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      1 /*
      2  * services/outside_network.c - implement sending of queries and wait answer.
      3  *
      4  * Copyright (c) 2007, 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 has functions to send queries to authoritative servers and
     40  * wait for the pending answer events.
     41  */
     42 #include "config.h"
     43 #include <ctype.h>
     44 #ifdef HAVE_SYS_TYPES_H
     45 #  include <sys/types.h>
     46 #endif
     47 #include <sys/time.h>
     48 #include "services/outside_network.h"
     49 #include "services/listen_dnsport.h"
     50 #include "services/cache/infra.h"
     51 #include "iterator/iterator.h"
     52 #include "util/data/msgparse.h"
     53 #include "util/data/msgreply.h"
     54 #include "util/data/msgencode.h"
     55 #include "util/data/dname.h"
     56 #include "util/netevent.h"
     57 #include "util/log.h"
     58 #include "util/net_help.h"
     59 #include "util/random.h"
     60 #include "util/fptr_wlist.h"
     61 #include "util/edns.h"
     62 #include "sldns/sbuffer.h"
     63 #include "dnstap/dnstap.h"
     64 #ifdef HAVE_OPENSSL_SSL_H
     65 #include <openssl/ssl.h>
     66 #endif
     67 #ifdef HAVE_X509_VERIFY_PARAM_SET1_HOST
     68 #include <openssl/x509v3.h>
     69 #endif
     70 
     71 #ifdef HAVE_NETDB_H
     72 #include <netdb.h>
     73 #endif
     74 #include <fcntl.h>
     75 
     76 /** number of times to retry making a random ID that is unique. */
     77 #define MAX_ID_RETRY 1000
     78 /** number of times to retry finding interface, port that can be opened. */
     79 #define MAX_PORT_RETRY 10000
     80 /** number of retries on outgoing UDP queries */
     81 #define OUTBOUND_UDP_RETRY 1
     82 
     83 /** initiate TCP transaction for serviced query */
     84 static void serviced_tcp_initiate(struct serviced_query* sq, sldns_buffer* buff);
     85 /** with a fd available, randomize and send UDP */
     86 static int randomize_and_send_udp(struct pending* pend, sldns_buffer* packet,
     87 	int timeout);
     88 
     89 /** select a DNS ID for a TCP stream */
     90 static uint16_t tcp_select_id(struct outside_network* outnet,
     91 	struct reuse_tcp* reuse);
     92 
     93 /** Perform serviced query UDP sending operation */
     94 static int serviced_udp_send(struct serviced_query* sq, sldns_buffer* buff);
     95 
     96 /** Send serviced query over TCP return false on initial failure */
     97 static int serviced_tcp_send(struct serviced_query* sq, sldns_buffer* buff);
     98 
     99 /** call the callbacks for a serviced query */
    100 static void serviced_callbacks(struct serviced_query* sq, int error,
    101 	struct comm_point* c, struct comm_reply* rep);
    102 
    103 int
    104 pending_cmp(const void* key1, const void* key2)
    105 {
    106 	struct pending *p1 = (struct pending*)key1;
    107 	struct pending *p2 = (struct pending*)key2;
    108 	if(p1->id < p2->id)
    109 		return -1;
    110 	if(p1->id > p2->id)
    111 		return 1;
    112 	log_assert(p1->id == p2->id);
    113 	return sockaddr_cmp(&p1->addr, p1->addrlen, &p2->addr, p2->addrlen);
    114 }
    115 
    116 int
    117 serviced_cmp(const void* key1, const void* key2)
    118 {
    119 	struct serviced_query* q1 = (struct serviced_query*)key1;
    120 	struct serviced_query* q2 = (struct serviced_query*)key2;
    121 	int r;
    122 	if(q1->qbuflen < q2->qbuflen)
    123 		return -1;
    124 	if(q1->qbuflen > q2->qbuflen)
    125 		return 1;
    126 	log_assert(q1->qbuflen == q2->qbuflen);
    127 	log_assert(q1->qbuflen >= 15 /* 10 header, root, type, class */);
    128 	/* alternate casing of qname is still the same query */
    129 	if((r = memcmp(q1->qbuf, q2->qbuf, 10)) != 0)
    130 		return r;
    131 	if((r = memcmp(q1->qbuf+q1->qbuflen-4, q2->qbuf+q2->qbuflen-4, 4)) != 0)
    132 		return r;
    133 	if(q1->dnssec != q2->dnssec) {
    134 		if(q1->dnssec < q2->dnssec)
    135 			return -1;
    136 		return 1;
    137 	}
    138 	if((r = query_dname_compare(q1->qbuf+10, q2->qbuf+10)) != 0)
    139 		return r;
    140 	if((r = edns_opt_list_compare(q1->opt_list, q2->opt_list)) != 0)
    141 		return r;
    142 	return sockaddr_cmp(&q1->addr, q1->addrlen, &q2->addr, q2->addrlen);
    143 }
    144 
    145 /** compare if the reuse element has the same address, port and same ssl-is
    146  * used-for-it characteristic */
    147 static int
    148 reuse_cmp_addrportssl(const void* key1, const void* key2)
    149 {
    150 	struct reuse_tcp* r1 = (struct reuse_tcp*)key1;
    151 	struct reuse_tcp* r2 = (struct reuse_tcp*)key2;
    152 	int r;
    153 	/* compare address and port */
    154 	r = sockaddr_cmp(&r1->addr, r1->addrlen, &r2->addr, r2->addrlen);
    155 	if(r != 0)
    156 		return r;
    157 
    158 	/* compare if SSL-enabled */
    159 	if(r1->is_ssl && !r2->is_ssl)
    160 		return 1;
    161 	if(!r1->is_ssl && r2->is_ssl)
    162 		return -1;
    163 
    164 	/* compare tls_auth_name if SSL-enabled */
    165 	if(r1->is_ssl) {
    166 		if(r1->tls_auth_name && !r2->tls_auth_name)
    167 			return 1;
    168 		if(!r1->tls_auth_name && r2->tls_auth_name)
    169 			return -1;
    170 		if(r1->tls_auth_name && r2->tls_auth_name) {
    171 			r = strcmp(r1->tls_auth_name, r2->tls_auth_name);
    172 			if(r != 0)
    173 				return r;
    174 		}
    175 	}
    176 	return 0;
    177 }
    178 
    179 int
    180 reuse_cmp(const void* key1, const void* key2)
    181 {
    182 	int r;
    183 	r = reuse_cmp_addrportssl(key1, key2);
    184 	if(r != 0)
    185 		return r;
    186 
    187 	/* compare ptr value */
    188 	if(key1 < key2) return -1;
    189 	if(key1 > key2) return 1;
    190 	return 0;
    191 }
    192 
    193 int reuse_id_cmp(const void* key1, const void* key2)
    194 {
    195 	struct waiting_tcp* w1 = (struct waiting_tcp*)key1;
    196 	struct waiting_tcp* w2 = (struct waiting_tcp*)key2;
    197 	if(w1->id < w2->id)
    198 		return -1;
    199 	if(w1->id > w2->id)
    200 		return 1;
    201 	return 0;
    202 }
    203 
    204 /** delete waiting_tcp entry. Does not unlink from waiting list.
    205  * @param w: to delete.
    206  */
    207 static void
    208 waiting_tcp_delete(struct waiting_tcp* w)
    209 {
    210 	if(!w) return;
    211 	free(w->tls_auth_name);
    212 	if(w->timer)
    213 		comm_timer_delete(w->timer);
    214 	free(w);
    215 }
    216 
    217 /**
    218  * Pick random outgoing-interface of that family, and bind it.
    219  * port set to 0 so OS picks a port number for us.
    220  * if it is the ANY address, do not bind.
    221  * @param pend: pending tcp structure, for storing the local address choice.
    222  * @param w: tcp structure with destination address.
    223  * @param s: socket fd.
    224  * @return false on error, socket closed.
    225  */
    226 static int
    227 pick_outgoing_tcp(struct pending_tcp* pend, struct waiting_tcp* w, int s)
    228 {
    229 	struct port_if* pi = NULL;
    230 	int num;
    231 	pend->pi = NULL;
    232 #ifdef INET6
    233 	if(addr_is_ip6(&w->addr, w->addrlen))
    234 		num = w->outnet->num_ip6;
    235 	else
    236 #endif
    237 		num = w->outnet->num_ip4;
    238 	if(num == 0) {
    239 		log_err("no TCP outgoing interfaces of family");
    240 		log_addr(VERB_OPS, "for addr", &w->addr, w->addrlen);
    241 		sock_close(s);
    242 		return 0;
    243 	}
    244 #ifdef INET6
    245 	if(addr_is_ip6(&w->addr, w->addrlen))
    246 		pi = &w->outnet->ip6_ifs[ub_random_max(w->outnet->rnd, num)];
    247 	else
    248 #endif
    249 		pi = &w->outnet->ip4_ifs[ub_random_max(w->outnet->rnd, num)];
    250 	log_assert(pi);
    251 	pend->pi = pi;
    252 	if(addr_is_any(&pi->addr, pi->addrlen)) {
    253 		/* binding to the ANY interface is for listening sockets */
    254 		return 1;
    255 	}
    256 	/* set port to 0 */
    257 	if(addr_is_ip6(&pi->addr, pi->addrlen))
    258 		((struct sockaddr_in6*)&pi->addr)->sin6_port = 0;
    259 	else	((struct sockaddr_in*)&pi->addr)->sin_port = 0;
    260 	if(bind(s, (struct sockaddr*)&pi->addr, pi->addrlen) != 0) {
    261 #ifndef USE_WINSOCK
    262 #ifdef EADDRNOTAVAIL
    263 		if(!(verbosity < 4 && errno == EADDRNOTAVAIL))
    264 #endif
    265 #else /* USE_WINSOCK */
    266 		if(!(verbosity < 4 && WSAGetLastError() == WSAEADDRNOTAVAIL))
    267 #endif
    268 		    log_err("outgoing tcp: bind: %s", sock_strerror(errno));
    269 		sock_close(s);
    270 		return 0;
    271 	}
    272 	log_addr(VERB_ALGO, "tcp bound to src", &pi->addr, pi->addrlen);
    273 	return 1;
    274 }
    275 
    276 /** get TCP file descriptor for address, returns -1 on failure,
    277  * tcp_mss is 0 or maxseg size to set for TCP packets. */
    278 int
    279 outnet_get_tcp_fd(struct sockaddr_storage* addr, socklen_t addrlen,
    280 	int tcp_mss, int dscp, int nodelay)
    281 {
    282 	int s;
    283 	int af;
    284 	char* err;
    285 #if defined(SO_REUSEADDR) || defined(IP_BIND_ADDRESS_NO_PORT)	\
    286 	|| defined(TCP_NODELAY)
    287 	int on = 1;
    288 #endif
    289 #ifdef INET6
    290 	if(addr_is_ip6(addr, addrlen)){
    291 		s = socket(PF_INET6, SOCK_STREAM, IPPROTO_TCP);
    292 		af = AF_INET6;
    293 	} else {
    294 #else
    295 	{
    296 #endif
    297 		af = AF_INET;
    298 		s = socket(PF_INET, SOCK_STREAM, IPPROTO_TCP);
    299 	}
    300 	if(s == -1) {
    301 		log_err_addr("outgoing tcp: socket", sock_strerror(errno),
    302 			addr, addrlen);
    303 		return -1;
    304 	}
    305 
    306 #ifdef SO_REUSEADDR
    307 	if(setsockopt(s, SOL_SOCKET, SO_REUSEADDR, (void*)&on,
    308 		(socklen_t)sizeof(on)) < 0) {
    309 		verbose(VERB_ALGO, "outgoing tcp:"
    310 			" setsockopt(.. SO_REUSEADDR ..) failed");
    311 	}
    312 #endif
    313 
    314 	err = set_ip_dscp(s, af, dscp);
    315 	if(err != NULL) {
    316 		verbose(VERB_ALGO, "outgoing tcp:"
    317 			"error setting IP DiffServ codepoint on socket");
    318 	}
    319 
    320 	if(tcp_mss > 0) {
    321 #if defined(IPPROTO_TCP) && defined(TCP_MAXSEG)
    322 		if(setsockopt(s, IPPROTO_TCP, TCP_MAXSEG,
    323 			(void*)&tcp_mss, (socklen_t)sizeof(tcp_mss)) < 0) {
    324 			verbose(VERB_ALGO, "outgoing tcp:"
    325 				" setsockopt(.. TCP_MAXSEG ..) failed");
    326 		}
    327 #else
    328 		verbose(VERB_ALGO, "outgoing tcp:"
    329 			" setsockopt(TCP_MAXSEG) unsupported");
    330 #endif /* defined(IPPROTO_TCP) && defined(TCP_MAXSEG) */
    331 	}
    332 #ifdef IP_BIND_ADDRESS_NO_PORT
    333 	if(setsockopt(s, IPPROTO_IP, IP_BIND_ADDRESS_NO_PORT, (void*)&on,
    334 		(socklen_t)sizeof(on)) < 0) {
    335 		verbose(VERB_ALGO, "outgoing tcp:"
    336 			" setsockopt(.. IP_BIND_ADDRESS_NO_PORT ..) failed");
    337 	}
    338 #endif /* IP_BIND_ADDRESS_NO_PORT */
    339 	if(nodelay) {
    340 #if defined(IPPROTO_TCP) && defined(TCP_NODELAY)
    341 		if(setsockopt(s, IPPROTO_TCP, TCP_NODELAY, (void*)&on,
    342 			(socklen_t)sizeof(on)) < 0) {
    343 			verbose(VERB_ALGO, "outgoing tcp:"
    344 				" setsockopt(.. TCP_NODELAY ..) failed");
    345 		}
    346 #else
    347 		verbose(VERB_ALGO, "outgoing tcp:"
    348 			" setsockopt(.. TCP_NODELAY ..) unsupported");
    349 #endif /* defined(IPPROTO_TCP) && defined(TCP_NODELAY) */
    350 	}
    351 	return s;
    352 }
    353 
    354 /** connect tcp connection to addr, 0 on failure */
    355 int
    356 outnet_tcp_connect(int s, struct sockaddr_storage* addr, socklen_t addrlen)
    357 {
    358 	if(connect(s, (struct sockaddr*)addr, addrlen) == -1) {
    359 #ifndef USE_WINSOCK
    360 #ifdef EINPROGRESS
    361 		if(errno != EINPROGRESS) {
    362 #endif
    363 			if(tcp_connect_errno_needs_log(
    364 				(struct sockaddr*)addr, addrlen))
    365 				log_err_addr("outgoing tcp: connect",
    366 					strerror(errno), addr, addrlen);
    367 			close(s);
    368 			return 0;
    369 #ifdef EINPROGRESS
    370 		}
    371 #endif
    372 #else /* USE_WINSOCK */
    373 		if(WSAGetLastError() != WSAEINPROGRESS &&
    374 			WSAGetLastError() != WSAEWOULDBLOCK) {
    375 			closesocket(s);
    376 			return 0;
    377 		}
    378 #endif
    379 	}
    380 	return 1;
    381 }
    382 
    383 /** log reuse item addr and ptr with message */
    384 static void
    385 log_reuse_tcp(enum verbosity_value v, const char* msg, struct reuse_tcp* reuse)
    386 {
    387 	uint16_t port;
    388 	char addrbuf[128];
    389 	if(verbosity < v) return;
    390 	if(!reuse || !reuse->pending || !reuse->pending->c)
    391 		return;
    392 	addr_to_str(&reuse->addr, reuse->addrlen, addrbuf, sizeof(addrbuf));
    393 	port = ntohs(((struct sockaddr_in*)&reuse->addr)->sin_port);
    394 	verbose(v, "%s %s#%u fd %d", msg, addrbuf, (unsigned)port,
    395 		reuse->pending->c->fd);
    396 }
    397 
    398 /** pop the first element from the writewait list */
    399 struct waiting_tcp*
    400 reuse_write_wait_pop(struct reuse_tcp* reuse)
    401 {
    402 	struct waiting_tcp* w = reuse->write_wait_first;
    403 	if(!w)
    404 		return NULL;
    405 	log_assert(w->write_wait_queued);
    406 	log_assert(!w->write_wait_prev);
    407 	reuse->write_wait_first = w->write_wait_next;
    408 	if(w->write_wait_next)
    409 		w->write_wait_next->write_wait_prev = NULL;
    410 	else	reuse->write_wait_last = NULL;
    411 	w->write_wait_queued = 0;
    412 	w->write_wait_next = NULL;
    413 	w->write_wait_prev = NULL;
    414 	return w;
    415 }
    416 
    417 /** remove the element from the writewait list */
    418 void
    419 reuse_write_wait_remove(struct reuse_tcp* reuse, struct waiting_tcp* w)
    420 {
    421 	log_assert(w);
    422 	log_assert(w->write_wait_queued);
    423 	if(!w)
    424 		return;
    425 	if(!w->write_wait_queued)
    426 		return;
    427 	if(w->write_wait_prev)
    428 		w->write_wait_prev->write_wait_next = w->write_wait_next;
    429 	else	reuse->write_wait_first = w->write_wait_next;
    430 	log_assert(!w->write_wait_prev ||
    431 		w->write_wait_prev->write_wait_next != w->write_wait_prev);
    432 	if(w->write_wait_next)
    433 		w->write_wait_next->write_wait_prev = w->write_wait_prev;
    434 	else	reuse->write_wait_last = w->write_wait_prev;
    435 	log_assert(!w->write_wait_next
    436 		|| w->write_wait_next->write_wait_prev != w->write_wait_next);
    437 	w->write_wait_queued = 0;
    438 	w->write_wait_next = NULL;
    439 	w->write_wait_prev = NULL;
    440 }
    441 
    442 /** push the element after the last on the writewait list */
    443 void
    444 reuse_write_wait_push_back(struct reuse_tcp* reuse, struct waiting_tcp* w)
    445 {
    446 	if(!w) return;
    447 	log_assert(!w->write_wait_queued);
    448 	if(reuse->write_wait_last) {
    449 		reuse->write_wait_last->write_wait_next = w;
    450 		log_assert(reuse->write_wait_last->write_wait_next !=
    451 			reuse->write_wait_last);
    452 		w->write_wait_prev = reuse->write_wait_last;
    453 	} else {
    454 		reuse->write_wait_first = w;
    455 		w->write_wait_prev = NULL;
    456 	}
    457 	w->write_wait_next = NULL;
    458 	reuse->write_wait_last = w;
    459 	w->write_wait_queued = 1;
    460 }
    461 
    462 /** insert element in tree by id */
    463 void
    464 reuse_tree_by_id_insert(struct reuse_tcp* reuse, struct waiting_tcp* w)
    465 {
    466 #ifdef UNBOUND_DEBUG
    467 	rbnode_type* added;
    468 #endif
    469 	log_assert(w->id_node.key == NULL);
    470 	w->id_node.key = w;
    471 #ifdef UNBOUND_DEBUG
    472 	added =
    473 #else
    474 	(void)
    475 #endif
    476 	rbtree_insert(&reuse->tree_by_id, &w->id_node);
    477 	log_assert(added);  /* should have been added */
    478 }
    479 
    480 /** find element in tree by id */
    481 struct waiting_tcp*
    482 reuse_tcp_by_id_find(struct reuse_tcp* reuse, uint16_t id)
    483 {
    484 	struct waiting_tcp key_w;
    485 	rbnode_type* n;
    486 	memset(&key_w, 0, sizeof(key_w));
    487 	key_w.id_node.key = &key_w;
    488 	key_w.id = id;
    489 	n = rbtree_search(&reuse->tree_by_id, &key_w);
    490 	if(!n) return NULL;
    491 	return (struct waiting_tcp*)n->key;
    492 }
    493 
    494 /** return ID value of rbnode in tree_by_id */
    495 static uint16_t
    496 tree_by_id_get_id(rbnode_type* node)
    497 {
    498 	struct waiting_tcp* w = (struct waiting_tcp*)node->key;
    499 	return w->id;
    500 }
    501 
    502 /** insert into reuse tcp tree and LRU, false on failure (duplicate) */
    503 int
    504 reuse_tcp_insert(struct outside_network* outnet, struct pending_tcp* pend_tcp)
    505 {
    506 	log_reuse_tcp(VERB_CLIENT, "reuse_tcp_insert", &pend_tcp->reuse);
    507 	if(pend_tcp->reuse.item_on_lru_list) {
    508 		if(!pend_tcp->reuse.node.key)
    509 			log_err("internal error: reuse_tcp_insert: "
    510 				"in lru list without key");
    511 		return 1;
    512 	}
    513 	pend_tcp->reuse.node.key = &pend_tcp->reuse;
    514 	pend_tcp->reuse.pending = pend_tcp;
    515 	if(!rbtree_insert(&outnet->tcp_reuse, &pend_tcp->reuse.node)) {
    516 		/* We are not in the LRU list but we are already in the
    517 		 * tcp_reuse tree, strange.
    518 		 * Continue to add ourselves to the LRU list. */
    519 		log_err("internal error: reuse_tcp_insert: in lru list but "
    520 			"not in the tree");
    521 	}
    522 	/* insert into LRU, first is newest */
    523 	pend_tcp->reuse.lru_prev = NULL;
    524 	if(outnet->tcp_reuse_first) {
    525 		pend_tcp->reuse.lru_next = outnet->tcp_reuse_first;
    526 		log_assert(pend_tcp->reuse.lru_next != &pend_tcp->reuse);
    527 		outnet->tcp_reuse_first->lru_prev = &pend_tcp->reuse;
    528 		log_assert(outnet->tcp_reuse_first->lru_prev !=
    529 			outnet->tcp_reuse_first);
    530 	} else {
    531 		pend_tcp->reuse.lru_next = NULL;
    532 		outnet->tcp_reuse_last = &pend_tcp->reuse;
    533 	}
    534 	outnet->tcp_reuse_first = &pend_tcp->reuse;
    535 	pend_tcp->reuse.item_on_lru_list = 1;
    536 	log_assert((!outnet->tcp_reuse_first && !outnet->tcp_reuse_last) ||
    537 		(outnet->tcp_reuse_first && outnet->tcp_reuse_last));
    538 	log_assert(outnet->tcp_reuse_first != outnet->tcp_reuse_first->lru_next &&
    539 		outnet->tcp_reuse_first != outnet->tcp_reuse_first->lru_prev);
    540 	log_assert(outnet->tcp_reuse_last != outnet->tcp_reuse_last->lru_next &&
    541 		outnet->tcp_reuse_last != outnet->tcp_reuse_last->lru_prev);
    542 	return 1;
    543 }
    544 
    545 /** find reuse tcp stream to destination for query, or NULL if none */
    546 static struct reuse_tcp*
    547 reuse_tcp_find(struct outside_network* outnet, struct sockaddr_storage* addr,
    548 	socklen_t addrlen, int use_ssl, char* tls_auth_name)
    549 {
    550 	struct waiting_tcp key_w;
    551 	struct pending_tcp key_p;
    552 	struct comm_point c;
    553 	rbnode_type* result = NULL, *prev;
    554 	verbose(VERB_CLIENT, "reuse_tcp_find");
    555 	memset(&key_w, 0, sizeof(key_w));
    556 	memset(&key_p, 0, sizeof(key_p));
    557 	memset(&c, 0, sizeof(c));
    558 	key_p.query = &key_w;
    559 	key_p.c = &c;
    560 	key_p.reuse.pending = &key_p;
    561 	key_p.reuse.node.key = &key_p.reuse;
    562 	if(use_ssl) {
    563 		key_p.reuse.is_ssl = 1;
    564 		key_p.reuse.tls_auth_name = tls_auth_name;
    565 	}
    566 	if(addrlen > (socklen_t)sizeof(key_p.reuse.addr))
    567 		return NULL;
    568 	memmove(&key_p.reuse.addr, addr, addrlen);
    569 	key_p.reuse.addrlen = addrlen;
    570 
    571 	verbose(VERB_CLIENT, "reuse_tcp_find: num reuse streams %u",
    572 		(unsigned)outnet->tcp_reuse.count);
    573 	if(outnet->tcp_reuse.root == NULL ||
    574 		outnet->tcp_reuse.root == RBTREE_NULL)
    575 		return NULL;
    576 	if(rbtree_find_less_equal(&outnet->tcp_reuse, &key_p.reuse,
    577 		&result)) {
    578 		/* exact match */
    579 		/* but the key is on stack, and ptr is compared, impossible */
    580 		log_assert(&key_p.reuse != (struct reuse_tcp*)result);
    581 		log_assert(&key_p != ((struct reuse_tcp*)result)->pending);
    582 	}
    583 
    584 	/* It is possible that we search for something before the first element
    585 	 * in the tree. Replace a null pointer with the first element.
    586 	 */
    587 	if (!result) {
    588 		verbose(VERB_CLIENT, "reuse_tcp_find: taking first");
    589 		result = rbtree_first(&outnet->tcp_reuse);
    590 	}
    591 
    592 	/* not found, return null */
    593 	if(!result || result == RBTREE_NULL)
    594 		return NULL;
    595 
    596 	/* It is possible that we got the previous address, but that the
    597 	 * address we are looking for is in the tree. If the address we got
    598 	 * is less than the address we are looking, then take the next entry.
