mirror of
http://git.haproxy.org/git/haproxy.git/
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d7eaa0d553
This reapplies the xalloc_size.cocci patch across the whole `src/` tree. see16cc16dd82
see63ee0e4c01
see9fb57e8c17
800 lines
24 KiB
C
800 lines
24 KiB
C
/*
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* AF_INET/AF_INET6 QUIC protocol layer.
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*
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* Copyright 2020 Frederic Lecaille <flecaille@haproxy.com>
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*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License
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* as published by the Free Software Foundation; either version
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* 2 of the License, or (at your option) any later version.
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*
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*/
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#include <ctype.h>
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#include <errno.h>
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <time.h>
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#include <sys/param.h>
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#include <sys/socket.h>
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#include <sys/types.h>
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#include <netinet/udp.h>
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#include <netinet/in.h>
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#include <import/ebtree-t.h>
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#include <haproxy/api.h>
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#include <haproxy/arg.h>
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#include <haproxy/cbuf.h>
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#include <haproxy/connection.h>
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#include <haproxy/errors.h>
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#include <haproxy/fd.h>
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#include <haproxy/global.h>
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#include <haproxy/list.h>
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#include <haproxy/listener.h>
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#include <haproxy/log.h>
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#include <haproxy/namespace.h>
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#include <haproxy/port_range.h>
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#include <haproxy/protocol.h>
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#include <haproxy/proto_quic.h>
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#include <haproxy/proto_udp.h>
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#include <haproxy/proxy-t.h>
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#include <haproxy/quic_conn.h>
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#include <haproxy/quic_sock.h>
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#include <haproxy/sock.h>
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#include <haproxy/sock_inet.h>
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#include <haproxy/task.h>
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#include <haproxy/tools.h>
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/* per-thread quic datagram handlers */
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struct quic_dghdlr *quic_dghdlrs;
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struct eb_root *quic_cid_tree;
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/* global CID trees */
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#define QUIC_CID_TREES_CNT 256
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struct quic_cid_tree *quic_cid_trees;
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/* Size of the internal buffer of QUIC RX buffer at the fd level */
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#define QUIC_RX_BUFSZ (1UL << 18)
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DECLARE_STATIC_POOL(pool_head_quic_rxbuf, "quic_rxbuf", QUIC_RX_BUFSZ);
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static int quic_bind_listener(struct listener *listener, char *errmsg, int errlen);
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static int quic_connect_server(struct connection *conn, int flags);
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static void quic_enable_listener(struct listener *listener);
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static void quic_disable_listener(struct listener *listener);
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static int quic_set_affinity(struct connection *conn, int new_tid);
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/* Note: must not be declared <const> as its list will be overwritten */
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struct protocol proto_quic4 = {
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.name = "quic4",
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/* connection layer */
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.xprt_type = PROTO_TYPE_STREAM,
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.listen = quic_bind_listener,
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.enable = quic_enable_listener,
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.disable = quic_disable_listener,
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.add = default_add_listener,
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.unbind = default_unbind_listener,
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.suspend = default_suspend_listener,
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.resume = default_resume_listener,
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.accept_conn = quic_sock_accept_conn,
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.get_src = quic_sock_get_src,
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.get_dst = quic_sock_get_dst,
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.connect = quic_connect_server,
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.set_affinity = quic_set_affinity,
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/* binding layer */
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.rx_suspend = udp_suspend_receiver,
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.rx_resume = udp_resume_receiver,
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/* address family */
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.fam = &proto_fam_inet4,
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/* socket layer */
