xref: /freebsd/contrib/unbound/daemon/remote.c (revision f05cddf9)
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 LIMITED
25  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
26  * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE
27  * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
28  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
29  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
30  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
31  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
32  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
33  * 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 SSLv3/TLS capable web browser.
42  * The channel is secured using SSLv3 or 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 #include <ctype.h>
50 #include <ldns/ldns.h>
51 #include "daemon/remote.h"
52 #include "daemon/worker.h"
53 #include "daemon/daemon.h"
54 #include "daemon/stats.h"
55 #include "daemon/cachedump.h"
56 #include "util/log.h"
57 #include "util/config_file.h"
58 #include "util/net_help.h"
59 #include "util/module.h"
60 #include "services/listen_dnsport.h"
61 #include "services/cache/rrset.h"
62 #include "services/cache/infra.h"
63 #include "services/mesh.h"
64 #include "services/localzone.h"
65 #include "util/storage/slabhash.h"
66 #include "util/fptr_wlist.h"
67 #include "util/data/dname.h"
68 #include "validator/validator.h"
69 #include "validator/val_kcache.h"
70 #include "validator/val_kentry.h"
71 #include "validator/val_anchor.h"
72 #include "iterator/iterator.h"
73 #include "iterator/iter_fwd.h"
74 #include "iterator/iter_hints.h"
75 #include "iterator/iter_delegpt.h"
76 #include "services/outbound_list.h"
77 #include "services/outside_network.h"
78 
79 #ifdef HAVE_SYS_TYPES_H
80 #  include <sys/types.h>
81 #endif
82 #ifdef HAVE_NETDB_H
83 #include <netdb.h>
84 #endif
85 
86 /* just for portability */
87 #ifdef SQ
88 #undef SQ
89 #endif
90 
91 /** what to put on statistics lines between var and value, ": " or "=" */
92 #define SQ "="
93 /** if true, inhibits a lot of =0 lines from the stats output */
94 static const int inhibit_zero = 1;
95 
96 /** subtract timers and the values do not overflow or become negative */
97 static void
98 timeval_subtract(struct timeval* d, const struct timeval* end,
99 	const struct timeval* start)
100 {
101 #ifndef S_SPLINT_S
102 	time_t end_usec = end->tv_usec;
103 	d->tv_sec = end->tv_sec - start->tv_sec;
104 	if(end_usec < start->tv_usec) {
105 		end_usec += 1000000;
106 		d->tv_sec--;
107 	}
108 	d->tv_usec = end_usec - start->tv_usec;
109 #endif
110 }
111 
112 /** divide sum of timers to get average */
113 static void
114 timeval_divide(struct timeval* avg, const struct timeval* sum, size_t d)
115 {
116 #ifndef S_SPLINT_S
117 	size_t leftover;
118 	if(d == 0) {
119 		avg->tv_sec = 0;
120 		avg->tv_usec = 0;
121 		return;
122 	}
123 	avg->tv_sec = sum->tv_sec / d;
124 	avg->tv_usec = sum->tv_usec / d;
125 	/* handle fraction from seconds divide */
126 	leftover = sum->tv_sec - avg->tv_sec*d;
127 	avg->tv_usec += (leftover*1000000)/d;
128 #endif
129 }
130 
131 struct daemon_remote*
132 daemon_remote_create(struct config_file* cfg)
133 {
134 	char* s_cert;
135 	char* s_key;
136 	struct daemon_remote* rc = (struct daemon_remote*)calloc(1,
137 		sizeof(*rc));
138 	if(!rc) {
139 		log_err("out of memory in daemon_remote_create");
140 		return NULL;
141 	}
142 	rc->max_active = 10;
143 
144 	if(!cfg->remote_control_enable) {
145 		rc->ctx = NULL;
146 		return rc;
147 	}
148 	rc->ctx = SSL_CTX_new(SSLv23_server_method());
149 	if(!rc->ctx) {
150 		log_crypto_err("could not SSL_CTX_new");
151 		free(rc);
152 		return NULL;
153 	}
154 	/* no SSLv2 because has defects */
155 	if(!(SSL_CTX_set_options(rc->ctx, SSL_OP_NO_SSLv2) & SSL_OP_NO_SSLv2)){
156 		log_crypto_err("could not set SSL_OP_NO_SSLv2");
157 		daemon_remote_delete(rc);
158 		return NULL;
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_file(rc->ctx,s_cert,SSL_FILETYPE_PEM)) {
168 		log_err("Error for server-cert-file: %s", s_cert);
169 		log_crypto_err("Error in SSL_CTX use_certificate_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 	if(!SSL_CTX_load_verify_locations(rc->ctx, s_cert, NULL)) {
183 		log_crypto_err("Error setting up SSL_CTX verify locations");
184 	setup_error:
185 		free(s_cert);
186 		free(s_key);
187 		daemon_remote_delete(rc);
188 		return NULL;
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 
195 	return rc;
196 }
197 
198 void daemon_remote_clear(struct daemon_remote* rc)
199 {
200 	struct rc_state* p, *np;
201 	if(!rc) return;
202 	/* but do not close the ports */
203 	listen_list_delete(rc->accept_list);
204 	rc->accept_list = NULL;
205 	/* do close these sockets */
206 	p = rc->busy_list;
207 	while(p) {
208 		np = p->next;
209 		if(p->ssl)
210 			SSL_free(p->ssl);
211 		comm_point_delete(p->c);
212 		free(p);
213 		p = np;
214 	}
215 	rc->busy_list = NULL;
216 	rc->active = 0;
217 	rc->worker = NULL;
218 }
219 
220 void daemon_remote_delete(struct daemon_remote* rc)
221 {
222 	if(!rc) return;
223 	daemon_remote_clear(rc);
224 	if(rc->ctx) {
225 		SSL_CTX_free(rc->ctx);
226 	}
227 	free(rc);
228 }
229 
230 /**
231  * Add and open a new control port
232  * @param ip: ip str
233  * @param nr: port nr
234  * @param list: list head
235  * @param noproto_is_err: if lack of protocol support is an error.
236  * @return false on failure.
237  */
238 static int
239 add_open(const char* ip, int nr, struct listen_port** list, int noproto_is_err)
240 {
241 	struct addrinfo hints;
242 	struct addrinfo* res;
243 	struct listen_port* n;
244 	int noproto;
245 	int fd, r;
246 	char port[15];
247 	snprintf(port, sizeof(port), "%d", nr);
248 	port[sizeof(port)-1]=0;
249 	memset(&hints, 0, sizeof(hints));
250 	hints.ai_socktype = SOCK_STREAM;
251 	hints.ai_flags = AI_PASSIVE | AI_NUMERICHOST;
252 	if((r = getaddrinfo(ip, port, &hints, &res)) != 0 || !res) {
253 #ifdef USE_WINSOCK
254 		if(!noproto_is_err && r == EAI_NONAME) {
255 			/* tried to lookup the address as name */
256 			return 1; /* return success, but do nothing */
257 		}
258 #endif /* USE_WINSOCK */
259                 log_err("control interface %s:%s getaddrinfo: %s %s",
260 			ip?ip:"default", port, gai_strerror(r),
261 #ifdef EAI_SYSTEM
262 			r==EAI_SYSTEM?(char*)strerror(errno):""
263 #else
264 			""
265 #endif
266 			);
267 		return 0;
268 	}
269 
270 	/* open fd */
271 	fd = create_tcp_accept_sock(res, 1, &noproto);
272 	freeaddrinfo(res);
273 	if(fd == -1 && noproto) {
274 		if(!noproto_is_err)
275 			return 1; /* return success, but do nothing */
276 		log_err("cannot open control interface %s %d : "
277 			"protocol not supported", ip, nr);
278 		return 0;
279 	}
280 	if(fd == -1) {
281 		log_err("cannot open control interface %s %d", ip, nr);
282 		return 0;
283 	}
284 
285 	/* alloc */
286 	n = (struct listen_port*)calloc(1, sizeof(*n));
287 	if(!n) {
288 #ifndef USE_WINSOCK
289 		close(fd);
290 #else
291 		closesocket(fd);
292 #endif
293 		log_err("out of memory");
294 		return 0;
295 	}
296 	n->next = *list;
297 	*list = n;
298 	n->fd = fd;
299 	return 1;
300 }
301 
302 struct listen_port* daemon_remote_open_ports(struct config_file* cfg)
303 {
304 	struct listen_port* l = NULL;
305 	log_assert(cfg->remote_control_enable && cfg->control_port);
306 	if(cfg->control_ifs) {
307 		struct config_strlist* p;
308 		for(p = cfg->control_ifs; p; p = p->next) {
309 			if(!add_open(p->str, cfg->control_port, &l, 1)) {
310 				listening_ports_free(l);
311 				return NULL;
312 			}
313 		}
314 	} else {
315 		/* defaults */
316 		if(cfg->do_ip6 &&
317 			!add_open("::1", cfg->control_port, &l, 0)) {
318 			listening_ports_free(l);
319 			return NULL;
320 		}
321 		if(cfg->do_ip4 &&
322 			!add_open("127.0.0.1", cfg->control_port, &l, 1)) {
323 			listening_ports_free(l);
324 			return NULL;
325 		}
326 	}
