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When a new frontend connection is instantiated, actconn global counter is incremented. If global maxconn value is reached, the connection is cancelled. This ensures that system limit are under control. Prior to this patch, the atomic check/increment operations were done directly into listener_accept(). Move them in a dedicated function increment_actconn() in frontend module. This will be useful when QUIC connections will be counted in actconn counter.
340 lines
9.8 KiB
C
340 lines
9.8 KiB
C
/*
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* Frontend variables and functions.
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*
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* Copyright 2000-2013 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 <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <sys/socket.h>
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#include <sys/stat.h>
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#include <sys/types.h>
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#include <netinet/tcp.h>
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#include <haproxy/acl.h>
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#include <haproxy/api.h>
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#include <haproxy/arg.h>
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#include <haproxy/chunk.h>
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#include <haproxy/connection.h>
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#include <haproxy/fd.h>
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#include <haproxy/frontend.h>
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#include <haproxy/global.h>
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#include <haproxy/http_ana.h>
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#include <haproxy/log.h>
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#include <haproxy/proto_tcp.h>
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#include <haproxy/proxy.h>
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#include <haproxy/sample.h>
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#include <haproxy/sc_strm.h>
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#include <haproxy/stream.h>
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#include <haproxy/task.h>
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#include <haproxy/ticks.h>
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#include <haproxy/tools.h>
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/* Finish a stream accept() for a proxy (TCP or HTTP). It returns a negative
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* value in case of a critical failure which must cause the listener to be
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* disabled, a positive or null value in case of success.
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*/
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int frontend_accept(struct stream *s)
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{
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const struct sockaddr_storage *src, *dst;
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struct session *sess = s->sess;
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struct connection *conn = objt_conn(sess->origin);
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struct listener *l = sess->listener;
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struct proxy *fe = sess->fe;
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if ((fe->mode == PR_MODE_TCP || fe->mode == PR_MODE_HTTP)
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&& (!LIST_ISEMPTY(&fe->loggers))) {
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if (likely(!LIST_ISEMPTY(&fe->logformat))) {
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/* we have the client ip */
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if (s->logs.logwait & LW_CLIP)
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if (!(s->logs.logwait &= ~(LW_CLIP|LW_INIT)))
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s->do_log(s);
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}
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else if (conn) {
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src = sc_src(s->scf);
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if (!src)
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send_log(fe, LOG_INFO, "Connect from unknown source to listener %d (%s/%s)\n",
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l->luid, fe->id, (fe->mode == PR_MODE_HTTP) ? "HTTP" : "TCP");
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else {
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char pn[INET6_ADDRSTRLEN], sn[INET6_ADDRSTRLEN];
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int port;
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switch (addr_to_str(src, pn, sizeof(pn))) {
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case AF_INET:
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case AF_INET6:
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dst = sc_dst(s->scf);
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if (dst) {
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addr_to_str(dst, sn, sizeof(sn));
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port = get_host_port(dst);
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} else {
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strlcpy2(sn, "undetermined address", sizeof(sn));
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port = 0;
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}
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send_log(fe, LOG_INFO, "Connect from %s:%d to %s:%d (%s/%s)\n",
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pn, get_host_port(src),
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sn, port,
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fe->id, (fe->mode == PR_MODE_HTTP) ? "HTTP" : "TCP");
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break;
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case AF_UNIX:
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/* UNIX socket, only the destination is known */
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send_log(fe, LOG_INFO, "Connect to unix:%d (%s/%s)\n",
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l->luid,
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fe->id, (fe->mode == PR_MODE_HTTP) ? "HTTP" : "TCP");
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break;
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}
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}
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}
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}
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if (unlikely((global.mode & MODE_DEBUG) && conn &&
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(!(global.mode & MODE_QUIET) || (global.mode & MODE_VERBOSE)))) {
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char pn[INET6_ADDRSTRLEN];
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char alpn[16] = "<none>";
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const char *alpn_str = NULL;
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int alpn_len;
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/* try to report the ALPN value when available (also works for NPN) */
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if (conn == sc_conn(s->scf)) {
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if (conn_get_alpn(conn, &alpn_str, &alpn_len) && alpn_str) {
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int len = MIN(alpn_len, sizeof(alpn) - 1);
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memcpy(alpn, alpn_str, len);
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alpn[len] = 0;
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}
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}
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src = sc_src(s->scf);
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if (!src) {
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chunk_printf(&trash, "%08x:%s.accept(%04x)=%04x from [listener:%d] ALPN=%s\n",
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s->uniq_id, fe->id, (unsigned short)l->rx.fd, (unsigned short)conn->handle.fd,
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l->luid, alpn);
