static void
fr_worker_pickup_dnstap_changes(struct worker * worker)7883 fr_worker_pickup_dnstap_changes(struct worker* worker)
7884 {
7885 struct dt_env* w_dtenv = &worker->dtenv;
7886 struct dt_env* d_dtenv = worker->daemon->dtenv;
7887 log_assert(d_dtenv != NULL || !worker->daemon->cfg->dnstap);
7888 if(d_dtenv == NULL) {
7889 /* There is no environment when DNSTAP was not enabled
7890 * in the configuration. */
7891 return;
7892 }
7893 w_dtenv->identity = d_dtenv->identity;
7894 w_dtenv->len_identity = d_dtenv->len_identity;
7895 w_dtenv->version = d_dtenv->version;
7896 w_dtenv->len_version = d_dtenv->len_version;
7897 w_dtenv->log_resolver_query_messages =
7898 d_dtenv->log_resolver_query_messages;
7899 w_dtenv->log_resolver_response_messages =
7900 d_dtenv->log_resolver_response_messages;
7901 w_dtenv->log_client_query_messages =
7902 d_dtenv->log_client_query_messages;
7903 w_dtenv->log_client_response_messages =
7904 d_dtenv->log_client_response_messages;
7905 w_dtenv->log_forwarder_query_messages =
7906 d_dtenv->log_forwarder_query_messages;
7907 w_dtenv->log_forwarder_response_messages =
7908 d_dtenv->log_forwarder_response_messages;
7909 lock_basic_lock(&d_dtenv->sample_lock);
7910 w_dtenv->sample_rate = d_dtenv->sample_rate;
7911 lock_basic_unlock(&d_dtenv->sample_lock);
7912 }
7913 #endif /* USE_DNSTAP */
7914
7915 void
fast_reload_worker_pickup_changes(struct worker * worker)7916 fast_reload_worker_pickup_changes(struct worker* worker)
7917 {
7918 /* The pickup of changes is called when the fast reload has
7919 * a synchronized moment, and all the threads are paused and the
7920 * reload has been applied. Then the worker can pick up the new
7921 * changes and store them in worker-specific structs.
7922 * The pickup is also called when there is no pause, and then
7923 * it is called after the reload has completed, and the worker
7924 * get a signal to release old information, it can then pick
7925 * up the new information. But in the mean time, the reload has
7926 * swapped in trees, and the worker has been running with the
7927 * older information for some time. */
7928 fr_worker_pickup_mesh(worker);
7929
7930 /* If the tcp connection limit has changed, the open connections
7931 * need to remove their reference for the old tcp limits counters. */
7932 if(worker->daemon->fast_reload_tcl_has_changes)
7933 tcl_remove_old(worker->front);
7934
7935 /* If there are zonemd lookups, but the zone was deleted, the
7936 * lookups should be cancelled. */
7937 fr_worker_pickup_auth_changes(worker,
7938 worker->daemon->fast_reload_thread->auth_zone_change_list);
7939 #ifdef USE_CACHEDB
7940 worker->env.cachedb_enabled = worker->daemon->env->cachedb_enabled;
7941 #endif
7942 fr_worker_pickup_listen_dnsport(worker);
7943 fr_worker_pickup_outside_network(worker);
7944 #ifdef USE_DNSTAP
7945 fr_worker_pickup_dnstap_changes(worker);
7946 #endif
7947 }
7948
7949 /** fast reload thread, handle reload_stop notification, send reload stop
7950 * to other threads over IPC and collect their ack. When that is done,
7951 * ack to the caller, the fast reload thread, and wait for it to send start. */
7952 static void
fr_main_perform_reload_stop(struct fast_reload_thread * fr)7953 fr_main_perform_reload_stop(struct fast_reload_thread* fr)
7954 {
7955 struct daemon* daemon = fr->worker->daemon;
7956 int i;
7957
7958 /* Send reload_stop to other threads. */