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.proto_type = PROTO_TYPE_DGRAM,
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.sock_type = SOCK_DGRAM,
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.sock_prot = IPPROTO_UDP,
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.rx_enable = sock_enable,
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.rx_disable = sock_disable,
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.rx_unbind = sock_unbind,
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.rx_listening = quic_sock_accepting_conn,
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.default_iocb = quic_lstnr_sock_fd_iocb,
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.receivers = LIST_HEAD_INIT(proto_quic4.receivers),
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.nb_receivers = 0,
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#ifdef SO_REUSEPORT
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.flags = PROTO_F_REUSEPORT_SUPPORTED,
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#endif
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};
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INITCALL1(STG_REGISTER, protocol_register, &proto_quic4);
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/* Note: must not be declared <const> as its list will be overwritten */
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struct protocol proto_quic6 = {
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.name = "quic6",
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/* connection layer */
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.xprt_type = PROTO_TYPE_STREAM,
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.listen = quic_bind_listener,
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.enable = quic_enable_listener,
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.disable = quic_disable_listener,
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.add = default_add_listener,
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.unbind = default_unbind_listener,
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.suspend = default_suspend_listener,
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.resume = default_resume_listener,
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.accept_conn = quic_sock_accept_conn,
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.get_src = quic_sock_get_src,
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.get_dst = quic_sock_get_dst,
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.connect = quic_connect_server,
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.set_affinity = quic_set_affinity,
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/* binding layer */
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.rx_suspend = udp_suspend_receiver,
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.rx_resume = udp_resume_receiver,
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/* address family */
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.fam = &proto_fam_inet6,
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/* socket layer */
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.proto_type = PROTO_TYPE_DGRAM,
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.sock_type = SOCK_DGRAM,
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.sock_prot = IPPROTO_UDP,
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.rx_enable = sock_enable,
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.rx_disable = sock_disable,
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.rx_unbind = sock_unbind,
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.rx_listening = quic_sock_accepting_conn,
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.default_iocb = quic_lstnr_sock_fd_iocb,
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.receivers = LIST_HEAD_INIT(proto_quic6.receivers),
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.nb_receivers = 0,
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#ifdef SO_REUSEPORT
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.flags = PROTO_F_REUSEPORT_SUPPORTED,
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#endif
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};
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INITCALL1(STG_REGISTER, protocol_register, &proto_quic6);
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/* Binds ipv4/ipv6 address <local> to socket <fd>, unless <flags> is set, in which
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* case we try to bind <remote>. <flags> is a 2-bit field consisting of :
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* - 0 : ignore remote address (may even be a NULL pointer)
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* - 1 : use provided address
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* - 2 : use provided port
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* - 3 : use both
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*
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* The function supports multiple foreign binding methods :
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* - linux_tproxy: we directly bind to the foreign address
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* The second one can be used as a fallback for the first one.
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* This function returns 0 when everything's OK, 1 if it could not bind, to the
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* local address, 2 if it could not bind to the foreign address.
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*/
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int quic_bind_socket(int fd, int flags, struct sockaddr_storage *local, struct sockaddr_storage *remote)
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{
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struct sockaddr_storage bind_addr;
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int foreign_ok = 0;
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int ret;
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static THREAD_LOCAL int ip_transp_working = 1;
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static THREAD_LOCAL int ip6_transp_working = 1;
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switch (local->ss_family) {
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case AF_INET:
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if (flags && ip_transp_working) {
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/* This deserves some explanation. Some platforms will support
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* multiple combinations of certain methods, so we try the
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* supported ones until one succeeds.
