mirror of
http://git.haproxy.org/git/haproxy.git/
synced 2025-01-12 08:49:29 +00:00
0abf836ecb
'ssl_sock_get_common_name' applied to a connection was also renamed 'ssl_sock_get_remote_common_name'. Currently, this function is only used with protocol PROXYv2 to retrieve the client certificate's common name. A further usage could be to retrieve the server certificate's common name on an outgoing connection.
701 lines
21 KiB
C
701 lines
21 KiB
C
/*
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* Connection management functions
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*
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* Copyright 2000-2012 Willy Tarreau <w@1wt.eu>
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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 <errno.h>
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#include <common/compat.h>
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#include <common/config.h>
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#include <proto/connection.h>
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#include <proto/fd.h>
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#include <proto/frontend.h>
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#include <proto/proto_tcp.h>
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#include <proto/session.h>
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#include <proto/stream_interface.h>
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#ifdef USE_OPENSSL
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#include <proto/ssl_sock.h>
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#endif
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struct pool_head *pool2_connection;
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/* perform minimal intializations, report 0 in case of error, 1 if OK. */
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int init_connection()
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{
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pool2_connection = create_pool("connection", sizeof (struct connection), MEM_F_SHARED);
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return pool2_connection != NULL;
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}
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/* I/O callback for fd-based connections. It calls the read/write handlers
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* provided by the connection's sock_ops, which must be valid. It returns 0.
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*/
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int conn_fd_handler(int fd)
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{
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struct connection *conn = fdtab[fd].owner;
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unsigned int flags;
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if (unlikely(!conn))
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return 0;
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conn_refresh_polling_flags(conn);
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flags = conn->flags & ~CO_FL_ERROR; /* ensure to call the wake handler upon error */
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process_handshake:
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/* The handshake callbacks are called in sequence. If either of them is
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* missing something, it must enable the required polling at the socket
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* layer of the connection. Polling state is not guaranteed when entering
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* these handlers, so any handshake handler which does not complete its
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* work must explicitly disable events it's not interested in. Error
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* handling is also performed here in order to reduce the number of tests
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* around.
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*/
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while (unlikely(conn->flags & (CO_FL_HANDSHAKE | CO_FL_ERROR))) {
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if (unlikely(conn->flags & CO_FL_ERROR))
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goto leave;
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if (conn->flags & CO_FL_ACCEPT_PROXY)
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if (!conn_recv_proxy(conn, CO_FL_ACCEPT_PROXY))
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goto leave;
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if (conn->flags & CO_FL_SEND_PROXY)
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if (!conn_si_send_proxy(conn, CO_FL_SEND_PROXY))
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goto leave;
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#ifdef USE_OPENSSL
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if (conn->flags & CO_FL_SSL_WAIT_HS)
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if (!ssl_sock_handshake(conn, CO_FL_SSL_WAIT_HS))
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goto leave;
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#endif
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}
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/* Once we're purely in the data phase, we disable handshake polling */
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if (!(conn->flags & CO_FL_POLL_SOCK))
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__conn_sock_stop_both(conn);
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/* The data layer might not be ready yet (eg: when using embryonic
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* sessions). If we're about to move data, we must initialize it first.
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* The function may fail and cause the connection to be destroyed, thus
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* we must not use it anymore and should immediately leave instead.
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*/
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if ((conn->flags & CO_FL_INIT_DATA) && conn->data->init(conn) < 0)
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return 0;
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/* The data transfer starts here and stops on error and handshakes. Note
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* that we must absolutely test conn->xprt at each step in case it suddenly
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* changes due to a quick unexpected close().
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*/
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if (conn->xprt && fd_recv_ready(fd) &&
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((conn->flags & (CO_FL_DATA_RD_ENA|CO_FL_WAIT_ROOM|CO_FL_ERROR|CO_FL_HANDSHAKE)) == CO_FL_DATA_RD_ENA)) {
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/* force detection of a flag change : it's impossible to have both
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* CONNECTED and WAIT_CONN so we're certain to trigger a change.
