mirror of
https://github.com/irungentoo/toxcore.git
synced 2024-03-22 13:30:51 +08:00
9218566599
It was kind of thread-safe, maybe, but there was a data race that makes tsan unhappy. We now do interface detection once per Tox instance instead of once per process.
553 lines
16 KiB
C
553 lines
16 KiB
C
/* SPDX-License-Identifier: GPL-3.0-or-later
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* Copyright © 2016-2018 The TokTok team.
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* Copyright © 2014-2016 Tox project.
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*/
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/*
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* Tox DHT bootstrap daemon.
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* Main file.
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*/
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#ifndef _XOPEN_SOURCE
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#define _XOPEN_SOURCE 600
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#endif
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// system provided
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#include <signal.h> // system header, rather than C, because we need it for POSIX sigaction(2)
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#include <sys/resource.h>
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#include <sys/stat.h>
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#include <unistd.h>
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// C
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#include <assert.h>
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#include <stdint.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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// toxcore
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#include "../../../toxcore/tox.h"
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#include "../../../toxcore/LAN_discovery.h"
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#include "../../../toxcore/TCP_server.h"
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#include "../../../toxcore/logger.h"
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#include "../../../toxcore/mono_time.h"
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#include "../../../toxcore/onion_announce.h"
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#include "../../../toxcore/util.h"
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// misc
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#include "../../bootstrap_node_packets.h"
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#include "command_line_arguments.h"
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#include "config.h"
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#include "global.h"
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#include "log.h"
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static void sleep_milliseconds(uint32_t ms)
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{
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struct timespec req;
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req.tv_sec = ms / 1000;
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req.tv_nsec = (long)ms % 1000 * 1000 * 1000;
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nanosleep(&req, nullptr);
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}
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// Uses the already existing key or creates one if it didn't exist
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//
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// returns 1 on success
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// 0 on failure - no keys were read or stored
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static int manage_keys(DHT *dht, char *keys_file_path)
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{
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enum { KEYS_SIZE = CRYPTO_PUBLIC_KEY_SIZE + CRYPTO_SECRET_KEY_SIZE };
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uint8_t keys[KEYS_SIZE];
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FILE *keys_file;
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// Check if file exits, proceed to open and load keys
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keys_file = fopen(keys_file_path, "rb");
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if (keys_file != nullptr) {
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const size_t read_size = fread(keys, sizeof(uint8_t), KEYS_SIZE, keys_file);
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if (read_size != KEYS_SIZE) {
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fclose(keys_file);
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return 0;
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}
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dht_set_self_public_key(dht, keys);
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dht_set_self_secret_key(dht, keys + CRYPTO_PUBLIC_KEY_SIZE);
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} else {
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// Otherwise save new keys
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memcpy(keys, dht_get_self_public_key(dht), CRYPTO_PUBLIC_KEY_SIZE);
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memcpy(keys + CRYPTO_PUBLIC_KEY_SIZE, dht_get_self_secret_key(dht), CRYPTO_SECRET_KEY_SIZE);
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keys_file = fopen(keys_file_path, "wb");
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if (!keys_file) {
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return 0;
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}
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const size_t write_size = fwrite(keys, sizeof(uint8_t), KEYS_SIZE, keys_file);
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if (write_size != KEYS_SIZE) {
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fclose(keys_file);
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return 0;
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}
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}
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fclose(keys_file);
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return 1;
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}
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// Prints public key
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static void print_public_key(const uint8_t *public_key)
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{
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char buffer[2 * CRYPTO_PUBLIC_KEY_SIZE + 1];
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int index = 0;
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for (size_t i = 0; i < CRYPTO_PUBLIC_KEY_SIZE; i++) {
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index += snprintf(buffer + index, sizeof(buffer) - index, "%02X", public_key[i]);
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}
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log_write(LOG_LEVEL_INFO, "Public Key: %s\n", buffer);
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}
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// Demonizes the process, appending PID to the PID file and closing file descriptors based on log backend
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// Terminates the application if the daemonization fails.