327 	return l;
328 }
329 
330 /** open accept commpoint */
331 static int
332 accept_open(struct daemon_remote* rc, int fd)
333 {
334 	struct listen_list* n = (struct listen_list*)malloc(sizeof(*n));
335 	if(!n) {
336 		log_err("out of memory");
337 		return 0;
338 	}
339 	n->next = rc->accept_list;
340 	rc->accept_list = n;
341 	/* open commpt */
342 	n->com = comm_point_create_raw(rc->worker->base, fd, 0,
343 		&remote_accept_callback, rc);
344 	if(!n->com)
345 		return 0;
346 	/* keep this port open, its fd is kept in the rc portlist */
347 	n->com->do_not_close = 1;
348 	return 1;
349 }
350 
351 int daemon_remote_open_accept(struct daemon_remote* rc,
352 	struct listen_port* ports, struct worker* worker)
353 {
354 	struct listen_port* p;
355 	rc->worker = worker;
356 	for(p = ports; p; p = p->next) {
357 		if(!accept_open(rc, p->fd)) {
358 			log_err("could not create accept comm point");
359 			return 0;
360 		}
361 	}
362 	return 1;
363 }
364 
365 void daemon_remote_stop_accept(struct daemon_remote* rc)
366 {
367 	struct listen_list* p;
368 	for(p=rc->accept_list; p; p=p->next) {
369 		comm_point_stop_listening(p->com);
370 	}
371 }
372 
373 void daemon_remote_start_accept(struct daemon_remote* rc)
374 {
375 	struct listen_list* p;
376 	for(p=rc->accept_list; p; p=p->next) {
377 		comm_point_start_listening(p->com, -1, -1);
378 	}
379 }
380 
381 int remote_accept_callback(struct comm_point* c, void* arg, int err,
382 	struct comm_reply* ATTR_UNUSED(rep))
383 {
384 	struct daemon_remote* rc = (struct daemon_remote*)arg;
385 	struct sockaddr_storage addr;
386 	socklen_t addrlen;
387 	int newfd;
388 	struct rc_state* n;
389 	if(err != NETEVENT_NOERROR) {
390 		log_err("error %d on remote_accept_callback", err);
391 		return 0;
392 	}
393 	/* perform the accept */
394 	newfd = comm_point_perform_accept(c, &addr, &addrlen);
395 	if(newfd == -1)
396 		return 0;
397 	/* create new commpoint unless we are servicing already */
398 	if(rc->active >= rc->max_active) {
399 		log_warn("drop incoming remote control: too many connections");
400 	close_exit:
401 #ifndef USE_WINSOCK
402 		close(newfd);
403 #else
404 		closesocket(newfd);
405 #endif
406 		return 0;
407 	}
408 
409 	/* setup commpoint to service the remote control command */
410 	n = (struct rc_state*)calloc(1, sizeof(*n));
411 	if(!n) {
412 		log_err("out of memory");
413 		goto close_exit;
414 	}
415 	/* start in reading state */
416 	n->c = comm_point_create_raw(rc->worker->base, newfd, 0,
417 		&remote_control_callback, n);
418 	if(!n->c) {
419 		log_err("out of memory");
420 		free(n);
421 		goto close_exit;
422 	}
423 	log_addr(VERB_QUERY, "new control connection from", &addr, addrlen);
424 	n->c->do_not_close = 0;
425 	comm_point_stop_listening(n->c);
426 	comm_point_start_listening(n->c, -1, REMOTE_CONTROL_TCP_TIMEOUT);
427 	memcpy(&n->c->repinfo.addr, &addr, addrlen);
428 	n->c->repinfo.addrlen = addrlen;
429 	n->shake_state = rc_hs_read;
430 	n->ssl = SSL_new(rc->ctx);
431 	if(!n->ssl) {
432 		log_crypto_err("could not SSL_new");
433 		comm_point_delete(n->c);
434 		free(n);
435 		goto close_exit;
436 	}
437 	SSL_set_accept_state(n->ssl);
438         (void)SSL_set_mode(n->ssl, SSL_MODE_AUTO_RETRY);
439 	if(!SSL_set_fd(n->ssl, newfd)) {
440 		log_crypto_err("could not SSL_set_fd");
441 		SSL_free(n->ssl);
442 		comm_point_delete(n->c);
443 		free(n);
444 		goto close_exit;
445 	}
446 
447 	n->rc = rc;
448 	n->next = rc->busy_list;
449 	rc->busy_list = n;
450 	rc->active ++;
451 
452 	/* perform the first nonblocking read already, for windows,
453 	 * so it can return wouldblock. could be faster too. */
454 	(void)remote_control_callback(n->c, n, NETEVENT_NOERROR, NULL);
455 	return 0;
456 }
457 
458 /** delete from list */
459 static void
460 state_list_remove_elem(struct rc_state** list, struct comm_point* c)
461 {
462 	while(*list) {
463 		if( (*list)->c == c) {
464 			*list = (*list)->next;
465 			return;
466 		}
467 		list = &(*list)->next;
468 	}
469 }
470 
471 /** decrease active count and remove commpoint from busy list */
472 static void
473 clean_point(struct daemon_remote* rc, struct rc_state* s)
474 {
475 	state_list_remove_elem(&rc->busy_list, s->c);
476 	rc->active --;
477 	if(s->ssl) {
478 		SSL_shutdown(s->ssl);
479 		SSL_free(s->ssl);
480 	}
481 	comm_point_delete(s->c);
482 	free(s);
483 }
484 
485 int
486 ssl_print_text(SSL* ssl, const char* text)
487 {
488 	int r;
489 	if(!ssl)
490 		return 0;
491 	ERR_clear_error();
492 	if((r=SSL_write(ssl, text, (int)strlen(text))) <= 0) {
493 		if(SSL_get_error(ssl, r) == SSL_ERROR_ZERO_RETURN) {
494 			verbose(VERB_QUERY, "warning, in SSL_write, peer "
495 				"closed connection");
496 			return 0;
497 		}
498 		log_crypto_err("could not SSL_write");
499 		return 0;
500 	}
501 	return 1;
502 }
503 
504 /** print text over the ssl connection */
505 static int
506 ssl_print_vmsg(SSL* ssl, const char* format, va_list args)
507 {
508 	char msg[1024];
509 	vsnprintf(msg, sizeof(msg), format, args);
510 	return ssl_print_text(ssl, msg);
511 }
512 
513 /** printf style printing to the ssl connection */
514 int ssl_printf(SSL* ssl, const char* format, ...)
515 {
516 	va_list args;
517 	int ret;
518 	va_start(args, format);
519 	ret = ssl_print_vmsg(ssl, format, args);
520 	va_end(args);
521 	return ret;
522 }
523 
524 int
525 ssl_read_line(SSL* ssl, char* buf, size_t max)
526 {
527 	int r;
528 	size_t len = 0;
529 	if(!ssl)
530 		return 0;
531 	while(len < max) {
532 		ERR_clear_error();
533 		if((r=SSL_read(ssl, buf+len, 1)) <= 0) {
534 			if(SSL_get_error(ssl, r) == SSL_ERROR_ZERO_RETURN) {
535 				buf[len] = 0;
536 				return 1;
537 			}
538 			log_crypto_err("could not SSL_read");
539 			return 0;
540 		}
541 		if(buf[len] == '\n') {
542 			/* return string without \n */
543 			buf[len] = 0;
544 			return 1;
545 		}
546 		len++;
547 	}
548 	buf[max-1] = 0;
549 	log_err("control line too long (%d): %s", (int)max, buf);
550 	return 0;
551 }
552 
553 /** skip whitespace, return new pointer into string */
554 static char*
555 skipwhite(char* str)
556 {
557 	/* EOS \0 is not a space */
558 	while( isspace(*str) )
559 		str++;
560 	return str;
561 }
562 
563 /** send the OK to the control client */
564 static void send_ok(SSL* ssl)
565 {
566 	(void)ssl_printf(ssl, "ok\n");
567 }
568 
569 /** do the stop command */
570 static void
571 do_stop(SSL* ssl, struct daemon_remote* rc)
572 {
573 	rc->worker->need_to_exit = 1;
574 	comm_base_exit(rc->worker->base);
575 	send_ok(ssl);
576 }
577 
578 /** do the reload command */
579 static void
580 do_reload(SSL* ssl, struct daemon_remote* rc)
581 {
582 	rc->worker->need_to_exit = 0;
583 	comm_base_exit(rc->worker->base);
584 	send_ok(ssl);
585 }
586 
587 /** do the verbosity command */
588 static void
589 do_verbosity(SSL* ssl, char* str)
590 {
591 	int val = atoi(str);
592 	if(val == 0 && strcmp(str, "0") != 0) {
593 		ssl_printf(ssl, "error in verbosity number syntax: %s\n", str);
594 		return;
595 	}
596 	verbosity = val;
597 	send_ok(ssl);
598 }
599 
600 /** print stats from statinfo */
601 static int
602 print_stats(SSL* ssl, const char* nm, struct stats_info* s)
603 {
604 	struct timeval avg;
605 	if(!ssl_printf(ssl, "%s.num.queries"SQ"%u\n", nm,
606 		(unsigned)s->svr.num_queries)) return 0;
607 	if(!ssl_printf(ssl, "%s.num.cachehits"SQ"%u\n", nm,
608 		(unsigned)(s->svr.num_queries
609 			- s->svr.num_queries_missed_cache))) return 0;
610 	if(!ssl_printf(ssl, "%s.num.cachemiss"SQ"%u\n", nm,
611 		(unsigned)s->svr.num_queries_missed_cache)) return 0;
612 	if(!ssl_printf(ssl, "%s.num.prefetch"SQ"%u\n", nm,
613 		(unsigned)s->svr.num_queries_prefetch)) return 0;
614 	if(!ssl_printf(ssl, "%s.num.recursivereplies"SQ"%u\n", nm,
615 		(unsigned)s->mesh_replies_sent)) return 0;
616 	if(!ssl_printf(ssl, "%s.requestlist.avg"SQ"%g\n", nm,
617 		(s->svr.num_queries_missed_cache+s->svr.num_queries_prefetch)?
