remote.c revision 291767
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#ifndef HEADER_DH_H
50#include <openssl/dh.h>
51#endif
52
53#include <ctype.h>
54#include "daemon/remote.h"
55#include "daemon/worker.h"
56#include "daemon/daemon.h"
57#include "daemon/stats.h"
58#include "daemon/cachedump.h"
59#include "util/log.h"
60#include "util/config_file.h"
61#include "util/net_help.h"
62#include "util/module.h"
63#include "services/listen_dnsport.h"
64#include "services/cache/rrset.h"
65#include "services/cache/infra.h"
66#include "services/mesh.h"
67#include "services/localzone.h"
68#include "util/storage/slabhash.h"
69#include "util/fptr_wlist.h"
70#include "util/data/dname.h"
71#include "validator/validator.h"
72#include "validator/val_kcache.h"
73#include "validator/val_kentry.h"
74#include "validator/val_anchor.h"
75#include "iterator/iterator.h"
76#include "iterator/iter_fwd.h"
77#include "iterator/iter_hints.h"
78#include "iterator/iter_delegpt.h"
79#include "services/outbound_list.h"
80#include "services/outside_network.h"
81#include "sldns/str2wire.h"
82#include "sldns/parseutil.h"
83#include "sldns/wire2str.h"
84#include "sldns/sbuffer.h"
85
86#ifdef HAVE_SYS_TYPES_H
87#  include <sys/types.h>
88#endif
89#ifdef HAVE_SYS_STAT_H
90#include <sys/stat.h>
91#endif
92#ifdef HAVE_NETDB_H
93#include <netdb.h>
94#endif
95
96/* just for portability */
97#ifdef SQ
98#undef SQ
99#endif
100
101/** what to put on statistics lines between var and value, ": " or "=" */
102#define SQ "="
103/** if true, inhibits a lot of =0 lines from the stats output */
104static const int inhibit_zero = 1;
105
106/** subtract timers and the values do not overflow or become negative */
107static void
108timeval_subtract(struct timeval* d, const struct timeval* end,
109	const struct timeval* start)
110{
111#ifndef S_SPLINT_S
112	time_t end_usec = end->tv_usec;
113	d->tv_sec = end->tv_sec - start->tv_sec;
114	if(end_usec < start->tv_usec) {
115		end_usec += 1000000;
116		d->tv_sec--;
117	}
118	d->tv_usec = end_usec - start->tv_usec;
119#endif
120}
121
122/** divide sum of timers to get average */
123static void
124timeval_divide(struct timeval* avg, const struct timeval* sum, size_t d)
125{
126#ifndef S_SPLINT_S
127	size_t leftover;
128	if(d == 0) {
129		avg->tv_sec = 0;
130		avg->tv_usec = 0;
131		return;
132	}
133	avg->tv_sec = sum->tv_sec / d;
134	avg->tv_usec = sum->tv_usec / d;
135	/* handle fraction from seconds divide */
136	leftover = sum->tv_sec - avg->tv_sec*d;
137	avg->tv_usec += (leftover*1000000)/d;
138#endif
139}
140
141/*
142 * The following function was generated using the openssl utility, using
143 * the command : "openssl dhparam -dsaparam -C 1024"
144 * (some openssl versions reject DH that is 'too small', eg. 512).
145 */
146#ifndef S_SPLINT_S
147DH *get_dh1024()
148{
149	static unsigned char dh1024_p[]={
150		0xB3,0x67,0x2E,0x3B,0x68,0xC5,0xDA,0x58,0x46,0xD6,0x2B,0xD3,
151		0x41,0x78,0x97,0xE4,0xE1,0x61,0x71,0x68,0xE6,0x0F,0x1D,0x78,
152		0x05,0xAA,0xF0,0xFF,0x30,0xDF,0xAC,0x49,0x7F,0xE0,0x90,0xFE,
153		0xB9,0x56,0x4E,0x3F,0xE2,0x98,0x8A,0xED,0xF5,0x28,0x39,0xEF,
154		0x2E,0xA6,0xB7,0x67,0xB2,0x43,0xE4,0x53,0xF8,0xEB,0x2C,0x1F,
155		0x06,0x77,0x3A,0x6F,0x62,0x98,0xC1,0x3B,0xF7,0xBA,0x4D,0x93,
156		0xF7,0xEB,0x5A,0xAD,0xC5,0x5F,0xF0,0xB7,0x24,0x35,0x81,0xF7,
157		0x7F,0x1F,0x24,0xC0,0xDF,0xD3,0xD8,0x40,0x72,0x7E,0xF3,0x19,
158		0x2B,0x26,0x27,0xF4,0xB6,0xB3,0xD4,0x7D,0x08,0x23,0xBE,0x68,
159		0x2B,0xCA,0xB4,0x46,0xA8,0x9E,0xDD,0x6C,0x3D,0x75,0xA6,0x48,
160		0xF7,0x44,0x43,0xBF,0x91,0xC2,0xB4,0x49,
161		};
162	static unsigned char dh1024_g[]={
163		0x5F,0x37,0xB5,0x80,0x4D,0xB4,0xC4,0xB2,0x37,0x12,0xD5,0x2F,
164		0x56,0x81,0xB0,0xDF,0x3D,0x27,0xA2,0x54,0xE7,0x14,0x65,0x2D,
165		0x72,0xA8,0x97,0xE0,0xA9,0x4A,0x09,0x5E,0x89,0xBE,0x34,0x9A,
166		0x90,0x98,0xC1,0xE8,0xBB,0x01,0x2B,0xC2,0x74,0x74,0x90,0x59,
167		0x0B,0x72,0x62,0x5C,0xFD,0x49,0x63,0x4B,0x38,0x91,0xF1,0x7F,
168		0x13,0x25,0xEB,0x52,0x50,0x47,0xA2,0x8C,0x32,0x28,0x42,0xAC,
169		0xBD,0x7A,0xCC,0x58,0xBE,0x36,0xDA,0x6A,0x24,0x06,0xC7,0xF1,
170		0xDA,0x8D,0x8A,0x3B,0x03,0xFA,0x6F,0x25,0xE5,0x20,0xA7,0xD6,
171		0x6F,0x74,0x61,0x53,0x14,0x81,0x29,0x04,0xB5,0x61,0x12,0x53,
172		0xA3,0xD6,0x09,0x98,0x0C,0x8F,0x1C,0xBB,0xD7,0x1C,0x2C,0xEE,
173		0x56,0x4B,0x74,0x8F,0x4A,0xF8,0xA9,0xD5,
174		};
175	DH *dh;
176
177	if ((dh=DH_new()) == NULL) return(NULL);
178	dh->p=BN_bin2bn(dh1024_p,sizeof(dh1024_p),NULL);
179	dh->g=BN_bin2bn(dh1024_g,sizeof(dh1024_g),NULL);
180	if ((dh->p == NULL) || (dh->g == NULL))
181		{ DH_free(dh); return(NULL); }
182	dh->length = 160;
183	return(dh);
184}
185#endif /* SPLINT */
186
187struct daemon_remote*
188daemon_remote_create(struct config_file* cfg)
189{
190	char* s_cert;
191	char* s_key;
192	struct daemon_remote* rc = (struct daemon_remote*)calloc(1,
193		sizeof(*rc));
194	if(!rc) {
195		log_err("out of memory in daemon_remote_create");
196		return NULL;
197	}
198	rc->max_active = 10;
199
200	if(!cfg->remote_control_enable) {
201		rc->ctx = NULL;
202		return rc;
203	}
204	rc->ctx = SSL_CTX_new(SSLv23_server_method());
205	if(!rc->ctx) {
206		log_crypto_err("could not SSL_CTX_new");
207		free(rc);
208		return NULL;
209	}
210	/* no SSLv2, SSLv3 because has defects */
211	if(!(SSL_CTX_set_options(rc->ctx, SSL_OP_NO_SSLv2) & SSL_OP_NO_SSLv2)){
212		log_crypto_err("could not set SSL_OP_NO_SSLv2");
213		daemon_remote_delete(rc);
214		return NULL;
215	}
216	if(!(SSL_CTX_set_options(rc->ctx, SSL_OP_NO_SSLv3) & SSL_OP_NO_SSLv3)){
217		log_crypto_err("could not set SSL_OP_NO_SSLv3");
218		daemon_remote_delete(rc);
219		return NULL;
220	}
221
222	if (cfg->remote_control_use_cert == 0) {
223		/* No certificates are requested */
224		if(!SSL_CTX_set_cipher_list(rc->ctx, "aNULL")) {
225			log_crypto_err("Failed to set aNULL cipher list");
226			return NULL;
227		}
228
229		/* Since we have no certificates and hence no source of
230		 * DH params, let's generate and set them
231		 */
232		if(!SSL_CTX_set_tmp_dh(rc->ctx,get_dh1024())) {
233			log_crypto_err("Wanted to set DH param, but failed");
234			return NULL;
235		}
236		return rc;
237	}
238	rc->use_cert = 1;
239	s_cert = fname_after_chroot(cfg->server_cert_file, cfg, 1);
240	s_key = fname_after_chroot(cfg->server_key_file, cfg, 1);
241	if(!s_cert || !s_key) {
242		log_err("out of memory in remote control fname");
243		goto setup_error;
244	}
245	verbose(VERB_ALGO, "setup SSL certificates");
246	if (!SSL_CTX_use_certificate_chain_file(rc->ctx,s_cert)) {
247		log_err("Error for server-cert-file: %s", s_cert);
248		log_crypto_err("Error in SSL_CTX use_certificate_chain_file");
249		goto setup_error;
250	}
251	if(!SSL_CTX_use_PrivateKey_file(rc->ctx,s_key,SSL_FILETYPE_PEM)) {
252		log_err("Error for server-key-file: %s", s_key);
253		log_crypto_err("Error in SSL_CTX use_PrivateKey_file");
254		goto setup_error;
255	}
256	if(!SSL_CTX_check_private_key(rc->ctx)) {
257		log_err("Error for server-key-file: %s", s_key);
258		log_crypto_err("Error in SSL_CTX check_private_key");
259		goto setup_error;
260	}
261#if HAVE_DECL_SSL_CTX_SET_ECDH_AUTO
262	if(!SSL_CTX_set_ecdh_auto(rc->ctx,1)) {
263		log_crypto_err("Error in SSL_CTX_ecdh_auto, not enabling ECDHE");
264	}
265#elif defined(USE_ECDSA)
266	if(1) {
267		EC_KEY *ecdh = EC_KEY_new_by_curve_name (NID_X9_62_prime256v1);
268		if (!ecdh) {
269			log_crypto_err("could not find p256, not enabling ECDHE");
270		} else {
271			if (1 != SSL_CTX_set_tmp_ecdh (rc->ctx, ecdh)) {
272				log_crypto_err("Error in SSL_CTX_set_tmp_ecdh, not enabling ECDHE");
273			}
274			EC_KEY_free (ecdh);
275		}
276	}
277#endif
278	if(!SSL_CTX_load_verify_locations(rc->ctx, s_cert, NULL)) {
279		log_crypto_err("Error setting up SSL_CTX verify locations");
280	setup_error:
281		free(s_cert);
282		free(s_key);
283		daemon_remote_delete(rc);
284		return NULL;
285	}
286	SSL_CTX_set_client_CA_list(rc->ctx, SSL_load_client_CA_file(s_cert));
287	SSL_CTX_set_verify(rc->ctx, SSL_VERIFY_PEER, NULL);
288	free(s_cert);
289	free(s_key);
290
291	return rc;
292}
293
294void daemon_remote_clear(struct daemon_remote* rc)
295{
296	struct rc_state* p, *np;
297	if(!rc) return;
298	/* but do not close the ports */
299	listen_list_delete(rc->accept_list);
300	rc->accept_list = NULL;
301	/* do close these sockets */
302	p = rc->busy_list;
303	while(p) {
304		np = p->next;
305		if(p->ssl)
306			SSL_free(p->ssl);
307		comm_point_delete(p->c);
308		free(p);
309		p = np;
310	}
311	rc->busy_list = NULL;
312	rc->active = 0;
313	rc->worker = NULL;
314}
315
316void daemon_remote_delete(struct daemon_remote* rc)
317{
318	if(!rc) return;
319	daemon_remote_clear(rc);
320	if(rc->ctx) {
321		SSL_CTX_free(rc->ctx);
322	}
323	free(rc);
324}
325
326/**
327 * Add and open a new control port
328 * @param ip: ip str
329 * @param nr: port nr
330 * @param list: list head
331 * @param noproto_is_err: if lack of protocol support is an error.
332 * @param cfg: config with username for chown of unix-sockets.
333 * @return false on failure.
334 */
335static int
336add_open(const char* ip, int nr, struct listen_port** list, int noproto_is_err,
337	struct config_file* cfg)
338{
339	struct addrinfo hints;
340	struct addrinfo* res;
341	struct listen_port* n;
342	int noproto;
343	int fd, r;
344	char port[15];
345	snprintf(port, sizeof(port), "%d", nr);
346	port[sizeof(port)-1]=0;
347	memset(&hints, 0, sizeof(hints));
348
349	if(ip[0] == '/') {
350		/* This looks like a local socket */
351		fd = create_local_accept_sock(ip, &noproto);
352		/*
353		 * Change socket ownership and permissions so users other
354		 * than root can access it provided they are in the same
355		 * group as the user we run as.
