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CANopenNode/socketCAN/CO_Linux_threads.c
Janez c1a30b8a03 Some style corrections
- add CO_fifo_st enumerator for use in CO_fifo_cpyTok2xx functions.
- 309/CO_gateway_ascii: add x8 to x64 nonstandard data types
- example compiles now
- Fix "unused argument" warnings in socketCAN
2020-05-15 15:52:22 +02:00

568 lines
18 KiB
C

/*
* Helper functions for implementing CANopen threads in Linux
*
* @file Linux_threads.c
* @author Janez Paternoster
* @author Martin Wagner
* @copyright 2004 - 2015 Janez Paternoster
* @copyright 2018 - 2020 Neuberger Gebaeudeautomation GmbH
*
*
* This file is part of CANopenNode, an opensource CANopen Stack.
* Project home page is <https://github.com/CANopenNode/CANopenNode>.
* For more information on CANopen see <http://www.can-cia.org/>.
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
/* following macro is necessary for accept4() function call (sockets) */
#define _GNU_SOURCE
#include "CANopen.h"
#include "CO_Linux_threads.h"
#include <stdlib.h>
#include <unistd.h>
#include <time.h>
#include <sys/epoll.h>
#include <sys/eventfd.h>
#include <sys/timerfd.h>
#include <fcntl.h>
#if (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII
#include <stdio.h>
#include <ctype.h>
#include <limits.h>
#include <sys/socket.h>
#include <sys/un.h>
#include <netinet/in.h>
#endif /* (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII */
#ifndef LISTEN_BACKLOG
#define LISTEN_BACKLOG 50
#endif
/* Helper function - get monotonic clock time in microseconds */
static inline uint64_t CO_LinuxThreads_clock_gettime_us(void)
{
struct timespec ts;
(void)clock_gettime(CLOCK_MONOTONIC, &ts);
return ts.tv_sec * 1000000 + ts.tv_nsec / 1000;
}
#if (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII
/* write response string from gateway-ascii object */
static size_t gtwa_write_response(void *object, const char *buf, size_t count) {
int* fd = (int *)object;
size_t nWritten = 0;
if (fd != NULL && *fd >= 0) {
ssize_t n = write(*fd, (const void *)buf, count);
if (n > 0) {
nWritten = (size_t)n;
}
else {
log_printf(LOG_DEBUG, DBG_ERRNO, "write(gtwa_response)");
}
}
return nWritten;
}
#endif /* (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII */
/* Mainline thread - Blocking (threadMainWait) ********************************/
static struct {
uint64_t start; /* time value CO_process() was called last time in us */
int epoll_fd; /* epoll file descriptor */
int event_fd; /* notification event file descriptor */
int timer_fd; /* interval timer file descriptor */
uint32_t interval_us; /* interval for threadMainWait_process */
struct itimerspec tm; /* structure for timer configuration */
#if (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII
int32_t commandInterface; /* command interface type or tcp port */
uint32_t socketTimeout_us;
uint32_t socketTimeoutTmr_us;
char *localSocketPath;/* path in case of local socket */
int gtwa_fdSocket; /* gateway socket file descriptor */
int gtwa_fd; /* gateway io stream file descriptor */
bool_t freshCommand;
#endif
} tmw;
static void threadMainWait_callback(void *object)
{
(void)object;