618 			(double)s->svr.sum_query_list_size/
619 			(s->svr.num_queries_missed_cache+
620 			s->svr.num_queries_prefetch) : 0.0)) return 0;
621 	if(!ssl_printf(ssl, "%s.requestlist.max"SQ"%u\n", nm,
622 		(unsigned)s->svr.max_query_list_size)) return 0;
623 	if(!ssl_printf(ssl, "%s.requestlist.overwritten"SQ"%u\n", nm,
624 		(unsigned)s->mesh_jostled)) return 0;
625 	if(!ssl_printf(ssl, "%s.requestlist.exceeded"SQ"%u\n", nm,
626 		(unsigned)s->mesh_dropped)) return 0;
627 	if(!ssl_printf(ssl, "%s.requestlist.current.all"SQ"%u\n", nm,
628 		(unsigned)s->mesh_num_states)) return 0;
629 	if(!ssl_printf(ssl, "%s.requestlist.current.user"SQ"%u\n", nm,
630 		(unsigned)s->mesh_num_reply_states)) return 0;
631 	timeval_divide(&avg, &s->mesh_replies_sum_wait, s->mesh_replies_sent);
632 	if(!ssl_printf(ssl, "%s.recursion.time.avg"SQ"%d.%6.6d\n", nm,
633 		(int)avg.tv_sec, (int)avg.tv_usec)) return 0;
634 	if(!ssl_printf(ssl, "%s.recursion.time.median"SQ"%g\n", nm,
635 		s->mesh_time_median)) return 0;
636 	return 1;
637 }
638 
639 /** print stats for one thread */
640 static int
641 print_thread_stats(SSL* ssl, int i, struct stats_info* s)
642 {
643 	char nm[16];
644 	snprintf(nm, sizeof(nm), "thread%d", i);
645 	nm[sizeof(nm)-1]=0;
646 	return print_stats(ssl, nm, s);
647 }
648 
649 /** print long number */
650 static int
651 print_longnum(SSL* ssl, char* desc, size_t x)
652 {
653 	if(x > 1024*1024*1024) {
654 		/* more than a Gb */
655 		size_t front = x / (size_t)1000000;
656 		size_t back = x % (size_t)1000000;
657 		return ssl_printf(ssl, "%s%u%6.6u\n", desc,
658 			(unsigned)front, (unsigned)back);
659 	} else {
660 		return ssl_printf(ssl, "%s%u\n", desc, (unsigned)x);
661 	}
662 }
663 
664 /** print mem stats */
665 static int
666 print_mem(SSL* ssl, struct worker* worker, struct daemon* daemon)
667 {
668 	int m;
669 	size_t msg, rrset, val, iter;
670 #ifdef HAVE_SBRK
671 	extern void* unbound_start_brk;
672 	void* cur = sbrk(0);
673 	if(!print_longnum(ssl, "mem.total.sbrk"SQ,
674 		(size_t)((char*)cur - (char*)unbound_start_brk))) return 0;
675 #endif /* HAVE_SBRK */
676 	msg = slabhash_get_mem(daemon->env->msg_cache);
677 	rrset = slabhash_get_mem(&daemon->env->rrset_cache->table);
678 	val=0;
679 	iter=0;
680 	m = modstack_find(&worker->env.mesh->mods, "validator");
681 	if(m != -1) {
682 		fptr_ok(fptr_whitelist_mod_get_mem(worker->env.mesh->
683 			mods.mod[m]->get_mem));
684 		val = (*worker->env.mesh->mods.mod[m]->get_mem)
685 			(&worker->env, m);
686 	}
687 	m = modstack_find(&worker->env.mesh->mods, "iterator");
688 	if(m != -1) {
689 		fptr_ok(fptr_whitelist_mod_get_mem(worker->env.mesh->
690 			mods.mod[m]->get_mem));
691 		iter = (*worker->env.mesh->mods.mod[m]->get_mem)
692 			(&worker->env, m);
693 	}
694 
695 	if(!print_longnum(ssl, "mem.cache.rrset"SQ, rrset))
696 		return 0;
697 	if(!print_longnum(ssl, "mem.cache.message"SQ, msg))
698 		return 0;
699 	if(!print_longnum(ssl, "mem.mod.iterator"SQ, iter))
700 		return 0;
701 	if(!print_longnum(ssl, "mem.mod.validator"SQ, val))
702 		return 0;
703 	return 1;
704 }
705 
706 /** print uptime stats */
707 static int
708 print_uptime(SSL* ssl, struct worker* worker, int reset)
709 {
710 	struct timeval now = *worker->env.now_tv;
711 	struct timeval up, dt;
712 	timeval_subtract(&up, &now, &worker->daemon->time_boot);
713 	timeval_subtract(&dt, &now, &worker->daemon->time_last_stat);
714 	if(reset)
715 		worker->daemon->time_last_stat = now;
716 	if(!ssl_printf(ssl, "time.now"SQ"%d.%6.6d\n",
717 		(unsigned)now.tv_sec, (unsigned)now.tv_usec)) return 0;
718 	if(!ssl_printf(ssl, "time.up"SQ"%d.%6.6d\n",
719 		(unsigned)up.tv_sec, (unsigned)up.tv_usec)) return 0;
720 	if(!ssl_printf(ssl, "time.elapsed"SQ"%d.%6.6d\n",
721 		(unsigned)dt.tv_sec, (unsigned)dt.tv_usec)) return 0;
722 	return 1;
723 }
724 
725 /** print extended histogram */
726 static int
727 print_hist(SSL* ssl, struct stats_info* s)
728 {
729 	struct timehist* hist;
730 	size_t i;
731 	hist = timehist_setup();
732 	if(!hist) {
733 		log_err("out of memory");
734 		return 0;
735 	}
736 	timehist_import(hist, s->svr.hist, NUM_BUCKETS_HIST);
737 	for(i=0; i<hist->num; i++) {
738 		if(!ssl_printf(ssl,
739 			"histogram.%6.6d.%6.6d.to.%6.6d.%6.6d=%u\n",
740 			(int)hist->buckets[i].lower.tv_sec,
741 			(int)hist->buckets[i].lower.tv_usec,
742 			(int)hist->buckets[i].upper.tv_sec,
743 			(int)hist->buckets[i].upper.tv_usec,
744 			(unsigned)hist->buckets[i].count)) {
745 			timehist_delete(hist);
746 			return 0;
747 		}
748 	}
749 	timehist_delete(hist);
750 	return 1;
751 }
752 
753 /** print extended stats */
754 static int
755 print_ext(SSL* ssl, struct stats_info* s)
756 {
757 	int i;
758 	char nm[16];
759 	const ldns_rr_descriptor* desc;
760 	const ldns_lookup_table* lt;
761 	/* TYPE */
762 	for(i=0; i<STATS_QTYPE_NUM; i++) {
763 		if(inhibit_zero && s->svr.qtype[i] == 0)
764 			continue;
765 		desc = ldns_rr_descript((uint16_t)i);
766 		if(desc && desc->_name) {
767 			snprintf(nm, sizeof(nm), "%s", desc->_name);
768 		} else if (i == LDNS_RR_TYPE_IXFR) {
769 			snprintf(nm, sizeof(nm), "IXFR");
770 		} else if (i == LDNS_RR_TYPE_AXFR) {
771 			snprintf(nm, sizeof(nm), "AXFR");
772 		} else if (i == LDNS_RR_TYPE_MAILA) {
773 			snprintf(nm, sizeof(nm), "MAILA");
774 		} else if (i == LDNS_RR_TYPE_MAILB) {
775 			snprintf(nm, sizeof(nm), "MAILB");
776 		} else if (i == LDNS_RR_TYPE_ANY) {
777 			snprintf(nm, sizeof(nm), "ANY");
778 		} else {
779 			snprintf(nm, sizeof(nm), "TYPE%d", i);
780 		}
781 		if(!ssl_printf(ssl, "num.query.type.%s"SQ"%u\n",
782 			nm, (unsigned)s->svr.qtype[i])) return 0;
783 	}
784 	if(!inhibit_zero || s->svr.qtype_big) {
785 		if(!ssl_printf(ssl, "num.query.type.other"SQ"%u\n",
786 			(unsigned)s->svr.qtype_big)) return 0;
787 	}
788 	/* CLASS */
789 	for(i=0; i<STATS_QCLASS_NUM; i++) {
790 		if(inhibit_zero && s->svr.qclass[i] == 0)
791 			continue;
792 		lt = ldns_lookup_by_id(ldns_rr_classes, i);
793 		if(lt && lt->name) {
794 			snprintf(nm, sizeof(nm), "%s", lt->name);
795 		} else {
796 			snprintf(nm, sizeof(nm), "CLASS%d", i);
797 		}
798 		if(!ssl_printf(ssl, "num.query.class.%s"SQ"%u\n",
799 			nm, (unsigned)s->svr.qclass[i])) return 0;
800 	}
801 	if(!inhibit_zero || s->svr.qclass_big) {
802 		if(!ssl_printf(ssl, "num.query.class.other"SQ"%u\n",
803 			(unsigned)s->svr.qclass_big)) return 0;
804 	}
805 	/* OPCODE */
806 	for(i=0; i<STATS_OPCODE_NUM; i++) {
807 		if(inhibit_zero && s->svr.qopcode[i] == 0)
808 			continue;
809 		lt = ldns_lookup_by_id(ldns_opcodes, i);
810 		if(lt && lt->name) {
811 			snprintf(nm, sizeof(nm), "%s", lt->name);
812 		} else {
813 			snprintf(nm, sizeof(nm), "OPCODE%d", i);
814 		}
815 		if(!ssl_printf(ssl, "num.query.opcode.%s"SQ"%u\n",
816 			nm, (unsigned)s->svr.qopcode[i])) return 0;
817 	}
818 	/* transport */
819 	if(!ssl_printf(ssl, "num.query.tcp"SQ"%u\n",
820 		(unsigned)s->svr.qtcp)) return 0;
821 	if(!ssl_printf(ssl, "num.query.ipv6"SQ"%u\n",
822 		(unsigned)s->svr.qipv6)) return 0;
823 	/* flags */
824 	if(!ssl_printf(ssl, "num.query.flags.QR"SQ"%u\n",
825 		(unsigned)s->svr.qbit_QR)) return 0;
826 	if(!ssl_printf(ssl, "num.query.flags.AA"SQ"%u\n",
827 		(unsigned)s->svr.qbit_AA)) return 0;
828 	if(!ssl_printf(ssl, "num.query.flags.TC"SQ"%u\n",
829 		(unsigned)s->svr.qbit_TC)) return 0;
830 	if(!ssl_printf(ssl, "num.query.flags.RD"SQ"%u\n",
831 		(unsigned)s->svr.qbit_RD)) return 0;
832 	if(!ssl_printf(ssl, "num.query.flags.RA"SQ"%u\n",
833 		(unsigned)s->svr.qbit_RA)) return 0;
834 	if(!ssl_printf(ssl, "num.query.flags.Z"SQ"%u\n",
835 		(unsigned)s->svr.qbit_Z)) return 0;
836 	if(!ssl_printf(ssl, "num.query.flags.AD"SQ"%u\n",
837 		(unsigned)s->svr.qbit_AD)) return 0;
838 	if(!ssl_printf(ssl, "num.query.flags.CD"SQ"%u\n",
839 		(unsigned)s->svr.qbit_CD)) return 0;
840 	if(!ssl_printf(ssl, "num.query.edns.present"SQ"%u\n",
841 		(unsigned)s->svr.qEDNS)) return 0;
842 	if(!ssl_printf(ssl, "num.query.edns.DO"SQ"%u\n",
843 		(unsigned)s->svr.qEDNS_DO)) return 0;
844 
845 	/* RCODE */
846 	for(i=0; i<STATS_RCODE_NUM; i++) {
847 		if(inhibit_zero && s->svr.ans_rcode[i] == 0)
848 			continue;
849 		lt = ldns_lookup_by_id(ldns_rcodes, i);
850 		if(lt && lt->name) {
851 			snprintf(nm, sizeof(nm), "%s", lt->name);
852 		} else {
853 			snprintf(nm, sizeof(nm), "RCODE%d", i);
854 		}
855 		if(!ssl_printf(ssl, "num.answer.rcode.%s"SQ"%u\n",
856 			nm, (unsigned)s->svr.ans_rcode[i])) return 0;
857 	}
858 	if(!inhibit_zero || s->svr.ans_rcode_nodata) {
859 		if(!ssl_printf(ssl, "num.answer.rcode.nodata"SQ"%u\n",
860 			(unsigned)s->svr.ans_rcode_nodata)) return 0;
861 	}
862 	/* validation */
863 	if(!ssl_printf(ssl, "num.answer.secure"SQ"%u\n",
