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      1 /*
      2  * util/netevent.c - event notification
      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 contains event notification functions.
     40  */
     41 #include "config.h"
     42 #include "util/netevent.h"
     43 #include "util/ub_event.h"
     44 #include "util/log.h"
     45 #include "util/net_help.h"
     46 #include "util/tcp_conn_limit.h"
     47 #include "util/fptr_wlist.h"
     48 #include "util/proxy_protocol.h"
     49 #include "util/timeval_func.h"
     50 #include "sldns/pkthdr.h"
     51 #include "sldns/sbuffer.h"
     52 #include "sldns/str2wire.h"
     53 #include "dnstap/dnstap.h"
     54 #include "dnscrypt/dnscrypt.h"
     55 #include "services/listen_dnsport.h"
     56 #include "util/random.h"
     57 #ifdef HAVE_SYS_TYPES_H
     58 #include <sys/types.h>
     59 #endif
     60 #ifdef HAVE_SYS_SOCKET_H
     61 #include <sys/socket.h>
     62 #endif
     63 #ifdef HAVE_NETDB_H
     64 #include <netdb.h>
     65 #endif
     66 #ifdef HAVE_POLL_H
     67 #include <poll.h>
     68 #endif
     69 
     70 #ifdef HAVE_OPENSSL_SSL_H
     71 #include <openssl/ssl.h>
     72 #endif
     73 #ifdef HAVE_OPENSSL_ERR_H
     74 #include <openssl/err.h>
     75 #endif
     76 
     77 #ifdef HAVE_NGTCP2
     78 #include <ngtcp2/ngtcp2.h>
     79 #include <ngtcp2/ngtcp2_crypto.h>
     80 #endif
     81 
     82 #ifdef HAVE_LINUX_NET_TSTAMP_H
     83 #include <linux/net_tstamp.h>
     84 #endif
     85 
     86 /* -------- Start of local definitions -------- */
     87 /** if CMSG_ALIGN is not defined on this platform, a workaround */
     88 #ifndef CMSG_ALIGN
     89 #  ifdef __CMSG_ALIGN
     90 #    define CMSG_ALIGN(n) __CMSG_ALIGN(n)
     91 #  elif defined(CMSG_DATA_ALIGN)
     92 #    define CMSG_ALIGN _CMSG_DATA_ALIGN
     93 #  else
     94 #    define CMSG_ALIGN(len) (((len)+sizeof(long)-1) & ~(sizeof(long)-1))
     95 #  endif
     96 #endif
     97 
     98 /** if CMSG_LEN is not defined on this platform, a workaround */
     99 #ifndef CMSG_LEN
    100 #  define CMSG_LEN(len) (CMSG_ALIGN(sizeof(struct cmsghdr))+(len))
    101 #endif
    102 
    103 /** if CMSG_SPACE is not defined on this platform, a workaround */
    104 #ifndef CMSG_SPACE
    105 #  ifdef _CMSG_HDR_ALIGN
    106 #    define CMSG_SPACE(l) (CMSG_ALIGN(l)+_CMSG_HDR_ALIGN(sizeof(struct cmsghdr)))
    107 #  else
    108 #    define CMSG_SPACE(l) (CMSG_ALIGN(l)+CMSG_ALIGN(sizeof(struct cmsghdr)))
    109 #  endif
    110 #endif
    111 
    112 /** The TCP writing query timeout in milliseconds */
    113 #define TCP_QUERY_TIMEOUT 120000
    114 /** The minimum actual TCP timeout to use, regardless of what we advertise,
    115  * in msec */
    116 #define TCP_QUERY_TIMEOUT_MINIMUM 200
    117 
    118 #ifndef NONBLOCKING_IS_BROKEN
    119 /** number of UDP reads to perform per read indication from select */
    120 #define NUM_UDP_PER_SELECT 100
    121 #else
    122 #define NUM_UDP_PER_SELECT 1
    123 #endif
    124 
    125 /** The number of TCP queries over a TCP connection, per read indication
    126  * from select. */
    127 #define NUM_TCP_PER_SELECT 100
    128 
    129 /** timeout in millisec to wait for write to unblock, packets dropped after.*/
    130 #define SEND_BLOCKED_WAIT_TIMEOUT 200
    131 /** max number of times to wait for write to unblock, packets dropped after.*/
    132 #define SEND_BLOCKED_MAX_RETRY 5
    133 
    134 /** Let's make timestamping code cleaner and redefine SO_TIMESTAMP* */
    135 #ifndef SO_TIMESTAMP
    136 #define SO_TIMESTAMP 29
    137 #endif
    138 #ifndef SO_TIMESTAMPNS
    139 #define SO_TIMESTAMPNS 35
    140 #endif
    141 #ifndef SO_TIMESTAMPING
    142 #define SO_TIMESTAMPING 37
    143 #endif
    144 /**
    145  * The internal event structure for keeping ub_event info for the event.
    146  * Possibly other structures (list, tree) this is part of.
    147  */
    148 struct internal_event {
    149 	/** the comm base */
    150 	struct comm_base* base;
    151 	/** ub_event event type */
    152 	struct ub_event* ev;
    153 };
    154 
    155 /**
    156  * Internal base structure, so that every thread has its own events.
    157  */
    158 struct internal_base {
    159 	/** ub_event event_base type. */
    160 	struct ub_event_base* base;
    161 	/** seconds time pointer points here */
    162 	time_t secs;
    163 	/** timeval with current time */
    164 	struct timeval now;
    165 	/** the event used for slow_accept timeouts */
    166 	struct ub_event* slow_accept;
    167 	/** true if slow_accept is enabled */
    168 	int slow_accept_enabled;
    169 	/** last log time for slow logging of file descriptor errors */
    170 	time_t last_slow_log;
    171 	/** last log time for slow logging of write wait failures */
    172 	time_t last_writewait_log;
    173 };
    174 
    175 /**
    176  * Internal timer structure, to store timer event in.
    177  */
    178 struct internal_timer {
    179 	/** the super struct from which derived */
    180 	struct comm_timer super;
    181 	/** the comm base */
    182 	struct comm_base* base;
    183 	/** ub_event event type */
    184 	struct ub_event* ev;
    185 	/** is timer enabled */
    186 	uint8_t enabled;
    187 };
    188 
    189 /**
    190  * Internal signal structure, to store signal event in.
    191  */
    192 struct internal_signal {
    193 	/** ub_event event type */
    194 	struct ub_event* ev;
    195 	/** next in signal list */
    196 	struct internal_signal* next;
    197 };
    198 
    199 /** create a tcp handler with a parent */
    200 static struct comm_point* comm_point_create_tcp_handler(
    201 	struct comm_base *base, struct comm_point* parent, size_t bufsize,
    202 	struct sldns_buffer* spoolbuf, comm_point_callback_type* callback,
    203 	void* callback_arg, struct unbound_socket* socket);
    204 
    205 /* -------- End of local definitions -------- */
    206 
    207 struct comm_base*
    208 comm_base_create(int sigs)
    209 {
    210 	struct comm_base* b = (struct comm_base*)calloc(1,
    211 		sizeof(struct comm_base));
    212 	const char *evnm="event", *evsys="", *evmethod="";
    213 
    214 	if(!b)
    215 		return NULL;
    216 	b->eb = (struct internal_base*)calloc(1, sizeof(struct internal_base));
    217 	if(!b->eb) {
    218 		free(b);
    219 		return NULL;
    220 	}
    221 	b->eb->base = ub_default_event_base(sigs, &b->eb->secs, &b->eb->now);
    222 	if(!b->eb->base) {
    223 		free(b->eb);
    224 		free(b);
    225 		return NULL;
    226 	}
    227 	ub_comm_base_now(b);
    228 	ub_get_event_sys(b->eb->base, &evnm, &evsys, &evmethod);
    229 	verbose(VERB_ALGO, "%s %s uses %s method.", evnm, evsys, evmethod);
    230 	return b;
    231 }
    232 
    233 struct comm_base*
    234 comm_base_create_event(struct ub_event_base* base)
    235 {
    236 	struct comm_base* b = (struct comm_base*)calloc(1,
    237 		sizeof(struct comm_base));
    238 	if(!b)
    239 		return NULL;
    240 	b->eb = (struct internal_base*)calloc(1, sizeof(struct internal_base));
    241 	if(!b->eb) {
    242 		free(b);
    243 		return NULL;
    244 	}
    245 	b->eb->base = base;
    246 	ub_comm_base_now(b);
    247 	return b;
    248 }
    249 
    250 void
    251 comm_base_delete(struct comm_base* b)
    252 {
    253 	if(!b)
    254 		return;
    255 	if(b->eb->slow_accept_enabled) {
    256 		if(ub_event_del(b->eb->slow_accept) != 0) {
    257 			log_err("could not event_del slow_accept");
    258 		}
    259 		ub_event_free(b->eb->slow_accept);
    260 	}
    261 	ub_event_base_free(b->eb->base);
    262 	b->eb->base = NULL;
    263 	free(b->eb);
    264 	free(b);
    265 }
    266 
    267 void
    268 comm_base_delete_no_base(struct comm_base* b)
    269 {
    270 	if(!b)
    271 		return;
    272 	if(b->eb->slow_accept_enabled) {
    273 		if(ub_event_del(b->eb->slow_accept) != 0) {
    274 			log_err("could not event_del slow_accept");
    275 		}
    276 		ub_event_free(b->eb->slow_accept);
    277 	}
    278 	b->eb->base = NULL;
    279 	free(b->eb);
    280 	free(b);
    281 }
    282 
    283 void
    284 comm_base_timept(struct comm_base* b, time_t** tt, struct timeval** tv)
    285 {
    286 	*tt = &b->eb->secs;
    287 	*tv = &b->eb->now;
    288 }
    289 
    290 void
    291 comm_base_dispatch(struct comm_base* b)
    292 {
    293 	int retval;
    294 	retval = ub_event_base_dispatch(b->eb->base);
    295 	if(retval < 0) {
    296 		fatal_exit("event_dispatch returned error %d, "
    297 			"errno is %s", retval, strerror(errno));
    298 	}
    299 }
    300 
    301 void comm_base_exit(struct comm_base* b)
    302 {
    303 	if(ub_event_base_loopexit(b->eb->base) != 0) {
    304 		log_err("Could not loopexit");
    305 	}
    306 }
    307 
    308 void comm_base_set_slow_accept_handlers(struct comm_base* b,
    309 	void (*stop_acc)(void*), void (*start_acc)(void*), void* arg)
    310 {
    311 	b->stop_accept = stop_acc;
    312 	b->start_accept = start_acc;
    313 	b->cb_arg = arg;
    314 }
    315 
    316 struct ub_event_base* comm_base_internal(struct comm_base* b)
    317 {
    318 	return b->eb->base;
    319 }
    320 
    321 struct ub_event* comm_point_internal(struct comm_point* c)
    322 {
    323 	return c->ev->ev;
    324 }
    325 
    326 /** see if errno for udp has to be logged or not uses globals */
    327 static int
    328 udp_send_errno_needs_log(struct sockaddr* addr, socklen_t addrlen)
    329 {
    330 	/* do not log transient errors (unless high verbosity) */
    331 #if defined(ENETUNREACH) || defined(EHOSTDOWN) || defined(EHOSTUNREACH) || defined(ENETDOWN)
    332 	switch(errno) {
    333 #  ifdef ENETUNREACH
    334 		case ENETUNREACH:
    335 #  endif
    336 #  ifdef EHOSTDOWN
    337 		case EHOSTDOWN:
    338 #  endif
    339 #  ifdef EHOSTUNREACH
    340 		case EHOSTUNREACH:
    341 #  endif
    342 #  ifdef ENETDOWN
    343 		case ENETDOWN:
    344 #  endif
    345 		case EPERM:
    346 		case EACCES:
    347 			if(verbosity < VERB_ALGO)
    348 				return 0;
    349 			break;
    350 		default:
    351 			break;
    352 	}
    353 #endif
    354 	/* permission denied is gotten for every send if the
    355 	 * network is disconnected (on some OS), squelch it */
    356 	if( ((errno == EPERM)
    357 #  ifdef EADDRNOTAVAIL
    358 		/* 'Cannot assign requested address' also when disconnected */
    359 		|| (errno == EADDRNOTAVAIL)
    360 #  endif
    361 		) && verbosity < VERB_ALGO)
    362 		return 0;
    363 #  ifdef EADDRINUSE
    364 	/* If SO_REUSEADDR is set, we could try to connect to the same server
    365 	 * from the same source port twice. */
    366 	if(errno == EADDRINUSE && verbosity < VERB_DETAIL)
    367 		return 0;
    368 #  endif
    369 	/* squelch errors where people deploy AAAA ::ffff:bla for
    370 	 * authority servers, which we try for intranets. */
    371 	if(errno == EINVAL && addr_is_ip4mapped(
    372 		(struct sockaddr_storage*)addr, addrlen) &&
    373 		verbosity < VERB_DETAIL)
    374 		return 0;
    375 	/* SO_BROADCAST sockopt can give access to 255.255.255.255,
    376 	 * but a dns cache does not need it. */
    377 	if(errno == EACCES && addr_is_broadcast(
    378 		(struct sockaddr_storage*)addr, addrlen) &&
    379 		verbosity < VERB_DETAIL)
    380 		return 0;
    381 #  ifdef ENOTCONN
    382 	/* For 0.0.0.0, ::0 targets it can return that socket is not connected.
    383 	 * This can be ignored, and the address skipped. It remains
    384 	 * possible to send there for completeness in configuration. */
    385 	if(errno == ENOTCONN && addr_is_any(
    386 		(struct sockaddr_storage*)addr, addrlen) &&
    387 		verbosity < VERB_DETAIL)
    388 		return 0;
    389 #  endif
    390 	return 1;
    391 }
    392 
    393 int tcp_connect_errno_needs_log(struct sockaddr* addr, socklen_t addrlen)
    394 {
    395 	return udp_send_errno_needs_log(addr, addrlen);
    396 }
    397 
    398 /* send a UDP reply */
    399 int
    400 comm_point_send_udp_msg(struct comm_point *c, sldns_buffer* packet,
    401 	struct sockaddr* addr, socklen_t addrlen, int is_connected)
    402 {
    403 	ssize_t sent;
    404 	log_assert(c->fd != -1);
    405 #ifdef UNBOUND_DEBUG
    406 	if(sldns_buffer_remaining(packet) == 0)
    407 		log_err("error: send empty UDP packet");
    408 #endif
    409 	log_assert(addr && addrlen > 0);
    410 	if(!is_connected) {
    411 		sent = sendto(c->fd, (void*)sldns_buffer_begin(packet),
    412 			sldns_buffer_remaining(packet), 0,
    413 			addr, addrlen);
    414 	} else {
    415 		sent = send(c->fd, (void*)sldns_buffer_begin(packet),
    416 			sldns_buffer_remaining(packet), 0);
    417 	}
    418 	if(sent == -1) {
    419 		/* try again and block, waiting for IO to complete,
    420 		 * we want to send the answer, and we will wait for
    421 		 * the ethernet interface buffer to have space. */
    422 #ifndef USE_WINSOCK
    423 		if(errno == EAGAIN || errno == EINTR ||
    424 #  ifdef EWOULDBLOCK
    425 			errno == EWOULDBLOCK ||
    426 #  endif
    427 			errno == ENOBUFS) {
    428 #else
    429 		if(WSAGetLastError() == WSAEINPROGRESS ||
    430 			WSAGetLastError() == WSAEINTR ||
    431 			WSAGetLastError() == WSAENOBUFS ||
    432 			WSAGetLastError() == WSAEWOULDBLOCK) {
    433 #endif
    434 			int retries = 0;
    435 			/* if we set the fd blocking, other threads suddenly
    436 			 * have a blocking fd that they operate on */
    437 			while(sent == -1 && retries < SEND_BLOCKED_MAX_RETRY && (
    438 #ifndef USE_WINSOCK
    439 				errno == EAGAIN || errno == EINTR ||
    440 #  ifdef EWOULDBLOCK
    441 				errno == EWOULDBLOCK ||
    442 #  endif
    443 				errno == ENOBUFS
    444 #else
    445 				WSAGetLastError() == WSAEINPROGRESS ||
    446 				WSAGetLastError() == WSAEINTR ||
    447 				WSAGetLastError() == WSAENOBUFS ||
    448 				WSAGetLastError() == WSAEWOULDBLOCK
    449 #endif
    450 			)) {
    451 #if defined(HAVE_POLL) || defined(USE_WINSOCK)
    452 				int send_nobufs = (
    453 #ifndef USE_WINSOCK
    454 					errno == ENOBUFS
    455 #else
    456 					WSAGetLastError() == WSAENOBUFS
    457 #endif
    458 				);
    459 				struct pollfd p;
    460 				int pret;
    461 				memset(&p, 0, sizeof(p));
    462 				p.fd = c->fd;
    463 				p.events = POLLOUT
    464 #ifndef USE_WINSOCK
    465 					| POLLERR | POLLHUP
    466 #endif
    467 					;
    468 #  ifndef USE_WINSOCK
    469 				pret = poll(&p, 1, SEND_BLOCKED_WAIT_TIMEOUT);
    470 #  else
    471 				pret = WSAPoll(&p, 1,
    472 					SEND_BLOCKED_WAIT_TIMEOUT);
    473 #  endif
    474 				if(pret == 0) {
    475 					/* timer expired */
    476 					struct comm_base* b = c->ev->base;
    477 					if(b->eb->last_writewait_log+SLOW_LOG_TIME <=
    478 						b->eb->secs) {
    479 						b->eb->last_writewait_log = b->eb->secs;
    480 						verbose(VERB_OPS, "send udp blocked "
    481 							"for long, dropping packet.");
    482 					}
    483 					return 0;
    484 				} else if(pret < 0 &&
    485 #ifndef USE_WINSOCK
    486 					errno != EAGAIN && errno != EINTR &&
    487 #  ifdef EWOULDBLOCK
    488 					errno != EWOULDBLOCK &&
    489 #  endif
    490 					errno != ENOMEM && errno != ENOBUFS
    491 #else
    492 					WSAGetLastError() != WSAEINPROGRESS &&
    493 					WSAGetLastError() != WSAEINTR &&
    494 					WSAGetLastError() != WSAENOBUFS &&
    495 					WSAGetLastError() != WSAEWOULDBLOCK
    496 #endif
    497 					) {
    498 					log_err("poll udp out failed: %s",
    499 						sock_strerror(errno));
    500 					return 0;
    501 				} else if((pret < 0 &&
    502 #ifndef USE_WINSOCK
    503 					( errno == ENOBUFS  /* Maybe some systems */
    504 					|| errno == ENOMEM  /* Linux */
    505 					|| errno == EAGAIN)  /* Macos, solaris, openbsd */
    506 #else
    507 					WSAGetLastError() == WSAENOBUFS
    508 #endif
    509 					) || (send_nobufs && retries > 0)) {
    510 					/* ENOBUFS/ENOMEM/EAGAIN, and poll
    511 					 * returned without
    512 					 * a timeout. Or the retried send call
    513 					 * returned ENOBUFS/ENOMEM/EAGAIN.
    514 					 * It is good to wait a bit for the
    515 					 * error to clear. */
    516 					/* The timeout is 20*(2^(retries+1)),
    517 					 * it increases exponentially, starting
    518 					 * at 40 msec. After 5 tries, 1240 msec
    519 					 * have passed in total, when poll
    520 					 * returned the error, and 1200 msec
    521 					 * when send returned the errors. */
    522 #ifndef USE_WINSOCK
    523 					pret = poll(NULL, 0, (SEND_BLOCKED_WAIT_TIMEOUT/10)<<(retries+1));
    524 #else
    525 					Sleep((SEND_BLOCKED_WAIT_TIMEOUT/10)<<(retries+1));
    526 					pret = 0;
    527 #endif
    528 					if(pret < 0
    529 #ifndef USE_WINSOCK
    530 						&& errno != EAGAIN && errno != EINTR &&
    531 #  ifdef EWOULDBLOCK
    532 						errno != EWOULDBLOCK &&
    533 #  endif
    534 						errno != ENOMEM && errno != ENOBUFS
    535 #else
    536 						/* Sleep does not error */
    537 #endif
    538 					) {
    539 						log_err("poll udp out timer failed: %s",
    540 							sock_strerror(errno));
    541 					}
    542 				}
    543 #endif /* defined(HAVE_POLL) || defined(USE_WINSOCK) */
    544 				retries++;
    545 				if (!is_connected) {
    546 					sent = sendto(c->fd, (void*)sldns_buffer_begin(packet),
    547 						sldns_buffer_remaining(packet), 0,
    548 						addr, addrlen);
    549 				} else {
    550 					sent = send(c->fd, (void*)sldns_buffer_begin(packet),
    551 						sldns_buffer_remaining(packet), 0);
    552 				}
    553 			}
    554 		}
    555 	}
    556 	if(sent == -1) {
    557 		if(!udp_send_errno_needs_log(addr, addrlen))
    558 			return 0;
    559 		if (!is_connected) {
    560 			verbose(VERB_OPS, "sendto failed: %s", sock_strerror(errno));
    561 		} else {
    562 			verbose(VERB_OPS, "send failed: %s", sock_strerror(errno));
    563 		}
    564 		if(addr)
    565 			log_addr(VERB_OPS, "remote address is",
    566 				(struct sockaddr_storage*)addr, addrlen);
    567 		return 0;
    568 	} else if((size_t)sent != sldns_buffer_remaining(packet)) {
    569 		log_err("sent %d in place of %d bytes",
    570 			(int)sent, (int)sldns_buffer_remaining(packet));
    571 		return 0;
    572 	}
    573 	return 1;
    574 }
    575 
    576 #if defined(AF_INET6) && defined(IPV6_PKTINFO) && (defined(HAVE_RECVMSG) || defined(HAVE_SENDMSG))
    577 /** print debug ancillary info */
    578 static void p_ancil(const char* str, struct comm_reply* r)
    579 {
    580 	if(r->srctype != 4 && r->srctype != 6) {
    581 		log_info("%s: unknown srctype %d", str, r->srctype);
    582 		return;
    583 	}
    584 
    585 	if(r->srctype == 6) {
    586 #ifdef IPV6_PKTINFO
    587 		char buf[1024];
    588 		if(inet_ntop(AF_INET6, &r->pktinfo.v6info.ipi6_addr,
    589 			buf, (socklen_t)sizeof(buf)) == 0) {
    590 			(void)strlcpy(buf, "(inet_ntop error)", sizeof(buf));
    591 		}
    592 		buf[sizeof(buf)-1]=0;
    593 		log_info("%s: %s %d", str, buf, r->pktinfo.v6info.ipi6_ifindex);
    594 #endif
    595 	} else if(r->srctype == 4) {
    596 #ifdef IP_PKTINFO
    597 		char buf1[1024], buf2[1024];
    598 		if(inet_ntop(AF_INET, &r->pktinfo.v4info.ipi_addr,
    599 			buf1, (socklen_t)sizeof(buf1)) == 0) {
    600 			(void)strlcpy(buf1, "(inet_ntop error)", sizeof(buf1));
    601 		}
    602 		buf1[sizeof(buf1)-1]=0;
    603 #ifdef HAVE_STRUCT_IN_PKTINFO_IPI_SPEC_DST
    604 		if(inet_ntop(AF_INET, &r->pktinfo.v4info.ipi_spec_dst,
    605 			buf2, (socklen_t)sizeof(buf2)) == 0) {
    606 			(void)strlcpy(buf2, "(inet_ntop error)", sizeof(buf2));
    607 		}
    608 		buf2[sizeof(buf2)-1]=0;
    609 #else
    610 		buf2[0]=0;
    611 #endif
    612 		log_info("%s: %d %s %s", str, r->pktinfo.v4info.ipi_ifindex,
    613 			buf1, buf2);
    614 #elif defined(IP_RECVDSTADDR)
    615 		char buf1[1024];
    616 		if(inet_ntop(AF_INET, &r->pktinfo.v4addr,
    617 			buf1, (socklen_t)sizeof(buf1)) == 0) {
    618 			(void)strlcpy(buf1, "(inet_ntop error)", sizeof(buf1));
    619 		}
    620 		buf1[sizeof(buf1)-1]=0;
    621 		log_info("%s: %s", str, buf1);
    622 #endif /* IP_PKTINFO or PI_RECVDSTDADDR */
    623 	}
    624 }
    625 #endif /* AF_INET6 && IPV6_PKTINFO && HAVE_RECVMSG||HAVE_SENDMSG */
    626 
    627 /** send a UDP reply over specified interface*/
    628 static int
    629 comm_point_send_udp_msg_if(struct comm_point *c, sldns_buffer* packet,
    630 	struct sockaddr* addr, socklen_t addrlen, struct comm_reply* r)
    631 {
    632 #if defined(AF_INET6) && defined(IPV6_PKTINFO) && defined(HAVE_SENDMSG)
    633 	ssize_t sent;
    634 	struct msghdr msg;
    635 	struct iovec iov[1];
    636 	union {
    637 		struct cmsghdr hdr;
    638 		char buf[256];
    639 	} control;
    640 #ifndef S_SPLINT_S
    641 	struct cmsghdr *cmsg;
    642 #endif /* S_SPLINT_S */
    643 
    644 	log_assert(c->fd != -1);
    645 #ifdef UNBOUND_DEBUG
    646 	if(sldns_buffer_remaining(packet) == 0)
    647 		log_err("error: send empty UDP packet");
    648 #endif
    649 	log_assert(addr && addrlen > 0);
    650 
    651 	msg.msg_name = addr;
    652 	msg.msg_namelen = addrlen;
    653 	iov[0].iov_base = sldns_buffer_begin(packet);
    654 	iov[0].iov_len = sldns_buffer_remaining(packet);
    655 	msg.msg_iov = iov;
    656 	msg.msg_iovlen = 1;
    657 	msg.msg_control = control.buf;
    658 #ifndef S_SPLINT_S
    659 	msg.msg_controllen = sizeof(control.buf);
    660 #endif /* S_SPLINT_S */
    661 	msg.msg_flags = 0;
    662 
    663 #ifndef S_SPLINT_S
    664 	cmsg = CMSG_FIRSTHDR(&msg);
    665 	if(r->srctype == 4) {
    666 #ifdef IP_PKTINFO
    667 		void* cmsg_data;
    668 		msg.msg_controllen = CMSG_SPACE(sizeof(struct in_pktinfo));
    669 		log_assert(msg.msg_controllen <= sizeof(control.buf));
    670 		cmsg->cmsg_level = IPPROTO_IP;
    671 		cmsg->cmsg_type = IP_PKTINFO;
    672 		memmove(CMSG_DATA(cmsg), &r->pktinfo.v4info,
    673 			sizeof(struct in_pktinfo));
    674 		/* unset the ifindex to not bypass the routing tables */
    675 		cmsg_data = CMSG_DATA(cmsg);
    676 		((struct in_pktinfo *) cmsg_data)->ipi_ifindex = 0;
    677 		cmsg->cmsg_len = CMSG_LEN(sizeof(struct in_pktinfo));
    678 		/* zero the padding bytes inserted by the CMSG_LEN */
    679 		if(sizeof(struct in_pktinfo) < cmsg->cmsg_len)
    680 			memset(((uint8_t*)(CMSG_DATA(cmsg))) +
    681 				sizeof(struct in_pktinfo), 0, cmsg->cmsg_len
    682 				- sizeof(struct in_pktinfo));
    683 #elif defined(IP_SENDSRCADDR)
    684 		msg.msg_controllen = CMSG_SPACE(sizeof(struct in_addr));
    685 		log_assert(msg.msg_controllen <= sizeof(control.buf));
    686 		cmsg->cmsg_level = IPPROTO_IP;
    687 		cmsg->cmsg_type = IP_SENDSRCADDR;
    688 		memmove(CMSG_DATA(cmsg), &r->pktinfo.v4addr,
    689 			sizeof(struct in_addr));
    690 		cmsg->cmsg_len = CMSG_LEN(sizeof(struct in_addr));
    691 		/* zero the padding bytes inserted by the CMSG_LEN */
    692 		if(sizeof(struct in_addr) < cmsg->cmsg_len)
    693 			memset(((uint8_t*)(CMSG_DATA(cmsg))) +
    694 				sizeof(struct in_addr), 0, cmsg->cmsg_len
    695 				- sizeof(struct in_addr));
    696 #else
    697 		verbose(VERB_ALGO, "no IP_PKTINFO or IP_SENDSRCADDR");
    698 		msg.msg_control = NULL;
    699 #endif /* IP_PKTINFO or IP_SENDSRCADDR */
    700 	} else if(r->srctype == 6) {
    701 		void* cmsg_data;
    702 		msg.msg_controllen = CMSG_SPACE(sizeof(struct in6_pktinfo));
    703 		log_assert(msg.msg_controllen <= sizeof(control.buf));
    704 		cmsg->cmsg_level = IPPROTO_IPV6;
    705 		cmsg->cmsg_type = IPV6_PKTINFO;
    706 		memmove(CMSG_DATA(cmsg), &r->pktinfo.v6info,
    707 			sizeof(struct in6_pktinfo));
    708 		/* unset the ifindex to not bypass the routing tables */
    709 		cmsg_data = CMSG_DATA(cmsg);
    710 		((struct in6_pktinfo *) cmsg_data)->ipi6_ifindex = 0;
    711 		cmsg->cmsg_len = CMSG_LEN(sizeof(struct in6_pktinfo));
    712 		/* zero the padding bytes inserted by the CMSG_LEN */
    713 		if(sizeof(struct in6_pktinfo) < cmsg->cmsg_len)
    714 			memset(((uint8_t*)(CMSG_DATA(cmsg))) +
    715 				sizeof(struct in6_pktinfo), 0, cmsg->cmsg_len
    716 				- sizeof(struct in6_pktinfo));
    717 	} else {
    718 		/* try to pass all 0 to use default route */
    719 		msg.msg_controllen = CMSG_SPACE(sizeof(struct in6_pktinfo));
    720 		log_assert(msg.msg_controllen <= sizeof(control.buf));
    721 		cmsg->cmsg_level = IPPROTO_IPV6;
    722 		cmsg->cmsg_type = IPV6_PKTINFO;
    723 		memset(CMSG_DATA(cmsg), 0, sizeof(struct in6_pktinfo));
    724 		cmsg->cmsg_len = CMSG_LEN(sizeof(struct in6_pktinfo));
    725 		/* zero the padding bytes inserted by the CMSG_LEN */
    726 		if(sizeof(struct in6_pktinfo) < cmsg->cmsg_len)
    727 			memset(((uint8_t*)(CMSG_DATA(cmsg))) +
    728 				sizeof(struct in6_pktinfo), 0, cmsg->cmsg_len
    729 				- sizeof(struct in6_pktinfo));
    730 	}
    731 #endif /* S_SPLINT_S */
    732 	if(verbosity >= VERB_ALGO && r->srctype != 0)
    733 		p_ancil("send_udp over interface", r);
    734 	sent = sendmsg(c->fd, &msg, 0);
    735 	if(sent == -1) {
    736 		/* try again and block, waiting for IO to complete,
    737 		 * we want to send the answer, and we will wait for
    738 		 * the ethernet interface buffer to have space. */
    739 #ifndef USE_WINSOCK
    740 		if(errno == EAGAIN || errno == EINTR ||
    741 #  ifdef EWOULDBLOCK
    742 			errno == EWOULDBLOCK ||
    743 #  endif
    744 			errno == ENOBUFS) {
    745 #else
    746 		if(WSAGetLastError() == WSAEINPROGRESS ||
    747 			WSAGetLastError() == WSAEINTR ||
    748 			WSAGetLastError() == WSAENOBUFS ||
    749 			WSAGetLastError() == WSAEWOULDBLOCK) {
    750 #endif
    751 			int retries = 0;
    752 			while(sent == -1 && retries < SEND_BLOCKED_MAX_RETRY && (
    753 #ifndef USE_WINSOCK
    754 				errno == EAGAIN || errno == EINTR ||
    755 #  ifdef EWOULDBLOCK
    756 				errno == EWOULDBLOCK ||
    757 #  endif
    758 				errno == ENOBUFS
    759 #else
    760 				WSAGetLastError() == WSAEINPROGRESS ||
    761 				WSAGetLastError() == WSAEINTR ||
    762 				WSAGetLastError() == WSAENOBUFS ||
    763 				WSAGetLastError() == WSAEWOULDBLOCK
    764 #endif
    765 			)) {
    766 #if defined(HAVE_POLL) || defined(USE_WINSOCK)
    767 				int send_nobufs = (
    768 #ifndef USE_WINSOCK
    769 					errno == ENOBUFS
    770 #else
    771 					WSAGetLastError() == WSAENOBUFS
    772 #endif
    773 				);
    774 				struct pollfd p;
    775 				int pret;
    776 				memset(&p, 0, sizeof(p));
    777 				p.fd = c->fd;
    778 				p.events = POLLOUT
    779 #ifndef USE_WINSOCK
    780 					| POLLERR | POLLHUP
    781 #endif
    782 					;
    783 #  ifndef USE_WINSOCK
    784 				pret = poll(&p, 1, SEND_BLOCKED_WAIT_TIMEOUT);
    785 #  else
    786 				pret = WSAPoll(&p, 1,
    787 					SEND_BLOCKED_WAIT_TIMEOUT);
    788 #  endif
    789 				if(pret == 0) {
    790 					/* timer expired */
    791 					struct comm_base* b = c->ev->base;
    792 					if(b->eb->last_writewait_log+SLOW_LOG_TIME <=
    793 						b->eb->secs) {
    794 						b->eb->last_writewait_log = b->eb->secs;
    795 						verbose(VERB_OPS, "send udp blocked "
    796 							"for long, dropping packet.");
    797 					}
    798 					return 0;
    799 				} else if(pret < 0 &&
    800 #ifndef USE_WINSOCK
    801 					errno != EAGAIN && errno != EINTR &&
    802 #  ifdef EWOULDBLOCK
    803 					errno != EWOULDBLOCK &&
    804 #  endif
    805 					errno != ENOMEM && errno != ENOBUFS
    806 #else
    807 					WSAGetLastError() != WSAEINPROGRESS &&
    808 					WSAGetLastError() != WSAEINTR &&
    809 					WSAGetLastError() != WSAENOBUFS &&
    810 					WSAGetLastError() != WSAEWOULDBLOCK
    811 #endif
    812 					) {
    813 					log_err("poll udp out failed: %s",
    814 						sock_strerror(errno));
    815 					return 0;
    816 				} else if((pret < 0 &&
    817 #ifndef USE_WINSOCK
    818 					( errno == ENOBUFS  /* Maybe some systems */
    819 					|| errno == ENOMEM  /* Linux */
    820 					|| errno == EAGAIN)  /* Macos, solaris, openbsd */
    821 #else
    822 					WSAGetLastError() == WSAENOBUFS
    823 #endif
    824 					) || (send_nobufs && retries > 0)) {
    825 					/* ENOBUFS/ENOMEM/EAGAIN, and poll
    826 					 * returned without
    827 					 * a timeout. Or the retried send call
    828 					 * returned ENOBUFS/ENOMEM/EAGAIN.
    829 					 * It is good to wait a bit for the
    830 					 * error to clear. */
    831 					/* The timeout is 20*(2^(retries+1)),
    832 					 * it increases exponentially, starting
    833 					 * at 40 msec. After 5 tries, 1240 msec
    834 					 * have passed in total, when poll
    835 					 * returned the error, and 1200 msec
    836 					 * when send returned the errors. */
    837 #ifndef USE_WINSOCK
    838 					pret = poll(NULL, 0, (SEND_BLOCKED_WAIT_TIMEOUT/10)<<(retries+1));
    839 #else
    840 					Sleep((SEND_BLOCKED_WAIT_TIMEOUT/10)<<(retries+1));
    841 					pret = 0;
    842 #endif
    843 					if(pret < 0
    844 #ifndef USE_WINSOCK
    845 						&& errno != EAGAIN && errno != EINTR &&
    846 #  ifdef EWOULDBLOCK
    847 						errno != EWOULDBLOCK &&
    848 #  endif
    849 						errno != ENOMEM && errno != ENOBUFS
    850 #else  /* USE_WINSOCK */
    851 						/* Sleep does not error */
    852 #endif
    853 					) {
    854 						log_err("poll udp out timer failed: %s",
    855 							sock_strerror(errno));
    856 					}
    857 				}
    858 #endif /* defined(HAVE_POLL) || defined(USE_WINSOCK) */
    859 				retries++;
    860 				sent = sendmsg(c->fd, &msg, 0);
    861 			}
    862 		}
    863 	}
    864 	if(sent == -1) {
    865 		if(!udp_send_errno_needs_log(addr, addrlen))
    866 			return 0;
    867 		verbose(VERB_OPS, "sendmsg failed: %s", strerror(errno));
    868 		log_addr(VERB_OPS, "remote address is",
    869 			(struct sockaddr_storage*)addr, addrlen);
    870 #ifdef __NetBSD__
    871 		/* netbsd 7 has IP_PKTINFO for recv but not send */
    872 		if(errno == EINVAL && r->srctype == 4)
    873 			log_err("sendmsg: No support for sendmsg(IP_PKTINFO). "
    874 				"Please disable interface-automatic");
    875 #endif
    876 		return 0;
    877 	} else if((size_t)sent != sldns_buffer_remaining(packet)) {
    878 		log_err("sent %d in place of %d bytes",
    879 			(int)sent, (int)sldns_buffer_remaining(packet));
    880 		return 0;
    881 	}
    882 	return 1;
    883 #else
    884 	(void)c;
    885 	(void)packet;
    886 	(void)addr;
    887 	(void)addrlen;
    888 	(void)r;
    889 	log_err("sendmsg: IPV6_PKTINFO not supported");
    890 	return 0;
    891 #endif /* AF_INET6 && IPV6_PKTINFO && HAVE_SENDMSG */
    892 }
    893 
    894 /** return true is UDP receive error needs to be logged */
    895 static int udp_recv_needs_log(int err)
    896 {
    897 	switch(err) {
    898 	case EACCES: /* some hosts send ICMP 'Permission Denied' */
    899 #ifndef USE_WINSOCK
    900 	case ECONNREFUSED:
    901 #  ifdef ENETUNREACH
    902 	case ENETUNREACH:
    903 #  endif
    904 #  ifdef EHOSTDOWN
    905 	case EHOSTDOWN:
    906 #  endif
    907 #  ifdef EHOSTUNREACH
    908 	case EHOSTUNREACH:
    909 #  endif
    910 #  ifdef ENETDOWN
    911 	case ENETDOWN:
    912 #  endif
    913 #else /* USE_WINSOCK */
    914 	case WSAECONNREFUSED:
    915 	case WSAENETUNREACH:
    916 	case WSAEHOSTDOWN:
    917 	case WSAEHOSTUNREACH:
    918 	case WSAENETDOWN:
    919 #endif
    920 		if(verbosity >= VERB_ALGO)
    921 			return 1;
    922 		return 0;
    923 	default:
    924 		break;
    925 	}
    926 	return 1;
    927 }
    928 
    929 /** Parses the PROXYv2 header from buf and updates the comm_reply struct.
    930  *  Returns 1 on success, 0 on failure. */
    931 static int consume_pp2_header(struct sldns_buffer* buf, struct comm_reply* rep,
    932 	int stream) {
    933 	size_t size;
    934 	struct pp2_header *header;
    935 	int err = pp2_read_header(sldns_buffer_begin(buf),
    936 		sldns_buffer_remaining(buf));
    937 	if(err) return 0;
    938 	header = (struct pp2_header*)sldns_buffer_begin(buf);
    939 	size = PP2_HEADER_SIZE + ntohs(header->len);
    940 	if((header->ver_cmd & 0xF) == PP2_CMD_LOCAL) {
    941 		/* A connection from the proxy itself.
    942 		 * No need to do anything with addresses. */
    943 		goto done;
    944 	}
    945 	if(header->fam_prot == PP2_UNSPEC_UNSPEC) {
    946 		/* Unspecified family and protocol. This could be used for
    947 		 * health checks by proxies.