    599 	 */
    600 	if (reuse_cmp_addrportssl(result->key, &key_p.reuse) < 0) {
    601 		verbose(VERB_CLIENT, "reuse_tcp_find: key too low");
    602 		result = rbtree_next(result);
    603 	}
    604 
    605 	verbose(VERB_CLIENT, "reuse_tcp_find check inexact match");
    606 	/* inexact match, find one of possibly several connections to the
    607 	 * same destination address, with the correct port, ssl, and
    608 	 * also less than max number of open queries, or else, fail to open
    609 	 * a new one */
    610 	/* rewind to start of sequence of same address,port,ssl */
    611 	prev = rbtree_previous(result);
    612 	while(prev && prev != RBTREE_NULL &&
    613 		reuse_cmp_addrportssl(prev->key, &key_p.reuse) == 0) {
    614 		result = prev;
    615 		prev = rbtree_previous(result);
    616 	}
    617 
    618 	/* loop to find first one that has correct characteristics */
    619 	while(result && result != RBTREE_NULL &&
    620 		reuse_cmp_addrportssl(result->key, &key_p.reuse) == 0) {
    621 		if(((struct reuse_tcp*)result)->tree_by_id.count <
    622 			outnet->max_reuse_tcp_queries) {
    623 			/* same address, port, ssl-yes-or-no, and has
    624 			 * space for another query */
    625 			return (struct reuse_tcp*)result;
    626 		}
    627 		result = rbtree_next(result);
    628 	}
    629 	return NULL;
    630 }
    631 
    632 /** use the buffer to setup writing the query */
    633 static void
    634 outnet_tcp_take_query_setup(int s, struct pending_tcp* pend,
    635 	struct waiting_tcp* w)
    636 {
    637 	struct timeval tv;
    638 	verbose(VERB_CLIENT, "outnet_tcp_take_query_setup: setup packet to write "
    639 		"len %d timeout %d msec",
    640 		(int)w->pkt_len, w->timeout);
    641 	pend->c->tcp_write_pkt = w->pkt;
    642 	pend->c->tcp_write_pkt_len = w->pkt_len;
    643 	pend->c->tcp_write_and_read = 1;
    644 	pend->c->tcp_write_byte_count = 0;
    645 	pend->c->tcp_is_reading = 0;
    646 	comm_point_start_listening(pend->c, s, -1);
    647 	/* set timer on the waiting_tcp entry, this is the write timeout
    648 	 * for the written packet.  The timer on pend->c is the timer
    649 	 * for when there is no written packet and we have readtimeouts */
    650 #ifndef S_SPLINT_S
    651 	tv.tv_sec = w->timeout/1000;
    652 	tv.tv_usec = (w->timeout%1000)*1000;
    653 #endif
    654 	/* if the waiting_tcp was previously waiting for a buffer in the
    655 	 * outside_network.tcpwaitlist, then the timer is reset now that
    656 	 * we start writing it */
    657 	comm_timer_set(w->timer, &tv);
    658 }
    659 
    660 /** use next free buffer to service a tcp query */
    661 static int
    662 outnet_tcp_take_into_use(struct waiting_tcp* w)
    663 {
    664 	struct pending_tcp* pend = w->outnet->tcp_free;
    665 	char* tls_auth_name = NULL;
    666 	int s;
    667 	log_assert(pend);
    668 	log_assert(w->pkt);
    669 	log_assert(w->pkt_len > 0);
    670 	log_assert(w->addrlen > 0);
    671 	pend->c->tcp_do_toggle_rw = 0;
    672 	pend->c->tcp_do_close = 0;
    673 
    674 	/* Consistency check, if we have ssl_upstream but no sslctx, then
    675 	 * log an error and return failure.
    676 	 */
    677 	if (w->ssl_upstream && !w->outnet->sslctx) {
    678 		log_err("SSL upstream requested but no SSL context");
    679 		return 0;
    680 	}
    681 
    682 	/* open socket */
    683 	s = outnet_get_tcp_fd(&w->addr, w->addrlen, w->outnet->tcp_mss,
    684 		w->outnet->ip_dscp, w->ssl_upstream);
    685 
    686 	if(s == -1)
    687 		return 0;
    688 
    689 	if(!pick_outgoing_tcp(pend, w, s))
    690 		return 0;
    691 
    692 	fd_set_nonblock(s);
    693 #ifdef USE_OSX_MSG_FASTOPEN
    694 	/* API for fast open is different here. We use a connectx() function and
    695 	   then writes can happen as normal even using SSL.*/
    696 	/* connectx requires that the len be set in the sockaddr struct*/
    697 	struct sockaddr_in *addr_in = (struct sockaddr_in *)&w->addr;
    698 	addr_in->sin_len = w->addrlen;
    699 	sa_endpoints_t endpoints;
    700 	endpoints.sae_srcif = 0;
    701 	endpoints.sae_srcaddr = NULL;
    702 	endpoints.sae_srcaddrlen = 0;
    703 	endpoints.sae_dstaddr = (struct sockaddr *)&w->addr;
    704 	endpoints.sae_dstaddrlen = w->addrlen;
    705 	if (connectx(s, &endpoints, SAE_ASSOCID_ANY,
    706 	             CONNECT_DATA_IDEMPOTENT | CONNECT_RESUME_ON_READ_WRITE,
    707 	             NULL, 0, NULL, NULL) == -1) {
    708 		/* if fails, failover to connect for OSX 10.10 */
    709 #ifdef EINPROGRESS
    710 		if(errno != EINPROGRESS) {
    711 #else
    712 		if(1) {
    713 #endif
    714 			if(connect(s, (struct sockaddr*)&w->addr, w->addrlen) == -1) {
    715 #else /* USE_OSX_MSG_FASTOPEN*/
    716 #ifdef USE_MSG_FASTOPEN
    717 	pend->c->tcp_do_fastopen = 1;
    718 	/* Only do TFO for TCP in which case no connect() is required here.
    719 	   Don't combine client TFO with SSL, since OpenSSL can't
    720 	   currently support doing a handshake on fd that already isn't connected*/
    721 	if (w->outnet->sslctx && w->ssl_upstream) {
    722 		if(connect(s, (struct sockaddr*)&w->addr, w->addrlen) == -1) {
    723 #else /* USE_MSG_FASTOPEN*/
    724 	if(connect(s, (struct sockaddr*)&w->addr, w->addrlen) == -1) {
    725 #endif /* USE_MSG_FASTOPEN*/
    726 #endif /* USE_OSX_MSG_FASTOPEN*/
    727 #ifndef USE_WINSOCK
    728 #ifdef EINPROGRESS
    729 		if(errno != EINPROGRESS) {
    730 #else
    731 		if(1) {
    732 #endif
    733 			if(tcp_connect_errno_needs_log(
    734 				(struct sockaddr*)&w->addr, w->addrlen))
    735 				log_err_addr("outgoing tcp: connect",
    736 					strerror(errno), &w->addr, w->addrlen);
    737 			close(s);
    738 #else /* USE_WINSOCK */
    739 		if(WSAGetLastError() != WSAEINPROGRESS &&
    740 			WSAGetLastError() != WSAEWOULDBLOCK) {
    741 			closesocket(s);
    742 #endif
    743 			return 0;
    744 		}
    745 	}
    746 #ifdef USE_MSG_FASTOPEN
    747 	}
    748 #endif /* USE_MSG_FASTOPEN */
    749 #ifdef USE_OSX_MSG_FASTOPEN
    750 		}
    751 	}
    752 #endif /* USE_OSX_MSG_FASTOPEN */
    753 	if(w->outnet->sslctx && w->ssl_upstream) {
    754 		pend->c->ssl = outgoing_ssl_fd(w->outnet->sslctx, s);
    755 		if(!pend->c->ssl) {
    756 			pend->c->fd = s;
    757 			comm_point_close(pend->c);
    758 			return 0;
    759 		}
    760 		verbose(VERB_ALGO, "the query is using TLS encryption, for %s",
    761 			(w->tls_auth_name?w->tls_auth_name:"an unauthenticated connection"));
    762 #ifdef USE_WINSOCK
    763 		comm_point_tcp_win_bio_cb(pend->c, pend->c->ssl);
    764 #endif
    765 		pend->c->ssl_shake_state = comm_ssl_shake_write;
    766 		if(w->tls_auth_name) {
    767 			/* strdup the auth name, while not linked the list yet,
    768 			 * in case of failure, easy cleanup. */
    769 			tls_auth_name = strdup(w->tls_auth_name);
    770 			if(!tls_auth_name) {
    771 				log_err("out of memory: alloc tls auth name");
    772 				pend->c->fd = s;
    773 #ifdef HAVE_SSL
    774 				SSL_free(pend->c->ssl);
    775 #endif
    776 				pend->c->ssl = NULL;
    777 				comm_point_close(pend->c);
    778 				return 0;
    779 			}
    780 		}
    781 		if(!set_auth_name_on_ssl(pend->c->ssl, tls_auth_name,
    782 			w->outnet->tls_use_sni)) {
    783 			pend->c->fd = s;
    784 #ifdef HAVE_SSL
    785 			SSL_free(pend->c->ssl);
    786 #endif
    787 			pend->c->ssl = NULL;
    788 			comm_point_close(pend->c);
    789 			free(tls_auth_name);
    790 			return 0;
    791 		}
    792 	}
    793 	w->next_waiting = (void*)pend;
    794 	w->outnet->num_tcp_outgoing++;
    795 	w->outnet->tcp_free = pend->next_free;
    796 	pend->next_free = NULL;
    797 	pend->query = w;
    798 	pend->reuse.outnet = w->outnet;
    799 	pend->c->repinfo.remote_addrlen = w->addrlen;
    800 	pend->c->tcp_more_read_again = &pend->reuse.cp_more_read_again;
    801 	pend->c->tcp_more_write_again = &pend->reuse.cp_more_write_again;
    802 	pend->reuse.cp_more_read_again = 0;
    803 	pend->reuse.cp_more_write_again = 0;
    804 	memcpy(&pend->c->repinfo.remote_addr, &w->addr, w->addrlen);
    805 	pend->reuse.pending = pend;
    806 
    807 	/* Remove from tree in case the is_ssl will be different and causes the
    808 	 * identity of the reuse_tcp to change; could result in nodes not being
    809 	 * deleted from the tree (because the new identity does not match the
    810 	 * previous node) but their ->key would be changed to NULL. */
    811 	if(pend->reuse.node.key)
    812 		reuse_tcp_remove_tree_list(w->outnet, &pend->reuse);
    813 
    814 	if(pend->c->ssl) {
    815 		pend->reuse.is_ssl = 1;
    816 		if(pend->reuse.tls_auth_name)
    817 			free(pend->reuse.tls_auth_name);
    818 		pend->reuse.tls_auth_name = tls_auth_name;
    819 		tls_auth_name = NULL;
    820 	} else {
    821 		pend->reuse.is_ssl = 0;
    822 		if(pend->reuse.tls_auth_name)
    823 			free(pend->reuse.tls_auth_name);
    824 		pend->reuse.tls_auth_name = NULL;
    825 	}
    826 	/* free tls auth name if nonNULL */
    827 	free(tls_auth_name);
    828 	/* insert in reuse by address tree if not already inserted there */
    829 	(void)reuse_tcp_insert(w->outnet, pend);
    830 	reuse_tree_by_id_insert(&pend->reuse, w);
    831 	outnet_tcp_take_query_setup(s, pend, w);
    832 	return 1;
    833 }
    834 
    835 /** Touch the lru of a reuse_tcp element, it is in use.
    836  * This moves it to the front of the list, where it is not likely to
    837  * be closed.  Items at the back of the list are closed to make space. */
    838 void
    839 reuse_tcp_lru_touch(struct outside_network* outnet, struct reuse_tcp* reuse)
    840 {
    841 	if(!reuse->item_on_lru_list) {
    842 		log_err("internal error: we need to touch the lru_list but item not in list");
    843 		return; /* not on the list, no lru to modify */
    844 	}
    845 	log_assert(reuse->lru_prev ||
    846 		(!reuse->lru_prev && outnet->tcp_reuse_first == reuse));
    847 	if(!reuse->lru_prev)
    848 		return; /* already first in the list */
    849 	/* remove at current position */
    850 	/* since it is not first, there is a previous element */
    851 	reuse->lru_prev->lru_next = reuse->lru_next;
    852 	log_assert(reuse->lru_prev->lru_next != reuse->lru_prev);
    853 	if(reuse->lru_next)
    854 		reuse->lru_next->lru_prev = reuse->lru_prev;
    855 	else	outnet->tcp_reuse_last = reuse->lru_prev;
    856 	log_assert(!reuse->lru_next || reuse->lru_next->lru_prev != reuse->lru_next);
    857 	log_assert(outnet->tcp_reuse_last != outnet->tcp_reuse_last->lru_next &&
    858 		outnet->tcp_reuse_last != outnet->tcp_reuse_last->lru_prev);
    859 	/* insert at the front */
    860 	reuse->lru_prev = NULL;
    861 	reuse->lru_next = outnet->tcp_reuse_first;
    862 	if(outnet->tcp_reuse_first) {
    863 		outnet->tcp_reuse_first->lru_prev = reuse;
    864 	}
    865 	log_assert(reuse->lru_next != reuse);
    866 	/* since it is not first, it is not the only element and
    867 	 * lru_next is thus not NULL and thus reuse is now not the last in
    868 	 * the list, so outnet->tcp_reuse_last does not need to be modified */
    869 	outnet->tcp_reuse_first = reuse;
    870 	log_assert(outnet->tcp_reuse_first != outnet->tcp_reuse_first->lru_next &&
    871 		outnet->tcp_reuse_first != outnet->tcp_reuse_first->lru_prev);
    872 	log_assert((!outnet->tcp_reuse_first && !outnet->tcp_reuse_last) ||
    873 		(outnet->tcp_reuse_first && outnet->tcp_reuse_last));
    874 }
    875 
    876 /** Snip the last reuse_tcp element off of the LRU list */
    877 struct reuse_tcp*
    878 reuse_tcp_lru_snip(struct outside_network* outnet)
    879 {
    880 	struct reuse_tcp* reuse = outnet->tcp_reuse_last;
    881 	if(!reuse) return NULL;
    882 	/* snip off of LRU */
    883 	log_assert(reuse->lru_next == NULL);
    884 	if(reuse->lru_prev) {
    885 		outnet->tcp_reuse_last = reuse->lru_prev;
    886 		reuse->lru_prev->lru_next = NULL;
    887 	} else {
    888 		outnet->tcp_reuse_last = NULL;
    889 		outnet->tcp_reuse_first = NULL;
    890 	}
    891 	log_assert((!outnet->tcp_reuse_first && !outnet->tcp_reuse_last) ||
    892 		(outnet->tcp_reuse_first && outnet->tcp_reuse_last));
    893 	reuse->item_on_lru_list = 0;
    894 	reuse->lru_next = NULL;
    895 	reuse->lru_prev = NULL;
    896 	return reuse;
    897 }
    898 
    899 /** remove waiting tcp from the outnet waiting list */
    900 void
    901 outnet_waiting_tcp_list_remove(struct outside_network* outnet, struct waiting_tcp* w)
    902 {
    903 	struct waiting_tcp* p = outnet->tcp_wait_first, *prev = NULL;
    904 	w->on_tcp_waiting_list = 0;
    905 	while(p) {
    906 		if(p == w) {
    907 			/* remove w */
    908 			if(prev)
    909 				prev->next_waiting = w->next_waiting;
    910 			else	outnet->tcp_wait_first = w->next_waiting;
    911 			if(outnet->tcp_wait_last == w)
    912 				outnet->tcp_wait_last = prev;
    913 			w->next_waiting = NULL;
    914 			return;
    915 		}
    916 		prev = p;
    917 		p = p->next_waiting;
    918 	}
    919 	/* outnet_waiting_tcp_list_remove is currently called only with items
    920 	 * that are already in the waiting list. */
    921 	log_assert(0);
    922 }
    923 
    924 /** pop the first waiting tcp from the outnet waiting list */
    925 struct waiting_tcp*
    926 outnet_waiting_tcp_list_pop(struct outside_network* outnet)
    927 {
    928 	struct waiting_tcp* w = outnet->tcp_wait_first;
    929 	if(!outnet->tcp_wait_first) return NULL;
    930 	log_assert(w->on_tcp_waiting_list);
    931 	outnet->tcp_wait_first = w->next_waiting;
    932 	if(outnet->tcp_wait_last == w)
    933 		outnet->tcp_wait_last = NULL;
    934 	w->on_tcp_waiting_list = 0;
    935 	w->next_waiting = NULL;
    936 	return w;
    937 }
    938 
    939 /** add waiting_tcp element to the outnet tcp waiting list */
    940 void
    941 outnet_waiting_tcp_list_add(struct outside_network* outnet,
    942 	struct waiting_tcp* w, int set_timer)
    943 {
    944 	struct timeval tv;
    945 	log_assert(!w->on_tcp_waiting_list);
    946 	if(w->on_tcp_waiting_list)
    947 		return;
    948 	w->next_waiting = NULL;
    949 	if(outnet->tcp_wait_last)
    950 		outnet->tcp_wait_last->next_waiting = w;
    951 	else	outnet->tcp_wait_first = w;
    952 	outnet->tcp_wait_last = w;
    953 	w->on_tcp_waiting_list = 1;
    954 	if(set_timer) {
    955 #ifndef S_SPLINT_S
    956 		tv.tv_sec = w->timeout/1000;
    957 		tv.tv_usec = (w->timeout%1000)*1000;
    958 #endif
    959 		comm_timer_set(w->timer, &tv);
    960 	}
    961 }
    962 
    963 /** add waiting_tcp element as first to the outnet tcp waiting list */
    964 void
    965 outnet_waiting_tcp_list_add_first(struct outside_network* outnet,
    966 	struct waiting_tcp* w, int reset_timer)
    967 {
    968 	struct timeval tv;
    969 	log_assert(!w->on_tcp_waiting_list);
    970 	if(w->on_tcp_waiting_list)
    971 		return;
    972 	w->next_waiting = outnet->tcp_wait_first;
    973 	log_assert(w->next_waiting != w);
    974 	if(!outnet->tcp_wait_last)
    975 		outnet->tcp_wait_last = w;
    976 	outnet->tcp_wait_first = w;
    977 	w->on_tcp_waiting_list = 1;
    978 	if(reset_timer) {
    979 #ifndef S_SPLINT_S
    980 		tv.tv_sec = w->timeout/1000;
    981 		tv.tv_usec = (w->timeout%1000)*1000;
    982 #endif
    983 		comm_timer_set(w->timer, &tv);
    984 	}
    985 	log_assert(
    986 		(!outnet->tcp_reuse_first && !outnet->tcp_reuse_last) ||
    987 		(outnet->tcp_reuse_first && outnet->tcp_reuse_last));
    988 }
    989 
    990 /** call callback on waiting_tcp, if not NULL */
    991 static void
    992 waiting_tcp_callback(struct waiting_tcp* w, struct comm_point* c, int error,
    993 	struct comm_reply* reply_info)
    994 {
    995 	if(w && w->cb) {
    996 		fptr_ok(fptr_whitelist_pending_tcp(w->cb));
    997 		(void)(*w->cb)(c, w->cb_arg, error, reply_info);
    998 	}
    999 }
   1000 
   1001 /** see if buffers can be used to service TCP queries */
   1002 static void
   1003 use_free_buffer(struct outside_network* outnet)
   1004 {
   1005 	struct waiting_tcp* w;
   1006 	while(outnet->tcp_wait_first && !outnet->want_to_quit) {
   1007 #ifdef USE_DNSTAP
   1008 		struct pending_tcp* pend_tcp = NULL;
   1009 #endif
   1010 		struct reuse_tcp* reuse = NULL;
   1011 		w = outnet_waiting_tcp_list_pop(outnet);
   1012 		log_assert(
   1013 			(!outnet->tcp_reuse_first && !outnet->tcp_reuse_last) ||
   1014 			(outnet->tcp_reuse_first && outnet->tcp_reuse_last));
   1015 		reuse = reuse_tcp_find(outnet, &w->addr, w->addrlen,
   1016 			w->ssl_upstream, w->tls_auth_name);
   1017 		/* re-select an ID when moving to a new TCP buffer */
   1018 		w->id = tcp_select_id(outnet, reuse);
   1019 		LDNS_ID_SET(w->pkt, w->id);
   1020 		if(reuse) {
   1021 			log_reuse_tcp(VERB_CLIENT, "use free buffer for waiting tcp: "
   1022 				"found reuse", reuse);
   1023 #ifdef USE_DNSTAP
   1024 			pend_tcp = reuse->pending;
   1025 #endif
   1026 			reuse_tcp_lru_touch(outnet, reuse);
   1027 			comm_timer_disable(w->timer);
   1028 			w->next_waiting = (void*)reuse->pending;
   1029 			reuse_tree_by_id_insert(reuse, w);
   1030 			if(reuse->pending->query) {
   1031 				/* on the write wait list */
   1032 				reuse_write_wait_push_back(reuse, w);
   1033 			} else {
   1034 				/* write straight away */
   1035 				/* stop the timer on read of the fd */
   1036 				comm_point_stop_listening(reuse->pending->c);
   1037 				reuse->pending->query = w;
   1038 				outnet_tcp_take_query_setup(
   1039 					reuse->pending->c->fd, reuse->pending,
   1040 					w);
   1041 			}
   1042 		} else if(outnet->tcp_free) {
   1043 			struct pending_tcp* pend = w->outnet->tcp_free;
   1044 			rbtree_init(&pend->reuse.tree_by_id, reuse_id_cmp);
   1045 			pend->reuse.pending = pend;
   1046 			memcpy(&pend->reuse.addr, &w->addr, w->addrlen);
   1047 			pend->reuse.addrlen = w->addrlen;
   1048 			if(!outnet_tcp_take_into_use(w)) {
   1049 				waiting_tcp_callback(w, NULL, NETEVENT_CLOSED,
   1050 					NULL);
   1051 				waiting_tcp_delete(w);
   1052 #ifdef USE_DNSTAP
   1053 				w = NULL;
   1054 #endif
   1055 			}
   1056 #ifdef USE_DNSTAP
   1057 			pend_tcp = pend;
   1058 #endif
   1059 		} else {
   1060 			/* no reuse and no free buffer, put back at the start */
   1061 			outnet_waiting_tcp_list_add_first(outnet, w, 0);
   1062 			break;
   1063 		}
   1064 #ifdef USE_DNSTAP
   1065 		if(outnet->dtenv && pend_tcp && w && w->sq &&
   1066 			(outnet->dtenv->log_resolver_query_messages ||
   1067 			outnet->dtenv->log_forwarder_query_messages)) {
   1068 			sldns_buffer tmp;
   1069 			sldns_buffer_init_frm_data(&tmp, w->pkt, w->pkt_len);
   1070 			dt_msg_send_outside_query(outnet->dtenv, &w->sq->addr,
   1071 				&pend_tcp->pi->addr, comm_tcp, NULL, w->sq->zone,
   1072 				w->sq->zonelen, &tmp);
   1073 		}
   1074 #endif
   1075 	}
   1076 }
   1077 
   1078 /** delete element from tree by id */
   1079 static void
   1080 reuse_tree_by_id_delete(struct reuse_tcp* reuse, struct waiting_tcp* w)
   1081 {
   1082 #ifdef UNBOUND_DEBUG
   1083 	rbnode_type* rem;
   1084 #endif
   1085 	log_assert(w->id_node.key != NULL);
   1086 #ifdef UNBOUND_DEBUG
   1087 	rem =
   1088 #else
   1089 	(void)
   1090 #endif
   1091 	rbtree_delete(&reuse->tree_by_id, w);
   1092 	log_assert(rem);  /* should have been there */
   1093 	w->id_node.key = NULL;
   1094 }
   1095 
   1096 /** move writewait list to go for another connection. */
   1097 static void
   1098 reuse_move_writewait_away(struct outside_network* outnet,
   1099 	struct pending_tcp* pend)
   1100 {
   1101 	/* the writewait list has not been written yet, so if the
   1102 	 * stream was closed, they have not actually been failed, only
   1103 	 * the queries written.  Other queries can get written to another
   1104 	 * stream.  For upstreams that do not support multiple queries
   1105 	 * and answers, the stream can get closed, and then the queries
   1106 	 * can get written on a new socket */
   1107 	struct waiting_tcp* w;
   1108 	if(pend->query && pend->query->error_count == 0 &&
   1109 		pend->c->tcp_write_pkt == pend->query->pkt &&
   1110 		pend->c->tcp_write_pkt_len == pend->query->pkt_len) {
   1111 		/* since the current query is not written, it can also
   1112 		 * move to a free buffer */
   1113 		if(verbosity >= VERB_CLIENT && pend->query->pkt_len > 12+2+2 &&
   1114 			LDNS_QDCOUNT(pend->query->pkt) > 0 &&
   1115 			dname_valid(pend->query->pkt+12, pend->query->pkt_len-12)) {
   1116 			char buf[LDNS_MAX_DOMAINLEN];
   1117 			dname_str(pend->query->pkt+12, buf);
   1118 			verbose(VERB_CLIENT, "reuse_move_writewait_away current %s %d bytes were written",
   1119 				buf, (int)pend->c->tcp_write_byte_count);
   1120 		}
   1121 		pend->c->tcp_write_pkt = NULL;
   1122 		pend->c->tcp_write_pkt_len = 0;
   1123 		pend->c->tcp_write_and_read = 0;
   1124 		pend->reuse.cp_more_read_again = 0;
   1125 		pend->reuse.cp_more_write_again = 0;
   1126 		pend->c->tcp_is_reading = 1;
   1127 		w = pend->query;
   1128 		pend->query = NULL;
   1129 		/* increase error count, so that if the next socket fails too
   1130 		 * the server selection is run again with this query failed
   1131 		 * and it can select a different server (if possible), or
   1132 		 * fail the query */
   1133 		w->error_count ++;
   1134 		reuse_tree_by_id_delete(&pend->reuse, w);
   1135 		outnet_waiting_tcp_list_add(outnet, w, 1);
   1136 	}
   1137 	while((w = reuse_write_wait_pop(&pend->reuse)) != NULL) {
   1138 		if(verbosity >= VERB_CLIENT && w->pkt_len > 12+2+2 &&
   1139 			LDNS_QDCOUNT(w->pkt) > 0 &&