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}
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else switch (addr_to_str(src, pn, sizeof(pn))) {
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case AF_INET:
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case AF_INET6:
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chunk_printf(&trash, "%08x:%s.accept(%04x)=%04x from [%s:%d] ALPN=%s\n",
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s->uniq_id, fe->id, (unsigned short)l->rx.fd, (unsigned short)conn->handle.fd,
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pn, get_host_port(src), alpn);
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break;
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case AF_UNIX:
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/* UNIX socket, only the destination is known */
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chunk_printf(&trash, "%08x:%s.accept(%04x)=%04x from [unix:%d] ALPN=%s\n",
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s->uniq_id, fe->id, (unsigned short)l->rx.fd, (unsigned short)conn->handle.fd,
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l->luid, alpn);
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break;
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}
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DISGUISE(write(1, trash.area, trash.data));
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}
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if (fe->mode == PR_MODE_HTTP)
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s->scf->flags |= SC_FL_RCV_ONCE; /* one read is usually enough */
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if (unlikely(fe->nb_req_cap > 0)) {
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if ((s->req_cap = pool_zalloc(fe->req_cap_pool)) == NULL)
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goto out_return; /* no memory */
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}
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if (unlikely(fe->nb_rsp_cap > 0)) {
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if ((s->res_cap = pool_zalloc(fe->rsp_cap_pool)) == NULL)
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goto out_free_reqcap; /* no memory */
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}
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if ((fe->http_needed || IS_HTX_STRM(s)) && !http_create_txn(s))
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goto out_free_rspcap;
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/* everything's OK, let's go on */
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return 1;
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/* Error unrolling */
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out_free_rspcap:
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pool_free(fe->rsp_cap_pool, s->res_cap);
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out_free_reqcap:
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pool_free(fe->req_cap_pool, s->req_cap);
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out_return:
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return -1;
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}
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/* Increment current active connection counter. This ensures that global
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* maxconn is not reached or exceeded. This must be done for every new frontend
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* connection allocation.
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*
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* Returns the new actconn global value. If maxconn reached or exceeded, 0 is
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* returned : the connection allocation should be cancelled.
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*/
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int increment_actconn()
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{
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unsigned int count, next_actconn;
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do {
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count = actconn;
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if (unlikely(count >= global.maxconn)) {
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/* maxconn reached */
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next_actconn = 0;
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goto end;
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}
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/* try to increment actconn */
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next_actconn = count + 1;
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} while (!_HA_ATOMIC_CAS(&actconn, (int *)(&count), next_actconn) && __ha_cpu_relax());
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end:
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return next_actconn;
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}
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/************************************************************************/
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/* All supported sample and ACL keywords must be declared here. */
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/************************************************************************/
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/* set temp integer to the id of the frontend */
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static int
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smp_fetch_fe_id(const struct arg *args, struct sample *smp, const char *kw, void *private)
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{
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smp->flags = SMP_F_VOL_SESS;
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smp->data.type = SMP_T_SINT;
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smp->data.u.sint = smp->sess->fe->uuid;
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return 1;
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}
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/* set string to the name of the frontend */
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static int
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smp_fetch_fe_name(const struct arg *args, struct sample *smp, const char *kw, void *private)
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{
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smp->data.u.str.area = (char *)smp->sess->fe->id;
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if (!smp->data.u.str.area)
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return 0;
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smp->data.type = SMP_T_STR;
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smp->flags = SMP_F_CONST;
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smp->data.u.str.data = strlen(smp->data.u.str.area);
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return 1;
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}
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/* set string to the name of the default backend */
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static int
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smp_fetch_fe_defbe(const struct arg *args, struct sample *smp, const char *kw, void *private)
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{
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if (!smp->sess->fe->defbe.be)
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return 0;
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smp->data.u.str.area = (char *)smp->sess->fe->defbe.be->id;
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if (!smp->data.u.str.area)
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return 0;
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smp->data.type = SMP_T_STR;
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smp->flags = SMP_F_CONST;
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smp->data.u.str.data = strlen(smp->data.u.str.area);
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return 1;
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}
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/* set temp integer to the number of HTTP requests per second reaching the frontend.