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*/
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flags = CO_FL_WAIT_L4_CONN | CO_FL_CONNECTED;
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conn->data->recv(conn);
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}
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if (conn->xprt && fd_send_ready(fd) &&
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((conn->flags & (CO_FL_DATA_WR_ENA|CO_FL_WAIT_DATA|CO_FL_ERROR|CO_FL_HANDSHAKE)) == CO_FL_DATA_WR_ENA)) {
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/* force detection of a flag change : it's impossible to have both
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* CONNECTED and WAIT_CONN so we're certain to trigger a change.
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*/
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flags = CO_FL_WAIT_L4_CONN | CO_FL_CONNECTED;
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conn->data->send(conn);
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}
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/* It may happen during the data phase that a handshake is
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* enabled again (eg: SSL)
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*/
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if (unlikely(conn->flags & (CO_FL_HANDSHAKE | CO_FL_ERROR)))
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goto process_handshake;
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if (unlikely(conn->flags & CO_FL_WAIT_L4_CONN)) {
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/* still waiting for a connection to establish and nothing was
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* attempted yet to probe the connection. Then let's retry the
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* connect().
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*/
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if (!tcp_connect_probe(conn))
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goto leave;
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}
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leave:
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/* The wake callback may be used to process a critical error and abort the
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* connection. If so, we don't want to go further as the connection will
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* have been released and the FD destroyed.
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*/
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if ((conn->flags & CO_FL_WAKE_DATA) &&
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((conn->flags ^ flags) & CO_FL_CONN_STATE) &&
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conn->data->wake(conn) < 0)
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return 0;
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/* Last check, verify if the connection just established */
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if (unlikely(!(conn->flags & (CO_FL_WAIT_L4_CONN | CO_FL_WAIT_L6_CONN | CO_FL_CONNECTED))))
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conn->flags |= CO_FL_CONNECTED;
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/* remove the events before leaving */
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fdtab[fd].ev &= FD_POLL_STICKY;
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/* commit polling changes */
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conn_cond_update_polling(conn);
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return 0;
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}
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/* Update polling on connection <c>'s file descriptor depending on its current
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* state as reported in the connection's CO_FL_CURR_* flags, reports of EAGAIN
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* in CO_FL_WAIT_*, and the data layer expectations indicated by CO_FL_DATA_*.
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* The connection flags are updated with the new flags at the end of the
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* operation. Polling is totally disabled if an error was reported.
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*/
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void conn_update_data_polling(struct connection *c)
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{
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unsigned int f = c->flags;
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if (!conn_ctrl_ready(c))
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return;
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/* update read status if needed */
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if (unlikely((f & (CO_FL_CURR_RD_ENA|CO_FL_DATA_RD_ENA)) == CO_FL_DATA_RD_ENA)) {
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fd_want_recv(c->t.sock.fd);
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f |= CO_FL_CURR_RD_ENA;
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}
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else if (unlikely((f & (CO_FL_CURR_RD_ENA|CO_FL_DATA_RD_ENA)) == CO_FL_CURR_RD_ENA)) {
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fd_stop_recv(c->t.sock.fd);
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f &= ~CO_FL_CURR_RD_ENA;
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}
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/* update write status if needed */
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if (unlikely((f & (CO_FL_CURR_WR_ENA|CO_FL_DATA_WR_ENA)) == CO_FL_DATA_WR_ENA)) {
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fd_want_send(c->t.sock.fd);
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f |= CO_FL_CURR_WR_ENA;
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}
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else if (unlikely((f & (CO_FL_CURR_WR_ENA|CO_FL_DATA_WR_ENA)) == CO_FL_CURR_WR_ENA)) {
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fd_stop_send(c->t.sock.fd);
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f &= ~CO_FL_CURR_WR_ENA;
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}
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c->flags = f;
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}
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/* Update polling on connection <c>'s file descriptor depending on its current
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* state as reported in the connection's CO_FL_CURR_* flags, reports of EAGAIN
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* in CO_FL_WAIT_*, and the sock layer expectations indicated by CO_FL_SOCK_*.