864 		(unsigned)s->svr.ans_secure)) return 0;
865 	if(!ssl_printf(ssl, "num.answer.bogus"SQ"%u\n",
866 		(unsigned)s->svr.ans_bogus)) return 0;
867 	if(!ssl_printf(ssl, "num.rrset.bogus"SQ"%u\n",
868 		(unsigned)s->svr.rrset_bogus)) return 0;
869 	/* threat detection */
870 	if(!ssl_printf(ssl, "unwanted.queries"SQ"%u\n",
871 		(unsigned)s->svr.unwanted_queries)) return 0;
872 	if(!ssl_printf(ssl, "unwanted.replies"SQ"%u\n",
873 		(unsigned)s->svr.unwanted_replies)) return 0;
874 	return 1;
875 }
876 
877 /** do the stats command */
878 static void
879 do_stats(SSL* ssl, struct daemon_remote* rc, int reset)
880 {
881 	struct daemon* daemon = rc->worker->daemon;
882 	struct stats_info total;
883 	struct stats_info s;
884 	int i;
885 	log_assert(daemon->num > 0);
886 	/* gather all thread statistics in one place */
887 	for(i=0; i<daemon->num; i++) {
888 		server_stats_obtain(rc->worker, daemon->workers[i], &s, reset);
889 		if(!print_thread_stats(ssl, i, &s))
890 			return;
891 		if(i == 0)
892 			total = s;
893 		else	server_stats_add(&total, &s);
894 	}
895 	/* print the thread statistics */
896 	total.mesh_time_median /= (double)daemon->num;
897 	if(!print_stats(ssl, "total", &total))
898 		return;
899 	if(!print_uptime(ssl, rc->worker, reset))
900 		return;
901 	if(daemon->cfg->stat_extended) {
902 		if(!print_mem(ssl, rc->worker, daemon))
903 			return;
904 		if(!print_hist(ssl, &total))
905 			return;
906 		if(!print_ext(ssl, &total))
907 			return;
908 	}
909 }
910 
911 /** parse commandline argument domain name */
912 static int
913 parse_arg_name(SSL* ssl, char* str, uint8_t** res, size_t* len, int* labs)
914 {
915 	ldns_rdf* rdf;
916 	*res = NULL;
917 	*len = 0;
918 	*labs = 0;
919 	rdf = ldns_dname_new_frm_str(str);
920 	if(!rdf) {
921 		ssl_printf(ssl, "error cannot parse name %s\n", str);
922 		return 0;
923 	}
924 	*res = memdup(ldns_rdf_data(rdf), ldns_rdf_size(rdf));
925 	ldns_rdf_deep_free(rdf);
926 	if(!*res) {
927 		ssl_printf(ssl, "error out of memory\n");
928 		return 0;
929 	}
930 	*labs = dname_count_size_labels(*res, len);
931 	return 1;
932 }
933 
934 /** find second argument, modifies string */
935 static int
936 find_arg2(SSL* ssl, char* arg, char** arg2)
937 {
938 	char* as = strchr(arg, ' ');
939 	char* at = strchr(arg, '\t');
940 	if(as && at) {
941 		if(at < as)
942 			as = at;
943 		as[0]=0;
944 		*arg2 = skipwhite(as+1);
945 	} else if(as) {
946 		as[0]=0;
947 		*arg2 = skipwhite(as+1);
948 	} else if(at) {
949 		at[0]=0;
950 		*arg2 = skipwhite(at+1);
951 	} else {
952 		ssl_printf(ssl, "error could not find next argument "
953 			"after %s\n", arg);
954 		return 0;
955 	}
956 	return 1;
957 }
958 
959 /** Add a new zone */
960 static void
961 do_zone_add(SSL* ssl, struct worker* worker, char* arg)
962 {
963 	uint8_t* nm;
964 	int nmlabs;
965 	size_t nmlen;
966 	char* arg2;
967 	enum localzone_type t;
968 	struct local_zone* z;
969 	if(!find_arg2(ssl, arg, &arg2))
970 		return;
971 	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
972 		return;
973 	if(!local_zone_str2type(arg2, &t)) {
974 		ssl_printf(ssl, "error not a zone type. %s\n", arg2);
975 		free(nm);
976 		return;
977 	}
978 	lock_quick_lock(&worker->daemon->local_zones->lock);
979 	if((z=local_zones_find(worker->daemon->local_zones, nm, nmlen,
980 		nmlabs, LDNS_RR_CLASS_IN))) {
981 		/* already present in tree */
982 		lock_rw_wrlock(&z->lock);
983 		z->type = t; /* update type anyway */
984 		lock_rw_unlock(&z->lock);
985 		free(nm);
986 		lock_quick_unlock(&worker->daemon->local_zones->lock);
987 		send_ok(ssl);
988 		return;
989 	}
990 	if(!local_zones_add_zone(worker->daemon->local_zones, nm, nmlen,
991 		nmlabs, LDNS_RR_CLASS_IN, t)) {
992 		lock_quick_unlock(&worker->daemon->local_zones->lock);
993 		ssl_printf(ssl, "error out of memory\n");
994 		return;
995 	}
996 	lock_quick_unlock(&worker->daemon->local_zones->lock);
997 	send_ok(ssl);
998 }
999 
1000 /** Remove a zone */
1001 static void
1002 do_zone_remove(SSL* ssl, struct worker* worker, char* arg)
1003 {
1004 	uint8_t* nm;
1005 	int nmlabs;
1006 	size_t nmlen;
1007 	struct local_zone* z;
1008 	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1009 		return;
1010 	lock_quick_lock(&worker->daemon->local_zones->lock);
1011 	if((z=local_zones_find(worker->daemon->local_zones, nm, nmlen,
1012 		nmlabs, LDNS_RR_CLASS_IN))) {
1013 		/* present in tree */
1014 		local_zones_del_zone(worker->daemon->local_zones, z);
1015 	}
1016 	lock_quick_unlock(&worker->daemon->local_zones->lock);
1017 	free(nm);
1018 	send_ok(ssl);
1019 }
1020 
1021 /** Add new RR data */
1022 static void
1023 do_data_add(SSL* ssl, struct worker* worker, char* arg)
1024 {
1025 	if(!local_zones_add_RR(worker->daemon->local_zones, arg,
1026 		worker->env.scratch_buffer)) {
1027 		ssl_printf(ssl,"error in syntax or out of memory, %s\n", arg);
1028 		return;
1029 	}
1030 	send_ok(ssl);
1031 }
1032 
1033 /** Remove RR data */
1034 static void
1035 do_data_remove(SSL* ssl, struct worker* worker, char* arg)
1036 {
1037 	uint8_t* nm;
1038 	int nmlabs;
1039 	size_t nmlen;
1040 	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1041 		return;
1042 	local_zones_del_data(worker->daemon->local_zones, nm,
1043 		nmlen, nmlabs, LDNS_RR_CLASS_IN);
1044 	free(nm);
1045 	send_ok(ssl);
1046 }
1047 
1048 /** cache lookup of nameservers */
1049 static void
1050 do_lookup(SSL* ssl, struct worker* worker, char* arg)
1051 {
1052 	uint8_t* nm;
1053 	int nmlabs;
1054 	size_t nmlen;
1055 	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1056 		return;
1057 	(void)print_deleg_lookup(ssl, worker, nm, nmlen, nmlabs);
1058 	free(nm);
1059 }
1060 
1061 /** flush something from rrset and msg caches */
1062 static void
1063 do_cache_remove(struct worker* worker, uint8_t* nm, size_t nmlen,
1064 	uint16_t t, uint16_t c)
1065 {
1066 	hashvalue_t h;
1067 	struct query_info k;
1068 	rrset_cache_remove(worker->env.rrset_cache, nm, nmlen, t, c, 0);
1069 	if(t == LDNS_RR_TYPE_SOA)
1070 		rrset_cache_remove(worker->env.rrset_cache, nm, nmlen, t, c,
1071 			PACKED_RRSET_SOA_NEG);
1072 	k.qname = nm;
1073 	k.qname_len = nmlen;
1074 	k.qtype = t;
1075 	k.qclass = c;
1076 	h = query_info_hash(&k);
1077 	slabhash_remove(worker->env.msg_cache, h, &k);
1078 }
1079 
1080 /** flush a type */
1081 static void
1082 do_flush_type(SSL* ssl, struct worker* worker, char* arg)
1083 {
1084 	uint8_t* nm;
1085 	int nmlabs;
1086 	size_t nmlen;
1087 	char* arg2;
1088 	uint16_t t;
1089 	if(!find_arg2(ssl, arg, &arg2))
1090 		return;
1091 	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1092 		return;
1093 	t = ldns_get_rr_type_by_name(arg2);
1094 	do_cache_remove(worker, nm, nmlen, t, LDNS_RR_CLASS_IN);
1095 
1096 	free(nm);
1097 	send_ok(ssl);
1098 }
1099 
1100 /** flush statistics */
1101 static void
1102 do_flush_stats(SSL* ssl, struct worker* worker)
1103 {
1104 	worker_stats_clear(worker);
1105 	send_ok(ssl);
1106 }
1107 
1108 /**
1109  * Local info for deletion functions
1110  */
1111 struct del_info {
1112 	/** worker */
1113 	struct worker* worker;
1114 	/** name to delete */
1115 	uint8_t* name;
1116 	/** length */
1117 	size_t len;
1118 	/** labels */
1119 	int labs;
1120 	/** now */
1121 	uint32_t now;
1122 	/** time to invalidate to */
1123 	uint32_t expired;
1124 	/** number of rrsets removed */
1125 	size_t num_rrsets;
1126 	/** number of msgs removed */
1127 	size_t num_msgs;
1128 	/** number of key entries removed */
1129 	size_t num_keys;
1130 	/** length of addr */
1131 	socklen_t addrlen;
1132 	/** socket address for host deletion */
1133 	struct sockaddr_storage addr;
1134 };
1135 
1136 /** callback to delete hosts in infra cache */
1137 static void
1138 infra_del_host(struct lruhash_entry* e, void* arg)
1139 {
1140 	/* entry is locked */
1141 	struct del_info* inf = (struct del_info*)arg;
1142 	struct infra_key* k = (struct infra_key*)e->key;
1143 	if(sockaddr_cmp(&inf->addr, inf->addrlen, &k->addr, k->addrlen) == 0) {
1144 		struct infra_data* d = (struct infra_data*)e->data;
1145 		d->probedelay = 0;
1146 		d->timeout_A = 0;
1147 		d->timeout_AAAA = 0;
1148 		d->timeout_other = 0;
1149 		rtt_init(&d->rtt);
1150 		if(d->ttl >= inf->now) {
1151 			d->ttl = inf->expired;
1152 			inf->num_keys++;
1153 		}
1154 	}
1155 }
1156 
1157 /** flush infra cache */
1158 static void
1159 do_flush_infra(SSL* ssl, struct worker* worker, char* arg)
1160 {
1161 	struct sockaddr_storage addr;
1162 	socklen_t len;
1163 	struct del_info inf;
1164 	if(strcmp(arg, "all") == 0) {
1165 		slabhash_clear(worker->env.infra_cache->hosts);
1166 		send_ok(ssl);
1167 		return;
1168 	}
1169 	if(!ipstrtoaddr(arg, UNBOUND_DNS_PORT, &addr, &len)) {