    948 		 * No need to do anything with addresses. */
    949 		goto done;
    950 	}
    951 	/* Read the proxied address */
    952 	switch(header->fam_prot) {
    953 		case PP2_INET_STREAM:
    954 		case PP2_INET_DGRAM:
    955 			{
    956 			struct sockaddr_in* addr =
    957 				(struct sockaddr_in*)&rep->client_addr;
    958 			if(ntohs(header->len) < PP2_HEADER_LEN_INET) {
    959 				verbose(VERB_OPS, "proxy_protocol: header too short for IPv4 address");
    960 				return 0;
    961 			}
    962 			addr->sin_family = AF_INET;
    963 			addr->sin_addr.s_addr = header->addr.addr4.src_addr;
    964 			addr->sin_port = header->addr.addr4.src_port;
    965 			rep->client_addrlen = (socklen_t)sizeof(struct sockaddr_in);
    966 			}
    967 			/* Ignore the destination address; it should be us. */
    968 			break;
    969 		case PP2_INET6_STREAM:
    970 		case PP2_INET6_DGRAM:
    971 			{
    972 			struct sockaddr_in6* addr =
    973 				(struct sockaddr_in6*)&rep->client_addr;
    974 			if(ntohs(header->len) < PP2_HEADER_LEN_INET6) {
    975 				verbose(VERB_OPS, "proxy_protocol: header too short for IPv6 address");
    976 				return 0;
    977 			}
    978 			memset(addr, 0, sizeof(*addr));
    979 			addr->sin6_family = AF_INET6;
    980 			memcpy(&addr->sin6_addr,
    981 				header->addr.addr6.src_addr, 16);
    982 			addr->sin6_port = header->addr.addr6.src_port;
    983 			rep->client_addrlen = (socklen_t)sizeof(struct sockaddr_in6);
    984 			}
    985 			/* Ignore the destination address; it should be us. */
    986 			break;
    987 		default:
    988 			log_err("proxy_protocol: unsupported family and "
    989 				"protocol 0x%x", (int)header->fam_prot);
    990 			return 0;
    991 	}
    992 	rep->is_proxied = 1;
    993 done:
    994 	if(!stream) {
    995 		/* We are reading a whole packet;
    996 		 * Move the rest of the data to overwrite the PROXYv2 header */
    997 		/* XXX can we do better to avoid memmove? */
    998 		memmove(header, ((char*)header)+size,
    999 			sldns_buffer_limit(buf)-size);
   1000 		sldns_buffer_set_limit(buf, sldns_buffer_limit(buf)-size);
   1001 	}
   1002 	return 1;
   1003 }
   1004 
   1005 #if defined(AF_INET6) && defined(IPV6_PKTINFO) && defined(HAVE_RECVMSG)
   1006 void
   1007 comm_point_udp_ancil_callback(int fd, short event, void* arg)
   1008 {
   1009 	struct comm_reply rep;
   1010 	struct msghdr msg;
   1011 	struct iovec iov[1];
   1012 	ssize_t rcv;
   1013 	union {
   1014 		struct cmsghdr hdr;
   1015 		char buf[256];
   1016 	} ancil;
   1017 	int i;
   1018 #ifndef S_SPLINT_S
   1019 	struct cmsghdr* cmsg;
   1020 #endif /* S_SPLINT_S */
   1021 #ifdef HAVE_LINUX_NET_TSTAMP_H
   1022 	struct timespec *ts;
   1023 #endif /* HAVE_LINUX_NET_TSTAMP_H */
   1024 
   1025 	rep.c = (struct comm_point*)arg;
   1026 	log_assert(rep.c->type == comm_udp);
   1027 
   1028 	if(!(event&UB_EV_READ))
   1029 		return;
   1030 	log_assert(rep.c && rep.c->buffer && rep.c->fd == fd);
   1031 	ub_comm_base_now(rep.c->ev->base);
   1032 	for(i=0; i<NUM_UDP_PER_SELECT; i++) {
   1033 		sldns_buffer_clear(rep.c->buffer);
   1034 		timeval_clear(&rep.c->recv_tv);
   1035 		rep.remote_addrlen = (socklen_t)sizeof(rep.remote_addr);
   1036 		log_assert(fd != -1);
   1037 		log_assert(sldns_buffer_remaining(rep.c->buffer) > 0);
   1038 		msg.msg_name = &rep.remote_addr;
   1039 		msg.msg_namelen = (socklen_t)sizeof(rep.remote_addr);
   1040 		iov[0].iov_base = sldns_buffer_begin(rep.c->buffer);
   1041 		iov[0].iov_len = sldns_buffer_remaining(rep.c->buffer);
   1042 		msg.msg_iov = iov;
   1043 		msg.msg_iovlen = 1;
   1044 		msg.msg_control = ancil.buf;
   1045 #ifndef S_SPLINT_S
   1046 		msg.msg_controllen = sizeof(ancil.buf);
   1047 #endif /* S_SPLINT_S */
   1048 		msg.msg_flags = 0;
   1049 		rcv = recvmsg(fd, &msg, MSG_DONTWAIT);
   1050 		if(rcv == -1) {
   1051 			if(errno != EAGAIN && errno != EINTR
   1052 				&& udp_recv_needs_log(errno)) {
   1053 				log_err("recvmsg failed: %s", strerror(errno));
   1054 			}
   1055 			return;
   1056 		}
   1057 		rep.remote_addrlen = msg.msg_namelen;
   1058 		sldns_buffer_skip(rep.c->buffer, rcv);
   1059 		sldns_buffer_flip(rep.c->buffer);
   1060 		rep.srctype = 0;
   1061 		rep.is_proxied = 0;
   1062 #ifndef S_SPLINT_S
   1063 		for(cmsg = CMSG_FIRSTHDR(&msg); cmsg != NULL;
   1064 			cmsg = CMSG_NXTHDR(&msg, cmsg)) {
   1065 			if( cmsg->cmsg_level == IPPROTO_IPV6 &&
   1066 				cmsg->cmsg_type == IPV6_PKTINFO) {
   1067 				rep.srctype = 6;
   1068 				memmove(&rep.pktinfo.v6info, CMSG_DATA(cmsg),
   1069 					sizeof(struct in6_pktinfo));
   1070 				break;
   1071 #ifdef IP_PKTINFO
   1072 			} else if( cmsg->cmsg_level == IPPROTO_IP &&
   1073 				cmsg->cmsg_type == IP_PKTINFO) {
   1074 				rep.srctype = 4;
   1075 				memmove(&rep.pktinfo.v4info, CMSG_DATA(cmsg),
   1076 					sizeof(struct in_pktinfo));
   1077 				break;
   1078 #elif defined(IP_RECVDSTADDR)
   1079 			} else if( cmsg->cmsg_level == IPPROTO_IP &&
   1080 				cmsg->cmsg_type == IP_RECVDSTADDR) {
   1081 				rep.srctype = 4;
   1082 				memmove(&rep.pktinfo.v4addr, CMSG_DATA(cmsg),
   1083 					sizeof(struct in_addr));
   1084 				break;
   1085 #endif /* IP_PKTINFO or IP_RECVDSTADDR */
   1086 #ifdef HAVE_LINUX_NET_TSTAMP_H
   1087 			} else if( cmsg->cmsg_level == SOL_SOCKET &&
   1088 				cmsg->cmsg_type == SO_TIMESTAMPNS) {
   1089 				ts = (struct timespec *)CMSG_DATA(cmsg);
   1090 				TIMESPEC_TO_TIMEVAL(&rep.c->recv_tv, ts);
   1091 			} else if( cmsg->cmsg_level == SOL_SOCKET &&
   1092 				cmsg->cmsg_type == SO_TIMESTAMPING) {
   1093 				ts = (struct timespec *)CMSG_DATA(cmsg);
   1094 				TIMESPEC_TO_TIMEVAL(&rep.c->recv_tv, ts);
   1095 			} else if( cmsg->cmsg_level == SOL_SOCKET &&
   1096 				cmsg->cmsg_type == SO_TIMESTAMP) {
   1097 				memmove(&rep.c->recv_tv, CMSG_DATA(cmsg), sizeof(struct timeval));
   1098 #elif defined(SO_TIMESTAMP) && defined(SCM_TIMESTAMP)
   1099 			} else if( cmsg->cmsg_level == SOL_SOCKET &&
   1100 				cmsg->cmsg_type == SCM_TIMESTAMP) {
   1101 				/* FreeBSD and also Linux. */
   1102 				memmove(&rep.c->recv_tv, CMSG_DATA(cmsg), sizeof(struct timeval));
   1103 #endif /* HAVE_LINUX_NET_TSTAMP_H */
   1104 			}
   1105 		}
   1106 
   1107 		if(verbosity >= VERB_ALGO && rep.srctype != 0)
   1108 			p_ancil("receive_udp on interface", &rep);
   1109 #endif /* S_SPLINT_S */
   1110 
   1111 		if(rep.c->pp2_enabled && !consume_pp2_header(rep.c->buffer,
   1112 			&rep, 0)) {
   1113 			log_err("proxy_protocol: could not consume PROXYv2 header");
   1114 			return;
   1115 		}
   1116 		if(!rep.is_proxied) {
   1117 			rep.client_addrlen = rep.remote_addrlen;
   1118 			memmove(&rep.client_addr, &rep.remote_addr,
   1119 				rep.remote_addrlen);
   1120 		}
   1121 
   1122 		fptr_ok(fptr_whitelist_comm_point(rep.c->callback));
   1123 		if((*rep.c->callback)(rep.c, rep.c->cb_arg, NETEVENT_NOERROR, &rep)) {
   1124 			/* send back immediate reply */
   1125 			struct sldns_buffer *buffer;
   1126 #ifdef USE_DNSCRYPT
   1127 			buffer = rep.c->dnscrypt_buffer;
   1128 #else
   1129 			buffer = rep.c->buffer;
   1130 #endif
   1131 			(void)comm_point_send_udp_msg_if(rep.c, buffer,
   1132 				(struct sockaddr*)&rep.remote_addr,
   1133 				rep.remote_addrlen, &rep);
   1134 		}
   1135 		if(!rep.c || rep.c->fd == -1) /* commpoint closed */
   1136 			break;
   1137 	}
   1138 }
   1139 #endif /* AF_INET6 && IPV6_PKTINFO && HAVE_RECVMSG */
   1140 
   1141 void
   1142 comm_point_udp_callback(int fd, short event, void* arg)
   1143 {
   1144 	struct comm_reply rep;
   1145 	ssize_t rcv;
   1146 	int i;
   1147 	struct sldns_buffer *buffer;
   1148 
   1149 	rep.c = (struct comm_point*)arg;
   1150 	log_assert(rep.c->type == comm_udp);
   1151 
   1152 	if(!(event&UB_EV_READ))
   1153 		return;
   1154 	log_assert(rep.c && rep.c->buffer && rep.c->fd == fd);
   1155 	ub_comm_base_now(rep.c->ev->base);
   1156 	for(i=0; i<NUM_UDP_PER_SELECT; i++) {
   1157 		sldns_buffer_clear(rep.c->buffer);
   1158 		rep.remote_addrlen = (socklen_t)sizeof(rep.remote_addr);
   1159 		log_assert(fd != -1);
   1160 		log_assert(sldns_buffer_remaining(rep.c->buffer) > 0);
   1161 		rcv = recvfrom(fd, (void*)sldns_buffer_begin(rep.c->buffer),
   1162 			sldns_buffer_remaining(rep.c->buffer), MSG_DONTWAIT,
   1163 			(struct sockaddr*)&rep.remote_addr, &rep.remote_addrlen);
   1164 		if(rcv == -1) {
   1165 #ifndef USE_WINSOCK
   1166 			if(errno != EAGAIN && errno != EINTR
   1167 				&& udp_recv_needs_log(errno))
   1168 				log_err("recvfrom %d failed: %s",
   1169 					fd, strerror(errno));
   1170 #else
   1171 			if(WSAGetLastError() != WSAEINPROGRESS &&
   1172 				WSAGetLastError() != WSAECONNRESET &&
   1173 				WSAGetLastError()!= WSAEWOULDBLOCK &&
   1174 				udp_recv_needs_log(WSAGetLastError()))
   1175 				log_err("recvfrom failed: %s",
   1176 					wsa_strerror(WSAGetLastError()));
   1177 #endif
   1178 			return;
   1179 		}
   1180 		sldns_buffer_skip(rep.c->buffer, rcv);
   1181 		sldns_buffer_flip(rep.c->buffer);
   1182 		rep.srctype = 0;
   1183 		rep.is_proxied = 0;
   1184 
   1185 		if(rep.c->pp2_enabled && !consume_pp2_header(rep.c->buffer,
   1186 			&rep, 0)) {
   1187 			log_err("proxy_protocol: could not consume PROXYv2 header");
   1188 			return;
   1189 		}
   1190 		if(!rep.is_proxied) {
   1191 			rep.client_addrlen = rep.remote_addrlen;
   1192 			memmove(&rep.client_addr, &rep.remote_addr,
   1193 				rep.remote_addrlen);
   1194 		}
   1195 
   1196 		fptr_ok(fptr_whitelist_comm_point(rep.c->callback));
   1197 		if((*rep.c->callback)(rep.c, rep.c->cb_arg, NETEVENT_NOERROR, &rep)) {
   1198 			/* send back immediate reply */
   1199 #ifdef USE_DNSCRYPT
   1200 			buffer = rep.c->dnscrypt_buffer;
   1201 #else
   1202 			buffer = rep.c->buffer;
   1203 #endif
   1204 			(void)comm_point_send_udp_msg(rep.c, buffer,
   1205 				(struct sockaddr*)&rep.remote_addr,
   1206 				rep.remote_addrlen, 0);
   1207 		}
   1208 		if(!rep.c || rep.c->fd != fd) /* commpoint closed to -1 or reused for
   1209 		another UDP port. Note rep.c cannot be reused with TCP fd. */
   1210 			break;
   1211 	}
   1212 }
   1213 
   1214 #ifdef HAVE_NGTCP2
   1215 void
   1216 doq_pkt_addr_init(struct doq_pkt_addr* paddr)
   1217 {
   1218 	paddr->addrlen = (socklen_t)sizeof(paddr->addr);
   1219 	paddr->localaddrlen = (socklen_t)sizeof(paddr->localaddr);
   1220 	paddr->ifindex = 0;
   1221 }
   1222 
   1223 /** set the ecn on the transmission */
   1224 static void
   1225 doq_set_ecn(int fd, int family, uint32_t ecn)
   1226 {
   1227 	unsigned int val = ecn;
   1228 	if(family == AF_INET6) {
   1229 		if(setsockopt(fd, IPPROTO_IPV6, IPV6_TCLASS, &val,
   1230 			(socklen_t)sizeof(val)) == -1) {
   1231 			log_err("setsockopt(.. IPV6_TCLASS ..): %s",
   1232 				strerror(errno));
   1233 		}
   1234 		return;
   1235 	}
   1236 	if(setsockopt(fd, IPPROTO_IP, IP_TOS, &val,
   1237 		(socklen_t)sizeof(val)) == -1) {
   1238 		log_err("setsockopt(.. IP_TOS ..): %s",
   1239 			strerror(errno));
   1240 	}
   1241 }
   1242 
   1243 /** set the local address in the control ancillary data */
   1244 static void
   1245 doq_set_localaddr_cmsg(struct msghdr* msg, size_t control_size,
   1246 	struct doq_addr_storage* localaddr, socklen_t localaddrlen,
   1247 	int ifindex)
   1248 {
   1249 #ifndef S_SPLINT_S
   1250 	struct cmsghdr* cmsg;
   1251 #endif /* S_SPLINT_S */
   1252 #ifndef S_SPLINT_S
   1253 	cmsg = CMSG_FIRSTHDR(msg);
   1254 	if(localaddr->sockaddr.in.sin_family == AF_INET) {
   1255 #ifdef IP_PKTINFO
   1256 		struct sockaddr_in* sa = (struct sockaddr_in*)localaddr;
   1257 		struct in_pktinfo v4info;
   1258 		log_assert(localaddrlen >= sizeof(struct sockaddr_in));
   1259 		msg->msg_controllen = CMSG_SPACE(sizeof(struct in_pktinfo));
   1260 		memset(msg->msg_control, 0, msg->msg_controllen);
   1261 		log_assert(msg->msg_controllen <= control_size);
   1262 		cmsg->cmsg_level = IPPROTO_IP;
   1263 		cmsg->cmsg_type = IP_PKTINFO;
   1264 		memset(&v4info, 0, sizeof(v4info));
   1265 #  ifdef HAVE_STRUCT_IN_PKTINFO_IPI_SPEC_DST
   1266 		memmove(&v4info.ipi_spec_dst, &sa->sin_addr,
   1267 			sizeof(struct in_addr));
   1268 #  else
   1269 		memmove(&v4info.ipi_addr, &sa->sin_addr,
   1270 			sizeof(struct in_addr));
   1271 #  endif
   1272 		v4info.ipi_ifindex = ifindex;
   1273 		memmove(CMSG_DATA(cmsg), &v4info, sizeof(struct in_pktinfo));
   1274 		cmsg->cmsg_len = CMSG_LEN(sizeof(struct in_pktinfo));
   1275 #elif defined(IP_SENDSRCADDR)
   1276 		struct sockaddr_in* sa= (struct sockaddr_in*)localaddr;
   1277 		log_assert(localaddrlen >= sizeof(struct sockaddr_in));
   1278 		msg->msg_controllen = CMSG_SPACE(sizeof(struct in_addr));
   1279 		memset(msg->msg_control, 0, msg->msg_controllen);
   1280 		log_assert(msg->msg_controllen <= control_size);
   1281 		cmsg->cmsg_level = IPPROTO_IP;
   1282 		cmsg->cmsg_type = IP_SENDSRCADDR;
   1283 		memmove(CMSG_DATA(cmsg),  &sa->sin_addr,
   1284 			sizeof(struct in_addr));
   1285 		cmsg->cmsg_len = CMSG_LEN(sizeof(struct in_addr));
   1286 #endif
   1287 	} else {
   1288 		struct sockaddr_in6* sa6 = (struct sockaddr_in6*)localaddr;
   1289 		struct in6_pktinfo v6info;
   1290 		log_assert(localaddrlen >= sizeof(struct sockaddr_in6));
   1291 		msg->msg_controllen = CMSG_SPACE(sizeof(struct in6_pktinfo));
   1292 		memset(msg->msg_control, 0, msg->msg_controllen);
   1293 		log_assert(msg->msg_controllen <= control_size);
   1294 		cmsg->cmsg_level = IPPROTO_IPV6;
   1295 		cmsg->cmsg_type = IPV6_PKTINFO;
   1296 		memset(&v6info, 0, sizeof(v6info));
   1297 		memmove(&v6info.ipi6_addr, &sa6->sin6_addr,
   1298 			sizeof(struct in6_addr));
   1299 		v6info.ipi6_ifindex = ifindex;
   1300 		memmove(CMSG_DATA(cmsg), &v6info, sizeof(struct in6_pktinfo));
   1301 		cmsg->cmsg_len = CMSG_LEN(sizeof(struct in6_pktinfo));
   1302 	}
   1303 #endif /* S_SPLINT_S */
   1304 	/* Ignore unused variables, if no assertions are compiled. */
   1305 	(void)localaddrlen;
   1306 	(void)control_size;
   1307 }
   1308 
   1309 /** write address and port into strings */
   1310 static int
   1311 doq_print_addr_port(struct doq_addr_storage* addr, socklen_t addrlen,
   1312 	char* host, size_t hostlen, char* port, size_t portlen)
   1313 {
   1314 	if(addr->sockaddr.in.sin_family == AF_INET) {
   1315 		struct sockaddr_in* sa = (struct sockaddr_in*)addr;
   1316 		log_assert(addrlen >= sizeof(*sa));
   1317 		if(inet_ntop(sa->sin_family, &sa->sin_addr, host,
   1318 			(socklen_t)hostlen) == 0) {
   1319 			log_hex("inet_ntop error: address", &sa->sin_addr,
   1320 				sizeof(sa->sin_addr));
   1321 			return 0;
   1322 		}
   1323 		snprintf(port, portlen, "%u", (unsigned)ntohs(sa->sin_port));
   1324 	} else if(addr->sockaddr.in.sin_family == AF_INET6) {
   1325 		struct sockaddr_in6* sa6 = (struct sockaddr_in6*)addr;
   1326 		log_assert(addrlen >= sizeof(*sa6));
   1327 		if(inet_ntop(sa6->sin6_family, &sa6->sin6_addr, host,
   1328 			(socklen_t)hostlen) == 0) {
   1329 			log_hex("inet_ntop error: address", &sa6->sin6_addr,
   1330 				sizeof(sa6->sin6_addr));
   1331 			return 0;
   1332 		}
   1333 		snprintf(port, portlen, "%u", (unsigned)ntohs(sa6->sin6_port));
   1334 	}
   1335 	return 1;
   1336 }
   1337 
   1338 /** doq store the blocked packet when write has blocked */
   1339 static void
   1340 doq_store_blocked_pkt(struct comm_point* c, struct doq_pkt_addr* paddr,
   1341 	uint32_t ecn)
   1342 {
   1343 	if(c->doq_socket->have_blocked_pkt)
   1344 		return; /* should not happen that we write when there is
   1345 		already a blocked write, but if so, drop it. */
   1346 	if(sldns_buffer_limit(c->doq_socket->pkt_buf) >
   1347 		sldns_buffer_capacity(c->doq_socket->blocked_pkt))
   1348 		return; /* impossibly large, drop packet. impossible because
   1349 		pkt_buf and blocked_pkt are the same size. */
   1350 	c->doq_socket->have_blocked_pkt = 1;
   1351 	c->doq_socket->blocked_pkt_pi.ecn = ecn;
   1352 	memcpy(c->doq_socket->blocked_paddr, paddr,
   1353 		sizeof(*c->doq_socket->blocked_paddr));
   1354 	sldns_buffer_clear(c->doq_socket->blocked_pkt);
   1355 	sldns_buffer_write(c->doq_socket->blocked_pkt,
   1356 		sldns_buffer_begin(c->doq_socket->pkt_buf),
   1357 		sldns_buffer_limit(c->doq_socket->pkt_buf));
   1358 	sldns_buffer_flip(c->doq_socket->blocked_pkt);
   1359 }
   1360 
   1361 void
   1362 doq_send_pkt(struct comm_point* c, struct doq_pkt_addr* paddr, uint32_t ecn)
   1363 {
   1364 	struct msghdr msg;
   1365 	struct iovec iov[1];
   1366 	union {
   1367 		struct cmsghdr hdr;
   1368 		char buf[256];
   1369 	} control;
   1370 	ssize_t ret;
   1371 	iov[0].iov_base = sldns_buffer_begin(c->doq_socket->pkt_buf);
   1372 	iov[0].iov_len = sldns_buffer_limit(c->doq_socket->pkt_buf);
   1373 	memset(&msg, 0, sizeof(msg));
   1374 	msg.msg_name = (void*)&paddr->addr;
   1375 	msg.msg_namelen = paddr->addrlen;
   1376 	msg.msg_iov = iov;
   1377 	msg.msg_iovlen = 1;
   1378 	msg.msg_control = control.buf;
   1379 #ifndef S_SPLINT_S
   1380 	msg.msg_controllen = sizeof(control.buf);
   1381 #endif /* S_SPLINT_S */
   1382 	msg.msg_flags = 0;
   1383 
   1384 	doq_set_localaddr_cmsg(&msg, sizeof(control.buf), &paddr->localaddr,
   1385 		paddr->localaddrlen, paddr->ifindex);
   1386 	doq_set_ecn(c->fd, paddr->addr.sockaddr.in.sin_family, ecn);
   1387 
   1388 	for(;;) {
   1389 		ret = sendmsg(c->fd, &msg, MSG_DONTWAIT);
   1390 		if(ret == -1 && errno == EINTR)
   1391 			continue;
   1392 		break;
   1393 	}
   1394 	if(ret == -1) {
   1395 #ifndef USE_WINSOCK
   1396 		if(errno == EAGAIN ||
   1397 #  ifdef EWOULDBLOCK
   1398 			errno == EWOULDBLOCK ||
   1399 #  endif
   1400 			errno == ENOBUFS)
   1401 #else
   1402 		if(WSAGetLastError() == WSAEINPROGRESS ||
   1403 			WSAGetLastError() == WSAENOBUFS ||
   1404 			WSAGetLastError() == WSAEWOULDBLOCK)
   1405 #endif
   1406 		{
   1407 			/* udp send has blocked */
   1408 			doq_store_blocked_pkt(c, paddr, ecn);
   1409 			return;
   1410 		}
   1411 		if(!udp_send_errno_needs_log((void*)&paddr->addr,
   1412 			paddr->addrlen))
   1413 			return;
   1414 		if(verbosity >= VERB_OPS) {
   1415 			char host[256], port[32];
   1416 			if(doq_print_addr_port(&paddr->addr, paddr->addrlen,
   1417 				host, sizeof(host), port, sizeof(port))) {
   1418 				verbose(VERB_OPS, "doq sendmsg to %s %s "
   1419 					"failed: %s", host, port,
   1420 					strerror(errno));
   1421 			} else {
   1422 				verbose(VERB_OPS, "doq sendmsg failed: %s",
   1423 					strerror(errno));
   1424 			}
   1425 		}
   1426 		return;
   1427 	} else if(ret != (ssize_t)sldns_buffer_limit(c->doq_socket->pkt_buf)) {
   1428 		char host[256], port[32];
   1429 		if(doq_print_addr_port(&paddr->addr, paddr->addrlen, host,
   1430 			sizeof(host), port, sizeof(port))) {
   1431 			log_err("doq sendmsg to %s %s failed: "
   1432 				"sent %d in place of %d bytes",
   1433 				host, port, (int)ret,
   1434 				(int)sldns_buffer_limit(c->doq_socket->pkt_buf));
   1435 		} else {
   1436 			log_err("doq sendmsg failed: "
   1437 				"sent %d in place of %d bytes",
   1438 				(int)ret, (int)sldns_buffer_limit(c->doq_socket->pkt_buf));
   1439 		}
   1440 		return;
   1441 	}
   1442 }
   1443 
   1444 /** fetch port number */
   1445 static int
   1446 doq_sockaddr_get_port(struct doq_addr_storage* addr)
   1447 {
   1448 	if(addr->sockaddr.in.sin_family == AF_INET) {
   1449 		struct sockaddr_in* sa = (struct sockaddr_in*)addr;
   1450 		return ntohs(sa->sin_port);
   1451 	} else if(addr->sockaddr.in.sin_family == AF_INET6) {
   1452 		struct sockaddr_in6* sa6 = (struct sockaddr_in6*)addr;
   1453 		return ntohs(sa6->sin6_port);
   1454 	}
   1455 	return 0;
   1456 }
   1457 
   1458 /** get local address from ancillary data headers */
   1459 static int
   1460 doq_get_localaddr_cmsg(struct comm_point* c, struct doq_pkt_addr* paddr,
   1461 	int* pkt_continue, struct msghdr* msg)
   1462 {
   1463 #ifndef S_SPLINT_S
   1464 	struct cmsghdr* cmsg;
   1465 #endif /* S_SPLINT_S */
   1466 
   1467 	memset(&paddr->localaddr, 0, sizeof(paddr->localaddr));
   1468 #ifndef S_SPLINT_S
   1469 	for(cmsg = CMSG_FIRSTHDR(msg); cmsg != NULL;
   1470 		cmsg = CMSG_NXTHDR(msg, cmsg)) {
   1471 		if( cmsg->cmsg_level == IPPROTO_IPV6 &&
   1472 			cmsg->cmsg_type == IPV6_PKTINFO) {
   1473 			struct in6_pktinfo* v6info =
   1474 				(struct in6_pktinfo*)CMSG_DATA(cmsg);
   1475 			struct sockaddr_in6* sa= (struct sockaddr_in6*)
   1476 				&paddr->localaddr;
   1477 			struct sockaddr_in6* rema = (struct sockaddr_in6*)
   1478 				&paddr->addr;
   1479 			if(rema->sin6_family != AF_INET6) {
   1480 				log_err("doq cmsg family mismatch cmsg is ip6");
   1481 				*pkt_continue = 1;
   1482 				return 0;
   1483 			}
   1484 			sa->sin6_family = AF_INET6;
   1485 			sa->sin6_port = htons(doq_sockaddr_get_port(
   1486 				(void*)c->socket->addr));
   1487 			paddr->ifindex = v6info->ipi6_ifindex;
   1488 			memmove(&sa->sin6_addr, &v6info->ipi6_addr,
   1489 				sizeof(struct in6_addr));
   1490 			paddr->localaddrlen = sizeof(struct sockaddr_in6);
   1491 			break;
   1492 #ifdef IP_PKTINFO
   1493 		} else if( cmsg->cmsg_level == IPPROTO_IP &&
   1494 			cmsg->cmsg_type == IP_PKTINFO) {
   1495 			struct in_pktinfo* v4info =
   1496 				(struct in_pktinfo*)CMSG_DATA(cmsg);
   1497 			struct sockaddr_in* sa= (struct sockaddr_in*)
   1498 				&paddr->localaddr;
   1499 			struct sockaddr_in* rema = (struct sockaddr_in*)
   1500 				&paddr->addr;
   1501 			if(rema->sin_family != AF_INET) {
   1502 				log_err("doq cmsg family mismatch cmsg is ip4");
   1503 				*pkt_continue = 1;
   1504 				return 0;
   1505 			}
   1506 			sa->sin_family = AF_INET;
   1507 			sa->sin_port = htons(doq_sockaddr_get_port(
   1508 				(void*)c->socket->addr));
   1509 			paddr->ifindex = v4info->ipi_ifindex;
   1510 			memmove(&sa->sin_addr, &v4info->ipi_addr,
   1511 				sizeof(struct in_addr));
   1512 			paddr->localaddrlen = sizeof(struct sockaddr_in);
   1513 			break;
   1514 #elif defined(IP_RECVDSTADDR)
   1515 		} else if( cmsg->cmsg_level == IPPROTO_IP &&
   1516 			cmsg->cmsg_type == IP_RECVDSTADDR) {
   1517 			struct sockaddr_in* sa= (struct sockaddr_in*)
   1518 				&paddr->localaddr;
   1519 			struct sockaddr_in* rema = (struct sockaddr_in*)
   1520 				&paddr->addr;
   1521 			if(rema->sin_family != AF_INET) {
   1522 				log_err("doq cmsg family mismatch cmsg is ip4");
   1523 				*pkt_continue = 1;
   1524 				return 0;
   1525 			}
   1526 			sa->sin_family = AF_INET;
   1527 			sa->sin_port = htons(doq_sockaddr_get_port(
   1528 				(void*)c->socket->addr));
   1529 			paddr->ifindex = 0;
   1530 			memmove(&sa.sin_addr, CMSG_DATA(cmsg),
   1531 				sizeof(struct in_addr));
   1532 			paddr->localaddrlen = sizeof(struct sockaddr_in);
   1533 			break;
   1534 #endif /* IP_PKTINFO or IP_RECVDSTADDR */
   1535 		}
   1536 	}
   1537 #endif /* S_SPLINT_S */
   1538 
   1539 return 1;
   1540 }
   1541 
   1542 /** get packet ecn information */
   1543 static uint32_t
   1544 msghdr_get_ecn(struct msghdr* msg, int family)
   1545 {
   1546 #ifndef S_SPLINT_S
   1547 	struct cmsghdr* cmsg;
   1548 	if(family == AF_INET6) {
   1549 		for(cmsg = CMSG_FIRSTHDR(msg); cmsg != NULL;
   1550 			cmsg = CMSG_NXTHDR(msg, cmsg)) {
   1551 			if(cmsg->cmsg_level == IPPROTO_IPV6 &&
   1552 				cmsg->cmsg_type == IPV6_TCLASS &&
   1553 				cmsg->cmsg_len != 0) {
   1554 				uint8_t* ecn = (uint8_t*)CMSG_DATA(cmsg);
   1555 				return *ecn;
   1556 			}
   1557 		}
   1558 		return 0;
   1559 	}
   1560 	for(cmsg = CMSG_FIRSTHDR(msg); cmsg != NULL;
   1561 		cmsg = CMSG_NXTHDR(msg, cmsg)) {
   1562 		if(cmsg->cmsg_level == IPPROTO_IP &&
   1563 			cmsg->cmsg_type == IP_TOS &&
   1564 			cmsg->cmsg_len != 0) {
   1565 			uint8_t* ecn = (uint8_t*)CMSG_DATA(cmsg);
   1566 			return *ecn;
   1567 		}
   1568 	}
   1569 #endif /* S_SPLINT_S */
   1570 	return 0;
   1571 }
   1572 
   1573 /** receive packet for DoQ on UDP. get ancillary data for addresses,
   1574  * return false if failed and the callback can stop receiving UDP packets
   1575  * if pkt_continue is false. */
   1576 static int
   1577 doq_recv(struct comm_point* c, struct doq_pkt_addr* paddr, int* pkt_continue,
   1578 	struct ngtcp2_pkt_info* pi)
   1579 {
   1580 	struct msghdr msg;
   1581 	struct iovec iov[1];
   1582 	ssize_t rcv;
   1583 	union {
   1584 		struct cmsghdr hdr;
   1585 		char buf[256];
   1586 	} ancil;
   1587 
   1588 	msg.msg_name = &paddr->addr;
   1589 	msg.msg_namelen = (socklen_t)sizeof(paddr->addr);
   1590 	iov[0].iov_base = sldns_buffer_begin(c->doq_socket->pkt_buf);
   1591 	iov[0].iov_len = sldns_buffer_remaining(c->doq_socket->pkt_buf);
   1592 	msg.msg_iov = iov;
   1593 	msg.msg_iovlen = 1;
   1594 	msg.msg_control = ancil.buf;
   1595 #ifndef S_SPLINT_S
   1596 	msg.msg_controllen = sizeof(ancil.buf);
   1597 #endif /* S_SPLINT_S */
   1598 	msg.msg_flags = 0;
   1599 
   1600 	rcv = recvmsg(c->fd, &msg, MSG_DONTWAIT);
   1601 	if(rcv == -1) {
   1602 		if(errno != EAGAIN && errno != EINTR
   1603 			&& udp_recv_needs_log(errno)) {
   1604 			log_err("recvmsg failed for doq: %s", strerror(errno));
   1605 		}
   1606 		*pkt_continue = 0;
   1607 		return 0;
   1608 	}
   1609 
   1610 	paddr->addrlen = msg.msg_namelen;
   1611 	sldns_buffer_skip(c->doq_socket->pkt_buf, rcv);
   1612 	sldns_buffer_flip(c->doq_socket->pkt_buf);
   1613 	if(!doq_get_localaddr_cmsg(c, paddr, pkt_continue, &msg))
   1614 		return 0;
   1615 	pi->ecn = msghdr_get_ecn(&msg, paddr->addr.sockaddr.in.sin_family);
   1616 	return 1;
   1617 }
   1618 
   1619 /** send the version negotiation for doq. scid and dcid are flipped around
   1620  * to send back to the client. */
   1621 static void
   1622 doq_send_version_negotiation(struct comm_point* c, struct doq_pkt_addr* paddr,
   1623 	const uint8_t* dcid, size_t dcidlen, const uint8_t* scid,
   1624 	size_t scidlen)
   1625 {
   1626 	uint32_t versions[2];
   1627 	size_t versions_len = 0;
   1628 	ngtcp2_ssize ret;
   1629 	uint8_t unused_random;
   1630 
   1631 	/* fill the array with supported versions */
   1632 	versions[0] = NGTCP2_PROTO_VER_V1;
   1633 	versions_len = 1;
   1634 	unused_random = ub_random_max(c->doq_socket->rnd, 256);
   1635 	sldns_buffer_clear(c->doq_socket->pkt_buf);
   1636 	ret = ngtcp2_pkt_write_version_negotiation(
   1637 		sldns_buffer_begin(c->doq_socket->pkt_buf),
   1638 		sldns_buffer_capacity(c->doq_socket->pkt_buf), unused_random,
   1639 		dcid, dcidlen, scid, scidlen, versions, versions_len);
   1640 	if(ret < 0) {
   1641 		log_err("ngtcp2_pkt_write_version_negotiation failed: %s",
   1642 			ngtcp2_strerror(ret));
   1643 		return;
   1644 	}
   1645 	sldns_buffer_set_position(c->doq_socket->pkt_buf, ret);
   1646 	sldns_buffer_flip(c->doq_socket->pkt_buf);
   1647 	doq_send_pkt(c, paddr, 0);
   1648 }
   1649 
   1650 /** Find the doq_conn object by remote address and dcid */
   1651 static struct doq_conn*
   1652 doq_conn_find(struct doq_table* table, struct doq_addr_storage* addr,
   1653 	socklen_t addrlen, struct doq_addr_storage* localaddr,
   1654 	socklen_t localaddrlen, int ifindex, const uint8_t* dcid,
   1655 	size_t dcidlen)
   1656 {
   1657 	struct rbnode_type* node;
   1658 	struct doq_conn key;
   1659 	memset(&key.node, 0, sizeof(key.node));
   1660 	key.node.key = &key;
   1661 	memmove(&key.key.paddr.addr, addr, addrlen);
   1662 	key.key.paddr.addrlen = addrlen;
   1663 	memmove(&key.key.paddr.localaddr, localaddr, localaddrlen);
   1664 	key.key.paddr.localaddrlen = localaddrlen;
   1665 	key.key.paddr.ifindex = ifindex;
   1666 	key.key.dcid = (void*)dcid;
   1667 	key.key.dcidlen = dcidlen;
   1668 	node = rbtree_search(table->conn_tree, &key);
   1669 	if(node)
   1670 		return (struct doq_conn*)node->key;
   1671 	return NULL;
   1672 }
   1673 
   1674 /** find the doq_con by the connection id */
   1675 static struct doq_conn*
   1676 doq_conn_find_by_id(struct doq_table* table, const uint8_t* dcid,
   1677 	size_t dcidlen)
   1678 {
   1679 	struct doq_conid* conid;
   1680 	lock_rw_rdlock(&table->conid_lock);
   1681 	conid = doq_conid_find(table, dcid, dcidlen);
   1682 	if(conid) {
   1683 		/* make a copy of the key */
   1684 		struct doq_conn* conn;
   1685 		struct doq_conn_key key = conid->key;
   1686 		uint8_t cid[NGTCP2_MAX_CIDLEN];
   1687 		log_assert(conid->key.dcidlen <= NGTCP2_MAX_CIDLEN);
   1688 		memcpy(cid, conid->key.dcid, conid->key.dcidlen);
   1689 		key.dcid = cid;
   1690 		lock_rw_unlock(&table->conid_lock);
   1691 
   1692 		/* now that the conid lock is released, look up the conn */
   1693 		lock_rw_rdlock(&table->lock);
   1694 		conn = doq_conn_find(table, &key.paddr.addr,
   1695 			key.paddr.addrlen, &key.paddr.localaddr,
   1696 			key.paddr.localaddrlen, key.paddr.ifindex, key.dcid,
   1697 			key.dcidlen);
   1698 		if(!conn) {
   1699 			/* The connection got deleted between the conid lookup
   1700 			 * and the connection lock grab, it no longer exists,
   1701 			 * so return null. */
   1702 			lock_rw_unlock(&table->lock);
   1703 			return NULL;
   1704 		}
   1705 		lock_basic_lock(&conn->lock);
   1706 		if(conn->is_deleted) {
   1707 			lock_rw_unlock(&table->lock);
   1708 			lock_basic_unlock(&conn->lock);
   1709 			return NULL;
   1710 		}
   1711 		lock_rw_unlock(&table->lock);
   1712 		return conn;
   1713 	}
   1714 	lock_rw_unlock(&table->conid_lock);
   1715 	return NULL;
   1716 }
   1717 
   1718 /** Find the doq_conn, by addr or by connection id */
   1719 static struct doq_conn*
   1720 doq_conn_find_by_addr_or_cid(struct doq_table* table,
   1721 	struct doq_pkt_addr* paddr, const uint8_t* dcid, size_t dcidlen)
   1722 {
   1723 	struct doq_conn* conn;
   1724 	lock_rw_rdlock(&table->lock);
   1725 	conn = doq_conn_find(table, &paddr->addr, paddr->addrlen,
   1726 		&paddr->localaddr, paddr->localaddrlen, paddr->ifindex,
   1727 		dcid, dcidlen);
   1728 	if(conn && conn->is_deleted) {
   1729 		conn = NULL;
   1730 	}
   1731 	if(conn) {
   1732 		lock_basic_lock(&conn->lock);
   1733 		lock_rw_unlock(&table->lock);
   1734 		verbose(VERB_ALGO, "doq: found connection by address, dcid");
   1735 	} else {
   1736 		lock_rw_unlock(&table->lock);
   1737 		conn = doq_conn_find_by_id(table, dcid, dcidlen);
   1738 		if(conn) {
   1739 			verbose(VERB_ALGO, "doq: found connection by dcid");
   1740 		}
   1741 	}
   1742 	return conn;
   1743 }
   1744 
   1745 /** decode doq packet header, false on handled or failure, true to continue
   1746  * to process the packet */
   1747 static int
   1748 doq_decode_pkt_header_negotiate(struct comm_point* c,
   1749 	struct doq_pkt_addr* paddr, struct doq_conn** conn)
   1750 {
   1751 #ifdef HAVE_STRUCT_NGTCP2_VERSION_CID
   1752 	struct ngtcp2_version_cid vc;
   1753 #else
   1754 	uint32_t version;
   1755 	const uint8_t *dcid, *scid;
   1756 	size_t dcidlen, scidlen;
   1757 #endif
   1758 	int rv;
   1759 
   1760 #ifdef HAVE_STRUCT_NGTCP2_VERSION_CID
   1761 	rv = ngtcp2_pkt_decode_version_cid(&vc,
   1762 		sldns_buffer_begin(c->doq_socket->pkt_buf),
   1763 		sldns_buffer_limit(c->doq_socket->pkt_buf),
   1764 		c->doq_socket->sv_scidlen);
   1765 #else
   1766 	rv = ngtcp2_pkt_decode_version_cid(&version, &dcid, &dcidlen,
   1767 		&scid, &scidlen, sldns_buffer_begin(c->doq_socket->pkt_buf),
   1768 		sldns_buffer_limit(c->doq_socket->pkt_buf), c->doq_socket->sv_scidlen);
   1769 #endif
   1770 	if(rv != 0) {
   1771 		if(rv == NGTCP2_ERR_VERSION_NEGOTIATION) {
   1772 			/* send the version negotiation */
   1773 			doq_send_version_negotiation(c, paddr,
   1774 #ifdef HAVE_STRUCT_NGTCP2_VERSION_CID
   1775 			vc.scid, vc.scidlen, vc.dcid, vc.dcidlen
   1776 #else
   1777 			scid, scidlen, dcid, dcidlen
   1778 #endif
   1779 			);
   1780 			return 0;
   1781 		}
   1782 		verbose(VERB_ALGO, "doq: could not decode version "
   1783 			"and CID from QUIC packet header: %s",
   1784 			ngtcp2_strerror(rv));
   1785 		return 0;
   1786 	}
   1787 
   1788 	if(verbosity >= VERB_ALGO) {
   1789 		verbose(VERB_ALGO, "ngtcp2_pkt_decode_version_cid packet has "
   1790 			"QUIC protocol version %u", (unsigned)
   1791 #ifdef HAVE_STRUCT_NGTCP2_VERSION_CID
   1792 			vc.