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* The connection flags are updated with the new flags at the end of the
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* operation. Polling is totally disabled if an error was reported.
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*/
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void conn_update_sock_polling(struct connection *c)
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{
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unsigned int f = c->flags;
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if (!conn_ctrl_ready(c))
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return;
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/* update read status if needed */
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if (unlikely((f & (CO_FL_CURR_RD_ENA|CO_FL_SOCK_RD_ENA)) == CO_FL_SOCK_RD_ENA)) {
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fd_want_recv(c->t.sock.fd);
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f |= CO_FL_CURR_RD_ENA;
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}
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else if (unlikely((f & (CO_FL_CURR_RD_ENA|CO_FL_SOCK_RD_ENA)) == CO_FL_CURR_RD_ENA)) {
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fd_stop_recv(c->t.sock.fd);
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f &= ~CO_FL_CURR_RD_ENA;
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}
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/* update write status if needed */
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if (unlikely((f & (CO_FL_CURR_WR_ENA|CO_FL_SOCK_WR_ENA)) == CO_FL_SOCK_WR_ENA)) {
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fd_want_send(c->t.sock.fd);
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f |= CO_FL_CURR_WR_ENA;
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}
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else if (unlikely((f & (CO_FL_CURR_WR_ENA|CO_FL_SOCK_WR_ENA)) == CO_FL_CURR_WR_ENA)) {
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fd_stop_send(c->t.sock.fd);
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f &= ~CO_FL_CURR_WR_ENA;
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}
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c->flags = f;
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}
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/* This handshake handler waits a PROXY protocol header at the beginning of the
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* raw data stream. The header looks like this :
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*
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* "PROXY" <SP> PROTO <SP> SRC3 <SP> DST3 <SP> SRC4 <SP> <DST4> "\r\n"
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*
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* There must be exactly one space between each field. Fields are :
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* - PROTO : layer 4 protocol, which must be "TCP4" or "TCP6".
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* - SRC3 : layer 3 (eg: IP) source address in standard text form
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* - DST3 : layer 3 (eg: IP) destination address in standard text form
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* - SRC4 : layer 4 (eg: TCP port) source address in standard text form
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* - DST4 : layer 4 (eg: TCP port) destination address in standard text form
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*
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* This line MUST be at the beginning of the buffer and MUST NOT wrap.
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*
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* The header line is small and in all cases smaller than the smallest normal
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* TCP MSS. So it MUST always be delivered as one segment, which ensures we
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* can safely use MSG_PEEK and avoid buffering.
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*
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* Once the data is fetched, the values are set in the connection's address
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* fields, and data are removed from the socket's buffer. The function returns
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* zero if it needs to wait for more data or if it fails, or 1 if it completed
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* and removed itself.
