コード例 #1
0
ファイル: send.c プロジェクト: Gank/zmap
// one sender thread
int send_run(void)
{
	log_debug("send", "thread started");
	pthread_mutex_lock(&send_mutex);
	int sock = get_socket();
	struct sockaddr_ll sockaddr;
	// get source interface index
	struct ifreq if_idx;
	memset(&if_idx, 0, sizeof(struct ifreq));
	if (strlen(zconf.iface) >= IFNAMSIZ) {
		log_error("send", "device interface name (%s) too long\n",
				zconf.iface);
		return -1;
	}
	strncpy(if_idx.ifr_name, zconf.iface, IFNAMSIZ-1);
	if (ioctl(sock, SIOCGIFINDEX, &if_idx) < 0) {
		perror("SIOCGIFINDEX");
		return -1;
	}
	int ifindex = if_idx.ifr_ifindex;
	// get source interface mac
	struct ifreq if_mac;
	memset(&if_mac, 0, sizeof(struct ifreq));
	strncpy(if_mac.ifr_name, zconf.iface, IFNAMSIZ-1);
	if (ioctl(sock, SIOCGIFHWADDR, &if_mac) < 0) {
		perror("SIOCGIFHWADDR");
		return -1;
	}
	// find source IP address associated with the dev from which we're sending.
	// while we won't use this address for sending packets, we need the address
	// to set certain socket options and it's easiest to just use the primary
	// address the OS believes is associated.
	struct ifreq if_ip;
	memset(&if_ip, 0, sizeof(struct ifreq));
	strncpy(if_ip.ifr_name, zconf.iface, IFNAMSIZ-1);
	if (ioctl(sock, SIOCGIFADDR, &if_ip) < 0) {
		perror("SIOCGIFADDR");
		return -1;
	}
	// destination address for the socket
	memset((void*) &sockaddr, 0, sizeof(struct sockaddr_ll));
	sockaddr.sll_ifindex = ifindex;
	sockaddr.sll_halen = ETH_ALEN;
	memcpy(sockaddr.sll_addr, zconf.gw_mac, ETH_ALEN);

	char buf[MAX_PACKET_SIZE];
	memset(buf, 0, MAX_PACKET_SIZE);
	zconf.probe_module->thread_initialize(buf, 
					(unsigned char *)if_mac.ifr_hwaddr.sa_data, 
					zconf.gw_mac, zconf.target_port);	
	pthread_mutex_unlock(&send_mutex);

	// adaptive timing to hit target rate
	uint32_t count = 0;
	uint32_t last_count = count;
	double last_time = now();
	uint32_t delay = 0;
	int interval = 0;
	volatile int vi;
	if (zconf.rate > 0) {
		// estimate initial rate
		delay = 10000;
		for (vi = delay; vi--; )
			;
		delay *= 1 / (now() - last_time) / (zconf.rate / zconf.senders);
		interval = (zconf.rate / zconf.senders) / 20;
		last_time = now();
	}
	while (1) {
		// adaptive timing delay
		if (delay > 0) {
			count++;
			for (vi = delay; vi--; )
				;
			if (!interval || (count % interval == 0)) {
				double t = now();
				delay *= (double)(count - last_count) 
					/ (t - last_time) / (zconf.rate / zconf.senders);
				if (delay < 1)
					delay = 1;
				last_count = count;
				last_time = t;
			}
		}
		// generate next ip from cyclic group and update global state
		// (everything locked happens here)
		pthread_mutex_lock(&send_mutex);
		if (zsend.complete) {
			pthread_mutex_unlock(&send_mutex);
			break;
		}
		if (zsend.sent >= zconf.max_targets) {
			zsend.complete = 1;
			zsend.finish = now();
			pthread_mutex_unlock(&send_mutex);
			break;
		}
		if (zconf.max_runtime && zconf.max_runtime <= now() - zsend.start) {
			zsend.complete = 1;
			zsend.finish = now();
			pthread_mutex_unlock(&send_mutex);
			break;
		}

		uint32_t curr;