   1140 			dname_valid(w->pkt+12, w->pkt_len-12)) {
   1141 			char buf[LDNS_MAX_DOMAINLEN];
   1142 			dname_str(w->pkt+12, buf);
   1143 			verbose(VERB_CLIENT, "reuse_move_writewait_away item %s", buf);
   1144 		}
   1145 		reuse_tree_by_id_delete(&pend->reuse, w);
   1146 		outnet_waiting_tcp_list_add(outnet, w, 1);
   1147 	}
   1148 }
   1149 
   1150 /** remove reused element from tree and lru list */
   1151 void
   1152 reuse_tcp_remove_tree_list(struct outside_network* outnet,
   1153 	struct reuse_tcp* reuse)
   1154 {
   1155 	verbose(VERB_CLIENT, "reuse_tcp_remove_tree_list");
   1156 	if(reuse->node.key) {
   1157 		/* delete it from reuse tree */
   1158 		if(!rbtree_delete(&outnet->tcp_reuse, reuse)) {
   1159 			/* should not be possible, it should be there */
   1160 			char buf[256];
   1161 			addr_to_str(&reuse->addr, reuse->addrlen, buf,
   1162 				sizeof(buf));
   1163 			log_err("reuse tcp delete: node not present, internal error, %s ssl %d lru %d", buf, reuse->is_ssl, reuse->item_on_lru_list);
   1164 		}
   1165 		reuse->node.key = NULL;
   1166 		/* defend against loops on broken tree by zeroing the
   1167 		 * rbnode structure */
   1168 		memset(&reuse->node, 0, sizeof(reuse->node));
   1169 	}
   1170 	/* delete from reuse list */
   1171 	if(reuse->item_on_lru_list) {
   1172 		if(reuse->lru_prev) {
   1173 			/* assert that members of the lru list are waiting
   1174 			 * and thus have a pending pointer to the struct */
   1175 			log_assert(reuse->lru_prev->pending);
   1176 			reuse->lru_prev->lru_next = reuse->lru_next;
   1177 			log_assert(reuse->lru_prev->lru_next != reuse->lru_prev);
   1178 		} else {
   1179 			log_assert(!reuse->lru_next || reuse->lru_next->pending);
   1180 			outnet->tcp_reuse_first = reuse->lru_next;
   1181 			log_assert(!outnet->tcp_reuse_first ||
   1182 				(outnet->tcp_reuse_first !=
   1183 				 outnet->tcp_reuse_first->lru_next &&
   1184 				 outnet->tcp_reuse_first !=
   1185 				 outnet->tcp_reuse_first->lru_prev));
   1186 		}
   1187 		if(reuse->lru_next) {
   1188 			/* assert that members of the lru list are waiting
   1189 			 * and thus have a pending pointer to the struct */
   1190 			log_assert(reuse->lru_next->pending);
   1191 			reuse->lru_next->lru_prev = reuse->lru_prev;
   1192 			log_assert(reuse->lru_next->lru_prev != reuse->lru_next);
   1193 		} else {
   1194 			log_assert(!reuse->lru_prev || reuse->lru_prev->pending);
   1195 			outnet->tcp_reuse_last = reuse->lru_prev;
   1196 			log_assert(!outnet->tcp_reuse_last ||
   1197 				(outnet->tcp_reuse_last !=
   1198 				 outnet->tcp_reuse_last->lru_next &&
   1199 				 outnet->tcp_reuse_last !=
   1200 				 outnet->tcp_reuse_last->lru_prev));
   1201 		}
   1202 		log_assert((!outnet->tcp_reuse_first && !outnet->tcp_reuse_last) ||
   1203 			(outnet->tcp_reuse_first && outnet->tcp_reuse_last));
   1204 		reuse->item_on_lru_list = 0;
   1205 		reuse->lru_next = NULL;
   1206 		reuse->lru_prev = NULL;
   1207 	}
   1208 	reuse->pending = NULL;
   1209 }
   1210 
   1211 /** helper function that deletes an element from the tree of readwait
   1212  * elements in tcp reuse structure */
   1213 static void reuse_del_readwait_elem(rbnode_type* node, void* ATTR_UNUSED(arg))
   1214 {
   1215 	struct waiting_tcp* w = (struct waiting_tcp*)node->key;
   1216 	waiting_tcp_delete(w);
   1217 }
   1218 
   1219 /** delete readwait waiting_tcp elements, deletes the elements in the list */
   1220 void reuse_del_readwait(rbtree_type* tree_by_id)
   1221 {
   1222 	if(tree_by_id->root == NULL ||
   1223 		tree_by_id->root == RBTREE_NULL)
   1224 		return;
   1225 	traverse_postorder(tree_by_id, &reuse_del_readwait_elem, NULL);
   1226 	rbtree_init(tree_by_id, reuse_id_cmp);
   1227 }
   1228 
   1229 /** decommission a tcp buffer, closes commpoint and frees waiting_tcp entry */
   1230 static void
   1231 decommission_pending_tcp(struct outside_network* outnet,
   1232 	struct pending_tcp* pend)
   1233 {
   1234 	verbose(VERB_CLIENT, "decommission_pending_tcp");
   1235 	/* A certain code path can lead here twice for the same pending_tcp
   1236 	 * creating a loop in the free pending_tcp list. */
   1237 	if(outnet->tcp_free != pend) {
   1238 		pend->next_free = outnet->tcp_free;
   1239 		outnet->tcp_free = pend;
   1240 	}
   1241 	if(pend->reuse.node.key) {
   1242 		/* needs unlink from the reuse tree to get deleted */
   1243 		reuse_tcp_remove_tree_list(outnet, &pend->reuse);
   1244 	}
   1245 	if(pend->reuse.tls_auth_name) {
   1246 		free(pend->reuse.tls_auth_name);
   1247 		pend->reuse.tls_auth_name = NULL;
   1248 	}
   1249 	/* free SSL structure after remove from outnet tcp reuse tree,
   1250 	 * because the c->ssl null or not is used for sorting in the tree */
   1251 	if(pend->c->ssl) {
   1252 #ifdef HAVE_SSL
   1253 		SSL_shutdown(pend->c->ssl);
   1254 		SSL_free(pend->c->ssl);
   1255 		pend->c->ssl = NULL;
   1256 #endif
   1257 	}
   1258 	comm_point_close(pend->c);
   1259 	pend->reuse.cp_more_read_again = 0;
   1260 	pend->reuse.cp_more_write_again = 0;
   1261 	/* unlink the query and writewait list, it is part of the tree
   1262 	 * nodes and is deleted */
   1263 	pend->query = NULL;
   1264 	pend->reuse.write_wait_first = NULL;
   1265 	pend->reuse.write_wait_last = NULL;
   1266 	reuse_del_readwait(&pend->reuse.tree_by_id);
   1267 }
   1268 
   1269 /** perform failure callbacks for waiting queries in reuse read rbtree */
   1270 static void reuse_cb_readwait_for_failure(rbtree_type* tree_by_id, int err)
   1271 {
   1272 	rbnode_type* node;
   1273 	if(tree_by_id->root == NULL ||
   1274 		tree_by_id->root == RBTREE_NULL)
   1275 		return;
   1276 	node = rbtree_first(tree_by_id);
   1277 	while(node && node != RBTREE_NULL) {
   1278 		struct waiting_tcp* w = (struct waiting_tcp*)node->key;
   1279 		waiting_tcp_callback(w, NULL, err, NULL);
   1280 		node = rbtree_next(node);
   1281 	}
   1282 }
   1283 
   1284 /** mark the entry for being in the cb_and_decommission stage */
   1285 static void mark_for_cb_and_decommission(rbnode_type* node,
   1286 	void* ATTR_UNUSED(arg))
   1287 {
   1288 	struct waiting_tcp* w = (struct waiting_tcp*)node->key;
   1289 	/* Mark the waiting_tcp to signal later code (serviced_delete) that
   1290 	 * this item is part of the backed up tree_by_id and will be deleted
   1291 	 * later. */
   1292 	w->in_cb_and_decommission = 1;
   1293 	/* Mark the serviced_query for deletion so that later code through
   1294 	 * callbacks (iter_clear .. outnet_serviced_query_stop) won't
   1295 	 * prematurely delete it. */
   1296 	if(w->cb)
   1297 		((struct serviced_query*)w->cb_arg)->to_be_deleted = 1;
   1298 }
   1299 
   1300 /** perform callbacks for failure and also decommission pending tcp.
   1301  * the callbacks remove references in sq->pending to the waiting_tcp
   1302  * members of the tree_by_id in the pending tcp.  The pending_tcp is
   1303  * removed before the callbacks, so that the callbacks do not modify
   1304  * the pending_tcp due to its reference in the outside_network reuse tree */
   1305 static void reuse_cb_and_decommission(struct outside_network* outnet,
   1306 	struct pending_tcp* pend, int error)
   1307 {
   1308 	rbtree_type store;
   1309 	store = pend->reuse.tree_by_id;
   1310 	pend->query = NULL;
   1311 	rbtree_init(&pend->reuse.tree_by_id, reuse_id_cmp);
   1312 	pend->reuse.write_wait_first = NULL;
   1313 	pend->reuse.write_wait_last = NULL;
   1314 	decommission_pending_tcp(outnet, pend);
   1315 	if(store.root != NULL && store.root != RBTREE_NULL) {
   1316 		traverse_postorder(&store, &mark_for_cb_and_decommission, NULL);
   1317 	}
   1318 	reuse_cb_readwait_for_failure(&store, error);
   1319 	reuse_del_readwait(&store);
   1320 }
   1321 
   1322 /** set timeout on tcp fd and setup read event to catch incoming dns msgs */
   1323 static void
   1324 reuse_tcp_setup_timeout(struct pending_tcp* pend_tcp, int tcp_reuse_timeout)
   1325 {
   1326 	log_reuse_tcp(VERB_CLIENT, "reuse_tcp_setup_timeout", &pend_tcp->reuse);
   1327 	comm_point_start_listening(pend_tcp->c, -1, tcp_reuse_timeout);
   1328 }
   1329 
   1330 /** set timeout on tcp fd and setup read event to catch incoming dns msgs */
   1331 static void
   1332 reuse_tcp_setup_read_and_timeout(struct pending_tcp* pend_tcp, int tcp_reuse_timeout)
   1333 {
   1334 	log_reuse_tcp(VERB_CLIENT, "reuse_tcp_setup_readtimeout", &pend_tcp->reuse);
   1335 	sldns_buffer_clear(pend_tcp->c->buffer);
   1336 	pend_tcp->c->tcp_is_reading = 1;
   1337 	pend_tcp->c->tcp_byte_count = 0;
   1338 	comm_point_stop_listening(pend_tcp->c);
   1339 	comm_point_start_listening(pend_tcp->c, -1, tcp_reuse_timeout);
   1340 }
   1341 
   1342 int
   1343 outnet_tcp_cb(struct comm_point* c, void* arg, int error,
   1344 	struct comm_reply *reply_info)
   1345 {
   1346 	struct pending_tcp* pend = (struct pending_tcp*)arg;
   1347 	struct outside_network* outnet = pend->reuse.outnet;
   1348 	struct waiting_tcp* w = NULL;
   1349 	log_assert(pend->reuse.item_on_lru_list && pend->reuse.node.key);
   1350 	verbose(VERB_ALGO, "outnettcp cb");
   1351 	if(error == NETEVENT_TIMEOUT) {
   1352 		if(pend->c->tcp_write_and_read) {
   1353 			verbose(VERB_QUERY, "outnettcp got tcp timeout "
   1354 				"for read, ignored because write underway");
   1355 			/* if we are writing, ignore readtimer, wait for write timer
   1356 			 * or write is done */
   1357 			return 0;
   1358 		} else {
   1359 			verbose(VERB_QUERY, "outnettcp got tcp timeout %s",
   1360 				(pend->reuse.tree_by_id.count?"for reading pkt":
   1361 				"for keepalive for reuse"));
   1362 		}
   1363 		/* must be timeout for reading or keepalive reuse,
   1364 		 * close it. */
   1365 		reuse_tcp_remove_tree_list(outnet, &pend->reuse);
   1366 	} else if(error == NETEVENT_PKT_WRITTEN) {
   1367 		/* the packet we want to write has been written. */
   1368 		verbose(VERB_ALGO, "outnet tcp pkt was written event");
   1369 		log_assert(c == pend->c);
   1370 		log_assert(pend->query->pkt == pend->c->tcp_write_pkt);
   1371 		log_assert(pend->query->pkt_len == pend->c->tcp_write_pkt_len);
   1372 		pend->c->tcp_write_pkt = NULL;
   1373 		pend->c->tcp_write_pkt_len = 0;
   1374 		/* the pend.query is already in tree_by_id */
   1375 		log_assert(pend->query->id_node.key);
   1376 		pend->query = NULL;
   1377 		/* setup to write next packet or setup read timeout */
   1378 		if(pend->reuse.write_wait_first) {
   1379 			verbose(VERB_ALGO, "outnet tcp setup next pkt");
   1380 			/* we can write it straight away perhaps, set flag
   1381 			 * because this callback called after a tcp write
   1382 			 * succeeded and likely more buffer space is available
   1383 			 * and we can write some more. */
   1384 			pend->reuse.cp_more_write_again = 1;
   1385 			pend->query = reuse_write_wait_pop(&pend->reuse);
   1386 			comm_point_stop_listening(pend->c);
   1387 			outnet_tcp_take_query_setup(pend->c->fd, pend,
   1388 				pend->query);
   1389 		} else {
   1390 			verbose(VERB_ALGO, "outnet tcp writes done, wait");
   1391 			pend->c->tcp_write_and_read = 0;
   1392 			pend->reuse.cp_more_read_again = 0;
   1393 			pend->reuse.cp_more_write_again = 0;
   1394 			pend->c->tcp_is_reading = 1;
   1395 			comm_point_stop_listening(pend->c);
   1396 			reuse_tcp_setup_timeout(pend, outnet->tcp_reuse_timeout);
   1397 		}
   1398 		return 0;
   1399 	} else if(error != NETEVENT_NOERROR) {
   1400 		verbose(VERB_QUERY, "outnettcp got tcp error %d", error);
   1401 		reuse_move_writewait_away(outnet, pend);
   1402 		/* pass error below and exit */
   1403 	} else {
   1404 		/* check ID */
   1405 		if(sldns_buffer_limit(c->buffer) < sizeof(uint16_t)) {
   1406 			log_addr(VERB_QUERY,
   1407 				"outnettcp: bad ID in reply, too short, from:",
   1408 				&pend->reuse.addr, pend->reuse.addrlen);
   1409 			error = NETEVENT_CLOSED;
   1410 		} else {
   1411 			uint16_t id = LDNS_ID_WIRE(sldns_buffer_begin(
   1412 				c->buffer));
   1413 			/* find the query the reply is for */
   1414 			w = reuse_tcp_by_id_find(&pend->reuse, id);
   1415 			/* Make sure that the reply we got is at least for a
   1416 			 * sent query with the same ID; the waiting_tcp that
   1417 			 * gets a reply is assumed to not be waiting to be
   1418 			 * sent. */
   1419 			if(w && (w->on_tcp_waiting_list || w->write_wait_queued))
   1420 				w = NULL;
   1421 		}
   1422 	}
   1423 	if(error == NETEVENT_NOERROR && !w) {
   1424 		/* no struct waiting found in tree, no reply to call */
   1425 		log_addr(VERB_QUERY, "outnettcp: bad ID in reply, from:",
   1426 			&pend->reuse.addr, pend->reuse.addrlen);
   1427 		error = NETEVENT_CLOSED;
   1428 	}
   1429 	if(error == NETEVENT_NOERROR) {
   1430 		/* add to reuse tree so it can be reused, if not a failure.
   1431 		 * This is possible if the state machine wants to make a tcp
   1432 		 * query again to the same destination. */
   1433 		if(outnet->tcp_reuse.count < outnet->tcp_reuse_max) {
   1434 			(void)reuse_tcp_insert(outnet, pend);
   1435 		}
   1436 	}
   1437 	if(w) {
   1438 		log_assert(!w->on_tcp_waiting_list);
   1439 		log_assert(!w->write_wait_queued);
   1440 		reuse_tree_by_id_delete(&pend->reuse, w);
   1441 		verbose(VERB_CLIENT, "outnet tcp callback query err %d buflen %d",
   1442 			error, (int)sldns_buffer_limit(c->buffer));
   1443 		waiting_tcp_callback(w, c, error, reply_info);
   1444 		waiting_tcp_delete(w);
   1445 	}
   1446 	verbose(VERB_CLIENT, "outnet_tcp_cb reuse after cb");
   1447 	if(error == NETEVENT_NOERROR && pend->reuse.node.key) {
   1448 		verbose(VERB_CLIENT, "outnet_tcp_cb reuse after cb: keep it");
   1449 		/* it is in the reuse_tcp tree, with other queries, or
   1450 		 * on the empty list. do not decommission it */
   1451 		/* if there are more outstanding queries, we could try to
   1452 		 * read again, to see if it is on the input,
   1453 		 * because this callback called after a successful read
   1454 		 * and there could be more bytes to read on the input */
   1455 		if(pend->reuse.tree_by_id.count != 0)
   1456 			pend->reuse.cp_more_read_again = 1;
   1457 		reuse_tcp_setup_read_and_timeout(pend, outnet->tcp_reuse_timeout);
   1458 		return 0;
   1459 	}
   1460 	verbose(VERB_CLIENT, "outnet_tcp_cb reuse after cb: decommission it");
   1461 	/* no queries on it, no space to keep it. or timeout or closed due
   1462 	 * to error.  Close it */
   1463 	reuse_cb_and_decommission(outnet, pend, (error==NETEVENT_TIMEOUT?
   1464 		NETEVENT_TIMEOUT:NETEVENT_CLOSED));
   1465 	use_free_buffer(outnet);
   1466 	return 0;
   1467 }
   1468 
   1469 /** lower use count on pc, see if it can be closed */
   1470 static void
   1471 portcomm_loweruse(struct outside_network* outnet, struct port_comm* pc)
   1472 {
   1473 	struct port_if* pif;
   1474 	pc->num_outstanding--;
   1475 	if(pc->num_outstanding > 0) {
   1476 		return;
   1477 	}
   1478 	/* close it and replace in unused list */
   1479 	verbose(VERB_ALGO, "close of port %d", pc->number);
   1480 	comm_point_close(pc->cp);
   1481 	pif = pc->pif;
   1482 	log_assert(pif->inuse > 0);
   1483 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   1484 	shared_ports_return_port(outnet->shared_ports, pif->shpif, pc->number);
   1485 #endif
   1486 	pif->inuse--;
   1487 	pif->out[pc->index] = pif->out[pif->inuse];
   1488 	pif->out[pc->index]->index = pc->index;
   1489 	pc->next = outnet->unused_fds;
   1490 	outnet->unused_fds = pc;
   1491 }
   1492 
   1493 /** try to send waiting UDP queries */
   1494 static void
   1495 outnet_send_wait_udp(struct outside_network* outnet)
   1496 {
   1497 	struct pending* pend;
   1498 	/* process waiting queries */
   1499 	while(outnet->udp_wait_first && outnet->unused_fds
   1500 		&& !outnet->want_to_quit) {
   1501 		pend = outnet->udp_wait_first;
   1502 		outnet->udp_wait_first = pend->next_waiting;
   1503 		if(!pend->next_waiting) outnet->udp_wait_last = NULL;
   1504 		sldns_buffer_clear(outnet->udp_buff);
   1505 		sldns_buffer_write(outnet->udp_buff, pend->pkt, pend->pkt_len);
   1506 		sldns_buffer_flip(outnet->udp_buff);
   1507 		free(pend->pkt); /* freeing now makes get_mem correct */
   1508 		pend->pkt = NULL;
   1509 		pend->pkt_len = 0;
   1510 		log_assert(!pend->sq->busy);
   1511 		pend->sq->busy = 1;
   1512 		if(!randomize_and_send_udp(pend, outnet->udp_buff,
   1513 			pend->timeout)) {
   1514 			/* callback error on pending */
   1515 			if(pend->cb) {
   1516 				fptr_ok(fptr_whitelist_pending_udp(pend->cb));
   1517 				(void)(*pend->cb)(outnet->unused_fds->cp, pend->cb_arg,
   1518 					NETEVENT_CLOSED, NULL);
   1519 			}
   1520 			pending_delete(outnet, pend);
   1521 		} else {
   1522 			pend->sq->busy = 0;
   1523 		}
   1524 	}
   1525 }
   1526 
   1527 int
   1528 outnet_udp_cb(struct comm_point* c, void* arg, int error,
   1529 	struct comm_reply *reply_info)
   1530 {
   1531 	struct outside_network* outnet = (struct outside_network*)arg;
   1532 	struct pending key;
   1533 	struct pending* p;
   1534 	verbose(VERB_ALGO, "answer cb");
   1535 
   1536 	if(error != NETEVENT_NOERROR) {
   1537 		verbose(VERB_QUERY, "outnetudp got udp error %d", error);
   1538 		return 0;
   1539 	}
   1540 	if(sldns_buffer_limit(c->buffer) < LDNS_HEADER_SIZE) {
   1541 		verbose(VERB_QUERY, "outnetudp udp too short");
   1542 		return 0;
   1543 	}
   1544 	log_assert(reply_info);
   1545 
   1546 	/* setup lookup key */
   1547 	key.id = (unsigned)LDNS_ID_WIRE(sldns_buffer_begin(c->buffer));
   1548 	memcpy(&key.addr, &reply_info->remote_addr, reply_info->remote_addrlen);
   1549 	key.addrlen = reply_info->remote_addrlen;
   1550 	verbose(VERB_ALGO, "Incoming reply id = %4.4x", key.id);
   1551 	log_addr(VERB_ALGO, "Incoming reply addr =",
   1552 		&reply_info->remote_addr, reply_info->remote_addrlen);
   1553 
   1554 	/* find it, see if this thing is a valid query response */
   1555 	verbose(VERB_ALGO, "lookup size is %d entries", (int)outnet->pending->count);
   1556 	p = (struct pending*)rbtree_search(outnet->pending, &key);
   1557 	if(!p) {
   1558 		verbose(VERB_QUERY, "received unwanted or unsolicited udp reply dropped.");
   1559 		log_buf(VERB_ALGO, "dropped message", c->buffer);
   1560 		outnet->unwanted_replies++;
   1561 		if(outnet->unwanted_threshold && ++outnet->unwanted_total
   1562 			>= outnet->unwanted_threshold) {
   1563 			log_warn("unwanted reply total reached threshold (%u)"
   1564 				" you may be under attack."
   1565 				" defensive action: clearing the cache",
   1566 				(unsigned)outnet->unwanted_threshold);
   1567 			fptr_ok(fptr_whitelist_alloc_cleanup(
   1568 				outnet->unwanted_action));
   1569 			(*outnet->unwanted_action)(outnet->unwanted_param);
   1570 			outnet->unwanted_total = 0;
   1571 		}
   1572 		return 0;
   1573 	}
   1574 
   1575 	verbose(VERB_ALGO, "received udp reply.");
   1576 	log_buf(VERB_ALGO, "udp message", c->buffer);
   1577 	if(p->pc->cp != c) {
   1578 		verbose(VERB_QUERY, "received reply id,addr on wrong port. "
   1579 			"dropped.");
   1580 		outnet->unwanted_replies++;
   1581 		if(outnet->unwanted_threshold && ++outnet->unwanted_total
   1582 			>= outnet->unwanted_threshold) {
   1583 			log_warn("unwanted reply total reached threshold (%u)"
   1584 				" you may be under attack."
   1585 				" defensive action: clearing the cache",
   1586 				(unsigned)outnet->unwanted_threshold);
   1587 			fptr_ok(fptr_whitelist_alloc_cleanup(
   1588 				outnet->unwanted_action));
   1589 			(*outnet->unwanted_action)(outnet->unwanted_param);
   1590 			outnet->unwanted_total = 0;
   1591 		}
   1592 		return 0;
   1593 	}
   1594 	comm_timer_disable(p->timer);
   1595 	verbose(VERB_ALGO, "outnet handle udp reply");
   1596 	/* delete from tree first in case callback creates a retry */
   1597 	(void)rbtree_delete(outnet->pending, p->node.key);
   1598 	if(p->cb) {
   1599 		fptr_ok(fptr_whitelist_pending_udp(p->cb));
   1600 		(void)(*p->cb)(p->pc->cp, p->cb_arg, NETEVENT_NOERROR, reply_info);
   1601 	}
   1602 	portcomm_loweruse(outnet, p->pc);
   1603 	pending_delete(NULL, p);
   1604 	outnet_send_wait_udp(outnet);
   1605 	return 0;
   1606 }
   1607 
   1608 /** calculate number of ip4 and ip6 interfaces*/
   1609 static void
   1610 calc_num46(char** ifs, int num_ifs, int do_ip4, int do_ip6,
   1611 	int* num_ip4, int* num_ip6)
   1612 {
   1613 	int i;
   1614 	*num_ip4 = 0;
   1615 	*num_ip6 = 0;
   1616 	if(num_ifs <= 0) {
   1617 		if(do_ip4)
   1618 			*num_ip4 = 1;
   1619 		if(do_ip6)
   1620 			*num_ip6 = 1;
   1621 		return;
   1622 	}
   1623 	for(i=0; i<num_ifs; i++)
   1624 	{
   1625 		if(str_is_ip6(ifs[i])) {
   1626 			if(do_ip6)
   1627 				(*num_ip6)++;
   1628 		} else {
   1629 			if(do_ip4)
   1630 				(*num_ip4)++;
   1631 		}
   1632 	}
   1633 }
   1634 
   1635 void
   1636 pending_udp_timer_delay_cb(void* arg)
   1637 {
   1638 	struct pending* p = (struct pending*)arg;
   1639 	struct outside_network* outnet = p->outnet;
   1640 	verbose(VERB_ALGO, "timeout udp with delay");
   1641 	portcomm_loweruse(outnet, p->pc);
   1642 	pending_delete(outnet, p);
   1643 	outnet_send_wait_udp(outnet);
   1644 }
   1645 
   1646 void
   1647 pending_udp_timer_cb(void *arg)
   1648 {
   1649 	struct pending* p = (struct pending*)arg;
   1650 	struct outside_network* outnet = p->outnet;
   1651 	/* it timed out */
   1652 	verbose(VERB_ALGO, "timeout udp");
   1653 	if(p->cb) {
   1654 		fptr_ok(fptr_whitelist_pending_udp(p->cb));
   1655 		(void)(*p->cb)(p->pc->cp, p->cb_arg, NETEVENT_TIMEOUT, NULL);
   1656 	}
   1657 	/* if delayclose, keep port open for a longer time.