7959 for(i=0; i<daemon->num; i++) {
7960 if(i == fr->worker->thread_num)
7961 continue; /* Do not send to ourselves. */
7962 worker_send_cmd(daemon->workers[i], worker_cmd_reload_stop);
7963 }
7964
7965 /* Wait for the other threads to ack. */
7966 fr_read_ack_from_workers(fr);
7967
7968 /* Send ack to fast reload thread. */
7969 fr_send_cmd_to(fr, fast_reload_notification_reload_ack, 0, 1);
7970
7971 /* Wait for reload_start from fast reload thread to resume. */
7972 fr_poll_for_reload_start(fr);
7973
7974 /* Send reload_start to other threads */
7975 for(i=0; i<daemon->num; i++) {
7976 if(i == fr->worker->thread_num)
7977 continue; /* Do not send to ourselves. */
7978 worker_send_cmd(daemon->workers[i], worker_cmd_reload_start);
7979 }
7980
7981 /* Pick up changes for this worker. */
7982 if(fr->worker->daemon->fast_reload_drop_mesh) {
7983 verbose(VERB_ALGO, "worker: drop mesh queries after reload");
7984 mesh_delete_all(fr->worker->env.mesh);
7985 }
7986 fast_reload_worker_pickup_changes(fr->worker);
7987
7988 /* Wait for the other threads to ack. */
7989 fr_read_ack_from_workers(fr);
7990
7991 /* Send ack to fast reload thread. */
7992 fr_send_cmd_to(fr, fast_reload_notification_reload_ack, 0, 1);
7993
7994 verbose(VERB_ALGO, "worker resume after reload");
7995 }
7996
7997 /** Fast reload, the main thread performs the nopause poll. It polls every
7998 * other worker thread briefly over the command pipe ipc. The command takes
7999 * no time for the worker, it can return immediately. After that it sends
8000 * an acknowledgement to the fastreload thread. */
8001 static void
fr_main_perform_reload_nopause_poll(struct fast_reload_thread * fr)8002 fr_main_perform_reload_nopause_poll(struct fast_reload_thread* fr)
8003 {
8004 struct daemon* daemon = fr->worker->daemon;
8005 int i;
8006
8007 /* Send the reload_poll to other threads. They can respond
8008 * one at a time. */
8009 for(i=0; i<daemon->num; i++) {
8010 if(i == fr->worker->thread_num)
8011 continue; /* Do not send to ourselves. */
8012 worker_send_cmd(daemon->workers[i], worker_cmd_reload_poll);
8013 }
8014
8015 /* Wait for the other threads to ack. */
8016 fr_read_ack_from_workers(fr);
8017 fast_reload_worker_pickup_changes(fr->worker);
8018
8019 /* Send ack to fast reload thread. */
8020 fr_send_cmd_to(fr, fast_reload_notification_reload_ack, 0, 1);
8021 }
8022
8023 /** Fast reload, perform the command received from the fast reload thread */
8024 static void
fr_main_perform_cmd(struct fast_reload_thread * fr,enum fast_reload_notification status)8025 fr_main_perform_cmd(struct fast_reload_thread* fr,
8026 enum fast_reload_notification status)
8027 {
8028 verbose(VERB_ALGO, "main perform fast reload status: %s",
8029 fr_notification_to_string(status));
8030 if(status == fast_reload_notification_printout) {
8031 fr_main_perform_printout(fr);
8032 } else if(status == fast_reload_notification_done ||
8033 status == fast_reload_notification_done_error ||
8034 status == fast_reload_notification_exited) {
8035 fr_main_perform_done(fr);
8036 } else if(status == fast_reload_notification_reload_stop) {
8037 fr_main_perform_reload_stop(fr);
8038 } else if(status == fast_reload_notification_reload_nopause_poll) {
8039 fr_main_perform_reload_nopause_poll(fr);
8040 } else {
8041 log_err("main received unknown status from fast reload: %d %s",
8042 (int)status, fr_notification_to_string(status));