   1793 #endif
   1794 			version
   1795 			);
   1796 		log_hex("dcid",
   1797 #ifdef HAVE_STRUCT_NGTCP2_VERSION_CID
   1798 			(void*)vc.dcid, vc.dcidlen
   1799 #else
   1800 			(void*)dcid, dcidlen
   1801 #endif
   1802 			);
   1803 		log_hex("scid",
   1804 #ifdef HAVE_STRUCT_NGTCP2_VERSION_CID
   1805 			(void*)vc.scid, vc.scidlen
   1806 #else
   1807 			(void*)scid, scidlen
   1808 #endif
   1809 			);
   1810 	}
   1811 	*conn = doq_conn_find_by_addr_or_cid(c->doq_socket->table, paddr,
   1812 #ifdef HAVE_STRUCT_NGTCP2_VERSION_CID
   1813 		vc.dcid, vc.dcidlen
   1814 #else
   1815 		dcid, dcidlen
   1816 #endif
   1817 		);
   1818 	if(*conn)
   1819 		(*conn)->doq_socket = c->doq_socket;
   1820 	return 1;
   1821 }
   1822 
   1823 /** fill cid structure with random data */
   1824 static void doq_cid_randfill(struct ngtcp2_cid* cid, size_t datalen,
   1825 	struct ub_randstate* rnd)
   1826 {
   1827 	uint8_t buf[32];
   1828 	if(datalen > sizeof(buf))
   1829 		datalen = sizeof(buf);
   1830 	doq_fill_rand(rnd, buf, datalen);
   1831 	ngtcp2_cid_init(cid, buf, datalen);
   1832 }
   1833 
   1834 /** send retry packet for doq connection. */
   1835 static void
   1836 doq_send_retry(struct comm_point* c, struct doq_pkt_addr* paddr,
   1837 	struct ngtcp2_pkt_hd* hd)
   1838 {
   1839 	char host[256], port[32];
   1840 	struct ngtcp2_cid scid;
   1841 	uint8_t token[NGTCP2_CRYPTO_MAX_RETRY_TOKENLEN];
   1842 	ngtcp2_ssize tokenlen, ret;
   1843 
   1844 	if(!doq_print_addr_port(&paddr->addr, paddr->addrlen, host,
   1845 		sizeof(host), port, sizeof(port))) {
   1846 		log_err("doq_send_retry failed");
   1847 		return;
   1848 	}
   1849 	verbose(VERB_ALGO, "doq: sending retry packet to %s %s", host, port);
   1850 
   1851 	/* the server chosen source connection ID */
   1852 	scid.datalen = c->doq_socket->sv_scidlen;
   1853 	doq_cid_randfill(&scid, scid.datalen, c->doq_socket->rnd);
   1854 
   1855 	tokenlen = ngtcp2_crypto_generate_retry_token(token,
   1856 		c->doq_socket->static_secret, c->doq_socket->static_secret_len,
   1857 		hd->version, (void*)&paddr->addr, paddr->addrlen, &scid,
   1858 		&hd->dcid, doq_get_timestamp_nanosec());
   1859 	if(tokenlen < 0) {
   1860 		log_err("ngtcp2_crypto_generate_retry_token failed: %s",
   1861 			ngtcp2_strerror(tokenlen));
   1862 		return;
   1863 	}
   1864 
   1865 	sldns_buffer_clear(c->doq_socket->pkt_buf);
   1866 	ret = ngtcp2_crypto_write_retry(sldns_buffer_begin(c->doq_socket->pkt_buf),
   1867 		sldns_buffer_capacity(c->doq_socket->pkt_buf), hd->version,
   1868 		&hd->scid, &scid, &hd->dcid, token, tokenlen);
   1869 	if(ret < 0) {
   1870 		log_err("ngtcp2_crypto_write_retry failed: %s",
   1871 			ngtcp2_strerror(ret));
   1872 		return;
   1873 	}
   1874 	sldns_buffer_set_position(c->doq_socket->pkt_buf, ret);
   1875 	sldns_buffer_flip(c->doq_socket->pkt_buf);
   1876 	doq_send_pkt(c, paddr, 0);
   1877 }
   1878 
   1879 /** doq send stateless connection close */
   1880 static void
   1881 doq_send_stateless_connection_close(struct comm_point* c,
   1882 	struct doq_pkt_addr* paddr, struct ngtcp2_pkt_hd* hd,
   1883 	uint64_t error_code)
   1884 {
   1885 	ngtcp2_ssize ret;
   1886 	sldns_buffer_clear(c->doq_socket->pkt_buf);
   1887 	ret = ngtcp2_crypto_write_connection_close(
   1888 		sldns_buffer_begin(c->doq_socket->pkt_buf),
   1889 		sldns_buffer_capacity(c->doq_socket->pkt_buf), hd->version, &hd->scid,
   1890 		&hd->dcid, error_code, NULL, 0);
   1891 	if(ret < 0) {
   1892 		log_err("ngtcp2_crypto_write_connection_close failed: %s",
   1893 			ngtcp2_strerror(ret));
   1894 		return;
   1895 	}
   1896 	sldns_buffer_set_position(c->doq_socket->pkt_buf, ret);
   1897 	sldns_buffer_flip(c->doq_socket->pkt_buf);
   1898 	doq_send_pkt(c, paddr, 0);
   1899 }
   1900 
   1901 /** doq verify retry token, false on failure */
   1902 static int
   1903 doq_verify_retry_token(struct comm_point* c, struct doq_pkt_addr* paddr,
   1904 	struct ngtcp2_cid* ocid, struct ngtcp2_pkt_hd* hd)
   1905 {
   1906 	char host[256], port[32];
   1907 	if(!doq_print_addr_port(&paddr->addr, paddr->addrlen, host,
   1908 		sizeof(host), port, sizeof(port))) {
   1909 		log_err("doq_verify_retry_token failed");
   1910 		return 0;
   1911 	}
   1912 	verbose(VERB_ALGO, "doq: verifying retry token from %s %s", host,
   1913 		port);
   1914 	if(ngtcp2_crypto_verify_retry_token(ocid,
   1915 #ifdef HAVE_STRUCT_NGTCP2_PKT_HD_TOKENLEN
   1916 		hd->token, hd->tokenlen,
   1917 #else
   1918 		hd->token.base, hd->token.len,
   1919 #endif
   1920 		c->doq_socket->static_secret,
   1921 		c->doq_socket->static_secret_len, hd->version,
   1922 		(void*)&paddr->addr, paddr->addrlen, &hd->dcid,
   1923 		10*NGTCP2_SECONDS, doq_get_timestamp_nanosec()) != 0) {
   1924 		verbose(VERB_ALGO, "doq: could not verify retry token "
   1925 			"from %s %s", host, port);
   1926 		return 0;
   1927 	}
   1928 	verbose(VERB_ALGO, "doq: verified retry token from %s %s", host, port);
   1929 	return 1;
   1930 }
   1931 
   1932 /** doq verify token, false on failure */
   1933 static int
   1934 doq_verify_token(struct comm_point* c, struct doq_pkt_addr* paddr,
   1935 	struct ngtcp2_pkt_hd* hd)
   1936 {
   1937 	char host[256], port[32];
   1938 	if(!doq_print_addr_port(&paddr->addr, paddr->addrlen, host,
   1939 		sizeof(host), port, sizeof(port))) {
   1940 		log_err("doq_verify_token failed");
   1941 		return 0;
   1942 	}
   1943 	verbose(VERB_ALGO, "doq: verifying token from %s %s", host, port);
   1944 	if(ngtcp2_crypto_verify_regular_token(
   1945 #ifdef HAVE_STRUCT_NGTCP2_PKT_HD_TOKENLEN
   1946 		hd->token, hd->tokenlen,
   1947 #else
   1948 		hd->token.base, hd->token.len,
   1949 #endif
   1950 		c->doq_socket->static_secret, c->doq_socket->static_secret_len,
   1951 		(void*)&paddr->addr, paddr->addrlen, 3600*NGTCP2_SECONDS,
   1952 		doq_get_timestamp_nanosec()) != 0) {
   1953 		verbose(VERB_ALGO, "doq: could not verify token from %s %s",
   1954 			host, port);
   1955 		return 0;
   1956 	}
   1957 	verbose(VERB_ALGO, "doq: verified token from %s %s", host, port);
   1958 	return 1;
   1959 }
   1960 
   1961 /** delete and remove from the lookup tree the doq_conn connection */
   1962 static void
   1963 doq_delete_connection(struct comm_point* c, struct doq_conn* conn)
   1964 {
   1965 	struct doq_conn copy;
   1966 	uint8_t cid[NGTCP2_MAX_CIDLEN];
   1967 	rbnode_type* node;
   1968 	if(!conn)
   1969 		return;
   1970 	/* Copy the key and set it deleted. */
   1971 	conn->is_deleted = 1;
   1972 	doq_conn_write_disable(conn);
   1973 	copy.key = conn->key;
   1974 	log_assert(conn->key.dcidlen <= NGTCP2_MAX_CIDLEN);
   1975 	memcpy(cid, conn->key.dcid, conn->key.dcidlen);
   1976 	copy.key.dcid = cid;
   1977 	copy.node.key = &copy;
   1978 	lock_basic_unlock(&conn->lock);
   1979 
   1980 	/* Now get the table lock to delete it from the tree */
   1981 	lock_rw_wrlock(&c->doq_socket->table->lock);
   1982 	node = rbtree_delete(c->doq_socket->table->conn_tree, copy.node.key);
   1983 	if(node) {
   1984 		conn = (struct doq_conn*)node->key;
   1985 		lock_basic_lock(&conn->lock);
   1986 		doq_conn_write_list_remove(c->doq_socket->table, conn);
   1987 		if(conn->timer.timer_in_list) {
   1988 			/* Remove timer from list first, because finding the
   1989 			 * rbnode element of the setlist of same timeouts
   1990 			 * needs tree lookup. Edit the tree structure after
   1991 			 * that lookup. */
   1992 			doq_timer_list_remove(c->doq_socket->table,
   1993 				&conn->timer);
   1994 		}
   1995 		if(conn->timer.timer_in_tree)
   1996 			doq_timer_tree_remove(c->doq_socket->table,
   1997 				&conn->timer);
   1998 	}
   1999 	lock_rw_unlock(&c->doq_socket->table->lock);
   2000 	if(node) {
   2001 		lock_basic_unlock(&conn->lock);
   2002 		doq_table_quic_size_subtract(c->doq_socket->table,
   2003 			sizeof(*conn)+conn->key.dcidlen);
   2004 		doq_conn_delete(conn, c->doq_socket->table);
   2005 	}
   2006 }
   2007 
   2008 /** create and setup a new doq connection, to a new destination, or with
   2009  * a new dcid. It has a new set of streams. It is inserted in the lookup tree.
   2010  * Returns NULL on failure. */
   2011 static struct doq_conn*
   2012 doq_setup_new_conn(struct comm_point* c, struct doq_pkt_addr* paddr,
   2013 	struct ngtcp2_pkt_hd* hd, struct ngtcp2_cid* ocid)
   2014 {
   2015 	struct doq_conn* conn;
   2016 	if(!doq_table_quic_size_available(c->doq_socket->table,
   2017 		c->doq_socket->cfg, sizeof(*conn)+hd->dcid.datalen
   2018 		+ sizeof(struct doq_stream)
   2019 		+ 100 /* estimated input query */
   2020 		+ 1200 /* estimated output query */)) {
   2021 		verbose(VERB_ALGO, "doq: no mem available for new connection");
   2022 		doq_send_stateless_connection_close(c, paddr, hd,
   2023 			NGTCP2_CONNECTION_REFUSED);
   2024 		return NULL;
   2025 	}
   2026 	conn = doq_conn_create(c, paddr, hd->dcid.data, hd->dcid.datalen,
   2027 		hd->version);
   2028 	if(!conn) {
   2029 		log_err("doq: could not allocate doq_conn");
   2030 		return NULL;
   2031 	}
   2032 	lock_rw_wrlock(&c->doq_socket->table->lock);
   2033 	lock_basic_lock(&conn->lock);
   2034 	if(!rbtree_insert(c->doq_socket->table->conn_tree, &conn->node)) {
   2035 		lock_rw_unlock(&c->doq_socket->table->lock);
   2036 		log_err("doq: duplicate connection");
   2037 		/* conn has no entry in writelist, and no timer yet. */
   2038 		lock_basic_unlock(&conn->lock);
   2039 		doq_conn_delete(conn, c->doq_socket->table);
   2040 		return NULL;
   2041 	}
   2042 	lock_rw_unlock(&c->doq_socket->table->lock);
   2043 	doq_table_quic_size_add(c->doq_socket->table,
   2044 		sizeof(*conn)+conn->key.dcidlen);
   2045 	verbose(VERB_ALGO, "doq: created new connection");
   2046 
   2047 	/* the scid and dcid switch meaning from the accepted client
   2048 	 * connection to the server connection. The 'source' and 'destination'
   2049 	 * meaning is reversed. */
   2050 	if(!doq_conn_setup(conn, hd->scid.data, hd->scid.datalen,
   2051 		(ocid?ocid->data:NULL), (ocid?ocid->datalen:0),
   2052 #ifdef HAVE_STRUCT_NGTCP2_PKT_HD_TOKENLEN
   2053 		hd->token, hd->tokenlen
   2054 #else
   2055 		hd->token.base, hd->token.len
   2056 #endif
   2057 		)) {
   2058 		log_err("doq: could not set up connection");
   2059 		doq_delete_connection(c, conn);
   2060 		return NULL;
   2061 	}
   2062 	return conn;
   2063 }
   2064 
   2065 /** perform doq address validation */
   2066 static int
   2067 doq_address_validation(struct comm_point* c, struct doq_pkt_addr* paddr,
   2068 	struct ngtcp2_pkt_hd* hd, struct ngtcp2_cid* ocid,
   2069 	struct ngtcp2_cid** pocid)
   2070 {
   2071 #ifdef HAVE_STRUCT_NGTCP2_PKT_HD_TOKENLEN
   2072 	const uint8_t* token = hd->token;
   2073 	size_t tokenlen = hd->tokenlen;
   2074 #else
   2075 	const uint8_t* token = hd->token.base;
   2076 	size_t tokenlen = hd->token.len;
   2077 #endif
   2078 	verbose(VERB_ALGO, "doq stateless address validation");
   2079 
   2080 	if(tokenlen == 0 || token == NULL) {
   2081 		doq_send_retry(c, paddr, hd);
   2082 		return 0;
   2083 	}
   2084 	if(token[0] != NGTCP2_CRYPTO_TOKEN_MAGIC_RETRY &&
   2085 		hd->dcid.datalen < NGTCP2_MIN_INITIAL_DCIDLEN) {
   2086 		doq_send_stateless_connection_close(c, paddr, hd,
   2087 			NGTCP2_INVALID_TOKEN);
   2088 		return 0;
   2089 	}
   2090 	if(token[0] == NGTCP2_CRYPTO_TOKEN_MAGIC_RETRY) {
   2091 		if(!doq_verify_retry_token(c, paddr, ocid, hd)) {
   2092 			doq_send_stateless_connection_close(c, paddr, hd,
   2093 				NGTCP2_INVALID_TOKEN);
   2094 			return 0;
   2095 		}
   2096 		*pocid = ocid;
   2097 	} else if(token[0] == NGTCP2_CRYPTO_TOKEN_MAGIC_REGULAR) {
   2098 		if(!doq_verify_token(c, paddr, hd)) {
   2099 			doq_send_retry(c, paddr, hd);
   2100 			return 0;
   2101 		}
   2102 #ifdef HAVE_STRUCT_NGTCP2_PKT_HD_TOKENLEN
   2103 		hd->token = NULL;
   2104 		hd->tokenlen = 0;
   2105 #else
   2106 		hd->token.base = NULL;
   2107 		hd->token.len = 0;
   2108 #endif
   2109 	} else {
   2110 		verbose(VERB_ALGO, "doq address validation: unrecognised "
   2111 			"token in hd.token.base with magic byte 0x%2.2x",
   2112 			(int)token[0]);
   2113 		if(c->doq_socket->validate_addr) {
   2114 			doq_send_retry(c, paddr, hd);
   2115 			return 0;
   2116 		}
   2117 #ifdef HAVE_STRUCT_NGTCP2_PKT_HD_TOKENLEN
   2118 		hd->token = NULL;
   2119 		hd->tokenlen = 0;
   2120 #else
   2121 		hd->token.base = NULL;
   2122 		hd->token.len = 0;
   2123 #endif
   2124 	}
   2125 	return 1;
   2126 }
   2127 
   2128 /** the doq accept, returns false if no further processing of content */
   2129 static int
   2130 doq_accept(struct comm_point* c, struct doq_pkt_addr* paddr,
   2131 	struct doq_conn** conn, struct ngtcp2_pkt_info* pi)
   2132 {
   2133 	int rv;
   2134 	struct ngtcp2_pkt_hd hd;
   2135 	struct ngtcp2_cid ocid, *pocid=NULL;
   2136 	int err_retry;
   2137 	memset(&hd, 0, sizeof(hd));
   2138 	rv = ngtcp2_accept(&hd, sldns_buffer_begin(c->doq_socket->pkt_buf),
   2139 		sldns_buffer_limit(c->doq_socket->pkt_buf));
   2140 	if(rv != 0) {
   2141 		if(rv == NGTCP2_ERR_RETRY) {
   2142 			doq_send_retry(c, paddr, &hd);
   2143 			return 0;
   2144 		}
   2145 		log_err("doq: initial packet failed, ngtcp2_accept failed: %s",
   2146 			ngtcp2_strerror(rv));
   2147 		return 0;
   2148 	}
   2149 	if(c->doq_socket->validate_addr ||
   2150 #ifdef HAVE_STRUCT_NGTCP2_PKT_HD_TOKENLEN
   2151 		hd.tokenlen
   2152 #else
   2153 		hd.token.len
   2154 #endif
   2155 		) {
   2156 		if(!doq_address_validation(c, paddr, &hd, &ocid, &pocid))
   2157 			return 0;
   2158 	}
   2159 	*conn = doq_setup_new_conn(c, paddr, &hd, pocid);
   2160 	if(!*conn)
   2161 		return 0;
   2162 	(*conn)->doq_socket = c->doq_socket;
   2163 	if(!doq_conn_recv(c, paddr, *conn, pi, &err_retry, NULL)) {
   2164 		if(err_retry)
   2165 			doq_send_retry(c, paddr, &hd);
   2166 		doq_delete_connection(c, *conn);
   2167 		*conn = NULL;
   2168 		return 0;
   2169 	}
   2170 	return 1;
   2171 }
   2172 
   2173 /** doq pickup a timer to wait for for the worker. If any timer exists. */
   2174 static void
   2175 doq_pickup_timer(struct comm_point* c)
   2176 {
   2177 	struct doq_timer* t;
   2178 	struct timeval tv;
   2179 	ngtcp2_tstamp ts = 0;
   2180 	int have_time = 0;
   2181 	memset(&tv, 0, sizeof(tv));
   2182 
   2183 	lock_rw_wrlock(&c->doq_socket->table->lock);
   2184 	RBTREE_FOR(t, struct doq_timer*, c->doq_socket->table->timer_tree) {
   2185 		if(t->worker_doq_socket == NULL ||
   2186 			t->worker_doq_socket == c->doq_socket) {
   2187 			/* pick up this element */
   2188 			t->worker_doq_socket = c->doq_socket;
   2189 			memcpy(&tv, &t->time_real, sizeof(tv));
   2190 			ts = t->time_mono;
   2191 			have_time = 1;
   2192 			break;
   2193 		}
   2194 	}
   2195 	lock_rw_unlock(&c->doq_socket->table->lock);
   2196 	c->doq_socket->marked_time = ts;
   2197 	if(have_time) {
   2198 		struct timeval rel;
   2199 		timeval_subtract(&rel, &tv, c->doq_socket->now_tv);
   2200 		comm_timer_set(c->doq_socket->timer, &rel);
   2201 		verbose(VERB_ALGO, "doq pickup timer at %d.%6.6d in %d.%6.6d",
   2202 			(int)tv.tv_sec, (int)tv.tv_usec, (int)rel.tv_sec,
   2203 			(int)rel.tv_usec);
   2204 	} else {
   2205 		if(comm_timer_is_set(c->doq_socket->timer))
   2206 			comm_timer_disable(c->doq_socket->timer);
   2207 		verbose(VERB_ALGO, "doq timer disabled");
   2208 	}
   2209 }
   2210 
   2211 /** doq done with connection, release locks and setup timer and write */
   2212 static void
   2213 doq_done_setup_timer_and_write(struct comm_point* c, struct doq_conn* conn)
   2214 {
   2215 	struct doq_conn copy;
   2216 	uint8_t cid[NGTCP2_MAX_CIDLEN];
   2217 	rbnode_type* node;
   2218 	struct timeval new_tv;
   2219 	ngtcp2_tstamp new_ts;
   2220 	int write_change = 0, timer_change = 0;
   2221 
   2222 	/* No longer in callbacks, so the pointer to doq_socket is back
   2223 	 * to NULL. */
   2224 	conn->doq_socket = NULL;
   2225 
   2226 	if(doq_conn_check_timer(conn, &new_tv, &new_ts))
   2227 		timer_change = 1;
   2228 	if( (conn->write_interest && !conn->on_write_list) ||
   2229 		(!conn->write_interest && conn->on_write_list))
   2230 		write_change = 1;
   2231 
   2232 	if(!timer_change && !write_change) {
   2233 		/* Nothing to do. */
   2234 		lock_basic_unlock(&conn->lock);
   2235 		return;
   2236 	}
   2237 
   2238 	/* The table lock is needed to change the write list and timer tree.
   2239 	 * So the connection lock is release and then the connection is
   2240 	 * looked up again. */
   2241 	copy.key = conn->key;
   2242 	log_assert(conn->key.dcidlen <= NGTCP2_MAX_CIDLEN);
   2243 	memcpy(cid, conn->key.dcid, conn->key.dcidlen);
   2244 	copy.key.dcid = cid;
   2245 	copy.node.key = &copy;
   2246 	lock_basic_unlock(&conn->lock);
   2247 
   2248 	lock_rw_wrlock(&c->doq_socket->table->lock);
   2249 	node = rbtree_search(c->doq_socket->table->conn_tree, copy.node.key);
   2250 	if(!node) {
   2251 		lock_rw_unlock(&c->doq_socket->table->lock);
   2252 		/* Must have been deleted in the mean time. */
   2253 		return;
   2254 	}
   2255 	conn = (struct doq_conn*)node->key;
   2256 	lock_basic_lock(&conn->lock);
   2257 	if(conn->is_deleted) {
   2258 		/* It is deleted now. */
   2259 		lock_rw_unlock(&c->doq_socket->table->lock);
   2260 		lock_basic_unlock(&conn->lock);
   2261 		return;
   2262 	}
   2263 
   2264 	if(write_change) {
   2265 		/* Edit the write lists, we are holding the table.lock and can
   2266 		 * edit the list first,last and also prev,next and on_list
   2267 		 * elements in the doq_conn structures. */
   2268 		doq_conn_set_write_list(c->doq_socket->table, conn);
   2269 	}
   2270 	if(timer_change) {
   2271 		doq_timer_set(c->doq_socket->table, &conn->timer,
   2272 			c->doq_socket, &new_tv, new_ts);
   2273 	}
   2274 	lock_rw_unlock(&c->doq_socket->table->lock);
   2275 	lock_basic_unlock(&conn->lock);
   2276 }
   2277 
   2278 /** doq done with connection callbacks, release locks and setup write */
   2279 static void
   2280 doq_done_with_conn_cb(struct comm_point* c, struct doq_conn* conn)
   2281 {
   2282 	struct doq_conn copy;
   2283 	uint8_t cid[NGTCP2_MAX_CIDLEN];
   2284 	rbnode_type* node;
   2285 
   2286 	/* no longer in callbacks, so the pointer to doq_socket is back
   2287 	 * to NULL. */
   2288 	conn->doq_socket = NULL;
   2289 
   2290 	if( (conn->write_interest && conn->on_write_list) ||
   2291 		(!conn->write_interest && !conn->on_write_list)) {
   2292 		/* The connection already has the required write list
   2293 		 * status. */
   2294 		lock_basic_unlock(&conn->lock);
   2295 		return;
   2296 	}
   2297 
   2298 	/* To edit the write list of connections we have to hold the table
   2299 	 * lock, so we release the connection and then look it up again. */
   2300 	copy.key = conn->key;
   2301 	log_assert(conn->key.dcidlen <= NGTCP2_MAX_CIDLEN);
   2302 	memcpy(cid, conn->key.dcid, conn->key.dcidlen);
   2303 	copy.key.dcid = cid;
   2304 	copy.node.key = &copy;
   2305 	lock_basic_unlock(&conn->lock);
   2306 
   2307 	lock_rw_wrlock(&c->doq_socket->table->lock);
   2308 	node = rbtree_search(c->doq_socket->table->conn_tree, copy.node.key);
   2309 	if(!node) {
   2310 		lock_rw_unlock(&c->doq_socket->table->lock);
   2311 		/* must have been deleted in the mean time */
   2312 		return;
   2313 	}
   2314 	conn = (struct doq_conn*)node->key;
   2315 	lock_basic_lock(&conn->lock);
   2316 	if(conn->is_deleted) {
   2317 		/* it is deleted now. */
   2318 		lock_rw_unlock(&c->doq_socket->table->lock);
   2319 		lock_basic_unlock(&conn->lock);
   2320 		return;
   2321 	}
   2322 
   2323 	/* edit the write lists, we are holding the table.lock and can
   2324 	 * edit the list first,last and also prev,next and on_list elements
   2325 	 * in the doq_conn structures. */
   2326 	doq_conn_set_write_list(c->doq_socket->table, conn);
   2327 	lock_rw_unlock(&c->doq_socket->table->lock);
   2328 	lock_basic_unlock(&conn->lock);
   2329 }
   2330 
   2331 /** doq count the length of the write list */
   2332 static size_t
   2333 doq_write_list_length(struct comm_point* c)
   2334 {
   2335 	size_t count = 0;
   2336 	struct doq_conn* conn;
   2337 	lock_rw_rdlock(&c->doq_socket->table->lock);
   2338 	conn = c->doq_socket->table->write_list_first;
   2339 	while(conn) {
   2340 		count++;
   2341 		conn = conn->write_next;
   2342 	}
   2343 	lock_rw_unlock(&c->doq_socket->table->lock);
   2344 	return count;
   2345 }
   2346 
   2347 /** doq pop the first element from the write list to have write events */
   2348 static struct doq_conn*
   2349 doq_pop_write_conn(struct comm_point* c)
   2350 {
   2351 	struct doq_conn* conn;
   2352 	lock_rw_wrlock(&c->doq_socket->table->lock);
   2353 	conn = doq_table_pop_first(c->doq_socket->table);
   2354 	while(conn && conn->is_deleted) {
   2355 		lock_basic_unlock(&conn->lock);
   2356 		conn = doq_table_pop_first(c->doq_socket->table);
   2357 	}
   2358 	lock_rw_unlock(&c->doq_socket->table->lock);
   2359 	if(conn)
   2360 		conn->doq_socket = c->doq_socket;
   2361 	return conn;
   2362 }
   2363 
   2364 /** doq the connection is done with write callbacks, release it. */
   2365 static void
   2366 doq_done_with_write_cb(struct comm_point* c, struct doq_conn* conn,
   2367 	int delete_it)
   2368 {
   2369 	if(delete_it) {
   2370 		doq_delete_connection(c, conn);
   2371 		return;
   2372 	}
   2373 	doq_done_setup_timer_and_write(c, conn);
   2374 }
   2375 
   2376 /** see if the doq socket wants to write packets */
   2377 static int
   2378 doq_socket_want_write(struct comm_point* c)
   2379 {
   2380 	int want_write = 0;
   2381 	if(c->doq_socket->have_blocked_pkt)
   2382 		return 1;
   2383 	lock_rw_rdlock(&c->doq_socket->table->lock);
   2384 	if(c->doq_socket->table->write_list_first)
   2385 		want_write = 1;
   2386 	lock_rw_unlock(&c->doq_socket->table->lock);
   2387 	return want_write;
   2388 }
   2389 
   2390 /** enable write event for the doq server socket fd */
   2391 static void
   2392 doq_socket_write_enable(struct comm_point* c)
   2393 {
   2394 	verbose(VERB_ALGO, "doq socket want write");
   2395 	if(c->doq_socket->event_has_write)
   2396 		return;
   2397 	comm_point_listen_for_rw(c, 1, 1);
   2398 	c->doq_socket->event_has_write = 1;
   2399 }
   2400 
   2401 /** disable write event for the doq server socket fd */
   2402 static void
   2403 doq_socket_write_disable(struct comm_point* c)
   2404 {
   2405 	verbose(VERB_ALGO, "doq socket want no write");
   2406 	if(!c->doq_socket->event_has_write)
   2407 		return;
   2408 	comm_point_listen_for_rw(c, 1, 0);
   2409 	c->doq_socket->event_has_write = 0;
   2410 }
   2411 
   2412 /** write blocked packet, if possible. returns false if failed, again. */
   2413 static int
   2414 doq_write_blocked_pkt(struct comm_point* c)
   2415 {
   2416 	struct doq_pkt_addr paddr;
   2417 	if(!c->doq_socket->have_blocked_pkt)
   2418 		return 1;
   2419 	c->doq_socket->have_blocked_pkt = 0;
   2420 	if(sldns_buffer_limit(c->doq_socket->blocked_pkt) >
   2421 		sldns_buffer_remaining(c->doq_socket->pkt_buf))
   2422 		return 1; /* impossibly large, drop it.
   2423 		impossible since pkt_buf is same size as blocked_pkt buf. */
   2424 	sldns_buffer_clear(c->doq_socket->pkt_buf);
   2425 	sldns_buffer_write(c->doq_socket->pkt_buf,
   2426 		sldns_buffer_begin(c->doq_socket->blocked_pkt),
   2427 		sldns_buffer_limit(c->doq_socket->blocked_pkt));
   2428 	sldns_buffer_flip(c->doq_socket->pkt_buf);
   2429 	memcpy(&paddr, c->doq_socket->blocked_paddr, sizeof(paddr));
   2430 	doq_send_pkt(c, &paddr, c->doq_socket->blocked_pkt_pi.ecn);
   2431 	if(c->doq_socket->have_blocked_pkt)
   2432 		return 0;
   2433 	return 1;
   2434 }
   2435 
   2436 /** doq find a timer that timed out and return the conn, locked. */
   2437 static struct doq_conn*
   2438 doq_timer_timeout_conn(struct doq_server_socket* doq_socket)
   2439 {
   2440 	struct doq_conn* conn = NULL;
   2441 	struct rbnode_type* node;
   2442 	lock_rw_wrlock(&doq_socket->table->lock);
   2443 	node = rbtree_first(doq_socket->table->timer_tree);
   2444 	if(node && node != RBTREE_NULL) {
   2445 		struct doq_timer* t = (struct doq_timer*)node;
   2446 		conn = t->conn;
   2447 
   2448 		/* If now < timer then no further timeouts in tree. */
   2449 		if(timeval_smaller(doq_socket->now_tv, &t->time_real)) {
   2450 			lock_rw_unlock(&doq_socket->table->lock);
   2451 			return NULL;
   2452 		}
   2453 
   2454 		lock_basic_lock(&conn->lock);
   2455 		conn->doq_socket = doq_socket;
   2456 
   2457 		/* Now that the timer is fired, remove it. */
   2458 		doq_timer_unset(doq_socket->table, t);
   2459 		lock_rw_unlock(&doq_socket->table->lock);
   2460 		return conn;
   2461 	}
   2462 	lock_rw_unlock(&doq_socket->table->lock);
   2463 	return NULL;
   2464 }
   2465 
   2466 /** doq timer erase the marker that said which timer the worker uses. */
   2467 static void
   2468 doq_timer_erase_marker(struct doq_server_socket* doq_socket)
   2469 {
   2470 	struct doq_timer* t;
   2471 	lock_rw_wrlock(&doq_socket->table->lock);
   2472 	t = doq_timer_find_time(doq_socket->table, doq_socket->marked_time);
   2473 	if(t && t->worker_doq_socket == doq_socket)
   2474 		t->worker_doq_socket = NULL;
   2475 	lock_rw_unlock(&doq_socket->table->lock);
   2476 	doq_socket->marked_time = 0;
   2477 }
   2478 
   2479 void
   2480 doq_timer_cb(void* arg)
   2481 {
   2482 	struct doq_server_socket* doq_socket = (struct doq_server_socket*)arg;
   2483 	struct doq_conn* conn;
   2484 	verbose(VERB_ALGO, "doq timer callback");
   2485 
   2486 	doq_timer_erase_marker(doq_socket);
   2487 
   2488 	while((conn = doq_timer_timeout_conn(doq_socket)) != NULL) {
   2489 		if(conn->is_deleted ||
   2490 #ifdef HAVE_NGTCP2_CONN_IN_CLOSING_PERIOD
   2491 			ngtcp2_conn_in_closing_period(conn->conn) ||
   2492 #else
   2493 			ngtcp2_conn_is_in_closing_period(conn->conn) ||
   2494 #endif
   2495 #ifdef HAVE_NGTCP2_CONN_IN_DRAINING_PERIOD
   2496 			ngtcp2_conn_in_draining_period(conn->conn)
   2497 #else
   2498 			ngtcp2_conn_is_in_draining_period(conn->conn)
   2499 #endif
   2500 			) {
   2501 			if(verbosity >= VERB_ALGO) {
   2502 				char remotestr[256];
   2503 				addr_to_str((void*)&conn->key.paddr.addr,
   2504 					conn->key.paddr.addrlen, remotestr,
   2505 					sizeof(remotestr));
   2506 				verbose(VERB_ALGO, "doq conn %s is deleted "
   2507 					"after timeout", remotestr);
   2508 			}
   2509 			doq_delete_connection(doq_socket->cp, conn);
   2510 			continue;
   2511 		}
   2512 		if(!doq_conn_handle_timeout(conn))
   2513 			doq_delete_connection(doq_socket->cp, conn);
   2514 		else doq_done_setup_timer_and_write(doq_socket->cp, conn);
   2515 	}
   2516 
   2517 	if(doq_socket_want_write(doq_socket->cp))
   2518 		doq_socket_write_enable(doq_socket->cp);
   2519 	else doq_socket_write_disable(doq_socket->cp);
   2520 	doq_pickup_timer(doq_socket->cp);
   2521 }
   2522 
   2523 void
   2524 comm_point_doq_callback(int fd, short event, void* arg)
   2525 {
   2526 	struct comm_point* c;
   2527 	struct doq_pkt_addr paddr;
   2528 	int i, pkt_continue, err_drop;
   2529 	struct doq_conn* conn;
   2530 	struct ngtcp2_pkt_info pi;
   2531 	size_t count, num_len;
   2532 
   2533 	c = (struct comm_point*)arg;
   2534 	log_assert(c->type == comm_doq);
   2535 
   2536 	log_assert(c && c->doq_socket->pkt_buf && c->fd == fd);
   2537 	ub_comm_base_now(c->ev->base);
   2538 
   2539 	/* see if there is a blocked packet, and send that if possible.
   2540 	 * do not attempt to read yet, even if possible, that would just
   2541 	 * push more answers in reply to those read packets onto the list
   2542 	 * of written replies. First attempt to clear the write content out.