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* Accepts exactly 1 argument. Argument is a frontend, other types will cause
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* an undefined behaviour.
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*/
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static int
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smp_fetch_fe_req_rate(const struct arg *args, struct sample *smp, const char *kw, void *private)
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{
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struct proxy *px = args->data.prx;
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if (px == NULL)
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return 0;
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if (px->cap & PR_CAP_DEF)
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px = smp->px;
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smp->flags = SMP_F_VOL_TEST;
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smp->data.type = SMP_T_SINT;
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smp->data.u.sint = read_freq_ctr(&px->fe_req_per_sec);
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return 1;
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}
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/* set temp integer to the number of connections per second reaching the frontend.
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* Accepts exactly 1 argument. Argument is a frontend, other types will cause
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* an undefined behaviour.
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*/
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static int
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smp_fetch_fe_sess_rate(const struct arg *args, struct sample *smp, const char *kw, void *private)
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{
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struct proxy *px = args->data.prx;
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if (px == NULL)
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return 0;
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if (px->cap & PR_CAP_DEF)
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px = smp->px;
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smp->flags = SMP_F_VOL_TEST;
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smp->data.type = SMP_T_SINT;
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smp->data.u.sint = read_freq_ctr(&px->fe_sess_per_sec);
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return 1;
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}
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/* set temp integer to the number of concurrent connections on the frontend
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* Accepts exactly 1 argument. Argument is a frontend, other types will cause
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* an undefined behaviour.
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*/
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static int
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smp_fetch_fe_conn(const struct arg *args, struct sample *smp, const char *kw, void *private)
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{
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struct proxy *px = args->data.prx;
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if (px == NULL)
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return 0;
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if (px->cap & PR_CAP_DEF)
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px = smp->px;
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smp->flags = SMP_F_VOL_TEST;
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smp->data.type = SMP_T_SINT;
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smp->data.u.sint = px->feconn;
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return 1;
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}
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static int
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smp_fetch_fe_client_timeout(const struct arg *args, struct sample *smp, const char *km, void *private)
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{
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smp->flags = SMP_F_VOL_TXN;
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smp->data.type = SMP_T_SINT;
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smp->data.u.sint = TICKS_TO_MS(smp->sess->fe->timeout.client);
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return 1;
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}
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/* Note: must not be declared <const> as its list will be overwritten.
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* Please take care of keeping this list alphabetically sorted.
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*/
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static struct sample_fetch_kw_list smp_kws = {ILH, {
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{ "fe_client_timeout", smp_fetch_fe_client_timeout, 0, NULL, SMP_T_SINT, SMP_USE_FTEND, },
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{ "fe_conn", smp_fetch_fe_conn, ARG1(1,FE), NULL, SMP_T_SINT, SMP_USE_INTRN, },
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{ "fe_defbe", smp_fetch_fe_defbe, 0, NULL, SMP_T_STR, SMP_USE_FTEND, },
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{ "fe_id", smp_fetch_fe_id, 0, NULL, SMP_T_SINT, SMP_USE_FTEND, },
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{ "fe_name", smp_fetch_fe_name, 0, NULL, SMP_T_STR, SMP_USE_FTEND, },
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{ "fe_req_rate", smp_fetch_fe_req_rate, ARG1(1,FE), NULL, SMP_T_SINT, SMP_USE_INTRN, },
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{ "fe_sess_rate", smp_fetch_fe_sess_rate, ARG1(1,FE), NULL, SMP_T_SINT, SMP_USE_INTRN, },
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{ /* END */ },
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}};
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INITCALL1(STG_REGISTER, sample_register_fetches, &smp_kws);
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/* Note: must not be declared <const> as its list will be overwritten.
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* Please take care of keeping this list alphabetically sorted.
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*/
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static struct acl_kw_list acl_kws = {ILH, {
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{ /* END */ },
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}};
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INITCALL1(STG_REGISTER, acl_register_keywords, &acl_kws);
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/*
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* Local variables:
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* c-indent-level: 8
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* c-basic-offset: 8
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* End:
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*/
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