   1658 	 * But if the udpwaitlist exists, then we are struggling to
   1659 	 * keep up with demand for sockets, so do not wait, but service
   1660 	 * the customer (customer service more important than portICMPs) */
   1661 	if(outnet->delayclose && !outnet->udp_wait_first) {
   1662 		p->cb = NULL;
   1663 		p->timer->callback = &pending_udp_timer_delay_cb;
   1664 		comm_timer_set(p->timer, &outnet->delay_tv);
   1665 		return;
   1666 	}
   1667 	portcomm_loweruse(outnet, p->pc);
   1668 	pending_delete(outnet, p);
   1669 	outnet_send_wait_udp(outnet);
   1670 }
   1671 
   1672 /** create pending_tcp buffers */
   1673 static int
   1674 create_pending_tcp(struct outside_network* outnet, size_t bufsize)
   1675 {
   1676 	size_t i;
   1677 	if(outnet->num_tcp == 0)
   1678 		return 1; /* no tcp needed, nothing to do */
   1679 	if(!(outnet->tcp_conns = (struct pending_tcp **)calloc(
   1680 			outnet->num_tcp, sizeof(struct pending_tcp*))))
   1681 		return 0;
   1682 	for(i=0; i<outnet->num_tcp; i++) {
   1683 		if(!(outnet->tcp_conns[i] = (struct pending_tcp*)calloc(1,
   1684 			sizeof(struct pending_tcp))))
   1685 			return 0;
   1686 		outnet->tcp_conns[i]->next_free = outnet->tcp_free;
   1687 		outnet->tcp_free = outnet->tcp_conns[i];
   1688 		outnet->tcp_conns[i]->c = comm_point_create_tcp_out(
   1689 			outnet->base, bufsize, outnet_tcp_cb,
   1690 			outnet->tcp_conns[i]);
   1691 		if(!outnet->tcp_conns[i]->c)
   1692 			return 0;
   1693 	}
   1694 	return 1;
   1695 }
   1696 
   1697 /** setup an outgoing interface, ready address */
   1698 static int setup_if(struct port_if* pif, const char* addrstr, size_t numfd,
   1699 	struct shared_ports* shp)
   1700 {
   1701 	if(!ipstrtoaddr(addrstr, UNBOUND_DNS_PORT, &pif->addr, &pif->addrlen) &&
   1702 	   !netblockstrtoaddr(addrstr, UNBOUND_DNS_PORT,
   1703 			      &pif->addr, &pif->addrlen, &pif->pfxlen))
   1704 		return 0;
   1705 #ifdef INT_MAX
   1706 	if(numfd > (size_t)INT_MAX) {
   1707 		log_err("num_ports exceeds INT_MAX");
   1708 		return 0;
   1709 	}
   1710 #endif
   1711 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   1712 	pif->shpif = shared_ports_find_if(shp, &pif->addr, pif->addrlen,
   1713 		pif->pfxlen);
   1714 #else
   1715 	(void)shp;
   1716 #endif
   1717 	pif->maxout = (int)numfd;
   1718 	pif->inuse = 0;
   1719 	pif->out = (struct port_comm**)calloc(numfd,
   1720 		sizeof(struct port_comm*));
   1721 	if(!pif->out)
   1722 		return 0;
   1723 	return 1;
   1724 }
   1725 
   1726 struct outside_network*
   1727 outside_network_create(struct comm_base *base, size_t bufsize,
   1728 	size_t num_ports, char** ifs, int num_ifs, int do_ip4,
   1729 	int do_ip6, size_t num_tcp, int dscp, struct infra_cache* infra,
   1730 	struct ub_randstate* rnd, int use_caps_for_id,
   1731 	size_t unwanted_threshold, int tcp_mss,
   1732 	void (*unwanted_action)(void*), void* unwanted_param, int do_udp,
   1733 	void* sslctx, int delayclose, int tls_use_sni, struct dt_env* dtenv,
   1734 	int udp_connect, int max_reuse_tcp_queries, int tcp_reuse_timeout,
   1735 	int tcp_auth_query_timeout, struct shared_ports* shared_ports)
   1736 {
   1737 	struct outside_network* outnet = (struct outside_network*)
   1738 		calloc(1, sizeof(struct outside_network));
   1739 	size_t k;
   1740 	if(!outnet) {
   1741 		log_err("malloc failed");
   1742 		return NULL;
   1743 	}
   1744 	comm_base_timept(base, &outnet->now_secs, &outnet->now_tv);
   1745 	outnet->base = base;
   1746 	outnet->num_tcp = num_tcp;
   1747 	outnet->max_reuse_tcp_queries = max_reuse_tcp_queries;
   1748 	outnet->tcp_reuse_timeout= tcp_reuse_timeout;
   1749 	outnet->tcp_auth_query_timeout = tcp_auth_query_timeout;
   1750 	outnet->num_tcp_outgoing = 0;
   1751 	outnet->num_udp_outgoing = 0;
   1752 	outnet->infra = infra;
   1753 	outnet->rnd = rnd;
   1754 	outnet->sslctx = sslctx;
   1755 	outnet->tls_use_sni = tls_use_sni;
   1756 #ifdef USE_DNSTAP
   1757 	outnet->dtenv = dtenv;
   1758 #else
   1759 	(void)dtenv;
   1760 #endif
   1761 	outnet->svcd_overhead = 0;
   1762 	outnet->want_to_quit = 0;
   1763 	outnet->unwanted_threshold = unwanted_threshold;
   1764 	outnet->unwanted_action = unwanted_action;
   1765 	outnet->unwanted_param = unwanted_param;
   1766 	outnet->use_caps_for_id = use_caps_for_id;
   1767 	outnet->do_udp = do_udp;
   1768 	outnet->tcp_mss = tcp_mss;
   1769 	outnet->ip_dscp = dscp;
   1770 	outnet->shared_ports = shared_ports;
   1771 #ifndef S_SPLINT_S
   1772 	if(delayclose) {
   1773 		outnet->delayclose = 1;
   1774 		outnet->delay_tv.tv_sec = delayclose/1000;
   1775 		outnet->delay_tv.tv_usec = (delayclose%1000)*1000;
   1776 	}
   1777 #endif
   1778 	if(udp_connect) {
   1779 		outnet->udp_connect = 1;
   1780 	}
   1781 	if(num_ports == 0) {
   1782 		log_err("no outgoing ports available");
   1783 		outside_network_delete(outnet);
   1784 		return NULL;
   1785 	}
   1786 #ifdef INT_MAX
   1787 	if(num_ports > (size_t)INT_MAX) {
   1788 		log_err("outgoing num_ports exceeds INT_MAX");
   1789 		outside_network_delete(outnet);
   1790 		return NULL;
   1791 	}
   1792 #endif
   1793 #ifndef INET6
   1794 	do_ip6 = 0;
   1795 #endif
   1796 	calc_num46(ifs, num_ifs, do_ip4, do_ip6,
   1797 		&outnet->num_ip4, &outnet->num_ip6);
   1798 	if(outnet->num_ip4 != 0) {
   1799 		if(!(outnet->ip4_ifs = (struct port_if*)calloc(
   1800 			(size_t)outnet->num_ip4, sizeof(struct port_if)))) {
   1801 			log_err("malloc failed");
   1802 			outside_network_delete(outnet);
   1803 			return NULL;
   1804 		}
   1805 	}
   1806 	if(outnet->num_ip6 != 0) {
   1807 		if(!(outnet->ip6_ifs = (struct port_if*)calloc(
   1808 			(size_t)outnet->num_ip6, sizeof(struct port_if)))) {
   1809 			log_err("malloc failed");
   1810 			outside_network_delete(outnet);
   1811 			return NULL;
   1812 		}
   1813 	}
   1814 	if(	!(outnet->udp_buff = sldns_buffer_new(bufsize)) ||
   1815 		!(outnet->pending = rbtree_create(pending_cmp)) ||
   1816 		!(outnet->serviced = rbtree_create(serviced_cmp)) ||
   1817 		!create_pending_tcp(outnet, bufsize)) {
   1818 		log_err("malloc failed");
   1819 		outside_network_delete(outnet);
   1820 		return NULL;
   1821 	}
   1822 	rbtree_init(&outnet->tcp_reuse, reuse_cmp);
   1823 	outnet->tcp_reuse_max = num_tcp;
   1824 
   1825 	/* allocate commpoints */
   1826 	for(k=0; k<num_ports; k++) {
   1827 		struct port_comm* pc;
   1828 		pc = (struct port_comm*)calloc(1, sizeof(*pc));
   1829 		if(!pc) {
   1830 			log_err("malloc failed");
   1831 			outside_network_delete(outnet);
   1832 			return NULL;
   1833 		}
   1834 		pc->cp = comm_point_create_udp(outnet->base, -1,
   1835 			outnet->udp_buff, 0, outnet_udp_cb, outnet, NULL);
   1836 		if(!pc->cp) {
   1837 			log_err("malloc failed");
   1838 			free(pc);
   1839 			outside_network_delete(outnet);
   1840 			return NULL;
   1841 		}
   1842 		pc->next = outnet->unused_fds;
   1843 		outnet->unused_fds = pc;
   1844 	}
   1845 
   1846 	/* allocate interfaces */
   1847 	if(num_ifs == 0) {
   1848 		if(do_ip4 && !setup_if(&outnet->ip4_ifs[0], "0.0.0.0",
   1849 			num_ports, outnet->shared_ports)) {
   1850 			log_err("malloc failed");
   1851 			outside_network_delete(outnet);
   1852 			return NULL;
   1853 		}
   1854 		if(do_ip6 && !setup_if(&outnet->ip6_ifs[0], "::",
   1855 			num_ports, outnet->shared_ports)) {
   1856 			log_err("malloc failed");
   1857 			outside_network_delete(outnet);
   1858 			return NULL;
   1859 		}
   1860 	} else {
   1861 		size_t done_4 = 0, done_6 = 0;
   1862 		int i;
   1863 		for(i=0; i<num_ifs; i++) {
   1864 			if(str_is_ip6(ifs[i]) && do_ip6) {
   1865 				if(!setup_if(&outnet->ip6_ifs[done_6], ifs[i],
   1866 					num_ports, outnet->shared_ports)){
   1867 					log_err("malloc failed");
   1868 					outside_network_delete(outnet);
   1869 					return NULL;
   1870 				}
   1871 				done_6++;
   1872 			}
   1873 			if(!str_is_ip6(ifs[i]) && do_ip4) {
   1874 				if(!setup_if(&outnet->ip4_ifs[done_4], ifs[i],
   1875 					num_ports, outnet->shared_ports)){
   1876 					log_err("malloc failed");
   1877 					outside_network_delete(outnet);
   1878 					return NULL;
   1879 				}
   1880 				done_4++;
   1881 			}
   1882 		}
   1883 	}
   1884 	return outnet;
   1885 }
   1886 
   1887 /** helper pending delete */
   1888 static void
   1889 pending_node_del(rbnode_type* node, void* arg)
   1890 {
   1891 	struct pending* pend = (struct pending*)node;
   1892 	struct outside_network* outnet = (struct outside_network*)arg;
   1893 	pending_delete(outnet, pend);
   1894 }
   1895 
   1896 /** helper serviced delete */
   1897 static void
   1898 serviced_node_del(rbnode_type* node, void* ATTR_UNUSED(arg))
   1899 {
   1900 	struct serviced_query* sq = (struct serviced_query*)node;
   1901 	alloc_reg_release(sq->alloc, sq->region);
   1902 	if(sq->timer)
   1903 		comm_timer_delete(sq->timer);
   1904 	free(sq);
   1905 }
   1906 
   1907 void
   1908 outside_network_quit_prepare(struct outside_network* outnet)
   1909 {
   1910 	if(!outnet)
   1911 		return;
   1912 	/* prevent queued items from being sent */
   1913 	outnet->want_to_quit = 1;
   1914 }
   1915 
   1916 void
   1917 outside_network_delete(struct outside_network* outnet)
   1918 {
   1919 	if(!outnet)
   1920 		return;
   1921 	outnet->want_to_quit = 1;
   1922 	/* check every element, since we can be called on malloc error */
   1923 	if(outnet->pending) {
   1924 		/* free pending elements, but do no unlink from tree. */
   1925 		traverse_postorder(outnet->pending, pending_node_del, NULL);
   1926 		free(outnet->pending);
   1927 	}
   1928 	if(outnet->serviced) {
   1929 		traverse_postorder(outnet->serviced, serviced_node_del, NULL);
   1930 		free(outnet->serviced);
   1931 	}
   1932 	if(outnet->udp_buff)
   1933 		sldns_buffer_free(outnet->udp_buff);
   1934 	if(outnet->unused_fds) {
   1935 		struct port_comm* p = outnet->unused_fds, *np;
   1936 		while(p) {
   1937 			np = p->next;
   1938 			comm_point_delete(p->cp);
   1939 			free(p);
   1940 			p = np;
   1941 		}
   1942 		outnet->unused_fds = NULL;
   1943 	}
   1944 	if(outnet->ip4_ifs) {
   1945 		int i, k;
   1946 		for(i=0; i<outnet->num_ip4; i++) {
   1947 			for(k=0; k<outnet->ip4_ifs[i].inuse; k++) {
   1948 				struct port_comm* pc = outnet->ip4_ifs[i].
   1949 					out[k];
   1950 				comm_point_delete(pc->cp);
   1951 				free(pc);
   1952 			}
   1953 			free(outnet->ip4_ifs[i].out);
   1954 		}
   1955 		free(outnet->ip4_ifs);
   1956 	}
   1957 	if(outnet->ip6_ifs) {
   1958 		int i, k;
   1959 		for(i=0; i<outnet->num_ip6; i++) {
   1960 			for(k=0; k<outnet->ip6_ifs[i].inuse; k++) {
   1961 				struct port_comm* pc = outnet->ip6_ifs[i].
   1962 					out[k];
   1963 				comm_point_delete(pc->cp);
   1964 				free(pc);
   1965 			}
   1966 			free(outnet->ip6_ifs[i].out);
   1967 		}
   1968 		free(outnet->ip6_ifs);
   1969 	}
   1970 	if(outnet->tcp_conns) {
   1971 		size_t i;
   1972 		for(i=0; i<outnet->num_tcp; i++)
   1973 			if(outnet->tcp_conns[i]) {
   1974 				struct pending_tcp* pend;
   1975 				pend = outnet->tcp_conns[i];
   1976 				if(pend->reuse.item_on_lru_list) {
   1977 					/* delete waiting_tcp elements that
   1978 					 * the tcp conn is working on */
   1979 					decommission_pending_tcp(outnet, pend);
   1980 				}
   1981 				if(pend->reuse.tls_auth_name) {
   1982 					free(pend->reuse.tls_auth_name);
   1983 					pend->reuse.tls_auth_name = NULL;
   1984 				}
   1985 				comm_point_delete(outnet->tcp_conns[i]->c);
   1986 				free(outnet->tcp_conns[i]);
   1987 				outnet->tcp_conns[i] = NULL;
   1988 			}
   1989 		free(outnet->tcp_conns);
   1990 		outnet->tcp_conns = NULL;
   1991 	}
   1992 	if(outnet->tcp_wait_first) {
   1993 		struct waiting_tcp* p = outnet->tcp_wait_first, *np;
   1994 		while(p) {
   1995 			np = p->next_waiting;
   1996 			waiting_tcp_delete(p);
   1997 			p = np;
   1998 		}
   1999 	}
   2000 	/* was allocated in struct pending that was deleted above */
   2001 	rbtree_init(&outnet->tcp_reuse, reuse_cmp);
   2002 	outnet->tcp_reuse_first = NULL;
   2003 	outnet->tcp_reuse_last = NULL;
   2004 	if(outnet->udp_wait_first) {
   2005 		struct pending* p = outnet->udp_wait_first, *np;
   2006 		while(p) {
   2007 			np = p->next_waiting;
   2008 			pending_delete(NULL, p);
   2009 			p = np;
   2010 		}
   2011 	}
   2012 	free(outnet);
   2013 }
   2014 
   2015 void
   2016 pending_delete(struct outside_network* outnet, struct pending* p)
   2017 {
   2018 	if(!p)
   2019 		return;
   2020 	if(outnet && outnet->udp_wait_first &&
   2021 		(p->next_waiting || p == outnet->udp_wait_last) ) {
   2022 		/* delete from waiting list, if it is in the waiting list */
   2023 		struct pending* prev = NULL, *x = outnet->udp_wait_first;
   2024 		while(x && x != p) {
   2025 			prev = x;
   2026 			x = x->next_waiting;
   2027 		}
   2028 		if(x) {
   2029 			log_assert(x == p);
   2030 			if(prev)
   2031 				prev->next_waiting = p->next_waiting;
   2032 			else	outnet->udp_wait_first = p->next_waiting;
   2033 			if(outnet->udp_wait_last == p)
   2034 				outnet->udp_wait_last = prev;
   2035 		}
   2036 	}
   2037 	if(outnet) {
   2038 		(void)rbtree_delete(outnet->pending, p->node.key);
   2039 	}
   2040 	if(p->timer)
   2041 		comm_timer_delete(p->timer);
   2042 	free(p->pkt);
   2043 	free(p);
   2044 }
   2045 
   2046 static void
   2047 sai6_putrandom(struct sockaddr_in6 *sa, int pfxlen, struct ub_randstate *rnd)
   2048 {
   2049 	int i, last;
   2050 	if(!(pfxlen > 0 && pfxlen < 128))
   2051 		return;
   2052 	for(i = 0; i < (128 - pfxlen) / 8; i++) {
   2053 		sa->sin6_addr.s6_addr[15-i] = (uint8_t)ub_random_max(rnd, 256);
   2054 	}
   2055 	last = pfxlen & 7;
   2056 	if(last != 0) {
   2057 		sa->sin6_addr.s6_addr[15-i] |=
   2058 			((0xFF >> last) & ub_random_max(rnd, 256));
   2059 	}
   2060 }
   2061 
   2062 /**
   2063  * Try to open a UDP socket for outgoing communication.
   2064  * Sets sockets options as needed.
   2065  * @param addr: socket address.
   2066  * @param addrlen: length of address.
   2067  * @param pfxlen: length of network prefix (for address randomisation).
   2068  * @param port: port override for addr.
   2069  * @param inuse: if -1 is returned, this bool means the port was in use.
   2070  * @param rnd: random state (for address randomisation).
   2071  * @param dscp: DSCP to use.
   2072  * @return fd or -1
   2073  */
   2074 static int
   2075 udp_sockport(struct sockaddr_storage* addr, socklen_t addrlen, int pfxlen,
   2076 	int port, int* inuse, struct ub_randstate* rnd, int dscp)
   2077 {
   2078 	int fd, noproto;
   2079 	if(addr_is_ip6(addr, addrlen)) {
   2080 		int freebind = 0;
   2081 		struct sockaddr_in6 sa = *(struct sockaddr_in6*)addr;
   2082 		sa.sin6_port = (in_port_t)htons((uint16_t)port);
   2083 		sa.sin6_flowinfo = 0;
   2084 		sa.sin6_scope_id = 0;
   2085 		if(pfxlen != 0) {
   2086 			freebind = 1;
   2087 			sai6_putrandom(&sa, pfxlen, rnd);
   2088 		}
   2089 		fd = create_udp_sock(AF_INET6, SOCK_DGRAM,
   2090 			(struct sockaddr*)&sa, addrlen, 1, inuse, &noproto,
   2091 			0, 0, 0, NULL, 0, freebind, 0, dscp);
   2092 	} else {
   2093 		struct sockaddr_in* sa = (struct sockaddr_in*)addr;
   2094 		sa->sin_port = (in_port_t)htons((uint16_t)port);
   2095 		fd = create_udp_sock(AF_INET, SOCK_DGRAM,
   2096 			(struct sockaddr*)addr, addrlen, 1, inuse, &noproto,
   2097 			0, 0, 0, NULL, 0, 0, 0, dscp);
   2098 	}
   2099 	return fd;
   2100 }
   2101 
   2102 /** Select random ID */
   2103 static int
   2104 select_id(struct outside_network* outnet, struct pending* pend,
   2105 	sldns_buffer* packet)
   2106 {
   2107 	int id_tries = 0;
   2108 	pend->id = GET_RANDOM_ID(outnet->rnd);
   2109 	LDNS_ID_SET(sldns_buffer_begin(packet), pend->id);
   2110 
   2111 	/* insert in tree */
   2112 	pend->node.key = pend;
   2113 	while(!rbtree_insert(outnet->pending, &pend->node)) {
   2114 		/* change ID to avoid collision */
   2115 		pend->id = GET_RANDOM_ID(outnet->rnd);
   2116 		LDNS_ID_SET(sldns_buffer_begin(packet), pend->id);
   2117 		id_tries++;
   2118 		if(id_tries == MAX_ID_RETRY) {
   2119 			pend->id=99999; /* non existent ID */
   2120 			log_err("failed to generate unique ID, drop msg");
   2121 			return 0;
   2122 		}
   2123 	}
   2124 	verbose(VERB_ALGO, "inserted new pending reply id=%4.4x", pend->id);
   2125 	return 1;
   2126 }
   2127 
   2128 /** return true is UDP connect error needs to be logged */
   2129 static int udp_connect_needs_log(int err, struct sockaddr_storage* addr,
   2130 	socklen_t addrlen)
   2131 {
   2132 	switch(err) {
   2133 	case ECONNREFUSED:
   2134 #  ifdef ENETUNREACH
   2135 	case ENETUNREACH:
   2136 #  endif
   2137 #  ifdef EHOSTDOWN
   2138 	case EHOSTDOWN:
   2139 #  endif
   2140 #  ifdef EHOSTUNREACH
   2141 	case EHOSTUNREACH:
   2142 #  endif
   2143 #  ifdef ENETDOWN
   2144 	case ENETDOWN:
   2145 #  endif
   2146 #  ifdef EADDRNOTAVAIL
   2147 	case EADDRNOTAVAIL:
   2148 #  endif
   2149 	case EPERM:
   2150 	case EACCES:
   2151 		if(verbosity >= VERB_ALGO)
   2152 			return 1;
   2153 		return 0;
   2154 	case EINVAL:
   2155 		/* Stop 'Invalid argument for fe80::/10' addresses appearing
   2156 		 * in the logs, at low verbosity. They cannot be sent to. */
   2157 		if(addr_is_ip6linklocal(addr, addrlen)) {
   2158 			if(verbosity >= VERB_ALGO)
   2159 				return 1;
   2160 			return 0;
   2161 		}
   2162 		break;
   2163 	default:
   2164 		break;
   2165 	}
   2166 	return 1;
   2167 }
   2168 
   2169 
   2170 /** Select random interface and port */
   2171 static int
   2172 select_ifport(struct outside_network* outnet, struct pending* pend,
   2173 	int num_if, struct port_if* ifs)
   2174 {
   2175 	int my_if, fd, portno, inuse, tries=0;
   2176 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   2177 	int reused;
   2178 #endif
   2179 	struct port_if* pif;
   2180 	/* randomly select interface and port */
   2181 	if(num_if == 0) {
   2182 		verbose(VERB_QUERY, "Need to send query but have no "
   2183 			"outgoing interfaces of that family");
   2184 		return 0;
   2185 	}
   2186 	log_assert(outnet->unused_fds);
   2187 	tries = 0;
   2188 	while(1) {
   2189 		my_if = ub_random_max(outnet->rnd, num_if);
   2190 		pif = &ifs[my_if];
   2191 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   2192 		if(!shared_ports_fetch_random(outnet->shared_ports,
   2193 			pif->shpif, outnet->rnd, outnet->udp_connect,
   2194 			pif->inuse, &portno, &reused)) {
   2195 			tries++;
   2196 			if(tries < MAX_PORT_RETRY)
   2197 				continue;
   2198 			log_err("failed to find an open port, drop msg");
   2199 			return 0;
   2200 		}
   2201 		if(reused) {
   2202 			/* port already open */
   2203 			log_assert(portno < pif->inuse);
   2204 			pend->pc = pif->out[portno];
   2205 			verbose(VERB_ALGO, "using UDP if=%d port=%d",
   2206 				my_if, pend->pc->number);
   2207 			break;
   2208 		}
   2209 #else
   2210 		portno = 0;
   2211 #endif
   2212 		/* try to open new port, if fails, loop to try again */
   2213 		fd = udp_sockport(&pif->addr, pif->addrlen, pif->pfxlen,
   2214 			portno, &inuse, outnet->rnd, outnet->ip_dscp);
   2215 		if(fd == -1 && !inuse) {
   2216 			/* nonrecoverable error making socket */
   2217 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   2218 			shared_ports_return_port(outnet->shared_ports,
   2219 				pif->shpif, portno);
   2220 #endif
   2221 			return 0;
   2222 		}
   2223 		if(fd != -1) {
   2224 			verbose(VERB_ALGO, "opened UDP if=%d port=%d",
   2225 				my_if, portno);
   2226 			if(outnet->udp_connect) {
   2227 				/* connect() to the destination */
   2228 				if(connect(fd, (struct sockaddr*)&pend->addr,
   2229 					pend->addrlen) < 0) {
   2230 					if(udp_connect_needs_log(errno,
   2231 						&pend->addr, pend->addrlen)) {
   2232 						log_err_addr("udp connect failed",
   2233 							strerror(errno), &pend->addr,
   2234 							pend->addrlen);
   2235 					}
   2236 					sock_close(fd);
   2237 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   2238 					shared_ports_return_port(
   2239 						outnet->shared_ports,
   2240 						pif->shpif, portno);
   2241 #endif
   2242 					return 0;
   2243 				}
   2244 			}
   2245 			/* grab fd */
   2246 			pend->pc = outnet->unused_fds;
   2247 			outnet->unused_fds = pend->pc->next;
   2248 
   2249 			/* setup portcomm */
   2250 			pend->pc->next = NULL;
   2251 			pend->pc->number = portno;
   2252 			pend->pc->pif = pif;
   2253 			pend->pc->index = pif->inuse;
   2254 			pend->pc->num_outstanding = 0;
   2255 			comm_point_start_listening(pend->pc->cp, fd, -1);
   2256 
   2257 			/* grab port in interface */
   2258 			pif->out[pif->inuse] = pend->pc;
   2259 			pif->inuse++;
   2260 			break;
   2261 		}
   2262 		/* failed, already in use */
   2263 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   2264 		shared_ports_return_port(outnet->shared_ports, pif->shpif,
   2265 			portno);
   2266 #endif
   2267 		verbose(VERB_QUERY, "port %d in use, trying another", portno);
   2268 		tries++;
   2269 		if(tries == MAX_PORT_RETRY) {
   2270 			log_err("failed to find an open port, drop msg");
   2271 			return 0;
   2272 		}
   2273 	}
   2274 	log_assert(pend->pc);
   2275 	pend->pc->num_outstanding++;
   2276 
   2277 	return 1;
   2278 }
   2279 
   2280 static int
   2281 randomize_and_send_udp(struct pending* pend, sldns_buffer* packet, int timeout)
   2282 {
   2283 	struct timeval tv;
   2284 	struct outside_network* outnet = pend->sq->outnet;
   2285 
   2286 	/* select id */
   2287 	if(!select_id(outnet, pend, packet)) {
   2288 		return 0;
   2289 	}
   2290 
   2291 	/* select src_if, port */
   2292 	if(addr_is_ip6(&pend->addr, pend->addrlen)) {
   2293 		if(!select_ifport(outnet, pend,
   2294 			outnet->num_ip6, outnet->ip6_ifs))
   2295 			return 0;
   2296 	} else {
   2297 		if(!select_ifport(outnet, pend,
   2298 			outnet->num_ip4, outnet->ip4_ifs))
   2299 			return 0;
   2300 	}
   2301 	log_assert(pend->pc && pend->pc->cp);
   2302 
   2303 	/* send it over the commlink */
   2304 	if(!comm_point_send_udp_msg(pend->pc->cp, packet,
   2305 		(struct sockaddr*)&pend->addr, pend->addrlen, outnet->udp_connect)) {
   2306 		portcomm_loweruse(outnet, pend->pc);
   2307 		return 0;
   2308 	}
   2309 	outnet->num_udp_outgoing++;
   2310 
   2311 	/* system calls to set timeout after sending UDP to make roundtrip
   2312 	   smaller. */
   2313 #ifndef S_SPLINT_S
   2314 	tv.tv_sec = timeout/1000;
   2315 	tv.tv_usec = (timeout%1000)*1000;
   2316 #endif
   2317 	comm_timer_set(pend->timer, &tv);
   2318 
   2319 #ifdef USE_DNSTAP
   2320 	/*
   2321 	 * sending src (local service)/dst (upstream) addresses over DNSTAP
   2322 	 * There are no chances to get the src (local service) addr if unbound
   2323 	 * is not configured with specific outgoing IP-addresses. So we will
   2324 	 * pass 0.0.0.0 (::) to argument for
   2325 	 * dt_msg_send_outside_query()/dt_msg_send_outside_response() calls.