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*/
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if (sock_inet4_make_foreign(fd))
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foreign_ok = 1;
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else
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ip_transp_working = 0;
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}
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break;
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case AF_INET6:
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if (flags && ip6_transp_working) {
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if (sock_inet6_make_foreign(fd))
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foreign_ok = 1;
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else
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ip6_transp_working = 0;
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}
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break;
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}
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if (flags) {
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memset(&bind_addr, 0, sizeof(bind_addr));
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bind_addr.ss_family = remote->ss_family;
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switch (remote->ss_family) {
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case AF_INET:
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if (flags & 1)
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((struct sockaddr_in *)&bind_addr)->sin_addr = ((struct sockaddr_in *)remote)->sin_addr;
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if (flags & 2)
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((struct sockaddr_in *)&bind_addr)->sin_port = ((struct sockaddr_in *)remote)->sin_port;
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break;
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case AF_INET6:
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if (flags & 1)
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((struct sockaddr_in6 *)&bind_addr)->sin6_addr = ((struct sockaddr_in6 *)remote)->sin6_addr;
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if (flags & 2)
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((struct sockaddr_in6 *)&bind_addr)->sin6_port = ((struct sockaddr_in6 *)remote)->sin6_port;
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break;
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default:
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/* we don't want to try to bind to an unknown address family */
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foreign_ok = 0;
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}
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}
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setsockopt(fd, SOL_SOCKET, SO_REUSEADDR, &one, sizeof(one));
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if (foreign_ok) {
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if (is_inet_addr(&bind_addr)) {
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ret = bind(fd, (struct sockaddr *)&bind_addr, get_addr_len(&bind_addr));
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if (ret < 0)
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return 2;
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}
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}
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else {
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if (is_inet_addr(local)) {
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ret = bind(fd, (struct sockaddr *)local, get_addr_len(local));
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if (ret < 0)
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return 1;
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}
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}
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if (!flags)
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return 0;
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if (!foreign_ok)
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/* we could not bind to a foreign address */
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return 2;
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return 0;
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}
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/*
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* This function initiates a QUIC connection establishment to the target assigned
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* to connection <conn> using (si->{target,dst}). A source address may be
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* pointed to by conn->src in case of transparent proxying. Normal source
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* bind addresses are still determined locally (due to the possible need of a
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* source port). conn->target may point either to a valid server or to a backend,
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* depending on conn->target. Only OBJ_TYPE_PROXY and OBJ_TYPE_SERVER are
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* supported. The <data> parameter is a boolean indicating whether there are data
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* waiting for being sent or not, in order to adjust data write polling and on
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* some platforms, the ability to avoid an empty initial ACK. The <flags> argument
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* is not used.
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*
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* Note that a pending send_proxy message accounts for data.
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*
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* It can return one of :
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* - SF_ERR_NONE if everything's OK
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* - SF_ERR_SRVTO if there are no more servers
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* - SF_ERR_SRVCL if the connection was refused by the server
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* - SF_ERR_PRXCOND if the connection has been limited by the proxy (maxconn)
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* - SF_ERR_RESOURCE if a system resource is lacking (eg: fd limits, ports, ...)
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* - SF_ERR_INTERNAL for any other purely internal errors
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* Additionally, in the case of SF_ERR_RESOURCE, an emergency log will be emitted.
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*
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* The connection's fd is inserted only when SF_ERR_NONE is returned, otherwise
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* it's invalid and the caller has nothing to do.
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*/
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int quic_connect_server(struct connection *conn, int flags)
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{
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int fd;
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struct server *srv;
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struct proxy *be;
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struct conn_src *src;
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struct sockaddr_storage *addr;
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BUG_ON(!conn->dst);
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conn->flags |= CO_FL_WAIT_L4_CONN; /* connection in progress */
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switch (obj_type(conn->target)) {
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case OBJ_TYPE_PROXY:
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be = __objt_proxy(conn->target);
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srv = NULL;
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break;
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case OBJ_TYPE_SERVER:
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srv = __objt_server(conn->target);
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be = srv->proxy;
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break;
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default:
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conn->flags |= CO_FL_ERROR;
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return SF_ERR_INTERNAL;
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}
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fd = conn->handle.fd = sock_create_server_socket(conn);
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if (fd == -1) {
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qfprintf(stderr, "Cannot get a server socket.\n");
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if (errno == ENFILE) {
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conn->err_code = CO_ER_SYS_FDLIM;
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send_log(be, LOG_EMERG,
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"Proxy %s reached system FD limit (maxsock=%d). Please check system tunables.\n",
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be->id, global.maxsock);
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}
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else if (errno == EMFILE) {
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conn->err_code = CO_ER_PROC_FDLIM;
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send_log(be, LOG_EMERG,
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"Proxy %s reached process FD limit (maxsock=%d). Please check 'ulimit-n' and restart.\n",
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be->id, global.maxsock);
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}
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else if (errno == ENOBUFS || errno == ENOMEM) {
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conn->err_code = CO_ER_SYS_MEMLIM;
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send_log(be, LOG_EMERG,
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"Proxy %s reached system memory limit (maxsock=%d). Please check system tunables.\n",
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be->id, global.maxsock);
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}
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else if (errno == EAFNOSUPPORT || errno == EPROTONOSUPPORT) {
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conn->err_code = CO_ER_NOPROTO;
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}
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else
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conn->err_code = CO_ER_SOCK_ERR;
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/* this is a resource error */
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conn->flags |= CO_FL_ERROR;
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return SF_ERR_RESOURCE;
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}
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if (fd >= global.maxsock) {
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/* do not log anything there, it's a normal condition when this option
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* is used to serialize connections to a server !