356		 */
357		if(fd != -1) {
358#ifdef HAVE_CHOWN
359			if (cfg->username && cfg->username[0] &&
360				cfg_uid != (uid_t)-1)
361				chown(ip, cfg_uid, cfg_gid);
362			chmod(ip, (mode_t)(S_IRUSR | S_IWUSR | S_IRGRP | S_IWGRP));
363#else
364			(void)cfg;
365#endif
366		}
367	} else {
368		hints.ai_socktype = SOCK_STREAM;
369		hints.ai_flags = AI_PASSIVE | AI_NUMERICHOST;
370		if((r = getaddrinfo(ip, port, &hints, &res)) != 0 || !res) {
371#ifdef USE_WINSOCK
372			if(!noproto_is_err && r == EAI_NONAME) {
373				/* tried to lookup the address as name */
374				return 1; /* return success, but do nothing */
375			}
376#endif /* USE_WINSOCK */
377			log_err("control interface %s:%s getaddrinfo: %s %s",
378				ip?ip:"default", port, gai_strerror(r),
379#ifdef EAI_SYSTEM
380				r==EAI_SYSTEM?(char*)strerror(errno):""
381#else
382				""
383#endif
384			);
385			return 0;
386		}
387
388		/* open fd */
389		fd = create_tcp_accept_sock(res, 1, &noproto, 0,
390			cfg->ip_transparent);
391		freeaddrinfo(res);
392	}
393
394	if(fd == -1 && noproto) {
395		if(!noproto_is_err)
396			return 1; /* return success, but do nothing */
397		log_err("cannot open control interface %s %d : "
398			"protocol not supported", ip, nr);
399		return 0;
400	}
401	if(fd == -1) {
402		log_err("cannot open control interface %s %d", ip, nr);
403		return 0;
404	}
405
406	/* alloc */
407	n = (struct listen_port*)calloc(1, sizeof(*n));
408	if(!n) {
409#ifndef USE_WINSOCK
410		close(fd);
411#else
412		closesocket(fd);
413#endif
414		log_err("out of memory");
415		return 0;
416	}
417	n->next = *list;
418	*list = n;
419	n->fd = fd;
420	return 1;
421}
422
423struct listen_port* daemon_remote_open_ports(struct config_file* cfg)
424{
425	struct listen_port* l = NULL;
426	log_assert(cfg->remote_control_enable && cfg->control_port);
427	if(cfg->control_ifs) {
428		struct config_strlist* p;
429		for(p = cfg->control_ifs; p; p = p->next) {
430			if(!add_open(p->str, cfg->control_port, &l, 1, cfg)) {
431				listening_ports_free(l);
432				return NULL;
433			}
434		}
435	} else {
436		/* defaults */
437		if(cfg->do_ip6 &&
438			!add_open("::1", cfg->control_port, &l, 0, cfg)) {
439			listening_ports_free(l);
440			return NULL;
441		}
442		if(cfg->do_ip4 &&
443			!add_open("127.0.0.1", cfg->control_port, &l, 1, cfg)) {
444			listening_ports_free(l);
445			return NULL;
446		}
447	}
448	return l;
449}
450
451/** open accept commpoint */
452static int
453accept_open(struct daemon_remote* rc, int fd)
454{
455	struct listen_list* n = (struct listen_list*)malloc(sizeof(*n));
456	if(!n) {
457		log_err("out of memory");
458		return 0;
459	}
460	n->next = rc->accept_list;
461	rc->accept_list = n;
462	/* open commpt */
463	n->com = comm_point_create_raw(rc->worker->base, fd, 0,
464		&remote_accept_callback, rc);
465	if(!n->com)
466		return 0;
467	/* keep this port open, its fd is kept in the rc portlist */
468	n->com->do_not_close = 1;
469	return 1;
470}
471
472int daemon_remote_open_accept(struct daemon_remote* rc,
473	struct listen_port* ports, struct worker* worker)
474{
475	struct listen_port* p;
476	rc->worker = worker;
477	for(p = ports; p; p = p->next) {
478		if(!accept_open(rc, p->fd)) {
479			log_err("could not create accept comm point");
480			return 0;
481		}
482	}
483	return 1;
484}
485
486void daemon_remote_stop_accept(struct daemon_remote* rc)
487{
488	struct listen_list* p;
489	for(p=rc->accept_list; p; p=p->next) {
490		comm_point_stop_listening(p->com);
491	}
492}
493
494void daemon_remote_start_accept(struct daemon_remote* rc)
495{
496	struct listen_list* p;
497	for(p=rc->accept_list; p; p=p->next) {
498		comm_point_start_listening(p->com, -1, -1);
499	}
500}
501
502int remote_accept_callback(struct comm_point* c, void* arg, int err,
503	struct comm_reply* ATTR_UNUSED(rep))
504{
505	struct daemon_remote* rc = (struct daemon_remote*)arg;
506	struct sockaddr_storage addr;
507	socklen_t addrlen;
508	int newfd;
509	struct rc_state* n;
510	if(err != NETEVENT_NOERROR) {
511		log_err("error %d on remote_accept_callback", err);
512		return 0;
513	}
514	/* perform the accept */
515	newfd = comm_point_perform_accept(c, &addr, &addrlen);
516	if(newfd == -1)
517		return 0;
518	/* create new commpoint unless we are servicing already */
519	if(rc->active >= rc->max_active) {
520		log_warn("drop incoming remote control: too many connections");
521	close_exit:
522#ifndef USE_WINSOCK
523		close(newfd);
524#else
525		closesocket(newfd);
526#endif
527		return 0;
528	}
529
530	/* setup commpoint to service the remote control command */
531	n = (struct rc_state*)calloc(1, sizeof(*n));
532	if(!n) {
533		log_err("out of memory");
534		goto close_exit;
535	}
536	/* start in reading state */
537	n->c = comm_point_create_raw(rc->worker->base, newfd, 0,
538		&remote_control_callback, n);
539	if(!n->c) {
540		log_err("out of memory");
541		free(n);
542		goto close_exit;
543	}
544	log_addr(VERB_QUERY, "new control connection from", &addr, addrlen);
545	n->c->do_not_close = 0;
546	comm_point_stop_listening(n->c);
547	comm_point_start_listening(n->c, -1, REMOTE_CONTROL_TCP_TIMEOUT);
548	memcpy(&n->c->repinfo.addr, &addr, addrlen);
549	n->c->repinfo.addrlen = addrlen;
550	n->shake_state = rc_hs_read;
551	n->ssl = SSL_new(rc->ctx);
552	if(!n->ssl) {
553		log_crypto_err("could not SSL_new");
554		comm_point_delete(n->c);
555		free(n);
556		goto close_exit;
557	}
558	SSL_set_accept_state(n->ssl);
559        (void)SSL_set_mode(n->ssl, SSL_MODE_AUTO_RETRY);
560	if(!SSL_set_fd(n->ssl, newfd)) {
561		log_crypto_err("could not SSL_set_fd");
562		SSL_free(n->ssl);
563		comm_point_delete(n->c);
564		free(n);
565		goto close_exit;
566	}
567
568	n->rc = rc;
569	n->next = rc->busy_list;
570	rc->busy_list = n;
571	rc->active ++;
572
573	/* perform the first nonblocking read already, for windows,
574	 * so it can return wouldblock. could be faster too. */
575	(void)remote_control_callback(n->c, n, NETEVENT_NOERROR, NULL);
576	return 0;
577}
578
579/** delete from list */
580static void
581state_list_remove_elem(struct rc_state** list, struct comm_point* c)
582{
583	while(*list) {
584		if( (*list)->c == c) {
585			*list = (*list)->next;
586			return;
587		}
588		list = &(*list)->next;
589	}
590}
591
592/** decrease active count and remove commpoint from busy list */
593static void
594clean_point(struct daemon_remote* rc, struct rc_state* s)
595{
596	state_list_remove_elem(&rc->busy_list, s->c);
597	rc->active --;
598	if(s->ssl) {
599		SSL_shutdown(s->ssl);
600		SSL_free(s->ssl);
601	}
602	comm_point_delete(s->c);
603	free(s);
604}
605
606int
607ssl_print_text(SSL* ssl, const char* text)
608{
609	int r;
610	if(!ssl)
611		return 0;
612	ERR_clear_error();
613	if((r=SSL_write(ssl, text, (int)strlen(text))) <= 0) {
614		if(SSL_get_error(ssl, r) == SSL_ERROR_ZERO_RETURN) {
615			verbose(VERB_QUERY, "warning, in SSL_write, peer "
616				"closed connection");
617			return 0;
618		}
619		log_crypto_err("could not SSL_write");
620		return 0;
621	}
622	return 1;
623}
624
625/** print text over the ssl connection */
626static int
627ssl_print_vmsg(SSL* ssl, const char* format, va_list args)
628{
629	char msg[1024];
630	vsnprintf(msg, sizeof(msg), format, args);
631	return ssl_print_text(ssl, msg);
632}
633
634/** printf style printing to the ssl connection */
635int ssl_printf(SSL* ssl, const char* format, ...)
636{
637	va_list args;
638	int ret;
639	va_start(args, format);
640	ret = ssl_print_vmsg(ssl, format, args);
641	va_end(args);
642	return ret;
643}
644
645int
646ssl_read_line(SSL* ssl, char* buf, size_t max)
647{
648	int r;
649	size_t len = 0;
650	if(!ssl)
651		return 0;
652	while(len < max) {
653		ERR_clear_error();
654		if((r=SSL_read(ssl, buf+len, 1)) <= 0) {
655			if(SSL_get_error(ssl, r) == SSL_ERROR_ZERO_RETURN) {
656				buf[len] = 0;
657				return 1;
658			}
659			log_crypto_err("could not SSL_read");
660			return 0;
661		}
662		if(buf[len] == '\n') {
663			/* return string without \n */
664			buf[len] = 0;
665			return 1;
666		}
667		len++;
668	}
669	buf[max-1] = 0;
670	log_err("control line too long (%d): %s", (int)max, buf);
671	return 0;
672}
673
674/** skip whitespace, return new pointer into string */
675static char*
676skipwhite(char* str)
677{
678	/* EOS \0 is not a space */
679	while( isspace((unsigned char)*str) )
680		str++;
681	return str;
682}
683
684/** send the OK to the control client */
685static void send_ok(SSL* ssl)
686{
687	(void)ssl_printf(ssl, "ok\n");
688}
689
690/** do the stop command */
691static void
692do_stop(SSL* ssl, struct daemon_remote* rc)
693{
694	rc->worker->need_to_exit = 1;
695	comm_base_exit(rc->worker->base);
696	send_ok(ssl);
697}
698
699/** do the reload command */
700static void
701do_reload(SSL* ssl, struct daemon_remote* rc)
702{
703	rc->worker->need_to_exit = 0;
704	comm_base_exit(rc->worker->base);
705	send_ok(ssl);
706}
707
708/** do the verbosity command */
709static void
710do_verbosity(SSL* ssl, char* str)
711{
712	int val = atoi(str);
713	if(val == 0 && strcmp(str, "0") != 0) {
714		ssl_printf(ssl, "error in verbosity number syntax: %s\n", str);
715		return;
716	}
717	verbosity = val;
718	send_ok(ssl);
719}
720
721/** print stats from statinfo */
722static int
723print_stats(SSL* ssl, const char* nm, struct stats_info* s)
724{
725	struct timeval avg;
726	if(!ssl_printf(ssl, "%s.num.queries"SQ"%lu\n", nm,
727		(unsigned long)s->svr.num_queries)) return 0;
728	if(!ssl_printf(ssl, "%s.num.cachehits"SQ"%lu\n", nm,
729		(unsigned long)(s->svr.num_queries
730			- s->svr.num_queries_missed_cache))) return 0;
731	if(!ssl_printf(ssl, "%s.num.cachemiss"SQ"%lu\n", nm,
732		(unsigned long)s->svr.num_queries_missed_cache)) return 0;
733	if(!ssl_printf(ssl, "%s.num.prefetch"SQ"%lu\n", nm,
734		(unsigned long)s->svr.num_queries_prefetch)) return 0;
735	if(!ssl_printf(ssl, "%s.num.recursivereplies"SQ"%lu\n", nm,
736		(unsigned long)s->mesh_replies_sent)) return 0;
737	if(!ssl_printf(ssl, "%s.requestlist.avg"SQ"%g\n", nm,
738		(s->svr.num_queries_missed_cache+s->svr.num_queries_prefetch)?