   2326 	 */
   2327 	if(outnet->dtenv &&
   2328 	   (outnet->dtenv->log_resolver_query_messages ||
   2329 		outnet->dtenv->log_forwarder_query_messages)) {
   2330 			log_addr(VERB_ALGO, "from local addr", &pend->pc->pif->addr, pend->pc->pif->addrlen);
   2331 			log_addr(VERB_ALGO, "request to upstream", &pend->addr, pend->addrlen);
   2332 			dt_msg_send_outside_query(outnet->dtenv, &pend->addr, &pend->pc->pif->addr, comm_udp, NULL,
   2333 				pend->sq->zone, pend->sq->zonelen, packet);
   2334 	}
   2335 #endif
   2336 	return 1;
   2337 }
   2338 
   2339 struct pending*
   2340 pending_udp_query(struct serviced_query* sq, struct sldns_buffer* packet,
   2341 	int timeout, comm_point_callback_type* cb, void* cb_arg)
   2342 {
   2343 	struct pending* pend = (struct pending*)calloc(1, sizeof(*pend));
   2344 	if(!pend) return NULL;
   2345 	pend->outnet = sq->outnet;
   2346 	pend->sq = sq;
   2347 	pend->addrlen = sq->addrlen;
   2348 	memmove(&pend->addr, &sq->addr, sq->addrlen);
   2349 	pend->cb = cb;
   2350 	pend->cb_arg = cb_arg;
   2351 	pend->node.key = pend;
   2352 	pend->timer = comm_timer_create(sq->outnet->base, pending_udp_timer_cb,
   2353 		pend);
   2354 	if(!pend->timer) {
   2355 		free(pend);
   2356 		return NULL;
   2357 	}
   2358 
   2359 	if(sq->outnet->unused_fds == NULL) {
   2360 		/* no unused fd, cannot create a new port (randomly) */
   2361 		verbose(VERB_ALGO, "no fds available, udp query waiting");
   2362 		pend->timeout = timeout;
   2363 		pend->pkt_len = sldns_buffer_limit(packet);
   2364 		pend->pkt = (uint8_t*)memdup(sldns_buffer_begin(packet),
   2365 			pend->pkt_len);
   2366 		if(!pend->pkt) {
   2367 			comm_timer_delete(pend->timer);
   2368 			free(pend);
   2369 			return NULL;
   2370 		}
   2371 		/* put at end of waiting list */
   2372 		if(sq->outnet->udp_wait_last)
   2373 			sq->outnet->udp_wait_last->next_waiting = pend;
   2374 		else
   2375 			sq->outnet->udp_wait_first = pend;
   2376 		sq->outnet->udp_wait_last = pend;
   2377 		return pend;
   2378 	}
   2379 	log_assert(!sq->busy);
   2380 	sq->busy = 1;
   2381 	if(!randomize_and_send_udp(pend, packet, timeout)) {
   2382 		pending_delete(sq->outnet, pend);
   2383 		return NULL;
   2384 	}
   2385 	sq->busy = 0;
   2386 	return pend;
   2387 }
   2388 
   2389 void
   2390 outnet_tcptimer(void* arg)
   2391 {
   2392 	struct waiting_tcp* w = (struct waiting_tcp*)arg;
   2393 	struct outside_network* outnet = w->outnet;
   2394 	verbose(VERB_CLIENT, "outnet_tcptimer");
   2395 	if(w->on_tcp_waiting_list) {
   2396 		/* it is on the waiting list */
   2397 		outnet_waiting_tcp_list_remove(outnet, w);
   2398 		waiting_tcp_callback(w, NULL, NETEVENT_TIMEOUT, NULL);
   2399 		waiting_tcp_delete(w);
   2400 	} else {
   2401 		/* it was in use */
   2402 		struct pending_tcp* pend=(struct pending_tcp*)w->next_waiting;
   2403 		reuse_cb_and_decommission(outnet, pend, NETEVENT_TIMEOUT);
   2404 	}
   2405 	use_free_buffer(outnet);
   2406 }
   2407 
   2408 /** close the oldest reuse_tcp connection to make a fd and struct pend
   2409  * available for a new stream connection */
   2410 static void
   2411 reuse_tcp_close_oldest(struct outside_network* outnet)
   2412 {
   2413 	struct reuse_tcp* reuse;
   2414 	verbose(VERB_CLIENT, "reuse_tcp_close_oldest");
   2415 	reuse = reuse_tcp_lru_snip(outnet);
   2416 	if(!reuse) return;
   2417 	/* free up */
   2418 	reuse_cb_and_decommission(outnet, reuse->pending, NETEVENT_CLOSED);
   2419 }
   2420 
   2421 static uint16_t
   2422 tcp_select_id(struct outside_network* outnet, struct reuse_tcp* reuse)
   2423 {
   2424 	if(reuse)
   2425 		return reuse_tcp_select_id(reuse, outnet);
   2426 	return GET_RANDOM_ID(outnet->rnd);
   2427 }
   2428 
   2429 /** find spare ID value for reuse tcp stream.  That is random and also does
   2430  * not collide with an existing query ID that is in use or waiting */
   2431 uint16_t
   2432 reuse_tcp_select_id(struct reuse_tcp* reuse, struct outside_network* outnet)
   2433 {
   2434 	uint16_t id = 0, curid, nextid;
   2435 	const int try_random = 2000;
   2436 	int i;
   2437 	unsigned select, count, space;
   2438 	rbnode_type* node;
   2439 
   2440 	/* make really sure the tree is not empty */
   2441 	if(reuse->tree_by_id.count == 0) {
   2442 		id = GET_RANDOM_ID(outnet->rnd);
   2443 		return id;
   2444 	}
   2445 
   2446 	/* try to find random empty spots by picking them */
   2447 	for(i = 0; i<try_random; i++) {
   2448 		id = GET_RANDOM_ID(outnet->rnd);
   2449 		if(!reuse_tcp_by_id_find(reuse, id)) {
   2450 			return id;
   2451 		}
   2452 	}
   2453 
   2454 	/* equally pick a random unused element from the tree that is
   2455 	 * not in use.  Pick a the n-th index of an unused number,
   2456 	 * then loop over the empty spaces in the tree and find it */
   2457 	log_assert(reuse->tree_by_id.count < 0xffff);
   2458 	select = ub_random_max(outnet->rnd, 0xffff - reuse->tree_by_id.count);
   2459 	/* select value now in 0 .. num free - 1 */
   2460 
   2461 	count = 0; /* number of free spaces passed by */
   2462 	node = rbtree_first(&reuse->tree_by_id);
   2463 	log_assert(node && node != RBTREE_NULL); /* tree not empty */
   2464 	/* see if select is before first node */
   2465 	if(select < (unsigned)tree_by_id_get_id(node))
   2466 		return select;
   2467 	count += tree_by_id_get_id(node);
   2468 	/* perhaps select is between nodes */
   2469 	while(node && node != RBTREE_NULL) {
   2470 		rbnode_type* next = rbtree_next(node);
   2471 		if(next && next != RBTREE_NULL) {
   2472 			curid = tree_by_id_get_id(node);
   2473 			nextid = tree_by_id_get_id(next);
   2474 			log_assert(curid < nextid);
   2475 			if(curid != 0xffff && curid + 1 < nextid) {
   2476 				/* space between nodes */
   2477 				space = nextid - curid - 1;
   2478 				log_assert(select >= count);
   2479 				if(select < count + space) {
   2480 					/* here it is */
   2481 					return curid + 1 + (select - count);
   2482 				}
   2483 				count += space;
   2484 			}
   2485 		}
   2486 		node = next;
   2487 	}
   2488 
   2489 	/* select is after the last node */
   2490 	/* count is the number of free positions before the nodes in the
   2491 	 * tree */
   2492 	node = rbtree_last(&reuse->tree_by_id);
   2493 	log_assert(node && node != RBTREE_NULL); /* tree not empty */
   2494 	curid = tree_by_id_get_id(node);
   2495 	log_assert(count + (0xffff-curid) + reuse->tree_by_id.count == 0xffff);
   2496 	return curid + 1 + (select - count);
   2497 }
   2498 
   2499 struct waiting_tcp*
   2500 pending_tcp_query(struct serviced_query* sq, sldns_buffer* packet,
   2501 	int timeout, comm_point_callback_type* callback, void* callback_arg)
   2502 {
   2503 	struct pending_tcp* pend = sq->outnet->tcp_free;
   2504 	struct reuse_tcp* reuse = NULL;
   2505 	struct waiting_tcp* w;
   2506 
   2507 	verbose(VERB_CLIENT, "pending_tcp_query");
   2508 	if(sldns_buffer_limit(packet) < sizeof(uint16_t)) {
   2509 		verbose(VERB_ALGO, "pending tcp query with too short buffer < 2");
   2510 		return NULL;
   2511 	}
   2512 
   2513 	/* find out if a reused stream to the target exists */
   2514 	/* if so, take it into use */
   2515 	reuse = reuse_tcp_find(sq->outnet, &sq->addr, sq->addrlen,
   2516 		sq->ssl_upstream, sq->tls_auth_name);
   2517 	if(reuse) {
   2518 		log_reuse_tcp(VERB_CLIENT, "pending_tcp_query: found reuse", reuse);
   2519 		log_assert(reuse->pending);
   2520 		pend = reuse->pending;
   2521 		reuse_tcp_lru_touch(sq->outnet, reuse);
   2522 	}
   2523 
   2524 	log_assert(!reuse || (reuse && pend));
   2525 	/* if !pend but we have reuse streams, close a reuse stream
   2526 	 * to be able to open a new one to this target, no use waiting
   2527 	 * to reuse a file descriptor while another query needs to use
   2528 	 * that buffer and file descriptor now. */
   2529 	if(!pend) {
   2530 		reuse_tcp_close_oldest(sq->outnet);
   2531 		pend = sq->outnet->tcp_free;
   2532 		log_assert(!reuse || (pend == reuse->pending));
   2533 	}
   2534 
   2535 	/* allocate space to store query */
   2536 	w = (struct waiting_tcp*)malloc(sizeof(struct waiting_tcp)
   2537 		+ sldns_buffer_limit(packet));
   2538 	if(!w) {
   2539 		return NULL;
   2540 	}
   2541 	if(!(w->timer = comm_timer_create(sq->outnet->base, outnet_tcptimer, w))) {
   2542 		free(w);
   2543 		return NULL;
   2544 	}
   2545 	w->pkt = (uint8_t*)w + sizeof(struct waiting_tcp);
   2546 	w->pkt_len = sldns_buffer_limit(packet);
   2547 	memmove(w->pkt, sldns_buffer_begin(packet), w->pkt_len);
   2548 	w->id = tcp_select_id(sq->outnet, reuse);
   2549 	LDNS_ID_SET(w->pkt, w->id);
   2550 	memcpy(&w->addr, &sq->addr, sq->addrlen);
   2551 	w->addrlen = sq->addrlen;
   2552 	w->outnet = sq->outnet;
   2553 	w->on_tcp_waiting_list = 0;
   2554 	w->next_waiting = NULL;
   2555 	w->cb = callback;
   2556 	w->cb_arg = callback_arg;
   2557 	w->ssl_upstream = sq->ssl_upstream;
   2558 	if(sq->tls_auth_name) {
   2559 		w->tls_auth_name = strdup(sq->tls_auth_name);
   2560 		if(!w->tls_auth_name) {
   2561 			comm_timer_delete(w->timer);
   2562 			free(w);
   2563 			return NULL;
   2564 		}
   2565 	} else {
   2566 		w->tls_auth_name = NULL;
   2567 	}
   2568 	w->timeout = timeout;
   2569 	w->id_node.key = NULL;
   2570 	w->write_wait_prev = NULL;
   2571 	w->write_wait_next = NULL;
   2572 	w->write_wait_queued = 0;
   2573 	w->error_count = 0;
   2574 #ifdef USE_DNSTAP
   2575 	w->sq = NULL;
   2576 #endif
   2577 	w->in_cb_and_decommission = 0;
   2578 	if(pend) {
   2579 		/* we have a buffer available right now */
   2580 		if(reuse) {
   2581 			log_assert(reuse == &pend->reuse);
   2582 			/* reuse existing fd, write query and continue */
   2583 			/* store query in tree by id */
   2584 			verbose(VERB_CLIENT, "pending_tcp_query: reuse, store");
   2585 			w->next_waiting = (void*)pend;
   2586 			reuse_tree_by_id_insert(&pend->reuse, w);
   2587 			/* can we write right now? */
   2588 			if(pend->query == NULL) {
   2589 				/* write straight away */
   2590 				/* stop the timer on read of the fd */
   2591 				comm_point_stop_listening(pend->c);
   2592 				pend->query = w;
   2593 				outnet_tcp_take_query_setup(pend->c->fd, pend,
   2594 					w);
   2595 			} else {
   2596 				/* put it in the waiting list for
   2597 				 * this stream */
   2598 				reuse_write_wait_push_back(&pend->reuse, w);
   2599 			}
   2600 		} else {
   2601 			/* create new fd and connect to addr, setup to
   2602 			 * write query */
   2603 			verbose(VERB_CLIENT, "pending_tcp_query: new fd, connect");
   2604 			rbtree_init(&pend->reuse.tree_by_id, reuse_id_cmp);
   2605 			pend->reuse.pending = pend;
   2606 			memcpy(&pend->reuse.addr, &sq->addr, sq->addrlen);
   2607 			pend->reuse.addrlen = sq->addrlen;
   2608 			if(!outnet_tcp_take_into_use(w)) {
   2609 				waiting_tcp_delete(w);
   2610 				return NULL;
   2611 			}
   2612 		}
   2613 #ifdef USE_DNSTAP
   2614 		if(sq->outnet->dtenv &&
   2615 		   (sq->outnet->dtenv->log_resolver_query_messages ||
   2616 		    sq->outnet->dtenv->log_forwarder_query_messages)) {
   2617 			/* use w->pkt, because it has the ID value */
   2618 			sldns_buffer tmp;
   2619 			sldns_buffer_init_frm_data(&tmp, w->pkt, w->pkt_len);
   2620 			dt_msg_send_outside_query(sq->outnet->dtenv, &sq->addr,
   2621 				&pend->pi->addr, comm_tcp, NULL, sq->zone,
   2622 				sq->zonelen, &tmp);
   2623 		}
   2624 #endif
   2625 	} else {
   2626 		/* queue up */
   2627 		/* waiting for a buffer on the outside network buffer wait
   2628 		 * list */
   2629 		verbose(VERB_CLIENT, "pending_tcp_query: queue to wait");
   2630 #ifdef USE_DNSTAP
   2631 		w->sq = sq;
   2632 #endif
   2633 		outnet_waiting_tcp_list_add(sq->outnet, w, 1);
   2634 	}
   2635 	return w;
   2636 }
   2637 
   2638 /** create query for serviced queries */
   2639 static void
   2640 serviced_gen_query(sldns_buffer* buff, uint8_t* qname, size_t qnamelen,
   2641 	uint16_t qtype, uint16_t qclass, uint16_t flags)
   2642 {
   2643 	sldns_buffer_clear(buff);
   2644 	/* skip id */
   2645 	sldns_buffer_write_u16(buff, flags);
   2646 	sldns_buffer_write_u16(buff, 1); /* qdcount */
   2647 	sldns_buffer_write_u16(buff, 0); /* ancount */
   2648 	sldns_buffer_write_u16(buff, 0); /* nscount */
   2649 	sldns_buffer_write_u16(buff, 0); /* arcount */
   2650 	sldns_buffer_write(buff, qname, qnamelen);
   2651 	sldns_buffer_write_u16(buff, qtype);
   2652 	sldns_buffer_write_u16(buff, qclass);
   2653 	sldns_buffer_flip(buff);
   2654 }
   2655 
   2656 /** lookup serviced query in serviced query rbtree */
   2657 static struct serviced_query*
   2658 lookup_serviced(struct outside_network* outnet, sldns_buffer* buff, int dnssec,
   2659 	struct sockaddr_storage* addr, socklen_t addrlen,
   2660 	struct edns_option* opt_list)
   2661 {
   2662 	struct serviced_query key;
   2663 	key.node.key = &key;
   2664 	key.qbuf = sldns_buffer_begin(buff);
   2665 	key.qbuflen = sldns_buffer_limit(buff);
   2666 	key.dnssec = dnssec;
   2667 	memcpy(&key.addr, addr, addrlen);
   2668 	key.addrlen = addrlen;
   2669 	key.outnet = outnet;
   2670 	key.opt_list = opt_list;
   2671 	return (struct serviced_query*)rbtree_search(outnet->serviced, &key);
   2672 }
   2673 
   2674 void
   2675 serviced_timer_cb(void* arg)
   2676 {
   2677 	struct serviced_query* sq = (struct serviced_query*)arg;
   2678 	struct outside_network* outnet = sq->outnet;
   2679 	verbose(VERB_ALGO, "serviced send timer");
   2680 	/* By the time this cb is called, if we don't have any registered
   2681 	 * callbacks for this serviced_query anymore; do not send. */
   2682 	if(!sq->cblist)
   2683 		goto delete;
   2684 	/* perform first network action */
   2685 	if(outnet->do_udp && !(sq->tcp_upstream || sq->ssl_upstream)) {
   2686 		if(!serviced_udp_send(sq, outnet->udp_buff))
   2687 			goto delete;
   2688 	} else {
   2689 		if(!serviced_tcp_send(sq, outnet->udp_buff))
   2690 			goto delete;
   2691 	}
   2692 	/* Maybe by this time we don't have callbacks attached anymore. Don't
   2693 	 * proactively try to delete; let it run and maybe another callback
   2694 	 * will get attached by the time we get an answer. */
   2695 	return;
   2696 delete:
   2697 	serviced_callbacks(sq, NETEVENT_CLOSED, NULL, NULL);
   2698 }
   2699 
   2700 /** Create new serviced entry */
   2701 static struct serviced_query*
   2702 serviced_create(struct outside_network* outnet, sldns_buffer* buff, int dnssec,
   2703 	int want_dnssec, int nocaps, int tcp_upstream, int ssl_upstream,
   2704 	char* tls_auth_name, struct sockaddr_storage* addr, socklen_t addrlen,
   2705 	uint8_t* zone, size_t zonelen, int qtype, struct edns_option* opt_list,
   2706 	size_t pad_queries_block_size, struct alloc_cache* alloc,
   2707 	struct regional* region)
   2708 {
   2709 	struct serviced_query* sq = (struct serviced_query*)malloc(sizeof(*sq));
   2710 	struct timeval t;
   2711 #ifdef UNBOUND_DEBUG
   2712 	rbnode_type* ins;
   2713 #endif
   2714 	if(!sq) {
   2715 		alloc_reg_release(alloc, region);
   2716 		return NULL;
   2717 	}
   2718 	sq->node.key = sq;
   2719 	sq->alloc = alloc;
   2720 	sq->region = region;
   2721 	sq->qbuf = regional_alloc_init(region, sldns_buffer_begin(buff),
   2722 		sldns_buffer_limit(buff));
   2723 	if(!sq->qbuf) {
   2724 		alloc_reg_release(alloc, region);
   2725 		free(sq);
   2726 		return NULL;
   2727 	}
   2728 	sq->qbuflen = sldns_buffer_limit(buff);
   2729 	sq->zone = regional_alloc_init(region, zone, zonelen);
   2730 	if(!sq->zone) {
   2731 		alloc_reg_release(alloc, region);
   2732 		free(sq);
   2733 		return NULL;
   2734 	}
   2735 	sq->zonelen = zonelen;
   2736 	sq->qtype = qtype;
   2737 	sq->dnssec = dnssec;
   2738 	sq->want_dnssec = want_dnssec;
   2739 	sq->nocaps = nocaps;
   2740 	sq->tcp_upstream = tcp_upstream;
   2741 	sq->ssl_upstream = ssl_upstream;
   2742 	if(tls_auth_name) {
   2743 		sq->tls_auth_name = regional_strdup(region, tls_auth_name);
   2744 		if(!sq->tls_auth_name) {
   2745 			alloc_reg_release(alloc, region);
   2746 			free(sq);
   2747 			return NULL;
   2748 		}
   2749 	} else {
   2750 		sq->tls_auth_name = NULL;
   2751 	}
   2752 	memcpy(&sq->addr, addr, addrlen);
   2753 	sq->addrlen = addrlen;
   2754 	sq->opt_list = opt_list;
   2755 	sq->busy = 0;
   2756 	sq->timer = comm_timer_create(outnet->base, serviced_timer_cb, sq);
   2757 	if(!sq->timer) {
   2758 		alloc_reg_release(alloc, region);
   2759 		free(sq);
   2760 		return NULL;
   2761 	}
   2762 	memset(&t, 0, sizeof(t));
   2763 	comm_timer_set(sq->timer, &t);
   2764 	sq->outnet = outnet;
   2765 	sq->cblist = NULL;
   2766 	sq->pending = NULL;
   2767 	sq->status = serviced_initial;
   2768 	sq->retry = 0;
   2769 	sq->to_be_deleted = 0;
   2770 	sq->padding_block_size = pad_queries_block_size;
   2771 #ifdef UNBOUND_DEBUG
   2772 	ins =
   2773 #else
   2774 	(void)
   2775 #endif
   2776 	rbtree_insert(outnet->serviced, &sq->node);
   2777 	log_assert(ins != NULL); /* must not be already present */
   2778 	return sq;
   2779 }
   2780 
   2781 /** reuse tcp stream, remove serviced query from stream,
   2782  * return true if the stream is kept, false if it is to be closed */
   2783 static int
   2784 reuse_tcp_remove_serviced_keep(struct waiting_tcp* w,
   2785 	struct serviced_query* sq)
   2786 {
   2787 	struct pending_tcp* pend_tcp = (struct pending_tcp*)w->next_waiting;
   2788 	verbose(VERB_CLIENT, "reuse_tcp_remove_serviced_keep");
   2789 	/* remove the callback. let query continue to write to not cancel
   2790 	 * the stream itself.  also keep it as an entry in the tree_by_id,
   2791 	 * in case the answer returns (that we no longer want), but we cannot
   2792 	 * pick the same ID number meanwhile */
   2793 	w->cb = NULL;
   2794 	/* see if can be entered in reuse tree
   2795 	 * for that the FD has to be non-1 */
   2796 	if(pend_tcp->c->fd == -1) {
   2797 		verbose(VERB_CLIENT, "reuse_tcp_remove_serviced_keep: -1 fd");
   2798 		return 0;
   2799 	}
   2800 	/* if in tree and used by other queries */
   2801 	if(pend_tcp->reuse.node.key) {
   2802 		verbose(VERB_CLIENT, "reuse_tcp_remove_serviced_keep: in use by other queries");
   2803 		/* do not reset the keepalive timer, for that
   2804 		 * we'd need traffic, and this is where the serviced is
   2805 		 * removed due to state machine internal reasons,
   2806 		 * eg. iterator no longer interested in this query */
   2807 		return 1;
   2808 	}
   2809 	/* if still open and want to keep it open */
   2810 	if(pend_tcp->c->fd != -1 && sq->outnet->tcp_reuse.count <
   2811 		sq->outnet->tcp_reuse_max) {
   2812 		verbose(VERB_CLIENT, "reuse_tcp_remove_serviced_keep: keep open");
   2813 		/* set a keepalive timer on it */
   2814 		if(!reuse_tcp_insert(sq->outnet, pend_tcp)) {
   2815 			return 0;
   2816 		}
   2817 		reuse_tcp_setup_timeout(pend_tcp, sq->outnet->tcp_reuse_timeout);
   2818 		return 1;
   2819 	}
   2820 	return 0;
   2821 }
   2822 
   2823 /** cleanup serviced query entry */
   2824 static void
   2825 serviced_delete(struct serviced_query* sq)
   2826 {
   2827 	verbose(VERB_CLIENT, "serviced_delete");
   2828 	if(sq->pending) {
   2829 		/* clear up the pending query */
   2830 		if(sq->status == serviced_query_UDP_EDNS ||
   2831 			sq->status == serviced_query_UDP ||
   2832 			sq->status == serviced_query_UDP_EDNS_FRAG ||
   2833 			sq->status == serviced_query_UDP_EDNS_fallback) {
   2834 			struct pending* p = (struct pending*)sq->pending;