1170 		(void)ssl_printf(ssl, "error parsing ip addr: '%s'\n", arg);
1171 		return;
1172 	}
1173 	/* delete all entries from cache */
1174 	/* what we do is to set them all expired */
1175 	inf.worker = worker;
1176 	inf.name = 0;
1177 	inf.len = 0;
1178 	inf.labs = 0;
1179 	inf.now = *worker->env.now;
1180 	inf.expired = *worker->env.now;
1181 	inf.expired -= 3; /* handle 3 seconds skew between threads */
1182 	inf.num_rrsets = 0;
1183 	inf.num_msgs = 0;
1184 	inf.num_keys = 0;
1185 	inf.addrlen = len;
1186 	memmove(&inf.addr, &addr, len);
1187 	slabhash_traverse(worker->env.infra_cache->hosts, 1, &infra_del_host,
1188 		&inf);
1189 	send_ok(ssl);
1190 }
1191 
1192 /** flush requestlist */
1193 static void
1194 do_flush_requestlist(SSL* ssl, struct worker* worker)
1195 {
1196 	mesh_delete_all(worker->env.mesh);
1197 	send_ok(ssl);
1198 }
1199 
1200 /** callback to delete rrsets in a zone */
1201 static void
1202 zone_del_rrset(struct lruhash_entry* e, void* arg)
1203 {
1204 	/* entry is locked */
1205 	struct del_info* inf = (struct del_info*)arg;
1206 	struct ub_packed_rrset_key* k = (struct ub_packed_rrset_key*)e->key;
1207 	if(dname_subdomain_c(k->rk.dname, inf->name)) {
1208 		struct packed_rrset_data* d =
1209 			(struct packed_rrset_data*)e->data;
1210 		if(d->ttl >= inf->now) {
1211 			d->ttl = inf->expired;
1212 			inf->num_rrsets++;
1213 		}
1214 	}
1215 }
1216 
1217 /** callback to delete messages in a zone */
1218 static void
1219 zone_del_msg(struct lruhash_entry* e, void* arg)
1220 {
1221 	/* entry is locked */
1222 	struct del_info* inf = (struct del_info*)arg;
1223 	struct msgreply_entry* k = (struct msgreply_entry*)e->key;
1224 	if(dname_subdomain_c(k->key.qname, inf->name)) {
1225 		struct reply_info* d = (struct reply_info*)e->data;
1226 		if(d->ttl >= inf->now) {
1227 			d->ttl = inf->expired;
1228 			inf->num_msgs++;
1229 		}
1230 	}
1231 }
1232 
1233 /** callback to delete keys in zone */
1234 static void
1235 zone_del_kcache(struct lruhash_entry* e, void* arg)
1236 {
1237 	/* entry is locked */
1238 	struct del_info* inf = (struct del_info*)arg;
1239 	struct key_entry_key* k = (struct key_entry_key*)e->key;
1240 	if(dname_subdomain_c(k->name, inf->name)) {
1241 		struct key_entry_data* d = (struct key_entry_data*)e->data;
1242 		if(d->ttl >= inf->now) {
1243 			d->ttl = inf->expired;
1244 			inf->num_keys++;
1245 		}
1246 	}
1247 }
1248 
1249 /** remove all rrsets and keys from zone from cache */
1250 static void
1251 do_flush_zone(SSL* ssl, struct worker* worker, char* arg)
1252 {
1253 	uint8_t* nm;
1254 	int nmlabs;
1255 	size_t nmlen;
1256 	struct del_info inf;
1257 	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1258 		return;
1259 	/* delete all RRs and key entries from zone */
1260 	/* what we do is to set them all expired */
1261 	inf.worker = worker;
1262 	inf.name = nm;
1263 	inf.len = nmlen;
1264 	inf.labs = nmlabs;
1265 	inf.now = *worker->env.now;
1266 	inf.expired = *worker->env.now;
1267 	inf.expired -= 3; /* handle 3 seconds skew between threads */
1268 	inf.num_rrsets = 0;
1269 	inf.num_msgs = 0;
1270 	inf.num_keys = 0;
1271 	slabhash_traverse(&worker->env.rrset_cache->table, 1,
1272 		&zone_del_rrset, &inf);
1273 
1274 	slabhash_traverse(worker->env.msg_cache, 1, &zone_del_msg, &inf);
1275 
1276 	/* and validator cache */
1277 	if(worker->env.key_cache) {
1278 		slabhash_traverse(worker->env.key_cache->slab, 1,
1279 			&zone_del_kcache, &inf);
1280 	}
1281 
1282 	free(nm);
1283 
1284 	(void)ssl_printf(ssl, "ok removed %u rrsets, %u messages "
1285 		"and %u key entries\n", (unsigned)inf.num_rrsets,
1286 		(unsigned)inf.num_msgs, (unsigned)inf.num_keys);
1287 }
1288 
1289 /** callback to delete bogus rrsets */
1290 static void
1291 bogus_del_rrset(struct lruhash_entry* e, void* arg)
1292 {
1293 	/* entry is locked */
1294 	struct del_info* inf = (struct del_info*)arg;
1295 	struct packed_rrset_data* d = (struct packed_rrset_data*)e->data;
1296 	if(d->security == sec_status_bogus) {
1297 		d->ttl = inf->expired;
1298 		inf->num_rrsets++;
1299 	}
1300 }
1301 
1302 /** callback to delete bogus messages */
1303 static void
1304 bogus_del_msg(struct lruhash_entry* e, void* arg)
1305 {
1306 	/* entry is locked */
1307 	struct del_info* inf = (struct del_info*)arg;
1308 	struct reply_info* d = (struct reply_info*)e->data;
1309 	if(d->security == sec_status_bogus) {
1310 		d->ttl = inf->expired;
1311 		inf->num_msgs++;
1312 	}
1313 }
1314 
1315 /** callback to delete bogus keys */
1316 static void
1317 bogus_del_kcache(struct lruhash_entry* e, void* arg)
1318 {
1319 	/* entry is locked */
1320 	struct del_info* inf = (struct del_info*)arg;
1321 	struct key_entry_data* d = (struct key_entry_data*)e->data;
1322 	if(d->isbad) {
1323 		d->ttl = inf->expired;
1324 		inf->num_keys++;
1325 	}
1326 }
1327 
1328 /** remove all rrsets and keys from zone from cache */
1329 static void
1330 do_flush_bogus(SSL* ssl, struct worker* worker)
1331 {
1332 	struct del_info inf;
1333 	/* what we do is to set them all expired */
1334 	inf.worker = worker;
1335 	inf.now = *worker->env.now;
1336 	inf.expired = *worker->env.now;
1337 	inf.expired -= 3; /* handle 3 seconds skew between threads */
1338 	inf.num_rrsets = 0;
1339 	inf.num_msgs = 0;
1340 	inf.num_keys = 0;
1341 	slabhash_traverse(&worker->env.rrset_cache->table, 1,
1342 		&bogus_del_rrset, &inf);
1343 
1344 	slabhash_traverse(worker->env.msg_cache, 1, &bogus_del_msg, &inf);
1345 
1346 	/* and validator cache */
1347 	if(worker->env.key_cache) {
1348 		slabhash_traverse(worker->env.key_cache->slab, 1,
1349 			&bogus_del_kcache, &inf);
1350 	}
1351 
1352 	(void)ssl_printf(ssl, "ok removed %u rrsets, %u messages "
1353 		"and %u key entries\n", (unsigned)inf.num_rrsets,
1354 		(unsigned)inf.num_msgs, (unsigned)inf.num_keys);
1355 }
1356 
1357 /** remove name rrset from cache */
1358 static void
1359 do_flush_name(SSL* ssl, struct worker* w, char* arg)
1360 {
1361 	uint8_t* nm;
1362 	int nmlabs;
1363 	size_t nmlen;
1364 	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1365 		return;
1366 	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_A, LDNS_RR_CLASS_IN);
1367 	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_AAAA, LDNS_RR_CLASS_IN);
1368 	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_NS, LDNS_RR_CLASS_IN);
1369 	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_SOA, LDNS_RR_CLASS_IN);
1370 	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_CNAME, LDNS_RR_CLASS_IN);
1371 	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_DNAME, LDNS_RR_CLASS_IN);
1372 	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_MX, LDNS_RR_CLASS_IN);
1373 	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_PTR, LDNS_RR_CLASS_IN);
1374 	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_SRV, LDNS_RR_CLASS_IN);
1375 	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_NAPTR, LDNS_RR_CLASS_IN);
1376 
1377 	free(nm);
1378 	send_ok(ssl);
1379 }
1380 
1381 /** printout a delegation point info */
1382 static int
1383 ssl_print_name_dp(SSL* ssl, char* str, uint8_t* nm, uint16_t dclass,
1384 	struct delegpt* dp)
1385 {
1386 	char buf[257];
1387 	struct delegpt_ns* ns;
1388 	struct delegpt_addr* a;
1389 	int f = 0;
1390 	if(str) { /* print header for forward, stub */
1391 		char* c = ldns_rr_class2str(dclass);
1392 		dname_str(nm, buf);
1393 		if(!ssl_printf(ssl, "%s %s %s: ", buf, c, str)) {
1394 			free(c);
1395 			return 0;
1396 		}
1397 		free(c);
1398 	}
1399 	for(ns = dp->nslist; ns; ns = ns->next) {
1400 		dname_str(ns->name, buf);
1401 		if(!ssl_printf(ssl, "%s%s", (f?" ":""), buf))
1402 			return 0;
1403 		f = 1;
1404 	}
1405 	for(a = dp->target_list; a; a = a->next_target) {
1406 		addr_to_str(&a->addr, a->addrlen, buf, sizeof(buf));
1407 		if(!ssl_printf(ssl, "%s%s", (f?" ":""), buf))
1408 			return 0;
1409 		f = 1;
1410 	}
1411 	return ssl_printf(ssl, "\n");
1412 }
1413 
1414 
1415 /** print root forwards */
1416 static int
1417 print_root_fwds(SSL* ssl, struct iter_forwards* fwds, uint8_t* root)
1418 {
1419 	struct delegpt* dp;
1420 	dp = forwards_lookup(fwds, root, LDNS_RR_CLASS_IN);
1421 	if(!dp)
1422 		return ssl_printf(ssl, "off (using root hints)\n");
1423 	/* if dp is returned it must be the root */
1424 	log_assert(query_dname_compare(dp->name, root)==0);
1425 	return ssl_print_name_dp(ssl, NULL, root, LDNS_RR_CLASS_IN, dp);
1426 }
1427 
1428 /** parse args into delegpt */
1429 static struct delegpt*
1430 parse_delegpt(SSL* ssl, char* args, uint8_t* nm, int allow_names)
1431 {
1432 	/* parse args and add in */
1433 	char* p = args;
1434 	char* todo;
1435 	struct delegpt* dp = delegpt_create_mlc(nm);
1436 	struct sockaddr_storage addr;
1437 	socklen_t addrlen;