739			(double)s->svr.sum_query_list_size/
740			(s->svr.num_queries_missed_cache+
741			s->svr.num_queries_prefetch) : 0.0)) return 0;
742	if(!ssl_printf(ssl, "%s.requestlist.max"SQ"%lu\n", nm,
743		(unsigned long)s->svr.max_query_list_size)) return 0;
744	if(!ssl_printf(ssl, "%s.requestlist.overwritten"SQ"%lu\n", nm,
745		(unsigned long)s->mesh_jostled)) return 0;
746	if(!ssl_printf(ssl, "%s.requestlist.exceeded"SQ"%lu\n", nm,
747		(unsigned long)s->mesh_dropped)) return 0;
748	if(!ssl_printf(ssl, "%s.requestlist.current.all"SQ"%lu\n", nm,
749		(unsigned long)s->mesh_num_states)) return 0;
750	if(!ssl_printf(ssl, "%s.requestlist.current.user"SQ"%lu\n", nm,
751		(unsigned long)s->mesh_num_reply_states)) return 0;
752	timeval_divide(&avg, &s->mesh_replies_sum_wait, s->mesh_replies_sent);
753	if(!ssl_printf(ssl, "%s.recursion.time.avg"SQ ARG_LL "d.%6.6d\n", nm,
754		(long long)avg.tv_sec, (int)avg.tv_usec)) return 0;
755	if(!ssl_printf(ssl, "%s.recursion.time.median"SQ"%g\n", nm,
756		s->mesh_time_median)) return 0;
757	if(!ssl_printf(ssl, "%s.tcpusage"SQ"%lu\n", nm,
758		(unsigned long)s->svr.tcp_accept_usage)) return 0;
759	return 1;
760}
761
762/** print stats for one thread */
763static int
764print_thread_stats(SSL* ssl, int i, struct stats_info* s)
765{
766	char nm[16];
767	snprintf(nm, sizeof(nm), "thread%d", i);
768	nm[sizeof(nm)-1]=0;
769	return print_stats(ssl, nm, s);
770}
771
772/** print long number */
773static int
774print_longnum(SSL* ssl, const char* desc, size_t x)
775{
776	if(x > 1024*1024*1024) {
777		/* more than a Gb */
778		size_t front = x / (size_t)1000000;
779		size_t back = x % (size_t)1000000;
780		return ssl_printf(ssl, "%s%u%6.6u\n", desc,
781			(unsigned)front, (unsigned)back);
782	} else {
783		return ssl_printf(ssl, "%s%lu\n", desc, (unsigned long)x);
784	}
785}
786
787/** print mem stats */
788static int
789print_mem(SSL* ssl, struct worker* worker, struct daemon* daemon)
790{
791	int m;
792	size_t msg, rrset, val, iter;
793#ifdef HAVE_SBRK
794	extern void* unbound_start_brk;
795	void* cur = sbrk(0);
796	if(!print_longnum(ssl, "mem.total.sbrk"SQ,
797		(size_t)((char*)cur - (char*)unbound_start_brk))) return 0;
798#endif /* HAVE_SBRK */
799	msg = slabhash_get_mem(daemon->env->msg_cache);
800	rrset = slabhash_get_mem(&daemon->env->rrset_cache->table);
801	val=0;
802	iter=0;
803	m = modstack_find(&worker->env.mesh->mods, "validator");
804	if(m != -1) {
805		fptr_ok(fptr_whitelist_mod_get_mem(worker->env.mesh->
806			mods.mod[m]->get_mem));
807		val = (*worker->env.mesh->mods.mod[m]->get_mem)
808			(&worker->env, m);
809	}
810	m = modstack_find(&worker->env.mesh->mods, "iterator");
811	if(m != -1) {
812		fptr_ok(fptr_whitelist_mod_get_mem(worker->env.mesh->
813			mods.mod[m]->get_mem));
814		iter = (*worker->env.mesh->mods.mod[m]->get_mem)
815			(&worker->env, m);
816	}
817
818	if(!print_longnum(ssl, "mem.cache.rrset"SQ, rrset))
819		return 0;
820	if(!print_longnum(ssl, "mem.cache.message"SQ, msg))
821		return 0;
822	if(!print_longnum(ssl, "mem.mod.iterator"SQ, iter))
823		return 0;
824	if(!print_longnum(ssl, "mem.mod.validator"SQ, val))
825		return 0;
826	return 1;
827}
828
829/** print uptime stats */
830static int
831print_uptime(SSL* ssl, struct worker* worker, int reset)
832{
833	struct timeval now = *worker->env.now_tv;
834	struct timeval up, dt;
835	timeval_subtract(&up, &now, &worker->daemon->time_boot);
836	timeval_subtract(&dt, &now, &worker->daemon->time_last_stat);
837	if(reset)
838		worker->daemon->time_last_stat = now;
839	if(!ssl_printf(ssl, "time.now"SQ ARG_LL "d.%6.6d\n",
840		(long long)now.tv_sec, (unsigned)now.tv_usec)) return 0;
841	if(!ssl_printf(ssl, "time.up"SQ ARG_LL "d.%6.6d\n",
842		(long long)up.tv_sec, (unsigned)up.tv_usec)) return 0;
843	if(!ssl_printf(ssl, "time.elapsed"SQ ARG_LL "d.%6.6d\n",
844		(long long)dt.tv_sec, (unsigned)dt.tv_usec)) return 0;
845	return 1;
846}
847
848/** print extended histogram */
849static int
850print_hist(SSL* ssl, struct stats_info* s)
851{
852	struct timehist* hist;
853	size_t i;
854	hist = timehist_setup();
855	if(!hist) {
856		log_err("out of memory");
857		return 0;
858	}
859	timehist_import(hist, s->svr.hist, NUM_BUCKETS_HIST);
860	for(i=0; i<hist->num; i++) {
861		if(!ssl_printf(ssl,
862			"histogram.%6.6d.%6.6d.to.%6.6d.%6.6d=%lu\n",
863			(int)hist->buckets[i].lower.tv_sec,
864			(int)hist->buckets[i].lower.tv_usec,
865			(int)hist->buckets[i].upper.tv_sec,
866			(int)hist->buckets[i].upper.tv_usec,
867			(unsigned long)hist->buckets[i].count)) {
868			timehist_delete(hist);
869			return 0;
870		}
871	}
872	timehist_delete(hist);
873	return 1;
874}
875
876/** print extended stats */
877static int
878print_ext(SSL* ssl, struct stats_info* s)
879{
880	int i;
881	char nm[16];
882	const sldns_rr_descriptor* desc;
883	const sldns_lookup_table* lt;
884	/* TYPE */
885	for(i=0; i<STATS_QTYPE_NUM; i++) {
886		if(inhibit_zero && s->svr.qtype[i] == 0)
887			continue;
888		desc = sldns_rr_descript((uint16_t)i);
889		if(desc && desc->_name) {
890			snprintf(nm, sizeof(nm), "%s", desc->_name);
891		} else if (i == LDNS_RR_TYPE_IXFR) {
892			snprintf(nm, sizeof(nm), "IXFR");
893		} else if (i == LDNS_RR_TYPE_AXFR) {
894			snprintf(nm, sizeof(nm), "AXFR");
895		} else if (i == LDNS_RR_TYPE_MAILA) {
896			snprintf(nm, sizeof(nm), "MAILA");
897		} else if (i == LDNS_RR_TYPE_MAILB) {
898			snprintf(nm, sizeof(nm), "MAILB");
899		} else if (i == LDNS_RR_TYPE_ANY) {
900			snprintf(nm, sizeof(nm), "ANY");
901		} else {
902			snprintf(nm, sizeof(nm), "TYPE%d", i);
903		}
904		if(!ssl_printf(ssl, "num.query.type.%s"SQ"%lu\n",
905			nm, (unsigned long)s->svr.qtype[i])) return 0;
906	}
907	if(!inhibit_zero || s->svr.qtype_big) {
908		if(!ssl_printf(ssl, "num.query.type.other"SQ"%lu\n",
909			(unsigned long)s->svr.qtype_big)) return 0;
910	}
911	/* CLASS */
912	for(i=0; i<STATS_QCLASS_NUM; i++) {
913		if(inhibit_zero && s->svr.qclass[i] == 0)
914			continue;
915		lt = sldns_lookup_by_id(sldns_rr_classes, i);
916		if(lt && lt->name) {
917			snprintf(nm, sizeof(nm), "%s", lt->name);
918		} else {
919			snprintf(nm, sizeof(nm), "CLASS%d", i);
920		}
921		if(!ssl_printf(ssl, "num.query.class.%s"SQ"%lu\n",
922			nm, (unsigned long)s->svr.qclass[i])) return 0;
923	}
924	if(!inhibit_zero || s->svr.qclass_big) {
925		if(!ssl_printf(ssl, "num.query.class.other"SQ"%lu\n",
926			(unsigned long)s->svr.qclass_big)) return 0;
927	}
928	/* OPCODE */
929	for(i=0; i<STATS_OPCODE_NUM; i++) {
930		if(inhibit_zero && s->svr.qopcode[i] == 0)
931			continue;
932		lt = sldns_lookup_by_id(sldns_opcodes, i);
933		if(lt && lt->name) {
934			snprintf(nm, sizeof(nm), "%s", lt->name);
935		} else {
936			snprintf(nm, sizeof(nm), "OPCODE%d", i);
937		}
938		if(!ssl_printf(ssl, "num.query.opcode.%s"SQ"%lu\n",
939			nm, (unsigned long)s->svr.qopcode[i])) return 0;
940	}
941	/* transport */
942	if(!ssl_printf(ssl, "num.query.tcp"SQ"%lu\n",
943		(unsigned long)s->svr.qtcp)) return 0;
944	if(!ssl_printf(ssl, "num.query.tcpout"SQ"%lu\n",
945		(unsigned long)s->svr.qtcp_outgoing)) return 0;
946	if(!ssl_printf(ssl, "num.query.ipv6"SQ"%lu\n",
947		(unsigned long)s->svr.qipv6)) return 0;
948	/* flags */
949	if(!ssl_printf(ssl, "num.query.flags.QR"SQ"%lu\n",
950		(unsigned long)s->svr.qbit_QR)) return 0;
951	if(!ssl_printf(ssl, "num.query.flags.AA"SQ"%lu\n",
952		(unsigned long)s->svr.qbit_AA)) return 0;
953	if(!ssl_printf(ssl, "num.query.flags.TC"SQ"%lu\n",
954		(unsigned long)s->svr.qbit_TC)) return 0;
955	if(!ssl_printf(ssl, "num.query.flags.RD"SQ"%lu\n",
956		(unsigned long)s->svr.qbit_RD)) return 0;
957	if(!ssl_printf(ssl, "num.query.flags.RA"SQ"%lu\n",
958		(unsigned long)s->svr.qbit_RA)) return 0;
959	if(!ssl_printf(ssl, "num.query.flags.Z"SQ"%lu\n",
960		(unsigned long)s->svr.qbit_Z)) return 0;
961	if(!ssl_printf(ssl, "num.query.flags.AD"SQ"%lu\n",
962		(unsigned long)s->svr.qbit_AD)) return 0;
963	if(!ssl_printf(ssl, "num.query.flags.CD"SQ"%lu\n",
964		(unsigned long)s->svr.qbit_CD)) return 0;
965	if(!ssl_printf(ssl, "num.query.edns.present"SQ"%lu\n",
966		(unsigned long)s->svr.qEDNS)) return 0;
967	if(!ssl_printf(ssl, "num.query.edns.DO"SQ"%lu\n",
968		(unsigned long)s->svr.qEDNS_DO)) return 0;
969
970	/* RCODE */
971	for(i=0; i<STATS_RCODE_NUM; i++) {
972		/* Always include RCODEs 0-5 */
973		if(inhibit_zero && i > LDNS_RCODE_REFUSED && s->svr.ans_rcode[i] == 0)
974			continue;
975		lt = sldns_lookup_by_id(sldns_rcodes, i);
976		if(lt && lt->name) {
977			snprintf(nm, sizeof(nm), "%s", lt->name);
978		} else {
979			snprintf(nm, sizeof(nm), "RCODE%d", i);
980		}
981		if(!ssl_printf(ssl, "num.answer.rcode.%s"SQ"%lu\n",
982			nm, (unsigned long)s->svr.ans_rcode[i])) return 0;
983	}
984	if(!inhibit_zero || s->svr.ans_rcode_nodata) {
985		if(!ssl_printf(ssl, "num.answer.rcode.nodata"SQ"%lu\n",
986			(unsigned long)s->svr.ans_rcode_nodata)) return 0;
987	}
988	/* validation */
989	if(!ssl_printf(ssl, "num.answer.secure"SQ"%lu\n",
990		(unsigned long)s->svr.ans_secure)) return 0;
991	if(!ssl_printf(ssl, "num.answer.bogus"SQ"%lu\n",
992		(unsigned long)s->svr.ans_bogus)) return 0;
993	if(!ssl_printf(ssl, "num.rrset.bogus"SQ"%lu\n",
994		(unsigned long)s->svr.rrset_bogus)) return 0;
995	/* threat detection */
996	if(!ssl_printf(ssl, "unwanted.queries"SQ"%lu\n",
997		(unsigned long)s->svr.unwanted_queries)) return 0;
998	if(!ssl_printf(ssl, "unwanted.replies"SQ"%lu\n",
999		(unsigned long)s->svr.unwanted_replies)) return 0;
1000	/* cache counts */
1001	if(!ssl_printf(ssl, "msg.cache.count"SQ"%u\n",
1002		(unsigned)s->svr.msg_cache_count)) return 0;
1003	if(!ssl_printf(ssl, "rrset.cache.count"SQ"%u\n",
1004		(unsigned)s->svr.rrset_cache_count)) return 0;
1005	if(!ssl_printf(ssl, "infra.cache.count"SQ"%u\n",
1006		(unsigned)s->svr.infra_cache_count)) return 0;
1007	if(!ssl_printf(ssl, "key.cache.count"SQ"%u\n",
1008		(unsigned)s->svr.key_cache_count)) return 0;
1009	return 1;
1010}
1011
1012/** do the stats command */
1013static void
1014do_stats(SSL* ssl, struct daemon_remote* rc, int reset)
1015{
1016	struct daemon* daemon = rc->worker->daemon;