8043 }
8044 }
8045
8046 /** Fast reload, handle command from fast reload to the main thread. */
8047 static void
fr_main_handle_cmd(struct fast_reload_thread * fr)8048 fr_main_handle_cmd(struct fast_reload_thread* fr)
8049 {
8050 enum fast_reload_notification status;
8051 ssize_t ret;
8052 /* keep static analyzer happy; recv(-1,..) */
8053 log_assert(fr->commpair[0] >= 0);
8054 ret = recv(fr->commpair[0],
8055 ((char*)&fr->service_read_cmd)+fr->service_read_cmd_count,
8056 sizeof(fr->service_read_cmd)-fr->service_read_cmd_count, 0);
8057 if(ret == -1) {
8058 if(
8059 #ifndef USE_WINSOCK
8060 errno == EINTR || errno == EAGAIN
8061 # ifdef EWOULDBLOCK
8062 || errno == EWOULDBLOCK
8063 # endif
8064 #else
8065 WSAGetLastError() == WSAEINTR ||
8066 WSAGetLastError() == WSAEINPROGRESS
8067 #endif
8068 )
8069 return; /* Continue later. */
8070 #ifdef USE_WINSOCK
8071 if(WSAGetLastError() == WSAEWOULDBLOCK) {
8072 ub_winsock_tcp_wouldblock(fr->service_event,
8073 UB_EV_READ);
8074 return; /* Continue later. */
8075 }
8076 #endif
8077 log_err("read cmd from fast reload thread, recv: %s",
8078 sock_strerror(errno));
8079 return;
8080 } else if(ret == 0) {
8081 verbose(VERB_ALGO, "closed connection from fast reload thread");
8082 fr->service_read_cmd_count = 0;
8083 /* handle this like an error */
8084 fr->service_read_cmd = fast_reload_notification_done_error;
8085 } else if(ret + (ssize_t)fr->service_read_cmd_count <
8086 (ssize_t)sizeof(fr->service_read_cmd)) {
8087 fr->service_read_cmd_count += ret;
8088 /* Continue later. */
8089 return;
8090 }
8091 status = fr->service_read_cmd;
8092 fr->service_read_cmd = 0;
8093 fr->service_read_cmd_count = 0;
8094 fr_main_perform_cmd(fr, status);
8095 }
8096
8097 /** Fast reload, poll for and handle cmd from fast reload thread. */
8098 static void
fr_check_cmd_from_thread(struct fast_reload_thread * fr)8099 fr_check_cmd_from_thread(struct fast_reload_thread* fr)
8100 {
8101 int inevent = 0;
8102 struct worker* worker = fr->worker;
8103 /* Stop in case the thread has exited, or there is no read event. */
8104 while(worker->daemon->fast_reload_thread) {
8105 if(!sock_poll_timeout(fr->commpair[0], 0, 1, 0, &inevent)) {
8106 log_err("check for cmd from fast reload thread: "
8107 "poll failed");
8108 #ifdef USE_WINSOCK
8109 if(worker->daemon->fast_reload_thread)
8110 ub_winsock_tcp_wouldblock(worker->daemon->
8111 fast_reload_thread->service_event,
8112 UB_EV_READ);
8113 #endif
8114 return;
8115 }
8116 if(!inevent) {
8117 #ifdef USE_WINSOCK
8118 if(worker->daemon->fast_reload_thread)
8119 ub_winsock_tcp_wouldblock(worker->daemon->
8120 fast_reload_thread->service_event,
8121 UB_EV_READ);
8122 #endif
8123 return;
8124 }
8125 fr_main_handle_cmd(fr);
8126 }
8127 }
8128
fast_reload_service_cb(int ATTR_UNUSED (fd),short ATTR_UNUSED (bits),void * arg)8129 void fast_reload_service_cb(int ATTR_UNUSED(fd), short ATTR_UNUSED(bits),
8130 void* arg)
8131 {
8132 struct fast_reload_thread* fast_reload_thread =
8133 (struct fast_reload_thread*)arg;
8134 struct worker* worker = fast_reload_thread->worker;
8135
8136 /* Read and handle the command */
8137 fr_main_handle_cmd(fast_reload_thread);
8138 if(worker->daemon->fast_reload_thread != NULL) {
8139 /* If not exited, see if there are more pending statuses
8140 * from the fast reload thread. */
8141 fr_check_cmd_from_thread(fast_reload_thread);
8142 }
8143 }
8144
8145 #ifdef HAVE_SSL