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*/
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int conn_recv_proxy(struct connection *conn, int flag)
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{
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char *line, *end;
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struct proxy_hdr_v2 *hdr_v2;
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const char v2sig[] = PP2_SIGNATURE;
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/* we might have been called just after an asynchronous shutr */
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if (conn->flags & CO_FL_SOCK_RD_SH)
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goto fail;
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if (!conn_ctrl_ready(conn))
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goto fail;
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if (!fd_recv_ready(conn->t.sock.fd))
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return 0;
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do {
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trash.len = recv(conn->t.sock.fd, trash.str, trash.size, MSG_PEEK);
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if (trash.len < 0) {
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if (errno == EINTR)
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continue;
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if (errno == EAGAIN) {
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fd_cant_recv(conn->t.sock.fd);
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return 0;
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}
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goto recv_abort;
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}
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} while (0);
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if (!trash.len) {
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/* client shutdown */
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conn->err_code = CO_ER_PRX_EMPTY;
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goto fail;
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}
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if (trash.len < 6)
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goto missing;
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line = trash.str;
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end = trash.str + trash.len;
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/* Decode a possible proxy request, fail early if it does not match */
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if (strncmp(line, "PROXY ", 6) != 0)
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goto not_v1;
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line += 6;
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if (trash.len < 9) /* shortest possible line */
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goto missing;
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if (!memcmp(line, "TCP4 ", 5) != 0) {
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u32 src3, dst3, sport, dport;
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line += 5;
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src3 = inetaddr_host_lim_ret(line, end, &line);
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if (line == end)
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goto missing;
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if (*line++ != ' ')
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goto bad_header;
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dst3 = inetaddr_host_lim_ret(line, end, &line);
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if (line == end)
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goto missing;
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if (*line++ != ' ')
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goto bad_header;
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sport = read_uint((const char **)&line, end);
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if (line == end)
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goto missing;
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if (*line++ != ' ')
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goto bad_header;
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dport = read_uint((const char **)&line, end);
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if (line > end - 2)
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goto missing;
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if (*line++ != '\r')
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goto bad_header;
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if (*line++ != '\n')
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goto bad_header;
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/* update the session's addresses and mark them set */
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((struct sockaddr_in *)&conn->addr.from)->sin_family = AF_INET;
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((struct sockaddr_in *)&conn->addr.from)->sin_addr.s_addr = htonl(src3);
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((struct sockaddr_in *)&conn->addr.from)->sin_port = htons(sport);
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((struct sockaddr_in *)&conn->addr.to)->sin_family = AF_INET;
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((struct sockaddr_in *)&conn->addr.to)->sin_addr.s_addr = htonl(dst3);
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((struct sockaddr_in *)&conn->addr.to)->sin_port = htons(dport);
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conn->flags |= CO_FL_ADDR_FROM_SET | CO_FL_ADDR_TO_SET;
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}
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else if (!memcmp(line, "TCP6 ", 5) != 0) {
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u32 sport, dport;
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char *src_s;
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char *dst_s, *sport_s, *dport_s;
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struct in6_addr src3, dst3;
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line += 5;
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src_s = line;
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dst_s = sport_s = dport_s = NULL;
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while (1) {
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if (line > end - 2) {
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goto missing;
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}
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else if (*line == '\r') {
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*line = 0;
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line++;
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if (*line++ != '\n')
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goto bad_header;
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break;
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}
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if (*line == ' ') {
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*line = 0;