   2835 			verbose(VERB_CLIENT, "serviced_delete: UDP");
   2836 			if(p->pc)
   2837 				portcomm_loweruse(sq->outnet, p->pc);
   2838 			pending_delete(sq->outnet, p);
   2839 			/* this call can cause reentrant calls back into the
   2840 			 * mesh */
   2841 			outnet_send_wait_udp(sq->outnet);
   2842 		} else {
   2843 			struct waiting_tcp* w = (struct waiting_tcp*)
   2844 				sq->pending;
   2845 			verbose(VERB_CLIENT, "serviced_delete: TCP");
   2846 			log_assert(!(w->write_wait_queued && w->on_tcp_waiting_list));
   2847 			/* if on stream-write-waiting list then
   2848 			 * remove from waiting list and waiting_tcp_delete */
   2849 			if(w->write_wait_queued) {
   2850 				struct pending_tcp* pend =
   2851 					(struct pending_tcp*)w->next_waiting;
   2852 				verbose(VERB_CLIENT, "serviced_delete: writewait");
   2853 				if(!w->in_cb_and_decommission)
   2854 					reuse_tree_by_id_delete(&pend->reuse, w);
   2855 				reuse_write_wait_remove(&pend->reuse, w);
   2856 				if(!w->in_cb_and_decommission)
   2857 					waiting_tcp_delete(w);
   2858 			} else if(!w->on_tcp_waiting_list) {
   2859 				struct pending_tcp* pend =
   2860 					(struct pending_tcp*)w->next_waiting;
   2861 				verbose(VERB_CLIENT, "serviced_delete: tcpreusekeep");
   2862 				/* w needs to stay on tree_by_id to not assign
   2863 				 * the same ID; remove the callback since its
   2864 				 * serviced_query will be gone. */
   2865 				w->cb = NULL;
   2866 				if(!reuse_tcp_remove_serviced_keep(w, sq)) {
   2867 					if(!w->in_cb_and_decommission)
   2868 						reuse_cb_and_decommission(sq->outnet,
   2869 							pend, NETEVENT_CLOSED);
   2870 					use_free_buffer(sq->outnet);
   2871 				}
   2872 				sq->pending = NULL;
   2873 			} else {
   2874 				verbose(VERB_CLIENT, "serviced_delete: tcpwait");
   2875 				outnet_waiting_tcp_list_remove(sq->outnet, w);
   2876 				if(!w->in_cb_and_decommission)
   2877 					waiting_tcp_delete(w);
   2878 			}
   2879 		}
   2880 	}
   2881 	/* does not delete from tree, caller has to do that */
   2882 	serviced_node_del(&sq->node, NULL);
   2883 }
   2884 
   2885 /** perturb a dname capitalization randomly */
   2886 static void
   2887 serviced_perturb_qname(struct ub_randstate* rnd, uint8_t* qbuf, size_t len)
   2888 {
   2889 	uint8_t lablen;
   2890 	uint8_t* d = qbuf + 10;
   2891 	long int random = 0;
   2892 	int bits = 0;
   2893 	log_assert(len >= 10 + 5 /* offset qname, root, qtype, qclass */);
   2894 	(void)len;
   2895 	lablen = *d++;
   2896 	while(lablen) {
   2897 		while(lablen--) {
   2898 			/* only perturb A-Z, a-z */
   2899 			if(isalpha((unsigned char)*d)) {
   2900 				/* get a random bit */
   2901 				if(bits == 0) {
   2902 					random = ub_random(rnd);
   2903 					bits = 30;
   2904 				}
   2905 				if((random & 0x1)) {
   2906 					*d = (uint8_t)toupper((unsigned char)*d);
   2907 				} else {
   2908 					*d = (uint8_t)tolower((unsigned char)*d);
   2909 				}
   2910 				random >>= 1;
   2911 				bits--;
   2912 			}
   2913 			d++;
   2914 		}
   2915 		lablen = *d++;
   2916 	}
   2917 	if(verbosity >= VERB_ALGO) {
   2918 		char buf[LDNS_MAX_DOMAINLEN];
   2919 		dname_str(qbuf+10, buf);
   2920 		verbose(VERB_ALGO, "qname perturbed to %s", buf);
   2921 	}
   2922 }
   2923 
   2924 static uint16_t
   2925 serviced_query_udp_size(struct serviced_query* sq, enum serviced_query_status status) {
   2926 	uint16_t udp_size;
   2927 	if(status == serviced_query_UDP_EDNS_FRAG) {
   2928 		if(addr_is_ip6(&sq->addr, sq->addrlen)) {
   2929 			if(EDNS_FRAG_SIZE_IP6 < EDNS_ADVERTISED_SIZE)
   2930 				udp_size = EDNS_FRAG_SIZE_IP6;
   2931 			else	udp_size = EDNS_ADVERTISED_SIZE;
   2932 		} else {
   2933 			if(EDNS_FRAG_SIZE_IP4 < EDNS_ADVERTISED_SIZE)
   2934 				udp_size = EDNS_FRAG_SIZE_IP4;
   2935 			else	udp_size = EDNS_ADVERTISED_SIZE;
   2936 		}
   2937 	} else {
   2938 		udp_size = EDNS_ADVERTISED_SIZE;
   2939 	}
   2940 	return udp_size;
   2941 }
   2942 
   2943 /** put serviced query into a buffer */
   2944 static void
   2945 serviced_encode(struct serviced_query* sq, sldns_buffer* buff, int with_edns)
   2946 {
   2947 	/* if we are using 0x20 bits for ID randomness, perturb them */
   2948 	if(sq->outnet->use_caps_for_id && !sq->nocaps) {
   2949 		serviced_perturb_qname(sq->outnet->rnd, sq->qbuf, sq->qbuflen);
   2950 	}
   2951 	/* generate query */
   2952 	sldns_buffer_clear(buff);
   2953 	sldns_buffer_write_u16(buff, 0); /* id placeholder */
   2954 	sldns_buffer_write(buff, sq->qbuf, sq->qbuflen);
   2955 	sldns_buffer_flip(buff);
   2956 	if(with_edns) {
   2957 		/* add edns section */
   2958 		struct edns_data edns;
   2959 		struct edns_option padding_option;
   2960 		edns.edns_present = 1;
   2961 		edns.ext_rcode = 0;
   2962 		edns.edns_version = EDNS_ADVERTISED_VERSION;
   2963 		edns.opt_list_in = NULL;
   2964 		edns.opt_list_out = sq->opt_list;
   2965 		edns.opt_list_inplace_cb_out = NULL;
   2966 		edns.udp_size = serviced_query_udp_size(sq, sq->status);
   2967 		edns.bits = 0;
   2968 		if((sq->dnssec & EDNS_DO))
   2969 			edns.bits = EDNS_DO;
   2970 		if((sq->dnssec & BIT_CD))
   2971 			LDNS_CD_SET(sldns_buffer_begin(buff));
   2972 		if (sq->ssl_upstream && sq->padding_block_size) {
   2973 			padding_option.opt_code = LDNS_EDNS_PADDING;
   2974 			padding_option.opt_len = 0;
   2975 			padding_option.opt_data = NULL;
   2976 			padding_option.next = edns.opt_list_out;
   2977 			edns.opt_list_out = &padding_option;
   2978 			edns.padding_block_size = sq->padding_block_size;
   2979 		}
   2980 		attach_edns_record(buff, &edns);
   2981 	}
   2982 }
   2983 
   2984 /**
   2985  * Perform serviced query UDP sending operation.
   2986  * Sends UDP with EDNS, unless infra host marked non EDNS.
   2987  * @param sq: query to send.
   2988  * @param buff: buffer scratch space.
   2989  * @return 0 on error.
   2990  */
   2991 static int
   2992 serviced_udp_send(struct serviced_query* sq, sldns_buffer* buff)
   2993 {
   2994 	int rtt, vs;
   2995 	uint8_t edns_lame_known;
   2996 	time_t now = *sq->outnet->now_secs;
   2997 
   2998 	if(!infra_host(sq->outnet->infra, &sq->addr, sq->addrlen, sq->zone,
   2999 		sq->zonelen, now, &vs, &edns_lame_known, &rtt))
   3000 		return 0;
   3001 	sq->last_rtt = rtt;
   3002 	verbose(VERB_ALGO, "EDNS lookup known=%d vs=%d", edns_lame_known, vs);
   3003 	if(sq->status == serviced_initial) {
   3004 		if(vs != -1) {
   3005 			sq->status = serviced_query_UDP_EDNS;
   3006 		} else {
   3007 			sq->status = serviced_query_UDP;
   3008 		}
   3009 	}
   3010 	serviced_encode(sq, buff, (sq->status == serviced_query_UDP_EDNS) ||
   3011 		(sq->status == serviced_query_UDP_EDNS_FRAG));
   3012 	sq->last_sent_time = *sq->outnet->now_tv;
   3013 	sq->edns_lame_known = (int)edns_lame_known;
   3014 	verbose(VERB_ALGO, "serviced query UDP timeout=%d msec", rtt);
   3015 	sq->pending = pending_udp_query(sq, buff, rtt,
   3016 		serviced_udp_callback, sq);
   3017 	if(!sq->pending)
   3018 		return 0;
   3019 	return 1;
   3020 }
   3021 
   3022 /** check that perturbed qname is identical */
   3023 static int
   3024 serviced_check_qname(sldns_buffer* pkt, uint8_t* qbuf, size_t qbuflen)
   3025 {
   3026 	uint8_t* d1 = sldns_buffer_begin(pkt)+12;
   3027 	uint8_t* d2 = qbuf+10;
   3028 	uint8_t len1, len2;
   3029 	int count = 0;
   3030 	if(sldns_buffer_limit(pkt) < 12+1+4) /* packet too small for qname */
   3031 		return 0;
   3032 	log_assert(qbuflen >= 15 /* 10 header, root, type, class */);
   3033 	len1 = *d1++;
   3034 	len2 = *d2++;
   3035 	while(len1 != 0 || len2 != 0) {
   3036 		if(LABEL_IS_PTR(len1)) {
   3037 			/* check if we can read *d1 with compression ptr rest */
   3038 			if(d1 >= sldns_buffer_at(pkt, sldns_buffer_limit(pkt)))
   3039 				return 0;
   3040 			d1 = sldns_buffer_begin(pkt)+PTR_OFFSET(len1, *d1);
   3041 			/* check if we can read the destination *d1 */
   3042 			if(d1 >= sldns_buffer_at(pkt, sldns_buffer_limit(pkt)))
   3043 				return 0;
   3044 			len1 = *d1++;
   3045 			if(count++ > MAX_COMPRESS_PTRS)
   3046 				return 0;
   3047 			continue;
   3048 		}
   3049 		if(d2 > qbuf+qbuflen)
   3050 			return 0;
   3051 		if(len1 != len2)
   3052 			return 0;
   3053 		if(len1 > LDNS_MAX_LABELLEN)
   3054 			return 0;
   3055 		/* check len1 + 1(next length) are okay to read */
   3056 		if(d1+len1 >= sldns_buffer_at(pkt, sldns_buffer_limit(pkt)))
   3057 			return 0;
   3058 		log_assert(len1 <= LDNS_MAX_LABELLEN);
   3059 		log_assert(len2 <= LDNS_MAX_LABELLEN);
   3060 		log_assert(len1 == len2 && len1 != 0);
   3061 		/* compare the labels - bitwise identical */
   3062 		if(memcmp(d1, d2, len1) != 0)
   3063 			return 0;
   3064 		d1 += len1;
   3065 		d2 += len2;
   3066 		len1 = *d1++;
   3067 		len2 = *d2++;
   3068 	}
   3069 	return 1;
   3070 }
   3071 
   3072 /** call the callbacks for a serviced query */
   3073 static void
   3074 serviced_callbacks(struct serviced_query* sq, int error, struct comm_point* c,
   3075 	struct comm_reply* rep)
   3076 {
   3077 	struct service_callback* p;
   3078 	int dobackup = (sq->cblist && sq->cblist->next); /* >1 cb*/
   3079 	uint8_t *backup_p = NULL;
   3080 	size_t backlen = 0;
   3081 #ifdef UNBOUND_DEBUG
   3082 	rbnode_type* rem =
   3083 #else
   3084 	(void)
   3085 #endif
   3086 	/* remove from tree, and schedule for deletion, so that callbacks
   3087 	 * can safely deregister themselves and even create new serviced
   3088 	 * queries that are identical to this one. */
   3089 	rbtree_delete(sq->outnet->serviced, sq);
   3090 	log_assert(rem); /* should have been present */
   3091 	sq->to_be_deleted = 1;
   3092 	verbose(VERB_ALGO, "svcd callbacks start");
   3093 	if(sq->outnet->use_caps_for_id && error == NETEVENT_NOERROR && c &&
   3094 		!sq->nocaps && sq->qtype != LDNS_RR_TYPE_PTR) {
   3095 		/* for type PTR do not check perturbed name in answer,
   3096 		 * compatibility with cisco dns guard boxes that mess up
   3097 		 * reverse queries 0x20 contents */
   3098 		/* noerror and nxdomain must have a qname in reply */
   3099 		if(sldns_buffer_read_u16_at(c->buffer, 4) == 0 &&
   3100 			(LDNS_RCODE_WIRE(sldns_buffer_begin(c->buffer))
   3101 				== LDNS_RCODE_NOERROR ||
   3102 			 LDNS_RCODE_WIRE(sldns_buffer_begin(c->buffer))
   3103 				== LDNS_RCODE_NXDOMAIN)) {
   3104 			verbose(VERB_DETAIL, "no qname in reply to check 0x20ID");
   3105 			log_addr(VERB_DETAIL, "from server",
   3106 				&sq->addr, sq->addrlen);
   3107 			log_buf(VERB_DETAIL, "for packet", c->buffer);
   3108 			error = NETEVENT_CLOSED;
   3109 			c = NULL;
   3110 		} else if(sldns_buffer_read_u16_at(c->buffer, 4) > 0 &&
   3111 			!serviced_check_qname(c->buffer, sq->qbuf,
   3112 			sq->qbuflen)) {
   3113 			verbose(VERB_DETAIL, "wrong 0x20-ID in reply qname");
   3114 			log_addr(VERB_DETAIL, "from server",
   3115 				&sq->addr, sq->addrlen);
   3116 			log_buf(VERB_DETAIL, "for packet", c->buffer);
   3117 			error = NETEVENT_CAPSFAIL;
   3118 			/* and cleanup too */
   3119 			pkt_dname_tolower(c->buffer,
   3120 				sldns_buffer_at(c->buffer, 12));
   3121 		} else {
   3122 			verbose(VERB_ALGO, "good 0x20-ID in reply qname");
   3123 			/* cleanup caps, prettier cache contents. */
   3124 			pkt_dname_tolower(c->buffer,
   3125 				sldns_buffer_at(c->buffer, 12));
   3126 		}
   3127 	}
   3128 	if(dobackup && c) {
   3129 		/* make a backup of the query, since the querystate processing
   3130 		 * may send outgoing queries that overwrite the buffer.
   3131 		 * use secondary buffer to store the query.
   3132 		 * This is a data copy, but faster than packet to server */
   3133 		backlen = sldns_buffer_limit(c->buffer);
   3134 		backup_p = regional_alloc_init(sq->region,
   3135 			sldns_buffer_begin(c->buffer), backlen);
   3136 		if(!backup_p) {
   3137 			log_err("malloc failure in serviced query callbacks");
   3138 			error = NETEVENT_CLOSED;
   3139 			c = NULL;
   3140 		}
   3141 		sq->outnet->svcd_overhead = backlen;
   3142 	}
   3143 	/* test the actual sq->cblist, because the next elem could be deleted*/
   3144 	while((p=sq->cblist) != NULL) {
   3145 		sq->cblist = p->next; /* remove this element */
   3146 		if(dobackup && c) {
   3147 			sldns_buffer_clear(c->buffer);
   3148 			sldns_buffer_write(c->buffer, backup_p, backlen);
   3149 			sldns_buffer_flip(c->buffer);
   3150 		}
   3151 		fptr_ok(fptr_whitelist_serviced_query(p->cb));
   3152 		(void)(*p->cb)(c, p->cb_arg, error, rep);
   3153 	}
   3154 	if(backup_p) {
   3155 		sq->outnet->svcd_overhead = 0;
   3156 	}
   3157 	verbose(VERB_ALGO, "svcd callbacks end");
   3158 	log_assert(sq->cblist == NULL);
   3159 	serviced_delete(sq);
   3160 }
   3161 
   3162 int
   3163 serviced_tcp_callback(struct comm_point* c, void* arg, int error,
   3164         struct comm_reply* rep)
   3165 {
   3166 	struct serviced_query* sq = (struct serviced_query*)arg;
   3167 	struct comm_reply r2;
   3168 #ifdef USE_DNSTAP
   3169 	struct waiting_tcp* w = (struct waiting_tcp*)sq->pending;
   3170 	struct pending_tcp* pend_tcp = NULL;
   3171 	struct port_if* pi = NULL;
   3172 	if(w && !w->on_tcp_waiting_list && w->next_waiting) {
   3173 		pend_tcp = (struct pending_tcp*)w->next_waiting;
   3174 		pi = pend_tcp->pi;
   3175 	}
   3176 #endif
   3177 	sq->pending = NULL; /* removed after this callback */
   3178 	if(error != NETEVENT_NOERROR)
   3179 		log_addr(VERB_QUERY, "tcp error for address",
   3180 			&sq->addr, sq->addrlen);
   3181 	if(error==NETEVENT_NOERROR)
   3182 		infra_update_tcp_works(sq->outnet->infra, &sq->addr,
   3183 			sq->addrlen, sq->zone, sq->zonelen);
   3184 #ifdef USE_DNSTAP
   3185 	/*
   3186 	 * sending src (local service)/dst (upstream) addresses over DNSTAP
   3187 	 */
   3188 	if(error==NETEVENT_NOERROR && pi && sq->outnet->dtenv &&
   3189 	   (sq->outnet->dtenv->log_resolver_response_messages ||
   3190 	    sq->outnet->dtenv->log_forwarder_response_messages)) {
   3191 		log_addr(VERB_ALGO, "response from upstream", &sq->addr, sq->addrlen);
   3192 		log_addr(VERB_ALGO, "to local addr", &pi->addr, pi->addrlen);
   3193 		dt_msg_send_outside_response(sq->outnet->dtenv, &sq->addr,
   3194 			&pi->addr, c->type, c->ssl, sq->zone, sq->zonelen, sq->qbuf,
   3195 			sq->qbuflen, &sq->last_sent_time, sq->outnet->now_tv,
   3196 			c->buffer);
   3197 	}
   3198 #endif
   3199 	if(error==NETEVENT_NOERROR && sq->status == serviced_query_TCP_EDNS &&
   3200 		(LDNS_RCODE_WIRE(sldns_buffer_begin(c->buffer)) ==
   3201 		LDNS_RCODE_FORMERR || LDNS_RCODE_WIRE(sldns_buffer_begin(
   3202 		c->buffer)) == LDNS_RCODE_NOTIMPL) ) {
   3203 		/* attempt to fallback to nonEDNS */
   3204 		sq->status = serviced_query_TCP_EDNS_fallback;
   3205 		serviced_tcp_initiate(sq, c->buffer);
   3206 		return 0;
   3207 	} else if(error==NETEVENT_NOERROR &&
   3208 		sq->status == serviced_query_TCP_EDNS_fallback &&
   3209 			(LDNS_RCODE_WIRE(sldns_buffer_begin(c->buffer)) ==
   3210 			LDNS_RCODE_NOERROR || LDNS_RCODE_WIRE(
   3211 			sldns_buffer_begin(c->buffer)) == LDNS_RCODE_NXDOMAIN
   3212 			|| LDNS_RCODE_WIRE(sldns_buffer_begin(c->buffer))
   3213 			== LDNS_RCODE_YXDOMAIN)) {
   3214 		/* the fallback produced a result that looks promising, note
   3215 		 * that this server should be approached without EDNS */
   3216 		/* only store noEDNS in cache if domain is noDNSSEC */
   3217 		if(!sq->want_dnssec)
   3218 		  if(!infra_edns_update(sq->outnet->infra, &sq->addr,
   3219 			sq->addrlen, sq->zone, sq->zonelen, -1,
   3220 			*sq->outnet->now_secs))
   3221 			log_err("Out of memory caching no edns for host");
   3222 		sq->status = serviced_query_TCP;
   3223 	}
   3224 	if(sq->tcp_upstream || sq->ssl_upstream) {
   3225 	    struct timeval now = *sq->outnet->now_tv;
   3226 	    if(error!=NETEVENT_NOERROR) {
   3227 	        if(!infra_rtt_update(sq->outnet->infra, &sq->addr,
   3228 		    sq->addrlen, sq->zone, sq->zonelen, sq->qtype,
   3229 		    -1, sq->last_rtt, (time_t)now.tv_sec))
   3230 		    log_err("out of memory in TCP exponential backoff.");
   3231 	    } else if(now.tv_sec > sq->last_sent_time.tv_sec ||
   3232 		(now.tv_sec == sq->last_sent_time.tv_sec &&
   3233 		now.tv_usec > sq->last_sent_time.tv_usec)) {
   3234 		/* convert from microseconds to milliseconds */
   3235 		int roundtime = ((int)(now.tv_sec - sq->last_sent_time.tv_sec))*1000
   3236 		  + ((int)now.tv_usec - (int)sq->last_sent_time.tv_usec)/1000;
   3237 		verbose(VERB_ALGO, "measured TCP-time at %d msec", roundtime);
   3238 		log_assert(roundtime >= 0);
   3239 		/* only store if less then AUTH_TIMEOUT seconds, it could be
   3240 		 * huge due to system-hibernated and we woke up */
   3241 		if(roundtime < 60000) {
   3242 		    if(!infra_rtt_update(sq->outnet->infra, &sq->addr,
   3243 			sq->addrlen, sq->zone, sq->zonelen, sq->qtype,
   3244 			roundtime, sq->last_rtt, (time_t)now.tv_sec))
   3245 			log_err("out of memory noting rtt.");
   3246 		}
   3247 	    }
   3248 	}
   3249 	/* insert address into reply info */
   3250 	if(!rep) {
   3251 		/* create one if there isn't (on errors) */
   3252 		rep = &r2;
   3253 		r2.c = c;
   3254 	}
   3255 	memcpy(&rep->remote_addr, &sq->addr, sq->addrlen);
   3256 	rep->remote_addrlen = sq->addrlen;
   3257 	serviced_callbacks(sq, error, c, rep);
   3258 	return 0;
   3259 }
   3260 
   3261 static void
   3262 serviced_tcp_initiate(struct serviced_query* sq, sldns_buffer* buff)
   3263 {
   3264 	verbose(VERB_ALGO, "initiate TCP query %s",
   3265 		sq->status==serviced_query_TCP_EDNS?"EDNS":"");
   3266 	serviced_encode(sq, buff, sq->status == serviced_query_TCP_EDNS);
   3267 	sq->last_sent_time = *sq->outnet->now_tv;
   3268 	log_assert(!sq->busy);
   3269 	sq->busy = 1;
   3270 	sq->pending = pending_tcp_query(sq, buff, sq->outnet->tcp_auth_query_timeout,
   3271 		serviced_tcp_callback, sq);
   3272 	sq->busy = 0;
   3273 	if(!sq->pending) {
   3274 		/* delete from tree so that a retry by above layer does not
   3275 		 * clash with this entry */
   3276 		verbose(VERB_ALGO, "serviced_tcp_initiate: failed to send tcp query");
   3277 		serviced_callbacks(sq, NETEVENT_CLOSED, NULL, NULL);
   3278 	}
   3279 }
   3280 
   3281 /** Send serviced query over TCP return false on initial failure */
   3282 static int
   3283 serviced_tcp_send(struct serviced_query* sq, sldns_buffer* buff)
   3284 {
   3285 	int vs, rtt, timeout;
   3286 	uint8_t edns_lame_known;
   3287 	if(!infra_host(sq->outnet->infra, &sq->addr, sq->addrlen, sq->zone,
   3288 		sq->zonelen, *sq->outnet->now_secs, &vs, &edns_lame_known,
   3289 		&rtt))
   3290 		return 0;
   3291 	sq->last_rtt = rtt;
   3292 	if(vs != -1)
   3293 		sq->status = serviced_query_TCP_EDNS;
   3294 	else 	sq->status = serviced_query_TCP;
   3295 	serviced_encode(sq, buff, sq->status == serviced_query_TCP_EDNS);
   3296 	sq->last_sent_time = *sq->outnet->now_tv;
   3297 	if(sq->tcp_upstream || sq->ssl_upstream) {
   3298 		timeout = rtt;
   3299 		if(rtt >= UNKNOWN_SERVER_NICENESS && rtt < sq->outnet->tcp_auth_query_timeout)
   3300 			timeout = sq->outnet->tcp_auth_query_timeout;
   3301 	} else {
   3302 		timeout = sq->outnet->tcp_auth_query_timeout;
   3303 	}
   3304 	log_assert(!sq->busy);
   3305 	sq->busy = 1;
   3306 	sq->pending = pending_tcp_query(sq, buff, timeout,
   3307 		serviced_tcp_callback, sq);
   3308 	sq->busy = 0;
   3309 	return sq->pending != NULL;
   3310 }
   3311 
   3312 /* see if packet is edns malformed; got zeroes at start.