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*/
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ha_alert("socket(): not enough free sockets. Raise -n argument. Giving up.\n");
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close(fd);
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conn->err_code = CO_ER_CONF_FDLIM;
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conn->flags |= CO_FL_ERROR;
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return SF_ERR_PRXCOND; /* it is a configuration limit */
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}
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if (fd_set_nonblock(fd) == -1) {
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qfprintf(stderr,"Cannot set client socket to non blocking mode.\n");
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close(fd);
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conn->err_code = CO_ER_SOCK_ERR;
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conn->flags |= CO_FL_ERROR;
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return SF_ERR_INTERNAL;
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}
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if (master == 1 && fd_set_cloexec(fd) == -1) {
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ha_alert("Cannot set CLOEXEC on client socket.\n");
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close(fd);
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conn->err_code = CO_ER_SOCK_ERR;
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conn->flags |= CO_FL_ERROR;
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return SF_ERR_INTERNAL;
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}
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/* allow specific binding :
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* - server-specific at first
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* - proxy-specific next
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*/
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if (srv && srv->conn_src.opts & CO_SRC_BIND)
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src = &srv->conn_src;
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else if (be->conn_src.opts & CO_SRC_BIND)
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src = &be->conn_src;
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else
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src = NULL;
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if (src) {
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int ret, flags = 0;
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if (conn->src && is_inet_addr(conn->src)) {
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switch (src->opts & CO_SRC_TPROXY_MASK) {
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case CO_SRC_TPROXY_CLI:
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conn_set_private(conn);
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__fallthrough;
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case CO_SRC_TPROXY_ADDR:
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flags = 3;
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break;
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case CO_SRC_TPROXY_CIP:
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case CO_SRC_TPROXY_DYN:
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conn_set_private(conn);
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flags = 1;
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break;
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}
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}
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#ifdef SO_BINDTODEVICE
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/* Note: this might fail if not CAP_NET_RAW */
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if (src->iface_name)
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setsockopt(fd, SOL_SOCKET, SO_BINDTODEVICE, src->iface_name, src->iface_len + 1);
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#endif
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if (src->sport_range) {
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int attempts = 10; /* should be more than enough to find a spare port */
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struct sockaddr_storage sa;
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ret = 1;
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memcpy(&sa, &src->source_addr, sizeof(sa));
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do {
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/* note: in case of retry, we may have to release a previously
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* allocated port, hence this loop's construct.
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*/
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port_range_release_port(fdinfo[fd].port_range, fdinfo[fd].local_port);
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fdinfo[fd].port_range = NULL;
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if (!attempts)
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break;
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attempts--;
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fdinfo[fd].local_port = port_range_alloc_port(src->sport_range);
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if (!fdinfo[fd].local_port) {
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conn->err_code = CO_ER_PORT_RANGE;
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break;
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}
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fdinfo[fd].port_range = src->sport_range;