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if (!dst_s)
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dst_s = line + 1;
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else if (!sport_s)
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sport_s = line + 1;
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else if (!dport_s)
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dport_s = line + 1;
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}
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line++;
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}
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if (!dst_s || !sport_s || !dport_s)
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goto bad_header;
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sport = read_uint((const char **)&sport_s,dport_s - 1);
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if (*sport_s != 0)
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goto bad_header;
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dport = read_uint((const char **)&dport_s,line - 2);
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if (*dport_s != 0)
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goto bad_header;
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if (inet_pton(AF_INET6, src_s, (void *)&src3) != 1)
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goto bad_header;
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if (inet_pton(AF_INET6, dst_s, (void *)&dst3) != 1)
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goto bad_header;
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/* update the session's addresses and mark them set */
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((struct sockaddr_in6 *)&conn->addr.from)->sin6_family = AF_INET6;
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memcpy(&((struct sockaddr_in6 *)&conn->addr.from)->sin6_addr, &src3, sizeof(struct in6_addr));
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((struct sockaddr_in6 *)&conn->addr.from)->sin6_port = htons(sport);
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((struct sockaddr_in6 *)&conn->addr.to)->sin6_family = AF_INET6;
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memcpy(&((struct sockaddr_in6 *)&conn->addr.to)->sin6_addr, &dst3, sizeof(struct in6_addr));
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((struct sockaddr_in6 *)&conn->addr.to)->sin6_port = htons(dport);
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conn->flags |= CO_FL_ADDR_FROM_SET | CO_FL_ADDR_TO_SET;
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}
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else if (memcmp(line, "UNKNOWN\r\n", 9) == 0) {
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/* This can be a UNIX socket forwarded by an haproxy upstream */
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line += 9;
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}
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else {
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/* The protocol does not match something known (TCP4/TCP6/UNKNOWN) */
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conn->err_code = CO_ER_PRX_BAD_PROTO;
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goto fail;
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}
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trash.len = line - trash.str;
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goto eat_header;
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not_v1:
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/* try PPv2 */
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if (trash.len < PP2_HEADER_LEN)
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goto missing;
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hdr_v2 = (struct proxy_hdr_v2 *)trash.str;
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if (memcmp(hdr_v2->sig, v2sig, PP2_SIGNATURE_LEN) != 0 ||
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(hdr_v2->ver_cmd & PP2_VERSION_MASK) != PP2_VERSION) {
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conn->err_code = CO_ER_PRX_NOT_HDR;
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goto fail;
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}
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if (trash.len < PP2_HEADER_LEN + ntohs(hdr_v2->len))
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goto missing;
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switch (hdr_v2->ver_cmd & PP2_CMD_MASK) {
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case 0x01: /* PROXY command */
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switch (hdr_v2->fam) {
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case 0x11: /* TCPv4 */
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((struct sockaddr_in *)&conn->addr.from)->sin_family = AF_INET;
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((struct sockaddr_in *)&conn->addr.from)->sin_addr.s_addr = hdr_v2->addr.ip4.src_addr;
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((struct sockaddr_in *)&conn->addr.from)->sin_port = hdr_v2->addr.ip4.src_port;
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((struct sockaddr_in *)&conn->addr.to)->sin_family = AF_INET;
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((struct sockaddr_in *)&conn->addr.to)->sin_addr.s_addr = hdr_v2->addr.ip4.dst_addr;
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((struct sockaddr_in *)&conn->addr.to)->sin_port = hdr_v2->addr.ip4.dst_port;
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conn->flags |= CO_FL_ADDR_FROM_SET | CO_FL_ADDR_TO_SET;
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break;
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case 0x21: /* TCPv6 */
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((struct sockaddr_in6 *)&conn->addr.from)->sin6_family = AF_INET6;
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memcpy(&((struct sockaddr_in6 *)&conn->addr.from)->sin6_addr, hdr_v2->addr.ip6.src_addr, 16);
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((struct sockaddr_in6 *)&conn->addr.from)->sin6_port = hdr_v2->addr.ip6.src_port;
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((struct sockaddr_in6 *)&conn->addr.to)->sin6_family = AF_INET6;
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memcpy(&((struct sockaddr_in6 *)&conn->addr.to)->sin6_addr, hdr_v2->addr.ip6.dst_addr, 16);
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((struct sockaddr_in6 *)&conn->addr.to)->sin6_port = hdr_v2->addr.ip6.dst_port;
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conn->flags |= CO_FL_ADDR_FROM_SET | CO_FL_ADDR_TO_SET;
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break;
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}
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/* unsupported protocol, keep local connection address */
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break;
|
|
case 0x00: /* LOCAL command */
|
|
/* keep local connection address for LOCAL */
|
|
break;
|
|
default:
|
|
goto bad_header; /* not a supported command */
|
|
}
|
|
|
|
trash.len = PP2_HEADER_LEN + ntohs(hdr_v2->len);
|
|
goto eat_header;
|
|
|
|
eat_header:
|
|
/* remove the PROXY line from the request. For this we re-read the
|
|
* exact line at once. If we don't get the exact same result, we
|
|
* fail.