/* send event to wake threadMainWait_process() */
uint64_t u = 1;
ssize_t s;
s = write(tmw.event_fd, &u, sizeof(uint64_t));
if (s != sizeof(uint64_t)) {
log_printf(LOG_DEBUG, DBG_ERRNO, "write()");
}
}
void threadMainWait_init(void)
{
/* Configure callback functions */
CO_NMT_initCallbackPre(CO->NMT, NULL, threadMainWait_callback);
CO_SDO_initCallbackPre(CO->SDO[0], NULL, threadMainWait_callback);
CO_EM_initCallbackPre(CO->em, NULL, threadMainWait_callback);
CO_HBconsumer_initCallbackPre(CO->HBcons, NULL, threadMainWait_callback);
#if CO_NO_SDO_CLIENT != 0
CO_SDOclient_initCallbackPre(CO->SDOclient[0], NULL,
threadMainWait_callback);
#endif
#if (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII
CO_GTWA_initRead(CO->gtwa, gtwa_write_response, (void *)&tmw.gtwa_fd);
tmw.freshCommand = true;
#endif
/* Initial value for time calculation */
tmw.start = CO_LinuxThreads_clock_gettime_us();
}
void threadMainWait_initOnce(uint32_t interval_us,
int32_t commandInterface,
uint32_t socketTimeout_ms,
char *localSocketPath)
{
int ret;
struct epoll_event ev;
/* Configure epoll for mainline */
tmw.epoll_fd = epoll_create(1);
if (tmw.epoll_fd < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "epoll_create()");
exit(EXIT_FAILURE);
}
/* Configure eventfd for notifications and add it to epoll */
tmw.event_fd = eventfd(0, EFD_NONBLOCK);
if (tmw.event_fd < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "eventfd()");
exit(EXIT_FAILURE);
}
ev.events = EPOLLIN;
ev.data.fd = tmw.event_fd;
ret = epoll_ctl(tmw.epoll_fd, EPOLL_CTL_ADD, ev.data.fd, &ev);
if (ret < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "epoll_ctl(event_fd)");
exit(EXIT_FAILURE);
}
/* Configure timer for interval_us and add it to epoll */
tmw.timer_fd = timerfd_create(CLOCK_MONOTONIC, TFD_NONBLOCK);
if (tmw.timer_fd < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "timerfd_create()");
exit(EXIT_FAILURE);
}
tmw.interval_us = interval_us;
tmw.tm.it_interval.tv_sec = interval_us / 1000000;
tmw.tm.it_interval.tv_nsec = (interval_us % 1000000) * 1000;
tmw.tm.it_value.tv_sec = 0;
tmw.tm.it_value.tv_nsec = 1;
ret = timerfd_settime(tmw.timer_fd, 0, &tmw.tm, NULL);
if (ret < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "timerfd_settime");
exit(EXIT_FAILURE);
}
ev.events = EPOLLIN;
ev.data.fd = tmw.timer_fd;
ret = epoll_ctl(tmw.epoll_fd, EPOLL_CTL_ADD, ev.data.fd, &ev);
if (ret < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "epoll_ctl(timer_fd)");
exit(EXIT_FAILURE);
}
#if (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII
/* Configure gateway-ascii command interface (CiA309-3) */
tmw.commandInterface = commandInterface;
tmw.socketTimeout_us = (socketTimeout_ms < (UINT_MAX / 1000 - 1000000)) ?
socketTimeout_ms * 1000 : (UINT_MAX - 1000000);
tmw.gtwa_fdSocket = -1;
tmw.gtwa_fd = -1;
if (commandInterface == CO_COMMAND_IF_STDIO) {
tmw.gtwa_fd = STDIN_FILENO;
log_printf(LOG_INFO, DBG_COMMAND_STDIO_INFO);
}
else if (commandInterface == CO_COMMAND_IF_LOCAL_SOCKET) {
struct sockaddr_un addr;
tmw.localSocketPath = localSocketPath;
/* Create, bind and listen local socket */
tmw.gtwa_fdSocket = socket(AF_UNIX, SOCK_STREAM | SOCK_NONBLOCK, 0);