8146 /** fast reload, send client item over SSL. Returns number of bytes
8147 * printed, 0 on wait later, or -1 on failure. */
8148 static int
fr_client_send_item_ssl(struct fast_reload_printq * printq)8149 fr_client_send_item_ssl(struct fast_reload_printq* printq)
8150 {
8151 int r;
8152 ERR_clear_error();
8153 r = SSL_write(printq->remote.ssl,
8154 printq->client_item+printq->client_byte_count,
8155 printq->client_len - printq->client_byte_count);
8156 if(r <= 0) {
8157 int want = SSL_get_error(printq->remote.ssl, r);
8158 if(want == SSL_ERROR_ZERO_RETURN) {
8159 log_err("fast_reload print to remote client: "
8160 "SSL_write says connection closed.");
8161 return -1;
8162 } else if(want == SSL_ERROR_WANT_READ) {
8163 /* wait for read condition */
8164 printq->client_cp->ssl_shake_state = comm_ssl_shake_hs_read;
8165 comm_point_listen_for_rw(printq->client_cp, 1, 0);
8166 return 0;
8167 } else if(want == SSL_ERROR_WANT_WRITE) {
8168 #ifdef USE_WINSOCK
8169 ub_winsock_tcp_wouldblock(comm_point_internal(printq->client_cp), UB_EV_WRITE);
8170 #endif
8171 return 0; /* write more later */
8172 } else if(want == SSL_ERROR_SYSCALL) {
8173 #ifdef EPIPE
8174 if(errno == EPIPE && verbosity < 2) {
8175 /* silence 'broken pipe' */
8176 return -1;
8177 }
8178 #endif
8179 if(errno != 0)
8180 log_err("fast_reload print to remote client: "
8181 "SSL_write syscall: %s",
8182 sock_strerror(errno));
8183 return -1;
8184 }
8185 log_crypto_err_io("fast_reload print to remote client: "
8186 "could not SSL_write", want);
8187 return -1;
8188 }
8189 return r;
8190 }
8191 #endif /* HAVE_SSL */
8192
8193 /** fast reload, send client item for fd, returns bytes sent, or 0 for wait
8194 * later, or -1 on failure. */
8195 static int
fr_client_send_item_fd(struct fast_reload_printq * printq)8196 fr_client_send_item_fd(struct fast_reload_printq* printq)
8197 {
8198 int r;
8199 r = (int)send(printq->remote.fd,
8200 printq->client_item+printq->client_byte_count,
8201 printq->client_len - printq->client_byte_count, 0);
8202 if(r == -1) {
8203 if(
8204 #ifndef USE_WINSOCK
8205 errno == EINTR || errno == EAGAIN
8206 # ifdef EWOULDBLOCK
8207 || errno == EWOULDBLOCK
8208 # endif
8209 #else
8210 WSAGetLastError() == WSAEINTR ||
8211 WSAGetLastError() == WSAEINPROGRESS ||
8212 WSAGetLastError() == WSAEWOULDBLOCK
8213 #endif
8214 ) {
8215 #ifdef USE_WINSOCK
8216 ub_winsock_tcp_wouldblock(comm_point_internal(printq->client_cp), UB_EV_WRITE);
8217 #endif
8218 return 0; /* Try again. */
8219 }
8220 log_err("fast_reload print to remote client: send failed: %s",
8221 sock_strerror(errno));
8222 return -1;
8223 }
8224 return r;
8225 }
8226
8227 /** fast reload, send current client item. false on failure or wait later. */
8228 static int
fr_client_send_item(struct fast_reload_printq * printq)8229 fr_client_send_item(struct fast_reload_printq* printq)
8230 {
8231 int r;
8232 #ifdef HAVE_SSL
8233 if(printq->remote.ssl) {
8234 r = fr_client_send_item_ssl(printq);
8235 } else {
8236 #endif
8237 r = fr_client_send_item_fd(printq);
8238 #ifdef HAVE_SSL
8239 }
8240 #endif
8241 if(r == 0) {
8242 /* Wait for later. */
8243 return 0;
8244 } else if(r == -1) {
8245 /* It failed, close comm point and stop sending. */
8246 fr_printq_remove(printq);
8247 return 0;
8248 }
8249 printq->client_byte_count += r;
8250 if(printq->client_byte_count < printq->client_len)
8251 return 0; /* Print more later. */