1017	struct stats_info total;
1018	struct stats_info s;
1019	int i;
1020	log_assert(daemon->num > 0);
1021	/* gather all thread statistics in one place */
1022	for(i=0; i<daemon->num; i++) {
1023		server_stats_obtain(rc->worker, daemon->workers[i], &s, reset);
1024		if(!print_thread_stats(ssl, i, &s))
1025			return;
1026		if(i == 0)
1027			total = s;
1028		else	server_stats_add(&total, &s);
1029	}
1030	/* print the thread statistics */
1031	total.mesh_time_median /= (double)daemon->num;
1032	if(!print_stats(ssl, "total", &total))
1033		return;
1034	if(!print_uptime(ssl, rc->worker, reset))
1035		return;
1036	if(daemon->cfg->stat_extended) {
1037		if(!print_mem(ssl, rc->worker, daemon))
1038			return;
1039		if(!print_hist(ssl, &total))
1040			return;
1041		if(!print_ext(ssl, &total))
1042			return;
1043	}
1044}
1045
1046/** parse commandline argument domain name */
1047static int
1048parse_arg_name(SSL* ssl, char* str, uint8_t** res, size_t* len, int* labs)
1049{
1050	uint8_t nm[LDNS_MAX_DOMAINLEN+1];
1051	size_t nmlen = sizeof(nm);
1052	int status;
1053	*res = NULL;
1054	*len = 0;
1055	*labs = 0;
1056	status = sldns_str2wire_dname_buf(str, nm, &nmlen);
1057	if(status != 0) {
1058		ssl_printf(ssl, "error cannot parse name %s at %d: %s\n", str,
1059			LDNS_WIREPARSE_OFFSET(status),
1060			sldns_get_errorstr_parse(status));
1061		return 0;
1062	}
1063	*res = memdup(nm, nmlen);
1064	if(!*res) {
1065		ssl_printf(ssl, "error out of memory\n");
1066		return 0;
1067	}
1068	*labs = dname_count_size_labels(*res, len);
1069	return 1;
1070}
1071
1072/** find second argument, modifies string */
1073static int
1074find_arg2(SSL* ssl, char* arg, char** arg2)
1075{
1076	char* as = strchr(arg, ' ');
1077	char* at = strchr(arg, '\t');
1078	if(as && at) {
1079		if(at < as)
1080			as = at;
1081		as[0]=0;
1082		*arg2 = skipwhite(as+1);
1083	} else if(as) {
1084		as[0]=0;
1085		*arg2 = skipwhite(as+1);
1086	} else if(at) {
1087		at[0]=0;
1088		*arg2 = skipwhite(at+1);
1089	} else {
1090		ssl_printf(ssl, "error could not find next argument "
1091			"after %s\n", arg);
1092		return 0;
1093	}
1094	return 1;
1095}
1096
1097/** Add a new zone */
1098static void
1099do_zone_add(SSL* ssl, struct worker* worker, char* arg)
1100{
1101	uint8_t* nm;
1102	int nmlabs;
1103	size_t nmlen;
1104	char* arg2;
1105	enum localzone_type t;
1106	struct local_zone* z;
1107	if(!find_arg2(ssl, arg, &arg2))
1108		return;
1109	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1110		return;
1111	if(!local_zone_str2type(arg2, &t)) {
1112		ssl_printf(ssl, "error not a zone type. %s\n", arg2);
1113		free(nm);
1114		return;
1115	}
1116	lock_rw_wrlock(&worker->daemon->local_zones->lock);
1117	if((z=local_zones_find(worker->daemon->local_zones, nm, nmlen,
1118		nmlabs, LDNS_RR_CLASS_IN))) {
1119		/* already present in tree */
1120		lock_rw_wrlock(&z->lock);
1121		z->type = t; /* update type anyway */
1122		lock_rw_unlock(&z->lock);
1123		free(nm);
1124		lock_rw_unlock(&worker->daemon->local_zones->lock);
1125		send_ok(ssl);
1126		return;
1127	}
1128	if(!local_zones_add_zone(worker->daemon->local_zones, nm, nmlen,
1129		nmlabs, LDNS_RR_CLASS_IN, t)) {
1130		lock_rw_unlock(&worker->daemon->local_zones->lock);
1131		ssl_printf(ssl, "error out of memory\n");
1132		return;
1133	}
1134	lock_rw_unlock(&worker->daemon->local_zones->lock);
1135	send_ok(ssl);
1136}
1137
1138/** Remove a zone */
1139static void
1140do_zone_remove(SSL* ssl, struct worker* worker, char* arg)
1141{
1142	uint8_t* nm;
1143	int nmlabs;
1144	size_t nmlen;
1145	struct local_zone* z;
1146	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1147		return;
1148	lock_rw_wrlock(&worker->daemon->local_zones->lock);
1149	if((z=local_zones_find(worker->daemon->local_zones, nm, nmlen,
1150		nmlabs, LDNS_RR_CLASS_IN))) {
1151		/* present in tree */
1152		local_zones_del_zone(worker->daemon->local_zones, z);
1153	}
1154	lock_rw_unlock(&worker->daemon->local_zones->lock);
1155	free(nm);
1156	send_ok(ssl);
1157}
1158
1159/** Add new RR data */
1160static void
1161do_data_add(SSL* ssl, struct worker* worker, char* arg)
1162{
1163	if(!local_zones_add_RR(worker->daemon->local_zones, arg)) {
1164		ssl_printf(ssl,"error in syntax or out of memory, %s\n", arg);
1165		return;
1166	}
1167	send_ok(ssl);
1168}
1169
1170/** Remove RR data */
1171static void
1172do_data_remove(SSL* ssl, struct worker* worker, char* arg)
1173{
1174	uint8_t* nm;
1175	int nmlabs;
1176	size_t nmlen;
1177	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1178		return;
1179	local_zones_del_data(worker->daemon->local_zones, nm,
1180		nmlen, nmlabs, LDNS_RR_CLASS_IN);
1181	free(nm);
1182	send_ok(ssl);
1183}
1184
1185/** cache lookup of nameservers */
1186static void
1187do_lookup(SSL* ssl, struct worker* worker, char* arg)
1188{
1189	uint8_t* nm;
1190	int nmlabs;
1191	size_t nmlen;
1192	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1193		return;
1194	(void)print_deleg_lookup(ssl, worker, nm, nmlen, nmlabs);
1195	free(nm);
1196}
1197
1198/** flush something from rrset and msg caches */
1199static void
1200do_cache_remove(struct worker* worker, uint8_t* nm, size_t nmlen,
1201	uint16_t t, uint16_t c)
1202{
1203	hashvalue_t h;
1204	struct query_info k;
1205	rrset_cache_remove(worker->env.rrset_cache, nm, nmlen, t, c, 0);
1206	if(t == LDNS_RR_TYPE_SOA)
1207		rrset_cache_remove(worker->env.rrset_cache, nm, nmlen, t, c,
1208			PACKED_RRSET_SOA_NEG);
1209	k.qname = nm;
1210	k.qname_len = nmlen;
1211	k.qtype = t;
1212	k.qclass = c;
1213	h = query_info_hash(&k, 0);
1214	slabhash_remove(worker->env.msg_cache, h, &k);
1215	if(t == LDNS_RR_TYPE_AAAA) {
1216		/* for AAAA also flush dns64 bit_cd packet */
1217		h = query_info_hash(&k, BIT_CD);
1218		slabhash_remove(worker->env.msg_cache, h, &k);
1219	}
1220}
1221
1222/** flush a type */
1223static void
1224do_flush_type(SSL* ssl, struct worker* worker, char* arg)
1225{
1226	uint8_t* nm;
1227	int nmlabs;
1228	size_t nmlen;
1229	char* arg2;
1230	uint16_t t;
1231	if(!find_arg2(ssl, arg, &arg2))
1232		return;
1233	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1234		return;
1235	t = sldns_get_rr_type_by_name(arg2);
1236	do_cache_remove(worker, nm, nmlen, t, LDNS_RR_CLASS_IN);
1237
1238	free(nm);
1239	send_ok(ssl);
1240}
1241
1242/** flush statistics */
1243static void
1244do_flush_stats(SSL* ssl, struct worker* worker)
1245{
1246	worker_stats_clear(worker);
1247	send_ok(ssl);
1248}
1249
1250/**
1251 * Local info for deletion functions
1252 */
1253struct del_info {
1254	/** worker */
1255	struct worker* worker;
1256	/** name to delete */
1257	uint8_t* name;
1258	/** length */
1259	size_t len;
1260	/** labels */
1261	int labs;
1262	/** time to invalidate to */
1263	time_t expired;
1264	/** number of rrsets removed */
1265	size_t num_rrsets;
1266	/** number of msgs removed */
1267	size_t num_msgs;
1268	/** number of key entries removed */
1269	size_t num_keys;
1270	/** length of addr */
1271	socklen_t addrlen;
1272	/** socket address for host deletion */
1273	struct sockaddr_storage addr;
1274};
1275
1276/** callback to delete hosts in infra cache */
1277static void
1278infra_del_host(struct lruhash_entry* e, void* arg)
1279{
1280	/* entry is locked */
1281	struct del_info* inf = (struct del_info*)arg;
1282	struct infra_key* k = (struct infra_key*)e->key;
1283	if(sockaddr_cmp(&inf->addr, inf->addrlen, &k->addr, k->addrlen) == 0) {
1284		struct infra_data* d = (struct infra_data*)e->data;
1285		d->probedelay = 0;
1286		d->timeout_A = 0;
1287		d->timeout_AAAA = 0;
1288		d->timeout_other = 0;
1289		rtt_init(&d->rtt);
1290		if(d->ttl > inf->expired) {
1291			d->ttl = inf->expired;
1292			inf->num_keys++;
1293		}
1294	}
1295}
1296
1297/** flush infra cache */
1298static void
1299do_flush_infra(SSL* ssl, struct worker* worker, char* arg)
1300{
1301	struct sockaddr_storage addr;
1302	socklen_t len;
1303	struct del_info inf;
1304	if(strcmp(arg, "all") == 0) {
1305		slabhash_clear(worker->env.infra_cache->hosts);
1306		send_ok(ssl);
1307		return;
1308	}
1309	if(!ipstrtoaddr(arg, UNBOUND_DNS_PORT, &addr, &len)) {
1310		(void)ssl_printf(ssl, "error parsing ip addr: '%s'\n", arg);
1311		return;
1312	}
1313	/* delete all entries from cache */
1314	/* what we do is to set them all expired */
1315	inf.worker = worker;
1316	inf.name = 0;
1317	inf.len = 0;
1318	inf.labs = 0;
1319	inf.expired = *worker->env.now;
1320	inf.expired -= 3; /* handle 3 seconds skew between threads */
1321	inf.num_rrsets = 0;
1322	inf.num_msgs = 0;
1323	inf.num_keys = 0;
1324	inf.addrlen = len;
1325	memmove(&inf.addr, &addr, len);
1326	slabhash_traverse(worker->env.infra_cache->hosts, 1, &infra_del_host,
1327		&inf);
1328	send_ok(ssl);
1329}
1330
1331/** flush requestlist */
1332static void
1333do_flush_requestlist(SSL* ssl, struct worker* worker)
1334{
1335	mesh_delete_all(worker->env.mesh);
1336	send_ok(ssl);
1337}
1338
1339/** callback to delete rrsets in a zone */
1340static void
1341zone_del_rrset(struct lruhash_entry* e, void* arg)
1342{
1343	/* entry is locked */
1344	struct del_info* inf = (struct del_info*)arg;
1345	struct ub_packed_rrset_key* k = (struct ub_packed_rrset_key*)e->key;
1346	if(dname_subdomain_c(k->rk.dname, inf->name)) {
1347		struct packed_rrset_data* d =
1348			(struct packed_rrset_data*)e->data;
1349		if(d->ttl > inf->expired) {
1350			d->ttl = inf->expired;
1351			inf->num_rrsets++;
1352		}
1353	}
1354}
1355
1356/** callback to delete messages in a zone */
1357static void
1358zone_del_msg(struct lruhash_entry* e, void* arg)
1359{
1360	/* entry is locked */
1361	struct del_info* inf = (struct del_info*)arg;
1362	struct msgreply_entry* k = (struct msgreply_entry*)e->key;
1363	if(dname_subdomain_c(k->key.qname, inf->name)) {
1364		struct reply_info* d = (struct reply_info*)e->data;
1365		if(d->ttl > inf->expired) {
1366			d->ttl = inf->expired;
1367			inf->num_msgs++;
1368		}
1369	}
1370}
1371
1372/** callback to delete keys in zone */
1373static void
1374zone_del_kcache(struct lruhash_entry* e, void* arg)
1375{
1376	/* entry is locked */