if(tmw.gtwa_fdSocket < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "socket(local)");
exit(EXIT_FAILURE);
}
memset(&addr, 0, sizeof(struct sockaddr_un));
addr.sun_family = AF_UNIX;
strncpy(addr.sun_path, localSocketPath, sizeof(addr.sun_path) - 1);
ret = bind(tmw.gtwa_fdSocket, (struct sockaddr *) &addr,
sizeof(struct sockaddr_un));
if(ret < 0) {
log_printf(LOG_CRIT, DBG_COMMAND_LOCAL_BIND, localSocketPath);
exit(EXIT_FAILURE);
}
ret = listen(tmw.gtwa_fdSocket, LISTEN_BACKLOG);
if(ret < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "listen(local)");
exit(EXIT_FAILURE);
}
log_printf(LOG_INFO, DBG_COMMAND_LOCAL_INFO, localSocketPath);
}
else if (commandInterface >= CO_COMMAND_IF_TCP_SOCKET_MIN &&
commandInterface <= CO_COMMAND_IF_TCP_SOCKET_MAX
) {
struct sockaddr_in addr;
const int yes = 1;
/* Create, bind and listen socket */
tmw.gtwa_fdSocket = socket(AF_INET, SOCK_STREAM | SOCK_NONBLOCK, 0);
if(tmw.gtwa_fdSocket < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "socket(tcp)");
exit(EXIT_FAILURE);
}
setsockopt(tmw.gtwa_fdSocket, SOL_SOCKET, SO_REUSEADDR,
&yes, sizeof(int));
memset(&addr, 0, sizeof(struct sockaddr_in));
addr.sin_family = AF_INET;
addr.sin_port = htons(commandInterface);
addr.sin_addr.s_addr = INADDR_ANY;
ret = bind(tmw.gtwa_fdSocket, (struct sockaddr *) &addr,
sizeof(struct sockaddr_in));
if(ret < 0) {
log_printf(LOG_CRIT, DBG_COMMAND_TCP_BIND, commandInterface);
exit(EXIT_FAILURE);
}
ret = listen(tmw.gtwa_fdSocket, LISTEN_BACKLOG);
if(ret < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "listen(tcp)");
exit(EXIT_FAILURE);
}
log_printf(LOG_INFO, DBG_COMMAND_TCP_INFO, commandInterface);
}
else {
tmw.commandInterface = CO_COMMAND_IF_DISABLED;
}
if (tmw.gtwa_fd >= 0) {
ev.events = EPOLLIN;
ev.data.fd = tmw.gtwa_fd;
ret = epoll_ctl(tmw.epoll_fd, EPOLL_CTL_ADD, ev.data.fd, &ev);
if (ret < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "epoll_ctl(gtwa_fd)");
exit(EXIT_FAILURE);
}
}
if (tmw.gtwa_fdSocket >= 0) {
/* prepare epool for listening for new socket connection. After
* connection will be accepted, fd for io operation will be defined. */
ev.events = EPOLLIN | EPOLLONESHOT;
ev.data.fd = tmw.gtwa_fdSocket;
ret = epoll_ctl(tmw.epoll_fd, EPOLL_CTL_ADD, ev.data.fd, &ev);
if (ret < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "epoll_ctl(gtwa_fdSocket)");
exit(EXIT_FAILURE);
}
}
#endif /* (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII */
}
void threadMainWait_close(void)
{
CO_NMT_initCallbackPre(CO->NMT, NULL, NULL);
CO_SDO_initCallbackPre(CO->SDO[0], NULL, NULL);
CO_EM_initCallbackPre(CO->em, NULL, NULL);
CO_HBconsumer_initCallbackPre(CO->HBcons, NULL, NULL);
close(tmw.epoll_fd);
tmw.epoll_fd = -1;
#if (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII
if (tmw.commandInterface == CO_COMMAND_IF_LOCAL_SOCKET) {
if (tmw.gtwa_fd > 0) {
close(tmw.gtwa_fd);
}
close(tmw.gtwa_fdSocket);
/* Remove local socket file from filesystem. */
if(remove(tmw.localSocketPath) < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "remove(local)");
}
}
else if (tmw.commandInterface >= CO_COMMAND_IF_TCP_SOCKET_MIN) {