8252 return 1;
8253 }
8254
8255 /** fast reload, pick up the next item to print */
8256 static void
fr_client_pickup_next_item(struct fast_reload_printq * printq)8257 fr_client_pickup_next_item(struct fast_reload_printq* printq)
8258 {
8259 struct config_strlist* item;
8260 /* Pop first off the list. */
8261 if(!printq->to_print->first) {
8262 printq->client_item = NULL;
8263 printq->client_len = 0;
8264 printq->client_byte_count = 0;
8265 return;
8266 }
8267 item = printq->to_print->first;
8268 if(item->next) {
8269 printq->to_print->first = item->next;
8270 } else {
8271 printq->to_print->first = NULL;
8272 printq->to_print->last = NULL;
8273 }
8274 item->next = NULL;
8275 printq->client_len = 0;
8276 printq->client_byte_count = 0;
8277 printq->client_item = item->str;
8278 item->str = NULL;
8279 free(item);
8280 /* The len is the number of bytes to print out, and thus excludes
8281 * the terminator zero. */
8282 if(printq->client_item)
8283 printq->client_len = (int)strlen(printq->client_item);
8284 }
8285
fast_reload_client_callback(struct comm_point * ATTR_UNUSED (c),void * arg,int err,struct comm_reply * ATTR_UNUSED (rep))8286 int fast_reload_client_callback(struct comm_point* ATTR_UNUSED(c), void* arg,
8287 int err, struct comm_reply* ATTR_UNUSED(rep))
8288 {
8289 struct fast_reload_printq* printq = (struct fast_reload_printq*)arg;
8290 if(!printq->client_cp) {
8291 fr_printq_remove(printq);
8292 return 0; /* the output is closed and deleted */
8293 }
8294 if(err != NETEVENT_NOERROR) {
8295 verbose(VERB_ALGO, "fast reload client: error, close it");
8296 fr_printq_remove(printq);
8297 return 0;
8298 }
8299 #ifdef HAVE_SSL
8300 if(printq->client_cp->ssl_shake_state == comm_ssl_shake_hs_read) {
8301 /* read condition satisfied back to writing */
8302 comm_point_listen_for_rw(printq->client_cp, 0, 1);
8303 printq->client_cp->ssl_shake_state = comm_ssl_shake_none;
8304 }
8305 #endif /* HAVE_SSL */
8306
8307 /* Pickup an item if there are none */
8308 if(!printq->client_item) {
8309 fr_client_pickup_next_item(printq);
8310 }
8311 if(!printq->client_item) {
8312 if(printq->in_list) {
8313 /* Nothing more to print, it can be removed. */
8314 fr_printq_remove(printq);
8315 return 0;
8316 }
8317 /* Done with printing for now. */
8318 comm_point_stop_listening(printq->client_cp);
8319 return 0;
8320 }
8321
8322 /* Try to print out a number of items, if they can print in full. */
8323 while(printq->client_item) {
8324 /* Send current item, if any. */
8325 if(printq->client_item && printq->client_len != 0 &&
8326 printq->client_byte_count < printq->client_len) {
8327 if(!fr_client_send_item(printq))
8328 return 0;
8329 }
8330
8331 /* The current item is done. */
8332 if(printq->client_item) {
8333 free(printq->client_item);
8334 printq->client_item = NULL;
8335 printq->client_len = 0;
8336 printq->client_byte_count = 0;
8337 }
8338 if(!printq->to_print->first) {
8339 if(printq->in_list) {
8340 /* Nothing more to print, it can be removed. */
8341 fr_printq_remove(printq);
8342 return 0;
8343 }
8344 /* Done with printing for now. */
8345 comm_point_stop_listening(printq->client_cp);
8346 return 0;
8347 }
8348 fr_client_pickup_next_item(printq);
8349 }
8350
8351 return 0;
8352 }
8353
8354 #ifndef THREADS_DISABLED
8355 /** fast reload printq create */
8356 static struct fast_reload_printq*