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set_host_port(&sa, fdinfo[fd].local_port);
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ret = quic_bind_socket(fd, flags, &sa, conn->src);
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if (ret != 0)
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conn->err_code = CO_ER_CANT_BIND;
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} while (ret != 0); /* binding NOK */
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}
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else {
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#ifdef IP_BIND_ADDRESS_NO_PORT
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static THREAD_LOCAL int bind_address_no_port = 1;
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setsockopt(fd, IPPROTO_IP, IP_BIND_ADDRESS_NO_PORT, (const void *) &bind_address_no_port, sizeof(int));
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#endif
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ret = quic_bind_socket(fd, flags, &src->source_addr, conn->src);
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if (ret != 0)
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conn->err_code = CO_ER_CANT_BIND;
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}
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if (unlikely(ret != 0)) {
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port_range_release_port(fdinfo[fd].port_range, fdinfo[fd].local_port);
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fdinfo[fd].port_range = NULL;
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close(fd);
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if (ret == 1) {
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ha_alert("Cannot bind to source address before connect() for backend %s. Aborting.\n",
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be->id);
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send_log(be, LOG_EMERG,
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"Cannot bind to source address before connect() for backend %s.\n",
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be->id);
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} else {
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ha_alert("Cannot bind to tproxy source address before connect() for backend %s. Aborting.\n",
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be->id);
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send_log(be, LOG_EMERG,
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"Cannot bind to tproxy source address before connect() for backend %s.\n",
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be->id);
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}
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conn->flags |= CO_FL_ERROR;
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return SF_ERR_RESOURCE;
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}
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}
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if (global.tune.server_sndbuf)
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setsockopt(fd, SOL_SOCKET, SO_SNDBUF, &global.tune.server_sndbuf, sizeof(global.tune.server_sndbuf));
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if (global.tune.server_rcvbuf)
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setsockopt(fd, SOL_SOCKET, SO_RCVBUF, &global.tune.server_rcvbuf, sizeof(global.tune.server_rcvbuf));
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addr = (conn->flags & CO_FL_SOCKS4) ? &srv->socks4_addr : conn->dst;
|
|
if (connect(fd, (const struct sockaddr *)addr, get_addr_len(addr)) == -1) {
|
|
if (errno == EINPROGRESS || errno == EALREADY) {
|
|
/* common case, let's wait for connect status */
|
|
conn->flags |= CO_FL_WAIT_L4_CONN;
|
|
}
|
|
else if (errno == EISCONN) {
|
|
/* should normally not happen but if so, indicates that it's OK */
|
|
conn->flags &= ~CO_FL_WAIT_L4_CONN;
|
|
}
|
|
else if (errno == EAGAIN || errno == EWOULDBLOCK || errno == EADDRINUSE || errno == EADDRNOTAVAIL) {
|
|
char *msg;
|
|
if (errno == EAGAIN || errno == EWOULDBLOCK || errno == EADDRNOTAVAIL) {
|
|
msg = "no free ports";
|
|
conn->err_code = CO_ER_FREE_PORTS;
|
|
}
|
|
else {
|
|
msg = "local address already in use";
|
|
conn->err_code = CO_ER_ADDR_INUSE;
|
|
}
|
|
|
|
qfprintf(stderr,"Connect() failed for backend %s: %s.\n", be->id, msg);
|
|
port_range_release_port(fdinfo[fd].port_range, fdinfo[fd].local_port);
|
|
fdinfo[fd].port_range = NULL;
|
|
close(fd);
|
|
send_log(be, LOG_ERR, "Connect() failed for backend %s: %s.\n", be->id, msg);
|
|
conn->flags |= CO_FL_ERROR;
|
|
return SF_ERR_RESOURCE;
|
|
} else if (errno == ETIMEDOUT) {
|
|
//qfprintf(stderr,"Connect(): ETIMEDOUT");
|
|
port_range_release_port(fdinfo[fd].port_range, fdinfo[fd].local_port);
|
|
fdinfo[fd].port_range = NULL;
|
|
close(fd);
|
|
conn->err_code = CO_ER_SOCK_ERR;
|
|
conn->flags |= CO_FL_ERROR;
|
|
return SF_ERR_SRVTO;
|
|
} else {
|
|
// (errno == ECONNREFUSED || errno == ENETUNREACH || errno == EACCES || errno == EPERM)
|
|
//qfprintf(stderr,"Connect(): %d", errno);
|
|
port_range_release_port(fdinfo[fd].port_range, fdinfo[fd].local_port);
|
|
fdinfo[fd].port_range = NULL;
|
|
close(fd);
|
|
conn->err_code = CO_ER_SOCK_ERR;
|
|
conn->flags |= CO_FL_ERROR;
|
|
return SF_ERR_SRVCL;
|
|
}
|
|
}
|
|
else {
|
|
/* connect() == 0, this is great! */
|
|
conn->flags &= ~CO_FL_WAIT_L4_CONN;
|
|
}
|
|
|
|
conn_ctrl_init(conn); /* registers the FD */
|
|
HA_ATOMIC_OR(&fdtab[fd].state, FD_LINGER_RISK); /* close hard if needed */
|
|
|
|
if (conn->flags & CO_FL_WAIT_L4_CONN) {
|
|
fd_want_send(fd);
|
|
fd_cant_send(fd);
|
|
fd_cant_recv(fd);
|
|
}
|
|
|
|
return SF_ERR_NONE; /* connection is OK */
|
|
}
|
|
|
|
/* Allocate the RX buffers for <l> listener.