		//if has CIDR
		if(zconf.cidr != '\0'){

			//Get next IP and convert to correct format
			// uint32_t val = zsend.first_scanned++;
			curr = cidr_get_next_ip();

			if (zsend.last_to_scan == 1) {
				zsend.complete = 1;
				zsend.finish = now();
			}
		}
		else{
			curr = cyclic_get_next_ip();

			if (curr == zsend.first_scanned) {
				zsend.complete = 1;
				zsend.finish = now();
			}
		}

		zsend.sent++;
		pthread_mutex_unlock(&send_mutex);
		for (int i=0; i < zconf.packet_streams; i++) {
			uint32_t src_ip = get_src_ip(curr, i);

		  	uint32_t validation[VALIDATE_BYTES/sizeof(uint32_t)];
			validate_gen(src_ip, curr, (uint8_t *)validation);
			zconf.probe_module->make_packet(buf, src_ip, curr, validation, i);

			if (zconf.dryrun) {
				zconf.probe_module->print_packet(stdout, buf);
			} else {
					int l = zconf.probe_module->packet_length;
					int rc = sendto(sock, buf, 
							l, 0,
							(struct sockaddr *)&sockaddr,
							sizeof(struct sockaddr_ll));
					if (rc < 0) {
						struct in_addr addr;
						addr.s_addr = curr;
						log_debug("send", "sendto failed for %s. %s",
								  inet_ntoa(addr), strerror(errno));
						pthread_mutex_lock(&send_mutex);
						zsend.sendto_failures++;
						pthread_mutex_unlock(&send_mutex);
					}
			}
		}
	}
	log_debug("send", "thread finished");
	return EXIT_SUCCESS;
}
コード例 #2
0
ファイル: send.c プロジェクト: coydog/zmap-freebsd
int send_run(int sock)
#endif
{
	log_debug("send", "thread started");
	pthread_mutex_lock(&send_mutex);
#ifdef ZMAP_PCAP_INJECT
	/* Using pcap, mirror the linux SOCK_RAW behaviour as closely
	   as possible */
	unsigned char mac[ETHER_ADDR_LEN];
	struct in_addr src_ip = {0};
	//pcap_t *pc = get_pcap_t();
	/* We don't need the index; we have a pcap handle to the proper
	   interface */
	get_hwaddr(mac);
	get_ipaddr(&src_ip);

#else
	//int sock = get_socket();
	struct sockaddr_ll sockaddr;
	// get source interface index
	struct ifreq if_idx;
	memset(&if_idx, 0, sizeof(struct ifreq));
	if (strlen(zconf.iface) >= IFNAMSIZ) {
		log_error("send", "device interface name (%s) too long\n",
				zconf.iface);
		return -1;
	}
	strncpy(if_idx.ifr_name, zconf.iface, IFNAMSIZ-2);
	if (ioctl(sock, SIOCGIFINDEX, &if_idx) < 0) {
		perror("SIOCGIFINDEX");
		return -1;
	}
	int ifindex = if_idx.ifr_ifindex;
	// get source interface mac
	struct ifreq if_mac;
	memset(&if_mac, 0, sizeof(struct ifreq));
	strncpy(if_mac.ifr_name, zconf.iface, IFNAMSIZ-1);
	if (ioctl(sock, SIOCGIFHWADDR, &if_mac) < 0) {
		perror("SIOCGIFHWADDR");
		return -1;
	}
	// find source IP address associated with the dev from which we're sending.
	// while we won't use this address for sending packets, we need the address
	// to set certain socket options and it's easiest to just use the primary
	// address the OS believes is associated.
	struct ifreq if_ip;
	memset(&if_ip, 0, sizeof(struct ifreq));
	strncpy(if_ip.ifr_name, zconf.iface, IFNAMSIZ-1);
	if (ioctl(sock, SIOCGIFADDR, &if_ip) < 0) {
		perror("SIOCGIFADDR");
		return -1;
	}
	// wbk TODO: gateway MAC.
	// destination address for the socket
	memset((void*) &sockaddr, 0, sizeof(struct sockaddr_ll));
	sockaddr.sll_ifindex = ifindex;
	sockaddr.sll_halen = ETH_ALEN;
	memcpy(sockaddr.sll_addr, zconf.gw_mac, ETH_ALEN);