fr_printq_create(struct comm_point * c,struct worker * worker)8357 fr_printq_create(struct comm_point* c, struct worker* worker)
8358 {
8359 struct fast_reload_printq* printq = calloc(1, sizeof(*printq));
8360 if(!printq)
8361 return NULL;
8362 printq->to_print = calloc(1, sizeof(*printq->to_print));
8363 if(!printq->to_print) {
8364 free(printq);
8365 return NULL;
8366 }
8367 printq->worker = worker;
8368 printq->client_cp = c;
8369 printq->client_cp->callback = fast_reload_client_callback;
8370 printq->client_cp->cb_arg = printq;
8371 return printq;
8372 }
8373 #endif /* !THREADS_DISABLED */
8374
8375 /** fast reload printq delete */
8376 static void
fr_printq_delete(struct fast_reload_printq * printq)8377 fr_printq_delete(struct fast_reload_printq* printq)
8378 {
8379 if(!printq)
8380 return;
8381 #ifdef HAVE_SSL
8382 if(printq->remote.ssl) {
8383 SSL_shutdown(printq->remote.ssl);
8384 SSL_free(printq->remote.ssl);
8385 }
8386 #endif
8387 comm_point_delete(printq->client_cp);
8388 if(printq->to_print) {
8389 config_delstrlist(printq->to_print->first);
8390 free(printq->to_print);
8391 }
8392 free(printq);
8393 }
8394
8395 /** fast reload printq, returns true if the list is empty and no item */
8396 static int
fr_printq_empty(struct fast_reload_printq * printq)8397 fr_printq_empty(struct fast_reload_printq* printq)
8398 {
8399 if(printq->to_print->first == NULL && printq->client_item == NULL)
8400 return 1;
8401 return 0;
8402 }
8403
8404 /** fast reload printq, insert onto list */
8405 static void
fr_printq_list_insert(struct fast_reload_printq * printq,struct daemon * daemon)8406 fr_printq_list_insert(struct fast_reload_printq* printq, struct daemon* daemon)
8407 {
8408 if(printq->in_list)
8409 return;
8410 printq->next = daemon->fast_reload_printq_list;
8411 if(printq->next)
8412 printq->next->prev = printq;
8413 printq->prev = NULL;
8414 printq->in_list = 1;
8415 daemon->fast_reload_printq_list = printq;
8416 }
8417
8418 /** fast reload printq delete list */
8419 void
fast_reload_printq_list_delete(struct fast_reload_printq * list)8420 fast_reload_printq_list_delete(struct fast_reload_printq* list)
8421 {
8422 struct fast_reload_printq* printq = list, *next;
8423 while(printq) {
8424 next = printq->next;
8425 fr_printq_delete(printq);
8426 printq = next;
8427 }
8428 }
8429
8430 /** fast reload printq remove the item from the printq list */
8431 static void
fr_printq_list_remove(struct fast_reload_printq * printq)8432 fr_printq_list_remove(struct fast_reload_printq* printq)
8433 {
8434 struct daemon* daemon = printq->worker->daemon;
8435 if(printq->prev == NULL)
8436 daemon->fast_reload_printq_list = printq->next;
8437 else printq->prev->next = printq->next;
8438 if(printq->next)
8439 printq->next->prev = printq->prev;
8440 printq->in_list = 0;
8441 }
8442
8443 /** fast reload printq, remove the printq when no longer needed,
8444 * like the stream is closed. */
8445 static void
fr_printq_remove(struct fast_reload_printq * printq)8446 fr_printq_remove(struct fast_reload_printq* printq)
8447 {
8448 if(!printq)
8449 return;
8450 if(printq->worker->daemon->fast_reload_thread &&
8451 printq->worker->daemon->fast_reload_thread->printq == printq)
8452 printq->worker->daemon->fast_reload_thread->printq = NULL;
8453 if(printq->in_list)
8454 fr_printq_list_remove(printq);
8455 fr_printq_delete(printq);
8456 }
8457
8458 /** fast reload thread, send stop command to the thread, from the main thread.