|
|
* Return 1 if succeeded, 0 if not.
|
|
*/
|
|
static int quic_alloc_rxbufs_listener(struct listener *l)
|
|
{
|
|
int i;
|
|
struct quic_receiver_buf *tmp;
|
|
|
|
MT_LIST_INIT(&l->rx.rxbuf_list);
|
|
for (i = 0; i < my_popcountl(l->rx.bind_thread); i++) {
|
|
struct quic_receiver_buf *rxbuf;
|
|
char *buf;
|
|
|
|
rxbuf = calloc(1, sizeof(*rxbuf));
|
|
if (!rxbuf)
|
|
goto err;
|
|
|
|
buf = pool_alloc(pool_head_quic_rxbuf);
|
|
if (!buf) {
|
|
free(rxbuf);
|
|
goto err;
|
|
}
|
|
|
|
rxbuf->buf = b_make(buf, QUIC_RX_BUFSZ, 0, 0);
|
|
LIST_INIT(&rxbuf->dgram_list);
|
|
MT_LIST_APPEND(&l->rx.rxbuf_list, &rxbuf->rxbuf_el);
|
|
}
|
|
|
|
return 1;
|
|
|
|
err:
|
|
while ((tmp = MT_LIST_POP(&l->rx.rxbuf_list, typeof(tmp), rxbuf_el))) {
|
|
pool_free(pool_head_quic_rxbuf, tmp->buf.area);
|
|
free(tmp);
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
/* Check if platform supports the required feature set for quic-conn owned
|
|
* socket. <l> listener must already be binded; a dummy socket will be opened
|
|
* on the same address as one of the support test.
|
|
*
|
|
* Returns true if platform is deemed compatible else false.
|
|
*/
|
|
static int quic_test_sock_per_conn_support(struct listener *l)
|
|
{
|
|
const struct receiver *rx = &l->rx;
|
|
int ret = 1, fdtest;
|
|
|
|
/* Check if IP destination address can be retrieved on recvfrom()
|
|
* operation.
|
|
*/
|
|
#if !defined(IP_PKTINFO) && !defined(IP_RECVDSTADDR)
|
|
ha_alert("Your platform does not seem to support UDP source address retrieval through IP_PKTINFO or an alternative flag. "
|
|
"QUIC connections will use listener socket.\n");
|
|
ret = 0;
|
|
#endif
|
|
|
|
/* Check if platform support multiple UDP sockets bind on the same
|
|
* local address. Create a dummy socket and bind it on the same address
|
|
* as <l> listener. If bind system call fails, deactivate socket per
|
|
* connection. All other errors are not taken into account.
|
|
*/
|
|
if (ret) {
|
|
fdtest = socket(rx->proto->fam->sock_domain,
|
|
rx->proto->sock_type, rx->proto->sock_prot);
|
|
if (fdtest >= 0) {
|
|
if (setsockopt(fdtest, SOL_SOCKET, SO_REUSEADDR, &one, sizeof(one)) &&
|
|
bind(fdtest, (struct sockaddr *)&rx->addr, rx->proto->fam->sock_addrlen) < 0) {
|
|
ha_alert("Your platform does not seem to support multiple UDP sockets binded on the same address. "
|
|
"QUIC connections will use listener socket.\n");
|
|
ret = 0;
|
|
}
|
|
|
|
close(fdtest);
|
|
}
|
|
}
|
|
|
|
return ret;
|
|
}
|
|
|
|
/* This function tries to bind a QUIC4/6 listener. It may return a warning or
|
|
* an error message in <errmsg> if the message is at most <errlen> bytes long
|
|
* (including '\0'). Note that <errmsg> may be NULL if <errlen> is also zero.