   3313  * This is from servers that return malformed packets to EDNS0 queries,
   3314  * but they return good packets for nonEDNS0 queries.
   3315  * We try to detect their output; without resorting to a full parse or
   3316  * check for too many bytes after the end of the packet. */
   3317 static int
   3318 packet_edns_malformed(struct sldns_buffer* buf, int qtype)
   3319 {
   3320 	size_t len;
   3321 	if(sldns_buffer_limit(buf) < LDNS_HEADER_SIZE)
   3322 		return 1; /* malformed */
   3323 	/* they have NOERROR rcode, 1 answer. */
   3324 	if(LDNS_RCODE_WIRE(sldns_buffer_begin(buf)) != LDNS_RCODE_NOERROR)
   3325 		return 0;
   3326 	/* one query (to skip) and answer records */
   3327 	if(LDNS_QDCOUNT(sldns_buffer_begin(buf)) != 1 ||
   3328 		LDNS_ANCOUNT(sldns_buffer_begin(buf)) == 0)
   3329 		return 0;
   3330 	/* skip qname */
   3331 	len = dname_valid(sldns_buffer_at(buf, LDNS_HEADER_SIZE),
   3332 		sldns_buffer_limit(buf)-LDNS_HEADER_SIZE);
   3333 	if(len == 0)
   3334 		return 0;
   3335 	if(len == 1 && qtype == 0)
   3336 		return 0; /* we asked for '.' and type 0 */
   3337 	/* and then 4 bytes (type and class of query) */
   3338 	if(sldns_buffer_limit(buf) < LDNS_HEADER_SIZE + len + 4 + 3)
   3339 		return 0;
   3340 
   3341 	/* and start with 11 zeroes as the answer RR */
   3342 	/* so check the qtype of the answer record, qname=0, type=0 */
   3343 	if(sldns_buffer_at(buf, LDNS_HEADER_SIZE+len+4)[0] == 0 &&
   3344 	   sldns_buffer_at(buf, LDNS_HEADER_SIZE+len+4)[1] == 0 &&
   3345 	   sldns_buffer_at(buf, LDNS_HEADER_SIZE+len+4)[2] == 0)
   3346 		return 1;
   3347 	return 0;
   3348 }
   3349 
   3350 int
   3351 serviced_udp_callback(struct comm_point* c, void* arg, int error,
   3352         struct comm_reply* rep)
   3353 {
   3354 	struct serviced_query* sq = (struct serviced_query*)arg;
   3355 	struct outside_network* outnet = sq->outnet;
   3356 	struct timeval now = *sq->outnet->now_tv;
   3357 #ifdef USE_DNSTAP
   3358 	struct pending* p = (struct pending*)sq->pending;
   3359 #endif
   3360 
   3361 	sq->pending = NULL; /* removed after callback */
   3362 	if(error == NETEVENT_TIMEOUT) {
   3363 		if(sq->status == serviced_query_UDP_EDNS && sq->last_rtt < 5000 &&
   3364 		   (serviced_query_udp_size(sq, serviced_query_UDP_EDNS_FRAG) < serviced_query_udp_size(sq, serviced_query_UDP_EDNS))) {
   3365 			/* fallback to 1472/1232 */
   3366 			sq->status = serviced_query_UDP_EDNS_FRAG;
   3367 			log_name_addr(VERB_ALGO, "try edns1xx2", sq->qbuf+10,
   3368 				&sq->addr, sq->addrlen);
   3369 			if(!serviced_udp_send(sq, c->buffer)) {
   3370 				serviced_callbacks(sq, NETEVENT_CLOSED, c, rep);
   3371 			}
   3372 			return 0;
   3373 		}
   3374 		if(sq->status == serviced_query_UDP_EDNS_FRAG) {
   3375 			/* fragmentation size did not fix it */
   3376 			sq->status = serviced_query_UDP_EDNS;
   3377 		}
   3378 		sq->retry++;
   3379 		if(!infra_rtt_update(outnet->infra, &sq->addr, sq->addrlen,
   3380 			sq->zone, sq->zonelen, sq->qtype, -1, sq->last_rtt,
   3381 			(time_t)now.tv_sec))
   3382 			log_err("out of memory in UDP exponential backoff");
   3383 		if(sq->retry < OUTBOUND_UDP_RETRY) {
   3384 			log_name_addr(VERB_ALGO, "retry query", sq->qbuf+10,
   3385 				&sq->addr, sq->addrlen);
   3386 			if(!serviced_udp_send(sq, c->buffer)) {
   3387 				serviced_callbacks(sq, NETEVENT_CLOSED, c, rep);
   3388 			}
   3389 			return 0;
   3390 		}
   3391 	}
   3392 	if(error != NETEVENT_NOERROR) {
   3393 		/* udp returns error (due to no ID or interface available) */
   3394 		serviced_callbacks(sq, error, c, rep);
   3395 		return 0;
   3396 	}
   3397 #ifdef USE_DNSTAP
   3398 	/*
   3399 	 * sending src (local service)/dst (upstream) addresses over DNSTAP
   3400 	 */
   3401 	if(error == NETEVENT_NOERROR && outnet->dtenv && p->pc &&
   3402 		(outnet->dtenv->log_resolver_response_messages ||
   3403 		outnet->dtenv->log_forwarder_response_messages)) {
   3404 		log_addr(VERB_ALGO, "response from upstream", &sq->addr, sq->addrlen);
   3405 		log_addr(VERB_ALGO, "to local addr", &p->pc->pif->addr,
   3406 			p->pc->pif->addrlen);
   3407 		dt_msg_send_outside_response(outnet->dtenv, &sq->addr,
   3408 			&p->pc->pif->addr, c->type, c->ssl, sq->zone, sq->zonelen,
   3409 			sq->qbuf, sq->qbuflen, &sq->last_sent_time,
   3410 			sq->outnet->now_tv, c->buffer);
   3411 	}
   3412 #endif
   3413 	if( (sq->status == serviced_query_UDP_EDNS
   3414 		||sq->status == serviced_query_UDP_EDNS_FRAG)
   3415 		&& (LDNS_RCODE_WIRE(sldns_buffer_begin(c->buffer))
   3416 			== LDNS_RCODE_FORMERR || LDNS_RCODE_WIRE(
   3417 			sldns_buffer_begin(c->buffer)) == LDNS_RCODE_NOTIMPL
   3418 		    || packet_edns_malformed(c->buffer, sq->qtype)
   3419 			)) {
   3420 		/* try to get an answer by falling back without EDNS */
   3421 		verbose(VERB_ALGO, "serviced query: attempt without EDNS");
   3422 		sq->status = serviced_query_UDP_EDNS_fallback;
   3423 		sq->retry = 0;
   3424 		if(!serviced_udp_send(sq, c->buffer)) {
   3425 			serviced_callbacks(sq, NETEVENT_CLOSED, c, rep);
   3426 		}
   3427 		return 0;
   3428 	} else if(sq->status == serviced_query_UDP_EDNS &&
   3429 		!sq->edns_lame_known) {
   3430 		/* now we know that edns queries received answers store that */
   3431 		log_addr(VERB_ALGO, "serviced query: EDNS works for",
   3432 			&sq->addr, sq->addrlen);
   3433 		if(!infra_edns_update(outnet->infra, &sq->addr, sq->addrlen,
   3434 			sq->zone, sq->zonelen, 0, (time_t)now.tv_sec)) {
   3435 			log_err("Out of memory caching edns works");
   3436 		}
   3437 		sq->edns_lame_known = 1;
   3438 	} else if(sq->status == serviced_query_UDP_EDNS_fallback &&
   3439 		!sq->edns_lame_known && (LDNS_RCODE_WIRE(
   3440 		sldns_buffer_begin(c->buffer)) == LDNS_RCODE_NOERROR ||
   3441 		LDNS_RCODE_WIRE(sldns_buffer_begin(c->buffer)) ==
   3442 		LDNS_RCODE_NXDOMAIN || LDNS_RCODE_WIRE(sldns_buffer_begin(
   3443 		c->buffer)) == LDNS_RCODE_YXDOMAIN)) {
   3444 		/* the fallback produced a result that looks promising, note
   3445 		 * that this server should be approached without EDNS */
   3446 		/* only store noEDNS in cache if domain is noDNSSEC */
   3447 		if(!sq->want_dnssec) {
   3448 		  log_addr(VERB_ALGO, "serviced query: EDNS fails for",
   3449 			&sq->addr, sq->addrlen);
   3450 		  if(!infra_edns_update(outnet->infra, &sq->addr, sq->addrlen,
   3451 			sq->zone, sq->zonelen, -1, (time_t)now.tv_sec)) {
   3452 			log_err("Out of memory caching no edns for host");
   3453 		  }
   3454 		} else {
   3455 		  log_addr(VERB_ALGO, "serviced query: EDNS fails, but "
   3456 			"not stored because need DNSSEC for", &sq->addr,
   3457 			sq->addrlen);
   3458 		}
   3459 		sq->status = serviced_query_UDP;
   3460 	}
   3461 	if(now.tv_sec > sq->last_sent_time.tv_sec ||
   3462 		(now.tv_sec == sq->last_sent_time.tv_sec &&
   3463 		now.tv_usec > sq->last_sent_time.tv_usec)) {
   3464 		/* convert from microseconds to milliseconds */
   3465 		int roundtime = ((int)(now.tv_sec - sq->last_sent_time.tv_sec))*1000
   3466 		  + ((int)now.tv_usec - (int)sq->last_sent_time.tv_usec)/1000;
   3467 		verbose(VERB_ALGO, "measured roundtrip at %d msec", roundtime);
   3468 		log_assert(roundtime >= 0);
   3469 		/* in case the system hibernated, do not enter a huge value,
   3470 		 * above this value gives trouble with server selection */
   3471 		if(roundtime < 60000) {
   3472 		    if(!infra_rtt_update(outnet->infra, &sq->addr, sq->addrlen,
   3473 			sq->zone, sq->zonelen, sq->qtype, roundtime,
   3474 			sq->last_rtt, (time_t)now.tv_sec))
   3475 			log_err("out of memory noting rtt.");
   3476 		}
   3477 	}
   3478 	/* perform TC flag check and TCP fallback after updating our
   3479 	 * cache entries for EDNS status and RTT times */
   3480 	if(LDNS_TC_WIRE(sldns_buffer_begin(c->buffer))) {
   3481 		/* fallback to TCP */
   3482 		/* this discards partial UDP contents */
   3483 		if(sq->status == serviced_query_UDP_EDNS ||
   3484 			sq->status == serviced_query_UDP_EDNS_FRAG ||
   3485 			sq->status == serviced_query_UDP_EDNS_fallback)
   3486 			/* if we have unfinished EDNS_fallback, start again */
   3487 			sq->status = serviced_query_TCP_EDNS;
   3488 		else	sq->status = serviced_query_TCP;
   3489 		serviced_tcp_initiate(sq, c->buffer);
   3490 		return 0;
   3491 	}
   3492 	/* yay! an answer */
   3493 	serviced_callbacks(sq, error, c, rep);
   3494 	return 0;
   3495 }
   3496 
   3497 struct serviced_query*
   3498 outnet_serviced_query(struct outside_network* outnet,
   3499 	struct query_info* qinfo, uint16_t flags, int dnssec, int want_dnssec,
   3500 	int nocaps, int check_ratelimit, int tcp_upstream, int ssl_upstream,
   3501 	char* tls_auth_name, struct sockaddr_storage* addr, socklen_t addrlen,
   3502 	uint8_t* zone, size_t zonelen, struct module_qstate* qstate,
   3503 	comm_point_callback_type* callback, void* callback_arg,
   3504 	sldns_buffer* buff, struct module_env* env, int* was_ratelimited,
   3505 	int* ratelimit_incremented)
   3506 {
   3507 	struct serviced_query* sq;
   3508 	struct service_callback* cb;
   3509 	struct edns_string_addr* client_string_addr;
   3510 	struct regional* region;
   3511 	struct edns_option* backed_up_opt_list = qstate->edns_opts_back_out;
   3512 	struct edns_option* per_upstream_opt_list = NULL;
   3513 	time_t timenow = 0;
   3514 
   3515 	/* If we have an already populated EDNS option list make a copy since
   3516 	 * we may now add upstream specific EDNS options. */
   3517 	/* Use a region that could be attached to a serviced_query, if it needs
   3518 	 * to be created. If an existing one is found then this region will be
   3519 	 * destroyed here. */
   3520 	region = alloc_reg_obtain(env->alloc);
   3521 	if(!region) return NULL;
   3522 	if(qstate->edns_opts_back_out) {
   3523 		per_upstream_opt_list = edns_opt_copy_region(
   3524 			qstate->edns_opts_back_out, region);
   3525 		if(!per_upstream_opt_list) {
   3526 			alloc_reg_release(env->alloc, region);
   3527 			return NULL;
   3528 		}
   3529 		qstate->edns_opts_back_out = per_upstream_opt_list;
   3530 	}
   3531 
   3532 	if(!inplace_cb_query_call(env, qinfo, flags, addr, addrlen, zone,
   3533 		zonelen, qstate, region)) {
   3534 		alloc_reg_release(env->alloc, region);
   3535 		return NULL;
   3536 	}
   3537 	/* Restore the option list; we can explicitly use the copied one from
   3538 	 * now on. */
   3539 	per_upstream_opt_list = qstate->edns_opts_back_out;
   3540 	qstate->edns_opts_back_out = backed_up_opt_list;
   3541 
   3542 	if((client_string_addr = edns_string_addr_lookup(
   3543 		&env->edns_strings->client_strings, addr, addrlen))) {
   3544 		edns_opt_list_append(&per_upstream_opt_list,
   3545 			env->edns_strings->client_string_opcode,
   3546 			client_string_addr->string_len,
   3547 			client_string_addr->string, region);
   3548 	}
   3549 
   3550 	serviced_gen_query(buff, qinfo->qname, qinfo->qname_len, qinfo->qtype,
   3551 		qinfo->qclass, flags);
   3552 	sq = lookup_serviced(outnet, buff, dnssec, addr, addrlen,
   3553 		per_upstream_opt_list);
   3554 	if(!sq) {
   3555 		/* Check ratelimit only for new serviced_query */
   3556 		if(check_ratelimit) {
   3557 			timenow = *env->now;
   3558 			if(!infra_ratelimit_inc(env->infra_cache, zone,
   3559 				zonelen, timenow, env->cfg->ratelimit_backoff,
   3560 				&qstate->qinfo,
   3561 				qstate->mesh_info->reply_list
   3562 					?&qstate->mesh_info->reply_list->query_reply
   3563 					:NULL)) {
   3564 				/* Can we pass through with slip factor? */
   3565 				if(env->cfg->ratelimit_factor == 0 ||
   3566 					ub_random_max(env->rnd,
   3567 					env->cfg->ratelimit_factor) != 1) {
   3568 					*was_ratelimited = 1;
   3569 					alloc_reg_release(env->alloc, region);
   3570 					return NULL;
   3571 				}
   3572 				log_nametypeclass(VERB_ALGO,
   3573 					"ratelimit allowed through for "
   3574 					"delegation point", zone,
   3575 					LDNS_RR_TYPE_NS, LDNS_RR_CLASS_IN);
   3576 			}
   3577 			*ratelimit_incremented = 1;
   3578 		}
   3579 		/* make new serviced query entry */
   3580 		sq = serviced_create(outnet, buff, dnssec, want_dnssec, nocaps,
   3581 			tcp_upstream, ssl_upstream, tls_auth_name, addr,
   3582 			addrlen, zone, zonelen, (int)qinfo->qtype,
   3583 			per_upstream_opt_list,
   3584 			( ssl_upstream && env->cfg->pad_queries
   3585 			? env->cfg->pad_queries_block_size : 0 ),
   3586 			env->alloc, region);
   3587 		if(!sq) {
   3588 			if(check_ratelimit) {
   3589 				infra_ratelimit_dec(env->infra_cache,
   3590 					zone, zonelen, timenow);
   3591 			}
   3592 			return NULL;
   3593 		}
   3594 		if(!(cb = (struct service_callback*)regional_alloc(
   3595 			sq->region, sizeof(*cb)))) {
   3596 			if(check_ratelimit) {
   3597 				infra_ratelimit_dec(env->infra_cache,
   3598 					zone, zonelen, timenow);
   3599 			}
   3600 			(void)rbtree_delete(outnet->serviced, sq);
   3601 			serviced_node_del(&sq->node, NULL);
   3602 			return NULL;
   3603 		}
   3604 		/* No network action at this point; it will be invoked with the
   3605 		 * serviced_query timer instead to run outside of the mesh. */
   3606 	} else {
   3607 		/* We don't need this region anymore. */
   3608 		alloc_reg_release(env->alloc, region);
   3609 		/* duplicate entries are included in the callback list, because
   3610 		 * there is a counterpart registration by our caller that needs
   3611 		 * to be doubly-removed (with callbacks perhaps). */
   3612 		if(!(cb = (struct service_callback*)regional_alloc(
   3613 			sq->region, sizeof(*cb)))) {
   3614 			return NULL;
   3615 		}
   3616 	}
   3617 	/* add callback to list of callbacks */
   3618 	cb->cb = callback;
   3619 	cb->cb_arg = callback_arg;
   3620 	cb->next = sq->cblist;
   3621 	sq->cblist = cb;
   3622 	return sq;
   3623 }
   3624 
   3625 /** remove callback from list */
   3626 static void
   3627 callback_list_remove(struct serviced_query* sq, void* cb_arg)
   3628 {
   3629 	struct service_callback** pp = &sq->cblist;
   3630 	while(*pp) {
   3631 		if((*pp)->cb_arg == cb_arg) {
   3632 			struct service_callback* del = *pp;
   3633 			*pp = del->next;
   3634 			return;
   3635 		}
   3636 		pp = &(*pp)->next;
   3637 	}
   3638 }
   3639 
   3640 void outnet_serviced_query_stop(struct serviced_query* sq, void* cb_arg)
   3641 {
   3642 	if(!sq)
   3643 		return;
   3644 	callback_list_remove(sq, cb_arg);
   3645 	/* if callbacks() routine scheduled deletion, let it do that */
   3646 	if(!sq->cblist && !sq->busy && !sq->to_be_deleted) {
   3647 		(void)rbtree_delete(sq->outnet->serviced, sq);
   3648 		serviced_delete(sq);
   3649 	}
   3650 }
   3651 
   3652 /** create fd to send to this destination */
   3653 static int
   3654 fd_for_dest(struct outside_network* outnet, struct sockaddr_storage* to_addr,
   3655 	socklen_t to_addrlen)
   3656 {
   3657 	struct sockaddr_storage* addr;
   3658 	socklen_t addrlen;
   3659 	int i, try, dscp;
   3660 	struct port_if* pif;
   3661 
   3662 	/* create fd */
   3663 	dscp = outnet->ip_dscp;
   3664 	for(try = 0; try<1000; try++) {
   3665 		int port = 0;
   3666 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   3667 		int reused = 0;
   3668 #endif
   3669 		int freebind = 0;
   3670 		int noproto = 0;
   3671 		int inuse = 0;
   3672 		int fd = -1;
   3673 
   3674 		/* select interface */
   3675 		if(addr_is_ip6(to_addr, to_addrlen)) {
   3676 			if(outnet->num_ip6 == 0) {
   3677 				char to[64];
   3678 				addr_to_str(to_addr, to_addrlen, to, sizeof(to));
   3679 				verbose(VERB_QUERY, "need ipv6 to send, but no ipv6 outgoing interfaces, for %s", to);
   3680 				return -1;
   3681 			}
   3682 			i = ub_random_max(outnet->rnd, outnet->num_ip6);
   3683 			pif = &outnet->ip6_ifs[i];
   3684 		} else {
   3685 			if(outnet->num_ip4 == 0) {
   3686 				char to[64];
   3687 				addr_to_str(to_addr, to_addrlen, to, sizeof(to));
   3688 				verbose(VERB_QUERY, "need ipv4 to send, but no ipv4 outgoing interfaces, for %s", to);
   3689 				return -1;
   3690 			}
   3691 			i = ub_random_max(outnet->rnd, outnet->num_ip4);
   3692 			pif = &outnet->ip4_ifs[i];
   3693 		}
   3694 		addr = &pif->addr;
   3695 		addrlen = pif->addrlen;
   3696 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   3697 		if(!shared_ports_fetch_random(outnet->shared_ports,
   3698 			pif->shpif, outnet->rnd, 0, pif->inuse,
   3699 			&port, &reused)) {
   3700 			/* try again, perhaps another interface. */
   3701 			continue;
   3702 		}
   3703 		if(reused) {
   3704 			log_assert(port < pif->inuse);
   3705 			port = pif->out[port]->number;
   3706 		}
   3707 #else
   3708 		port = 0;
   3709 #endif
   3710 		if(addr_is_ip6(to_addr, to_addrlen)) {
   3711 			struct sockaddr_in6 sa = *(struct sockaddr_in6*)addr;
   3712 			sa.sin6_port = (in_port_t)htons((uint16_t)port);
   3713 			fd = create_udp_sock(AF_INET6, SOCK_DGRAM,
   3714 				(struct sockaddr*)&sa, addrlen, 1, &inuse, &noproto,
   3715 				0, 0, 0, NULL, 0, freebind, 0, dscp);
   3716 		} else {
   3717 			struct sockaddr_in* sa = (struct sockaddr_in*)addr;
   3718 			sa->sin_port = (in_port_t)htons((uint16_t)port);
   3719 			fd = create_udp_sock(AF_INET, SOCK_DGRAM,
   3720 				(struct sockaddr*)addr, addrlen, 1, &inuse, &noproto,
   3721 				0, 0, 0, NULL, 0, freebind, 0, dscp);
   3722 		}
   3723 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   3724 		if(!reused) {
   3725 			/* Return the port to the pool, since the caller does
   3726 			 * not keep track of it, also have done fd, and bind. */
   3727 			shared_ports_return_port(outnet->shared_ports,
   3728 				pif->shpif, port);
   3729 		}
   3730 #endif
   3731 		if(fd != -1) {
   3732 			return fd;
   3733 		}
   3734 		if(!inuse) {
   3735 			return -1;
   3736 		}
   3737 	}
   3738 	/* too many tries */
   3739 	log_err("cannot send probe, ports are in use");
   3740 	return -1;
   3741 }
   3742 
   3743 struct comm_point*
   3744 outnet_comm_point_for_udp(struct outside_network* outnet,
   3745 	comm_point_callback_type* cb, void* cb_arg,
   3746 	struct sockaddr_storage* to_addr, socklen_t to_addrlen)
   3747 {
   3748 	struct comm_point* cp;
   3749 	int fd = fd_for_dest(outnet, to_addr, to_addrlen);
   3750 	if(fd == -1) {
   3751 		return NULL;
   3752 	}
   3753 	cp = comm_point_create_udp(outnet->base, fd, outnet->udp_buff, 0,
   3754 		cb, cb_arg, NULL);
   3755 	if(!cp) {
   3756 		log_err("malloc failure");
   3757 		close(fd);
   3758 		return NULL;
   3759 	}
   3760 	return cp;
   3761 }
   3762 
   3763 /** setup SSL for comm point */
   3764 static int
   3765 setup_comm_ssl(struct comm_point* cp, struct outside_network* outnet,
   3766 	int fd, char* host)
   3767 {
   3768 	cp->ssl = outgoing_ssl_fd(outnet->sslctx, fd);
   3769 	if(!cp->ssl) {
   3770 		log_err("cannot create SSL object");
   3771 		return 0;
   3772 	}
   3773 #ifdef USE_WINSOCK
   3774 	comm_point_tcp_win_bio_cb(cp, cp->ssl);
   3775 #endif
   3776 	cp->ssl_shake_state = comm_ssl_shake_write;
   3777 	/* https verification */
   3778 #ifdef HAVE_SSL
   3779 	if(outnet->tls_use_sni) {
   3780 		(void)SSL_set_tlsext_host_name(cp->ssl, host);
   3781 	}
   3782 #endif
   3783 #ifdef HAVE_SSL_SET1_DNSNAME
   3784 	if((SSL_CTX_get_verify_mode(outnet->sslctx)&SSL_VERIFY_PEER)) {
   3785 		/* because we set SSL_VERIFY_PEER, in netevent in
   3786 		 * ssl_handshake, it'll check if the certificate
   3787 		 * verification has succeeded */
   3788 		/* SSL_VERIFY_PEER is set on the sslctx */
   3789 		/* and the certificates to verify with are loaded into
   3790 		 * it with SSL_load_verify_locations or
   3791 		 * SSL_CTX_set_default_verify_paths */
   3792 		/* setting the hostname makes openssl verify the
   3793 		 * host name in the x509 certificate in the
   3794 		 * SSL connection*/
   3795 		struct sockaddr_storage tmpaddr;
   3796 		socklen_t tmpaddrlen = (socklen_t)sizeof(tmpaddr);
   3797 		if(ipstrtoaddr(host, UNBOUND_DNS_PORT, &tmpaddr, &tmpaddrlen)) {
   3798 			if(!SSL_set1_ipaddr(cp->ssl, host)) {
   3799 				log_err("SSL_set1_ipaddr failed");
   3800 				return 0;
   3801 			}
   3802 		} else {
   3803 			if(!SSL_set1_dnsname(cp->ssl, host)) {
   3804 				log_err("SSL_set1_dnsname failed");
   3805 				return 0;
   3806 			}
   3807 		}
   3808 	}
   3809 #elif defined(HAVE_SSL_SET1_HOST)
   3810 	if((SSL_CTX_get_verify_mode(outnet->sslctx)&SSL_VERIFY_PEER)) {
   3811 		/* because we set SSL_VERIFY_PEER, in netevent in
   3812 		 * ssl_handshake, it'll check if the certificate
   3813 		 * verification has succeeded */
   3814 		/* SSL_VERIFY_PEER is set on the sslctx */
   3815 		/* and the certificates to verify with are loaded into
   3816 		 * it with SSL_load_verify_locations or
   3817 		 * SSL_CTX_set_default_verify_paths */
   3818 		/* setting the hostname makes openssl verify the
   3819 		 * host name in the x509 certificate in the
   3820 		 * SSL connection*/
   3821 		if(!SSL_set1_host(cp->ssl, host)) {
   3822 			log_err("SSL_set1_host failed");
   3823 			return 0;
   3824 		}
   3825 	}
   3826 #elif defined(HAVE_X509_VERIFY_PARAM_SET1_HOST)
   3827 	/* openssl 1.0.2 has this function that can be used for
   3828 	 * set1_host like verification */
   3829 	if((SSL_CTX_get_verify_mode(outnet->sslctx)&SSL_VERIFY_PEER)) {
   3830 		X509_VERIFY_PARAM* param = SSL_get0_param(cp->ssl);
   3831 #  ifdef X509_CHECK_FLAG_NO_PARTIAL_WILDCARDS
   3832 		X509_VERIFY_PARAM_set_hostflags(param, X509_CHECK_FLAG_NO_PARTIAL_WILDCARDS);
   3833 #  endif
   3834 		if(!X509_VERIFY_PARAM_set1_host(param, host, strlen(host))) {
   3835 			log_err("X509_VERIFY_PARAM_set1_host failed");
   3836 			return 0;
   3837 		}
   3838 	}
   3839 #else
   3840 	(void)host;
   3841 #endif /* HAVE_SSL_SET1_HOST */
   3842 	return 1;
   3843 }
   3844 
   3845 struct comm_point*
   3846 outnet_comm_point_for_tcp(struct outside_network* outnet,
   3847 	comm_point_callback_type* cb, void* cb_arg,
   3848 	struct sockaddr_storage* to_addr, socklen_t to_addrlen,
   3849 	sldns_buffer* query, int timeout, int ssl, char* host)
   3850 {
   3851 	struct comm_point* cp;
   3852 	int fd = outnet_get_tcp_fd(to_addr, to_addrlen, outnet->tcp_mss,
   3853 		outnet->ip_dscp, ssl);
   3854 	if(fd == -1) {
   3855 		return 0;
   3856 	}
   3857 	fd_set_nonblock(fd);
   3858 	if(!outnet_tcp_connect(fd, to_addr, to_addrlen)) {
   3859 		/* outnet_tcp_connect has closed fd on error for us */
   3860 		return 0;
   3861 	}
   3862 	cp = comm_point_create_tcp_out(outnet->base, 65552, cb, cb_arg);
   3863 	if(!cp) {
   3864 		log_err("malloc failure");
   3865 		close(fd);
   3866 		return 0;
   3867 	}
   3868 	cp->repinfo.remote_addrlen = to_addrlen;
   3869 	memcpy(&cp->repinfo.remote_addr, to_addr, to_addrlen);
   3870 
   3871 	/* setup for SSL (if needed) */
   3872 	if(ssl) {
   3873 		if(!setup_comm_ssl(cp, outnet, fd, host)) {
   3874 			log_err("cannot setup XoT");
   3875 			comm_point_delete(cp);
   3876 			return NULL;
   3877 		}
   3878 	}
   3879 
   3880 	/* set timeout on TCP connection */
   3881 	comm_point_start_listening(cp, fd, timeout);
   3882 	/* copy scratch buffer to cp->buffer */
   3883 	sldns_buffer_copy(cp->buffer, query);
   3884 	return cp;
   3885 }
   3886 
   3887 /** setup the User-Agent HTTP header based on http-user-agent configuration */
   3888 static void
   3889 setup_http_user_agent(sldns_buffer* buf, struct config_file* cfg)
   3890 {
   3891 	if(cfg->hide_http_user_agent) return;
   3892 	if(cfg->http_user_agent==NULL || cfg->http_user_agent[0] == 0) {
   3893 		sldns_buffer_printf(buf, "User-Agent: %s/%s\r\n", PACKAGE_NAME,
   3894 			PACKAGE_VERSION);
   3895 	} else {
   3896 		sldns_buffer_printf(buf, "User-Agent: %s\r\n", cfg->http_user_agent);
   3897 	}
   3898 }
   3899 
   3900 /** setup http request headers in buffer for sending query to destination */
   3901 static int
   3902 setup_http_request(sldns_buffer* buf, char* host, char* path,
   3903 	struct config_file* cfg)
   3904 {
   3905 	sldns_buffer_clear(buf);
   3906 	sldns_buffer_printf(buf, "GET /%s HTTP/1.1\r\n", path);
   3907 	sldns_buffer_printf(buf, "Host: %s\r\n", host);
   3908 	setup_http_user_agent(buf, cfg);
   3909 	/* We do not really do multiple queries per connection,
   3910 	 * but this header setting is also not needed.