8459 */
8460 static void
fr_send_stop(struct fast_reload_thread * fr)8461 fr_send_stop(struct fast_reload_thread* fr)
8462 {
8463 fr_send_cmd_to(fr, fast_reload_notification_exit, 1, 0);
8464 }
8465
8466 void
fast_reload_thread_start(RES * ssl,struct worker * worker,struct rc_state * s,int fr_verb,int fr_nopause,int fr_drop_mesh)8467 fast_reload_thread_start(RES* ssl, struct worker* worker, struct rc_state* s,
8468 int fr_verb, int fr_nopause, int fr_drop_mesh)
8469 {
8470 if(worker->daemon->fast_reload_thread) {
8471 log_err("fast reload thread already running");
8472 return;
8473 }
8474 if(!fast_reload_thread_setup(worker, fr_verb, fr_nopause,
8475 fr_drop_mesh)) {
8476 if(!ssl_printf(ssl, "error could not setup thread\n"))
8477 return;
8478 return;
8479 }
8480 worker->daemon->fast_reload_thread->started = 1;
8481
8482 #ifndef THREADS_DISABLED
8483 /* Setup command listener in remote servicing thread */
8484 /* The listener has to be nonblocking, so the the remote servicing
8485 * thread can continue to service DNS queries, the fast reload
8486 * thread is going to read the config from disk and apply it. */
8487 /* The commpair[1] element can stay blocking, it is used by the
8488 * fast reload thread to communicate back. The thread needs to wait
8489 * at these times, when it has to check briefly it can use poll. */
8490 fd_set_nonblock(worker->daemon->fast_reload_thread->commpair[0]);
8491 worker->daemon->fast_reload_thread->service_event = ub_event_new(
8492 comm_base_internal(worker->base),
8493 worker->daemon->fast_reload_thread->commpair[0],
8494 UB_EV_READ | UB_EV_PERSIST, fast_reload_service_cb,
8495 worker->daemon->fast_reload_thread);
8496 if(!worker->daemon->fast_reload_thread->service_event) {
8497 fast_reload_thread_desetup(worker->daemon->fast_reload_thread);
8498 if(!ssl_printf(ssl, "error out of memory\n"))
8499 return;
8500 return;
8501 }
8502 if(ub_event_add(worker->daemon->fast_reload_thread->service_event,
8503 NULL) != 0) {
8504 fast_reload_thread_desetup(worker->daemon->fast_reload_thread);
8505 if(!ssl_printf(ssl, "error out of memory adding service event\n"))
8506 return;
8507 return;
8508 }
8509 worker->daemon->fast_reload_thread->service_event_is_added = 1;
8510
8511 /* Setup the comm point to the remote control client as an event
8512 * on the remote servicing thread, which it already is.
8513 * It needs a new callback to service it. */
8514 log_assert(s);
8515 state_list_remove_elem(&s->rc->busy_list, s->c);
8516 s->rc->active --;
8517 /* Set the comm point file descriptor to nonblocking. So that
8518 * printout to the remote control client does not block the
8519 * server thread from servicing DNS queries. */
8520 fd_set_nonblock(s->c->fd);
8521 worker->daemon->fast_reload_thread->printq = fr_printq_create(s->c,
8522 worker);
8523 if(!worker->daemon->fast_reload_thread->printq) {
8524 fast_reload_thread_desetup(worker->daemon->fast_reload_thread);
8525 if(!ssl_printf(ssl, "error out of memory create printq\n"))
8526 return;
8527 return;
8528 }
8529 worker->daemon->fast_reload_thread->printq->remote = *ssl;
8530 s->rc = NULL; /* move away the rc state */
8531 /* Nothing to print right now, so no need to have it active. */
8532 comm_point_stop_listening(worker->daemon->fast_reload_thread->printq->client_cp);
8533
8534 /* Start fast reload thread */
8535 ub_thread_create(&worker->daemon->fast_reload_thread->tid,
8536 fast_reload_thread_main, worker->daemon->fast_reload_thread);
8537 #else
8538 (void)s;
8539 #endif
8540 }
8541
8542 void
fast_reload_thread_stop(struct fast_reload_thread * fast_reload_thread)8543 fast_reload_thread_stop(struct fast_reload_thread* fast_reload_thread)
8544 {
8545 struct worker* worker = fast_reload_thread->worker;
8546 if(!fast_reload_thread)
8547 return;
8548 fr_send_stop(fast_reload_thread);
8549 if(worker->daemon->fast_reload_thread != NULL) {
8550 /* If it did not exit yet, join with the thread now. It is
8551 * going to exit because the exit command is sent to it. */
8552 fr_main_perform_done(fast_reload_thread);
8553 }
8554 }
8555