#endif /* not ZMAP_PCAP_INJECT */ /* may move down... TODO wbk */

	char buf[MAX_PACKET_SIZE];
	memset(buf, 0, MAX_PACKET_SIZE);
	zconf.probe_module->thread_initialize(buf, 
#ifdef ZMAP_PCAP_INJECT
					mac,
#else
					(unsigned char *)if_mac.ifr_hwaddr.sa_data, 
#endif
					zconf.gw_mac, zconf.target_port);	
	pthread_mutex_unlock(&send_mutex);

	// adaptive timing to hit target rate
	uint32_t count = 0;
	uint32_t last_count = count;
	double last_time = now();
	uint32_t delay = 0;
	int interval = 0;
	volatile int vi;
	if (zconf.rate > 0) {
		// estimate initial rate
		delay = 10000;
		for (vi = delay; vi--; )
			;
		delay *= 1 / (now() - last_time) / (zconf.rate / zconf.senders);
		interval = (zconf.rate / zconf.senders) / 20;
		last_time = now();
	}
	while (1) {
		// adaptive timing delay
		if (delay > 0) {
			count++;
			for (vi = delay; vi--; )
				;
			if (!interval || (count % interval == 0)) {
				double t = now();
				delay *= (double)(count - last_count) 
					/ (t - last_time) / (zconf.rate / zconf.senders);
				if (delay < 1)
					delay = 1;
				last_count = count;
				last_time = t;
			}
		}
		// generate next ip from cyclic group and update global state
		// (everything locked happens here)
		pthread_mutex_lock(&send_mutex);
		if (zsend.complete) {
			pthread_mutex_unlock(&send_mutex);
			break;
		}
		if (zsend.sent >= zconf.max_targets) {
			zsend.complete = 1;
			zsend.finish = now();
			pthread_mutex_unlock(&send_mutex);
			break;
		}
		if (zconf.max_runtime && zconf.max_runtime <= now() - zsend.start) {
			zsend.complete = 1;
			zsend.finish = now();
			pthread_mutex_unlock(&send_mutex);
			break;
		}
		uint32_t curr = cyclic_get_next_ip();
		if (curr == zsend.first_scanned) {
			zsend.complete = 1;
			zsend.finish = now();
		}
		zsend.sent++;
		pthread_mutex_unlock(&send_mutex);
		for (int i=0; i < zconf.packet_streams; i++) {
			uint32_t src_ip = get_src_ip(curr, i);

		  	uint32_t validation[VALIDATE_BYTES/sizeof(uint32_t)];
			validate_gen(src_ip, curr, (uint8_t *)validation);
			zconf.probe_module->make_packet(buf, src_ip, curr, validation, i);

			if (zconf.dryrun) {
				zconf.probe_module->print_packet(stdout, buf);
			} else {
					int l = zconf.probe_module->packet_length;

#ifdef ZMAP_PCAP_INJECT
					int rc = pcap_inject(pc, buf, (size_t)l);
					if (rc == -1) {
						struct in_addr addr;
						addr.s_addr = curr;
						log_fatal("send", "pcap_inject() failed for %s. %s", /* TODO: make log_debug */
								  inet_ntoa(addr), strerror(errno));
						pthread_mutex_lock(&send_mutex);
						zsend.sendto_failures++;
						pthread_mutex_unlock(&send_mutex);
					}
#else /* TODO: error handling can be shared. */
					int rc = sendto(sock, buf + zconf.send_ip_pkts*sizeof(struct ethhdr),
							l, 0,
							(struct sockaddr *)&sockaddr,
							sizeof(struct sockaddr_ll));
					if (rc < 0) {
						struct in_addr addr;
						addr.s_addr = curr;
						log_debug("send", "sendto failed for %s. %s",
								  inet_ntoa(addr), strerror(errno));
						pthread_mutex_lock(&send_mutex);
						zsend.sendto_failures++;
						pthread_mutex_unlock(&send_mutex);
					}
#endif
			}
		}
	}
	log_debug("send", "thread finished");
	return EXIT_SUCCESS;
}
コード例 #3
0
ファイル: send.c プロジェクト: clemensg/zmap
// one sender thread
int send_run(int sock)
{
	log_trace("send", "send thread started");
	pthread_mutex_lock(&send_mutex);