   3911 	 * sldns_buffer_printf(buf, "Connection: close\r\n") */
   3912 	sldns_buffer_printf(buf, "\r\n");
   3913 	if(sldns_buffer_position(buf)+10 > sldns_buffer_capacity(buf))
   3914 		return 0; /* somehow buffer too short, but it is about 60K
   3915 		and the request is only a couple bytes long. */
   3916 	sldns_buffer_flip(buf);
   3917 	return 1;
   3918 }
   3919 
   3920 struct comm_point*
   3921 outnet_comm_point_for_http(struct outside_network* outnet,
   3922 	comm_point_callback_type* cb, void* cb_arg,
   3923 	struct sockaddr_storage* to_addr, socklen_t to_addrlen, int timeout,
   3924 	int ssl, char* host, char* path, struct config_file* cfg)
   3925 {
   3926 	/* cp calls cb with err=NETEVENT_DONE when transfer is done */
   3927 	struct comm_point* cp;
   3928 	int fd = outnet_get_tcp_fd(to_addr, to_addrlen, outnet->tcp_mss,
   3929 		outnet->ip_dscp, ssl);
   3930 	if(fd == -1) {
   3931 		return 0;
   3932 	}
   3933 	fd_set_nonblock(fd);
   3934 	if(!outnet_tcp_connect(fd, to_addr, to_addrlen)) {
   3935 		/* outnet_tcp_connect has closed fd on error for us */
   3936 		return 0;
   3937 	}
   3938 	cp = comm_point_create_http_out(outnet->base,
   3939 		sldns_buffer_capacity(outnet->udp_buff), cb, cb_arg,
   3940 		outnet->udp_buff);
   3941 	if(!cp) {
   3942 		log_err("malloc failure");
   3943 		close(fd);
   3944 		return 0;
   3945 	}
   3946 	cp->repinfo.remote_addrlen = to_addrlen;
   3947 	memcpy(&cp->repinfo.remote_addr, to_addr, to_addrlen);
   3948 
   3949 	/* setup for SSL (if needed) */
   3950 	if(ssl) {
   3951 		if(!setup_comm_ssl(cp, outnet, fd, host)) {
   3952 			log_err("cannot setup https");
   3953 			comm_point_delete(cp);
   3954 			return NULL;
   3955 		}
   3956 	}
   3957 
   3958 	/* set timeout on TCP connection */
   3959 	comm_point_start_listening(cp, fd, timeout);
   3960 
   3961 	/* setup http request in cp->buffer */
   3962 	if(!setup_http_request(cp->buffer, host, path, cfg)) {
   3963 		log_err("error setting up http request");
   3964 		comm_point_delete(cp);
   3965 		return NULL;
   3966 	}
   3967 	return cp;
   3968 }
   3969 
   3970 /** get memory used by waiting tcp entry (in use or not) */
   3971 static size_t
   3972 waiting_tcp_get_mem(struct waiting_tcp* w)
   3973 {
   3974 	size_t s;
   3975 	if(!w) return 0;
   3976 	s = sizeof(*w) + w->pkt_len;
   3977 	if(w->timer)
   3978 		s += comm_timer_get_mem(w->timer);
   3979 	return s;
   3980 }
   3981 
   3982 /** get memory used by port if */
   3983 static size_t
   3984 if_get_mem(struct port_if* pif)
   3985 {
   3986 	size_t s;
   3987 	int i;
   3988 	s = sizeof(*pif) + sizeof(struct port_comm*)*pif->maxout;
   3989 	for(i=0; i<pif->inuse; i++)
   3990 		s += sizeof(*pif->out[i]) +
   3991 			comm_point_get_mem(pif->out[i]->cp);
   3992 	return s;
   3993 }
   3994 
   3995 /** get memory used by waiting udp */
   3996 static size_t
   3997 waiting_udp_get_mem(struct pending* w)
   3998 {
   3999 	size_t s;
   4000 	s = sizeof(*w) + comm_timer_get_mem(w->timer) + w->pkt_len;
   4001 	return s;
   4002 }
   4003 
   4004 size_t outnet_get_mem(struct outside_network* outnet)
   4005 {
   4006 	size_t i;
   4007 	int k;
   4008 	struct waiting_tcp* w;
   4009 	struct pending* u;
   4010 	struct serviced_query* sq;
   4011 	struct service_callback* sb;
   4012 	struct port_comm* pc;
   4013 	size_t s = sizeof(*outnet) + sizeof(*outnet->base) +
   4014 		sizeof(*outnet->udp_buff) +
   4015 		sldns_buffer_capacity(outnet->udp_buff);
   4016 	/* second buffer is not ours */
   4017 	for(pc = outnet->unused_fds; pc; pc = pc->next) {
   4018 		s += sizeof(*pc) + comm_point_get_mem(pc->cp);
   4019 	}
   4020 	for(k=0; k<outnet->num_ip4; k++)
   4021 		s += if_get_mem(&outnet->ip4_ifs[k]);
   4022 	for(k=0; k<outnet->num_ip6; k++)
   4023 		s += if_get_mem(&outnet->ip6_ifs[k]);
   4024 	for(u=outnet->udp_wait_first; u; u=u->next_waiting)
   4025 		s += waiting_udp_get_mem(u);
   4026 
   4027 	s += sizeof(struct pending_tcp*)*outnet->num_tcp;
   4028 	for(i=0; i<outnet->num_tcp; i++) {
   4029 		s += sizeof(struct pending_tcp);
   4030 		s += comm_point_get_mem(outnet->tcp_conns[i]->c);
   4031 		if(outnet->tcp_conns[i]->query)
   4032 			s += waiting_tcp_get_mem(outnet->tcp_conns[i]->query);
   4033 	}
   4034 	for(w=outnet->tcp_wait_first; w; w = w->next_waiting)
   4035 		s += waiting_tcp_get_mem(w);
   4036 	s += sizeof(*outnet->pending);
   4037 	s += (sizeof(struct pending) + comm_timer_get_mem(NULL)) *
   4038 		outnet->pending->count;
   4039 	s += sizeof(*outnet->serviced);
   4040 	s += outnet->svcd_overhead;
   4041 	RBTREE_FOR(sq, struct serviced_query*, outnet->serviced) {
   4042 		s += sizeof(*sq) + sq->qbuflen;
   4043 		for(sb = sq->cblist; sb; sb = sb->next)
   4044 			s += sizeof(*sb);
   4045 	}
   4046 	return s;
   4047 }
   4048 
   4049 size_t
   4050 serviced_get_mem(struct serviced_query* sq)
   4051 {
   4052 	struct service_callback* sb;
   4053 	size_t s;
   4054 	s = sizeof(*sq) + sq->qbuflen;
   4055 	for(sb = sq->cblist; sb; sb = sb->next)
   4056 		s += sizeof(*sb);
   4057 	if(sq->status == serviced_query_UDP_EDNS ||
   4058 		sq->status == serviced_query_UDP ||
   4059 		sq->status == serviced_query_UDP_EDNS_FRAG ||
   4060 		sq->status == serviced_query_UDP_EDNS_fallback) {
   4061 		s += sizeof(struct pending);
   4062 		s += comm_timer_get_mem(NULL);
   4063 	} else {
   4064 		/* does not have size of the pkt pointer */
   4065 		/* always has a timer except on malloc failures */
   4066 
   4067 		/* these sizes are part of the main outside network mem */
   4068 		/*
   4069 		s += sizeof(struct waiting_tcp);
   4070 		s += comm_timer_get_mem(NULL);
   4071 		*/
   4072 	}
   4073 	return s;
   4074 }
   4075 
   4076 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   4077 /** Setup shared port interface */
   4078 static int shared_ports_setup_if(struct shared_ports_if* shpif, char* str,
   4079 	int* availports, int numavailports)
   4080 {
   4081 	shpif->avail_ports = (int*)memdup(availports,
   4082 		(size_t)numavailports*sizeof(int));
   4083 	if(!shpif->avail_ports)
   4084 		return 0;
   4085 	shpif->avail_total = numavailports;
   4086 	shpif->inuse = 0;
   4087 	shpif->pfxlen = 0;
   4088 	if(!ipstrtoaddr(str, UNBOUND_DNS_PORT, &shpif->addr, &shpif->addrlen) &&
   4089 	   !netblockstrtoaddr(str, UNBOUND_DNS_PORT, &shpif->addr,
   4090 	   &shpif->addrlen, &shpif->pfxlen))
   4091 		return 0;
   4092 	return 1;
   4093 }
   4094 #endif
   4095 
   4096 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   4097 /** Allocate shared ports interfaces */
   4098 static int shared_ports_alloc_ifs(struct shared_ports* shp, char** ifs,
   4099 	int num_ifs, int do_ip4, int do_ip6, int* availports,
   4100 	int numavailports)
   4101 {
   4102 #ifndef INET6
   4103 	do_ip6 = 0;
   4104 #endif
   4105 	calc_num46(ifs, num_ifs, do_ip4, do_ip6,
   4106 		&shp->num_ip4, &shp->num_ip6);
   4107 	if(shp->num_ip4 != 0) {
   4108 		if(!(shp->ip4_ifs = (struct shared_ports_if*)calloc(
   4109 			(size_t)shp->num_ip4,
   4110 			sizeof(struct shared_ports_if))))
   4111 			return 0;
   4112 	}
   4113 	if(shp->num_ip6 != 0) {
   4114 		if(!(shp->ip6_ifs = (struct shared_ports_if*)calloc(
   4115 			(size_t)shp->num_ip6,
   4116 			sizeof(struct shared_ports_if))))
   4117 			return 0;
   4118 	}
   4119 	if(num_ifs == 0) {
   4120 		if(do_ip4 && !shared_ports_setup_if(&shp->ip4_ifs[0],
   4121 			"0.0.0.0", availports, numavailports))
   4122 			return 0;
   4123 		if(do_ip6 && !shared_ports_setup_if(&shp->ip6_ifs[0],
   4124 			"::", availports, numavailports))
   4125 			return 0;
   4126 	} else {
   4127 		size_t done_4 = 0, done_6 = 0;
   4128 		int i;
   4129 		for(i=0; i<num_ifs; i++) {
   4130 			if(str_is_ip6(ifs[i]) && do_ip6 &&
   4131 				(int)done_6 < shp->num_ip6) {
   4132 				if(!shared_ports_setup_if(&shp->ip6_ifs[done_6],
   4133 					ifs[i], availports, numavailports))
   4134 					return 0;
   4135 				done_6++;
   4136 			}
   4137 			if(!str_is_ip6(ifs[i]) && do_ip4 &&
   4138 				(int)done_4 < shp->num_ip4) {
   4139 				if(!shared_ports_setup_if(&shp->ip4_ifs[done_4],
   4140 					ifs[i], availports, numavailports))
   4141 					return 0;
   4142 				done_4++;
   4143 			}
   4144 		}
   4145 	}
   4146 	return 1;
   4147 }
   4148 #endif
   4149 
   4150 struct shared_ports* shared_ports_create(char** ifs, int num_ifs, int do_ip4,
   4151 	int do_ip6, int* availports, int numavailports)
   4152 {
   4153 	struct shared_ports* shp = calloc(1, sizeof(*shp));
   4154 	if(!shp) {
   4155 		log_err("malloc failed");
   4156 		return NULL;
   4157 	}
   4158 	lock_basic_init(&shp->lock);
   4159 	lock_protect(&shp->lock, &shp->ip4_ifs, sizeof(shp->ip4_ifs));
   4160 	lock_protect(&shp->lock, &shp->num_ip4, sizeof(shp->num_ip4));
   4161 	lock_protect(&shp->lock, &shp->ip6_ifs, sizeof(shp->ip6_ifs));
   4162 	lock_protect(&shp->lock, &shp->num_ip6, sizeof(shp->num_ip6));
   4163 
   4164 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   4165 	/* Allocate interfaces */
   4166 	lock_basic_lock(&shp->lock);
   4167 	if(!shared_ports_alloc_ifs(shp, ifs, num_ifs, do_ip4, do_ip6,
   4168 		availports, numavailports)) {
   4169 		log_err("malloc failed");
   4170 		shared_ports_delete(shp);
   4171 		return NULL;
   4172 	}
   4173 	lock_basic_unlock(&shp->lock);
   4174 #else
   4175 	(void)ifs; (void)num_ifs; (void)do_ip4; (void)do_ip6;
   4176 	(void)availports; (void)numavailports;
   4177 #endif
   4178 	return shp;
   4179 }
   4180 
   4181 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   4182 /** Delete shared ports interface structure */
   4183 static void shared_ports_if_delete(struct shared_ports_if* shpif)
   4184 {
   4185 	if(!shpif)
   4186 		return;
   4187 	free(shpif->avail_ports);
   4188 }
   4189 #endif
   4190 
   4191 void shared_ports_delete(struct shared_ports* shp)
   4192 {
   4193 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   4194 	int i;
   4195 #endif
   4196 	if(!shp)
   4197 		return;
   4198 	lock_basic_destroy(&shp->lock);
   4199 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   4200 	for(i=0; i<shp->num_ip4; i++) {
   4201 		shared_ports_if_delete(&shp->ip4_ifs[i]);
   4202 	}
   4203 	free(shp->ip4_ifs);
   4204 	for(i=0; i<shp->num_ip6; i++) {
   4205 		shared_ports_if_delete(&shp->ip6_ifs[i]);
   4206 	}
   4207 	free(shp->ip6_ifs);
   4208 #endif
   4209 	free(shp);
   4210 }
   4211 
   4212 struct shared_ports_if* shared_ports_find_if(struct shared_ports* shp,
   4213 	struct sockaddr_storage* addr, socklen_t addrlen, int pfxlen)
   4214 {
   4215 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   4216 	struct shared_ports_if* ret, *ifs = NULL;
   4217 	int i, num_ifs = 0;
   4218 	lock_basic_lock(&shp->lock);
   4219 	if(addr_is_ip6(addr, addrlen)) {
   4220 		ifs = shp->ip6_ifs;
   4221 		num_ifs = shp->num_ip6;
   4222 	} else {
   4223 		ifs = shp->ip4_ifs;
   4224 		num_ifs = shp->num_ip4;
   4225 	}
   4226 	for(i=0; i<num_ifs; i++) {
   4227 		if(sockaddr_cmp(addr, addrlen, &ifs[i].addr,
   4228 			ifs[i].addrlen) == 0
   4229 			&& pfxlen == ifs[i].pfxlen) {
   4230 			ret = &ifs[i];
   4231 			lock_basic_unlock(&shp->lock);
   4232 			return ret;
   4233 		}
   4234 	}
   4235 	lock_basic_unlock(&shp->lock);
   4236 	return NULL;
   4237 #else
   4238 	(void)shp; (void)addr; (void)addrlen; (void)pfxlen;
   4239 	return NULL;
   4240 #endif
   4241 }
   4242 
   4243 int shared_ports_fetch_random(struct shared_ports* shp,
   4244 	struct shared_ports_if* shpif, struct ub_randstate* rnd,
   4245 	int udp_connect, int reusenum, int* port, int* reused)
   4246 {
   4247 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   4248 	int portno = 0, my_port = 0;
   4249 	if(!shpif)
   4250 		return 0;
   4251 #  ifdef THREADS_DISABLED
   4252 	(void)shp;
   4253 #  endif
   4254 	lock_basic_lock(&shp->lock);
   4255 	if(udp_connect) {
   4256 		/* if we connect() we cannot reuse fds for a port. */
   4257 		if(shpif->inuse >= shpif->avail_total) {
   4258 			lock_basic_unlock(&shp->lock);
   4259 			return 0;
   4260 		}
   4261 		my_port = ub_random_max(rnd,
   4262 			shpif->avail_total - shpif->inuse);
   4263 	} else {
   4264 		/* select from free ports and open ports on this thread. */
   4265 		if(shpif->inuse >= shpif->avail_total) {
   4266 			lock_basic_unlock(&shp->lock);
   4267 			if(reusenum == 0) {
   4268 				return 0;
   4269 			}
   4270 			my_port = ub_random_max(rnd, reusenum);
   4271 			*port = my_port;
   4272 			*reused = 1;
   4273 			return 1;
   4274 		}
   4275 		my_port = ub_random_max(rnd, shpif->avail_total - shpif->inuse
   4276 			+ reusenum);
   4277 		if(my_port < reusenum) {
   4278 			/* port already open */
   4279 			lock_basic_unlock(&shp->lock);
   4280 			*port = my_port;
   4281 			*reused = 1;
   4282 			return 1;
   4283 		}
   4284 		my_port -= reusenum;
   4285 	}
   4286 	log_assert(shpif->inuse < shpif->avail_total);
   4287 	log_assert(my_port >= 0 && my_port < shpif->avail_total);
   4288 	portno = shpif->avail_ports[my_port];
   4289 	shpif->avail_ports[my_port] =
   4290 		shpif->avail_ports[shpif->avail_total-shpif->inuse-1];
   4291 	shpif->inuse++;
   4292 	lock_basic_unlock(&shp->lock);
   4293 	*port = portno;
   4294 	*reused = 0;
   4295 	return 1;
   4296 #else
   4297 	(void)shp; (void)shpif; (void)rnd; (void)udp_connect;
   4298 	(void)reusenum;
   4299 	*port = 0;
   4300 	*reused = 0;
   4301 	return 1;
   4302 #endif
   4303 }
   4304 
   4305 void shared_ports_return_port(struct shared_ports* shp,
   4306 	struct shared_ports_if* shpif, int port)
   4307 {
   4308 #ifndef DISABLE_EXPLICIT_PORT_RANDOMISATION
   4309 	if(!shpif)
   4310 		return;
   4311 #  ifdef THREADS_DISABLED
   4312 	(void)shp;
   4313 #  endif
   4314 	lock_basic_lock(&shp->lock);
   4315 	log_assert(shpif->inuse > 0);
   4316 	shpif->avail_ports[shpif->avail_total - shpif->inuse] = port;
   4317 	shpif->inuse--;
   4318 	lock_basic_unlock(&shp->lock);
   4319 #else
   4320 	(void)shp; (void)shpif; (void)port;
   4321 #endif
   4322 }
   4323