1377	struct del_info* inf = (struct del_info*)arg;
1378	struct key_entry_key* k = (struct key_entry_key*)e->key;
1379	if(dname_subdomain_c(k->name, inf->name)) {
1380		struct key_entry_data* d = (struct key_entry_data*)e->data;
1381		if(d->ttl > inf->expired) {
1382			d->ttl = inf->expired;
1383			inf->num_keys++;
1384		}
1385	}
1386}
1387
1388/** remove all rrsets and keys from zone from cache */
1389static void
1390do_flush_zone(SSL* ssl, struct worker* worker, char* arg)
1391{
1392	uint8_t* nm;
1393	int nmlabs;
1394	size_t nmlen;
1395	struct del_info inf;
1396	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1397		return;
1398	/* delete all RRs and key entries from zone */
1399	/* what we do is to set them all expired */
1400	inf.worker = worker;
1401	inf.name = nm;
1402	inf.len = nmlen;
1403	inf.labs = nmlabs;
1404	inf.expired = *worker->env.now;
1405	inf.expired -= 3; /* handle 3 seconds skew between threads */
1406	inf.num_rrsets = 0;
1407	inf.num_msgs = 0;
1408	inf.num_keys = 0;
1409	slabhash_traverse(&worker->env.rrset_cache->table, 1,
1410		&zone_del_rrset, &inf);
1411
1412	slabhash_traverse(worker->env.msg_cache, 1, &zone_del_msg, &inf);
1413
1414	/* and validator cache */
1415	if(worker->env.key_cache) {
1416		slabhash_traverse(worker->env.key_cache->slab, 1,
1417			&zone_del_kcache, &inf);
1418	}
1419
1420	free(nm);
1421
1422	(void)ssl_printf(ssl, "ok removed %lu rrsets, %lu messages "
1423		"and %lu key entries\n", (unsigned long)inf.num_rrsets,
1424		(unsigned long)inf.num_msgs, (unsigned long)inf.num_keys);
1425}
1426
1427/** callback to delete bogus rrsets */
1428static void
1429bogus_del_rrset(struct lruhash_entry* e, void* arg)
1430{
1431	/* entry is locked */
1432	struct del_info* inf = (struct del_info*)arg;
1433	struct packed_rrset_data* d = (struct packed_rrset_data*)e->data;
1434	if(d->security == sec_status_bogus) {
1435		d->ttl = inf->expired;
1436		inf->num_rrsets++;
1437	}
1438}
1439
1440/** callback to delete bogus messages */
1441static void
1442bogus_del_msg(struct lruhash_entry* e, void* arg)
1443{
1444	/* entry is locked */
1445	struct del_info* inf = (struct del_info*)arg;
1446	struct reply_info* d = (struct reply_info*)e->data;
1447	if(d->security == sec_status_bogus) {
1448		d->ttl = inf->expired;
1449		inf->num_msgs++;
1450	}
1451}
1452
1453/** callback to delete bogus keys */
1454static void
1455bogus_del_kcache(struct lruhash_entry* e, void* arg)
1456{
1457	/* entry is locked */
1458	struct del_info* inf = (struct del_info*)arg;
1459	struct key_entry_data* d = (struct key_entry_data*)e->data;
1460	if(d->isbad) {
1461		d->ttl = inf->expired;
1462		inf->num_keys++;
1463	}
1464}
1465
1466/** remove all bogus rrsets, msgs and keys from cache */
1467static void
1468do_flush_bogus(SSL* ssl, struct worker* worker)
1469{
1470	struct del_info inf;
1471	/* what we do is to set them all expired */
1472	inf.worker = worker;
1473	inf.expired = *worker->env.now;
1474	inf.expired -= 3; /* handle 3 seconds skew between threads */
1475	inf.num_rrsets = 0;
1476	inf.num_msgs = 0;
1477	inf.num_keys = 0;
1478	slabhash_traverse(&worker->env.rrset_cache->table, 1,
1479		&bogus_del_rrset, &inf);
1480
1481	slabhash_traverse(worker->env.msg_cache, 1, &bogus_del_msg, &inf);
1482
1483	/* and validator cache */
1484	if(worker->env.key_cache) {
1485		slabhash_traverse(worker->env.key_cache->slab, 1,
1486			&bogus_del_kcache, &inf);
1487	}
1488
1489	(void)ssl_printf(ssl, "ok removed %lu rrsets, %lu messages "
1490		"and %lu key entries\n", (unsigned long)inf.num_rrsets,
1491		(unsigned long)inf.num_msgs, (unsigned long)inf.num_keys);
1492}
1493
1494/** callback to delete negative and servfail rrsets */
1495static void
1496negative_del_rrset(struct lruhash_entry* e, void* arg)
1497{
1498	/* entry is locked */
1499	struct del_info* inf = (struct del_info*)arg;
1500	struct ub_packed_rrset_key* k = (struct ub_packed_rrset_key*)e->key;
1501	struct packed_rrset_data* d = (struct packed_rrset_data*)e->data;
1502	/* delete the parentside negative cache rrsets,
1503	 * these are namerserver rrsets that failed lookup, rdata empty */
1504	if((k->rk.flags & PACKED_RRSET_PARENT_SIDE) && d->count == 1 &&
1505		d->rrsig_count == 0 && d->rr_len[0] == 0) {
1506		d->ttl = inf->expired;
1507		inf->num_rrsets++;
1508	}
1509}
1510
1511/** callback to delete negative and servfail messages */
1512static void
1513negative_del_msg(struct lruhash_entry* e, void* arg)
1514{
1515	/* entry is locked */
1516	struct del_info* inf = (struct del_info*)arg;
1517	struct reply_info* d = (struct reply_info*)e->data;
1518	/* rcode not NOERROR: NXDOMAIN, SERVFAIL, ..: an nxdomain or error
1519	 * or NOERROR rcode with ANCOUNT==0: a NODATA answer */
1520	if(FLAGS_GET_RCODE(d->flags) != 0 || d->an_numrrsets == 0) {
1521		d->ttl = inf->expired;
1522		inf->num_msgs++;
1523	}
1524}
1525
1526/** callback to delete negative key entries */
1527static void
1528negative_del_kcache(struct lruhash_entry* e, void* arg)
1529{
1530	/* entry is locked */
1531	struct del_info* inf = (struct del_info*)arg;
1532	struct key_entry_data* d = (struct key_entry_data*)e->data;
1533	/* could be bad because of lookup failure on the DS, DNSKEY, which
1534	 * was nxdomain or servfail, and thus a result of negative lookups */
1535	if(d->isbad) {
1536		d->ttl = inf->expired;
1537		inf->num_keys++;
1538	}
1539}
1540
1541/** remove all negative(NODATA,NXDOMAIN), and servfail messages from cache */
1542static void
1543do_flush_negative(SSL* ssl, struct worker* worker)
1544{
1545	struct del_info inf;
1546	/* what we do is to set them all expired */
1547	inf.worker = worker;
1548	inf.expired = *worker->env.now;
1549	inf.expired -= 3; /* handle 3 seconds skew between threads */
1550	inf.num_rrsets = 0;
1551	inf.num_msgs = 0;
1552	inf.num_keys = 0;
1553	slabhash_traverse(&worker->env.rrset_cache->table, 1,
1554		&negative_del_rrset, &inf);
1555
1556	slabhash_traverse(worker->env.msg_cache, 1, &negative_del_msg, &inf);
1557
1558	/* and validator cache */
1559	if(worker->env.key_cache) {
1560		slabhash_traverse(worker->env.key_cache->slab, 1,
1561			&negative_del_kcache, &inf);
1562	}
1563
1564	(void)ssl_printf(ssl, "ok removed %lu rrsets, %lu messages "
1565		"and %lu key entries\n", (unsigned long)inf.num_rrsets,
1566		(unsigned long)inf.num_msgs, (unsigned long)inf.num_keys);
1567}
1568
1569/** remove name rrset from cache */
1570static void
1571do_flush_name(SSL* ssl, struct worker* w, char* arg)
1572{
1573	uint8_t* nm;
1574	int nmlabs;
1575	size_t nmlen;
1576	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1577		return;
1578	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_A, LDNS_RR_CLASS_IN);
1579	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_AAAA, LDNS_RR_CLASS_IN);
1580	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_NS, LDNS_RR_CLASS_IN);
1581	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_SOA, LDNS_RR_CLASS_IN);
1582	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_CNAME, LDNS_RR_CLASS_IN);
1583	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_DNAME, LDNS_RR_CLASS_IN);
1584	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_MX, LDNS_RR_CLASS_IN);
1585	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_PTR, LDNS_RR_CLASS_IN);
1586	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_SRV, LDNS_RR_CLASS_IN);
1587	do_cache_remove(w, nm, nmlen, LDNS_RR_TYPE_NAPTR, LDNS_RR_CLASS_IN);
1588
1589	free(nm);
1590	send_ok(ssl);
1591}
1592
1593/** printout a delegation point info */
1594static int
1595ssl_print_name_dp(SSL* ssl, const char* str, uint8_t* nm, uint16_t dclass,
1596	struct delegpt* dp)
1597{
1598	char buf[257];
1599	struct delegpt_ns* ns;
1600	struct delegpt_addr* a;
1601	int f = 0;
1602	if(str) { /* print header for forward, stub */
1603		char* c = sldns_wire2str_class(dclass);
1604		dname_str(nm, buf);
1605		if(!ssl_printf(ssl, "%s %s %s ", buf, (c?c:"CLASS??"), str)) {
1606			free(c);
1607			return 0;
1608		}
1609		free(c);
1610	}
1611	for(ns = dp->nslist; ns; ns = ns->next) {
1612		dname_str(ns->name, buf);
1613		if(!ssl_printf(ssl, "%s%s", (f?" ":""), buf))
1614			return 0;
1615		f = 1;
1616	}
1617	for(a = dp->target_list; a; a = a->next_target) {
1618		addr_to_str(&a->addr, a->addrlen, buf, sizeof(buf));
1619		if(!ssl_printf(ssl, "%s%s", (f?" ":""), buf))
1620			return 0;
1621		f = 1;
1622	}
1623	return ssl_printf(ssl, "\n");
1624}
1625
1626
1627/** print root forwards */
1628static int
1629print_root_fwds(SSL* ssl, struct iter_forwards* fwds, uint8_t* root)
1630{
1631	struct delegpt* dp;
1632	dp = forwards_lookup(fwds, root, LDNS_RR_CLASS_IN);
1633	if(!dp)
1634		return ssl_printf(ssl, "off (using root hints)\n");
1635	/* if dp is returned it must be the root */
1636	log_assert(query_dname_compare(dp->name, root)==0);
1637	return ssl_print_name_dp(ssl, NULL, root, LDNS_RR_CLASS_IN, dp);
1638}
1639
1640/** parse args into delegpt */
1641static struct delegpt*
1642parse_delegpt(SSL* ssl, char* args, uint8_t* nm, int allow_names)
1643{
1644	/* parse args and add in */
1645	char* p = args;
1646	char* todo;
1647	struct delegpt* dp = delegpt_create_mlc(nm);
1648	struct sockaddr_storage addr;
1649	socklen_t addrlen;
1650	if(!dp) {
1651		(void)ssl_printf(ssl, "error out of memory\n");
1652		return NULL;
1653	}
1654	while(p) {
1655		todo = p;
1656		p = strchr(p, ' '); /* find next spot, if any */
1657		if(p) {
1658			*p++ = 0;	/* end this spot */
1659			p = skipwhite(p); /* position at next spot */
1660		}
1661		/* parse address */
1662		if(!extstrtoaddr(todo, &addr, &addrlen)) {
1663			if(allow_names) {
1664				uint8_t* n = NULL;
1665				size_t ln;
1666				int lb;
1667				if(!parse_arg_name(ssl, todo, &n, &ln, &lb)) {
1668					(void)ssl_printf(ssl, "error cannot "
1669						"parse IP address or name "
1670						"'%s'\n", todo);
1671					delegpt_free_mlc(dp);
1672					return NULL;
1673				}
1674				if(!delegpt_add_ns_mlc(dp, n, 0)) {
1675					(void)ssl_printf(ssl, "error out of memory\n");
1676					free(n);
1677					delegpt_free_mlc(dp);
1678					return NULL;
1679				}