   2543 	 * That keeps the memory usage from bloating up. */
   2544 	if(c->doq_socket->have_blocked_pkt) {
   2545 		if(!doq_write_blocked_pkt(c)) {
   2546 			/* this write has also blocked, attempt to write
   2547 			 * later. Make sure the event listens to write
   2548 			 * events. */
   2549 			if(!c->doq_socket->event_has_write)
   2550 				doq_socket_write_enable(c);
   2551 			doq_pickup_timer(c);
   2552 			return;
   2553 		}
   2554 	}
   2555 
   2556 	/* see if there is write interest */
   2557 	count = 0;
   2558 	num_len = doq_write_list_length(c);
   2559 	while((conn = doq_pop_write_conn(c)) != NULL) {
   2560 		if(conn->is_deleted ||
   2561 #ifdef HAVE_NGTCP2_CONN_IN_CLOSING_PERIOD
   2562 			ngtcp2_conn_in_closing_period(conn->conn) ||
   2563 #else
   2564 			ngtcp2_conn_is_in_closing_period(conn->conn) ||
   2565 #endif
   2566 #ifdef HAVE_NGTCP2_CONN_IN_DRAINING_PERIOD
   2567 			ngtcp2_conn_in_draining_period(conn->conn)
   2568 #else
   2569 			ngtcp2_conn_is_in_draining_period(conn->conn)
   2570 #endif
   2571 			) {
   2572 			conn->doq_socket = NULL;
   2573 			lock_basic_unlock(&conn->lock);
   2574 			if(c->doq_socket->have_blocked_pkt) {
   2575 				if(!c->doq_socket->event_has_write)
   2576 					doq_socket_write_enable(c);
   2577 				doq_pickup_timer(c);
   2578 				return;
   2579 			}
   2580 			if(++count > num_len*2)
   2581 				break;
   2582 			continue;
   2583 		}
   2584 		if(verbosity >= VERB_ALGO) {
   2585 			char remotestr[256];
   2586 			addr_to_str((void*)&conn->key.paddr.addr,
   2587 				conn->key.paddr.addrlen, remotestr,
   2588 				sizeof(remotestr));
   2589 			verbose(VERB_ALGO, "doq write connection %s %d",
   2590 				remotestr, doq_sockaddr_get_port(
   2591 				&conn->key.paddr.addr));
   2592 		}
   2593 		if(doq_conn_write_streams(c, conn, &err_drop))
   2594 			err_drop = 0;
   2595 		doq_done_with_write_cb(c, conn, err_drop);
   2596 		if(c->doq_socket->have_blocked_pkt) {
   2597 			if(!c->doq_socket->event_has_write)
   2598 				doq_socket_write_enable(c);
   2599 			doq_pickup_timer(c);
   2600 			return;
   2601 		}
   2602 		/* Stop overly long write lists that are created
   2603 		 * while we are processing. Do those next time there
   2604 		 * is a write callback. Stops long loops, and keeps
   2605 		 * fair for other events. */
   2606 		if(++count > num_len*2)
   2607 			break;
   2608 	}
   2609 
   2610 	/* check for data to read */
   2611 	if((event&UB_EV_READ)!=0)
   2612 	  for(i=0; i<NUM_UDP_PER_SELECT; i++) {
   2613 		/* there may be a blocked write packet and if so, stop
   2614 		 * reading because the reply cannot get written. The
   2615 		 * blocked packet could be written during the conn_recv
   2616 		 * handling of replies, or for a connection close. */
   2617 		if(c->doq_socket->have_blocked_pkt) {
   2618 			if(!c->doq_socket->event_has_write)
   2619 				doq_socket_write_enable(c);
   2620 			doq_pickup_timer(c);
   2621 			return;
   2622 		}
   2623 		sldns_buffer_clear(c->doq_socket->pkt_buf);
   2624 		doq_pkt_addr_init(&paddr);
   2625 		log_assert(fd != -1);
   2626 		log_assert(sldns_buffer_remaining(c->doq_socket->pkt_buf) > 0);
   2627 		if(!doq_recv(c, &paddr, &pkt_continue, &pi)) {
   2628 			if(pkt_continue)
   2629 				continue;
   2630 			break;
   2631 		}
   2632 
   2633 		/* handle incoming packet from remote addr to localaddr */
   2634 		if(verbosity >= VERB_ALGO) {
   2635 			char remotestr[256], localstr[256];
   2636 			addr_to_str((void*)&paddr.addr, paddr.addrlen,
   2637 				remotestr, sizeof(remotestr));
   2638 			addr_to_str((void*)&paddr.localaddr,
   2639 				paddr.localaddrlen, localstr,
   2640 				sizeof(localstr));
   2641 			log_info("incoming doq packet from %s port %d on "
   2642 				"%s port %d ifindex %d",
   2643 				remotestr, doq_sockaddr_get_port(&paddr.addr),
   2644 				localstr,
   2645 				doq_sockaddr_get_port(&paddr.localaddr),
   2646 				paddr.ifindex);
   2647 			log_info("doq_recv length %d ecn 0x%x",
   2648 				(int)sldns_buffer_limit(c->doq_socket->pkt_buf),
   2649 				(int)pi.ecn);
   2650 		}
   2651 
   2652 		if(sldns_buffer_limit(c->doq_socket->pkt_buf) == 0)
   2653 			continue;
   2654 
   2655 		conn = NULL;
   2656 		if(!doq_decode_pkt_header_negotiate(c, &paddr, &conn))
   2657 			continue;
   2658 		if(!conn) {
   2659 			if(!doq_accept(c, &paddr, &conn, &pi))
   2660 				continue;
   2661 			if(!doq_conn_write_streams(c, conn, NULL)) {
   2662 				doq_delete_connection(c, conn);
   2663 				continue;
   2664 			}
   2665 			doq_done_setup_timer_and_write(c, conn);
   2666 			continue;
   2667 		}
   2668 		if(
   2669 #ifdef HAVE_NGTCP2_CONN_IN_CLOSING_PERIOD
   2670 			ngtcp2_conn_in_closing_period(conn->conn)
   2671 #else
   2672 			ngtcp2_conn_is_in_closing_period(conn->conn)
   2673 #endif
   2674 			) {
   2675 			if(!doq_conn_send_close(c, conn)) {
   2676 				doq_delete_connection(c, conn);
   2677 			} else {
   2678 				doq_done_setup_timer_and_write(c, conn);
   2679 			}
   2680 			continue;
   2681 		}
   2682 		if(
   2683 #ifdef HAVE_NGTCP2_CONN_IN_DRAINING_PERIOD
   2684 			ngtcp2_conn_in_draining_period(conn->conn)
   2685 #else
   2686 			ngtcp2_conn_is_in_draining_period(conn->conn)
   2687 #endif
   2688 			) {
   2689 			doq_done_setup_timer_and_write(c, conn);
   2690 			continue;
   2691 		}
   2692 		if(!doq_conn_recv(c, &paddr, conn, &pi, NULL, &err_drop)) {
   2693 			/* The receive failed, and if it also failed to send
   2694 			 * a close, drop the connection. That means it is not
   2695 			 * in the closing period. */
   2696 			if(err_drop) {
   2697 				doq_delete_connection(c, conn);
   2698 			} else {
   2699 				doq_done_setup_timer_and_write(c, conn);
   2700 			}
   2701 			continue;
   2702 		}
   2703 		if(!doq_conn_write_streams(c, conn, &err_drop)) {
   2704 			if(err_drop) {
   2705 				doq_delete_connection(c, conn);
   2706 			} else {
   2707 				doq_done_setup_timer_and_write(c, conn);
   2708 			}
   2709 			continue;
   2710 		}
   2711 		doq_done_setup_timer_and_write(c, conn);
   2712 	}
   2713 
   2714 	/* see if we want to have more write events */
   2715 	verbose(VERB_ALGO, "doq check write enable");
   2716 	if(doq_socket_want_write(c))
   2717 		doq_socket_write_enable(c);
   2718 	else doq_socket_write_disable(c);
   2719 	doq_pickup_timer(c);
   2720 }
   2721 
   2722 /** create new doq server socket structure */
   2723 static struct doq_server_socket*
   2724 doq_server_socket_create(struct doq_table* table, struct ub_randstate* rnd,
   2725 	const void* quic_sslctx, struct comm_point* c, struct comm_base* base,
   2726 	struct config_file* cfg)
   2727 {
   2728 	size_t doq_buffer_size = 4096; /* bytes buffer size, for one packet. */
   2729 	struct doq_server_socket* doq_socket;
   2730 	log_assert(table != NULL);
   2731 	doq_socket = calloc(1, sizeof(*doq_socket));
   2732 	if(!doq_socket) {
   2733 		return NULL;
   2734 	}
   2735 	doq_socket->table = table;
   2736 	doq_socket->rnd = rnd;
   2737 	doq_socket->validate_addr = 1;
   2738 	/* the doq_socket has its own copy of the static secret, as
   2739 	 * well as other config values, so that they do not need table.lock */
   2740 	doq_socket->static_secret_len = table->static_secret_len;
   2741 	doq_socket->static_secret = memdup(table->static_secret,
   2742 		table->static_secret_len);
   2743 	if(!doq_socket->static_secret) {
   2744 		free(doq_socket);
   2745 		return NULL;
   2746 	}
   2747 	doq_socket->ctx = (SSL_CTX*)quic_sslctx;
   2748 	doq_socket->idle_timeout = table->idle_timeout;
   2749 	doq_socket->sv_scidlen = table->sv_scidlen;
   2750 	doq_socket->cp = c;
   2751 	doq_socket->pkt_buf = sldns_buffer_new(doq_buffer_size);
   2752 	if(!doq_socket->pkt_buf) {
   2753 		free(doq_socket->static_secret);
   2754 		free(doq_socket);
   2755 		return NULL;
   2756 	}
   2757 	doq_socket->blocked_pkt = sldns_buffer_new(
   2758 		sldns_buffer_capacity(doq_socket->pkt_buf));
   2759 	if(!doq_socket->pkt_buf) {
   2760 		free(doq_socket->static_secret);
   2761 		sldns_buffer_free(doq_socket->pkt_buf);
   2762 		free(doq_socket);
   2763 		return NULL;
   2764 	}
   2765 	doq_socket->blocked_paddr = calloc(1,
   2766 		sizeof(*doq_socket->blocked_paddr));
   2767 	if(!doq_socket->blocked_paddr) {
   2768 		free(doq_socket->static_secret);
   2769 		sldns_buffer_free(doq_socket->pkt_buf);
   2770 		sldns_buffer_free(doq_socket->blocked_pkt);
   2771 		free(doq_socket);
   2772 		return NULL;
   2773 	}
   2774 	doq_socket->timer = comm_timer_create(base, doq_timer_cb, doq_socket);
   2775 	if(!doq_socket->timer) {
   2776 		free(doq_socket->static_secret);
   2777 		sldns_buffer_free(doq_socket->pkt_buf);
   2778 		sldns_buffer_free(doq_socket->blocked_pkt);
   2779 		free(doq_socket->blocked_paddr);
   2780 		free(doq_socket);
   2781 		return NULL;
   2782 	}
   2783 	doq_socket->marked_time = 0;
   2784 	comm_base_timept(base, &doq_socket->now_tt, &doq_socket->now_tv);
   2785 	doq_socket->cfg = cfg;
   2786 	return doq_socket;
   2787 }
   2788 
   2789 /** delete doq server socket structure */
   2790 static void
   2791 doq_server_socket_delete(struct doq_server_socket* doq_socket)
   2792 {
   2793 	if(!doq_socket)
   2794 		return;
   2795 	free(doq_socket->static_secret);
   2796 #ifndef HAVE_NGTCP2_CRYPTO_QUICTLS_CONFIGURE_SERVER_CONTEXT
   2797 	free(doq_socket->quic_method);
   2798 #endif
   2799 	sldns_buffer_free(doq_socket->pkt_buf);
   2800 	sldns_buffer_free(doq_socket->blocked_pkt);
   2801 	free(doq_socket->blocked_paddr);
   2802 	comm_timer_delete(doq_socket->timer);
   2803 	free(doq_socket);
   2804 }
   2805 
   2806 /** find repinfo in the doq table */
   2807 static struct doq_conn*
   2808 doq_lookup_repinfo(struct doq_table* table, struct comm_reply* repinfo)
   2809 {
   2810 	struct doq_conn* conn;
   2811 	struct doq_conn_key key;
   2812 	log_assert(table != NULL);
   2813 	doq_conn_key_from_repinfo(&key, repinfo);
   2814 	lock_rw_rdlock(&table->lock);
   2815 	conn = doq_conn_find(table, &key.paddr.addr,
   2816 		key.paddr.addrlen, &key.paddr.localaddr,
   2817 		key.paddr.localaddrlen, key.paddr.ifindex, key.dcid,
   2818 		key.dcidlen);
   2819 	if(conn) {
   2820 		lock_basic_lock(&conn->lock);
   2821 		lock_rw_unlock(&table->lock);
   2822 		return conn;
   2823 	}
   2824 	lock_rw_unlock(&table->lock);
   2825 	return NULL;
   2826 }
   2827 
   2828 /** doq find connection and stream. From inside callbacks from worker. */
   2829 static int
   2830 doq_lookup_conn_stream(struct comm_reply* repinfo, struct comm_point* c,
   2831 	struct doq_conn** conn, struct doq_stream** stream)
   2832 {
   2833 	log_assert(c->doq_socket);
   2834 	if(c->doq_socket->current_conn) {
   2835 		*conn = c->doq_socket->current_conn;
   2836 	} else {
   2837 		*conn = doq_lookup_repinfo(c->doq_socket->table, repinfo);
   2838 		if((*conn) && (*conn)->is_deleted) {
   2839 			lock_basic_unlock(&(*conn)->lock);
   2840 			*conn = NULL;
   2841 		}
   2842 		if(*conn) {
   2843 			(*conn)->doq_socket = c->doq_socket;
   2844 		}
   2845 	}
   2846 	if(!*conn) {
   2847 		*stream = NULL;
   2848 		return 0;
   2849 	}
   2850 	*stream = doq_stream_find(*conn, repinfo->doq_streamid);
   2851 	if(!*stream) {
   2852 		if(!c->doq_socket->current_conn) {
   2853 			/* Not inside callbacks, we have our own lock on conn.
   2854 			 * Release it. */
   2855 			lock_basic_unlock(&(*conn)->lock);
   2856 		}
   2857 		return 0;
   2858 	}
   2859 	if((*stream)->is_closed) {
   2860 		/* stream is closed, ignore reply or drop */
   2861 		if(!c->doq_socket->current_conn) {
   2862 			/* Not inside callbacks, we have our own lock on conn.
   2863 			 * Release it. */
   2864 			lock_basic_unlock(&(*conn)->lock);
   2865 		}
   2866 		return 0;
   2867 	}
   2868 	return 1;
   2869 }
   2870 
   2871 /** doq send a reply from a comm reply */
   2872 static void
   2873 doq_socket_send_reply(struct comm_reply* repinfo)
   2874 {
   2875 	struct doq_conn* conn;
   2876 	struct doq_stream* stream;
   2877 	log_assert(repinfo->c->type == comm_doq);
   2878 	if(!doq_lookup_conn_stream(repinfo, repinfo->c, &conn, &stream)) {
   2879 		verbose(VERB_ALGO, "doq: send_reply but %s is gone",
   2880 			(conn?"stream":"connection"));
   2881 		/* No stream, it may have been closed. */
   2882 		/* Drop the reply, it cannot be sent. */
   2883 		return;
   2884 	}
   2885 	if(!doq_stream_send_reply(conn, stream, repinfo->c->buffer))
   2886 		doq_stream_close(conn, stream, 1);
   2887 	if(!repinfo->c->doq_socket->current_conn) {
   2888 		/* Not inside callbacks, we have our own lock on conn.
   2889 		 * Release it. */
   2890 		doq_done_with_conn_cb(repinfo->c, conn);
   2891 		/* since we sent a reply, or closed it, the assumption is
   2892 		 * that there is something to write, so enable write event.
   2893 		 * It waits until the write event happens to write the
   2894 		 * streams with answers, this allows some answers to be
   2895 		 * answered before the event loop reaches the doq fd, in
   2896 		 * repinfo->c->fd, and that collates answers. That would
   2897 		 * not happen if we write doq packets right now. */
   2898 		doq_socket_write_enable(repinfo->c);
   2899 	}
   2900 }
   2901 
   2902 /** doq drop a reply from a comm reply */
   2903 static void
   2904 doq_socket_drop_reply(struct comm_reply* repinfo)
   2905 {
   2906 	struct doq_conn* conn;
   2907 	struct doq_stream* stream;
   2908 	log_assert(repinfo->c->type == comm_doq);
   2909 	if(!doq_lookup_conn_stream(repinfo, repinfo->c, &conn, &stream)) {
   2910 		verbose(VERB_ALGO, "doq: drop_reply but %s is gone",
   2911 			(conn?"stream":"connection"));
   2912 		/* The connection or stream is already gone. */
   2913 		return;
   2914 	}
   2915 	doq_stream_close(conn, stream, 1);
   2916 	if(!repinfo->c->doq_socket->current_conn) {
   2917 		/* Not inside callbacks, we have our own lock on conn.
   2918 		 * Release it. */
   2919 		doq_done_with_conn_cb(repinfo->c, conn);
   2920 		doq_socket_write_enable(repinfo->c);
   2921 	}
   2922 }
   2923 #endif /* HAVE_NGTCP2 */
   2924 
   2925 int adjusted_tcp_timeout(struct comm_point* c)
   2926 {
   2927 	if(c->tcp_timeout_msec < TCP_QUERY_TIMEOUT_MINIMUM)
   2928 		return TCP_QUERY_TIMEOUT_MINIMUM;
   2929 	return c->tcp_timeout_msec;
   2930 }
   2931 
   2932 /** Use a new tcp handler for new query fd, set to read query */
   2933 static void
   2934 setup_tcp_handler(struct comm_point* c, int fd, int cur, int max)
   2935 {
   2936 	int handler_usage;
   2937 	log_assert(c->type == comm_tcp || c->type == comm_http);
   2938 	log_assert(c->fd == -1);
   2939 	sldns_buffer_clear(c->buffer);
   2940 #ifdef USE_DNSCRYPT
   2941 	if (c->dnscrypt)
   2942 		sldns_buffer_clear(c->dnscrypt_buffer);
   2943 #endif
   2944 	c->tcp_is_reading = 1;
   2945 	c->tcp_byte_count = 0;
   2946 	c->tcp_keepalive = 0;
   2947 	/* reset to configured value before applying load-based reduction */
   2948 	c->tcp_timeout_msec = c->tcp_parent->tcp_timeout_msec;
   2949 	/* if more than half the tcp handlers are in use, use a shorter
   2950 	 * timeout for this TCP connection, we need to make space for
   2951 	 * other connections to be able to get attention */
   2952 	/* If > 50% TCP handler structures in use, set timeout to 1/100th
   2953 	 * 	configured value.
   2954 	 * If > 65%TCP handler structures in use, set to 1/500th configured
   2955 	 * 	value.
   2956 	 * If > 80% TCP handler structures in use, set to 0.
   2957 	 *
   2958 	 * If the timeout to use falls below 200 milliseconds, an actual
   2959 	 * timeout of 200ms is used.
   2960 	 */
   2961 	handler_usage = (cur * 100) / max;
   2962 	if(handler_usage > 50 && handler_usage <= 65)
   2963 		c->tcp_timeout_msec /= 100;
   2964 	else if (handler_usage > 65 && handler_usage <= 80)
   2965 		c->tcp_timeout_msec /= 500;
   2966 	else if (handler_usage > 80)
   2967 		c->tcp_timeout_msec = 0;
   2968 	comm_point_start_listening(c, fd, adjusted_tcp_timeout(c));
   2969 }
   2970 
   2971 void comm_base_handle_slow_accept(int ATTR_UNUSED(fd),
   2972 	short ATTR_UNUSED(event), void* arg)
   2973 {
   2974 	struct comm_base* b = (struct comm_base*)arg;
   2975 	/* timeout for the slow accept, re-enable accepts again */
   2976 	if(b->start_accept) {
   2977 		verbose(VERB_ALGO, "wait is over, slow accept disabled");
   2978 		fptr_ok(fptr_whitelist_start_accept(b->start_accept));
   2979 		(*b->start_accept)(b->cb_arg);
   2980 		b->eb->slow_accept_enabled = 0;
   2981 	}
   2982 }
   2983 
   2984 /** out of resources in the accept path: pause all listening for
   2985  * NETEVENT_SLOW_ACCEPT_TIME and re-arm via comm_base_handle_slow_accept.
   2986  *
   2987  * If the routine fails, the socket is accepted and then closed, draining it
   2988  * from the waiting list of connections to be accepted.
   2989  * @param c: the comm point that is a listening socket.
   2990  * @param msec: if 0: uses the slow accept time. Otherwise, sets the time
   2991  *		to wait.
   2992  */
   2993 static void
   2994 comm_point_slow_accept(struct comm_point* c, int msec)
   2995 {
   2996 	struct comm_base* b = c->ev->base;
   2997 	struct timeval tv;
   2998 	struct ub_event* slowev;
   2999 	if(!b->stop_accept)
   3000 		return;
   3001 	if(b->eb->slow_accept_enabled)
   3002 		return;
   3003 	/* Allocate the event */
   3004 	slowev = ub_event_new(b->eb->base, -1, UB_EV_TIMEOUT,
   3005 		comm_base_handle_slow_accept, b);
   3006 	if(!slowev) {
   3007 		/* The slow accept was not enabled yet, to handle
   3008 		 * the allocation failure, instead drain the incoming
   3009 		 * connection. */
   3010 		int new_fd = accept(c->fd, NULL, NULL);
   3011 		if(new_fd != -1) {
   3012 			verbose(VERB_ALGO, "slow accept: event_new failed, "
   3013 				"drop connection");
   3014 			sock_close(new_fd);
   3015 		}
   3016 		return;
   3017 	}
   3018 	ub_comm_base_now(b);
   3019 	if(b->eb->last_slow_log+SLOW_LOG_TIME <= b->eb->secs) {
   3020 		b->eb->last_slow_log = b->eb->secs;
   3021 		verbose(VERB_OPS, "out of resources on accept, "
   3022 			"slow down accept for %d msec",
   3023 			NETEVENT_SLOW_ACCEPT_TIME);
   3024 	}
   3025 	b->eb->slow_accept_enabled = 1;
   3026 	fptr_ok(fptr_whitelist_stop_accept(b->stop_accept));
   3027 	(*b->stop_accept)(b->cb_arg);
   3028 	/* set timeout, no mallocs */
   3029 	if(msec == 0)
   3030 		msec = NETEVENT_SLOW_ACCEPT_TIME;
   3031 	tv.tv_sec = msec/1000;
   3032 	tv.tv_usec = (msec%1000)*1000;
   3033 	b->eb->slow_accept = slowev;
   3034 	if(ub_event_add(b->eb->slow_accept, &tv) != 0) {
   3035 		/* we do not want to log here,
   3036 		 * error: "event_add failed." */
   3037 	}
   3038 }
   3039 
   3040 int comm_point_perform_accept(struct comm_point* c,
   3041 	struct sockaddr_storage* addr, socklen_t* addrlen)
   3042 {
   3043 	int new_fd;
   3044 	*addrlen = (socklen_t)sizeof(*addr);
   3045 #ifndef HAVE_ACCEPT4
   3046 	new_fd = accept(c->fd, (struct sockaddr*)addr, addrlen);
   3047 #else
   3048 	/* SOCK_NONBLOCK saves extra calls to fcntl for the same result */
   3049 	new_fd = accept4(c->fd, (struct sockaddr*)addr, addrlen, SOCK_NONBLOCK);
   3050 #endif
   3051 	if(new_fd == -1) {
   3052 #ifndef USE_WINSOCK
   3053 		/* EINTR is signal interrupt. others are closed connection. */
   3054 		if(	errno == EINTR || errno == EAGAIN
   3055 #ifdef EWOULDBLOCK
   3056 			|| errno == EWOULDBLOCK
   3057 #endif
   3058 #ifdef ECONNABORTED
   3059 			|| errno == ECONNABORTED
   3060 #endif
   3061 #ifdef EPROTO
   3062 			|| errno == EPROTO
   3063 #endif /* EPROTO */
   3064 			)
   3065 			return -1;
   3066 #if defined(ENFILE) && defined(EMFILE)
   3067 		if(errno == ENFILE || errno == EMFILE) {
   3068 			/* out of file descriptors, likely outside of our
   3069 			 * control. stop accept() calls for some time */
   3070 			if(c->ev->base->stop_accept) {
   3071 				struct comm_base* b = c->ev->base;
   3072 				struct timeval tv;
   3073 				struct ub_event* slowev = ub_event_new(
   3074 					b->eb->base, -1, UB_EV_TIMEOUT,
   3075 					comm_base_handle_slow_accept, b);
   3076 				if(!slowev) {
   3077 					verbose(VERB_ALGO, "slow accept: "
   3078 						"event_new failed");
   3079 					return -1;
   3080 				}
   3081 				verbose(VERB_ALGO, "out of file descriptors: "
   3082 					"slow accept");
   3083 				ub_comm_base_now(b);
   3084 				if(b->eb->last_slow_log+SLOW_LOG_TIME <=
   3085 					b->eb->secs) {
   3086 					b->eb->last_slow_log = b->eb->secs;
   3087 					verbose(VERB_OPS, "accept failed, "
   3088 						"slow down accept for %d "
   3089 						"msec: %s",
   3090 						NETEVENT_SLOW_ACCEPT_TIME,
   3091 						sock_strerror(errno));
   3092 				}
   3093 				b->eb->slow_accept_enabled = 1;
   3094 				fptr_ok(fptr_whitelist_stop_accept(
   3095 					b->stop_accept));
   3096 				(*b->stop_accept)(b->cb_arg);
   3097 				/* set timeout, no mallocs */
   3098 				tv.tv_sec = NETEVENT_SLOW_ACCEPT_TIME/1000;
   3099 				tv.tv_usec = (NETEVENT_SLOW_ACCEPT_TIME%1000)*1000;
   3100 				b->eb->slow_accept = slowev;
   3101 				if(ub_event_add(b->eb->slow_accept, &tv)
   3102 					!= 0) {
   3103 					/* we do not want to log here,
   3104 					 * error: "event_add failed." */
   3105 				}
   3106 			} else {
   3107 				log_err("accept, with no slow down, "
   3108 					"failed: %s", sock_strerror(errno));
   3109 			}
   3110 			return -1;
   3111 		}
   3112 #endif
   3113 #else /* USE_WINSOCK */
   3114 		if(WSAGetLastError() == WSAEINPROGRESS ||
   3115 			WSAGetLastError() == WSAECONNRESET)
   3116 			return -1;
   3117 		if(WSAGetLastError() == WSAEWOULDBLOCK) {
   3118 			ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_READ);
   3119 			return -1;
   3120 		}
   3121 #endif
   3122 		log_err_addr("accept failed", sock_strerror(errno), addr,
   3123 			*addrlen);
   3124 		return -1;
   3125 	}
   3126 	if(c->tcp_conn_limit && c->type == comm_tcp_accept) {
   3127 		c->tcl_addr = tcl_addr_lookup(c->tcp_conn_limit, addr, *addrlen);
   3128 		if(!tcl_new_connection(c->tcl_addr)) {
   3129 			if(verbosity >= 3)
   3130 				log_err_addr("accept rejected",
   3131 				"connection limit exceeded", addr, *addrlen);
   3132 			sock_close(new_fd);
   3133 			return -1;
   3134 		}
   3135 	}
   3136 #ifndef HAVE_ACCEPT4
   3137 	fd_set_nonblock(new_fd);
   3138 #endif
   3139 	return new_fd;
   3140 }
   3141 
   3142 #ifdef USE_WINSOCK
   3143 static long win_bio_cb(BIO *b, int oper, const char* ATTR_UNUSED(argp),
   3144 #ifdef HAVE_BIO_SET_CALLBACK_EX
   3145 	size_t ATTR_UNUSED(len),
   3146 #endif
   3147         int ATTR_UNUSED(argi), long argl,
   3148 #ifndef HAVE_BIO_SET_CALLBACK_EX
   3149 	long retvalue
   3150 #else
   3151 	int retvalue, size_t* ATTR_UNUSED(processed)
   3152 #endif
   3153 	)
   3154 {
   3155 	int wsa_err = WSAGetLastError(); /* store errcode before it is gone */
   3156 	verbose(VERB_ALGO, "bio_cb %d, %s %s %s", oper,
   3157 		(oper&BIO_CB_RETURN)?"return":"before",
   3158 		(oper&BIO_CB_READ)?"read":((oper&BIO_CB_WRITE)?"write":"other"),
   3159 		wsa_err==WSAEWOULDBLOCK?"wsawb":"");
   3160 	/* on windows, check if previous operation caused EWOULDBLOCK */
   3161 	if( (oper == (BIO_CB_READ|BIO_CB_RETURN) && argl == 0) ||
   3162 		(oper == (BIO_CB_GETS|BIO_CB_RETURN) && argl == 0)) {
   3163 		if(wsa_err == WSAEWOULDBLOCK)
   3164 			ub_winsock_tcp_wouldblock((struct ub_event*)
   3165 				BIO_get_callback_arg(b), UB_EV_READ);
   3166 	}
   3167 	if( (oper == (BIO_CB_WRITE|BIO_CB_RETURN) && argl == 0) ||
   3168 		(oper == (BIO_CB_PUTS|BIO_CB_RETURN) && argl == 0)) {
   3169 		if(wsa_err == WSAEWOULDBLOCK)
   3170 			ub_winsock_tcp_wouldblock((struct ub_event*)
   3171 				BIO_get_callback_arg(b), UB_EV_WRITE);
   3172 	}
   3173 	/* return original return value */
   3174 	return retvalue;
   3175 }
   3176 
   3177 /** set win bio callbacks for nonblocking operations */
   3178 void
   3179 comm_point_tcp_win_bio_cb(struct comm_point* c, void* thessl)
   3180 {
   3181 	SSL* ssl = (SSL*)thessl;
   3182 	/* set them both just in case, but usually they are the same BIO */
   3183 #ifdef HAVE_BIO_SET_CALLBACK_EX
   3184 	BIO_set_callback_ex(SSL_get_rbio(ssl), &win_bio_cb);
   3185 #else
   3186 	BIO_set_callback(SSL_get_rbio(ssl), &win_bio_cb);
   3187 #endif
   3188 	BIO_set_callback_arg(SSL_get_rbio(ssl), (char*)c->ev->ev);
   3189 #ifdef HAVE_BIO_SET_CALLBACK_EX
   3190 	BIO_set_callback_ex(SSL_get_wbio(ssl), &win_bio_cb);
   3191 #else
   3192 	BIO_set_callback(SSL_get_wbio(ssl), &win_bio_cb);
   3193 #endif
   3194 	BIO_set_callback_arg(SSL_get_wbio(ssl), (char*)c->ev->ev);
   3195 }
   3196 #endif
   3197 
   3198 #ifdef HAVE_NGHTTP2
   3199 /** Create http2 session server.  Per connection, after TCP accepted.*/
   3200 static int http2_session_server_create(struct http2_session* h2_session)
   3201 {
   3202 	log_assert(h2_session->callbacks);
   3203 	h2_session->is_drop = 0;
   3204 	if(nghttp2_session_server_new(&h2_session->session,
   3205 			h2_session->callbacks,
   3206 		h2_session) == NGHTTP2_ERR_NOMEM) {
   3207 		log_err("failed to create nghttp2 session server");
   3208 		return 0;
   3209 	}
   3210 
   3211 	return 1;
   3212 }
   3213 
   3214 /** Submit http2 setting to session. Once per session. */
   3215 static int http2_submit_settings(struct http2_session* h2_session)
   3216 {
   3217 	int ret;
   3218 	nghttp2_settings_entry settings[1] = {
   3219 		{NGHTTP2_SETTINGS_MAX_CONCURRENT_STREAMS,
   3220 		 h2_session->c->http2_max_streams}};
   3221 
   3222 	ret = nghttp2_submit_settings(h2_session->session, NGHTTP2_FLAG_NONE,
   3223 		settings, 1);
   3224 	if(ret) {
   3225 		verbose(VERB_QUERY, "http2: submit_settings failed, "
   3226 			"error: %s", nghttp2_strerror(ret));
   3227 		return 0;
   3228 	}
   3229 	return 1;
   3230 }
   3231 #endif /* HAVE_NGHTTP2 */
   3232 
   3233 /** Clear http2 stream mesh states */
   3234 static void http2_session_clear_meshstate(struct http2_session* h2_session)
   3235 {
   3236 #ifdef HAVE_NGHTTP2
   3237 	/* Since the session gets closed, remove the mesh state references. */
   3238 	struct http2_stream* h2_stream;
   3239 	for(h2_stream = h2_session->first_stream; h2_stream;
   3240 		h2_stream = h2_stream->next) {
   3241 		if(h2_stream->mesh_state) {
   3242 			mesh_state_remove_reply(h2_stream->mesh,
   3243 				h2_stream->mesh_state, h2_session->c,
   3244 				h2_stream, NULL);
   3245 			h2_stream->mesh_state = NULL;
   3246 		}
   3247 	}
   3248 #else
   3249 	(void)h2_session;
   3250 #endif /* HAVE_NGHTTP2 */
   3251 }
   3252 
   3253 #ifdef HAVE_NGHTTP2
   3254 /** Delete http2 stream. After session delete or stream close callback */
   3255 static void http2_stream_delete(struct http2_session* h2_session,
   3256 	struct http2_stream* h2_stream)
   3257 {
   3258 	if(h2_stream->mesh_state) {
   3259 		mesh_state_remove_reply(h2_stream->mesh, h2_stream->mesh_state,
   3260 			h2_session->c, h2_stream, NULL);
   3261 		h2_stream->mesh_state = NULL;
   3262 	}
   3263 	http2_req_stream_clear(h2_stream);
   3264 	free(h2_stream);
   3265 }
   3266 #endif /* HAVE_NGHTTP2 */
   3267 
   3268 /** delete http2 session server. After closing connection. */
   3269 static void http2_session_server_delete(struct http2_session* h2_session)
   3270 {
   3271 #ifdef HAVE_NGHTTP2
   3272 	struct http2_stream* h2_stream, *next;
   3273 	nghttp2_session_del(h2_session->session); /* NULL input is fine */
   3274 	h2_session->session = NULL;
   3275 	for(h2_stream = h2_session->first_stream; h2_stream;) {
   3276 		next = h2_stream->next;
   3277 		http2_stream_delete(h2_session, h2_stream);
   3278 		h2_stream = next;
   3279 	}
   3280 	h2_session->first_stream = NULL;
   3281 	h2_session->is_drop = 0;
   3282 	h2_session->postpone_drop = 0;
   3283 	h2_session->c->h2_stream = NULL;
   3284 #endif
   3285 	(void)h2_session;
   3286 }
   3287 
   3288 void
   3289 comm_point_tcp_accept_callback(int fd, short event, void* arg)
   3290 {
   3291 	struct comm_point* c = (struct comm_point*)arg, *c_hdl;
   3292 	int new_fd;
   3293 	log_assert(c->type == comm_tcp_accept);
   3294 	if(!(event & UB_EV_READ)) {
   3295 		log_info("ignoring tcp accept event %d", (int)event);
   3296 		return;
   3297 	}
   3298 	ub_comm_base_now(c->ev->base);
   3299 	/* find free tcp handler. */
   3300 	if(!c->tcp_free) {
   3301 		log_warn("accepted too many tcp, connections full");
   3302 		/* Wait for a short moment (say 50msec) so that other
   3303 		 * TCP connections can complete. Or timeout, at the busy
   3304 		 * timeout of about 200msec. That stops this routine from
   3305 		 * spinning endlessly, and gives time to complete the other
   3306 		 * requests. But it is not as slow as the 2000msec wait
   3307 		 * time for when the kernel is out of buffers. */
   3308 		comm_point_slow_accept(c, NETEVENT_SLOW_ACCEPT_QUEUE_TIME);
   3309 		return;
   3310 	}
   3311 	/* accept incoming connection. */
   3312 	c_hdl = c->tcp_free;
   3313 	/* Should not happen: inconsistent tcp_free state in
   3314 	 * accept_callback. */
   3315 	log_assert(c_hdl->is_in_tcp_free);
   3316 	/* clear leftover flags from previous use, and then set the
   3317 	 * correct event base for the event structure for libevent */
   3318 	ub_event_free(c_hdl->ev->ev);
   3319 	c_hdl->ev->ev = NULL;
   3320 	if((c_hdl->type == comm_tcp && c_hdl->tcp_req_info) ||
   3321 		c_hdl->type == comm_local || c_hdl->type == comm_raw)
   3322 		c_hdl->tcp_do_toggle_rw = 0;
   3323 	else	c_hdl->tcp_do_toggle_rw = 1;
   3324 
   3325 	if(c_hdl->type == comm_http) {
   3326 #ifdef HAVE_NGHTTP2
   3327 		if(!c_hdl->h2_session ||
   3328 			!http2_session_server_create(c_hdl->h2_session)) {
   3329 			log_warn("failed to create nghttp2");
   3330 			comm_point_slow_accept(c, 0);
   3331 			return;
   3332 		}
   3333 		if(!c_hdl->h2_session ||
   3334 			!http2_submit_settings(c_hdl->h2_session)) {
   3335 			log_warn("failed to submit http2 settings");
   3336 			if(c_hdl->h2_session)
   3337 				http2_session_server_delete(c_hdl->h2_session);
   3338 			comm_point_slow_accept(c, 0);
   3339 			return;
   3340 		}
   3341 		if(!c->ssl) {
   3342 			c_hdl->tcp_do_toggle_rw = 0;
   3343 			c_hdl->use_h2 = 1;
   3344 		}
   3345 #endif
   3346 		c_hdl->ev->ev = ub_event_new(c_hdl->ev->base->eb->base, -1,
   3347 			UB_EV_PERSIST | UB_EV_READ | UB_EV_TIMEOUT,
   3348 			comm_point_http_handle_callback, c_hdl);
   3349 	} else {
   3350 		c_hdl->ev->ev = ub_event_new(c_hdl->ev->base->eb->base, -1,
   3351 			UB_EV_PERSIST | UB_EV_READ | UB_EV_TIMEOUT,
   3352 			comm_point_tcp_handle_callback, c_hdl);
   3353 	}
   3354 	if(!c_hdl->ev->ev) {
   3355 		log_warn("could not ub_event_new, for new tcp");
   3356 #ifdef HAVE_NGHTTP2
   3357 		if(c_hdl->type == comm_http && c_hdl->h2_session)
   3358 			http2_session_server_delete(c_hdl->h2_session);
   3359 #endif
   3360 		comm_point_slow_accept(c, 0);
   3361 		return;
   3362 	}
   3363 	log_assert(fd != -1);
   3364 	(void)fd;
   3365 	new_fd = comm_point_perform_accept(c, &c_hdl->repinfo.remote_addr,
   3366 		&c_hdl->repinfo.remote_addrlen);
   3367 	if(new_fd == -1) {
   3368 #ifdef HAVE_NGHTTP2
   3369 		if(c_hdl->type == comm_http && c_hdl->h2_session)
   3370 			http2_session_server_delete(c_hdl->h2_session);
   3371 #endif
   3372 		return;
   3373 	}
   3374 	/* move per-netblock TCP-connection-limit handle to the handler so that
   3375 	 * comm_point_close() on the handler decrements the count on close */
   3376 	c_hdl->tcl_addr = c->tcl_addr;
   3377 	c->tcl_addr = NULL;
   3378 	/* Copy remote_address to client_address.