|
|
* The return value is composed from ERR_ABORT, ERR_WARN,
|
|
* ERR_ALERT, ERR_RETRYABLE and ERR_FATAL. ERR_NONE indicates that everything
|
|
* was alright and that no message was returned. ERR_RETRYABLE means that an
|
|
* error occurred but that it may vanish after a retry (eg: port in use), and
|
|
* ERR_FATAL indicates a non-fixable error. ERR_WARN and ERR_ALERT do not alter
|
|
* the meaning of the error, but just indicate that a message is present which
|
|
* should be displayed with the respective level. Last, ERR_ABORT indicates
|
|
* that it's pointless to try to start other listeners. No error message is
|
|
* returned if errlen is NULL.
|
|
*/
|
|
static int quic_bind_listener(struct listener *listener, char *errmsg, int errlen)
|
|
{
|
|
const struct sockaddr_storage addr = listener->rx.addr;
|
|
int fd, err = ERR_NONE;
|
|
char *msg = NULL;
|
|
|
|
/* ensure we never return garbage */
|
|
if (errlen)
|
|
*errmsg = 0;
|
|
|
|
if (listener->state != LI_ASSIGNED)
|
|
return ERR_NONE; /* already bound */
|
|
|
|
if (!(listener->rx.flags & RX_F_BOUND)) {
|
|
msg = "receiving socket not bound";
|
|
goto udp_return;
|
|
}
|
|
|
|
/* Duplicate quic_mode setting from bind_conf. Useful to overwrite it
|
|
* at runtime per receiver instance.
|
|
*/
|
|
listener->rx.quic_mode = listener->bind_conf->quic_mode;
|
|
|
|
/* Set IP_PKTINFO to retrieve destination address on recv. */
|
|
fd = listener->rx.fd;
|
|
switch (addr.ss_family) {
|
|
case AF_INET:
|
|
#if defined(IP_PKTINFO)
|
|
setsockopt(fd, IPPROTO_IP, IP_PKTINFO, &one, sizeof(one));
|
|
#elif defined(IP_RECVDSTADDR)
|
|
setsockopt(fd, IPPROTO_IP, IP_RECVDSTADDR, &one, sizeof(one));
|
|
#endif /* IP_PKTINFO || IP_RECVDSTADDR */
|
|
break;
|
|
case AF_INET6:
|
|
#ifdef IPV6_RECVPKTINFO
|
|
setsockopt(fd, IPPROTO_IPV6, IPV6_RECVPKTINFO, &one, sizeof(one));
|
|
#endif
|
|
break;
|
|
default:
|
|
break;
|
|
}
|
|
|
|
if (!quic_alloc_rxbufs_listener(listener)) {
|
|
msg = "could not initialize tx/rx rings";
|
|
err |= ERR_WARN;
|
|
goto udp_return;
|
|
}
|
|
|
|
if (global.tune.options & GTUNE_QUIC_SOCK_PER_CONN) {
|
|
if (!quic_test_sock_per_conn_support(listener))
|
|
global.tune.options &= ~GTUNE_QUIC_SOCK_PER_CONN;
|
|
}
|
|
|
|
if (global.tune.frontend_rcvbuf)
|
|
setsockopt(fd, SOL_SOCKET, SO_RCVBUF, &global.tune.frontend_rcvbuf, sizeof(global.tune.frontend_rcvbuf));
|
|
|
|
if (global.tune.frontend_sndbuf)
|
|
setsockopt(fd, SOL_SOCKET, SO_SNDBUF, &global.tune.frontend_sndbuf, sizeof(global.tune.frontend_sndbuf));
|
|
|
|
listener_set_state(listener, LI_LISTEN);
|
|
|
|
udp_return:
|
|
if (msg && errlen) {
|
|
char pn[INET6_ADDRSTRLEN];
|
|
|
|
addr_to_str(&listener->rx.addr, pn, sizeof(pn));
|
|
snprintf(errmsg, errlen, "%s for [%s:%d]", msg, pn, get_host_port(&listener->rx.addr));
|
|
}
|
|
return err;
|
|
}
|
|
|
|
/* Enable receipt of incoming connections for listener <l>. The receiver must
|
|
* still be valid. Does nothing in early boot (needs fd_updt).