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static void daemonize(LOG_BACKEND log_backend, char *pid_file_path)
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{
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// Check if the PID file exists
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FILE *pid_file;
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if ((pid_file = fopen(pid_file_path, "r"))) {
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log_write(LOG_LEVEL_WARNING, "Another instance of the daemon is already running, PID file %s exists.\n", pid_file_path);
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fclose(pid_file);
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}
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// Open the PID file for writing
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pid_file = fopen(pid_file_path, "a+");
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if (pid_file == nullptr) {
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log_write(LOG_LEVEL_ERROR, "Couldn't open the PID file for writing: %s. Exiting.\n", pid_file_path);
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exit(1);
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}
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// Fork off from the parent process
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const pid_t pid = fork();
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if (pid > 0) {
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fprintf(pid_file, "%d", pid);
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fclose(pid_file);
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log_write(LOG_LEVEL_INFO, "Forked successfully: PID: %d.\n", pid);
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exit(0);
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} else {
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fclose(pid_file);
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}
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if (pid < 0) {
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log_write(LOG_LEVEL_ERROR, "Forking failed. Exiting.\n");
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exit(1);
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}
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// Create a new SID for the child process
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if (setsid() < 0) {
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log_write(LOG_LEVEL_ERROR, "SID creation failure. Exiting.\n");
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exit(1);
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}
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// Change the current working directory
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if ((chdir("/")) < 0) {
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log_write(LOG_LEVEL_ERROR, "Couldn't change working directory to '/'. Exiting.\n");
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exit(1);
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}
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// Go quiet
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if (log_backend != LOG_BACKEND_STDOUT) {
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close(STDOUT_FILENO);
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close(STDIN_FILENO);
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close(STDERR_FILENO);
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}
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}
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// Logs toxcore logger message using our logger facility
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static void toxcore_logger_callback(void *context, Logger_Level level, const char *file, int line,
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const char *func, const char *message, void *userdata)
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{
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LOG_LEVEL log_level;
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switch (level) {
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case LOGGER_LEVEL_TRACE:
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log_level = LOG_LEVEL_INFO;
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break;
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case LOGGER_LEVEL_DEBUG:
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log_level = LOG_LEVEL_INFO;
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break;
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case LOGGER_LEVEL_INFO:
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log_level = LOG_LEVEL_INFO;
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break;
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case LOGGER_LEVEL_WARNING:
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log_level = LOG_LEVEL_WARNING;
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break;
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case LOGGER_LEVEL_ERROR:
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log_level = LOG_LEVEL_ERROR;
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break;
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default:
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log_level = LOG_LEVEL_INFO;
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break;
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}
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log_write(log_level, "%s:%d(%s) %s\n", file, line, func, message);
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}
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static volatile sig_atomic_t caught_signal = 0;
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static void handle_signal(int signum)
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{
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caught_signal = signum;
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}
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int main(int argc, char *argv[])
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{
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umask(077);
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char *cfg_file_path = nullptr;
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LOG_BACKEND log_backend;
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bool run_in_foreground;
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// choose backend for printing command line argument parsing output based on whether the daemon is being run from a terminal
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log_backend = isatty(STDOUT_FILENO) ? LOG_BACKEND_STDOUT : LOG_BACKEND_SYSLOG;
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log_open(log_backend);
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handle_command_line_arguments(argc, argv, &cfg_file_path, &log_backend, &run_in_foreground);