if (tmw.gtwa_fd > 0) {
close(tmw.gtwa_fd);
}
close(tmw.gtwa_fdSocket);
}
tmw.gtwa_fd = -1;
tmw.gtwa_fdSocket = -1;
#endif /* (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII */
close(tmw.event_fd);
tmw.event_fd = -1;
close(tmw.timer_fd);
tmw.timer_fd = -1;
}
#if (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII
static inline void socetAcceptEnableForEpoll(void) {
struct epoll_event ev;
int ret;
ev.events = EPOLLIN | EPOLLONESHOT;
ev.data.fd = tmw.gtwa_fdSocket;
ret = epoll_ctl(tmw.epoll_fd, EPOLL_CTL_MOD, ev.data.fd, &ev);
if (ret < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "epoll_ctl(gtwa_fdSocket)");
}
}
#endif
uint32_t threadMainWait_process(CO_NMT_reset_cmd_t *reset)
{
int ready;
struct epoll_event ev;
uint64_t ull;
ssize_t s;
uint32_t diff, timerNext_us;
/* wait for event or timer expiration and read data from file descriptors */
ready = epoll_wait(tmw.epoll_fd, &ev, 1, -1);
if (ready != 1 && errno != EINTR) {
log_printf(LOG_DEBUG, DBG_ERRNO, "epoll_wait");
}
else if (ev.data.fd == tmw.event_fd) {
s = read(tmw.event_fd, &ull, sizeof(uint64_t));
if (s != sizeof(uint64_t)) {
log_printf(LOG_DEBUG, DBG_ERRNO, "read(event_fd)");
}
}
else if (ev.data.fd == tmw.timer_fd) {
s = read(tmw.timer_fd, &ull, sizeof(uint64_t));
if (s != sizeof(uint64_t) && errno != EAGAIN) {
log_printf(LOG_DEBUG, DBG_ERRNO, "read(timer_fd)");
}
}
#if (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII
else if (ev.data.fd == tmw.gtwa_fdSocket) {
bool_t fail = false;
tmw.gtwa_fd = accept4(tmw.gtwa_fdSocket, NULL, NULL, SOCK_NONBLOCK);
if (tmw.gtwa_fd < 0) {
fail = true;
if (errno != EAGAIN && errno != EWOULDBLOCK) {
log_printf(LOG_CRIT, DBG_ERRNO, "accept(gtwa_fdSocket)");
}
}
else {
int ret;
/* add fd to epoll */
struct epoll_event ev2;
ev2.events = EPOLLIN;
ev2.data.fd = tmw.gtwa_fd;
ret = epoll_ctl(tmw.epoll_fd, EPOLL_CTL_ADD, ev2.data.fd, &ev2);
if (ret < 0) {
fail = true;
log_printf(LOG_CRIT, DBG_ERRNO, "epoll_ctl(add, gtwa_fd)");
}
tmw.socketTimeoutTmr_us = 0;
}
if (fail) {
socetAcceptEnableForEpoll();
}
}
else if (ev.data.fd == tmw.gtwa_fd) {
char buf[CO_CONFIG_GTWA_COMM_BUF_SIZE];
size_t space = CO_GTWA_write_getSpace(CO->gtwa);
s = read(tmw.gtwa_fd, buf, space);
if (s < 0 && errno != EAGAIN) {
log_printf(LOG_DEBUG, DBG_ERRNO, "read(gtwa_fd)");
}
else if (s >= 0) {
if (tmw.commandInterface == CO_COMMAND_IF_STDIO) {
/* simplify command interface on stdio, make hard to type
* sequence optional, prepend "[0] " to string, if missing */
const char sequence[] = "[0] ";
bool_t closed = (buf[s-1] == '\n'); /* is command closed? */
if (buf[0] != '[' && (space - s) >= strlen(sequence)
&& isgraph(buf[0]) && buf[0] != '#'
&& closed && tmw.freshCommand
) {
CO_GTWA_write(CO->gtwa, sequence, strlen(sequence));
}
tmw.freshCommand = closed;
CO_GTWA_write(CO->gtwa, buf, s);
}
else { /* socket, local or tcp */
if (s == 0) {
int ret;
/* EOF received, close connection and enable socket accept*/
ret = epoll_ctl(tmw.epoll_fd, EPOLL_CTL_DEL,
tmw.gtwa_fd, NULL);
if (ret < 0) {
log_printf(LOG_CRIT, DBG_ERRNO,
"epoll_ctl(del, gtwa_fd)");
}
if (close(tmw.gtwa_fd) < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "close(gtwa_fd)");