   3379 	 * Simplest way/time for streams to do that. */
   3380 	c_hdl->repinfo.client_addrlen = c_hdl->repinfo.remote_addrlen;
   3381 	memmove(&c_hdl->repinfo.client_addr,
   3382 		&c_hdl->repinfo.remote_addr,
   3383 		c_hdl->repinfo.remote_addrlen);
   3384 	if(c->ssl) {
   3385 		c_hdl->ssl = incoming_ssl_fd(c->ssl, new_fd);
   3386 		if(!c_hdl->ssl) {
   3387 			c_hdl->fd = new_fd;
   3388 			comm_point_close(c_hdl);
   3389 			return;
   3390 		}
   3391 		c_hdl->ssl_shake_state = comm_ssl_shake_read;
   3392 #ifdef USE_WINSOCK
   3393 		comm_point_tcp_win_bio_cb(c_hdl, c_hdl->ssl);
   3394 #endif
   3395 	}
   3396 
   3397 	/* Paranoia: Check that the state has not changed from above: */
   3398 	/* Should not happen: tcp_free state changed within accept_callback. */
   3399 	log_assert(c_hdl == c->tcp_free);
   3400 	log_assert(c_hdl->is_in_tcp_free);
   3401 	/* grab the tcp handler buffers */
   3402 	c->cur_tcp_count++;
   3403 	c->tcp_free = c_hdl->tcp_free;
   3404 	c_hdl->tcp_free = NULL;
   3405 	c_hdl->is_in_tcp_free = 0;
   3406 	if(!c->tcp_free) {
   3407 		/* stop accepting incoming queries for now. */
   3408 		comm_point_stop_listening(c);
   3409 	}
   3410 	setup_tcp_handler(c_hdl, new_fd, c->cur_tcp_count, c->max_tcp_count);
   3411 }
   3412 
   3413 /** Make tcp handler free for next assignment */
   3414 static void
   3415 reclaim_tcp_handler(struct comm_point* c)
   3416 {
   3417 	log_assert(c->type == comm_tcp);
   3418 	if(c->ssl) {
   3419 #ifdef HAVE_SSL
   3420 		SSL_shutdown(c->ssl);
   3421 		SSL_free(c->ssl);
   3422 		c->ssl = NULL;
   3423 #endif
   3424 	}
   3425 	comm_point_close(c);
   3426 	if(c->tcp_parent && !c->is_in_tcp_free) {
   3427 		/* Should not happen: bad tcp_free state in reclaim_tcp. */
   3428 		log_assert(c->tcp_free == NULL);
   3429 		log_assert(c->tcp_parent->cur_tcp_count > 0);
   3430 		c->tcp_parent->cur_tcp_count--;
   3431 		c->tcp_free = c->tcp_parent->tcp_free;
   3432 		c->tcp_parent->tcp_free = c;
   3433 		c->is_in_tcp_free = 1;
   3434 		if(!c->tcp_free) {
   3435 			/* re-enable listening on accept socket */
   3436 			comm_point_start_listening(c->tcp_parent, -1, -1);
   3437 		}
   3438 	}
   3439 	c->tcp_more_read_again = NULL;
   3440 	c->tcp_more_write_again = NULL;
   3441 	c->tcp_byte_count = 0;
   3442 	c->pp2_header_state = pp2_header_none;
   3443 	sldns_buffer_clear(c->buffer);
   3444 }
   3445 
   3446 /** do the callback when writing is done */
   3447 static void
   3448 tcp_callback_writer(struct comm_point* c)
   3449 {
   3450 	log_assert(c->type == comm_tcp);
   3451 	if(!c->tcp_write_and_read) {
   3452 		sldns_buffer_clear(c->buffer);
   3453 		c->tcp_byte_count = 0;
   3454 	}
   3455 	if(c->tcp_do_toggle_rw)
   3456 		c->tcp_is_reading = 1;
   3457 	/* switch from listening(write) to listening(read) */
   3458 	if(c->tcp_req_info) {
   3459 		tcp_req_info_handle_writedone(c->tcp_req_info);
   3460 	} else {
   3461 		comm_point_stop_listening(c);
   3462 		if(c->tcp_write_and_read) {
   3463 			fptr_ok(fptr_whitelist_comm_point(c->callback));
   3464 			if( (*c->callback)(c, c->cb_arg, NETEVENT_PKT_WRITTEN,
   3465 				&c->repinfo) ) {
   3466 				comm_point_start_listening(c, -1,
   3467 					adjusted_tcp_timeout(c));
   3468 			}
   3469 		} else {
   3470 			comm_point_start_listening(c, -1,
   3471 					adjusted_tcp_timeout(c));
   3472 		}
   3473 	}
   3474 }
   3475 
   3476 /** do the callback when reading is done */
   3477 static void
   3478 tcp_callback_reader(struct comm_point* c)
   3479 {
   3480 	log_assert(c->type == comm_tcp || c->type == comm_local);
   3481 	sldns_buffer_flip(c->buffer);
   3482 	if(c->tcp_do_toggle_rw)
   3483 		c->tcp_is_reading = 0;
   3484 	c->tcp_byte_count = 0;
   3485 	if(c->tcp_req_info) {
   3486 		tcp_req_info_handle_readdone(c->tcp_req_info);
   3487 	} else {
   3488 		if(c->type == comm_tcp)
   3489 			comm_point_stop_listening(c);
   3490 		fptr_ok(fptr_whitelist_comm_point(c->callback));
   3491 		if( (*c->callback)(c, c->cb_arg, NETEVENT_NOERROR, &c->repinfo) ) {
   3492 			comm_point_start_listening(c, -1,
   3493 					adjusted_tcp_timeout(c));
   3494 		}
   3495 	}
   3496 }
   3497 
   3498 #ifdef HAVE_SSL
   3499 /** true if the ssl handshake error has to be squelched from the logs */
   3500 int
   3501 squelch_err_ssl_handshake(unsigned long err)
   3502 {
   3503 	if(verbosity >= VERB_QUERY)
   3504 		return 0; /* only squelch on low verbosity */
   3505 	if(ERR_GET_LIB(err) == ERR_LIB_SSL &&
   3506 		(ERR_GET_REASON(err) == SSL_R_HTTPS_PROXY_REQUEST ||
   3507 		 ERR_GET_REASON(err) == SSL_R_HTTP_REQUEST ||
   3508 		 ERR_GET_REASON(err) == SSL_R_WRONG_VERSION_NUMBER ||
   3509 		 ERR_GET_REASON(err) == SSL_R_SSLV3_ALERT_BAD_CERTIFICATE
   3510 #ifdef SSL_F_TLS_POST_PROCESS_CLIENT_HELLO
   3511 		 || ERR_GET_REASON(err) == SSL_R_NO_SHARED_CIPHER
   3512 #endif
   3513 #ifdef SSL_F_TLS_EARLY_POST_PROCESS_CLIENT_HELLO
   3514 		 || ERR_GET_REASON(err) == SSL_R_UNKNOWN_PROTOCOL
   3515 		 || ERR_GET_REASON(err) == SSL_R_UNSUPPORTED_PROTOCOL
   3516 #  ifdef SSL_R_VERSION_TOO_LOW
   3517 		 || ERR_GET_REASON(err) == SSL_R_VERSION_TOO_LOW
   3518 #  endif
   3519 #endif
   3520 		))
   3521 		return 1;
   3522 	return 0;
   3523 }
   3524 #endif /* HAVE_SSL */
   3525 
   3526 /** continue ssl handshake */
   3527 #ifdef HAVE_SSL
   3528 static int
   3529 ssl_handshake(struct comm_point* c)
   3530 {
   3531 	int r;
   3532 	if(c->ssl_shake_state == comm_ssl_shake_hs_read) {
   3533 		/* read condition satisfied back to writing */
   3534 		comm_point_listen_for_rw(c, 0, 1);
   3535 		c->ssl_shake_state = comm_ssl_shake_none;
   3536 		return 1;
   3537 	}
   3538 	if(c->ssl_shake_state == comm_ssl_shake_hs_write) {
   3539 		/* write condition satisfied, back to reading */
   3540 		comm_point_listen_for_rw(c, 1, 0);
   3541 		c->ssl_shake_state = comm_ssl_shake_none;
   3542 		return 1;
   3543 	}
   3544 
   3545 	ERR_clear_error();
   3546 	r = SSL_do_handshake(c->ssl);
   3547 	if(r != 1) {
   3548 		int want = SSL_get_error(c->ssl, r);
   3549 		if(want == SSL_ERROR_WANT_READ) {
   3550 			if(c->ssl_shake_state == comm_ssl_shake_read)
   3551 				return 1;
   3552 			c->ssl_shake_state = comm_ssl_shake_read;
   3553 			comm_point_listen_for_rw(c, 1, 0);
   3554 			return 1;
   3555 		} else if(want == SSL_ERROR_WANT_WRITE) {
   3556 			if(c->ssl_shake_state == comm_ssl_shake_write)
   3557 				return 1;
   3558 			c->ssl_shake_state = comm_ssl_shake_write;
   3559 			comm_point_listen_for_rw(c, 0, 1);
   3560 			return 1;
   3561 		} else if(r == 0) {
   3562 			return 0; /* closed */
   3563 		} else if(want == SSL_ERROR_SYSCALL) {
   3564 			/* SYSCALL and errno==0 means closed uncleanly */
   3565 #ifdef EPIPE
   3566 			if(errno == EPIPE && verbosity < 2)
   3567 				return 0; /* silence 'broken pipe' */
   3568 #endif
   3569 #ifdef ECONNRESET
   3570 			if(errno == ECONNRESET && verbosity < 2)
   3571 				return 0; /* silence reset by peer */
   3572 #endif
   3573 			if(!tcp_connect_errno_needs_log(
   3574 				(struct sockaddr*)&c->repinfo.remote_addr,
   3575 				c->repinfo.remote_addrlen))
   3576 				return 0; /* silence connect failures that
   3577 				show up because after connect this is the
   3578 				first system call that accesses the socket */
   3579 			if(errno != 0)
   3580 				log_err("SSL_handshake syscall: %s",
   3581 					strerror(errno));
   3582 			return 0;
   3583 		} else {
   3584 			unsigned long err = ERR_get_error();
   3585 			if(!squelch_err_ssl_handshake(err)) {
   3586 				long vr;
   3587 				log_crypto_err_io_code("ssl handshake failed",
   3588 					want, err);
   3589 				if((vr=SSL_get_verify_result(c->ssl)) != 0)
   3590 					log_err("ssl handshake cert error: %s",
   3591 						X509_verify_cert_error_string(
   3592 						vr));
   3593 				log_addr(VERB_OPS, "ssl handshake failed",
   3594 					&c->repinfo.remote_addr,
   3595 					c->repinfo.remote_addrlen);
   3596 			}
   3597 			return 0;
   3598 		}
   3599 	}
   3600 	/* this is where peer verification could take place */
   3601 	if((SSL_get_verify_mode(c->ssl)&SSL_VERIFY_PEER)) {
   3602 		/* verification */
   3603 		if(SSL_get_verify_result(c->ssl) == X509_V_OK) {
   3604 #ifdef HAVE_SSL_GET1_PEER_CERTIFICATE
   3605 			X509* x = SSL_get1_peer_certificate(c->ssl);
   3606 #else
   3607 			X509* x = SSL_get_peer_certificate(c->ssl);
   3608 #endif
   3609 			if(!x) {
   3610 				log_addr(VERB_ALGO, "SSL connection failed: "
   3611 					"no certificate",
   3612 					&c->repinfo.remote_addr,
   3613 					c->repinfo.remote_addrlen);
   3614 				return 0;
   3615 			}
   3616 			log_cert(VERB_ALGO, "peer certificate", x);
   3617 #ifdef HAVE_SSL_GET0_PEERNAME
   3618 			if(SSL_get0_peername(c->ssl)) {
   3619 				char buf[255];
   3620 				snprintf(buf, sizeof(buf), "SSL connection "
   3621 					"to %s authenticated",
   3622 					SSL_get0_peername(c->ssl));
   3623 				log_addr(VERB_ALGO, buf, &c->repinfo.remote_addr,
   3624 					c->repinfo.remote_addrlen);
   3625 			} else {
   3626 #endif
   3627 				log_addr(VERB_ALGO, "SSL connection "
   3628 					"authenticated", &c->repinfo.remote_addr,
   3629 					c->repinfo.remote_addrlen);
   3630 #ifdef HAVE_SSL_GET0_PEERNAME
   3631 			}
   3632 #endif
   3633 			X509_free(x);
   3634 		} else {
   3635 #ifdef HAVE_SSL_GET1_PEER_CERTIFICATE
   3636 			X509* x = SSL_get1_peer_certificate(c->ssl);
   3637 #else
   3638 			X509* x = SSL_get_peer_certificate(c->ssl);
   3639 #endif
   3640 			if(x) {
   3641 				log_cert(VERB_ALGO, "peer certificate", x);
   3642 				X509_free(x);
   3643 			}
   3644 			log_addr(VERB_ALGO, "SSL connection failed: "
   3645 				"failed to authenticate",
   3646 				&c->repinfo.remote_addr,
   3647 				c->repinfo.remote_addrlen);
   3648 			return 0;
   3649 		}
   3650 	} else {
   3651 		/* unauthenticated, the verify peer flag was not set
   3652 		 * in c->ssl when the ssl object was created from ssl_ctx */
   3653 		log_addr(VERB_ALGO, "SSL connection", &c->repinfo.remote_addr,
   3654 			c->repinfo.remote_addrlen);
   3655 	}
   3656 
   3657 #ifdef HAVE_SSL_GET0_ALPN_SELECTED
   3658 	/* check if http2 use is negotiated */
   3659 	if(c->type == comm_http && c->h2_session) {
   3660 		const unsigned char *alpn;
   3661 		unsigned int alpnlen = 0;
   3662 		SSL_get0_alpn_selected(c->ssl, &alpn, &alpnlen);
   3663 		if(alpnlen == 2 && memcmp("h2", alpn, 2) == 0) {
   3664 			/* connection upgraded to HTTP2 */
   3665 			c->tcp_do_toggle_rw = 0;
   3666 			c->use_h2 = 1;
   3667 		} else {
   3668 			verbose(VERB_ALGO, "client doesn't support HTTP/2");
   3669 			return 0;
   3670 		}
   3671 	}
   3672 #endif
   3673 
   3674 	/* setup listen rw correctly */
   3675 	if(c->tcp_is_reading) {
   3676 		if(c->ssl_shake_state != comm_ssl_shake_read)
   3677 			comm_point_listen_for_rw(c, 1, 0);
   3678 	} else {
   3679 		comm_point_listen_for_rw(c, 0, 1);
   3680 	}
   3681 	c->ssl_shake_state = comm_ssl_shake_none;
   3682 	return 1;
   3683 }
   3684 #endif /* HAVE_SSL */
   3685 
   3686 /** ssl read callback on TCP */
   3687 static int
   3688 ssl_handle_read(struct comm_point* c)
   3689 {
   3690 #ifdef HAVE_SSL
   3691 	int r;
   3692 	if(c->ssl_shake_state != comm_ssl_shake_none) {
   3693 		if(!ssl_handshake(c))
   3694 			return 0;
   3695 		if(c->ssl_shake_state != comm_ssl_shake_none)
   3696 			return 1;
   3697 	}
   3698 	if(c->pp2_enabled && c->pp2_header_state != pp2_header_done) {
   3699 		struct pp2_header* header = NULL;
   3700 		size_t want_read_size = 0;
   3701 		size_t current_read_size = 0;
   3702 		if(c->pp2_header_state == pp2_header_none) {
   3703 			want_read_size = PP2_HEADER_SIZE;
   3704 			if(sldns_buffer_remaining(c->buffer)<want_read_size) {
   3705 				log_err_addr("proxy_protocol: not enough "
   3706 					"buffer size to read PROXYv2 header", "",
   3707 					&c->repinfo.remote_addr,
   3708 					c->repinfo.remote_addrlen);
   3709 				return 0;
   3710 			}
   3711 			verbose(VERB_ALGO, "proxy_protocol: reading fixed "
   3712 				"part of PROXYv2 header (len %lu)",
   3713 				(unsigned long)want_read_size);
   3714 			current_read_size = want_read_size;
   3715 			if(c->tcp_byte_count < current_read_size) {
   3716 				ERR_clear_error();
   3717 				if((r=SSL_read(c->ssl, (void*)sldns_buffer_at(
   3718 					c->buffer, c->tcp_byte_count),
   3719 					current_read_size -
   3720 					c->tcp_byte_count)) <= 0) {
   3721 					int want = SSL_get_error(c->ssl, r);
   3722 					if(want == SSL_ERROR_ZERO_RETURN) {
   3723 						if(c->tcp_req_info)
   3724 							return tcp_req_info_handle_read_close(c->tcp_req_info);
   3725 						return 0; /* shutdown, closed */
   3726 					} else if(want == SSL_ERROR_WANT_READ) {
   3727 #ifdef USE_WINSOCK
   3728 						ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_READ);
   3729 #endif
   3730 						return 1; /* read more later */
   3731 					} else if(want == SSL_ERROR_WANT_WRITE) {
   3732 						c->ssl_shake_state = comm_ssl_shake_hs_write;
   3733 						comm_point_listen_for_rw(c, 0, 1);
   3734 						return 1;
   3735 					} else if(want == SSL_ERROR_SYSCALL) {
   3736 #ifdef ECONNRESET
   3737 						if(errno == ECONNRESET && verbosity < 2)
   3738 							return 0; /* silence reset by peer */
   3739 #endif
   3740 						if(errno != 0)
   3741 							log_err("SSL_read syscall: %s",
   3742 								strerror(errno));
   3743 						return 0;
   3744 					}
   3745 					log_crypto_err_io("could not SSL_read",
   3746 						want);
   3747 					return 0;
   3748 				}
   3749 				c->tcp_byte_count += r;
   3750 				sldns_buffer_skip(c->buffer, r);
   3751 				if(c->tcp_byte_count != current_read_size) return 1;
   3752 				c->pp2_header_state = pp2_header_init;
   3753 			}
   3754 		}
   3755 		if(c->pp2_header_state == pp2_header_init) {
   3756 			int err;
   3757 			err = pp2_read_header(
   3758 				sldns_buffer_begin(c->buffer),
   3759 				sldns_buffer_limit(c->buffer));
   3760 			if(err) {
   3761 				log_err("proxy_protocol: could not parse "
   3762 					"PROXYv2 header (%s)",
   3763 					pp_lookup_error(err));
   3764 				return 0;
   3765 			}
   3766 			header = (struct pp2_header*)sldns_buffer_begin(c->buffer);
   3767 			want_read_size = ntohs(header->len);
   3768 			if(sldns_buffer_limit(c->buffer) <
   3769 				PP2_HEADER_SIZE + want_read_size) {
   3770 				log_err_addr("proxy_protocol: not enough "
   3771 					"buffer size to read PROXYv2 header", "",
   3772 					&c->repinfo.remote_addr,
   3773 					c->repinfo.remote_addrlen);
   3774 				return 0;
   3775 			}
   3776 			verbose(VERB_ALGO, "proxy_protocol: reading variable "
   3777 				"part of PROXYv2 header (len %lu)",
   3778 				(unsigned long)want_read_size);
   3779 			current_read_size = PP2_HEADER_SIZE + want_read_size;
   3780 			if(want_read_size == 0) {
   3781 				/* nothing more to read; header is complete */
   3782 				c->pp2_header_state = pp2_header_done;
   3783 			} else if(c->tcp_byte_count < current_read_size) {
   3784 				ERR_clear_error();
   3785 				if((r=SSL_read(c->ssl, (void*)sldns_buffer_at(
   3786 					c->buffer, c->tcp_byte_count),
   3787 					current_read_size -
   3788 					c->tcp_byte_count)) <= 0) {
   3789 					int want = SSL_get_error(c->ssl, r);
   3790 					if(want == SSL_ERROR_ZERO_RETURN) {
   3791 						if(c->tcp_req_info)
   3792 							return tcp_req_info_handle_read_close(c->tcp_req_info);
   3793 						return 0; /* shutdown, closed */
   3794 					} else if(want == SSL_ERROR_WANT_READ) {
   3795 #ifdef USE_WINSOCK
   3796 						ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_READ);
   3797 #endif
   3798 						return 1; /* read more later */
   3799 					} else if(want == SSL_ERROR_WANT_WRITE) {
   3800 						c->ssl_shake_state = comm_ssl_shake_hs_write;
   3801 						comm_point_listen_for_rw(c, 0, 1);
   3802 						return 1;
   3803 					} else if(want == SSL_ERROR_SYSCALL) {
   3804 #ifdef ECONNRESET
   3805 						if(errno == ECONNRESET && verbosity < 2)
   3806 							return 0; /* silence reset by peer */
   3807 #endif
   3808 						if(errno != 0)
   3809 							log_err("SSL_read syscall: %s",
   3810 								strerror(errno));
   3811 						return 0;
   3812 					}
   3813 					log_crypto_err_io("could not SSL_read",
   3814 						want);
   3815 					return 0;
   3816 				}
   3817 				c->tcp_byte_count += r;
   3818 				sldns_buffer_skip(c->buffer, r);
   3819 				if(c->tcp_byte_count != current_read_size) return 1;
   3820 				c->pp2_header_state = pp2_header_done;
   3821 			}
   3822 		}
   3823 		if(c->pp2_header_state != pp2_header_done || !header) {
   3824 			log_err_addr("proxy_protocol: wrong state for the "
   3825 				"PROXYv2 header", "", &c->repinfo.remote_addr,
   3826 				c->repinfo.remote_addrlen);
   3827 			return 0;
   3828 		}
   3829 		sldns_buffer_flip(c->buffer);
   3830 		if(!consume_pp2_header(c->buffer, &c->repinfo, 1)) {
   3831 			log_err_addr("proxy_protocol: could not consume "
   3832 				"PROXYv2 header", "", &c->repinfo.remote_addr,
   3833 				c->repinfo.remote_addrlen);
   3834 			return 0;
   3835 		}
   3836 		verbose(VERB_ALGO, "proxy_protocol: successful read of "
   3837 			"PROXYv2 header");
   3838 		/* Clear and reset the buffer to read the following
   3839 		 * DNS packet(s). */
   3840 		sldns_buffer_clear(c->buffer);
   3841 		c->tcp_byte_count = 0;
   3842 		return 1;
   3843 	}
   3844 	if(c->tcp_byte_count < sizeof(uint16_t)) {
   3845 		/* read length bytes */
   3846 		ERR_clear_error();
   3847 		if((r=SSL_read(c->ssl, (void*)sldns_buffer_at(c->buffer,
   3848 			c->tcp_byte_count), (int)(sizeof(uint16_t) -
   3849 			c->tcp_byte_count))) <= 0) {
   3850 			int want = SSL_get_error(c->ssl, r);
   3851 			if(want == SSL_ERROR_ZERO_RETURN) {
   3852 				if(c->tcp_req_info)
   3853 					return tcp_req_info_handle_read_close(c->tcp_req_info);
   3854 				return 0; /* shutdown, closed */
   3855 			} else if(want == SSL_ERROR_WANT_READ) {
   3856 #ifdef USE_WINSOCK
   3857 				ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_READ);
   3858 #endif
   3859 				return 1; /* read more later */
   3860 			} else if(want == SSL_ERROR_WANT_WRITE) {
   3861 				c->ssl_shake_state = comm_ssl_shake_hs_write;
   3862 				comm_point_listen_for_rw(c, 0, 1);
   3863 				return 1;
   3864 			} else if(want == SSL_ERROR_SYSCALL) {
   3865 #ifdef ECONNRESET
   3866 				if(errno == ECONNRESET && verbosity < 2)
   3867 					return 0; /* silence reset by peer */
   3868 #endif
   3869 				if(errno != 0)
   3870 					log_err("SSL_read syscall: %s",
   3871 						strerror(errno));
   3872 				return 0;
   3873 			}
   3874 			log_crypto_err_io("could not SSL_read", want);
   3875 			return 0;
   3876 		}
   3877 		c->tcp_byte_count += r;
   3878 		if(c->tcp_byte_count < sizeof(uint16_t))
   3879 			return 1;
   3880 		if(sldns_buffer_read_u16_at(c->buffer, 0) >
   3881 			sldns_buffer_capacity(c->buffer)) {
   3882 			verbose(VERB_QUERY, "ssl: dropped larger than buffer");
   3883 			return 0;
   3884 		}
   3885 		sldns_buffer_set_limit(c->buffer,
   3886 			sldns_buffer_read_u16_at(c->buffer, 0));
   3887 		if(sldns_buffer_limit(c->buffer) < LDNS_HEADER_SIZE) {
   3888 			verbose(VERB_QUERY, "ssl: dropped bogus too short.");
   3889 			return 0;
   3890 		}
   3891 		sldns_buffer_skip(c->buffer, (ssize_t)(c->tcp_byte_count-sizeof(uint16_t)));
   3892 		verbose(VERB_ALGO, "Reading ssl tcp query of length %d",
   3893 			(int)sldns_buffer_limit(c->buffer));
   3894 	}
   3895 	if(sldns_buffer_remaining(c->buffer) > 0) {
   3896 		ERR_clear_error();
   3897 		r = SSL_read(c->ssl, (void*)sldns_buffer_current(c->buffer),
   3898 			(int)sldns_buffer_remaining(c->buffer));
   3899 		if(r <= 0) {
   3900 			int want = SSL_get_error(c->ssl, r);
   3901 			if(want == SSL_ERROR_ZERO_RETURN) {
   3902 				if(c->tcp_req_info)
   3903 					return tcp_req_info_handle_read_close(c->tcp_req_info);
   3904 				return 0; /* shutdown, closed */
   3905 			} else if(want == SSL_ERROR_WANT_READ) {
   3906 #ifdef USE_WINSOCK
   3907 				ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_READ);
   3908 #endif
   3909 				return 1; /* read more later */
   3910 			} else if(want == SSL_ERROR_WANT_WRITE) {
   3911 				c->ssl_shake_state = comm_ssl_shake_hs_write;
   3912 				comm_point_listen_for_rw(c, 0, 1);
   3913 				return 1;
   3914 			} else if(want == SSL_ERROR_SYSCALL) {
   3915 #ifdef ECONNRESET
   3916 				if(errno == ECONNRESET && verbosity < 2)
   3917 					return 0; /* silence reset by peer */
   3918 #endif
   3919 				if(errno != 0)
   3920 					log_err("SSL_read syscall: %s",
   3921 						strerror(errno));
   3922 				return 0;
   3923 			}
   3924 			log_crypto_err_io("could not SSL_read", want);
   3925 			return 0;
   3926 		}
   3927 		sldns_buffer_skip(c->buffer, (ssize_t)r);
   3928 	}
   3929 	if(sldns_buffer_remaining(c->buffer) <= 0) {
   3930 		tcp_callback_reader(c);
   3931 	}
   3932 	return 1;
   3933 #else
   3934 	(void)c;
   3935 	return 0;
   3936 #endif /* HAVE_SSL */
   3937 }
   3938 
   3939 /** ssl write callback on TCP */
   3940 static int
   3941 ssl_handle_write(struct comm_point* c)
   3942 {
   3943 #ifdef HAVE_SSL
   3944 	int r;
   3945 	if(c->ssl_shake_state != comm_ssl_shake_none) {
   3946 		if(!ssl_handshake(c))
   3947 			return 0;
   3948 		if(c->ssl_shake_state != comm_ssl_shake_none)
   3949 			return 1;
   3950 	}
   3951 	/* ignore return, if fails we may simply block */
   3952 	(void)SSL_set_mode(c->ssl, (long)SSL_MODE_ENABLE_PARTIAL_WRITE);
   3953 	if((c->tcp_write_and_read?c->tcp_write_byte_count:c->tcp_byte_count) < sizeof(uint16_t)) {
   3954 		uint16_t len = htons(c->tcp_write_and_read?c->tcp_write_pkt_len:sldns_buffer_limit(c->buffer));
   3955 		ERR_clear_error();
   3956 		if(c->tcp_write_and_read) {
   3957 			if(c->tcp_write_pkt_len + 2 < LDNS_RR_BUF_SIZE) {
   3958 				/* combine the tcp length and the query for
   3959 				 * write, this emulates writev */
   3960 				uint8_t buf[LDNS_RR_BUF_SIZE];
   3961 				memmove(buf, &len, sizeof(uint16_t));
   3962 				memmove(buf+sizeof(uint16_t),
   3963 					c->tcp_write_pkt,
   3964 					c->tcp_write_pkt_len);
   3965 				r = SSL_write(c->ssl,
   3966 					(void*)(buf+c->tcp_write_byte_count),
   3967 					c->tcp_write_pkt_len + 2 -
   3968 					c->tcp_write_byte_count);
   3969 			} else {
   3970 				r = SSL_write(c->ssl,
   3971 					(void*)(((uint8_t*)&len)+c->tcp_write_byte_count),
   3972 					(int)(sizeof(uint16_t)-c->tcp_write_byte_count));
   3973 			}
   3974 		} else if(sizeof(uint16_t)+sldns_buffer_remaining(c->buffer) <
   3975 			LDNS_RR_BUF_SIZE) {
   3976 			/* combine the tcp length and the query for write,
   3977 			 * this emulates writev */
   3978 			uint8_t buf[LDNS_RR_BUF_SIZE];
   3979 			memmove(buf, &len, sizeof(uint16_t));
   3980 			memmove(buf+sizeof(uint16_t),
   3981 				sldns_buffer_current(c->buffer),
   3982 				sldns_buffer_remaining(c->buffer));
   3983 			r = SSL_write(c->ssl, (void*)(buf+c->tcp_byte_count),
   3984 				(int)(sizeof(uint16_t)+
   3985 				sldns_buffer_remaining(c->buffer)
   3986 				- c->tcp_byte_count));
   3987 		} else {
   3988 			r = SSL_write(c->ssl,
   3989 				(void*)(((uint8_t*)&len)+c->tcp_byte_count),
   3990 				(int)(sizeof(uint16_t)-c->tcp_byte_count));
   3991 		}
   3992 		if(r <= 0) {
   3993 			int want = SSL_get_error(c->ssl, r);
   3994 			if(want == SSL_ERROR_ZERO_RETURN) {
   3995 				return 0; /* closed */
   3996 			} else if(want == SSL_ERROR_WANT_READ) {
   3997 				c->ssl_shake_state = comm_ssl_shake_hs_read;
   3998 				comm_point_listen_for_rw(c, 1, 0);
   3999 				return 1; /* wait for read condition */
   4000 			} else if(want == SSL_ERROR_WANT_WRITE) {
   4001 #ifdef USE_WINSOCK
   4002 				ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_WRITE);
   4003 #endif
   4004 				return 1; /* write more later */
   4005 			} else if(want == SSL_ERROR_SYSCALL) {
   4006 #ifdef EPIPE
   4007 				if(errno == EPIPE && verbosity < 2)
   4008 					return 0; /* silence 'broken pipe' */
   4009 #endif
   4010 				if(errno != 0)
   4011 					log_err("SSL_write syscall: %s",
   4012 						strerror(errno));
   4013 				return 0;
   4014 			}
   4015 			log_crypto_err_io("could not SSL_write", want);
   4016 			return 0;
   4017 		}
   4018 		if(c->tcp_write_and_read) {
   4019 			c->tcp_write_byte_count += r;
   4020 			if(c->tcp_write_byte_count < sizeof(uint16_t))
   4021 				return 1;
   4022 		} else {
   4023 			c->tcp_byte_count += r;
   4024 			if(c->tcp_byte_count < sizeof(uint16_t))
   4025 				return 1;
   4026 			sldns_buffer_set_position(c->buffer, c->tcp_byte_count -
   4027 				sizeof(uint16_t));
   4028 		}
   4029 		if((!c->tcp_write_and_read && sldns_buffer_remaining(c->buffer) == 0) || (c->tcp_write_and_read && c->tcp_write_byte_count == c->tcp_write_pkt_len + 2)) {
   4030 			tcp_callback_writer(c);
   4031 			return 1;
   4032 		}
   4033 	}
   4034 	log_assert(c->tcp_write_and_read || sldns_buffer_remaining(c->buffer) > 0);
   4035 	log_assert(!c->tcp_write_and_read || c->tcp_write_byte_count < c->tcp_write_pkt_len + 2);
   4036 	ERR_clear_error();
   4037 	if(c->tcp_write_and_read) {
   4038 		r = SSL_write(c->ssl, (void*)(c->tcp_write_pkt + c->tcp_write_byte_count - 2),
   4039 			(int)(c->tcp_write_pkt_len + 2 - c->tcp_write_byte_count));
   4040 	} else {
   4041 		r = SSL_write(c->ssl, (void*)sldns_buffer_current(c->buffer),
   4042 			(int)sldns_buffer_remaining(c->buffer));
   4043 	}
   4044 	if(r <= 0) {
   4045 		int want = SSL_get_error(c->ssl, r);
   4046 		if(want == SSL_ERROR_ZERO_RETURN) {
   4047 			return 0; /* closed */
   4048 		} else if(want == SSL_ERROR_WANT_READ) {
   4049 			c->ssl_shake_state = comm_ssl_shake_hs_read;
   4050 			comm_point_listen_for_rw(c, 1, 0);
   4051 			return 1; /* wait for read condition */
   4052 		} else if(want == SSL_ERROR_WANT_WRITE) {
   4053 #ifdef USE_WINSOCK
   4054 			ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_WRITE);
   4055 #endif
   4056 			return 1; /* write more later */
   4057 		} else if(want == SSL_ERROR_SYSCALL) {
   4058 #ifdef EPIPE
   4059 			if(errno == EPIPE && verbosity < 2)
   4060 				return 0; /* silence 'broken pipe' */
   4061 #endif
   4062 			if(errno != 0)
   4063 				log_err("SSL_write syscall: %s",
   4064 					strerror(errno));
   4065 			return 0;
   4066 		}
   4067 		log_crypto_err_io("could not SSL_write", want);
   4068 		return 0;
   4069 	}
   4070 	if(c->tcp_write_and_read) {
   4071 		c->tcp_write_byte_count += r;
   4072 	} else {
   4073 		sldns_buffer_skip(c->buffer, (ssize_t)r);
   4074 	}
   4075 
   4076 	if((!c->tcp_write_and_read && sldns_buffer_remaining(c->buffer) == 0) || (c->tcp_write_and_read && c->tcp_write_byte_count == c->tcp_write_pkt_len + 2)) {
   4077 		tcp_callback_writer(c);
   4078 	}
   4079 	return 1;
   4080 #else
   4081 	(void)c;
   4082 	return 0;
   4083 #endif /* HAVE_SSL */
   4084 }
   4085 
   4086 /** handle ssl tcp connection with dns contents */
   4087 static int
   4088 ssl_handle_it(struct comm_point* c, int is_write)
   4089 {
   4090 	/* handle case where renegotiation wants read during write call
   4091 	 * or write during read calls */
   4092 	if(is_write && c->ssl_shake_state == comm_ssl_shake_hs_write)
   4093 		return ssl_handle_read(c);
   4094 	else if(!is_write && c->ssl_shake_state == comm_ssl_shake_hs_read)
   4095 		return ssl_handle_write(c);
   4096 	/* handle read events for read operation and write events for a
   4097 	 * write operation */
   4098 	else if(!is_write)
   4099 		return ssl_handle_read(c);
   4100 	return ssl_handle_write(c);
   4101 }
   4102 
   4103 /**
   4104  * Handle tcp reading callback.
   4105  * @param fd: file descriptor of socket.
   4106  * @param c: comm point to read from into buffer.
   4107  * @param short_ok: if true, very short packets are OK (for comm_local).
   4108  * @return: 0 on error
   4109  */
   4110 static int
   4111 comm_point_tcp_handle_read(int fd, struct comm_point* c, int short_ok)
   4112 {
   4113 	ssize_t r;
   4114 	int recv_initial = 0;
   4115 	log_assert(c->type == comm_tcp || c->type == comm_local);
   4116 	if(c->ssl)
   4117 		return ssl_handle_it(c, 0);
   4118 	if(!c->tcp_is_reading && !c->tcp_write_and_read)
   4119 		return 0;
   4120 
   4121 	log_assert(fd != -1);
   4122 	if(c->pp2_enabled && c->pp2_header_state != pp2_header_done) {
   4123 		struct pp2_header* header = NULL;
   4124 		size_t want_read_size = 0;
   4125 		size_t current_read_size = 0;
   4126 		if(c->pp2_header_state == pp2_header_none) {
   4127 			want_read_size = PP2_HEADER_SIZE;
   4128 			if(sldns_buffer_remaining(c->buffer)<want_read_size) {
   4129 				log_err_addr("proxy_protocol: not enough "
   4130 					"buffer size to read PROXYv2 header", "",
   4131 					&c->repinfo.remote_addr,
   4132 					c->repinfo.remote_addrlen);
   4133 				return 0;
   4134 			}
   4135 			verbose(VERB_ALGO, "proxy_protocol: reading fixed "
   4136 				"part of PROXYv2 header (len %lu)",
   4137 				(unsigned long)want_read_size);
   4138 			current_read_size = want_read_size;
   4139 			if(c->tcp_byte_count < current_read_size) {
   4140 				r = recv(fd, (void*)sldns_buffer_at(c->buffer,
   4141 					c->tcp_byte_count),
   4142 					current_read_size-c->tcp_byte_count, MSG_DONTWAIT);
   4143 				if(r == 0) {
   4144 					if(c->tcp_req_info)
   4145 						return tcp_req_info_handle_read_close(c->tcp_req_info);
   4146 					return 0;
   4147 				} else if(r == -1) {
   4148 					goto recv_error_initial;
   4149 				}
   4150 				c->tcp_byte_count += r;
   4151 				sldns_buffer_skip(c->buffer, r);
   4152 				if(c->tcp_byte_count != current_read_size) return 1;
   4153 				c->pp2_header_state = pp2_header_init;
   4154 			}
   4155 		}
   4156 		if(c->pp2_header_state == pp2_header_init) {
   4157 			int err;
   4158 			err = pp2_read_header(
   4159 				sldns_buffer_begin(c->buffer),
   4160 				sldns_buffer_limit(c->buffer));
   4161 			if(err) {
   4162 				log_err("proxy_protocol: could not parse "
   4163 					"PROXYv2 header (%s)",
   4164 					pp_lookup_error(err));
   4165 				return 0;
   4166 			}
   4167 			header = (struct pp2_header*)sldns_buffer_begin(c->buffer);
   4168 			want_read_size = ntohs(header->len);
   4169 			if(sldns_buffer_limit(c->buffer) <
   4170 				PP2_HEADER_SIZE + want_read_size) {
   4171 				log_err_addr("proxy_protocol: not enough "
   4172 					"buffer size to read PROXYv2 header", "",
   4173 					&c->repinfo.remote_addr,
   4174 					c->repinfo.remote_addrlen);
   4175 				return 0;
   4176 			}
   4177 			verbose(VERB_ALGO, "proxy_protocol: reading variable "
   4178 				"part of PROXYv2 header (len %lu)",
   4179 				(unsigned long)want_read_size);
   4180 			current_read_size = PP2_HEADER_SIZE + want_read_size;
   4181 			if(want_read_size == 0) {
   4182 				/* nothing more to read; header is complete */
   4183 				c->pp2_header_state = pp2_header_done;
   4184 			} else if(c->tcp_byte_count < current_read_size) {
   4185 				r = recv(fd, (void*)sldns_buffer_at(c->buffer,
   4186 					c->tcp_byte_count),
   4187 					current_read_size-c->tcp_byte_count, MSG_DONTWAIT);
   4188 				if(r == 0) {
   4189 					if(c->tcp_req_info)
   4190 						return tcp_req_info_handle_read_close(c->tcp_req_info);
   4191 					return 0;
   4192 				} else if(r == -1) {
   4193 					goto recv_error;
   4194 				}
   4195 				c->tcp_byte_count += r;
   4196 				sldns_buffer_skip(c->buffer, r);
   4197 				if(c->tcp_byte_count != current_read_size) return 1;
   4198 				c->pp2_header_state = pp2_header_done;
   4199 			}
   4200 		}
   4201 		if(c->pp2_header_state != pp2_header_done || !header) {
   4202 			log_err_addr("proxy_protocol: wrong state for the "
   4203 				"PROXYv2 header", "", &c->repinfo.remote_addr,
   4204 				c->repinfo.remote_addrlen);
   4205 			return 0;
   4206 		}
   4207 		sldns_buffer_flip(c->buffer);
   4208 		if(!consume_pp2_header(c->buffer, &c->repinfo, 1)) {
   4209 			log_err_addr("proxy_protocol: could not consume "
   4210 				"PROXYv2 header", "", &c->repinfo.remote_addr,
   4211 				c->repinfo.remote_addrlen);
   4212 			return 0;
   4213 		}
   4214 		verbose(VERB_ALGO, "proxy_protocol: successful read of "
   4215 			"PROXYv2 header");
   4216 		/* Clear and reset the buffer to read the following
   4217 		    * DNS packet(s). */
   4218 		sldns_buffer_clear(c->buffer);
   4219 		c->tcp_byte_count = 0;
   4220 		return 1;
   4221 	}
   4222 
   4223 	if(c->tcp_byte_count < sizeof(uint16_t)) {
   4224 		/* read length bytes */
   4225 		r = recv(fd,(void*)sldns_buffer_at(c->buffer,c->tcp_byte_count),
   4226 			sizeof(uint16_t)-c->tcp_byte_count, MSG_DONTWAIT);
   4227 		if(r == 0) {
   4228 			if(c->tcp_req_info)
   4229 				return tcp_req_info_handle_read_close(c->tcp_req_info);
   4230 			return 0;
   4231 		} else if(r == -1) {
   4232 			if(c->pp2_enabled) goto recv_error;
   4233 			goto recv_error_initial;
   4234 		}
   4235 		c->tcp_byte_count += r;
   4236 		if(c->tcp_byte_count != sizeof(uint16_t))
   4237 			return 1;
   4238 		if(sldns_buffer_read_u16_at(c->buffer, 0) >
   4239 			sldns_buffer_capacity(c->buffer)) {
   4240 			verbose(VERB_QUERY, "tcp: dropped larger than buffer");
   4241 			return 0;
   4242 		}
   4243 		sldns_buffer_set_limit(c->buffer,
   4244 			sldns_buffer_read_u16_at(c->buffer, 0));
   4245 		if(!short_ok &&
   4246 			sldns_buffer_limit(c->buffer) < LDNS_HEADER_SIZE) {
   4247 			verbose(VERB_QUERY, "tcp: dropped bogus too short.");
   4248 			return 0;
   4249 		}
   4250 		verbose(VERB_ALGO, "Reading tcp query of length %d",
   4251 			(int)sldns_buffer_limit(c->buffer));
   4252 	}
   4253 
   4254 	if(sldns_buffer_remaining(c->buffer) == 0)
   4255 		log_err("in comm_point_tcp_handle_read buffer_remaining is "
   4256 			"not > 0 as expected, continuing with (harmless) 0 "
   4257 			"length recv");
   4258 	r = recv(fd, (void*)sldns_buffer_current(c->buffer),
   4259 		sldns_buffer_remaining(c->buffer), MSG_DONTWAIT);
   4260 	if(r == 0) {
   4261 		if(c->tcp_req_info)
   4262 			return tcp_req_info_handle_read_close(c->tcp_req_info);
   4263 		return 0;
   4264 	} else if(r == -1) {
   4265 		goto recv_error;
   4266 	}
   4267 	sldns_buffer_skip(c->buffer, r);
   4268 	if(sldns_buffer_remaining(c->buffer) <= 0) {
   4269 		tcp_callback_reader(c);
   4270 	}
   4271 	return 1;
   4272 
   4273 recv_error_initial:
   4274 	recv_initial = 1;
   4275 recv_error:
   4276 #ifndef USE_WINSOCK
   4277 	if(errno == EINTR || errno == EAGAIN)
   4278 		return 1;
   4279 #ifdef ECONNRESET
   4280 	if(errno == ECONNRESET && verbosity < 2)
   4281 		return 0; /* silence reset by peer */
   4282 #endif
   4283 	if(recv_initial) {
   4284 #ifdef ECONNREFUSED
   4285 		if(errno == ECONNREFUSED && verbosity < 2)
   4286 			return 0; /* silence reset by peer */
   4287 #endif
   4288 #ifdef ENETUNREACH
   4289 		if(errno == ENETUNREACH && verbosity < 2)
   4290 			return 0; /* silence it */
   4291 #endif
   4292 #ifdef EHOSTDOWN
   4293 		if(errno == EHOSTDOWN && verbosity < 2)
   4294 			return 0; /* silence it */
   4295 #endif
   4296 #ifdef EHOSTUNREACH
   4297 		if(errno == EHOSTUNREACH && verbosity < 2)
   4298 			return 0; /* silence it */
   4299 #endif
   4300 #ifdef ENETDOWN
   4301 		if(errno == ENETDOWN && verbosity < 2)
   4302 			return 0; /* silence it */
   4303 #endif
   4304 #ifdef EACCES
   4305 		if(errno == EACCES && verbosity < 2)
   4306 			return 0; /* silence it */
   4307 #endif
   4308 #ifdef ENOTCONN
   4309 		if(errno == ENOTCONN) {
   4310 			log_err_addr("read (in tcp initial) failed and this "
   4311 				"could be because TCP Fast Open is "
   4312 				"enabled [--disable-tfo-client "
   4313 				"--disable-tfo-server] but does not "
   4314 				"work", sock_strerror(errno),
   4315 				&c->repinfo.remote_addr,
   4316 				c->repinfo.remote_addrlen);
   4317 			return 0;
   4318 		}
   4319 #endif
   4320 	}
   4321 #else /* USE_WINSOCK */
   4322 	if(recv_initial) {
   4323 		if(WSAGetLastError() == WSAECONNREFUSED && verbosity < 2)
   4324 			return 0;
   4325 		if(WSAGetLastError() == WSAEHOSTDOWN && verbosity < 2)
   4326 			return 0;
   4327 		if(WSAGetLastError() == WSAEHOSTUNREACH && verbosity < 2)
   4328 			return 0;
   4329 		if(WSAGetLastError() == WSAENETDOWN && verbosity < 2)
   4330 			return 0;
   4331 		if(WSAGetLastError() == WSAENETUNREACH && verbosity < 2)
   4332 			return 0;
   4333 	}
   4334 	if(WSAGetLastError() == WSAECONNRESET)
   4335 		return 0;
   4336 	if(WSAGetLastError() == WSAEINPROGRESS)
   4337 		return 1;
   4338 	if(WSAGetLastError() == WSAEWOULDBLOCK) {
   4339 		ub_winsock_tcp_wouldblock(c->ev->ev,
   4340 			UB_EV_READ);
   4341 		return 1;
   4342 	}
   4343 #endif
   4344 	log_err_addr((recv_initial?"read (in tcp initial)":"read (in tcp)"),
   4345 		sock_strerror(errno), &c->repinfo.remote_addr,
   4346 		c->repinfo.remote_addrlen);
   4347 	return 0;
   4348 }
   4349 
   4350 /**
   4351  * Handle tcp writing callback.
   4352  * @param fd: file descriptor of socket.
   4353  * @param c: comm point to write buffer out of.
   4354  * @return: 0 on error
   4355  */
   4356 static int
   4357 comm_point_tcp_handle_write(int fd, struct comm_point* c)
   4358 {
   4359 	ssize_t r;
   4360 	struct sldns_buffer *buffer;
   4361 	log_assert(c->type == comm_tcp);
   4362 #ifdef USE_DNSCRYPT
   4363 	buffer = c->dnscrypt_buffer;
   4364 #else
   4365 	buffer = c->buffer;
   4366 #endif
   4367 	if(c->tcp_is_reading && !c->ssl && !c->tcp_write_and_read)
   4368 		return 0;
   4369 	log_assert(fd != -1);
   4370 	if(((!c->tcp_write_and_read && c->tcp_byte_count == 0) || (c->tcp_write_and_read && c->tcp_write_byte_count == 0)) && c->tcp_check_nb_connect) {
   4371 		/* check for pending error from nonblocking connect */
   4372 		/* from Stevens, unix network programming, vol1, 3rd ed, p450*/
   4373 		int error = 0;
   4374 		socklen_t len = (socklen_t)sizeof(error);
   4375 		if(getsockopt(fd, SOL_SOCKET, SO_ERROR, (void*)&error,
   4376 			&len) < 0){
   4377 #ifndef USE_WINSOCK
   4378 			error = errno; /* on solaris errno is error */
   4379 #else /* USE_WINSOCK */
   4380 			error = WSAGetLastError();
   4381 #endif
   4382 		}
   4383 #ifndef USE_WINSOCK
   4384 #if defined(EINPROGRESS) && defined(EWOULDBLOCK)
   4385 		if(error == EINPROGRESS || error == EWOULDBLOCK)
   4386 			return 1; /* try again later */
   4387 		else
   4388 #endif
   4389 		if(error != 0 && verbosity < 2)
   4390 			return 0; /* silence lots of chatter in the logs */
   4391                 else if(error != 0) {
   4392 			log_err_addr("tcp connect", strerror(error),
   4393 				&c->repinfo.remote_addr,
   4394 				c->repinfo.remote_addrlen);
   4395 #else /* USE_WINSOCK */
   4396 		/* examine error */
   4397 		if(error == WSAEINPROGRESS)
   4398 			return 1;
   4399 		else if(error == WSAEWOULDBLOCK) {
   4400 			ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_WRITE);
   4401 			return 1;
   4402 		} else if(error != 0 && verbosity < 2)
   4403 			return 0;
   4404 		else if(error != 0) {
   4405 			log_err_addr("tcp connect", wsa_strerror(error),
   4406 				&c->repinfo.remote_addr,
   4407 				c->repinfo.remote_addrlen);
   4408 #endif /* USE_WINSOCK */
   4409 			return 0;
   4410 		}
   4411 	}
   4412 	if(c->ssl)
   4413 		return ssl_handle_it(c, 1);
   4414 
   4415 #ifdef USE_MSG_FASTOPEN
   4416 	/* Only try this on first use of a connection that uses tfo,
   4417 	   otherwise fall through to normal write */
   4418 	/* Also, TFO support on WINDOWS not implemented at the moment */
   4419 	if(c->tcp_do_fastopen == 1) {
   4420 		/* this form of sendmsg() does both a connect() and send() so need to
   4421 		   look for various flavours of error*/
   4422 		uint16_t len = htons(c->tcp_write_and_read?c->tcp_write_pkt_len:sldns_buffer_limit(buffer));
   4423 		struct msghdr msg;
   4424 		struct iovec iov[2];
   4425 		c->tcp_do_fastopen = 0;
   4426 		memset(&msg, 0, sizeof(msg));
   4427 		if(c->tcp_write_and_read) {
   4428 			iov[0].iov_base = (uint8_t*)&len + c->tcp_write_byte_count;
   4429 			iov[0].iov_len = sizeof(uint16_t) - c->tcp_write_byte_count;
   4430 			iov[1].iov_base = c->tcp_write_pkt;
   4431 			iov[1].iov_len = c->tcp_write_pkt_len;
   4432 		} else {
   4433 			iov[0].iov_base = (uint8_t*)&len + c->tcp_byte_count;
   4434 			iov[0].iov_len = sizeof(uint16_t) - c->tcp_byte_count;
   4435 			iov[1].iov_base = sldns_buffer_begin(buffer);
   4436 			iov[1].iov_len = sldns_buffer_limit(buffer);
   4437 		}
   4438 		log_assert(iov[0].iov_len > 0);
   4439 		msg.msg_name = &c->repinfo.remote_addr;
   4440 		msg.msg_namelen = c->repinfo.remote_addrlen;
   4441 		msg.msg_iov = iov;
   4442 		msg.msg_iovlen = 2;
   4443 		r = sendmsg(fd, &msg, MSG_FASTOPEN);
   4444 		if (r == -1) {
   4445 #if defined(EINPROGRESS) && defined(EWOULDBLOCK)
   4446 			/* Handshake is underway, maybe because no TFO cookie available.