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log_close();
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log_open(log_backend);
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log_write(LOG_LEVEL_INFO, "Running \"%s\" version %lu.\n", DAEMON_NAME, DAEMON_VERSION_NUMBER);
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char *pid_file_path = nullptr;
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char *keys_file_path = nullptr;
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int port;
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int enable_ipv6;
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int enable_ipv4_fallback;
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int enable_lan_discovery;
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int enable_tcp_relay;
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uint16_t *tcp_relay_ports = nullptr;
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int tcp_relay_port_count;
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int enable_motd;
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char *motd = nullptr;
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if (get_general_config(cfg_file_path, &pid_file_path, &keys_file_path, &port, &enable_ipv6, &enable_ipv4_fallback,
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&enable_lan_discovery, &enable_tcp_relay, &tcp_relay_ports, &tcp_relay_port_count, &enable_motd, &motd)) {
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log_write(LOG_LEVEL_INFO, "General config read successfully\n");
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} else {
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log_write(LOG_LEVEL_ERROR, "Couldn't read config file: %s. Exiting.\n", cfg_file_path);
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return 1;
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}
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if (port < MIN_ALLOWED_PORT || port > MAX_ALLOWED_PORT) {
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log_write(LOG_LEVEL_ERROR, "Invalid port: %d, should be in [%d, %d]. Exiting.\n", port, MIN_ALLOWED_PORT,
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MAX_ALLOWED_PORT);
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free(motd);
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free(tcp_relay_ports);
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free(keys_file_path);
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free(pid_file_path);
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return 1;
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}
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if (!run_in_foreground) {
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daemonize(log_backend, pid_file_path);
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}
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free(pid_file_path);
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IP ip;
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ip_init(&ip, enable_ipv6);
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Logger *logger = logger_new();
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if (MIN_LOGGER_LEVEL == LOGGER_LEVEL_TRACE || MIN_LOGGER_LEVEL == LOGGER_LEVEL_DEBUG) {
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logger_callback_log(logger, toxcore_logger_callback, nullptr, nullptr);
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}
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Networking_Core *net = new_networking(logger, &ip, port);
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if (net == nullptr) {
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if (enable_ipv6 && enable_ipv4_fallback) {
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log_write(LOG_LEVEL_WARNING, "Couldn't initialize IPv6 networking. Falling back to using IPv4.\n");
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enable_ipv6 = 0;
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ip_init(&ip, enable_ipv6);
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net = new_networking(logger, &ip, port);
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if (net == nullptr) {
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log_write(LOG_LEVEL_ERROR, "Couldn't fallback to IPv4. Exiting.\n");
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logger_kill(logger);
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free(motd);
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free(tcp_relay_ports);
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free(keys_file_path);
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return 1;
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}
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} else {
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log_write(LOG_LEVEL_ERROR, "Couldn't initialize networking. Exiting.\n");
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logger_kill(logger);
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free(motd);
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free(tcp_relay_ports);
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free(keys_file_path);
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return 1;
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}
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}
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Mono_Time *const mono_time = mono_time_new();
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if (mono_time == nullptr) {
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log_write(LOG_LEVEL_ERROR, "Couldn't initialize monotonic timer. Exiting.\n");
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kill_networking(net);
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logger_kill(logger);
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free(motd);
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free(tcp_relay_ports);
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free(keys_file_path);
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return 1;
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}
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mono_time_update(mono_time);
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DHT *const dht = new_dht(logger, mono_time, net, true);
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if (dht == nullptr) {
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log_write(LOG_LEVEL_ERROR, "Couldn't initialize Tox DHT instance. Exiting.\n");
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mono_time_free(mono_time);
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kill_networking(net);
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logger_kill(logger);
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free(motd);
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free(tcp_relay_ports);
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free(keys_file_path);