}
tmw.gtwa_fd = -1;
socetAcceptEnableForEpoll();
}
else {
CO_GTWA_write(CO->gtwa, buf, s);
}
}
}
tmw.socketTimeoutTmr_us = 0;
}
#endif /* (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII */
/* calculate time difference since last call */
ull = CO_LinuxThreads_clock_gettime_us();
diff = (uint32_t)(ull - tmw.start);
tmw.start = ull;
#if (CO_CONFIG_GTW) & CO_CONFIG_GTW_ASCII
/* if socket connection is established, verify timeout */
if (tmw.socketTimeout_us > 0 && tmw.gtwa_fdSocket > 0 && tmw.gtwa_fd > 0) {
if (tmw.socketTimeoutTmr_us > tmw.socketTimeout_us) {
int ret;
/* timout expired, close current connection and accept next */
ret = epoll_ctl(tmw.epoll_fd, EPOLL_CTL_DEL, tmw.gtwa_fd, NULL);
if (ret < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "epoll_ctl(del, gtwa_fd), tmo");
}
if (close(tmw.gtwa_fd) < 0) {
log_printf(LOG_CRIT, DBG_ERRNO, "close(gtwa_fd), tmo");
}
tmw.gtwa_fd = -1;
socetAcceptEnableForEpoll();
}
else {
tmw.socketTimeoutTmr_us += diff;
}
}
#endif
/* stack will lower this, if necessary */
timerNext_us = tmw.interval_us;
/* process CANopen objects */
*reset = CO_process(CO, diff, &timerNext_us);
/* lower next timer interval if necessary */
if (timerNext_us < tmw.interval_us) {
int ret;
/* add one microsecond extra delay and make sure it is not zero */
timerNext_us += 1;
if (tmw.interval_us < 1000000) {
tmw.tm.it_value.tv_nsec = timerNext_us * 1000;
}
else {
tmw.tm.it_value.tv_sec = timerNext_us / 1000000;
tmw.tm.it_value.tv_nsec = (timerNext_us % 1000000) * 1000;
}
ret = timerfd_settime(tmw.timer_fd, 0, &tmw.tm, NULL);
if (ret < 0) {
log_printf(LOG_DEBUG, DBG_ERRNO, "timerfd_settime");
}
}
return diff;
}
/* Realtime thread (threadRT) *************************************************/
static struct {
uint32_t us_interval; /* configured interval in us */
int interval_fd; /* timer fd */
} threadRT;
void CANrx_threadTmr_init(uint32_t interval_us)
{
struct itimerspec itval;
threadRT.us_interval = interval_us;
/* set up non-blocking interval timer */
threadRT.interval_fd = timerfd_create(CLOCK_MONOTONIC, 0);
(void)fcntl(threadRT.interval_fd, F_SETFL, O_NONBLOCK);
itval.it_interval.tv_sec = 0;
itval.it_interval.tv_nsec = interval_us * 1000;
itval.it_value = itval.it_interval;
(void)timerfd_settime(threadRT.interval_fd, 0, &itval, NULL);
}
void CANrx_threadTmr_close(void)
{
(void)close(threadRT.interval_fd);
threadRT.interval_fd = -1;
}
uint32_t CANrx_threadTmr_process(void)
{
int32_t result;
uint64_t i;
bool_t syncWas;
uint64_t missed = 0;
result = CO_CANrxWait(CO->CANmodule[0], threadRT.interval_fd, NULL);
if (result < 0) {
result = read(threadRT.interval_fd, &missed, sizeof(missed));
if (result > 0) {
/* at least one timer interval occurred */
CO_LOCK_OD();
if(CO->CANmodule[0]->CANnormal) {
for (i = 0; i <= missed; i++) {
#if CO_NO_SYNC == 1
/* Process Sync */
syncWas = CO_process_SYNC(CO, threadRT.us_interval, NULL);
#else
syncWas = false;
#endif
/* Read inputs */
CO_process_RPDO(CO, syncWas);
/* Write outputs */
CO_process_TPDO(CO, syncWas, threadRT.us_interval, NULL);
}
}
CO_UNLOCK_OD();
}
}
return (uint32_t) missed;
}