   4447 			   Come back to write the message*/
   4448 			if(errno == EINPROGRESS || errno == EWOULDBLOCK)
   4449 				return 1;
   4450 #endif
   4451 			if(errno == EINTR || errno == EAGAIN)
   4452 				return 1;
   4453 			/* Not handling EISCONN here as shouldn't ever hit that case.*/
   4454 			if(errno != EPIPE
   4455 #ifdef EOPNOTSUPP
   4456 				/* if /proc/sys/net/ipv4/tcp_fastopen is
   4457 				 * disabled on Linux, sendmsg may return
   4458 				 * 'Operation not supported', if so
   4459 				 * fallthrough to ordinary connect. */
   4460 				&& errno != EOPNOTSUPP
   4461 #endif
   4462 				&& errno != 0) {
   4463 				if(verbosity < 2)
   4464 					return 0; /* silence lots of chatter in the logs */
   4465 				log_err_addr("tcp sendmsg", strerror(errno),
   4466 					&c->repinfo.remote_addr,
   4467 					c->repinfo.remote_addrlen);
   4468 				return 0;
   4469 			}
   4470 			verbose(VERB_ALGO, "tcp sendmsg for fastopen failed (with %s), try normal connect", strerror(errno));
   4471 			/* fallthrough to nonFASTOPEN
   4472 			 * (MSG_FASTOPEN on Linux 3 produces EPIPE)
   4473 			 * we need to perform connect() */
   4474 			if(connect(fd, (struct sockaddr *)&c->repinfo.remote_addr,
   4475 				c->repinfo.remote_addrlen) == -1) {
   4476 #ifdef EINPROGRESS
   4477 				if(errno == EINPROGRESS)
   4478 					return 1; /* wait until connect done*/
   4479 #endif
   4480 #ifdef USE_WINSOCK
   4481 				if(WSAGetLastError() == WSAEINPROGRESS ||
   4482 					WSAGetLastError() == WSAEWOULDBLOCK)
   4483 					return 1; /* wait until connect done*/
   4484 #endif
   4485 				if(tcp_connect_errno_needs_log(
   4486 					(struct sockaddr *)&c->repinfo.remote_addr,
   4487 					c->repinfo.remote_addrlen)) {
   4488 					log_err_addr("outgoing tcp: connect after EPIPE for fastopen",
   4489 						strerror(errno),
   4490 						&c->repinfo.remote_addr,
   4491 						c->repinfo.remote_addrlen);
   4492 				}
   4493 				return 0;
   4494 			}
   4495 
   4496 		} else {
   4497 			if(c->tcp_write_and_read) {
   4498 				c->tcp_write_byte_count += r;
   4499 				if(c->tcp_write_byte_count < sizeof(uint16_t))
   4500 					return 1;
   4501 			} else {
   4502 				c->tcp_byte_count += r;
   4503 				if(c->tcp_byte_count < sizeof(uint16_t))
   4504 					return 1;
   4505 				sldns_buffer_set_position(buffer, c->tcp_byte_count -
   4506 					sizeof(uint16_t));
   4507 			}
   4508 			if((!c->tcp_write_and_read && sldns_buffer_remaining(buffer) == 0) || (c->tcp_write_and_read && c->tcp_write_byte_count == c->tcp_write_pkt_len + 2)) {
   4509 				tcp_callback_writer(c);
   4510 				return 1;
   4511 			}
   4512 		}
   4513 	}
   4514 #endif /* USE_MSG_FASTOPEN */
   4515 
   4516 	if((c->tcp_write_and_read?c->tcp_write_byte_count:c->tcp_byte_count) < sizeof(uint16_t)) {
   4517 		uint16_t len = htons(c->tcp_write_and_read?c->tcp_write_pkt_len:sldns_buffer_limit(buffer));
   4518 #ifdef HAVE_WRITEV
   4519 		struct iovec iov[2];
   4520 		if(c->tcp_write_and_read) {
   4521 			iov[0].iov_base = (uint8_t*)&len + c->tcp_write_byte_count;
   4522 			iov[0].iov_len = sizeof(uint16_t) - c->tcp_write_byte_count;
   4523 			iov[1].iov_base = c->tcp_write_pkt;
   4524 			iov[1].iov_len = c->tcp_write_pkt_len;
   4525 		} else {
   4526 			iov[0].iov_base = (uint8_t*)&len + c->tcp_byte_count;
   4527 			iov[0].iov_len = sizeof(uint16_t) - c->tcp_byte_count;
   4528 			iov[1].iov_base = sldns_buffer_begin(buffer);
   4529 			iov[1].iov_len = sldns_buffer_limit(buffer);
   4530 		}
   4531 		log_assert(iov[0].iov_len > 0);
   4532 		r = writev(fd, iov, 2);
   4533 #else /* HAVE_WRITEV */
   4534 		if(c->tcp_write_and_read) {
   4535 			r = send(fd, (void*)(((uint8_t*)&len)+c->tcp_write_byte_count),
   4536 				sizeof(uint16_t)-c->tcp_write_byte_count, 0);
   4537 		} else {
   4538 			r = send(fd, (void*)(((uint8_t*)&len)+c->tcp_byte_count),
   4539 				sizeof(uint16_t)-c->tcp_byte_count, 0);
   4540 		}
   4541 #endif /* HAVE_WRITEV */
   4542 		if(r == -1) {
   4543 #ifndef USE_WINSOCK
   4544 #  ifdef EPIPE
   4545                 	if(errno == EPIPE && verbosity < 2)
   4546                         	return 0; /* silence 'broken pipe' */
   4547   #endif
   4548 			if(errno == EINTR || errno == EAGAIN)
   4549 				return 1;
   4550 #ifdef ECONNRESET
   4551 			if(errno == ECONNRESET && verbosity < 2)
   4552 				return 0; /* silence reset by peer */
   4553 #endif
   4554 #  ifdef HAVE_WRITEV
   4555 			log_err_addr("tcp writev", strerror(errno),
   4556 				&c->repinfo.remote_addr,
   4557 				c->repinfo.remote_addrlen);
   4558 #  else /* HAVE_WRITEV */
   4559 			log_err_addr("tcp send s", strerror(errno),
   4560 				&c->repinfo.remote_addr,
   4561 				c->repinfo.remote_addrlen);
   4562 #  endif /* HAVE_WRITEV */
   4563 #else
   4564 			if(WSAGetLastError() == WSAENOTCONN)
   4565 				return 1;
   4566 			if(WSAGetLastError() == WSAEINPROGRESS)
   4567 				return 1;
   4568 			if(WSAGetLastError() == WSAEWOULDBLOCK) {
   4569 				ub_winsock_tcp_wouldblock(c->ev->ev,
   4570 					UB_EV_WRITE);
   4571 				return 1;
   4572 			}
   4573 			if(WSAGetLastError() == WSAECONNRESET && verbosity < 2)
   4574 				return 0; /* silence reset by peer */
   4575 			log_err_addr("tcp send s",
   4576 				wsa_strerror(WSAGetLastError()),
   4577 				&c->repinfo.remote_addr,
   4578 				c->repinfo.remote_addrlen);
   4579 #endif
   4580 			return 0;
   4581 		}
   4582 		if(c->tcp_write_and_read) {
   4583 			c->tcp_write_byte_count += r;
   4584 			if(c->tcp_write_byte_count < sizeof(uint16_t))
   4585 				return 1;
   4586 		} else {
   4587 			c->tcp_byte_count += r;
   4588 			if(c->tcp_byte_count < sizeof(uint16_t))
   4589 				return 1;
   4590 			sldns_buffer_set_position(buffer, c->tcp_byte_count -
   4591 				sizeof(uint16_t));
   4592 		}
   4593 		if((!c->tcp_write_and_read && sldns_buffer_remaining(buffer) == 0) || (c->tcp_write_and_read && c->tcp_write_byte_count == c->tcp_write_pkt_len + 2)) {
   4594 			tcp_callback_writer(c);
   4595 			return 1;
   4596 		}
   4597 	}
   4598 	log_assert(c->tcp_write_and_read || sldns_buffer_remaining(buffer) > 0);
   4599 	log_assert(!c->tcp_write_and_read || c->tcp_write_byte_count < c->tcp_write_pkt_len + 2);
   4600 	if(c->tcp_write_and_read) {
   4601 		r = send(fd, (void*)(c->tcp_write_pkt + c->tcp_write_byte_count - 2),
   4602 			c->tcp_write_pkt_len + 2 - c->tcp_write_byte_count, 0);
   4603 	} else {
   4604 		r = send(fd, (void*)sldns_buffer_current(buffer),
   4605 			sldns_buffer_remaining(buffer), 0);
   4606 	}
   4607 	if(r == -1) {
   4608 #ifndef USE_WINSOCK
   4609 		if(errno == EINTR || errno == EAGAIN)
   4610 			return 1;
   4611 #ifdef ECONNRESET
   4612 		if(errno == ECONNRESET && verbosity < 2)
   4613 			return 0; /* silence reset by peer */
   4614 #endif
   4615 #else
   4616 		if(WSAGetLastError() == WSAEINPROGRESS)
   4617 			return 1;
   4618 		if(WSAGetLastError() == WSAEWOULDBLOCK) {
   4619 			ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_WRITE);
   4620 			return 1;
   4621 		}
   4622 		if(WSAGetLastError() == WSAECONNRESET && verbosity < 2)
   4623 			return 0; /* silence reset by peer */
   4624 #endif
   4625 		log_err_addr("tcp send r", sock_strerror(errno),
   4626 			&c->repinfo.remote_addr,
   4627 			c->repinfo.remote_addrlen);
   4628 		return 0;
   4629 	}
   4630 	if(c->tcp_write_and_read) {
   4631 		c->tcp_write_byte_count += r;
   4632 	} else {
   4633 		sldns_buffer_skip(buffer, r);
   4634 	}
   4635 
   4636 	if((!c->tcp_write_and_read && sldns_buffer_remaining(buffer) == 0) || (c->tcp_write_and_read && c->tcp_write_byte_count == c->tcp_write_pkt_len + 2)) {
   4637 		tcp_callback_writer(c);
   4638 	}
   4639 
   4640 	return 1;
   4641 }
   4642 
   4643 /** read again to drain buffers when there could be more to read, returns 0
   4644  * on failure which means the comm point is closed. */
   4645 static int
   4646 tcp_req_info_read_again(int fd, struct comm_point* c)
   4647 {
   4648 	/* One event-loop visit drains at most this many pipelined queries;
   4649 	 * the rest is re-queued, so that other file descriptors get
   4650 	 * serviced in between. */
   4651 	int budget = NUM_TCP_PER_SELECT;
   4652 	while(c->tcp_req_info->read_again) {
   4653 		int r;
   4654 		c->tcp_req_info->read_again = 0;
   4655 		if(c->tcp_is_reading)
   4656 			r = comm_point_tcp_handle_read(fd, c, 0);
   4657 		else 	r = comm_point_tcp_handle_write(fd, c);
   4658 		if(!r) {
   4659 			reclaim_tcp_handler(c);
   4660 			if(!c->tcp_do_close) {
   4661 				fptr_ok(fptr_whitelist_comm_point(
   4662 					c->callback));
   4663 				(void)(*c->callback)(c, c->cb_arg,
   4664 					NETEVENT_CLOSED, NULL);
   4665 			}
   4666 			return 0;
   4667 		}
   4668 		if(--budget <= 0 && c->tcp_req_info->read_again) {
   4669 			/* Defer the rest of the drain to the next loop turn.
   4670 			 * This uses a zero delay timer. For TLS the undrained
   4671 			 * remainder sits in OpenSSL's user-space buffer. */
   4672 			struct timeval tv;
   4673 			memset(&tv, 0, sizeof(tv));
   4674 			verbose(VERB_ALGO, "Defer tcp_req_info read again");
   4675 			comm_timer_set(c->tcp_req_info->read_again_timer, &tv);
   4676 			return 1;
   4677 		}
   4678 	}
   4679 	return 1;
   4680 }
   4681 
   4682 /** read again to drain buffers when there could be more to read */
   4683 static void
   4684 tcp_more_read_again(int fd, struct comm_point* c)
   4685 {
   4686 	/* if the packet is done, but another one could be waiting on
   4687 	 * the connection, the callback signals this, and we try again */
   4688 	/* this continues until the read routines get EAGAIN or so,
   4689 	 * and thus does not call the callback, and the bool is 0 */
   4690 	int* moreread = c->tcp_more_read_again;
   4691 	int budget = NUM_TCP_PER_SELECT;
   4692 	while(moreread && *moreread) {
   4693 		*moreread = 0;
   4694 		if(!comm_point_tcp_handle_read(fd, c, 0)) {
   4695 			reclaim_tcp_handler(c);
   4696 			if(!c->tcp_do_close) {
   4697 				fptr_ok(fptr_whitelist_comm_point(
   4698 					c->callback));
   4699 				(void)(*c->callback)(c, c->cb_arg,
   4700 					NETEVENT_CLOSED, NULL);
   4701 			}
   4702 			return;
   4703 		}
   4704 		if(--budget <= 0 && *moreread) {
   4705 			/* Defer the rest of the drain to the next loop turn.
   4706 			 * This uses a zero delay timer. For TLS the undrained
   4707 			 * remainder sits in OpenSSL's user-space buffer. */
   4708 			struct timeval tv;
   4709 			memset(&tv, 0, sizeof(tv));
   4710 			if(!c->tcp_more_read_again_timer) {
   4711 				c->tcp_more_read_again_timer = comm_timer_create(c->ev->base, tcp_more_read_again_cb, c);
   4712 				if(!c->tcp_more_read_again_timer) {
   4713 					log_err("out of memory for tcp more read again timer");
   4714 					reclaim_tcp_handler(c);
   4715 					if(!c->tcp_do_close) {
   4716 						fptr_ok(fptr_whitelist_comm_point(
   4717 							c->callback));
   4718 						(void)(*c->callback)(c, c->cb_arg,
   4719 							NETEVENT_CLOSED, NULL);
   4720 					}
   4721 					return;
   4722 				}
   4723 			}
   4724 			verbose(VERB_ALGO, "Defer more read again");
   4725 			comm_timer_set(c->tcp_more_read_again_timer, &tv);
   4726 			return;
   4727 		}
   4728 	}
   4729 }
   4730 
   4731 /** write again to fill up when there could be more to write */
   4732 static void
   4733 tcp_more_write_again(int fd, struct comm_point* c)
   4734 {
   4735 	/* if the packet is done, but another is waiting to be written,
   4736 	 * the callback signals it and we try again. */
   4737 	/* this continues until the write routines get EAGAIN or so,
   4738 	 * and thus does not call the callback, and the bool is 0 */
   4739 	int* morewrite = c->tcp_more_write_again;
   4740 	while(morewrite && *morewrite) {
   4741 		*morewrite = 0;
   4742 		if(!comm_point_tcp_handle_write(fd, c)) {
   4743 			reclaim_tcp_handler(c);
   4744 			if(!c->tcp_do_close) {
   4745 				fptr_ok(fptr_whitelist_comm_point(
   4746 					c->callback));
   4747 				(void)(*c->callback)(c, c->cb_arg,
   4748 					NETEVENT_CLOSED, NULL);
   4749 			}
   4750 			return;
   4751 		}
   4752 	}
   4753 }
   4754 
   4755 void
   4756 tcp_read_again_cb(void* arg)
   4757 {
   4758 	struct tcp_req_info* req = (struct tcp_req_info*)arg;
   4759 	verbose(VERB_ALGO, "tcp_read_again_cb");
   4760 	if(!tcp_req_info_read_again(req->cp->fd, req->cp))
   4761 		return;
   4762 }
   4763 
   4764 void
   4765 tcp_more_read_again_cb(void* arg)
   4766 {
   4767 	struct comm_point* c = (struct comm_point*)arg;
   4768 	verbose(VERB_ALGO, "tcp_more_read_again_cb");
   4769 	tcp_more_read_again(c->fd, c);
   4770 }
   4771 
   4772 void
   4773 comm_point_tcp_handle_callback(int fd, short event, void* arg)
   4774 {
   4775 	struct comm_point* c = (struct comm_point*)arg;
   4776 	log_assert(c->type == comm_tcp);
   4777 	ub_comm_base_now(c->ev->base);
   4778 
   4779 	if(c->fd == -1 || c->fd != fd)
   4780 		return; /* duplicate event, but commpoint closed. */
   4781 
   4782 #ifdef USE_DNSCRYPT
   4783 	/* Initialize if this is a dnscrypt socket */
   4784 	if(c->tcp_parent) {
   4785 		c->dnscrypt = c->tcp_parent->dnscrypt;
   4786 	}
   4787 	if(c->dnscrypt && c->dnscrypt_buffer == c->buffer) {
   4788 		c->dnscrypt_buffer = sldns_buffer_new(sldns_buffer_capacity(c->buffer));
   4789 		if(!c->dnscrypt_buffer) {
   4790 			log_err("Could not allocate dnscrypt buffer");
   4791 			reclaim_tcp_handler(c);
   4792 			if(!c->tcp_do_close) {
   4793 				fptr_ok(fptr_whitelist_comm_point(
   4794 					c->callback));
   4795 				(void)(*c->callback)(c, c->cb_arg,
   4796 					NETEVENT_CLOSED, NULL);
   4797 			}
   4798 			return;
   4799 		}
   4800 	}
   4801 #endif
   4802 
   4803 	if((event&UB_EV_TIMEOUT)) {
   4804 		verbose(VERB_QUERY, "tcp took too long, dropped");
   4805 		reclaim_tcp_handler(c);
   4806 		if(!c->tcp_do_close) {
   4807 			fptr_ok(fptr_whitelist_comm_point(c->callback));
   4808 			(void)(*c->callback)(c, c->cb_arg,
   4809 				NETEVENT_TIMEOUT, NULL);
   4810 		}
   4811 		return;
   4812 	}
   4813 	if((event&UB_EV_READ)
   4814 #ifdef USE_MSG_FASTOPEN
   4815 		&& !(c->tcp_do_fastopen && (event&UB_EV_WRITE))
   4816 #endif
   4817 		) {
   4818 		int has_tcpq = (c->tcp_req_info != NULL);
   4819 		int* moreread = c->tcp_more_read_again;
   4820 		if(!comm_point_tcp_handle_read(fd, c, 0)) {
   4821 			reclaim_tcp_handler(c);
   4822 			if(!c->tcp_do_close) {
   4823 				fptr_ok(fptr_whitelist_comm_point(
   4824 					c->callback));
   4825 				(void)(*c->callback)(c, c->cb_arg,
   4826 					NETEVENT_CLOSED, NULL);
   4827 			}
   4828 			return;
   4829 		}
   4830 		if(has_tcpq && c->tcp_req_info && c->tcp_req_info->read_again) {
   4831 			if(!tcp_req_info_read_again(fd, c))
   4832 				return;
   4833 		}
   4834 		if(moreread && *moreread)
   4835 			tcp_more_read_again(fd, c);
   4836 		return;
   4837 	}
   4838 	if((event&UB_EV_WRITE)) {
   4839 		int has_tcpq = (c->tcp_req_info != NULL);
   4840 		int* morewrite = c->tcp_more_write_again;
   4841 		if(!comm_point_tcp_handle_write(fd, c)) {
   4842 			reclaim_tcp_handler(c);
   4843 			if(!c->tcp_do_close) {
   4844 				fptr_ok(fptr_whitelist_comm_point(
   4845 					c->callback));
   4846 				(void)(*c->callback)(c, c->cb_arg,
   4847 					NETEVENT_CLOSED, NULL);
   4848 			}
   4849 			return;
   4850 		}
   4851 		if(has_tcpq && c->tcp_req_info && c->tcp_req_info->read_again) {
   4852 			if(!tcp_req_info_read_again(fd, c))
   4853 				return;
   4854 		}
   4855 		if(morewrite && *morewrite)
   4856 			tcp_more_write_again(fd, c);
   4857 		return;
   4858 	}
   4859 	log_err("Ignored event %d for tcphdl.", event);
   4860 }
   4861 
   4862 /** Make http handler free for next assignment */
   4863 static void
   4864 reclaim_http_handler(struct comm_point* c)
   4865 {
   4866 	log_assert(c->type == comm_http);
   4867 	if(c->ssl) {
   4868 #ifdef HAVE_SSL
   4869 		SSL_shutdown(c->ssl);
   4870 		SSL_free(c->ssl);
   4871 		c->ssl = NULL;
   4872 #endif
   4873 	}
   4874 	comm_point_close(c);
   4875 	if(c->tcp_parent && !c->is_in_tcp_free) {
   4876 		/* Should not happen: bad tcp_free state in reclaim_http. */
   4877 		log_assert(c->tcp_free == NULL);
   4878 		log_assert(c->tcp_parent->cur_tcp_count > 0);
   4879 		c->tcp_parent->cur_tcp_count--;
   4880 		c->tcp_free = c->tcp_parent->tcp_free;
   4881 		c->tcp_parent->tcp_free = c;
   4882 		c->is_in_tcp_free = 1;
   4883 		if(!c->tcp_free) {
   4884 			/* re-enable listening on accept socket */
   4885 			comm_point_start_listening(c->tcp_parent, -1, -1);
   4886 		}
   4887 	}
   4888 }
   4889 
   4890 /** read more data for http (with ssl) */
   4891 static int
   4892 ssl_http_read_more(struct comm_point* c)
   4893 {
   4894 #ifdef HAVE_SSL
   4895 	int r;
   4896 	log_assert(sldns_buffer_remaining(c->buffer) > 0);
   4897 	ERR_clear_error();
   4898 	r = SSL_read(c->ssl, (void*)sldns_buffer_current(c->buffer),
   4899 		(int)sldns_buffer_remaining(c->buffer));
   4900 	if(r <= 0) {
   4901 		int want = SSL_get_error(c->ssl, r);
   4902 		if(want == SSL_ERROR_ZERO_RETURN) {
   4903 			return 0; /* shutdown, closed */
   4904 		} else if(want == SSL_ERROR_WANT_READ) {
   4905 			return 1; /* read more later */
   4906 		} else if(want == SSL_ERROR_WANT_WRITE) {
   4907 			c->ssl_shake_state = comm_ssl_shake_hs_write;
   4908 			comm_point_listen_for_rw(c, 0, 1);
   4909 			return 1;
   4910 		} else if(want == SSL_ERROR_SYSCALL) {
   4911 #ifdef ECONNRESET
   4912 			if(errno == ECONNRESET && verbosity < 2)
   4913 				return 0; /* silence reset by peer */
   4914 #endif
   4915 			if(errno != 0)
   4916 				log_err("SSL_read syscall: %s",
   4917 					strerror(errno));
   4918 			return 0;
   4919 		}
   4920 		log_crypto_err_io("could not SSL_read", want);
   4921 		return 0;
   4922 	}
   4923 	verbose(VERB_ALGO, "ssl http read more skip to %d + %d",
   4924 		(int)sldns_buffer_position(c->buffer), (int)r);
   4925 	sldns_buffer_skip(c->buffer, (ssize_t)r);
   4926 	return 1;
   4927 #else
   4928 	(void)c;
   4929 	return 0;
   4930 #endif /* HAVE_SSL */
   4931 }
   4932 
   4933 /** read more data for http */
   4934 static int
   4935 http_read_more(int fd, struct comm_point* c)
   4936 {
   4937 	ssize_t r;
   4938 	log_assert(sldns_buffer_remaining(c->buffer) > 0);
   4939 	r = recv(fd, (void*)sldns_buffer_current(c->buffer),
   4940 		sldns_buffer_remaining(c->buffer), MSG_DONTWAIT);
   4941 	if(r == 0) {
   4942 		return 0;
   4943 	} else if(r == -1) {
   4944 #ifndef USE_WINSOCK
   4945 		if(errno == EINTR || errno == EAGAIN)
   4946 			return 1;
   4947 #else /* USE_WINSOCK */
   4948 		if(WSAGetLastError() == WSAECONNRESET)
   4949 			return 0;
   4950 		if(WSAGetLastError() == WSAEINPROGRESS)
   4951 			return 1;
   4952 		if(WSAGetLastError() == WSAEWOULDBLOCK) {
   4953 			ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_READ);
   4954 			return 1;
   4955 		}
   4956 #endif
   4957 		log_err_addr("read (in http r)", sock_strerror(errno),
   4958 			&c->repinfo.remote_addr, c->repinfo.remote_addrlen);
   4959 		return 0;
   4960 	}
   4961 	verbose(VERB_ALGO, "http read more skip to %d + %d",
   4962 		(int)sldns_buffer_position(c->buffer), (int)r);
   4963 	sldns_buffer_skip(c->buffer, r);
   4964 	return 1;
   4965 }
   4966 
   4967 /** return true if http header has been read (one line complete) */
   4968 static int
   4969 http_header_done(sldns_buffer* buf)
   4970 {
   4971 	size_t i;
   4972 	for(i=sldns_buffer_position(buf); i<sldns_buffer_limit(buf); i++) {
   4973 		/* there was a \r before the \n, but we ignore that */
   4974 		if((char)sldns_buffer_read_u8_at(buf, i) == '\n')
   4975 			return 1;
   4976 	}
   4977 	return 0;
   4978 }
   4979 
   4980 /** return character string into buffer for header line, moves buffer
   4981  * past that line and puts zero terminator into linefeed-newline */
   4982 static char*
   4983 http_header_line(sldns_buffer* buf)
   4984 {
   4985 	char* result = (char*)sldns_buffer_current(buf);
   4986 	size_t i;
   4987 	for(i=sldns_buffer_position(buf); i<sldns_buffer_limit(buf); i++) {
   4988 		/* terminate the string on the \r */
   4989 		if((char)sldns_buffer_read_u8_at(buf, i) == '\r')
   4990 			sldns_buffer_write_u8_at(buf, i, 0);
   4991 		/* terminate on the \n and skip past the it and done */
   4992 		if((char)sldns_buffer_read_u8_at(buf, i) == '\n') {
   4993 			sldns_buffer_write_u8_at(buf, i, 0);
   4994 			sldns_buffer_set_position(buf, i+1);
   4995 			return result;
   4996 		}
   4997 	}
   4998 	return NULL;
   4999 }
   5000 
   5001 /** move unread buffer to start and clear rest for putting the rest into it */
   5002 static void
   5003 http_moveover_buffer(sldns_buffer* buf)
   5004 {
   5005 	size_t pos = sldns_buffer_position(buf);
   5006 	size_t len = sldns_buffer_remaining(buf);
   5007 	sldns_buffer_clear(buf);
   5008 	memmove(sldns_buffer_begin(buf), sldns_buffer_at(buf, pos), len);
   5009 	sldns_buffer_set_position(buf, len);
   5010 }
   5011 
   5012 /** a http header is complete, process it */
   5013 static int
   5014 http_process_initial_header(struct comm_point* c)
   5015 {
   5016 	char* line = http_header_line(c->buffer);
   5017 	if(!line) return 1;
   5018 	verbose(VERB_ALGO, "http header: %s", line);
   5019 	if(strncasecmp(line, "HTTP/1.1 ", 9) == 0) {
   5020 		/* check returncode */
   5021 		if(line[9] != '2') {
   5022 			verbose(VERB_ALGO, "http bad status %s", line+9);
   5023 			return 0;
   5024 		}
   5025 	} else if(strncasecmp(line, "Content-Length: ", 16) == 0) {
   5026 		if(!c->http_is_chunked) {
   5027 			char* end = NULL;
   5028 			long long cl;
   5029 			errno = 0;
   5030 			cl = strtoll(line+16, &end, 10);
   5031 			if(end == line+16 || errno != 0 || cl < 0) {
   5032 				verbose(VERB_ALGO, "http invalid Content-Length: " ARG_LL "d", cl);
   5033 				return 0; /* reject */
   5034 			}
   5035 			c->tcp_byte_count = (size_t)cl;
   5036 		}
   5037 	} else if(strncasecmp(line, "Transfer-Encoding: chunked", 19+7) == 0) {
   5038 		c->tcp_byte_count = 0;
   5039 		c->http_is_chunked = 1;
   5040 	} else if(line[0] == 0) {
   5041 		/* end of initial headers */
   5042 		c->http_in_headers = 0;
   5043 		if(c->http_is_chunked)
   5044 			c->http_in_chunk_headers = 1;
   5045 		/* remove header text from front of buffer
   5046 		 * the buffer is going to be used to return the data segment
   5047 		 * itself and we don't want the header to get returned
   5048 		 * prepended with it */
   5049 		http_moveover_buffer(c->buffer);
   5050 		sldns_buffer_flip(c->buffer);
   5051 		return 1;
   5052 	}
   5053 	/* ignore other headers */
   5054 	return 1;
   5055 }
   5056 
   5057 /** a chunk header is complete, process it, return 0=fail, 1=continue next
   5058  * header line, 2=done with chunked transfer*/
   5059 static int
   5060 http_process_chunk_header(struct comm_point* c)
   5061 {
   5062 	char* line = http_header_line(c->buffer);
   5063 	if(!line) return 1;
   5064 	if(c->http_in_chunk_headers == 3) {
   5065 		verbose(VERB_ALGO, "http chunk trailer: %s", line);
   5066 		/* are we done ? */
   5067 		if(line[0] == 0 && c->tcp_byte_count == 0) {
   5068 			/* callback of http reader when NETEVENT_DONE,
   5069 			 * end of data, with no data in buffer */
   5070 			sldns_buffer_set_position(c->buffer, 0);
   5071 			sldns_buffer_set_limit(c->buffer, 0);
   5072 			fptr_ok(fptr_whitelist_comm_point(c->callback));
   5073 			(void)(*c->callback)(c, c->cb_arg, NETEVENT_DONE, NULL);
   5074 			/* return that we are done */
   5075 			return 2;
   5076 		}
   5077 		if(line[0] == 0) {
   5078 			/* continue with header of the next chunk */
   5079 			c->http_in_chunk_headers = 1;
   5080 			/* remove header text from front of buffer */
   5081 			http_moveover_buffer(c->buffer);
   5082 			sldns_buffer_flip(c->buffer);
   5083 			return 1;
   5084 		}
   5085 		/* ignore further trail headers */
   5086 		return 1;
   5087 	}
   5088 	verbose(VERB_ALGO, "http chunk header: %s", line);
   5089 	if(c->http_in_chunk_headers == 1) {
   5090 		/* read chunked start line */
   5091 		char* end = NULL;
   5092 		long chunk_sz;
   5093 		errno = 0;
   5094 		chunk_sz = strtol(line, &end, 16);
   5095 		if(end == line || errno != 0 || chunk_sz < 0) {
   5096 			verbose(VERB_ALGO, "http invalid chunk size: %ld",
   5097 				chunk_sz);
   5098 			return 0;
   5099 		}
   5100 		c->tcp_byte_count = (size_t)chunk_sz;
   5101 		c->http_in_chunk_headers = 0;
   5102 		/* remove header text from front of buffer */
   5103 		http_moveover_buffer(c->buffer);
   5104 		sldns_buffer_flip(c->buffer);
   5105 		if(c->tcp_byte_count == 0) {
   5106 			/* done with chunks, process chunk_trailer lines */
   5107 			c->http_in_chunk_headers = 3;
   5108 		}
   5109 		return 1;
   5110 	}
   5111 	/* ignore other headers */
   5112 	return 1;
   5113 }
   5114 
   5115 /** handle nonchunked data segment, 0=fail, 1=wait */
   5116 static int
   5117 http_nonchunk_segment(struct comm_point* c)
   5118 {
   5119 	/* c->buffer at position..limit has new data we read in.
   5120 	 * the buffer itself is full of nonchunked data.
   5121 	 * we are looking to read tcp_byte_count more data
   5122 	 * and then the transfer is done. */
   5123 	size_t remainbufferlen;
   5124 	size_t got_now = sldns_buffer_limit(c->buffer);
   5125 	if(c->tcp_byte_count <= got_now) {
   5126 		/* done, this is the last data fragment */
   5127 		c->http_stored = 0;
   5128 		sldns_buffer_set_position(c->buffer, 0);
   5129 		fptr_ok(fptr_whitelist_comm_point(c->callback));
   5130 		(void)(*c->callback)(c, c->cb_arg, NETEVENT_DONE, NULL);
   5131 		return 1;
   5132 	}
   5133 	/* if we have the buffer space,
   5134 	 * read more data collected into the buffer */
   5135 	remainbufferlen = sldns_buffer_capacity(c->buffer) -
   5136 		sldns_buffer_limit(c->buffer);
   5137 	if(remainbufferlen+got_now >= c->tcp_byte_count ||
   5138 		remainbufferlen >= (size_t)(c->ssl?16384:2048)) {
   5139 		size_t total = sldns_buffer_limit(c->buffer);
   5140 		sldns_buffer_clear(c->buffer);
   5141 		sldns_buffer_set_position(c->buffer, total);
   5142 		c->http_stored = total;
   5143 		/* return and wait to read more */
   5144 		return 1;
   5145 	}
   5146 	/* call callback with this data amount, then
   5147 	 * wait for more */
   5148 	c->tcp_byte_count -= got_now;
   5149 	c->http_stored = 0;
   5150 	sldns_buffer_set_position(c->buffer, 0);
   5151 	fptr_ok(fptr_whitelist_comm_point(c->callback));
   5152 	(void)(*c->callback)(c, c->cb_arg, NETEVENT_NOERROR, NULL);
   5153 	/* c->callback has to buffer_clear(c->buffer). */
   5154 	/* return and wait to read more */
   5155 	return 1;
   5156 }
   5157 
   5158 /** handle chunked data segment, return 0=fail, 1=wait, 2=process more */
   5159 static int
   5160 http_chunked_segment(struct comm_point* c)
   5161 {
   5162 	/* the c->buffer has from position..limit new data we read. */
   5163 	/* the current chunk has length tcp_byte_count.
   5164 	 * once we read that read more chunk headers.
   5165 	 */
   5166 	size_t remainbufferlen;
   5167 	size_t got_now = sldns_buffer_limit(c->buffer) - c->http_stored;
   5168 	verbose(VERB_ALGO, "http_chunked_segment: got now %d, tcpbytcount %d, http_stored %d, buffer pos %d, buffer limit %d", (int)got_now, (int)c->tcp_byte_count, (int)c->http_stored, (int)sldns_buffer_position(c->buffer), (int)sldns_buffer_limit(c->buffer));
   5169 	if(c->tcp_byte_count <= got_now) {
   5170 		/* the chunk has completed (with perhaps some extra data
   5171 		 * from next chunk header and next chunk) */
   5172 		/* save too much info into temp buffer */
   5173 		size_t fraglen;
   5174 		struct comm_reply repinfo;
   5175 		c->http_stored = 0;
   5176 		sldns_buffer_skip(c->buffer, (ssize_t)c->tcp_byte_count);
   5177 		sldns_buffer_clear(c->http_temp);
   5178 		if(sldns_buffer_remaining(c->buffer) >
   5179 			sldns_buffer_capacity(c->http_temp)) {
   5180 			verbose(VERB_OPS, "http chunked: surplus %d exceeds "
   5181 				"temp buffer %d", (int)sldns_buffer_remaining(
   5182 				c->buffer), (int)sldns_buffer_capacity(
   5183 				c->http_temp));
   5184 			return 0;
   5185 		}
   5186 		sldns_buffer_write(c->http_temp,
   5187 			sldns_buffer_current(c->buffer),
   5188 			sldns_buffer_remaining(c->buffer));
   5189 		sldns_buffer_flip(c->http_temp);
   5190 
   5191 		/* callback with this fragment */
   5192 		fraglen = sldns_buffer_position(c->buffer);
   5193 		sldns_buffer_set_position(c->buffer, 0);
   5194 		sldns_buffer_set_limit(c->buffer, fraglen);
   5195 		repinfo = c->repinfo;
   5196 		fptr_ok(fptr_whitelist_comm_point(c->callback));
   5197 		(void)(*c->callback)(c, c->cb_arg, NETEVENT_NOERROR, &repinfo);
   5198 		/* c->callback has to buffer_clear(). */
   5199 
   5200 		/* is commpoint deleted? */
   5201 		if(!repinfo.c) {
   5202 			return 1;
   5203 		}
   5204 		/* copy waiting info */
   5205 		sldns_buffer_clear(c->buffer);
   5206 		sldns_buffer_write(c->buffer,
   5207 			sldns_buffer_begin(c->http_temp),
   5208 			sldns_buffer_remaining(c->http_temp));
   5209 		sldns_buffer_flip(c->buffer);
   5210 		/* process end of chunk trailer header lines, until
   5211 		 * an empty line */
   5212 		c->http_in_chunk_headers = 3;
   5213 		/* process more data in buffer (if any) */
   5214 		return 2;
   5215 	}
   5216 	c->tcp_byte_count -= got_now;
   5217 
   5218 	/* if we have the buffer space,
   5219 	 * read more data collected into the buffer */
   5220 	remainbufferlen = sldns_buffer_capacity(c->buffer) -
   5221 		sldns_buffer_limit(c->buffer);
   5222 	if(remainbufferlen >= c->tcp_byte_count ||
   5223 		remainbufferlen >= 2048) {
   5224 		size_t total = sldns_buffer_limit(c->buffer);
   5225 		sldns_buffer_clear(c->buffer);
   5226 		sldns_buffer_set_position(c->buffer, total);
   5227 		c->http_stored = total;
   5228 		/* return and wait to read more */
   5229 		return 1;
   5230 	}
   5231 
   5232 	/* callback of http reader for a new part of the data */
   5233 	c->http_stored = 0;
   5234 	sldns_buffer_set_position(c->buffer, 0);
   5235 	fptr_ok(fptr_whitelist_comm_point(c->callback));
   5236 	(void)(*c->callback)(c, c->cb_arg, NETEVENT_NOERROR, NULL);
   5237 	/* c->callback has to buffer_clear(c->buffer). */
   5238 	/* return and wait to read more */
   5239 	return 1;
   5240 }
   5241 
   5242 #ifdef HAVE_NGHTTP2
   5243 /** Create new http2 session. Called when creating handling comm point. */
   5244 static struct http2_session* http2_session_create(struct comm_point* c)
   5245 {
   5246 	struct http2_session* session = calloc(1, sizeof(*session));
   5247 	if(!session) {
   5248 		log_err("malloc failure while creating http2 session");
   5249 		return NULL;
   5250 	}
   5251 	session->c = c;
   5252 
   5253 	return session;
   5254 }
   5255 #endif
   5256 
   5257 /** Delete http2 session. After closing connection or on error */
   5258 static void http2_session_delete(struct http2_session* h2_session)
   5259 {
   5260 #ifdef HAVE_NGHTTP2
   5261 	if(h2_session->callbacks)
   5262 		nghttp2_session_callbacks_del(h2_session->callbacks);
   5263 	free(h2_session);
   5264 #else
   5265 	(void)h2_session;
   5266 #endif
   5267 }
   5268 
   5269 #ifdef HAVE_NGHTTP2
   5270 struct http2_stream* http2_stream_create(int32_t stream_id)
   5271 {
   5272 	struct http2_stream* h2_stream = calloc(1, sizeof(*h2_stream));
   5273 	if(!h2_stream) {
   5274 		log_err("malloc failure while creating http2 stream");
   5275 		return NULL;
   5276 	}
   5277 	h2_stream->stream_id = stream_id;
   5278 	return h2_stream;
   5279 }
   5280 #endif
   5281 
   5282 void http2_stream_add_meshstate(struct http2_stream* h2_stream,
   5283 	struct mesh_area* mesh, struct mesh_state* m)
   5284 {
   5285 	h2_stream->mesh = mesh;
   5286 	h2_stream->mesh_state = m;
   5287 }
   5288 
   5289 void http2_stream_remove_mesh_state(struct http2_stream* h2_stream)
   5290 {
   5291 	if(!h2_stream)
   5292 		return;
   5293 	h2_stream->mesh_state = NULL;
   5294 }
   5295 
   5296 #ifdef HAVE_NGHTTP2
   5297 void http2_session_add_stream(struct http2_session* h2_session,
   5298 	struct http2_stream* h2_stream)
   5299 {
   5300 	if(h2_session->first_stream)
   5301 		h2_session->first_stream->prev = h2_stream;
   5302 	h2_stream->next = h2_session->first_stream;
   5303 	h2_session->first_stream = h2_stream;
   5304 }
   5305 
   5306 /** remove stream from session linked list. After stream close callback or
   5307  * closing connection */
   5308 static void http2_session_remove_stream(struct http2_session* h2_session,
   5309 	struct http2_stream* h2_stream)
   5310 {
   5311 	if(h2_stream->prev)
   5312 		h2_stream->prev->next = h2_stream->next;
   5313 	else
   5314 		h2_session->first_stream = h2_stream->next;
   5315 	if(h2_stream->next)
   5316 		h2_stream->next->prev = h2_stream->prev;
   5317 
   5318 }
   5319 
   5320 int http2_stream_close_cb(nghttp2_session* ATTR_UNUSED(session),
   5321 	int32_t stream_id, uint32_t ATTR_UNUSED(error_code), void* cb_arg)
   5322 {
   5323 	struct http2_stream* h2_stream;
   5324 	struct http2_session* h2_session = (struct http2_session*)cb_arg;
   5325 	if(!(h2_stream = nghttp2_session_get_stream_user_data(
   5326 		h2_session->session, stream_id))) {
   5327 		return 0;
   5328 	}
   5329 	http2_session_remove_stream(h2_session, h2_stream);
   5330 	http2_stream_delete(h2_session, h2_stream);
   5331 	return 0;
   5332 }
   5333 
   5334 ssize_t http2_recv_cb(nghttp2_session* ATTR_UNUSED(session), uint8_t* buf,
   5335 	size_t len, int ATTR_UNUSED(flags), void* cb_arg)
   5336 {
   5337 	struct http2_session* h2_session = (struct http2_session*)cb_arg;
   5338 	ssize_t ret;
   5339 
   5340 	log_assert(h2_session->c->type == comm_http);
   5341 	log_assert(h2_session->c->h2_session);
   5342 	if(++h2_session->reads_count > h2_session->c->http2_max_streams) {
   5343 		/* We are somewhat arbitrarily capping the amount of
   5344 		 * consecutive reads on the HTTP2 session to the number of max
   5345 		 * allowed streams.