|
|
*/
|
|
do {
|
|
int len2 = recv(conn->t.sock.fd, trash.str, trash.len, 0);
|
|
if (len2 < 0 && errno == EINTR)
|
|
continue;
|
|
if (len2 != trash.len)
|
|
goto recv_abort;
|
|
} while (0);
|
|
|
|
conn->flags &= ~flag;
|
|
return 1;
|
|
|
|
missing:
|
|
/* Missing data. Since we're using MSG_PEEK, we can only poll again if
|
|
* we have not read anything. Otherwise we need to fail because we won't
|
|
* be able to poll anymore.
|
|
*/
|
|
conn->err_code = CO_ER_PRX_TRUNCATED;
|
|
goto fail;
|
|
|
|
bad_header:
|
|
/* This is not a valid proxy protocol header */
|
|
conn->err_code = CO_ER_PRX_BAD_HDR;
|
|
goto fail;
|
|
|
|
recv_abort:
|
|
conn->err_code = CO_ER_PRX_ABORT;
|
|
conn->flags |= CO_FL_SOCK_RD_SH | CO_FL_SOCK_WR_SH;
|
|
goto fail;
|
|
|
|
fail:
|
|
__conn_sock_stop_both(conn);
|
|
conn->flags |= CO_FL_ERROR;
|
|
return 0;
|
|
}
|
|
|
|
int make_proxy_line(char *buf, int buf_len, struct server *srv, struct connection *remote)
|
|
{
|
|
int ret = 0;
|
|
|
|
if (srv && (srv->pp_opts & SRV_PP_V2)) {
|
|
ret = make_proxy_line_v2(buf, buf_len, srv, remote);
|
|
}
|
|
else {
|
|
if (remote)
|
|
ret = make_proxy_line_v1(buf, buf_len, &remote->addr.from, &remote->addr.to);
|
|
else
|
|
ret = make_proxy_line_v1(buf, buf_len, NULL, NULL);
|
|
}
|
|
|
|
return ret;
|
|
}
|
|
|
|
/* Makes a PROXY protocol line from the two addresses. The output is sent to
|
|
* buffer <buf> for a maximum size of <buf_len> (including the trailing zero).
|
|
* It returns the number of bytes composing this line (including the trailing
|
|
* LF), or zero in case of failure (eg: not enough space). It supports TCP4,
|
|
* TCP6 and "UNKNOWN" formats. If any of <src> or <dst> is null, UNKNOWN is
|
|
* emitted as well.
|
|
*/
|
|
int make_proxy_line_v1(char *buf, int buf_len, struct sockaddr_storage *src, struct sockaddr_storage *dst)
|
|
{
|
|
int ret = 0;
|
|
|
|
if (src && dst && src->ss_family == dst->ss_family && src->ss_family == AF_INET) {
|
|
ret = snprintf(buf + ret, buf_len - ret, "PROXY TCP4 ");
|
|
if (ret >= buf_len)
|
|
return 0;
|
|
|
|
/* IPv4 src */
|
|
if (!inet_ntop(src->ss_family, &((struct sockaddr_in *)src)->sin_addr, buf + ret, buf_len - ret))
|
|
return 0;
|
|
|
|
ret += strlen(buf + ret);
|
|
if (ret >= buf_len)
|
|
return 0;
|
|
|
|
buf[ret++] = ' ';
|
|
|
|
/* IPv4 dst */
|
|
if (!inet_ntop(dst->ss_family, &((struct sockaddr_in *)dst)->sin_addr, buf + ret, buf_len - ret))
|
|
return 0;
|
|
|
|
ret += strlen(buf + ret);
|
|
if (ret >= buf_len)
|
|
return 0;
|
|
|
|