|
|
*/
|
|
static void quic_enable_listener(struct listener *l)
|
|
{
|
|
/* FIXME: The following statements are incorrect. This
|
|
* is the responsibility of the QUIC xprt to stop accepting new
|
|
* connections.
|
|
*/
|
|
if (fd_updt)
|
|
fd_want_recv(l->rx.fd);
|
|
}
|
|
|
|
/* Disable receipt of incoming connections for listener <l>. The receiver must
|
|
* still be valid. Does nothing in early boot (needs fd_updt).
|
|
*/
|
|
static void quic_disable_listener(struct listener *l)
|
|
{
|
|
/* FIXME: The following statements are incorrect. This
|
|
* is the responsibility of the QUIC xprt to start accepting new
|
|
* connections again.
|
|
*/
|
|
if (fd_updt)
|
|
fd_stop_recv(l->rx.fd);
|
|
}
|
|
|
|
/* change the connection's thread to <new_tid>. For frontend connections, the
|
|
* target is a listener, and the caller is responsible for guaranteeing that
|
|
* the listener assigned to the connection is bound to the requested thread.
|
|
*/
|
|
static int quic_set_affinity(struct connection *conn, int new_tid)
|
|
{
|
|
struct quic_conn *qc = conn->handle.qc;
|
|
return qc_set_tid_affinity(qc, new_tid, objt_listener(conn->target));
|
|
}
|
|
|
|
static int quic_alloc_dghdlrs(void)
|
|
{
|
|
int i;
|
|
|
|
quic_dghdlrs = calloc(global.nbthread, sizeof(*quic_dghdlrs));
|
|
if (!quic_dghdlrs) {
|
|
ha_alert("Failed to allocate the quic datagram handlers.\n");
|
|
return 0;
|
|
}
|
|
|
|
for (i = 0; i < global.nbthread; i++) {
|
|
struct quic_dghdlr *dghdlr = &quic_dghdlrs[i];
|
|
|
|
dghdlr->task = tasklet_new();
|
|
if (!dghdlr->task) {
|
|
ha_alert("Failed to allocate the quic datagram handler on thread %d.\n", i);
|
|
return 0;
|
|
}
|
|
|
|
tasklet_set_tid(dghdlr->task, i);
|
|
dghdlr->task->context = dghdlr;
|
|
dghdlr->task->process = quic_lstnr_dghdlr;
|
|
|
|
MT_LIST_INIT(&dghdlr->dgrams);
|
|
}
|
|
|
|
quic_cid_trees = calloc(QUIC_CID_TREES_CNT, sizeof(*quic_cid_trees));
|
|
if (!quic_cid_trees) {
|
|
ha_alert("Failed to allocate global CIDs trees.\n");
|
|
return 0;
|
|
}
|
|
|
|
for (i = 0; i < QUIC_CID_TREES_CNT; ++i) {
|
|
HA_RWLOCK_INIT(&quic_cid_trees[i].lock);
|
|
quic_cid_trees[i].root = EB_ROOT_UNIQUE;
|
|
}
|
|
|
|
return 1;
|
|
}
|
|
REGISTER_POST_CHECK(quic_alloc_dghdlrs);
|
|
|
|
static int quic_deallocate_dghdlrs(void)
|
|
{
|
|
int i;
|
|
|
|
if (quic_dghdlrs) {
|
|
for (i = 0; i < global.nbthread; ++i)
|
|
tasklet_free(quic_dghdlrs[i].task);
|
|
free(quic_dghdlrs);
|
|
}
|
|
|
|
ha_free(&quic_cid_trees);
|
|
|
|
return 1;
|
|
}
|
|
REGISTER_POST_DEINIT(quic_deallocate_dghdlrs);
|
|
|
|
/*
|
|
* Local variables:
|
|
* c-indent-level: 8
|
|
* c-basic-offset: 8
|
|
* End:
|
|
*/
|