   5346 		 * When we reach the cap, error out with NGHTTP2_ERR_WOULDBLOCK
   5347 		 * to signal nghttp2_session_recv() to stop reading for now. */
   5348 		h2_session->reads_count = 0;
   5349 		return NGHTTP2_ERR_WOULDBLOCK;
   5350 	}
   5351 
   5352 #ifdef HAVE_SSL
   5353 	if(h2_session->c->ssl) {
   5354 		int r;
   5355 		ERR_clear_error();
   5356 		r = SSL_read(h2_session->c->ssl, buf, len);
   5357 		if(r <= 0) {
   5358 			int want = SSL_get_error(h2_session->c->ssl, r);
   5359 			if(want == SSL_ERROR_ZERO_RETURN) {
   5360 				return NGHTTP2_ERR_EOF;
   5361 			} else if(want == SSL_ERROR_WANT_READ) {
   5362 				return NGHTTP2_ERR_WOULDBLOCK;
   5363 			} else if(want == SSL_ERROR_WANT_WRITE) {
   5364 				h2_session->c->ssl_shake_state = comm_ssl_shake_hs_write;
   5365 				comm_point_listen_for_rw(h2_session->c, 0, 1);
   5366 				return NGHTTP2_ERR_WOULDBLOCK;
   5367 			} else if(want == SSL_ERROR_SYSCALL) {
   5368 #ifdef ECONNRESET
   5369 				if(errno == ECONNRESET && verbosity < 2)
   5370 					return NGHTTP2_ERR_CALLBACK_FAILURE;
   5371 #endif
   5372 				if(errno != 0)
   5373 					log_err("SSL_read syscall: %s",
   5374 						strerror(errno));
   5375 				return NGHTTP2_ERR_CALLBACK_FAILURE;
   5376 			}
   5377 			log_crypto_err_io("could not SSL_read", want);
   5378 			return NGHTTP2_ERR_CALLBACK_FAILURE;
   5379 		}
   5380 		return r;
   5381 	}
   5382 #endif /* HAVE_SSL */
   5383 
   5384 	ret = recv(h2_session->c->fd, (void*)buf, len, MSG_DONTWAIT);
   5385 	if(ret == 0) {
   5386 		return NGHTTP2_ERR_EOF;
   5387 	} else if(ret < 0) {
   5388 #ifndef USE_WINSOCK
   5389 		if(errno == EINTR || errno == EAGAIN)
   5390 			return NGHTTP2_ERR_WOULDBLOCK;
   5391 #ifdef ECONNRESET
   5392 		if(errno == ECONNRESET && verbosity < 2)
   5393 			return NGHTTP2_ERR_CALLBACK_FAILURE;
   5394 #endif
   5395 		log_err_addr("could not http2 recv: %s", strerror(errno),
   5396 			&h2_session->c->repinfo.remote_addr,
   5397 			h2_session->c->repinfo.remote_addrlen);
   5398 #else /* USE_WINSOCK */
   5399 		if(WSAGetLastError() == WSAECONNRESET)
   5400 			return NGHTTP2_ERR_CALLBACK_FAILURE;
   5401 		if(WSAGetLastError() == WSAEINPROGRESS)
   5402 			return NGHTTP2_ERR_WOULDBLOCK;
   5403 		if(WSAGetLastError() == WSAEWOULDBLOCK) {
   5404 			ub_winsock_tcp_wouldblock(h2_session->c->ev->ev,
   5405 				UB_EV_READ);
   5406 			return NGHTTP2_ERR_WOULDBLOCK;
   5407 		}
   5408 		log_err_addr("could not http2 recv: %s",
   5409 			wsa_strerror(WSAGetLastError()),
   5410 			&h2_session->c->repinfo.remote_addr,
   5411 			h2_session->c->repinfo.remote_addrlen);
   5412 #endif
   5413 		return NGHTTP2_ERR_CALLBACK_FAILURE;
   5414 	}
   5415 	return ret;
   5416 }
   5417 #endif /* HAVE_NGHTTP2 */
   5418 
   5419 /** Handle http2 read */
   5420 static int
   5421 comm_point_http2_handle_read(int ATTR_UNUSED(fd), struct comm_point* c)
   5422 {
   5423 #ifdef HAVE_NGHTTP2
   5424 	int ret;
   5425 	log_assert(c->h2_session);
   5426 
   5427 	/* reading until recv cb returns NGHTTP2_ERR_WOULDBLOCK */
   5428 	ret = nghttp2_session_recv(c->h2_session->session);
   5429 	if(ret) {
   5430 		if(ret != NGHTTP2_ERR_EOF &&
   5431 			ret != NGHTTP2_ERR_CALLBACK_FAILURE) {
   5432 			char a[256];
   5433 			addr_to_str(&c->repinfo.remote_addr,
   5434 				c->repinfo.remote_addrlen, a, sizeof(a));
   5435 			verbose(VERB_QUERY, "http2: session_recv from %s failed, "
   5436 				"error: %s", a, nghttp2_strerror(ret));
   5437 		}
   5438 		return 0;
   5439 	}
   5440 	if(nghttp2_session_want_write(c->h2_session->session)) {
   5441 		c->tcp_is_reading = 0;
   5442 		comm_point_stop_listening(c);
   5443 		comm_point_start_listening(c, -1, adjusted_tcp_timeout(c));
   5444 	} else if(!nghttp2_session_want_read(c->h2_session->session))
   5445 		return 0; /* connection can be closed */
   5446 	return 1;
   5447 #else
   5448 	(void)c;
   5449 	return 0;
   5450 #endif
   5451 }
   5452 
   5453 /**
   5454  * Handle http reading callback.
   5455  * @param fd: file descriptor of socket.
   5456  * @param c: comm point to read from into buffer.
   5457  * @return: 0 on error
   5458  */
   5459 static int
   5460 comm_point_http_handle_read(int fd, struct comm_point* c)
   5461 {
   5462 	log_assert(c->type == comm_http);
   5463 	log_assert(fd != -1);
   5464 
   5465 	/* if we are in ssl handshake, handle SSL handshake */
   5466 #ifdef HAVE_SSL
   5467 	if(c->ssl && c->ssl_shake_state != comm_ssl_shake_none) {
   5468 		if(!ssl_handshake(c))
   5469 			return 0;
   5470 		if(c->ssl_shake_state != comm_ssl_shake_none)
   5471 			return 1;
   5472 	}
   5473 #endif /* HAVE_SSL */
   5474 
   5475 	if(!c->tcp_is_reading)
   5476 		return 1;
   5477 
   5478 	if(c->use_h2) {
   5479 		return comm_point_http2_handle_read(fd, c);
   5480 	}
   5481 
   5482 	/* http version is <= http/1.1 */
   5483 
   5484 	if(c->http_min_version >= http_version_2) {
   5485 		/* HTTP/2 failed, not allowed to use lower version. */
   5486 		return 0;
   5487 	}
   5488 
   5489 	/* read more data */
   5490 	if(c->ssl) {
   5491 		if(!ssl_http_read_more(c))
   5492 			return 0;
   5493 	} else {
   5494 		if(!http_read_more(fd, c))
   5495 			return 0;
   5496 	}
   5497 
   5498 	if(c->http_stored >= sldns_buffer_position(c->buffer)) {
   5499 		/* read did not work but we wanted more data, there is
   5500 		 * no bytes to process now. */
   5501 		return 1;
   5502 	}
   5503 	sldns_buffer_flip(c->buffer);
   5504 	/* if we are partway in a segment of data, position us at the point
   5505 	 * where we left off previously */
   5506 	if(c->http_stored < sldns_buffer_limit(c->buffer))
   5507 		sldns_buffer_set_position(c->buffer, c->http_stored);
   5508 	else	sldns_buffer_set_position(c->buffer, sldns_buffer_limit(c->buffer));
   5509 
   5510 	while(sldns_buffer_remaining(c->buffer) > 0) {
   5511 		/* Handle HTTP/1.x data */
   5512 		/* if we are reading headers, read more headers */
   5513 		if(c->http_in_headers || c->http_in_chunk_headers) {
   5514 			/* if header is done, process the header */
   5515 			if(!http_header_done(c->buffer)) {
   5516 				if(sldns_buffer_limit(c->buffer) ==
   5517 					sldns_buffer_capacity(c->buffer)) {
   5518 					verbose(VERB_OPS, "http header line "
   5519 						"exceeds %d bytes, transfer "
   5520 						"failed", (int)sldns_buffer_capacity(c->buffer));
   5521 					return 0;
   5522 				}
   5523 				/* copy remaining data to front of buffer
   5524 				 * and set rest for writing into it */
   5525 				http_moveover_buffer(c->buffer);
   5526 				/* return and wait to read more */
   5527 				return 1;
   5528 			}
   5529 			if(!c->http_in_chunk_headers) {
   5530 				/* process initial headers */
   5531 				if(!http_process_initial_header(c))
   5532 					return 0;
   5533 			} else {
   5534 				/* process chunk headers */
   5535 				int r = http_process_chunk_header(c);
   5536 				if(r == 0) return 0;
   5537 				if(r == 2) return 1; /* done */
   5538 				/* r == 1, continue */
   5539 			}
   5540 			/* see if we have more to process */
   5541 			continue;
   5542 		}
   5543 
   5544 		if(!c->http_is_chunked) {
   5545 			/* if we are reading nonchunks, process that*/
   5546 			return http_nonchunk_segment(c);
   5547 		} else {
   5548 			/* if we are reading chunks, read the chunk */
   5549 			int r = http_chunked_segment(c);
   5550 			if(r == 0) return 0;
   5551 			if(r == 1) return 1;
   5552 			continue;
   5553 		}
   5554 	}
   5555 	/* broke out of the loop; could not process header instead need
   5556 	 * to read more */
   5557 	/* moveover any remaining data and read more data */
   5558 	http_moveover_buffer(c->buffer);
   5559 	/* return and wait to read more */
   5560 	return 1;
   5561 }
   5562 
   5563 /** check pending connect for http */
   5564 static int
   5565 http_check_connect(int fd, struct comm_point* c)
   5566 {
   5567 	/* check for pending error from nonblocking connect */
   5568 	/* from Stevens, unix network programming, vol1, 3rd ed, p450*/
   5569 	int error = 0;
   5570 	socklen_t len = (socklen_t)sizeof(error);
   5571 	if(getsockopt(fd, SOL_SOCKET, SO_ERROR, (void*)&error,
   5572 		&len) < 0){
   5573 #ifndef USE_WINSOCK
   5574 		error = errno; /* on solaris errno is error */
   5575 #else /* USE_WINSOCK */
   5576 		error = WSAGetLastError();
   5577 #endif
   5578 	}
   5579 #ifndef USE_WINSOCK
   5580 #if defined(EINPROGRESS) && defined(EWOULDBLOCK)
   5581 	if(error == EINPROGRESS || error == EWOULDBLOCK)
   5582 		return 1; /* try again later */
   5583 	else
   5584 #endif
   5585 	if(error != 0 && verbosity < 2)
   5586 		return 0; /* silence lots of chatter in the logs */
   5587 	else if(error != 0) {
   5588 		log_err_addr("http connect", strerror(error),
   5589 			&c->repinfo.remote_addr, c->repinfo.remote_addrlen);
   5590 #else /* USE_WINSOCK */
   5591 	/* examine error */
   5592 	if(error == WSAEINPROGRESS)
   5593 		return 1;
   5594 	else if(error == WSAEWOULDBLOCK) {
   5595 		ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_WRITE);
   5596 		return 1;
   5597 	} else if(error != 0 && verbosity < 2)
   5598 		return 0;
   5599 	else if(error != 0) {
   5600 		log_err_addr("http connect", wsa_strerror(error),
   5601 			&c->repinfo.remote_addr, c->repinfo.remote_addrlen);
   5602 #endif /* USE_WINSOCK */
   5603 		return 0;
   5604 	}
   5605 	/* keep on processing this socket */
   5606 	return 2;
   5607 }
   5608 
   5609 /** write more data for http (with ssl) */
   5610 static int
   5611 ssl_http_write_more(struct comm_point* c)
   5612 {
   5613 #ifdef HAVE_SSL
   5614 	int r;
   5615 	log_assert(sldns_buffer_remaining(c->buffer) > 0);
   5616 	ERR_clear_error();
   5617 	r = SSL_write(c->ssl, (void*)sldns_buffer_current(c->buffer),
   5618 		(int)sldns_buffer_remaining(c->buffer));
   5619 	if(r <= 0) {
   5620 		int want = SSL_get_error(c->ssl, r);
   5621 		if(want == SSL_ERROR_ZERO_RETURN) {
   5622 			return 0; /* closed */
   5623 		} else if(want == SSL_ERROR_WANT_READ) {
   5624 			c->ssl_shake_state = comm_ssl_shake_hs_read;
   5625 			comm_point_listen_for_rw(c, 1, 0);
   5626 			return 1; /* wait for read condition */
   5627 		} else if(want == SSL_ERROR_WANT_WRITE) {
   5628 			return 1; /* write more later */
   5629 		} else if(want == SSL_ERROR_SYSCALL) {
   5630 #ifdef EPIPE
   5631 			if(errno == EPIPE && verbosity < 2)
   5632 				return 0; /* silence 'broken pipe' */
   5633 #endif
   5634 			if(errno != 0)
   5635 				log_err("SSL_write syscall: %s",
   5636 					strerror(errno));
   5637 			return 0;
   5638 		}
   5639 		log_crypto_err_io("could not SSL_write", want);
   5640 		return 0;
   5641 	}
   5642 	sldns_buffer_skip(c->buffer, (ssize_t)r);
   5643 	return 1;
   5644 #else
   5645 	(void)c;
   5646 	return 0;
   5647 #endif /* HAVE_SSL */
   5648 }
   5649 
   5650 /** write more data for http */
   5651 static int
   5652 http_write_more(int fd, struct comm_point* c)
   5653 {
   5654 	ssize_t r;
   5655 	log_assert(sldns_buffer_remaining(c->buffer) > 0);
   5656 	r = send(fd, (void*)sldns_buffer_current(c->buffer),
   5657 		sldns_buffer_remaining(c->buffer), 0);
   5658 	if(r == -1) {
   5659 #ifndef USE_WINSOCK
   5660 		if(errno == EINTR || errno == EAGAIN)
   5661 			return 1;
   5662 #else
   5663 		if(WSAGetLastError() == WSAEINPROGRESS)
   5664 			return 1;
   5665 		if(WSAGetLastError() == WSAEWOULDBLOCK) {
   5666 			ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_WRITE);
   5667 			return 1;
   5668 		}
   5669 #endif
   5670 		log_err_addr("http send r", sock_strerror(errno),
   5671 			&c->repinfo.remote_addr, c->repinfo.remote_addrlen);
   5672 		return 0;
   5673 	}
   5674 	sldns_buffer_skip(c->buffer, r);
   5675 	return 1;
   5676 }
   5677 
   5678 #ifdef HAVE_NGHTTP2
   5679 ssize_t http2_send_cb(nghttp2_session* ATTR_UNUSED(session), const uint8_t* buf,
   5680 	size_t len, int ATTR_UNUSED(flags), void* cb_arg)
   5681 {
   5682 	ssize_t ret;
   5683 	struct http2_session* h2_session = (struct http2_session*)cb_arg;
   5684 	log_assert(h2_session->c->type == comm_http);
   5685 	log_assert(h2_session->c->h2_session);
   5686 
   5687 #ifdef HAVE_SSL
   5688 	if(h2_session->c->ssl) {
   5689 		int r;
   5690 		ERR_clear_error();
   5691 		r = SSL_write(h2_session->c->ssl, buf, len);
   5692 		if(r <= 0) {
   5693 			int want = SSL_get_error(h2_session->c->ssl, r);
   5694 			if(want == SSL_ERROR_ZERO_RETURN) {
   5695 				return NGHTTP2_ERR_CALLBACK_FAILURE;
   5696 			} else if(want == SSL_ERROR_WANT_READ) {
   5697 				h2_session->c->ssl_shake_state = comm_ssl_shake_hs_read;
   5698 				comm_point_listen_for_rw(h2_session->c, 1, 0);
   5699 				return NGHTTP2_ERR_WOULDBLOCK;
   5700 			} else if(want == SSL_ERROR_WANT_WRITE) {
   5701 				return NGHTTP2_ERR_WOULDBLOCK;
   5702 			} else if(want == SSL_ERROR_SYSCALL) {
   5703 #ifdef EPIPE
   5704 				if(errno == EPIPE && verbosity < 2)
   5705 					return NGHTTP2_ERR_CALLBACK_FAILURE;
   5706 #endif
   5707 				if(errno != 0)
   5708 					log_err("SSL_write syscall: %s",
   5709 						strerror(errno));
   5710 				return NGHTTP2_ERR_CALLBACK_FAILURE;
   5711 			}
   5712 			log_crypto_err_io("could not SSL_write", want);
   5713 			return NGHTTP2_ERR_CALLBACK_FAILURE;
   5714 		}
   5715 		return r;
   5716 	}
   5717 #endif /* HAVE_SSL */
   5718 
   5719 	ret = send(h2_session->c->fd, (void*)buf, len, 0);
   5720 	if(ret == 0) {
   5721 		return NGHTTP2_ERR_CALLBACK_FAILURE;
   5722 	} else if(ret < 0) {
   5723 #ifndef USE_WINSOCK
   5724 		if(errno == EINTR || errno == EAGAIN)
   5725 			return NGHTTP2_ERR_WOULDBLOCK;
   5726 #ifdef EPIPE
   5727 		if(errno == EPIPE && verbosity < 2)
   5728 			return NGHTTP2_ERR_CALLBACK_FAILURE;
   5729 #endif
   5730 #ifdef ECONNRESET
   5731 		if(errno == ECONNRESET && verbosity < 2)
   5732 			return NGHTTP2_ERR_CALLBACK_FAILURE;
   5733 #endif
   5734 		log_err_addr("could not http2 write: %s", strerror(errno),
   5735 			&h2_session->c->repinfo.remote_addr,
   5736 			h2_session->c->repinfo.remote_addrlen);
   5737 #else /* USE_WINSOCK */
   5738 		if(WSAGetLastError() == WSAENOTCONN)
   5739 			return NGHTTP2_ERR_WOULDBLOCK;
   5740 		if(WSAGetLastError() == WSAEINPROGRESS)
   5741 			return NGHTTP2_ERR_WOULDBLOCK;
   5742 		if(WSAGetLastError() == WSAEWOULDBLOCK) {
   5743 			ub_winsock_tcp_wouldblock(h2_session->c->ev->ev,
   5744 				UB_EV_WRITE);
   5745 			return NGHTTP2_ERR_WOULDBLOCK;
   5746 		}
   5747 		if(WSAGetLastError() == WSAECONNRESET && verbosity < 2)
   5748 			return NGHTTP2_ERR_CALLBACK_FAILURE;
   5749 		log_err_addr("could not http2 write: %s",
   5750 			wsa_strerror(WSAGetLastError()),
   5751 			&h2_session->c->repinfo.remote_addr,
   5752 			h2_session->c->repinfo.remote_addrlen);
   5753 #endif
   5754 		return NGHTTP2_ERR_CALLBACK_FAILURE;
   5755 	}
   5756 	return ret;
   5757 }
   5758 #endif /* HAVE_NGHTTP2 */
   5759 
   5760 /** Handle http2 writing */
   5761 static int
   5762 comm_point_http2_handle_write(int ATTR_UNUSED(fd), struct comm_point* c)
   5763 {
   5764 #ifdef HAVE_NGHTTP2
   5765 	int ret;
   5766 	log_assert(c->h2_session);
   5767 
   5768 	ret = nghttp2_session_send(c->h2_session->session);
   5769 	if(ret) {
   5770 		verbose(VERB_QUERY, "http2: session_send failed, "
   5771 			"error: %s", nghttp2_strerror(ret));
   5772 		return 0;
   5773 	}
   5774 
   5775 	if(nghttp2_session_want_read(c->h2_session->session)) {
   5776 		c->tcp_is_reading = 1;
   5777 		comm_point_stop_listening(c);
   5778 		comm_point_start_listening(c, -1, adjusted_tcp_timeout(c));
   5779 	} else if(!nghttp2_session_want_write(c->h2_session->session))
   5780 		return 0; /* connection can be closed */
   5781 	return 1;
   5782 #else
   5783 	(void)c;
   5784 	return 0;
   5785 #endif
   5786 }
   5787 
   5788 /**
   5789  * Handle http writing callback.
   5790  * @param fd: file descriptor of socket.
   5791  * @param c: comm point to write buffer out of.
   5792  * @return: 0 on error
   5793  */
   5794 static int
   5795 comm_point_http_handle_write(int fd, struct comm_point* c)
   5796 {
   5797 	log_assert(c->type == comm_http);
   5798 	log_assert(fd != -1);
   5799 
   5800 	/* check pending connect errors, if that fails, we wait for more,
   5801 	 * or we can continue to write contents */
   5802 	if(c->tcp_check_nb_connect) {
   5803 		int r = http_check_connect(fd, c);
   5804 		if(r == 0) return 0;
   5805 		if(r == 1) return 1;
   5806 		c->tcp_check_nb_connect = 0;
   5807 	}
   5808 	/* if we are in ssl handshake, handle SSL handshake */
   5809 #ifdef HAVE_SSL
   5810 	if(c->ssl && c->ssl_shake_state != comm_ssl_shake_none) {
   5811 		if(!ssl_handshake(c))
   5812 			return 0;
   5813 		if(c->ssl_shake_state != comm_ssl_shake_none)
   5814 			return 1;
   5815 	}
   5816 #endif /* HAVE_SSL */
   5817 	if(c->tcp_is_reading)
   5818 		return 1;
   5819 
   5820 	if(c->use_h2) {
   5821 		return comm_point_http2_handle_write(fd, c);
   5822 	}
   5823 
   5824 	/* http version is <= http/1.1 */
   5825 
   5826 	if(c->http_min_version >= http_version_2) {
   5827 		/* HTTP/2 failed, not allowed to use lower version. */
   5828 		return 0;
   5829 	}
   5830 
   5831 	/* if we are writing, write more */
   5832 	if(c->ssl) {
   5833 		if(!ssl_http_write_more(c))
   5834 			return 0;
   5835 	} else {
   5836 		if(!http_write_more(fd, c))
   5837 			return 0;
   5838 	}
   5839 
   5840 	/* we write a single buffer contents, that can contain
   5841 	 * the http request, and then flip to read the results */
   5842 	/* see if write is done */
   5843 	if(sldns_buffer_remaining(c->buffer) == 0) {
   5844 		sldns_buffer_clear(c->buffer);
   5845 		if(c->tcp_do_toggle_rw)
   5846 			c->tcp_is_reading = 1;
   5847 		c->tcp_byte_count = 0;
   5848 		/* switch from listening(write) to listening(read) */
   5849 		comm_point_stop_listening(c);
   5850 		comm_point_start_listening(c, -1, -1);
   5851 	}
   5852 	return 1;
   5853 }
   5854 
   5855 void
   5856 comm_point_http_handle_callback(int fd, short event, void* arg)
   5857 {
   5858 	struct comm_point* c = (struct comm_point*)arg;
   5859 	log_assert(c->type == comm_http);
   5860 	ub_comm_base_now(c->ev->base);
   5861 
   5862 	if((event&UB_EV_TIMEOUT)) {
   5863 		verbose(VERB_QUERY, "http took too long, dropped");
   5864 		reclaim_http_handler(c);
   5865 		if(!c->tcp_do_close) {
   5866 			fptr_ok(fptr_whitelist_comm_point(c->callback));
   5867 			(void)(*c->callback)(c, c->cb_arg,
   5868 				NETEVENT_TIMEOUT, NULL);
   5869 		}
   5870 		return;
   5871 	}
   5872 	if((event&UB_EV_READ)) {
   5873 		if(!comm_point_http_handle_read(fd, c)) {
   5874 			reclaim_http_handler(c);
   5875 			if(!c->tcp_do_close) {
   5876 				fptr_ok(fptr_whitelist_comm_point(
   5877 					c->callback));
   5878 				(void)(*c->callback)(c, c->cb_arg,
   5879 					NETEVENT_CLOSED, NULL);
   5880 			}
   5881 		}
   5882 		return;
   5883 	}
   5884 	if((event&UB_EV_WRITE)) {
   5885 		if(!comm_point_http_handle_write(fd, c)) {
   5886 			reclaim_http_handler(c);
   5887 			if(!c->tcp_do_close) {
   5888 				fptr_ok(fptr_whitelist_comm_point(
   5889 					c->callback));
   5890 				(void)(*c->callback)(c, c->cb_arg,
   5891 					NETEVENT_CLOSED, NULL);
   5892 			}
   5893 		}
   5894 		return;
   5895 	}
   5896 	log_err("Ignored event %d for httphdl.", event);
   5897 }
   5898 
   5899 void comm_point_local_handle_callback(int fd, short event, void* arg)
   5900 {
   5901 	struct comm_point* c = (struct comm_point*)arg;
   5902 	log_assert(c->type == comm_local);
   5903 	ub_comm_base_now(c->ev->base);
   5904 
   5905 	if((event&UB_EV_READ)) {
   5906 		if(!comm_point_tcp_handle_read(fd, c, 1)) {
   5907 			fptr_ok(fptr_whitelist_comm_point(c->callback));
   5908 			(void)(*c->callback)(c, c->cb_arg, NETEVENT_CLOSED,
   5909 				NULL);
   5910 		}
   5911 		return;
   5912 	}
   5913 	log_err("Ignored event %d for localhdl.", event);
   5914 }
   5915 
   5916 void comm_point_raw_handle_callback(int ATTR_UNUSED(fd),
   5917 	short event, void* arg)
   5918 {
   5919 	struct comm_point* c = (struct comm_point*)arg;
   5920 	int err = NETEVENT_NOERROR;
   5921 	log_assert(c->type == comm_raw);
   5922 	ub_comm_base_now(c->ev->base);
   5923 
   5924 	if((event&UB_EV_TIMEOUT))
   5925 		err = NETEVENT_TIMEOUT;
   5926 	fptr_ok(fptr_whitelist_comm_point_raw(c->callback));
   5927 	(void)(*c->callback)(c, c->cb_arg, err, NULL);
   5928 }
   5929 
   5930 struct comm_point*
   5931 comm_point_create_udp(struct comm_base *base, int fd, sldns_buffer* buffer,
   5932 	int pp2_enabled, comm_point_callback_type* callback,
   5933 	void* callback_arg, struct unbound_socket* socket)
   5934 {
   5935 	struct comm_point* c = (struct comm_point*)calloc(1,
   5936 		sizeof(struct comm_point));
   5937 	short evbits;
   5938 	if(!c)
   5939 		return NULL;
   5940 	c->ev = (struct internal_event*)calloc(1,
   5941 		sizeof(struct internal_event));
   5942 	if(!c->ev) {
   5943 		free(c);
   5944 		return NULL;
   5945 	}
   5946 	c->ev->base = base;
   5947 	c->fd = fd;
   5948 	c->buffer = buffer;
   5949 	c->timeout = NULL;
   5950 	c->tcp_is_reading = 0;
   5951 	c->tcp_byte_count = 0;
   5952 	c->tcp_parent = NULL;
   5953 	c->max_tcp_count = 0;
   5954 	c->cur_tcp_count = 0;
   5955 	c->tcp_handlers = NULL;
   5956 	c->tcp_free = NULL;
   5957 	c->is_in_tcp_free = 0;
   5958 	c->type = comm_udp;
   5959 	c->tcp_do_close = 0;
   5960 	c->do_not_close = 0;
   5961 	c->tcp_do_toggle_rw = 0;
   5962 	c->tcp_check_nb_connect = 0;
   5963 #ifdef USE_MSG_FASTOPEN
   5964 	c->tcp_do_fastopen = 0;
   5965 #endif
   5966 #ifdef USE_DNSCRYPT
   5967 	c->dnscrypt = 0;
   5968 	c->dnscrypt_buffer = buffer;
   5969 #endif
   5970 	c->inuse = 0;
   5971 	c->callback = callback;
   5972 	c->cb_arg = callback_arg;
   5973 	c->socket = socket;
   5974 	c->pp2_enabled = pp2_enabled;
   5975 	c->pp2_header_state = pp2_header_none;
   5976 	evbits = UB_EV_READ | UB_EV_PERSIST;
   5977 	/* ub_event stuff */
   5978 	c->ev->ev = ub_event_new(base->eb->base, c->fd, evbits,
   5979 		comm_point_udp_callback, c);
   5980 	if(c->ev->ev == NULL) {
   5981 		log_err("could not baseset udp event");
   5982 		comm_point_delete(c);
   5983 		return NULL;
   5984 	}
   5985 	if(fd!=-1 && ub_event_add(c->ev->ev, c->timeout) != 0 ) {
   5986 		log_err("could not add udp event");
   5987 		comm_point_delete(c);
   5988 		return NULL;
   5989 	}
   5990 	c->event_added = 1;
   5991 	return c;
   5992 }
   5993 
   5994 #if defined(AF_INET6) && defined(IPV6_PKTINFO) && defined(HAVE_RECVMSG)
   5995 struct comm_point*
   5996 comm_point_create_udp_ancil(struct comm_base *base, int fd,
   5997 	sldns_buffer* buffer, int pp2_enabled,
   5998 	comm_point_callback_type* callback, void* callback_arg, struct unbound_socket* socket)
   5999 {
   6000 	struct comm_point* c = (struct comm_point*)calloc(1,
   6001 		sizeof(struct comm_point));
   6002 	short evbits;
   6003 	if(!c)
   6004 		return NULL;
   6005 	c->ev = (struct internal_event*)calloc(1,
   6006 		sizeof(struct internal_event));
   6007 	if(!c->ev) {
   6008 		free(c);
   6009 		return NULL;
   6010 	}
   6011 	c->ev->base = base;
   6012 	c->fd = fd;
   6013 	c->buffer = buffer;
   6014 	c->timeout = NULL;
   6015 	c->tcp_is_reading = 0;
   6016 	c->tcp_byte_count = 0;
   6017 	c->tcp_parent = NULL;
   6018 	c->max_tcp_count = 0;
   6019 	c->cur_tcp_count = 0;
   6020 	c->tcp_handlers = NULL;
   6021 	c->tcp_free = NULL;
   6022 	c->is_in_tcp_free = 0;
   6023 	c->type = comm_udp;
   6024 	c->tcp_do_close = 0;
   6025 	c->do_not_close = 0;
   6026 #ifdef USE_DNSCRYPT
   6027 	c->dnscrypt = 0;
   6028 	c->dnscrypt_buffer = buffer;
   6029 #endif
   6030 	c->inuse = 0;
   6031 	c->tcp_do_toggle_rw = 0;
   6032 	c->tcp_check_nb_connect = 0;
   6033 #ifdef USE_MSG_FASTOPEN
   6034 	c->tcp_do_fastopen = 0;
   6035 #endif
   6036 	c->callback = callback;
   6037 	c->cb_arg = callback_arg;
   6038 	c->socket = socket;
   6039 	c->pp2_enabled = pp2_enabled;
   6040 	c->pp2_header_state = pp2_header_none;
   6041 	evbits = UB_EV_READ | UB_EV_PERSIST;
   6042 	/* ub_event stuff */
   6043 	c->ev->ev = ub_event_new(base->eb->base, c->fd, evbits,
   6044 		comm_point_udp_ancil_callback, c);
   6045 	if(c->ev->ev == NULL) {
   6046 		log_err("could not baseset udp event");
   6047 		comm_point_delete(c);
   6048 		return NULL;
   6049 	}
   6050 	if(fd!=-1 && ub_event_add(c->ev->ev, c->timeout) != 0 ) {
   6051 		log_err("could not add udp event");
   6052 		comm_point_delete(c);
   6053 		return NULL;
   6054 	}
   6055 	c->event_added = 1;
   6056 	return c;
   6057 }
   6058 #endif
   6059 
   6060 struct comm_point*
   6061 comm_point_create_doq(struct comm_base *base, int fd, sldns_buffer* buffer,
   6062 	comm_point_callback_type* callback, void* callback_arg,
   6063 	struct unbound_socket* socket, struct doq_table* table,
   6064 	struct ub_randstate* rnd, const void* quic_sslctx,
   6065 	struct config_file* cfg)
   6066 {
   6067 #ifdef HAVE_NGTCP2
   6068 	struct comm_point* c = (struct comm_point*)calloc(1,
   6069 		sizeof(struct comm_point));
   6070 	short evbits;
   6071 	log_assert(table != NULL);
   6072 	if(!c)
   6073 		return NULL;
   6074 	c->ev = (struct internal_event*)calloc(1,
   6075 		sizeof(struct internal_event));
   6076 	if(!c->ev) {
   6077 		free(c);
   6078 		return NULL;
   6079 	}
   6080 	c->ev->base = base;
   6081 	c->fd = fd;
   6082 	c->buffer = buffer;
   6083 	c->timeout = NULL;
   6084 	c->tcp_is_reading = 0;
   6085 	c->tcp_byte_count = 0;
   6086 	c->tcp_parent = NULL;
   6087 	c->max_tcp_count = 0;
   6088 	c->cur_tcp_count = 0;
   6089 	c->tcp_handlers = NULL;
   6090 	c->tcp_free = NULL;
   6091 	c->is_in_tcp_free = 0;
   6092 	c->type = comm_doq;
   6093 	c->tcp_do_close = 0;
   6094 	c->do_not_close = 0;
   6095 	c->tcp_do_toggle_rw = 0;
   6096 	c->tcp_check_nb_connect = 0;
   6097 #ifdef USE_MSG_FASTOPEN
   6098 	c->tcp_do_fastopen = 0;
   6099 #endif
   6100 #ifdef USE_DNSCRYPT
   6101 	c->dnscrypt = 0;
   6102 	c->dnscrypt_buffer = NULL;
   6103 #endif
   6104 	c->doq_socket = doq_server_socket_create(table, rnd, quic_sslctx, c,
   6105 		base, cfg);
   6106 	if(!c->doq_socket) {
   6107 		log_err("could not create doq comm_point");
   6108 		comm_point_delete(c);
   6109 		return NULL;
   6110 	}
   6111 	c->inuse = 0;
   6112 	c->callback = callback;
   6113 	c->cb_arg = callback_arg;
   6114 	c->socket = socket;
   6115 	c->pp2_enabled = 0;
   6116 	c->pp2_header_state = pp2_header_none;
   6117 	evbits = UB_EV_READ | UB_EV_PERSIST;
   6118 	/* ub_event stuff */
   6119 	c->ev->ev = ub_event_new(base->eb->base, c->fd, evbits,
   6120 		comm_point_doq_callback, c);
   6121 	if(c->ev->ev == NULL) {
   6122 		log_err("could not baseset udp event");
   6123 		comm_point_delete(c);
   6124 		return NULL;
   6125 	}
   6126 	if(fd!=-1 && ub_event_add(c->ev->ev, c->timeout) != 0 ) {
   6127 		log_err("could not add udp event");
   6128 		comm_point_delete(c);
   6129 		return NULL;
   6130 	}
   6131 	c->event_added = 1;
   6132 	return c;
   6133 #else
   6134 	/* no libngtcp2, so no QUIC support */
   6135 	(void)base;
   6136 	(void)buffer;
   6137 	(void)callback;
   6138 	(void)callback_arg;
   6139 	(void)socket;
   6140 	(void)rnd;
   6141 	(void)table;
   6142 	(void)quic_sslctx;
   6143 	(void)cfg;
   6144 	sock_close(fd);
   6145 	return NULL;
   6146 #endif /* HAVE_NGTCP2 */
   6147 }
   6148 
   6149 static struct comm_point*
   6150 comm_point_create_tcp_handler(struct comm_base *base,
   6151 	struct comm_point* parent, size_t bufsize,
   6152 	struct sldns_buffer* spoolbuf, comm_point_callback_type* callback,
   6153 	void* callback_arg, struct unbound_socket* socket)
   6154 {
   6155 	struct comm_point* c = (struct comm_point*)calloc(1,
   6156 		sizeof(struct comm_point));
   6157 	short evbits;
   6158 	if(!c)
   6159 		return NULL;
   6160 	c->ev = (struct internal_event*)calloc(1,
   6161 		sizeof(struct internal_event));
   6162 	if(!c->ev) {
   6163 		free(c);
   6164 		return NULL;
   6165 	}
   6166 	c->ev->base = base;
   6167 	c->fd = -1;
   6168 	c->buffer = sldns_buffer_new(bufsize);
   6169 	if(!c->buffer) {
   6170 		free(c->ev);
   6171 		free(c);
   6172 		return NULL;
   6173 	}
   6174 	c->timeout = (struct timeval*)malloc(sizeof(struct timeval));
   6175 	if(!c->timeout) {
   6176 		sldns_buffer_free(c->buffer);
   6177 		free(c->ev);
   6178 		free(c);
   6179 		return NULL;
   6180 	}
   6181 	c->tcp_is_reading = 0;
   6182 	c->tcp_byte_count = 0;
   6183 	c->tcp_parent = parent;
   6184 	c->tcp_timeout_msec = parent->tcp_timeout_msec;
   6185 	c->tcp_conn_limit = parent->tcp_conn_limit;
   6186 	c->tcl_addr = NULL;
   6187 	c->tcp_keepalive = 0;
   6188 	c->max_tcp_count = 0;
   6189 	c->cur_tcp_count = 0;
   6190 	c->tcp_handlers = NULL;
   6191 	c->tcp_free = NULL;
   6192 	c->is_in_tcp_free = 0;
   6193 	c->type = comm_tcp;
   6194 	c->tcp_do_close = 0;
   6195 	c->do_not_close = 0;
   6196 	c->tcp_do_toggle_rw = 1;
   6197 	c->tcp_check_nb_connect = 0;
   6198 #ifdef USE_MSG_FASTOPEN
   6199 	c->tcp_do_fastopen = 0;
   6200 #endif
   6201 #ifdef USE_DNSCRYPT
   6202 	c->dnscrypt = 0;
   6203 	/* We don't know just yet if this is a dnscrypt channel. Allocation
   6204 	 * will be done when handling the callback. */
   6205 	c->dnscrypt_buffer = c->buffer;
   6206 #endif
   6207 	c->repinfo.c = c;
   6208 	c->callback = callback;
   6209 	c->cb_arg = callback_arg;
   6210 	c->socket = socket;
   6211 	c->pp2_enabled = parent->pp2_enabled;
   6212 	c->pp2_header_state = pp2_header_none;
   6213 	if(spoolbuf) {
   6214 		c->tcp_req_info = tcp_req_info_create(base, spoolbuf);
   6215 		if(!c->tcp_req_info) {
   6216 			log_err("could not create tcp commpoint");
   6217 			sldns_buffer_free(c->buffer);
   6218 			free(c->timeout);
   6219 			free(c->ev);
   6220 			free(c);
   6221 			return NULL;
   6222 		}
   6223 		c->tcp_req_info->cp = c;
   6224 		c->tcp_do_close = 1;
   6225 		c->tcp_do_toggle_rw = 0;
   6226 	}
   6227 	/* add to parent free list */
   6228 	c->tcp_free = parent->tcp_free;
   6229 	parent->tcp_free = c;
   6230 	c->is_in_tcp_free = 1;
   6231 	/* ub_event stuff */
   6232 	evbits = UB_EV_PERSIST | UB_EV_READ | UB_EV_TIMEOUT;
   6233 	c->ev->ev = ub_event_new(base->eb->base, c->fd, evbits,
   6234 		comm_point_tcp_handle_callback, c);
   6235 	if(c->ev->ev == NULL)
   6236 	{
   6237 		log_err("could not basetset tcphdl event");
   6238 		parent->tcp_free = c->tcp_free;
   6239 		tcp_req_info_delete(c->tcp_req_info);
   6240 		sldns_buffer_free(c->buffer);
   6241 		free(c->timeout);
   6242 		free(c->ev);
   6243 		free(c);
   6244 		return NULL;
   6245 	}
   6246 	return c;
   6247 }
   6248 
   6249 static struct comm_point*
   6250 comm_point_create_http_handler(struct comm_base *base,
   6251 	struct comm_point* parent, size_t bufsize, int harden_large_queries,
   6252 	uint32_t http_max_streams, char* http_endpoint,
   6253 	comm_point_callback_type* callback, void* callback_arg,
   6254 	struct unbound_socket* socket)
   6255 {
   6256 	struct comm_point* c = (struct comm_point*)calloc(1,
   6257 		sizeof(struct comm_point));
   6258 	short evbits;
   6259 	if(!c)
   6260 		return NULL;
   6261 	c->ev = (struct internal_event*)calloc(1,
   6262 		sizeof(struct internal_event));
   6263 	if(!c->ev) {
   6264 		free(c);
   6265 		return NULL;
   6266 	}
   6267 	c->ev->base = base;
   6268 	c->fd = -1;
   6269 	c->buffer = sldns_buffer_new(bufsize);
   6270 	if(!c->buffer) {
   6271 		free(c->ev);
   6272 		free(c);
   6273 		return NULL;
   6274 	}
   6275 	c->timeout = (struct timeval*)malloc(sizeof(struct timeval));
   6276 	if(!c->timeout) {