1680				free(n);
1681
1682			} else {
1683				(void)ssl_printf(ssl, "error cannot parse"
1684					" IP address '%s'\n", todo);
1685				delegpt_free_mlc(dp);
1686				return NULL;
1687			}
1688		} else {
1689			/* add address */
1690			if(!delegpt_add_addr_mlc(dp, &addr, addrlen, 0, 0)) {
1691				(void)ssl_printf(ssl, "error out of memory\n");
1692				delegpt_free_mlc(dp);
1693				return NULL;
1694			}
1695		}
1696	}
1697	dp->has_parent_side_NS = 1;
1698	return dp;
1699}
1700
1701/** do the status command */
1702static void
1703do_forward(SSL* ssl, struct worker* worker, char* args)
1704{
1705	struct iter_forwards* fwd = worker->env.fwds;
1706	uint8_t* root = (uint8_t*)"\000";
1707	if(!fwd) {
1708		(void)ssl_printf(ssl, "error: structure not allocated\n");
1709		return;
1710	}
1711	if(args == NULL || args[0] == 0) {
1712		(void)print_root_fwds(ssl, fwd, root);
1713		return;
1714	}
1715	/* set root forwards for this thread. since we are in remote control
1716	 * the actual mesh is not running, so we can freely edit it. */
1717	/* delete all the existing queries first */
1718	mesh_delete_all(worker->env.mesh);
1719	if(strcmp(args, "off") == 0) {
1720		forwards_delete_zone(fwd, LDNS_RR_CLASS_IN, root);
1721	} else {
1722		struct delegpt* dp;
1723		if(!(dp = parse_delegpt(ssl, args, root, 0)))
1724			return;
1725		if(!forwards_add_zone(fwd, LDNS_RR_CLASS_IN, dp)) {
1726			(void)ssl_printf(ssl, "error out of memory\n");
1727			return;
1728		}
1729	}
1730	send_ok(ssl);
1731}
1732
1733static int
1734parse_fs_args(SSL* ssl, char* args, uint8_t** nm, struct delegpt** dp,
1735	int* insecure, int* prime)
1736{
1737	char* zonename;
1738	char* rest;
1739	size_t nmlen;
1740	int nmlabs;
1741	/* parse all -x args */
1742	while(args[0] == '+') {
1743		if(!find_arg2(ssl, args, &rest))
1744			return 0;
1745		while(*(++args) != 0) {
1746			if(*args == 'i' && insecure)
1747				*insecure = 1;
1748			else if(*args == 'p' && prime)
1749				*prime = 1;
1750			else {
1751				(void)ssl_printf(ssl, "error: unknown option %s\n", args);
1752				return 0;
1753			}
1754		}
1755		args = rest;
1756	}
1757	/* parse name */
1758	if(dp) {
1759		if(!find_arg2(ssl, args, &rest))
1760			return 0;
1761		zonename = args;
1762		args = rest;
1763	} else	zonename = args;
1764	if(!parse_arg_name(ssl, zonename, nm, &nmlen, &nmlabs))
1765		return 0;
1766
1767	/* parse dp */
1768	if(dp) {
1769		if(!(*dp = parse_delegpt(ssl, args, *nm, 1))) {
1770			free(*nm);
1771			return 0;
1772		}
1773	}
1774	return 1;
1775}
1776
1777/** do the forward_add command */
1778static void
1779do_forward_add(SSL* ssl, struct worker* worker, char* args)
1780{
1781	struct iter_forwards* fwd = worker->env.fwds;
1782	int insecure = 0;
1783	uint8_t* nm = NULL;
1784	struct delegpt* dp = NULL;
1785	if(!parse_fs_args(ssl, args, &nm, &dp, &insecure, NULL))
1786		return;
1787	if(insecure && worker->env.anchors) {
1788		if(!anchors_add_insecure(worker->env.anchors, LDNS_RR_CLASS_IN,
1789			nm)) {
1790			(void)ssl_printf(ssl, "error out of memory\n");
1791			delegpt_free_mlc(dp);
1792			free(nm);
1793			return;
1794		}
1795	}
1796	if(!forwards_add_zone(fwd, LDNS_RR_CLASS_IN, dp)) {
1797		(void)ssl_printf(ssl, "error out of memory\n");
1798		free(nm);
1799		return;
1800	}
1801	free(nm);
1802	send_ok(ssl);
1803}
1804
1805/** do the forward_remove command */
1806static void
1807do_forward_remove(SSL* ssl, struct worker* worker, char* args)
1808{
1809	struct iter_forwards* fwd = worker->env.fwds;
1810	int insecure = 0;
1811	uint8_t* nm = NULL;
1812	if(!parse_fs_args(ssl, args, &nm, NULL, &insecure, NULL))
1813		return;
1814	if(insecure && worker->env.anchors)
1815		anchors_delete_insecure(worker->env.anchors, LDNS_RR_CLASS_IN,
1816			nm);
1817	forwards_delete_zone(fwd, LDNS_RR_CLASS_IN, nm);
1818	free(nm);
1819	send_ok(ssl);
1820}
1821
1822/** do the stub_add command */
1823static void
1824do_stub_add(SSL* ssl, struct worker* worker, char* args)
1825{
1826	struct iter_forwards* fwd = worker->env.fwds;
1827	int insecure = 0, prime = 0;
1828	uint8_t* nm = NULL;
1829	struct delegpt* dp = NULL;
1830	if(!parse_fs_args(ssl, args, &nm, &dp, &insecure, &prime))
1831		return;
1832	if(insecure && worker->env.anchors) {
1833		if(!anchors_add_insecure(worker->env.anchors, LDNS_RR_CLASS_IN,
1834			nm)) {
1835			(void)ssl_printf(ssl, "error out of memory\n");
1836			delegpt_free_mlc(dp);
1837			free(nm);
1838			return;
1839		}
1840	}
1841	if(!forwards_add_stub_hole(fwd, LDNS_RR_CLASS_IN, nm)) {
1842		if(insecure && worker->env.anchors)
1843			anchors_delete_insecure(worker->env.anchors,
1844				LDNS_RR_CLASS_IN, nm);
1845		(void)ssl_printf(ssl, "error out of memory\n");
1846		delegpt_free_mlc(dp);
1847		free(nm);
1848		return;
1849	}
1850	if(!hints_add_stub(worker->env.hints, LDNS_RR_CLASS_IN, dp, !prime)) {
1851		(void)ssl_printf(ssl, "error out of memory\n");
1852		forwards_delete_stub_hole(fwd, LDNS_RR_CLASS_IN, nm);
1853		if(insecure && worker->env.anchors)
1854			anchors_delete_insecure(worker->env.anchors,
1855				LDNS_RR_CLASS_IN, nm);
1856		free(nm);
1857		return;
1858	}
1859	free(nm);
1860	send_ok(ssl);
1861}
1862
1863/** do the stub_remove command */
1864static void
1865do_stub_remove(SSL* ssl, struct worker* worker, char* args)
1866{
1867	struct iter_forwards* fwd = worker->env.fwds;
1868	int insecure = 0;
1869	uint8_t* nm = NULL;
1870	if(!parse_fs_args(ssl, args, &nm, NULL, &insecure, NULL))
1871		return;
1872	if(insecure && worker->env.anchors)
1873		anchors_delete_insecure(worker->env.anchors, LDNS_RR_CLASS_IN,
1874			nm);
1875	forwards_delete_stub_hole(fwd, LDNS_RR_CLASS_IN, nm);
1876	hints_delete_stub(worker->env.hints, LDNS_RR_CLASS_IN, nm);
1877	free(nm);
1878	send_ok(ssl);
1879}
1880
1881/** do the insecure_add command */
1882static void
1883do_insecure_add(SSL* ssl, struct worker* worker, char* arg)
1884{
1885	size_t nmlen;
1886	int nmlabs;
1887	uint8_t* nm = NULL;
1888	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1889		return;
1890	if(worker->env.anchors) {
1891		if(!anchors_add_insecure(worker->env.anchors,
1892			LDNS_RR_CLASS_IN, nm)) {
1893			(void)ssl_printf(ssl, "error out of memory\n");
1894			free(nm);
1895			return;
1896		}
1897	}
1898	free(nm);
1899	send_ok(ssl);
1900}
1901
1902/** do the insecure_remove command */
1903static void
1904do_insecure_remove(SSL* ssl, struct worker* worker, char* arg)
1905{
1906	size_t nmlen;
1907	int nmlabs;
1908	uint8_t* nm = NULL;
1909	if(!parse_arg_name(ssl, arg, &nm, &nmlen, &nmlabs))
1910		return;
1911	if(worker->env.anchors)
1912		anchors_delete_insecure(worker->env.anchors,
1913			LDNS_RR_CLASS_IN, nm);
1914	free(nm);
1915	send_ok(ssl);
1916}
1917
1918static void
1919do_insecure_list(SSL* ssl, struct worker* worker)
1920{
1921	char buf[257];
1922	struct trust_anchor* a;
1923	if(worker->env.anchors) {
1924		RBTREE_FOR(a, struct trust_anchor*, worker->env.anchors->tree) {
1925			if(a->numDS == 0 && a->numDNSKEY == 0) {
1926				dname_str(a->name, buf);
1927				ssl_printf(ssl, "%s\n", buf);
1928			}
1929		}
1930	}
1931}
1932
1933/** do the status command */
1934static void
1935do_status(SSL* ssl, struct worker* worker)
1936{
1937	int i;
1938	time_t uptime;
1939	if(!ssl_printf(ssl, "version: %s\n", PACKAGE_VERSION))
1940		return;
1941	if(!ssl_printf(ssl, "verbosity: %d\n", verbosity))
1942		return;
1943	if(!ssl_printf(ssl, "threads: %d\n", worker->daemon->num))
1944		return;
1945	if(!ssl_printf(ssl, "modules: %d [", worker->daemon->mods.num))
1946		return;
1947	for(i=0; i<worker->daemon->mods.num; i++) {
1948		if(!ssl_printf(ssl, " %s", worker->daemon->mods.mod[i]->name))
1949			return;
1950	}
1951	if(!ssl_printf(ssl, " ]\n"))
1952		return;
1953	uptime = (time_t)time(NULL) - (time_t)worker->daemon->time_boot.tv_sec;
1954	if(!ssl_printf(ssl, "uptime: " ARG_LL "d seconds\n", (long long)uptime))
1955		return;
1956	if(!ssl_printf(ssl, "options:%s%s\n" ,
1957		(worker->daemon->reuseport?" reuseport":""),
1958		(worker->daemon->rc->accept_list?" control(ssl)":"")))
1959		return;
1960	if(!ssl_printf(ssl, "unbound (pid %d) is running...\n",
1961		(int)getpid()))
1962		return;
1963}
1964
1965/** get age for the mesh state */
1966static void
1967get_mesh_age(struct mesh_state* m, char* buf, size_t len,
1968	struct module_env* env)
1969{
1970	if(m->reply_list) {
1971		struct timeval d;
1972		struct mesh_reply* r = m->reply_list;
1973		/* last reply is the oldest */
1974		while(r && r->next)
1975			r = r->next;
1976		timeval_subtract(&d, env->now_tv, &r->start_time);
1977		snprintf(buf, len, ARG_LL "d.%6.6d",
1978			(long long)d.tv_sec, (int)d.tv_usec);
1979	} else {
1980		snprintf(buf, len, "-");
1981	}
1982}
1983
1984/** get status of a mesh state */
1985static void
1986get_mesh_status(struct mesh_area* mesh, struct mesh_state* m,
1987	char* buf, size_t len)
1988{
1989	enum module_ext_state s = m->s.ext_state[m->s.curmod];
1990	const char *modname = mesh->mods.mod[m->s.curmod]->name;
1991	size_t l;
1992	if(strcmp(modname, "iterator") == 0 && s == module_wait_reply &&
1993		m->s.minfo[m->s.curmod]) {
1994		/* break into iterator to find out who its waiting for */
1995		struct iter_qstate* qstate = (struct iter_qstate*)
1996			m->s.minfo[m->s.curmod];
1997		struct outbound_list* ol = &qstate->outlist;
1998		struct outbound_entry* e;
1999		snprintf(buf, len, "%s wait for", modname);
2000		l = strlen(buf);
2001		buf += l; len -= l;
2002		if(ol->first == NULL)
2003			snprintf(buf, len, " (empty_list)");
2004		for(e = ol->first; e; e = e->next) {
2005			snprintf(buf, len, " ");
2006			l = strlen(buf);
2007			buf += l; len -= l;
2008			addr_to_str(&e->qsent->addr, e->qsent->addrlen,
2009				buf, len);
2010			l = strlen(buf);
2011			buf += l; len -= l;
2012		}
2013	} else if(s == module_wait_subquery) {
2014		/* look in subs from mesh state to see what */
2015		char nm[257];
2016		struct mesh_state_ref* sub;
2017		snprintf(buf, len, "%s wants", modname);
2018		l = strlen(buf);
2019		buf += l; len -= l;
2020		if(m->sub_set.count == 0)
2021			snprintf(buf, len, " (empty_list)");
2022		RBTREE_FOR(sub, struct mesh_state_ref*, &m->sub_set) {