/* source and destination ports */
|
|
ret += snprintf(buf + ret, buf_len - ret, " %u %u\r\n",
|
|
ntohs(((struct sockaddr_in *)src)->sin_port),
|
|
ntohs(((struct sockaddr_in *)dst)->sin_port));
|
|
if (ret >= buf_len)
|
|
return 0;
|
|
}
|
|
else if (src && dst && src->ss_family == dst->ss_family && src->ss_family == AF_INET6) {
|
|
ret = snprintf(buf + ret, buf_len - ret, "PROXY TCP6 ");
|
|
if (ret >= buf_len)
|
|
return 0;
|
|
|
|
/* IPv6 src */
|
|
if (!inet_ntop(src->ss_family, &((struct sockaddr_in6 *)src)->sin6_addr, buf + ret, buf_len - ret))
|
|
return 0;
|
|
|
|
ret += strlen(buf + ret);
|
|
if (ret >= buf_len)
|
|
return 0;
|
|
|
|
buf[ret++] = ' ';
|
|
|
|
/* IPv6 dst */
|
|
if (!inet_ntop(dst->ss_family, &((struct sockaddr_in6 *)dst)->sin6_addr, buf + ret, buf_len - ret))
|
|
return 0;
|
|
|
|
ret += strlen(buf + ret);
|
|
if (ret >= buf_len)
|
|
return 0;
|
|
|
|
/* source and destination ports */
|
|
ret += snprintf(buf + ret, buf_len - ret, " %u %u\r\n",
|
|
ntohs(((struct sockaddr_in6 *)src)->sin6_port),
|
|
ntohs(((struct sockaddr_in6 *)dst)->sin6_port));
|
|
if (ret >= buf_len)
|
|
return 0;
|
|
}
|
|
else {
|
|
/* unknown family combination */
|
|
ret = snprintf(buf, buf_len, "PROXY UNKNOWN\r\n");
|
|
if (ret >= buf_len)
|
|
return 0;
|
|
}
|
|
return ret;
|
|
}
|
|
|
|
#ifdef USE_OPENSSL
|
|
static int make_tlv(char *dest, int dest_len, char type, uint16_t length, char *value)
|
|
{
|
|
struct tlv *tlv;
|
|
|
|
if (!dest || (length + sizeof(*tlv) > dest_len))
|
|
return 0;
|
|
|
|
tlv = (struct tlv *)dest;
|
|
|
|
tlv->type = type;
|
|
tlv->length_hi = length >> 8;
|
|
tlv->length_lo = length & 0x00ff;
|
|
memcpy(tlv->value, value, length);
|
|
return length + sizeof(*tlv);
|
|
}
|
|
#endif
|
|
|
|
int make_proxy_line_v2(char *buf, int buf_len, struct server *srv, struct connection *remote)
|
|
{
|
|
const char pp2_signature[] = PP2_SIGNATURE;
|
|
int ret = 0;
|
|
struct proxy_hdr_v2 *hdr = (struct proxy_hdr_v2 *)buf;
|
|
struct sockaddr_storage null_addr = {0};
|
|
struct sockaddr_storage *src = &null_addr;
|
|
struct sockaddr_storage *dst = &null_addr;
|
|
#ifdef USE_OPENSSL
|
|
int tlv_len = 0;
|
|
char *value = NULL;
|
|
struct tlv_ssl *tlv;
|
|
int ssl_tlv_len = 0;
|
|
#endif
|
|
|
|
if (buf_len < PP2_HEADER_LEN)
|
|
return 0;
|
|
memcpy(hdr->sig, pp2_signature, PP2_SIGNATURE_LEN);
|
|
|
|
if (remote) {
|
|
src = &remote->addr.from;
|
|
dst = &remote->addr.to;
|
|
}
|
|
if (src && dst && src->ss_family == dst->ss_family && src->ss_family == AF_INET) {