1438 	if(!dp) {
1439 		(void)ssl_printf(ssl, "error out of memory\n");
1440 		return NULL;
1441 	}
1442 	while(p) {
1443 		todo = p;
1444 		p = strchr(p, ' '); /* find next spot, if any */
1445 		if(p) {
1446 			*p++ = 0;	/* end this spot */
1447 			p = skipwhite(p); /* position at next spot */
1448 		}
1449 		/* parse address */
1450 		if(!extstrtoaddr(todo, &addr, &addrlen)) {
1451 			if(allow_names) {
1452 				uint8_t* n = NULL;
1453 				size_t ln;
1454 				int lb;
1455 				if(!parse_arg_name(ssl, todo, &n, &ln, &lb)) {
1456 					(void)ssl_printf(ssl, "error cannot "
1457 						"parse IP address or name "
1458 						"'%s'\n", todo);
1459 					delegpt_free_mlc(dp);
1460 					return NULL;
1461 				}
1462 				if(!delegpt_add_ns_mlc(dp, n, 0)) {
1463 					(void)ssl_printf(ssl, "error out of memory\n");
1464 					free(n);
1465 					delegpt_free_mlc(dp);
1466 					return NULL;
1467 				}
1468 				free(n);
1469 
1470 			} else {
1471 				(void)ssl_printf(ssl, "error cannot parse"
1472 					" IP address '%s'\n", todo);
1473 				delegpt_free_mlc(dp);
1474 				return NULL;
1475 			}
1476 		} else {
1477 			/* add address */
1478 			if(!delegpt_add_addr_mlc(dp, &addr, addrlen, 0, 0)) {
1479 				(void)ssl_printf(ssl, "error out of memory\n");
1480 				delegpt_free_mlc(dp);
1481 				return NULL;
1482 			}
1483 		}
1484 	}
1485 	return dp;
1486 }
1487 
1488 /** do the status command */
1489 static void
1490 do_forward(SSL* ssl, struct worker* worker, char* args)
1491 {
1492 	struct iter_forwards* fwd = worker->env.fwds;
1493 	uint8_t* root = (uint8_t*)"\000";
1494 	if(!fwd) {
1495 		(void)ssl_printf(ssl, "error: structure not allocated\n");
1496 		return;
1497 	}
1498 	if(args == NULL || args[0] == 0) {
1499 		(void)print_root_fwds(ssl, fwd, root);
1500 		return;
1501 	}
1502 	/* set root forwards for this thread. since we are in remote control
1503 	 * the actual mesh is not running, so we can freely edit it. */
1504 	/* delete all the existing queries first */
1505 	mesh_delete_all(worker->env.mesh);
1506 	if(strcmp(args, "off") == 0) {
1507 		forwards_delete_zone(fwd, LDNS_RR_CLASS_IN, root);
1508 	} else {
1509 		struct delegpt* dp;
1510 		if(!(dp = parse_delegpt(ssl, args, root, 0)))
1511 			return;
1512 		if(!forwards_add_zone(fwd, LDNS_RR_CLASS_IN, dp)) {
1513 			(void)ssl_printf(ssl, "error out of memory\n");
1514 			return;
1515 		}
1516 	}
1517 	send_ok(ssl);
1518 }
1519 
1520 static int
1521 parse_fs_args(SSL* ssl, char* args, uint8_t** nm, struct delegpt** dp,
1522 	int* insecure, int* prime)
1523 {
1524 	char* zonename;
1525 	char* rest;
1526 	size_t nmlen;
1527 	int nmlabs;
1528 	/* parse all -x args */
1529 	while(args[0] == '+') {
1530 		if(!find_arg2(ssl, args, &rest))
1531 			return 0;
1532 		while(*(++args) != 0) {
1533 			if(*args == 'i' && insecure)
1534 				*insecure = 1;
1535 			else if(*args == 'p' && prime)
1536 				*prime = 1;
1537 			else {
1538 				(void)ssl_printf(ssl, "error: unknown option %s\n", args);
1539 				return 0;
1540 			}
1541 		}
1542 		args = rest;
1543 	}
1544 	/* parse name */
1545 	if(dp) {
1546 		if(!find_arg2(ssl, args, &rest))
1547 			return 0;
1548 		zonename = args;
1549 		args = rest;
1550 	} else	zonename = args;
1551 	if(!parse_arg_name(ssl, zonename, nm, &nmlen, &nmlabs))
1552 		return 0;
1553 
1554 	/* parse dp */
1555 	if(dp) {
1556 		if(!(*dp = parse_delegpt(ssl, args, *nm, 1))) {
1557 			free(*nm);
1558 			return 0;
1559 		}
1560 	}
1561 	return 1;
1562 }
1563 
1564 /** do the forward_add command */
1565 static void
1566 do_forward_add(SSL* ssl, struct worker* worker, char* args)
1567 {
1568 	struct iter_forwards* fwd = worker->env.fwds;
1569 	int insecure = 0;
1570 	uint8_t* nm = NULL;
1571 	struct delegpt* dp = NULL;
1572 	if(!parse_fs_args(ssl, args, &nm, &dp, &insecure, NULL))
1573 		return;
1574 	if(insecure) {
1575 		if(!anchors_add_insecure(worker->env.anchors, LDNS_RR_CLASS_IN,
1576 			nm)) {
1577 			(void)ssl_printf(ssl, "error out of memory\n");
1578 			delegpt_free_mlc(dp);
1579 			free(nm);
1580 			return;
1581 		}
1582 	}
1583 	if(!forwards_add_zone(fwd, LDNS_RR_CLASS_IN, dp)) {
1584 		(void)ssl_printf(ssl, "error out of memory\n");
1585 		free(nm);
1586 		return;
1587 	}
1588 	free(nm);
1589 	send_ok(ssl);
1590 }
1591 
1592 /** do the forward_remove command */
1593 static void
1594 do_forward_remove(SSL* ssl, struct worker* worker, char* args)
1595 {
1596 	struct iter_forwards* fwd = worker->env.fwds;
1597 	int insecure = 0;
1598 	uint8_t* nm = NULL;
1599 	if(!parse_fs_args(ssl, args, &nm, NULL, &insecure, NULL))
1600 		return;
1601 	if(insecure)
1602 		anchors_delete_insecure(worker->env.anchors, LDNS_RR_CLASS_IN,
1603 			nm);
1604 	forwards_delete_zone(fwd, LDNS_RR_CLASS_IN, nm);
1605 	free(nm);
1606 	send_ok(ssl);
1607 }
1608 
1609 /** do the stub_add command */
1610 static void
1611 do_stub_add(SSL* ssl, struct worker* worker, char* args)
1612 {
1613 	struct iter_forwards* fwd = worker->env.fwds;
1614 	int insecure = 0, prime = 0;
1615 	uint8_t* nm = NULL;
1616 	struct delegpt* dp = NULL;
1617 	if(!parse_fs_args(ssl, args, &nm, &dp, &insecure, &prime))
1618 		return;
1619 	if(insecure) {
1620 		if(!anchors_add_insecure(worker->env.anchors, LDNS_RR_CLASS_IN,
1621 			nm)) {
1622 			(void)ssl_printf(ssl, "error out of memory\n");
1623 			delegpt_free_mlc(dp);
1624 			free(nm);
1625 			return;
1626 		}
1627 	}
1628 	if(!forwards_add_stub_hole(fwd, LDNS_RR_CLASS_IN, nm)) {
1629 		if(insecure) anchors_delete_insecure(worker->env.anchors,
1630 			LDNS_RR_CLASS_IN, nm);
1631 		(void)ssl_printf(ssl, "error out of memory\n");
1632 		delegpt_free_mlc(dp);
1633 		free(nm);
1634 		return;
1635 	}
1636 	if(!hints_add_stub(worker->env.hints, LDNS_RR_CLASS_IN, dp, !prime)) {
1637 		(void)ssl_printf(ssl, "error out of memory\n");
1638 		forwards_delete_stub_hole(fwd, LDNS_RR_CLASS_IN, nm);
1639 		if(insecure) anchors_delete_insecure(worker->env.anchors,
1640 			LDNS_RR_CLASS_IN, nm);
1641 		free(nm);
1642 		return;
1643 	}
1644 	free(nm);
1645 	send_ok(ssl);
1646 }
1647 
1648 /** do the stub_remove command */
1649 static void
1650 do_stub_remove(SSL* ssl, struct worker* worker, char* args)
1651 {
1652 	struct iter_forwards* fwd = worker->env.fwds;
1653 	int insecure = 0;
1654 	uint8_t* nm = NULL;
1655 	if(!parse_fs_args(ssl, args, &nm, NULL, &insecure, NULL))
1656 		return;
1657 	if(insecure)
1658 		anchors_delete_insecure(worker->env.anchors, LDNS_RR_CLASS_IN,
1659 			nm);
1660 	forwards_delete_stub_hole(fwd, LDNS_RR_CLASS_IN, nm);
1661 	hints_delete_stub(worker->env.hints, LDNS_RR_CLASS_IN, nm);
1662 	free(nm);
1663 	send_ok(ssl);
1664 }
1665 
1666 /** do the status command */
1667 static void
1668 do_status(SSL* ssl, struct worker* worker)
1669 {
1670 	int i;
1671 	time_t uptime;
1672 	if(!ssl_printf(ssl, "version: %s\n", PACKAGE_VERSION))
1673 		return;
1674 	if(!ssl_printf(ssl, "verbosity: %d\n", verbosity))
1675 		return;
1676 	if(!ssl_printf(ssl, "threads: %d\n", worker->daemon->num))
1677 		return;
1678 	if(!ssl_printf(ssl, "modules: %d [", worker->daemon->mods.num))
1679 		return;
1680 	for(i=0; i<worker->daemon->mods.num; i++) {
1681 		if(!ssl_printf(ssl, " %s", worker->daemon->mods.mod[i]->name))
1682 			return;
1683 	}
1684 	if(!ssl_printf(ssl, " ]\n"))
1685 		return;
1686 	uptime = (time_t)time(NULL) - (time_t)worker->daemon->time_boot.tv_sec;
1687 	if(!ssl_printf(ssl, "uptime: %u seconds\n", (unsigned)uptime))
1688 		return;
1689 	if(!ssl_printf(ssl, "unbound (pid %d) is running...\n",
1690 		(int)getpid()))
1691 		return;
1692 }
1693 
1694 /** get age for the mesh state */
1695 static void
1696 get_mesh_age(struct mesh_state* m, char* buf, size_t len,
1697 	struct module_env* env)
1698 {
1699 	if(m->reply_list) {
1700 		struct timeval d;
1701 		struct mesh_reply* r = m->reply_list;
1702 		/* last reply is the oldest */
1703 		while(r && r->next)
1704 			r = r->next;
1705 		timeval_subtract(&d, env->now_tv, &r->start_time);
1706 		snprintf(buf, len, "%d.%6.6d", (int)d.tv_sec, (int)d.tv_usec);
1707 	} else {
1708 		snprintf(buf, len, "-");
1709 	}
1710 }
1711 
1712 /** get status of a mesh state */
1713 static void
1714 get_mesh_status(struct mesh_area* mesh, struct mesh_state* m,
1715 	char* buf, size_t len)
1716 {
1717 	enum module_ext_state s = m->s.ext_state[m->s.curmod];
1718 	const char *modname = mesh->mods.mod[m->s.curmod]->name;
1719 	size_t l;
1720 	if(strcmp(modname, "iterator") == 0 && s == module_wait_reply &&
1721 		m->s.minfo[m->s.curmod]) {
1722 		/* break into iterator to find out who its waiting for */
1723 		struct iter_qstate* qstate = (struct iter_qstate*)
1724 			m->s.minfo[m->s.curmod];
1725 		struct outbound_list* ol = &qstate->outlist;