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return 1;
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}
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Onion *onion = new_onion(logger, mono_time, dht);
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if (!onion) {
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log_write(LOG_LEVEL_ERROR, "Couldn't initialize Tox Onion. Exiting.\n");
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kill_dht(dht);
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mono_time_free(mono_time);
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kill_networking(net);
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logger_kill(logger);
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free(motd);
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free(tcp_relay_ports);
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free(keys_file_path);
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return 1;
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}
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Onion_Announce *onion_a = new_onion_announce(logger, mono_time, dht);
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if (!onion_a) {
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log_write(LOG_LEVEL_ERROR, "Couldn't initialize Tox Onion Announce. Exiting.\n");
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kill_onion(onion);
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kill_dht(dht);
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mono_time_free(mono_time);
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kill_networking(net);
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logger_kill(logger);
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free(motd);
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free(tcp_relay_ports);
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free(keys_file_path);
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return 1;
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}
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if (enable_motd) {
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if (bootstrap_set_callbacks(dht_get_net(dht), DAEMON_VERSION_NUMBER, (uint8_t *)motd, strlen(motd) + 1) == 0) {
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log_write(LOG_LEVEL_INFO, "Set MOTD successfully.\n");
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free(motd);
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} else {
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log_write(LOG_LEVEL_ERROR, "Couldn't set MOTD: %s. Exiting.\n", motd);
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kill_onion_announce(onion_a);
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kill_onion(onion);
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kill_dht(dht);
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mono_time_free(mono_time);
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kill_networking(net);
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logger_kill(logger);
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free(motd);
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free(tcp_relay_ports);
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free(keys_file_path);
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return 1;
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}
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}
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if (manage_keys(dht, keys_file_path)) {
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log_write(LOG_LEVEL_INFO, "Keys are managed successfully.\n");
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free(keys_file_path);
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} else {
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log_write(LOG_LEVEL_ERROR, "Couldn't read/write: %s. Exiting.\n", keys_file_path);
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kill_onion_announce(onion_a);
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kill_onion(onion);
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kill_dht(dht);
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mono_time_free(mono_time);
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kill_networking(net);
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logger_kill(logger);
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free(tcp_relay_ports);
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free(keys_file_path);
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return 1;
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}
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TCP_Server *tcp_server = nullptr;
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if (enable_tcp_relay) {
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if (tcp_relay_port_count == 0) {
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log_write(LOG_LEVEL_ERROR, "No TCP relay ports read. Exiting.\n");
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kill_onion_announce(onion_a);
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kill_onion(onion);
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kill_dht(dht);
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mono_time_free(mono_time);
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kill_networking(net);
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logger_kill(logger);
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free(tcp_relay_ports);
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return 1;
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}
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tcp_server = new_TCP_server(logger, enable_ipv6, tcp_relay_port_count, tcp_relay_ports, dht_get_self_secret_key(dht),
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onion);
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free(tcp_relay_ports);
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if (tcp_server != nullptr) {
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log_write(LOG_LEVEL_INFO, "Initialized Tox TCP server successfully.\n");
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struct rlimit limit;
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const rlim_t rlim_suggested = 32768;
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const rlim_t rlim_min = 4096;
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assert(rlim_suggested >= rlim_min);
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if (!getrlimit(RLIMIT_NOFILE, &limit)) {
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if (limit.rlim_cur < limit.rlim_max) {
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// Some systems have a hard limit of over 1000000 open file descriptors, so let's cap it at something reasonable
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// so that we don't set it to an unreasonably high number.