|
|
if (buf_len < PP2_HDR_LEN_INET)
|
|
return 0;
|
|
hdr->ver_cmd = PP2_VERSION | PP2_CMD_PROXY;
|
|
hdr->fam = PP2_FAM_INET | PP2_TRANS_STREAM;
|
|
hdr->addr.ip4.src_addr = ((struct sockaddr_in *)src)->sin_addr.s_addr;
|
|
hdr->addr.ip4.dst_addr = ((struct sockaddr_in *)dst)->sin_addr.s_addr;
|
|
hdr->addr.ip4.src_port = ((struct sockaddr_in *)src)->sin_port;
|
|
hdr->addr.ip4.dst_port = ((struct sockaddr_in *)dst)->sin_port;
|
|
ret = PP2_HDR_LEN_INET;
|
|
}
|
|
else if (src && dst && src->ss_family == dst->ss_family && src->ss_family == AF_INET6) {
|
|
if (buf_len < PP2_HDR_LEN_INET6)
|
|
return 0;
|
|
hdr->ver_cmd = PP2_VERSION | PP2_CMD_PROXY;
|
|
hdr->fam = PP2_FAM_INET6 | PP2_TRANS_STREAM;
|
|
memcpy(hdr->addr.ip6.src_addr, &((struct sockaddr_in6 *)src)->sin6_addr, 16);
|
|
memcpy(hdr->addr.ip6.dst_addr, &((struct sockaddr_in6 *)dst)->sin6_addr, 16);
|
|
hdr->addr.ip6.src_port = ((struct sockaddr_in6 *)src)->sin6_port;
|
|
hdr->addr.ip6.dst_port = ((struct sockaddr_in6 *)dst)->sin6_port;
|
|
ret = PP2_HDR_LEN_INET6;
|
|
}
|
|
else {
|
|
if (buf_len < PP2_HDR_LEN_UNSPEC)
|
|
return 0;
|
|
hdr->ver_cmd = PP2_VERSION | PP2_CMD_LOCAL;
|
|
hdr->fam = PP2_FAM_UNSPEC | PP2_TRANS_UNSPEC;
|
|
ret = PP2_HDR_LEN_UNSPEC;
|
|
}
|
|
|
|
#ifdef USE_OPENSSL
|
|
if (srv->pp_opts & SRV_PP_V2_SSL) {
|
|
if ((buf_len - ret) < sizeof(struct tlv_ssl))
|
|
return 0;
|
|
tlv = (struct tlv_ssl *)&buf[ret];
|
|
memset(tlv, 0, sizeof(struct tlv_ssl));
|
|
ssl_tlv_len += sizeof(struct tlv_ssl);
|
|
tlv->tlv.type = PP2_TYPE_SSL;
|
|
if (ssl_sock_is_ssl(remote)) {
|
|
tlv->client |= PP2_CLIENT_SSL;
|
|
value = ssl_sock_get_version(remote);
|
|
if (value) {
|
|
tlv_len = make_tlv(&buf[ret+ssl_tlv_len], (buf_len-ret-ssl_tlv_len), PP2_TYPE_SSL_VERSION, strlen(value), value);
|
|
ssl_tlv_len += tlv_len;
|
|
}
|
|
if (ssl_sock_get_cert_used(remote)) {
|
|
tlv->client |= PP2_CLIENT_CERT;
|
|
tlv->verify = htonl(ssl_sock_get_verify_result(remote));
|
|
}
|
|
if (srv->pp_opts & SRV_PP_V2_SSL_CN) {
|
|
if (ssl_sock_get_remote_common_name(remote, &trash) > 0) {
|
|
tlv_len = make_tlv(&buf[ret+ssl_tlv_len], (buf_len - ret - ssl_tlv_len), PP2_TYPE_SSL_CN, trash.len, trash.str);
|
|
ssl_tlv_len += tlv_len;
|
|
}
|
|
}
|
|
}
|
|
tlv->tlv.length_hi = (uint16_t)(ssl_tlv_len - sizeof(struct tlv)) >> 8;
|
|
tlv->tlv.length_lo = (uint16_t)(ssl_tlv_len - sizeof(struct tlv)) & 0x00ff;
|
|
ret += ssl_tlv_len;
|
|
}
|
|
#endif
|
|
|
|
hdr->len = htons((uint16_t)(ret - PP2_HEADER_LEN));
|
|
|
|
return ret;
|
|
}
|