   6277 		sldns_buffer_free(c->buffer);
   6278 		free(c->ev);
   6279 		free(c);
   6280 		return NULL;
   6281 	}
   6282 	c->tcp_is_reading = 0;
   6283 	c->tcp_byte_count = 0;
   6284 	c->tcp_parent = parent;
   6285 	c->tcp_timeout_msec = parent->tcp_timeout_msec;
   6286 	c->tcp_conn_limit = parent->tcp_conn_limit;
   6287 	c->tcl_addr = NULL;
   6288 	c->tcp_keepalive = 0;
   6289 	c->max_tcp_count = 0;
   6290 	c->cur_tcp_count = 0;
   6291 	c->tcp_handlers = NULL;
   6292 	c->tcp_free = NULL;
   6293 	c->is_in_tcp_free = 0;
   6294 	c->type = comm_http;
   6295 	c->tcp_do_close = 1;
   6296 	c->do_not_close = 0;
   6297 	c->tcp_do_toggle_rw = 1; /* will be set to 0 after http2 upgrade */
   6298 	c->tcp_check_nb_connect = 0;
   6299 #ifdef USE_MSG_FASTOPEN
   6300 	c->tcp_do_fastopen = 0;
   6301 #endif
   6302 #ifdef USE_DNSCRYPT
   6303 	c->dnscrypt = 0;
   6304 	c->dnscrypt_buffer = NULL;
   6305 #endif
   6306 	c->repinfo.c = c;
   6307 	c->callback = callback;
   6308 	c->cb_arg = callback_arg;
   6309 	c->socket = socket;
   6310 	c->pp2_enabled = 0;
   6311 	c->pp2_header_state = pp2_header_none;
   6312 
   6313 	c->http_min_version = http_version_2;
   6314 	c->http2_stream_max_qbuffer_size = bufsize;
   6315 	if(harden_large_queries && bufsize > 512)
   6316 		c->http2_stream_max_qbuffer_size = 512;
   6317 	c->http2_max_streams = http_max_streams;
   6318 	if(!(c->http_endpoint = strdup(http_endpoint))) {
   6319 		log_err("could not strdup http_endpoint");
   6320 		sldns_buffer_free(c->buffer);
   6321 		free(c->timeout);
   6322 		free(c->ev);
   6323 		free(c);
   6324 		return NULL;
   6325 	}
   6326 	c->use_h2 = 0;
   6327 #ifdef HAVE_NGHTTP2
   6328 	if(!(c->h2_session = http2_session_create(c))) {
   6329 		log_err("could not create http2 session");
   6330 		free(c->http_endpoint);
   6331 		sldns_buffer_free(c->buffer);
   6332 		free(c->timeout);
   6333 		free(c->ev);
   6334 		free(c);
   6335 		return NULL;
   6336 	}
   6337 	if(!(c->h2_session->callbacks = http2_req_callbacks_create())) {
   6338 		log_err("could not create http2 callbacks");
   6339 		http2_session_delete(c->h2_session);
   6340 		free(c->http_endpoint);
   6341 		sldns_buffer_free(c->buffer);
   6342 		free(c->timeout);
   6343 		free(c->ev);
   6344 		free(c);
   6345 		return NULL;
   6346 	}
   6347 #endif
   6348 
   6349 	/* add to parent free list */
   6350 	c->tcp_free = parent->tcp_free;
   6351 	parent->tcp_free = c;
   6352 	c->is_in_tcp_free = 1;
   6353 	/* ub_event stuff */
   6354 	evbits = UB_EV_PERSIST | UB_EV_READ | UB_EV_TIMEOUT;
   6355 	c->ev->ev = ub_event_new(base->eb->base, c->fd, evbits,
   6356 		comm_point_http_handle_callback, c);
   6357 	if(c->ev->ev == NULL)
   6358 	{
   6359 		log_err("could not set http handler event");
   6360 		parent->tcp_free = c->tcp_free;
   6361 		http2_session_delete(c->h2_session);
   6362 		sldns_buffer_free(c->buffer);
   6363 		free(c->timeout);
   6364 		free(c->ev);
   6365 		free(c);
   6366 		return NULL;
   6367 	}
   6368 	return c;
   6369 }
   6370 
   6371 struct comm_point*
   6372 comm_point_create_tcp(struct comm_base *base, int fd, int num,
   6373 	int idle_timeout, int harden_large_queries,
   6374 	uint32_t http_max_streams, char* http_endpoint,
   6375 	struct tcl_list* tcp_conn_limit, size_t bufsize,
   6376 	struct sldns_buffer* spoolbuf, enum listen_type port_type,
   6377 	int pp2_enabled, comm_point_callback_type* callback,
   6378 	void* callback_arg, struct unbound_socket* socket)
   6379 {
   6380 	struct comm_point* c = (struct comm_point*)calloc(1,
   6381 		sizeof(struct comm_point));
   6382 	short evbits;
   6383 	int i;
   6384 	/* first allocate the TCP accept listener */
   6385 	if(!c)
   6386 		return NULL;
   6387 	c->ev = (struct internal_event*)calloc(1,
   6388 		sizeof(struct internal_event));
   6389 	if(!c->ev) {
   6390 		free(c);
   6391 		return NULL;
   6392 	}
   6393 	c->ev->base = base;
   6394 	c->fd = fd;
   6395 	c->buffer = NULL;
   6396 	c->timeout = NULL;
   6397 	c->tcp_is_reading = 0;
   6398 	c->tcp_byte_count = 0;
   6399 	c->tcp_timeout_msec = idle_timeout;
   6400 	c->tcp_conn_limit = tcp_conn_limit;
   6401 	c->tcl_addr = NULL;
   6402 	c->tcp_keepalive = 0;
   6403 	c->tcp_parent = NULL;
   6404 	c->max_tcp_count = num;
   6405 	c->cur_tcp_count = 0;
   6406 	c->tcp_handlers = (struct comm_point**)calloc((size_t)num,
   6407 		sizeof(struct comm_point*));
   6408 	if(!c->tcp_handlers) {
   6409 		free(c->ev);
   6410 		free(c);
   6411 		return NULL;
   6412 	}
   6413 	c->tcp_free = NULL;
   6414 	c->is_in_tcp_free = 0;
   6415 	c->type = comm_tcp_accept;
   6416 	c->tcp_do_close = 0;
   6417 	c->do_not_close = 0;
   6418 	c->tcp_do_toggle_rw = 0;
   6419 	c->tcp_check_nb_connect = 0;
   6420 #ifdef USE_MSG_FASTOPEN
   6421 	c->tcp_do_fastopen = 0;
   6422 #endif
   6423 #ifdef USE_DNSCRYPT
   6424 	c->dnscrypt = 0;
   6425 	c->dnscrypt_buffer = NULL;
   6426 #endif
   6427 	c->callback = NULL;
   6428 	c->cb_arg = NULL;
   6429 	c->socket = socket;
   6430 	c->pp2_enabled = (port_type==listen_type_http?0:pp2_enabled);
   6431 	c->pp2_header_state = pp2_header_none;
   6432 	evbits = UB_EV_READ | UB_EV_PERSIST;
   6433 	/* ub_event stuff */
   6434 	c->ev->ev = ub_event_new(base->eb->base, c->fd, evbits,
   6435 		comm_point_tcp_accept_callback, c);
   6436 	if(c->ev->ev == NULL) {
   6437 		log_err("could not baseset tcpacc event");
   6438 		comm_point_delete(c);
   6439 		return NULL;
   6440 	}
   6441 	if (ub_event_add(c->ev->ev, c->timeout) != 0) {
   6442 		log_err("could not add tcpacc event");
   6443 		comm_point_delete(c);
   6444 		return NULL;
   6445 	}
   6446 	c->event_added = 1;
   6447 	/* now prealloc the handlers */
   6448 	for(i=0; i<num; i++) {
   6449 		if(port_type == listen_type_tcp ||
   6450 			port_type == listen_type_ssl ||
   6451 			port_type == listen_type_tcp_dnscrypt) {
   6452 			c->tcp_handlers[i] = comm_point_create_tcp_handler(base,
   6453 				c, bufsize, spoolbuf, callback, callback_arg, socket);
   6454 		} else if(port_type == listen_type_http) {
   6455 			c->tcp_handlers[i] = comm_point_create_http_handler(
   6456 				base, c, bufsize, harden_large_queries,
   6457 				http_max_streams, http_endpoint,
   6458 				callback, callback_arg, socket);
   6459 		}
   6460 		else {
   6461 			log_err("could not create tcp handler, unknown listen "
   6462 				"type");
   6463 			return NULL;
   6464 		}
   6465 		if(!c->tcp_handlers[i]) {
   6466 			comm_point_delete(c);
   6467 			return NULL;
   6468 		}
   6469 	}
   6470 
   6471 	return c;
   6472 }
   6473 
   6474 struct comm_point*
   6475 comm_point_create_tcp_out(struct comm_base *base, size_t bufsize,
   6476         comm_point_callback_type* callback, void* callback_arg)
   6477 {
   6478 	struct comm_point* c = (struct comm_point*)calloc(1,
   6479 		sizeof(struct comm_point));
   6480 	short evbits;
   6481 	if(!c)
   6482 		return NULL;
   6483 	c->ev = (struct internal_event*)calloc(1,
   6484 		sizeof(struct internal_event));
   6485 	if(!c->ev) {
   6486 		free(c);
   6487 		return NULL;
   6488 	}
   6489 	c->ev->base = base;
   6490 	c->fd = -1;
   6491 	c->buffer = sldns_buffer_new(bufsize);
   6492 	if(!c->buffer) {
   6493 		free(c->ev);
   6494 		free(c);
   6495 		return NULL;
   6496 	}
   6497 	c->timeout = NULL;
   6498 	c->tcp_is_reading = 0;
   6499 	c->tcp_byte_count = 0;
   6500 	c->tcp_timeout_msec = TCP_QUERY_TIMEOUT;
   6501 	c->tcp_conn_limit = NULL;
   6502 	c->tcl_addr = NULL;
   6503 	c->tcp_keepalive = 0;
   6504 	c->tcp_parent = NULL;
   6505 	c->max_tcp_count = 0;
   6506 	c->cur_tcp_count = 0;
   6507 	c->tcp_handlers = NULL;
   6508 	c->tcp_free = NULL;
   6509 	c->is_in_tcp_free = 0;
   6510 	c->type = comm_tcp;
   6511 	c->tcp_do_close = 0;
   6512 	c->do_not_close = 0;
   6513 	c->tcp_do_toggle_rw = 1;
   6514 	c->tcp_check_nb_connect = 1;
   6515 #ifdef USE_MSG_FASTOPEN
   6516 	c->tcp_do_fastopen = 1;
   6517 #endif
   6518 #ifdef USE_DNSCRYPT
   6519 	c->dnscrypt = 0;
   6520 	c->dnscrypt_buffer = c->buffer;
   6521 #endif
   6522 	c->repinfo.c = c;
   6523 	c->callback = callback;
   6524 	c->cb_arg = callback_arg;
   6525 	c->pp2_enabled = 0;
   6526 	c->pp2_header_state = pp2_header_none;
   6527 	evbits = UB_EV_PERSIST | UB_EV_WRITE;
   6528 	c->ev->ev = ub_event_new(base->eb->base, c->fd, evbits,
   6529 		comm_point_tcp_handle_callback, c);
   6530 	if(c->ev->ev == NULL)
   6531 	{
   6532 		log_err("could not baseset tcpout event");
   6533 		sldns_buffer_free(c->buffer);
   6534 		free(c->ev);
   6535 		free(c);
   6536 		return NULL;
   6537 	}
   6538 
   6539 	return c;
   6540 }
   6541 
   6542 struct comm_point*
   6543 comm_point_create_http_out(struct comm_base *base, size_t bufsize,
   6544         comm_point_callback_type* callback, void* callback_arg,
   6545 	sldns_buffer* temp)
   6546 {
   6547 	struct comm_point* c = (struct comm_point*)calloc(1,
   6548 		sizeof(struct comm_point));
   6549 	short evbits;
   6550 	if(!c)
   6551 		return NULL;
   6552 	c->ev = (struct internal_event*)calloc(1,
   6553 		sizeof(struct internal_event));
   6554 	if(!c->ev) {
   6555 		free(c);
   6556 		return NULL;
   6557 	}
   6558 	c->ev->base = base;
   6559 	c->fd = -1;
   6560 	c->buffer = sldns_buffer_new(bufsize);
   6561 	if(!c->buffer) {
   6562 		free(c->ev);
   6563 		free(c);
   6564 		return NULL;
   6565 	}
   6566 	c->timeout = NULL;
   6567 	c->tcp_is_reading = 0;
   6568 	c->tcp_byte_count = 0;
   6569 	c->tcp_parent = NULL;
   6570 	c->max_tcp_count = 0;
   6571 	c->cur_tcp_count = 0;
   6572 	c->tcp_handlers = NULL;
   6573 	c->tcp_free = NULL;
   6574 	c->is_in_tcp_free = 0;
   6575 	c->type = comm_http;
   6576 	c->tcp_do_close = 0;
   6577 	c->do_not_close = 0;
   6578 	c->tcp_do_toggle_rw = 1;
   6579 	c->tcp_check_nb_connect = 1;
   6580 	c->http_in_headers = 1;
   6581 	c->http_in_chunk_headers = 0;
   6582 	c->http_is_chunked = 0;
   6583 	c->http_temp = temp;
   6584 #ifdef USE_MSG_FASTOPEN
   6585 	c->tcp_do_fastopen = 1;
   6586 #endif
   6587 #ifdef USE_DNSCRYPT
   6588 	c->dnscrypt = 0;
   6589 	c->dnscrypt_buffer = c->buffer;
   6590 #endif
   6591 	c->repinfo.c = c;
   6592 	c->callback = callback;
   6593 	c->cb_arg = callback_arg;
   6594 	c->pp2_enabled = 0;
   6595 	c->pp2_header_state = pp2_header_none;
   6596 	evbits = UB_EV_PERSIST | UB_EV_WRITE;
   6597 	c->ev->ev = ub_event_new(base->eb->base, c->fd, evbits,
   6598 		comm_point_http_handle_callback, c);
   6599 	if(c->ev->ev == NULL)
   6600 	{
   6601 		log_err("could not baseset tcpout event");
   6602 #ifdef HAVE_SSL
   6603 		SSL_free(c->ssl);
   6604 #endif
   6605 		sldns_buffer_free(c->buffer);
   6606 		free(c->ev);
   6607 		free(c);
   6608 		return NULL;
   6609 	}
   6610 
   6611 	return c;
   6612 }
   6613 
   6614 struct comm_point*
   6615 comm_point_create_local(struct comm_base *base, int fd, size_t bufsize,
   6616         comm_point_callback_type* callback, void* callback_arg)
   6617 {
   6618 	struct comm_point* c = (struct comm_point*)calloc(1,
   6619 		sizeof(struct comm_point));
   6620 	short evbits;
   6621 	if(!c)
   6622 		return NULL;
   6623 	c->ev = (struct internal_event*)calloc(1,
   6624 		sizeof(struct internal_event));
   6625 	if(!c->ev) {
   6626 		free(c);
   6627 		return NULL;
   6628 	}
   6629 	c->ev->base = base;
   6630 	c->fd = fd;
   6631 	c->buffer = sldns_buffer_new(bufsize);
   6632 	if(!c->buffer) {
   6633 		free(c->ev);
   6634 		free(c);
   6635 		return NULL;
   6636 	}
   6637 	c->timeout = NULL;
   6638 	c->tcp_is_reading = 1;
   6639 	c->tcp_byte_count = 0;
   6640 	c->tcp_parent = NULL;
   6641 	c->max_tcp_count = 0;
   6642 	c->cur_tcp_count = 0;
   6643 	c->tcp_handlers = NULL;
   6644 	c->tcp_free = NULL;
   6645 	c->is_in_tcp_free = 0;
   6646 	c->type = comm_local;
   6647 	c->tcp_do_close = 0;
   6648 	c->do_not_close = 1;
   6649 	c->tcp_do_toggle_rw = 0;
   6650 	c->tcp_check_nb_connect = 0;
   6651 #ifdef USE_MSG_FASTOPEN
   6652 	c->tcp_do_fastopen = 0;
   6653 #endif
   6654 #ifdef USE_DNSCRYPT
   6655 	c->dnscrypt = 0;
   6656 	c->dnscrypt_buffer = c->buffer;
   6657 #endif
   6658 	c->callback = callback;
   6659 	c->cb_arg = callback_arg;
   6660 	c->pp2_enabled = 0;
   6661 	c->pp2_header_state = pp2_header_none;
   6662 	/* ub_event stuff */
   6663 	evbits = UB_EV_PERSIST | UB_EV_READ;
   6664 	c->ev->ev = ub_event_new(base->eb->base, c->fd, evbits,
   6665 		comm_point_local_handle_callback, c);
   6666 	if(c->ev->ev == NULL) {
   6667 		log_err("could not baseset localhdl event");
   6668 		free(c->ev);
   6669 		free(c);
   6670 		return NULL;
   6671 	}
   6672 	if (ub_event_add(c->ev->ev, c->timeout) != 0) {
   6673 		log_err("could not add localhdl event");
   6674 		ub_event_free(c->ev->ev);
   6675 		free(c->ev);
   6676 		free(c);
   6677 		return NULL;
   6678 	}
   6679 	c->event_added = 1;
   6680 	return c;
   6681 }
   6682 
   6683 struct comm_point*
   6684 comm_point_create_raw(struct comm_base* base, int fd, int writing,
   6685 	comm_point_callback_type* callback, void* callback_arg)
   6686 {
   6687 	struct comm_point* c = (struct comm_point*)calloc(1,
   6688 		sizeof(struct comm_point));
   6689 	short evbits;
   6690 	if(!c)
   6691 		return NULL;
   6692 	c->ev = (struct internal_event*)calloc(1,
   6693 		sizeof(struct internal_event));
   6694 	if(!c->ev) {
   6695 		free(c);
   6696 		return NULL;
   6697 	}
   6698 	c->ev->base = base;
   6699 	c->fd = fd;
   6700 	c->buffer = NULL;
   6701 	c->timeout = NULL;
   6702 	c->tcp_is_reading = 0;
   6703 	c->tcp_byte_count = 0;
   6704 	c->tcp_parent = NULL;
   6705 	c->max_tcp_count = 0;
   6706 	c->cur_tcp_count = 0;
   6707 	c->tcp_handlers = NULL;
   6708 	c->tcp_free = NULL;
   6709 	c->is_in_tcp_free = 0;
   6710 	c->type = comm_raw;
   6711 	c->tcp_do_close = 0;
   6712 	c->do_not_close = 1;
   6713 	c->tcp_do_toggle_rw = 0;
   6714 	c->tcp_check_nb_connect = 0;
   6715 #ifdef USE_MSG_FASTOPEN
   6716 	c->tcp_do_fastopen = 0;
   6717 #endif
   6718 #ifdef USE_DNSCRYPT
   6719 	c->dnscrypt = 0;
   6720 	c->dnscrypt_buffer = c->buffer;
   6721 #endif
   6722 	c->callback = callback;
   6723 	c->cb_arg = callback_arg;
   6724 	c->pp2_enabled = 0;
   6725 	c->pp2_header_state = pp2_header_none;
   6726 	/* ub_event stuff */
   6727 	if(writing)
   6728 		evbits = UB_EV_PERSIST | UB_EV_WRITE;
   6729 	else 	evbits = UB_EV_PERSIST | UB_EV_READ;
   6730 	c->ev->ev = ub_event_new(base->eb->base, c->fd, evbits,
   6731 		comm_point_raw_handle_callback, c);
   6732 	if(c->ev->ev == NULL) {
   6733 		log_err("could not baseset rawhdl event");
   6734 		free(c->ev);
   6735 		free(c);
   6736 		return NULL;
   6737 	}
   6738 	if (ub_event_add(c->ev->ev, c->timeout) != 0) {
   6739 		log_err("could not add rawhdl event");
   6740 		ub_event_free(c->ev->ev);
   6741 		free(c->ev);
   6742 		free(c);
   6743 		return NULL;
   6744 	}
   6745 	c->event_added = 1;
   6746 	return c;
   6747 }
   6748 
   6749 void
   6750 comm_point_close(struct comm_point* c)
   6751 {
   6752 	if(!c)
   6753 		return;
   6754 	if(c->fd != -1) {
   6755 		verbose(5, "comm_point_close of %d: event_del", c->fd);
   6756 		if(c->event_added) {
   6757 			if(ub_event_del(c->ev->ev) != 0) {
   6758 				log_err("could not event_del on close");
   6759 			}
   6760 			c->event_added = 0;
   6761 		}
   6762 	}
   6763 	if(c->tcl_addr) {
   6764 		tcl_close_connection(c->tcl_addr);
   6765 		c->tcl_addr = NULL;
   6766 	}
   6767 	if(c->tcp_req_info)
   6768 		tcp_req_info_clear(c->tcp_req_info);
   6769 	if(c->h2_session)
   6770 		http2_session_server_delete(c->h2_session);
   6771 	/* stop the comm point from reading or writing after it is closed. */
   6772 	if(c->tcp_more_read_again && *c->tcp_more_read_again)
   6773 		*c->tcp_more_read_again = 0;
   6774 	if(c->tcp_more_write_again && *c->tcp_more_write_again)
   6775 		*c->tcp_more_write_again = 0;
   6776 	if(c->tcp_more_read_again_timer &&
   6777 		comm_timer_is_set(c->tcp_more_read_again_timer))
   6778 		comm_timer_disable(c->tcp_more_read_again_timer);
   6779 
   6780 	/* close fd after removing from event lists, or epoll.. is messed up */
   6781 	if(c->fd != -1 && !c->do_not_close) {
   6782 #ifdef USE_WINSOCK
   6783 		if(c->type == comm_tcp || c->type == comm_http) {
   6784 			/* delete sticky events for the fd, it gets closed */
   6785 			ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_READ);
   6786 			ub_winsock_tcp_wouldblock(c->ev->ev, UB_EV_WRITE);
   6787 		}
   6788 #endif
   6789 		verbose(VERB_ALGO, "close fd %d", c->fd);
   6790 		sock_close(c->fd);
   6791 	}
   6792 	c->fd = -1;
   6793 }
   6794 
   6795 void
   6796 comm_point_delete(struct comm_point* c)
   6797 {
   6798 	if(!c)
   6799 		return;
   6800 	if((c->type == comm_tcp || c->type == comm_http) && c->ssl) {
   6801 #ifdef HAVE_SSL
   6802 		SSL_shutdown(c->ssl);
   6803 		SSL_free(c->ssl);
   6804 #endif
   6805 	}
   6806 	if(c->type == comm_http && c->http_endpoint) {
   6807 		free(c->http_endpoint);
   6808 		c->http_endpoint = NULL;
   6809 	}
   6810 	comm_point_close(c);
   6811 	if(c->tcp_handlers) {
   6812 		int i;
   6813 		for(i=0; i<c->max_tcp_count; i++)
   6814 			comm_point_delete(c->tcp_handlers[i]);
   6815 		free(c->tcp_handlers);
   6816 	}
   6817 	free(c->timeout);
   6818 	comm_timer_delete(c->tcp_more_read_again_timer);
   6819 	if(c->type == comm_tcp || c->type == comm_local || c->type == comm_http) {
   6820 		sldns_buffer_free(c->buffer);
   6821 #ifdef USE_DNSCRYPT
   6822 		if(c->dnscrypt && c->dnscrypt_buffer != c->buffer) {
   6823 			sldns_buffer_free(c->dnscrypt_buffer);
   6824 		}
   6825 #endif
   6826 		if(c->tcp_req_info) {
   6827 			tcp_req_info_delete(c->tcp_req_info);
   6828 		}
   6829 		if(c->h2_session) {
   6830 			http2_session_delete(c->h2_session);
   6831 		}
   6832 	}
   6833 #ifdef HAVE_NGTCP2
   6834 	if(c->doq_socket)
   6835 		doq_server_socket_delete(c->doq_socket);
   6836 #endif
   6837 	ub_event_free(c->ev->ev);
   6838 	free(c->ev);
   6839 	free(c);
   6840 }
   6841 
   6842 #ifdef USE_DNSTAP
   6843 static void
   6844 send_reply_dnstap(struct dt_env* dtenv,
   6845 	struct sockaddr* addr, socklen_t addrlen,
   6846 	struct sockaddr_storage* client_addr, socklen_t client_addrlen,
   6847 	enum comm_point_type type, void* ssl, sldns_buffer* buffer)
   6848 {
   6849 	log_addr(VERB_ALGO, "from local addr", (void*)addr, addrlen);
   6850 	log_addr(VERB_ALGO, "response to client", client_addr, client_addrlen);
   6851 	dt_msg_send_client_response(dtenv, client_addr,
   6852 		(struct sockaddr_storage*)addr, type, ssl, buffer);
   6853 }
   6854 #endif
   6855 
   6856 void
   6857 comm_point_send_reply(struct comm_reply *repinfo)
   6858 {
   6859 	struct sldns_buffer* buffer;
   6860 	log_assert(repinfo && repinfo->c);
   6861 #ifdef USE_DNSCRYPT
   6862 	buffer = repinfo->c->dnscrypt_buffer;
   6863 	if(!dnsc_handle_uncurved_request(repinfo,
   6864 		repinfo->c->tcp_req_info?
   6865 		repinfo->c->tcp_req_info->spool_buffer:repinfo->c->buffer)) {
   6866 		return;
   6867 	}
   6868 #else
   6869 	buffer = repinfo->c->buffer;
   6870 #endif
   6871 	if(repinfo->c->type == comm_udp) {
   6872 		if(repinfo->srctype)
   6873 			comm_point_send_udp_msg_if(repinfo->c, buffer,
   6874 				(struct sockaddr*)&repinfo->remote_addr,
   6875 				repinfo->remote_addrlen, repinfo);
   6876 		else
   6877 			comm_point_send_udp_msg(repinfo->c, buffer,
   6878 				(struct sockaddr*)&repinfo->remote_addr,
   6879 				repinfo->remote_addrlen, 0);
   6880 #ifdef USE_DNSTAP
   6881 		/*
   6882 		 * sending src (client)/dst (local service) addresses over
   6883 		 * DNSTAP from udp callback
   6884 		 */
   6885 		if(repinfo->c->dtenv != NULL && repinfo->c->dtenv->log_client_response_messages) {
   6886 			send_reply_dnstap(repinfo->c->dtenv,
   6887 				repinfo->c->socket->addr,
   6888 				repinfo->c->socket->addrlen,
   6889 				&repinfo->client_addr, repinfo->client_addrlen,
   6890 				repinfo->c->type, repinfo->c->ssl,
   6891 				repinfo->c->buffer);
   6892 		}
   6893 #endif
   6894 	} else {
   6895 #ifdef USE_DNSTAP
   6896 		struct dt_env* dtenv =
   6897 #ifdef HAVE_NGTCP2
   6898 			repinfo->c->doq_socket
   6899 			?repinfo->c->dtenv:
   6900 #endif
   6901 			repinfo->c->tcp_parent->dtenv;
   6902 		struct sldns_buffer* dtbuffer = repinfo->c->tcp_req_info
   6903 			?repinfo->c->tcp_req_info->spool_buffer
   6904 			:repinfo->c->buffer;
   6905 #ifdef USE_DNSCRYPT
   6906 		if(repinfo->c->dnscrypt && repinfo->is_dnscrypted)
   6907 			dtbuffer = repinfo->c->buffer;
   6908 #endif
   6909 		/*
   6910 		 * sending src (client)/dst (local service) addresses over
   6911 		 * DNSTAP from other callbacks
   6912 		 */
   6913 		if(dtenv != NULL && dtenv->log_client_response_messages) {
   6914 			send_reply_dnstap(dtenv,
   6915 				repinfo->c->socket->addr,
   6916 				repinfo->c->socket->addrlen,
   6917 				&repinfo->client_addr, repinfo->client_addrlen,
   6918 				repinfo->c->type, repinfo->c->ssl,
   6919 				dtbuffer);
   6920 		}
   6921 #endif
   6922 		if(repinfo->c->tcp_req_info) {
   6923 			tcp_req_info_send_reply(repinfo->c->tcp_req_info);
   6924 		} else if(repinfo->c->use_h2) {
   6925 			if(!http2_submit_dns_response(repinfo->c->h2_session)) {
   6926 				return;
   6927 			}
   6928 			repinfo->c->h2_stream = NULL;
   6929 			repinfo->c->tcp_is_reading = 0;
   6930 			comm_point_stop_listening(repinfo->c);
   6931 			comm_point_start_listening(repinfo->c, -1,
   6932 				adjusted_tcp_timeout(repinfo->c));
   6933 			return;
   6934 #ifdef HAVE_NGTCP2
   6935 		} else if(repinfo->c->doq_socket) {
   6936 			doq_socket_send_reply(repinfo);
   6937 #endif
   6938 		} else {
   6939 			comm_point_start_listening(repinfo->c, -1,
   6940 				adjusted_tcp_timeout(repinfo->c));
   6941 		}
   6942 	}
   6943 }
   6944 
   6945 void
   6946 comm_point_drop_reply(struct comm_reply* repinfo)
   6947 {
   6948 	if(!repinfo)
   6949 		return;
   6950 	log_assert(repinfo->c);
   6951 	log_assert(repinfo->c->type != comm_tcp_accept);
   6952 	if(repinfo->c->type == comm_udp)
   6953 		return;
   6954 	if(repinfo->c->tcp_req_info)
   6955 		repinfo->c->tcp_req_info->is_drop = 1;
   6956 	if(repinfo->c->type == comm_http) {
   6957 		if(repinfo->c->h2_session) {
   6958 			repinfo->c->h2_session->is_drop = 1;
   6959 			http2_session_clear_meshstate(repinfo->c->h2_session);
   6960 			if(!repinfo->c->h2_session->postpone_drop)
   6961 				reclaim_http_handler(repinfo->c);
   6962 			return;
   6963 		}
   6964 		reclaim_http_handler(repinfo->c);
   6965 		return;
   6966 #ifdef HAVE_NGTCP2
   6967 	} else if(repinfo->c->doq_socket) {
   6968 		doq_socket_drop_reply(repinfo);
   6969 		return;
   6970 #endif
   6971 	}
   6972 	reclaim_tcp_handler(repinfo->c);
   6973 }
   6974 
   6975 void
   6976 comm_point_stop_listening(struct comm_point* c)
   6977 {
   6978 	verbose(VERB_ALGO, "comm point stop listening %d", c->fd);
   6979 	if(c->event_added) {
   6980 		if(ub_event_del(c->ev->ev) != 0) {
   6981 			log_err("event_del error to stoplisten");
   6982 		}
   6983 		c->event_added = 0;
   6984 	}
   6985 }
   6986 
   6987 void
   6988 comm_point_start_listening(struct comm_point* c, int newfd, int msec)
   6989 {
   6990 	verbose(VERB_ALGO, "comm point start listening %d (%d msec)",
   6991 		c->fd==-1?newfd:c->fd, msec);
   6992 	if(c->type == comm_tcp_accept && !c->tcp_free) {
   6993 		/* no use to start listening no free slots. */
   6994 		return;
   6995 	}
   6996 	if(c->event_added) {
   6997 		if(ub_event_del(c->ev->ev) != 0) {
   6998 			log_err("event_del error to startlisten");
   6999 		}
   7000 		c->event_added = 0;
   7001 	}
   7002 	if(msec != -1 && msec != 0) {
   7003 		if(!c->timeout) {
   7004 			c->timeout = (struct timeval*)malloc(sizeof(
   7005 				struct timeval));
   7006 			if(!c->timeout) {
   7007 				log_err("cpsl: malloc failed. No net read.");
   7008 				return;
   7009 			}
   7010 		}
   7011 		ub_event_add_bits(c->ev->ev, UB_EV_TIMEOUT);
   7012 #ifndef S_SPLINT_S /* splint fails on struct timeval. */
   7013 		c->timeout->tv_sec = msec/1000;
   7014 		c->timeout->tv_usec = (msec%1000)*1000;
   7015 #endif /* S_SPLINT_S */
   7016 	} else {
   7017 		if(msec == 0 || !c->timeout) {
   7018 			ub_event_del_bits(c->ev->ev, UB_EV_TIMEOUT);
   7019 		}
   7020 	}
   7021 	if(c->type == comm_tcp || c->type == comm_http) {
   7022 		ub_event_del_bits(c->ev->ev, UB_EV_READ|UB_EV_WRITE);
   7023 		if(c->tcp_write_and_read) {
   7024 			verbose(5, "startlistening %d mode rw", (newfd==-1?c->fd:newfd));
   7025 			ub_event_add_bits(c->ev->ev, UB_EV_READ|UB_EV_WRITE);
   7026 		} else if(c->tcp_is_reading) {
   7027 			verbose(5, "startlistening %d mode r", (newfd==-1?c->fd:newfd));
   7028 			ub_event_add_bits(c->ev->ev, UB_EV_READ);
   7029 		} else	{
   7030 			verbose(5, "startlistening %d mode w", (newfd==-1?c->fd:newfd));
   7031 			ub_event_add_bits(c->ev->ev, UB_EV_WRITE);
   7032 		}
   7033 	}
   7034 	if(newfd != -1) {
   7035 		if(c->fd != -1 && c->fd != newfd) {
   7036 			verbose(5, "cpsl close of fd %d for %d", c->fd, newfd);
   7037 			sock_close(c->fd);
   7038 		}
   7039 		c->fd = newfd;
   7040 		ub_event_set_fd(c->ev->ev, c->fd);
   7041 	}
   7042 	if(ub_event_add(c->ev->ev, msec==0?NULL:c->timeout) != 0) {
   7043 		log_err("event_add failed. in cpsl.");
   7044 		return;
   7045 	}
   7046 	c->event_added = 1;
   7047 }
   7048 
   7049 void comm_point_listen_for_rw(struct comm_point* c, int rd, int wr)
   7050 {
   7051 	verbose(VERB_ALGO, "comm point listen_for_rw %d %d", c->fd, wr);
   7052 	if(c->event_added) {
   7053 		if(ub_event_del(c->ev->ev) != 0) {
   7054 			log_err("event_del error to cplf");
   7055 		}
   7056 		c->event_added = 0;
   7057 	}
   7058 	if(!c->timeout) {
   7059 		ub_event_del_bits(c->ev->ev, UB_EV_TIMEOUT);
   7060 	}
   7061 	ub_event_del_bits(c->ev->ev, UB_EV_READ|UB_EV_WRITE);
   7062 	if(rd) ub_event_add_bits(c->ev->ev, UB_EV_READ);
   7063 	if(wr) ub_event_add_bits(c->ev->ev, UB_EV_WRITE);
   7064 	if(ub_event_add(c->ev->ev, c->timeout) != 0) {
   7065 		log_err("event_add failed. in cplf.");
   7066 		return;
   7067 	}
   7068 	c->event_added = 1;
   7069 }
   7070 
   7071 size_t comm_point_get_mem(struct comm_point* c)
   7072 {
   7073 	size_t s;
   7074 	if(!c)
   7075 		return 0;
   7076 	s = sizeof(*c) + sizeof(*c->ev);
   7077 	if(c->timeout)
   7078 		s += sizeof(*c->timeout);
   7079 	if(c->type == comm_tcp || c->type == comm_local) {
   7080 		s += sizeof(*c->buffer) + sldns_buffer_capacity(c->buffer);
   7081 #ifdef USE_DNSCRYPT
   7082 		s += sizeof(*c->dnscrypt_buffer);
   7083 		if(c->buffer != c->dnscrypt_buffer) {
   7084 			s += sldns_buffer_capacity(c->dnscrypt_buffer);
   7085 		}
   7086 #endif
   7087 	}
   7088 	if(c->type == comm_tcp_accept) {
   7089 		int i;
   7090 		for(i=0; i<c->max_tcp_count; i++)
   7091 			s += comm_point_get_mem(c->tcp_handlers[i]);
   7092 	}
   7093 	return s;
   7094 }
   7095 
   7096 struct comm_timer*
   7097 comm_timer_create(struct comm_base* base, void (*cb)(void*), void* cb_arg)
   7098 {
   7099 	struct internal_timer *tm = (struct internal_timer*)calloc(1,
   7100 		sizeof(struct internal_timer));
   7101 	if(!tm) {
   7102 		log_err("malloc failed");
   7103 		return NULL;
   7104 	}
   7105 	tm->super.ev_timer = tm;
   7106 	tm->base = base;
   7107 	tm->super.callback = cb;
   7108 	tm->super.cb_arg = cb_arg;
   7109 	tm->ev = ub_event_new(base->eb->base, -1, UB_EV_TIMEOUT,
   7110 		comm_timer_callback, &tm->super);
   7111 	if(tm->ev == NULL) {
   7112 		log_err("timer_create: event_base_set failed.");
   7113 		free(tm);
   7114 		return NULL;
   7115 	}
   7116 	return &tm->super;
   7117 }
   7118 
   7119 void
   7120 comm_timer_disable(struct comm_timer* timer)
   7121 {
   7122 	if(!timer)
   7123 		return;
   7124 	ub_timer_del(timer->ev_timer->ev);
   7125 	timer->ev_timer->enabled = 0;
   7126 }
   7127 
   7128 void
   7129 comm_timer_set(struct comm_timer* timer, struct timeval* tv)
   7130 {
   7131 	log_assert(tv);
   7132 	if(timer->ev_timer->enabled)
   7133 		comm_timer_disable(timer);
   7134 	if(ub_timer_add(timer->ev_timer->ev, timer->ev_timer->base->eb->base,
   7135 		comm_timer_callback, timer, tv) != 0)
   7136 		log_err("comm_timer_set: evtimer_add failed.");
   7137 	timer->ev_timer->enabled = 1;
   7138 }
   7139 
   7140 void
   7141 comm_timer_delete(struct comm_timer* timer)
   7142 {
   7143 	if(!timer)
   7144 		return;
   7145 	comm_timer_disable(timer);
   7146 	/* Free the sub struct timer->ev_timer derived from the super struct timer.
   7147 	 * i.e. assert(timer == timer->ev_timer)
   7148 	 */
   7149 	ub_event_free(timer->ev_timer->ev);
   7150 	free(timer->ev_timer);
   7151 }
   7152 
   7153 void
   7154 comm_timer_callback(int ATTR_UNUSED(fd), short event, void* arg)
   7155 {
   7156 	struct comm_timer* tm = (struct comm_timer*)arg;
   7157 	if(!(event&UB_EV_TIMEOUT))
   7158 		return;
   7159 	ub_comm_base_now(tm->ev_timer->base);
   7160 	tm->ev_timer->enabled = 0;
   7161 	fptr_ok(fptr_whitelist_comm_timer(tm->callback));
   7162 	(*tm->callback)(tm->cb_arg);
   7163 }
   7164 
   7165 int
   7166 comm_timer_is_set(struct comm_timer* timer)
   7167 {
   7168 	return (int)timer->ev_timer->enabled;
   7169 }
   7170 
   7171 size_t
   7172 comm_timer_get_mem(struct comm_timer* timer)
   7173 {
   7174 	if(!timer) return 0;
   7175 	return sizeof(struct internal_timer);
   7176 }
   7177 
   7178 struct comm_signal*
   7179 comm_signal_create(struct comm_base* base,
   7180         void (*callback)(int, void*), void* cb_arg)
   7181 {
   7182 	struct comm_signal* com = (struct comm_signal*)malloc(
   7183 		sizeof(struct comm_signal));
   7184 	if(!com) {
   7185 		log_err("malloc failed");
   7186 		return NULL;
   7187 	}
   7188 	com->base = base;
   7189 	com->callback = callback;
   7190 	com->cb_arg = cb_arg;
   7191 	com->ev_signal = NULL;
   7192 	return com;
   7193 }
   7194 
   7195 void
   7196 comm_signal_callback(int sig, short event, void* arg)
   7197 {
   7198 	struct comm_signal* comsig = (struct comm_signal*)arg;
   7199 	if(!(event & UB_EV_SIGNAL))
   7200 		return;
   7201 	ub_comm_base_now(comsig->base);
   7202 	fptr_ok(fptr_whitelist_comm_signal(comsig->callback));
   7203 	(*comsig->callback)(sig, comsig->cb_arg);
   7204 }
   7205 
   7206 int
   7207 comm_signal_bind(struct comm_signal* comsig, int sig)
   7208 {
   7209 	struct internal_signal* entry = (struct internal_signal*)calloc(1,
   7210 		sizeof(struct internal_signal));
   7211 	if(!entry) {
   7212 		log_err("malloc failed");
   7213 		return 0;
   7214 	}
   7215 	log_assert(comsig);
   7216 	/* add signal event */
   7217 	entry->ev = ub_signal_new(comsig->base->eb->base, sig,
   7218 		comm_signal_callback, comsig);
   7219 	if(entry->ev == NULL) {
   7220 		log_err("Could not create signal event");
   7221 		free(entry);
   7222 		return 0;
   7223 	}
   7224 	if(ub_signal_add(entry->ev, NULL) != 0) {
   7225 		log_err("Could not add signal handler");
   7226 		ub_event_free(entry->ev);
   7227 		free(entry);
   7228 		return 0;
   7229 	}
   7230 	/* link into list */
   7231 	entry->next = comsig->ev_signal;
   7232 	comsig->ev_signal = entry;
   7233 	return 1;
   7234 }
   7235 
   7236 void
   7237 comm_signal_delete(struct comm_signal* comsig)
   7238 {
   7239 	struct internal_signal* p, *np;
   7240 	if(!comsig)
   7241 		return;
   7242 	p=comsig->ev_signal;
   7243 	while(p) {
   7244 		np = p->next;
   7245 		ub_signal_del(p->ev);
   7246 		ub_event_free(p->ev);
   7247 		free(p);
   7248 		p = np;
   7249 	}
   7250 	free(comsig);
   7251 }
   7252