1726 		struct outbound_entry* e;
1727 		snprintf(buf, len, "%s wait for", modname);
1728 		l = strlen(buf);
1729 		buf += l; len -= l;
1730 		if(ol->first == NULL)
1731 			snprintf(buf, len, " (empty_list)");
1732 		for(e = ol->first; e; e = e->next) {
1733 			snprintf(buf, len, " ");
1734 			l = strlen(buf);
1735 			buf += l; len -= l;
1736 			addr_to_str(&e->qsent->addr, e->qsent->addrlen,
1737 				buf, len);
1738 			l = strlen(buf);
1739 			buf += l; len -= l;
1740 		}
1741 	} else if(s == module_wait_subquery) {
1742 		/* look in subs from mesh state to see what */
1743 		char nm[257];
1744 		struct mesh_state_ref* sub;
1745 		snprintf(buf, len, "%s wants", modname);
1746 		l = strlen(buf);
1747 		buf += l; len -= l;
1748 		if(m->sub_set.count == 0)
1749 			snprintf(buf, len, " (empty_list)");
1750 		RBTREE_FOR(sub, struct mesh_state_ref*, &m->sub_set) {
1751 			char* t = ldns_rr_type2str(sub->s->s.qinfo.qtype);
1752 			char* c = ldns_rr_class2str(sub->s->s.qinfo.qclass);
1753 			dname_str(sub->s->s.qinfo.qname, nm);
1754 			snprintf(buf, len, " %s %s %s", t, c, nm);
1755 			l = strlen(buf);
1756 			buf += l; len -= l;
1757 			free(t);
1758 			free(c);
1759 		}
1760 	} else {
1761 		snprintf(buf, len, "%s is %s", modname, strextstate(s));
1762 	}
1763 }
1764 
1765 /** do the dump_requestlist command */
1766 static void
1767 do_dump_requestlist(SSL* ssl, struct worker* worker)
1768 {
1769 	struct mesh_area* mesh;
1770 	struct mesh_state* m;
1771 	int num = 0;
1772 	char buf[257];
1773 	char timebuf[32];
1774 	char statbuf[10240];
1775 	if(!ssl_printf(ssl, "thread #%d\n", worker->thread_num))
1776 		return;
1777 	if(!ssl_printf(ssl, "#   type cl name    seconds    module status\n"))
1778 		return;
1779 	/* show worker mesh contents */
1780 	mesh = worker->env.mesh;
1781 	if(!mesh) return;
1782 	RBTREE_FOR(m, struct mesh_state*, &mesh->all) {
1783 		char* t = ldns_rr_type2str(m->s.qinfo.qtype);
1784 		char* c = ldns_rr_class2str(m->s.qinfo.qclass);
1785 		dname_str(m->s.qinfo.qname, buf);
1786 		get_mesh_age(m, timebuf, sizeof(timebuf), &worker->env);
1787 		get_mesh_status(mesh, m, statbuf, sizeof(statbuf));
1788 		if(!ssl_printf(ssl, "%3d %4s %2s %s %s %s\n",
1789 			num, t, c, buf, timebuf, statbuf)) {
1790 			free(t);
1791 			free(c);
1792 			return;
1793 		}
1794 		num++;
1795 		free(t);
1796 		free(c);
1797 	}
1798 }
1799 
1800 /** structure for argument data for dump infra host */
1801 struct infra_arg {
1802 	/** the infra cache */
1803 	struct infra_cache* infra;
1804 	/** the SSL connection */
1805 	SSL* ssl;
1806 	/** the time now */
1807 	uint32_t now;
1808 };
1809 
1810 /** callback for every host element in the infra cache */
1811 static void
1812 dump_infra_host(struct lruhash_entry* e, void* arg)
1813 {
1814 	struct infra_arg* a = (struct infra_arg*)arg;
1815 	struct infra_key* k = (struct infra_key*)e->key;
1816 	struct infra_data* d = (struct infra_data*)e->data;
1817 	char ip_str[1024];
1818 	char name[257];
1819 	addr_to_str(&k->addr, k->addrlen, ip_str, sizeof(ip_str));
1820 	dname_str(k->zonename, name);
1821 	/* skip expired stuff (only backed off) */
1822 	if(d->ttl < a->now) {
1823 		if(d->rtt.rto >= USEFUL_SERVER_TOP_TIMEOUT) {
1824 			if(!ssl_printf(a->ssl, "%s %s expired rto %d\n", ip_str,
1825 				name, d->rtt.rto)) return;
1826 		}
1827 		return;
1828 	}
1829 	if(!ssl_printf(a->ssl, "%s %s ttl %d ping %d var %d rtt %d rto %d "
1830 		"tA %d tAAAA %d tother %d "
1831 		"ednsknown %d edns %d delay %d lame dnssec %d rec %d A %d "
1832 		"other %d\n", ip_str, name, (int)(d->ttl - a->now),
1833 		d->rtt.srtt, d->rtt.rttvar, rtt_notimeout(&d->rtt), d->rtt.rto,
1834 		d->timeout_A, d->timeout_AAAA, d->timeout_other,
1835 		(int)d->edns_lame_known, (int)d->edns_version,
1836 		(int)(a->now<d->probedelay?d->probedelay-a->now:0),
1837 		(int)d->isdnsseclame, (int)d->rec_lame, (int)d->lame_type_A,
1838 		(int)d->lame_other))
1839 		return;
1840 }
1841 
1842 /** do the dump_infra command */
1843 static void
1844 do_dump_infra(SSL* ssl, struct worker* worker)
1845 {
1846 	struct infra_arg arg;
1847 	arg.infra = worker->env.infra_cache;
1848 	arg.ssl = ssl;
1849 	arg.now = *worker->env.now;
1850 	slabhash_traverse(arg.infra->hosts, 0, &dump_infra_host, (void*)&arg);
1851 }
1852 
1853 /** do the log_reopen command */
1854 static void
1855 do_log_reopen(SSL* ssl, struct worker* worker)
1856 {
1857 	struct config_file* cfg = worker->env.cfg;
1858 	send_ok(ssl);
1859 	log_init(cfg->logfile, cfg->use_syslog, cfg->chrootdir);
1860 }
1861 
1862 /** do the set_option command */
1863 static void
1864 do_set_option(SSL* ssl, struct worker* worker, char* arg)
1865 {
1866 	char* arg2;
1867 	if(!find_arg2(ssl, arg, &arg2))
1868 		return;
1869 	if(!config_set_option(worker->env.cfg, arg, arg2)) {
1870 		(void)ssl_printf(ssl, "error setting option\n");
1871 		return;
1872 	}
1873 	send_ok(ssl);
1874 }
1875 
1876 /* routine to printout option values over SSL */
1877 void remote_get_opt_ssl(char* line, void* arg)
1878 {
1879 	SSL* ssl = (SSL*)arg;
1880 	(void)ssl_printf(ssl, "%s\n", line);
1881 }
1882 
1883 /** do the get_option command */
1884 static void
1885 do_get_option(SSL* ssl, struct worker* worker, char* arg)
1886 {
1887 	int r;
1888 	r = config_get_option(worker->env.cfg, arg, remote_get_opt_ssl, ssl);
1889 	if(!r) {
1890 		(void)ssl_printf(ssl, "error unknown option\n");
1891 		return;
1892 	}
1893 }
1894 
1895 /** do the list_forwards command */
1896 static void
1897 do_list_forwards(SSL* ssl, struct worker* worker)
1898 {
1899 	/* since its a per-worker structure no locks needed */
1900 	struct iter_forwards* fwds = worker->env.fwds;
1901 	struct iter_forward_zone* z;
1902 	RBTREE_FOR(z, struct iter_forward_zone*, fwds->tree) {
1903 		if(!z->dp) continue; /* skip empty marker for stub */
1904 		if(!ssl_print_name_dp(ssl, "forward", z->name, z->dclass,
1905 			z->dp))
1906 			return;
1907 	}
1908 }
1909 
1910 /** do the list_stubs command */
1911 static void
1912 do_list_stubs(SSL* ssl, struct worker* worker)
1913 {
1914 	struct iter_hints_stub* z;
1915 	RBTREE_FOR(z, struct iter_hints_stub*, &worker->env.hints->tree) {
1916 		if(!ssl_print_name_dp(ssl,
1917 			z->noprime?"stub noprime":"stub prime", z->node.name,
1918 			z->node.dclass, z->dp))
1919 			return;
1920 	}
1921 }
1922 
1923 /** do the list_local_zones command */
1924 static void
1925 do_list_local_zones(SSL* ssl, struct worker* worker)
1926 {
1927 	struct local_zones* zones = worker->daemon->local_zones;
1928 	struct local_zone* z;
1929 	char buf[257];
1930 	lock_quick_lock(&zones->lock);
1931 	RBTREE_FOR(z, struct local_zone*, &zones->ztree) {
1932 		lock_rw_rdlock(&z->lock);
1933 		dname_str(z->name, buf);
1934 		(void)ssl_printf(ssl, "%s %s\n", buf,
1935 			local_zone_type2str(z->type));
1936 		lock_rw_unlock(&z->lock);
1937 	}
1938 	lock_quick_unlock(&zones->lock);
1939 }
1940 
1941 /** do the list_local_data command */
1942 static void
1943 do_list_local_data(SSL* ssl, struct worker* worker)
1944 {
1945 	struct local_zones* zones = worker->daemon->local_zones;
1946 	struct local_zone* z;
1947 	struct local_data* d;
1948 	struct local_rrset* p;
1949 	lock_quick_lock(&zones->lock);
1950 	RBTREE_FOR(z, struct local_zone*, &zones->ztree) {
1951 		lock_rw_rdlock(&z->lock);
1952 		RBTREE_FOR(d, struct local_data*, &z->data) {
1953 			for(p = d->rrsets; p; p = p->next) {
1954 				ldns_rr_list* rr = packed_rrset_to_rr_list(
1955 					p->rrset, worker->env.scratch_buffer);
1956 				char* str = ldns_rr_list2str(rr);
1957 				(void)ssl_printf(ssl, "%s", str);
1958 				free(str);
1959 				ldns_rr_list_free(rr);
1960 			}
1961 		}
1962 		lock_rw_unlock(&z->lock);
1963 	}
1964 	lock_quick_unlock(&zones->lock);
1965 }
1966 
1967 /** tell other processes to execute the command */
1968 static void
1969 distribute_cmd(struct daemon_remote* rc, SSL* ssl, char* cmd)
1970 {
1971 	int i;
1972 	if(!cmd || !ssl)
1973 		return;
1974 	/* skip i=0 which is me */
1975 	for(i=1; i<rc->worker->daemon->num; i++) {
1976 		worker_send_cmd(rc->worker->daemon->workers[i],
1977 			worker_cmd_remote);
1978 		if(!tube_write_msg(rc->worker->daemon->workers[i]->cmd,
1979 			(uint8_t*)cmd, strlen(cmd)+1, 0)) {
1980 			ssl_printf(ssl, "error could not distribute cmd\n");
1981 			return;
1982 		}
1983 	}
1984 }
1985 
1986 /** check for name with end-of-string, space or tab after it */
1987 static int
1988 cmdcmp(char* p, const char* cmd, size_t len)
1989 {
1990 	return strncmp(p,cmd,len)==0 && (p[len]==0||p[len]==' '||p[len]=='\t');
1991 }
1992 
1993 /** execute a remote control command */
1994 static void
1995 execute_cmd(struct daemon_remote* rc, SSL* ssl, char* cmd,
1996 	struct worker* worker)