2023			char* t = sldns_wire2str_type(sub->s->s.qinfo.qtype);
2024			char* c = sldns_wire2str_class(sub->s->s.qinfo.qclass);
2025			dname_str(sub->s->s.qinfo.qname, nm);
2026			snprintf(buf, len, " %s %s %s", (t?t:"TYPE??"),
2027				(c?c:"CLASS??"), nm);
2028			l = strlen(buf);
2029			buf += l; len -= l;
2030			free(t);
2031			free(c);
2032		}
2033	} else {
2034		snprintf(buf, len, "%s is %s", modname, strextstate(s));
2035	}
2036}
2037
2038/** do the dump_requestlist command */
2039static void
2040do_dump_requestlist(SSL* ssl, struct worker* worker)
2041{
2042	struct mesh_area* mesh;
2043	struct mesh_state* m;
2044	int num = 0;
2045	char buf[257];
2046	char timebuf[32];
2047	char statbuf[10240];
2048	if(!ssl_printf(ssl, "thread #%d\n", worker->thread_num))
2049		return;
2050	if(!ssl_printf(ssl, "#   type cl name    seconds    module status\n"))
2051		return;
2052	/* show worker mesh contents */
2053	mesh = worker->env.mesh;
2054	if(!mesh) return;
2055	RBTREE_FOR(m, struct mesh_state*, &mesh->all) {
2056		char* t = sldns_wire2str_type(m->s.qinfo.qtype);
2057		char* c = sldns_wire2str_class(m->s.qinfo.qclass);
2058		dname_str(m->s.qinfo.qname, buf);
2059		get_mesh_age(m, timebuf, sizeof(timebuf), &worker->env);
2060		get_mesh_status(mesh, m, statbuf, sizeof(statbuf));
2061		if(!ssl_printf(ssl, "%3d %4s %2s %s %s %s\n",
2062			num, (t?t:"TYPE??"), (c?c:"CLASS??"), buf, timebuf,
2063			statbuf)) {
2064			free(t);
2065			free(c);
2066			return;
2067		}
2068		num++;
2069		free(t);
2070		free(c);
2071	}
2072}
2073
2074/** structure for argument data for dump infra host */
2075struct infra_arg {
2076	/** the infra cache */
2077	struct infra_cache* infra;
2078	/** the SSL connection */
2079	SSL* ssl;
2080	/** the time now */
2081	time_t now;
2082	/** ssl failure? stop writing and skip the rest.  If the tcp
2083	 * connection is broken, and writes fail, we then stop writing. */
2084	int ssl_failed;
2085};
2086
2087/** callback for every host element in the infra cache */
2088static void
2089dump_infra_host(struct lruhash_entry* e, void* arg)
2090{
2091	struct infra_arg* a = (struct infra_arg*)arg;
2092	struct infra_key* k = (struct infra_key*)e->key;
2093	struct infra_data* d = (struct infra_data*)e->data;
2094	char ip_str[1024];
2095	char name[257];
2096	if(a->ssl_failed)
2097		return;
2098	addr_to_str(&k->addr, k->addrlen, ip_str, sizeof(ip_str));
2099	dname_str(k->zonename, name);
2100	/* skip expired stuff (only backed off) */
2101	if(d->ttl < a->now) {
2102		if(d->rtt.rto >= USEFUL_SERVER_TOP_TIMEOUT) {
2103			if(!ssl_printf(a->ssl, "%s %s expired rto %d\n", ip_str,
2104				name, d->rtt.rto))  {
2105				a->ssl_failed = 1;
2106				return;
2107			}
2108		}
2109		return;
2110	}
2111	if(!ssl_printf(a->ssl, "%s %s ttl %lu ping %d var %d rtt %d rto %d "
2112		"tA %d tAAAA %d tother %d "
2113		"ednsknown %d edns %d delay %d lame dnssec %d rec %d A %d "
2114		"other %d\n", ip_str, name, (unsigned long)(d->ttl - a->now),
2115		d->rtt.srtt, d->rtt.rttvar, rtt_notimeout(&d->rtt), d->rtt.rto,
2116		d->timeout_A, d->timeout_AAAA, d->timeout_other,
2117		(int)d->edns_lame_known, (int)d->edns_version,
2118		(int)(a->now<d->probedelay?(d->probedelay - a->now):0),
2119		(int)d->isdnsseclame, (int)d->rec_lame, (int)d->lame_type_A,
2120		(int)d->lame_other)) {
2121		a->ssl_failed = 1;
2122		return;
2123	}
2124}
2125
2126/** do the dump_infra command */
2127static void
2128do_dump_infra(SSL* ssl, struct worker* worker)
2129{
2130	struct infra_arg arg;
2131	arg.infra = worker->env.infra_cache;
2132	arg.ssl = ssl;
2133	arg.now = *worker->env.now;
2134	arg.ssl_failed = 0;
2135	slabhash_traverse(arg.infra->hosts, 0, &dump_infra_host, (void*)&arg);
2136}
2137
2138/** do the log_reopen command */
2139static void
2140do_log_reopen(SSL* ssl, struct worker* worker)
2141{
2142	struct config_file* cfg = worker->env.cfg;
2143	send_ok(ssl);
2144	log_init(cfg->logfile, cfg->use_syslog, cfg->chrootdir);
2145}
2146
2147/** do the set_option command */
2148static void
2149do_set_option(SSL* ssl, struct worker* worker, char* arg)
2150{
2151	char* arg2;
2152	if(!find_arg2(ssl, arg, &arg2))
2153		return;
2154	if(!config_set_option(worker->env.cfg, arg, arg2)) {
2155		(void)ssl_printf(ssl, "error setting option\n");
2156		return;
2157	}
2158	send_ok(ssl);
2159}
2160
2161/* routine to printout option values over SSL */
2162void remote_get_opt_ssl(char* line, void* arg)
2163{
2164	SSL* ssl = (SSL*)arg;
2165	(void)ssl_printf(ssl, "%s\n", line);
2166}
2167
2168/** do the get_option command */
2169static void
2170do_get_option(SSL* ssl, struct worker* worker, char* arg)
2171{
2172	int r;
2173	r = config_get_option(worker->env.cfg, arg, remote_get_opt_ssl, ssl);
2174	if(!r) {
2175		(void)ssl_printf(ssl, "error unknown option\n");
2176		return;
2177	}
2178}
2179
2180/** do the list_forwards command */
2181static void
2182do_list_forwards(SSL* ssl, struct worker* worker)
2183{
2184	/* since its a per-worker structure no locks needed */
2185	struct iter_forwards* fwds = worker->env.fwds;
2186	struct iter_forward_zone* z;
2187	struct trust_anchor* a;
2188	int insecure;
2189	RBTREE_FOR(z, struct iter_forward_zone*, fwds->tree) {
2190		if(!z->dp) continue; /* skip empty marker for stub */
2191
2192		/* see if it is insecure */
2193		insecure = 0;
2194		if(worker->env.anchors &&
2195			(a=anchor_find(worker->env.anchors, z->name,
2196			z->namelabs, z->namelen,  z->dclass))) {
2197			if(!a->keylist && !a->numDS && !a->numDNSKEY)
2198				insecure = 1;
2199			lock_basic_unlock(&a->lock);
2200		}
2201
2202		if(!ssl_print_name_dp(ssl, (insecure?"forward +i":"forward"),
2203			z->name, z->dclass, z->dp))
2204			return;
2205	}
2206}
2207
2208/** do the list_stubs command */
2209static void
2210do_list_stubs(SSL* ssl, struct worker* worker)
2211{
2212	struct iter_hints_stub* z;
2213	struct trust_anchor* a;
2214	int insecure;
2215	char str[32];
2216	RBTREE_FOR(z, struct iter_hints_stub*, &worker->env.hints->tree) {
2217
2218		/* see if it is insecure */
2219		insecure = 0;
2220		if(worker->env.anchors &&
2221			(a=anchor_find(worker->env.anchors, z->node.name,
2222			z->node.labs, z->node.len,  z->node.dclass))) {
2223			if(!a->keylist && !a->numDS && !a->numDNSKEY)
2224				insecure = 1;
2225			lock_basic_unlock(&a->lock);
2226		}
2227
2228		snprintf(str, sizeof(str), "stub %sprime%s",
2229			(z->noprime?"no":""), (insecure?" +i":""));
2230		if(!ssl_print_name_dp(ssl, str, z->node.name,
2231			z->node.dclass, z->dp))
2232			return;
2233	}
2234}
2235
2236/** do the list_local_zones command */
2237static void
2238do_list_local_zones(SSL* ssl, struct worker* worker)
2239{
2240	struct local_zones* zones = worker->daemon->local_zones;
2241	struct local_zone* z;
2242	char buf[257];
2243	lock_rw_rdlock(&zones->lock);
2244	RBTREE_FOR(z, struct local_zone*, &zones->ztree) {
2245		lock_rw_rdlock(&z->lock);
2246		dname_str(z->name, buf);
2247		if(!ssl_printf(ssl, "%s %s\n", buf,
2248			local_zone_type2str(z->type))) {
2249			/* failure to print */
2250			lock_rw_unlock(&z->lock);
2251			lock_rw_unlock(&zones->lock);
2252			return;
2253		}
2254		lock_rw_unlock(&z->lock);
2255	}
2256	lock_rw_unlock(&zones->lock);
2257}
2258
2259/** do the list_local_data command */
2260static void
2261do_list_local_data(SSL* ssl, struct worker* worker)
2262{
2263	struct local_zones* zones = worker->daemon->local_zones;
2264	struct local_zone* z;
2265	struct local_data* d;
2266	struct local_rrset* p;
2267	char* s = (char*)sldns_buffer_begin(worker->env.scratch_buffer);
2268	size_t slen = sldns_buffer_capacity(worker->env.scratch_buffer);
2269	lock_rw_rdlock(&zones->lock);
2270	RBTREE_FOR(z, struct local_zone*, &zones->ztree) {
2271		lock_rw_rdlock(&z->lock);
2272		RBTREE_FOR(d, struct local_data*, &z->data) {
2273			for(p = d->rrsets; p; p = p->next) {
2274				struct packed_rrset_data* d =
2275					(struct packed_rrset_data*)p->rrset->entry.data;
2276				size_t i;
2277				for(i=0; i<d->count + d->rrsig_count; i++) {
2278					if(!packed_rr_to_string(p->rrset, i,
2279						0, s, slen)) {
2280						if(!ssl_printf(ssl, "BADRR\n")) {
2281							lock_rw_unlock(&z->lock);
2282							lock_rw_unlock(&zones->lock);
2283							return;
2284						}
2285					}
2286				        if(!ssl_printf(ssl, "%s\n", s)) {
2287						lock_rw_unlock(&z->lock);
2288						lock_rw_unlock(&zones->lock);
2289						return;
2290					}
2291				}
2292			}
2293		}
2294		lock_rw_unlock(&z->lock);
2295	}
2296	lock_rw_unlock(&zones->lock);
2297}
2298
2299/** struct for user arg ratelimit list */
2300struct ratelimit_list_arg {
2301	/** the infra cache */
2302	struct infra_cache* infra;
2303	/** the SSL to print to */
2304	SSL* ssl;
2305	/** all or only ratelimited */
2306	int all;
2307	/** current time */
2308	time_t now;
2309};
2310
2311/** list items in the ratelimit table */
2312static void
2313rate_list(struct lruhash_entry* e, void* arg)
2314{
2315	struct ratelimit_list_arg* a = (struct ratelimit_list_arg*)arg;
2316	struct rate_key* k = (struct rate_key*)e->key;
2317	struct rate_data* d = (struct rate_data*)e->data;
2318	char buf[257];
2319	int lim = infra_find_ratelimit(a->infra, k->name, k->namelen);
2320	int max = infra_rate_max(d, a->now);
2321	if(a->all == 0) {
2322		if(max < lim)
2323			return;
2324	}
2325	dname_str(k->name, buf);
2326	ssl_printf(a->ssl, "%s %d limit %d\n", buf, max, lim);
2327}
2328
2329/** do the ratelimit_list command */
2330static void
2331do_ratelimit_list(SSL* ssl, struct worker* worker, char* arg)
2332{
2333	struct ratelimit_list_arg a;
2334	a.all = 0;
2335	a.infra = worker->env.infra_cache;
2336	a.now = *worker->env.now;
2337	a.ssl = ssl;
2338	arg = skipwhite(arg);
2339	if(strcmp(arg, "+a") == 0)
2340		a.all = 1;
2341	if(a.infra->domain_rates==NULL ||
2342		(a.all == 0 && infra_dp_ratelimit == 0))
2343		return;
2344	slabhash_traverse(a.infra->domain_rates, 0, rate_list, &a);
2345}
2346
2347/** tell other processes to execute the command */
2348static void
2349distribute_cmd(struct daemon_remote* rc, SSL* ssl, char* cmd)
2350{