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limit.rlim_cur = limit.rlim_max > rlim_suggested ? rlim_suggested : limit.rlim_max;
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setrlimit(RLIMIT_NOFILE, &limit);
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}
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}
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if (!getrlimit(RLIMIT_NOFILE, &limit) && limit.rlim_cur < rlim_min) {
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log_write(LOG_LEVEL_WARNING,
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"Current limit on the number of files this process can open (%ju) is rather low for the proper functioning of the TCP server. "
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"Consider raising the limit to at least %ju or the recommended %ju. "
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"Continuing using the current limit (%ju).\n",
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(uintmax_t)limit.rlim_cur, (uintmax_t)rlim_min, (uintmax_t)rlim_suggested, (uintmax_t)limit.rlim_cur);
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}
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} else {
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log_write(LOG_LEVEL_ERROR, "Couldn't initialize Tox TCP server. Exiting.\n");
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kill_onion_announce(onion_a);
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kill_onion(onion);
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kill_dht(dht);
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mono_time_free(mono_time);
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kill_networking(net);
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logger_kill(logger);
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return 1;
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}
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}
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if (bootstrap_from_config(cfg_file_path, dht, enable_ipv6)) {
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log_write(LOG_LEVEL_INFO, "List of bootstrap nodes read successfully.\n");
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} else {
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log_write(LOG_LEVEL_ERROR, "Couldn't read list of bootstrap nodes in %s. Exiting.\n", cfg_file_path);
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kill_TCP_server(tcp_server);
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kill_onion_announce(onion_a);
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kill_onion(onion);
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kill_dht(dht);
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mono_time_free(mono_time);
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kill_networking(net);
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logger_kill(logger);
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return 1;
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}
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print_public_key(dht_get_self_public_key(dht));
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uint64_t last_LANdiscovery = 0;
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const uint16_t net_htons_port = net_htons(port);
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int waiting_for_dht_connection = 1;
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Broadcast_Info *broadcast = nullptr;
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if (enable_lan_discovery) {
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broadcast = lan_discovery_init(dht);
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log_write(LOG_LEVEL_INFO, "Initialized LAN discovery successfully.\n");
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}
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struct sigaction sa;
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sa.sa_handler = handle_signal;
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// Try to restart interrupted system calls if they are restartable
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sa.sa_flags = SA_RESTART;
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// Prevent the signal handler from being called again before it returns
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sigfillset(&sa.sa_mask);
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if (sigaction(SIGINT, &sa, nullptr)) {
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log_write(LOG_LEVEL_WARNING, "Couldn't set signal handler for SIGINT. Continuing without the signal handler set.\n");
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}
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if (sigaction(SIGTERM, &sa, nullptr)) {
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log_write(LOG_LEVEL_WARNING, "Couldn't set signal handler for SIGTERM. Continuing without the signal handler set.\n");
|
|
}
|
|
|
|
while (!caught_signal) {
|
|
mono_time_update(mono_time);
|
|
|
|
do_dht(dht);
|
|
|
|
if (enable_lan_discovery && mono_time_is_timeout(mono_time, last_LANdiscovery, LAN_DISCOVERY_INTERVAL)) {
|
|
lan_discovery_send(dht_get_net(dht), broadcast, dht_get_self_public_key(dht), net_htons_port);
|
|
last_LANdiscovery = mono_time_get(mono_time);
|
|
}
|
|
|
|
if (enable_tcp_relay) {
|
|
do_TCP_server(tcp_server, mono_time);
|
|
}
|
|
|
|
networking_poll(dht_get_net(dht), nullptr);
|
|
|
|
if (waiting_for_dht_connection && dht_isconnected(dht)) {
|
|
log_write(LOG_LEVEL_INFO, "Connected to another bootstrap node successfully.\n");
|
|
waiting_for_dht_connection = 0;
|
|
}
|
|
|
|
sleep_milliseconds(30);
|
|
}
|
|
|
|
switch (caught_signal) {
|
|
case SIGINT:
|
|
log_write(LOG_LEVEL_INFO, "Received SIGINT (%d) signal. Exiting.\n", SIGINT);
|
|
break;
|
|
|
|
case SIGTERM:
|
|
log_write(LOG_LEVEL_INFO, "Received SIGTERM (%d) signal. Exiting.\n", SIGTERM);
|
|
break;
|
|
|
|
default:
|
|
log_write(LOG_LEVEL_INFO, "Received (%d) signal. Exiting.\n", caught_signal);
|
|
}
|
|
|
|
if (enable_lan_discovery) {
|
|
lan_discovery_kill(dht, broadcast);
|
|
}
|
|
|
|
kill_TCP_server(tcp_server);
|
|
kill_onion_announce(onion_a);
|
|
kill_onion(onion);
|
|
kill_dht(dht);
|
|
mono_time_free(mono_time);
|
|
kill_networking(net);
|
|
logger_kill(logger);
|
|
|
|
return 0;
|
|
}
|