1997 {
1998 	char* p = skipwhite(cmd);
1999 	/* compare command */
2000 	if(cmdcmp(p, "stop", 4)) {
2001 		do_stop(ssl, rc);
2002 		return;
2003 	} else if(cmdcmp(p, "reload", 6)) {
2004 		do_reload(ssl, rc);
2005 		return;
2006 	} else if(cmdcmp(p, "stats_noreset", 13)) {
2007 		do_stats(ssl, rc, 0);
2008 		return;
2009 	} else if(cmdcmp(p, "stats", 5)) {
2010 		do_stats(ssl, rc, 1);
2011 		return;
2012 	} else if(cmdcmp(p, "status", 6)) {
2013 		do_status(ssl, worker);
2014 		return;
2015 	} else if(cmdcmp(p, "dump_cache", 10)) {
2016 		(void)dump_cache(ssl, worker);
2017 		return;
2018 	} else if(cmdcmp(p, "load_cache", 10)) {
2019 		if(load_cache(ssl, worker)) send_ok(ssl);
2020 		return;
2021 	} else if(cmdcmp(p, "list_forwards", 13)) {
2022 		do_list_forwards(ssl, worker);
2023 		return;
2024 	} else if(cmdcmp(p, "list_stubs", 10)) {
2025 		do_list_stubs(ssl, worker);
2026 		return;
2027 	} else if(cmdcmp(p, "list_local_zones", 16)) {
2028 		do_list_local_zones(ssl, worker);
2029 		return;
2030 	} else if(cmdcmp(p, "list_local_data", 15)) {
2031 		do_list_local_data(ssl, worker);
2032 		return;
2033 	} else if(cmdcmp(p, "stub_add", 8)) {
2034 		/* must always distribute this cmd */
2035 		if(rc) distribute_cmd(rc, ssl, cmd);
2036 		do_stub_add(ssl, worker, skipwhite(p+8));
2037 		return;
2038 	} else if(cmdcmp(p, "stub_remove", 11)) {
2039 		/* must always distribute this cmd */
2040 		if(rc) distribute_cmd(rc, ssl, cmd);
2041 		do_stub_remove(ssl, worker, skipwhite(p+11));
2042 		return;
2043 	} else if(cmdcmp(p, "forward_add", 11)) {
2044 		/* must always distribute this cmd */
2045 		if(rc) distribute_cmd(rc, ssl, cmd);
2046 		do_forward_add(ssl, worker, skipwhite(p+11));
2047 		return;
2048 	} else if(cmdcmp(p, "forward_remove", 14)) {
2049 		/* must always distribute this cmd */
2050 		if(rc) distribute_cmd(rc, ssl, cmd);
2051 		do_forward_remove(ssl, worker, skipwhite(p+14));
2052 		return;
2053 	} else if(cmdcmp(p, "forward", 7)) {
2054 		/* must always distribute this cmd */
2055 		if(rc) distribute_cmd(rc, ssl, cmd);
2056 		do_forward(ssl, worker, skipwhite(p+7));
2057 		return;
2058 	} else if(cmdcmp(p, "flush_stats", 11)) {
2059 		/* must always distribute this cmd */
2060 		if(rc) distribute_cmd(rc, ssl, cmd);
2061 		do_flush_stats(ssl, worker);
2062 		return;
2063 	} else if(cmdcmp(p, "flush_requestlist", 17)) {
2064 		/* must always distribute this cmd */
2065 		if(rc) distribute_cmd(rc, ssl, cmd);
2066 		do_flush_requestlist(ssl, worker);
2067 		return;
2068 	} else if(cmdcmp(p, "lookup", 6)) {
2069 		do_lookup(ssl, worker, skipwhite(p+6));
2070 		return;
2071 	}
2072 
2073 #ifdef THREADS_DISABLED
2074 	/* other processes must execute the command as well */
2075 	/* commands that should not be distributed, returned above. */
2076 	if(rc) { /* only if this thread is the master (rc) thread */
2077 		/* done before the code below, which may split the string */
2078 		distribute_cmd(rc, ssl, cmd);
2079 	}
2080 #endif
2081 	if(cmdcmp(p, "verbosity", 9)) {
2082 		do_verbosity(ssl, skipwhite(p+9));
2083 	} else if(cmdcmp(p, "local_zone_remove", 17)) {
2084 		do_zone_remove(ssl, worker, skipwhite(p+17));
2085 	} else if(cmdcmp(p, "local_zone", 10)) {
2086 		do_zone_add(ssl, worker, skipwhite(p+10));
2087 	} else if(cmdcmp(p, "local_data_remove", 17)) {
2088 		do_data_remove(ssl, worker, skipwhite(p+17));
2089 	} else if(cmdcmp(p, "local_data", 10)) {
2090 		do_data_add(ssl, worker, skipwhite(p+10));
2091 	} else if(cmdcmp(p, "flush_zone", 10)) {
2092 		do_flush_zone(ssl, worker, skipwhite(p+10));
2093 	} else if(cmdcmp(p, "flush_type", 10)) {
2094 		do_flush_type(ssl, worker, skipwhite(p+10));
2095 	} else if(cmdcmp(p, "flush_infra", 11)) {
2096 		do_flush_infra(ssl, worker, skipwhite(p+11));
2097 	} else if(cmdcmp(p, "flush", 5)) {
2098 		do_flush_name(ssl, worker, skipwhite(p+5));
2099 	} else if(cmdcmp(p, "dump_requestlist", 16)) {
2100 		do_dump_requestlist(ssl, worker);
2101 	} else if(cmdcmp(p, "dump_infra", 10)) {
2102 		do_dump_infra(ssl, worker);
2103 	} else if(cmdcmp(p, "log_reopen", 10)) {
2104 		do_log_reopen(ssl, worker);
2105 	} else if(cmdcmp(p, "set_option", 10)) {
2106 		do_set_option(ssl, worker, skipwhite(p+10));
2107 	} else if(cmdcmp(p, "get_option", 10)) {
2108 		do_get_option(ssl, worker, skipwhite(p+10));
2109 	} else if(cmdcmp(p, "flush_bogus", 11)) {
2110 		do_flush_bogus(ssl, worker);
2111 	} else {
2112 		(void)ssl_printf(ssl, "error unknown command '%s'\n", p);
2113 	}
2114 }
2115 
2116 void
2117 daemon_remote_exec(struct worker* worker)
2118 {
2119 	/* read the cmd string */
2120 	uint8_t* msg = NULL;
2121 	uint32_t len = 0;
2122 	if(!tube_read_msg(worker->cmd, &msg, &len, 0)) {
2123 		log_err("daemon_remote_exec: tube_read_msg failed");
2124 		return;
2125 	}
2126 	verbose(VERB_ALGO, "remote exec distributed: %s", (char*)msg);
2127 	execute_cmd(NULL, NULL, (char*)msg, worker);
2128 	free(msg);
2129 }
2130 
2131 /** handle remote control request */
2132 static void
2133 handle_req(struct daemon_remote* rc, struct rc_state* s, SSL* ssl)
2134 {
2135 	int r;
2136 	char pre[10];
2137 	char magic[7];
2138 	char buf[1024];
2139 #ifdef USE_WINSOCK
2140 	/* makes it possible to set the socket blocking again. */
2141 	/* basically removes it from winsock_event ... */
2142 	WSAEventSelect(s->c->fd, NULL, 0);
2143 #endif
2144 	fd_set_block(s->c->fd);
2145 
2146 	/* try to read magic UBCT[version]_space_ string */
2147 	ERR_clear_error();
2148 	if((r=SSL_read(ssl, magic, (int)sizeof(magic)-1)) <= 0) {
2149 		if(SSL_get_error(ssl, r) == SSL_ERROR_ZERO_RETURN)
2150 			return;
2151 		log_crypto_err("could not SSL_read");
2152 		return;
2153 	}
2154 	magic[6] = 0;
2155 	if( r != 6 || strncmp(magic, "UBCT", 4) != 0) {
2156 		verbose(VERB_QUERY, "control connection has bad magic string");
2157 		/* probably wrong tool connected, ignore it completely */
2158 		return;
2159 	}
2160 
2161 	/* read the command line */
2162 	if(!ssl_read_line(ssl, buf, sizeof(buf))) {
2163 		return;
2164 	}
2165 	snprintf(pre, sizeof(pre), "UBCT%d ", UNBOUND_CONTROL_VERSION);
2166 	if(strcmp(magic, pre) != 0) {
2167 		verbose(VERB_QUERY, "control connection had bad "
2168 			"version %s, cmd: %s", magic, buf);
2169 		ssl_printf(ssl, "error version mismatch\n");
2170 		return;
2171 	}
2172 	verbose(VERB_DETAIL, "control cmd: %s", buf);
2173 
2174 	/* figure out what to do */
2175 	execute_cmd(rc, ssl, buf, rc->worker);
2176 }
2177 
2178 int remote_control_callback(struct comm_point* c, void* arg, int err,
2179 	struct comm_reply* ATTR_UNUSED(rep))
2180 {
2181 	struct rc_state* s = (struct rc_state*)arg;
2182 	struct daemon_remote* rc = s->rc;
2183 	int r;
2184 	if(err != NETEVENT_NOERROR) {
2185 		if(err==NETEVENT_TIMEOUT)
2186 			log_err("remote control timed out");
2187 		clean_point(rc, s);
2188 		return 0;
2189 	}
2190 	/* (continue to) setup the SSL connection */
2191 	ERR_clear_error();
2192 	r = SSL_do_handshake(s->ssl);
2193 	if(r != 1) {
2194 		int r2 = SSL_get_error(s->ssl, r);
2195 		if(r2 == SSL_ERROR_WANT_READ) {
2196 			if(s->shake_state == rc_hs_read) {
2197 				/* try again later */
2198 				return 0;
2199 			}
2200 			s->shake_state = rc_hs_read;
2201 			comm_point_listen_for_rw(c, 1, 0);
2202 			return 0;
2203 		} else if(r2 == SSL_ERROR_WANT_WRITE) {
2204 			if(s->shake_state == rc_hs_write) {
2205 				/* try again later */
2206 				return 0;
2207 			}
2208 			s->shake_state = rc_hs_write;
2209 			comm_point_listen_for_rw(c, 0, 1);
2210 			return 0;
2211 		} else {
2212 			if(r == 0)
2213 				log_err("remote control connection closed prematurely");
2214 			log_addr(1, "failed connection from",
2215 				&s->c->repinfo.addr, s->c->repinfo.addrlen);
2216 			log_crypto_err("remote control failed ssl");
2217 			clean_point(rc, s);
2218 			return 0;
2219 		}
2220 	}
2221 	s->shake_state = rc_none;
2222 
2223 	/* once handshake has completed, check authentication */
2224 	if(SSL_get_verify_result(s->ssl) == X509_V_OK) {
2225 		X509* x = SSL_get_peer_certificate(s->ssl);
2226 		if(!x) {
2227 			verbose(VERB_DETAIL, "remote control connection "
2228 				"provided no client certificate");
2229 			clean_point(rc, s);
2230 			return 0;
2231 		}
2232 		verbose(VERB_ALGO, "remote control connection authenticated");
2233 		X509_free(x);
2234 	} else {
2235 		verbose(VERB_DETAIL, "remote control connection failed to "
2236 			"authenticate with client certificate");
2237 		clean_point(rc, s);
2238 		return 0;
2239 	}
2240 
2241 	/* if OK start to actually handle the request */
2242 	handle_req(rc, s, s->ssl);
2243 
2244 	verbose(VERB_ALGO, "remote control operation completed");
2245 	clean_point(rc, s);
2246 	return 0;
2247 }
2248