2351	int i;
2352	if(!cmd || !ssl)
2353		return;
2354	/* skip i=0 which is me */
2355	for(i=1; i<rc->worker->daemon->num; i++) {
2356		worker_send_cmd(rc->worker->daemon->workers[i],
2357			worker_cmd_remote);
2358		if(!tube_write_msg(rc->worker->daemon->workers[i]->cmd,
2359			(uint8_t*)cmd, strlen(cmd)+1, 0)) {
2360			ssl_printf(ssl, "error could not distribute cmd\n");
2361			return;
2362		}
2363	}
2364}
2365
2366/** check for name with end-of-string, space or tab after it */
2367static int
2368cmdcmp(char* p, const char* cmd, size_t len)
2369{
2370	return strncmp(p,cmd,len)==0 && (p[len]==0||p[len]==' '||p[len]=='\t');
2371}
2372
2373/** execute a remote control command */
2374static void
2375execute_cmd(struct daemon_remote* rc, SSL* ssl, char* cmd,
2376	struct worker* worker)
2377{
2378	char* p = skipwhite(cmd);
2379	/* compare command */
2380	if(cmdcmp(p, "stop", 4)) {
2381		do_stop(ssl, rc);
2382		return;
2383	} else if(cmdcmp(p, "reload", 6)) {
2384		do_reload(ssl, rc);
2385		return;
2386	} else if(cmdcmp(p, "stats_noreset", 13)) {
2387		do_stats(ssl, rc, 0);
2388		return;
2389	} else if(cmdcmp(p, "stats", 5)) {
2390		do_stats(ssl, rc, 1);
2391		return;
2392	} else if(cmdcmp(p, "status", 6)) {
2393		do_status(ssl, worker);
2394		return;
2395	} else if(cmdcmp(p, "dump_cache", 10)) {
2396		(void)dump_cache(ssl, worker);
2397		return;
2398	} else if(cmdcmp(p, "load_cache", 10)) {
2399		if(load_cache(ssl, worker)) send_ok(ssl);
2400		return;
2401	} else if(cmdcmp(p, "list_forwards", 13)) {
2402		do_list_forwards(ssl, worker);
2403		return;
2404	} else if(cmdcmp(p, "list_stubs", 10)) {
2405		do_list_stubs(ssl, worker);
2406		return;
2407	} else if(cmdcmp(p, "list_insecure", 13)) {
2408		do_insecure_list(ssl, worker);
2409		return;
2410	} else if(cmdcmp(p, "list_local_zones", 16)) {
2411		do_list_local_zones(ssl, worker);
2412		return;
2413	} else if(cmdcmp(p, "list_local_data", 15)) {
2414		do_list_local_data(ssl, worker);
2415		return;
2416	} else if(cmdcmp(p, "ratelimit_list", 14)) {
2417		do_ratelimit_list(ssl, worker, p+14);
2418		return;
2419	} else if(cmdcmp(p, "stub_add", 8)) {
2420		/* must always distribute this cmd */
2421		if(rc) distribute_cmd(rc, ssl, cmd);
2422		do_stub_add(ssl, worker, skipwhite(p+8));
2423		return;
2424	} else if(cmdcmp(p, "stub_remove", 11)) {
2425		/* must always distribute this cmd */
2426		if(rc) distribute_cmd(rc, ssl, cmd);
2427		do_stub_remove(ssl, worker, skipwhite(p+11));
2428		return;
2429	} else if(cmdcmp(p, "forward_add", 11)) {
2430		/* must always distribute this cmd */
2431		if(rc) distribute_cmd(rc, ssl, cmd);
2432		do_forward_add(ssl, worker, skipwhite(p+11));
2433		return;
2434	} else if(cmdcmp(p, "forward_remove", 14)) {
2435		/* must always distribute this cmd */
2436		if(rc) distribute_cmd(rc, ssl, cmd);
2437		do_forward_remove(ssl, worker, skipwhite(p+14));
2438		return;
2439	} else if(cmdcmp(p, "insecure_add", 12)) {
2440		/* must always distribute this cmd */
2441		if(rc) distribute_cmd(rc, ssl, cmd);
2442		do_insecure_add(ssl, worker, skipwhite(p+12));
2443		return;
2444	} else if(cmdcmp(p, "insecure_remove", 15)) {
2445		/* must always distribute this cmd */
2446		if(rc) distribute_cmd(rc, ssl, cmd);
2447		do_insecure_remove(ssl, worker, skipwhite(p+15));
2448		return;
2449	} else if(cmdcmp(p, "forward", 7)) {
2450		/* must always distribute this cmd */
2451		if(rc) distribute_cmd(rc, ssl, cmd);
2452		do_forward(ssl, worker, skipwhite(p+7));
2453		return;
2454	} else if(cmdcmp(p, "flush_stats", 11)) {
2455		/* must always distribute this cmd */
2456		if(rc) distribute_cmd(rc, ssl, cmd);
2457		do_flush_stats(ssl, worker);
2458		return;
2459	} else if(cmdcmp(p, "flush_requestlist", 17)) {
2460		/* must always distribute this cmd */
2461		if(rc) distribute_cmd(rc, ssl, cmd);
2462		do_flush_requestlist(ssl, worker);
2463		return;
2464	} else if(cmdcmp(p, "lookup", 6)) {
2465		do_lookup(ssl, worker, skipwhite(p+6));
2466		return;
2467	}
2468
2469#ifdef THREADS_DISABLED
2470	/* other processes must execute the command as well */
2471	/* commands that should not be distributed, returned above. */
2472	if(rc) { /* only if this thread is the master (rc) thread */
2473		/* done before the code below, which may split the string */
2474		distribute_cmd(rc, ssl, cmd);
2475	}
2476#endif
2477	if(cmdcmp(p, "verbosity", 9)) {
2478		do_verbosity(ssl, skipwhite(p+9));
2479	} else if(cmdcmp(p, "local_zone_remove", 17)) {
2480		do_zone_remove(ssl, worker, skipwhite(p+17));
2481	} else if(cmdcmp(p, "local_zone", 10)) {
2482		do_zone_add(ssl, worker, skipwhite(p+10));
2483	} else if(cmdcmp(p, "local_data_remove", 17)) {
2484		do_data_remove(ssl, worker, skipwhite(p+17));
2485	} else if(cmdcmp(p, "local_data", 10)) {
2486		do_data_add(ssl, worker, skipwhite(p+10));
2487	} else if(cmdcmp(p, "flush_zone", 10)) {
2488		do_flush_zone(ssl, worker, skipwhite(p+10));
2489	} else if(cmdcmp(p, "flush_type", 10)) {
2490		do_flush_type(ssl, worker, skipwhite(p+10));
2491	} else if(cmdcmp(p, "flush_infra", 11)) {
2492		do_flush_infra(ssl, worker, skipwhite(p+11));
2493	} else if(cmdcmp(p, "flush", 5)) {
2494		do_flush_name(ssl, worker, skipwhite(p+5));
2495	} else if(cmdcmp(p, "dump_requestlist", 16)) {
2496		do_dump_requestlist(ssl, worker);
2497	} else if(cmdcmp(p, "dump_infra", 10)) {
2498		do_dump_infra(ssl, worker);
2499	} else if(cmdcmp(p, "log_reopen", 10)) {
2500		do_log_reopen(ssl, worker);
2501	} else if(cmdcmp(p, "set_option", 10)) {
2502		do_set_option(ssl, worker, skipwhite(p+10));
2503	} else if(cmdcmp(p, "get_option", 10)) {
2504		do_get_option(ssl, worker, skipwhite(p+10));
2505	} else if(cmdcmp(p, "flush_bogus", 11)) {
2506		do_flush_bogus(ssl, worker);
2507	} else if(cmdcmp(p, "flush_negative", 14)) {
2508		do_flush_negative(ssl, worker);
2509	} else {
2510		(void)ssl_printf(ssl, "error unknown command '%s'\n", p);
2511	}
2512}
2513
2514void
2515daemon_remote_exec(struct worker* worker)
2516{
2517	/* read the cmd string */
2518	uint8_t* msg = NULL;
2519	uint32_t len = 0;
2520	if(!tube_read_msg(worker->cmd, &msg, &len, 0)) {
2521		log_err("daemon_remote_exec: tube_read_msg failed");
2522		return;
2523	}
2524	verbose(VERB_ALGO, "remote exec distributed: %s", (char*)msg);
2525	execute_cmd(NULL, NULL, (char*)msg, worker);
2526	free(msg);
2527}
2528
2529/** handle remote control request */
2530static void
2531handle_req(struct daemon_remote* rc, struct rc_state* s, SSL* ssl)
2532{
2533	int r;
2534	char pre[10];
2535	char magic[7];
2536	char buf[1024];
2537#ifdef USE_WINSOCK
2538	/* makes it possible to set the socket blocking again. */
2539	/* basically removes it from winsock_event ... */
2540	WSAEventSelect(s->c->fd, NULL, 0);
2541#endif
2542	fd_set_block(s->c->fd);
2543
2544	/* try to read magic UBCT[version]_space_ string */
2545	ERR_clear_error();
2546	if((r=SSL_read(ssl, magic, (int)sizeof(magic)-1)) <= 0) {
2547		if(SSL_get_error(ssl, r) == SSL_ERROR_ZERO_RETURN)
2548			return;
2549		log_crypto_err("could not SSL_read");
2550		return;
2551	}
2552	magic[6] = 0;
2553	if( r != 6 || strncmp(magic, "UBCT", 4) != 0) {
2554		verbose(VERB_QUERY, "control connection has bad magic string");
2555		/* probably wrong tool connected, ignore it completely */
2556		return;
2557	}
2558
2559	/* read the command line */
2560	if(!ssl_read_line(ssl, buf, sizeof(buf))) {
2561		return;
2562	}
2563	snprintf(pre, sizeof(pre), "UBCT%d ", UNBOUND_CONTROL_VERSION);
2564	if(strcmp(magic, pre) != 0) {
2565		verbose(VERB_QUERY, "control connection had bad "
2566			"version %s, cmd: %s", magic, buf);
2567		ssl_printf(ssl, "error version mismatch\n");
2568		return;
2569	}
2570	verbose(VERB_DETAIL, "control cmd: %s", buf);
2571
2572	/* figure out what to do */
2573	execute_cmd(rc, ssl, buf, rc->worker);
2574}
2575
2576int remote_control_callback(struct comm_point* c, void* arg, int err,
2577	struct comm_reply* ATTR_UNUSED(rep))
2578{
2579	struct rc_state* s = (struct rc_state*)arg;
2580	struct daemon_remote* rc = s->rc;
2581	int r;
2582	if(err != NETEVENT_NOERROR) {
2583		if(err==NETEVENT_TIMEOUT)
2584			log_err("remote control timed out");
2585		clean_point(rc, s);
2586		return 0;
2587	}
2588	/* (continue to) setup the SSL connection */
2589	ERR_clear_error();
2590	r = SSL_do_handshake(s->ssl);
2591	if(r != 1) {
2592		int r2 = SSL_get_error(s->ssl, r);
2593		if(r2 == SSL_ERROR_WANT_READ) {
2594			if(s->shake_state == rc_hs_read) {
2595				/* try again later */
2596				return 0;
2597			}
2598			s->shake_state = rc_hs_read;
2599			comm_point_listen_for_rw(c, 1, 0);
2600			return 0;
2601		} else if(r2 == SSL_ERROR_WANT_WRITE) {
2602			if(s->shake_state == rc_hs_write) {
2603				/* try again later */
2604				return 0;
2605			}
2606			s->shake_state = rc_hs_write;
2607			comm_point_listen_for_rw(c, 0, 1);
2608			return 0;
2609		} else {
2610			if(r == 0)
2611				log_err("remote control connection closed prematurely");
2612			log_addr(1, "failed connection from",
2613				&s->c->repinfo.addr, s->c->repinfo.addrlen);
2614			log_crypto_err("remote control failed ssl");
2615			clean_point(rc, s);
2616			return 0;
2617		}
2618	}
2619	s->shake_state = rc_none;
2620
2621	/* once handshake has completed, check authentication */
2622	if (!rc->use_cert) {
2623		verbose(VERB_ALGO, "unauthenticated remote control connection");
2624	} else if(SSL_get_verify_result(s->ssl) == X509_V_OK) {
2625		X509* x = SSL_get_peer_certificate(s->ssl);
2626		if(!x) {
2627			verbose(VERB_DETAIL, "remote control connection "
2628				"provided no client certificate");
2629			clean_point(rc, s);
2630			return 0;
2631		}
2632		verbose(VERB_ALGO, "remote control connection authenticated");
2633		X509_free(x);
2634	} else {
2635		verbose(VERB_DETAIL, "remote control connection failed to "
2636			"authenticate with client certificate");
2637		clean_point(rc, s);
2638		return 0;
2639	}
2640
2641	/* if OK start to actually handle the request */
2642	handle_req(rc, s, s->ssl);
2643
2644	verbose(VERB_ALGO, "remote control operation completed");
2645	clean_point(rc, s);
2646	return 0;
2647}
2648