	// Allocate a buffer to hold the outgoing packet
	char buf[MAX_PACKET_SIZE];
	memset(buf, 0, MAX_PACKET_SIZE);

	// OS specific per-thread init
	if (send_run_init(sock)) {
		return -1;
	}

	// Get the source hardware address, and give it to the probe
	// module
	if (get_iface_hw_addr(zconf.iface, zconf.hw_mac)) {
		log_fatal("send", "could not retrieve hardware address for"
			  "interface: %s", zconf.iface);
		return -1;
	}
	char mac_buf[(ETHER_ADDR_LEN * 2) + (ETHER_ADDR_LEN - 1) + 1];
	char *p = mac_buf;
	for(int i=0; i < ETHER_ADDR_LEN; i++) {
		if (i == ETHER_ADDR_LEN-1) {
			snprintf(p, 3, "%.2x", zconf.hw_mac[i]);
			p += 2;
		} else {
			snprintf(p, 4, "%.2x:", zconf.hw_mac[i]);
			p += 3;
		}
	}
	log_debug("send", "source MAC address %s",
			mac_buf);

	zconf.probe_module->thread_initialize(buf, zconf.hw_mac, zconf.gw_mac,
					      zconf.target_port);
	pthread_mutex_unlock(&send_mutex);
	
	// adaptive timing to hit target rate
	uint32_t count = 0;
	uint32_t last_count = count;
	double last_time = now();
	uint32_t delay = 0;
	int interval = 0;
	volatile int vi;
	if (zconf.rate > 0) {
		// estimate initial rate
		delay = 10000;
		for (vi = delay; vi--; )
			;
		delay *= 1 / (now() - last_time) / (zconf.rate / zconf.senders);
		interval = (zconf.rate / zconf.senders) / 20;
		last_time = now();
	}
	while (1) {
		// adaptive timing delay
		if (delay > 0) {
			count++;
			for (vi = delay; vi--; )
				;
			if (!interval || (count % interval == 0)) {
				double t = now();
				delay *= (double)(count - last_count) 
					/ (t - last_time) / (zconf.rate / zconf.senders);
				if (delay < 1)
					delay = 1;
				last_count = count;
				last_time = t;
			}
		}
		// generate next ip from cyclic group and update global state
		// (everything locked happens here)
		pthread_mutex_lock(&send_mutex);
		if (zsend.complete) {
			pthread_mutex_unlock(&send_mutex);
			break;
		}
		if (zsend.sent >= zconf.max_targets) {
			zsend.complete = 1;
			zsend.finish = now();
			pthread_mutex_unlock(&send_mutex);
			break;
		}
		if (zconf.max_runtime && zconf.max_runtime <= now() - zsend.start) {
			zsend.complete = 1;
			zsend.finish = now();
			pthread_mutex_unlock(&send_mutex);
			break;
		}
		uint32_t curr = cyclic_get_next_ip(c);
		if (curr == zsend.first_scanned) {
			zsend.complete = 1;
			zsend.finish = now();
		}
		zsend.sent++;
		pthread_mutex_unlock(&send_mutex);
		for (int i=0; i < zconf.packet_streams; i++) {
			uint32_t src_ip = get_src_ip(curr, i);

		  	uint32_t validation[VALIDATE_BYTES/sizeof(uint32_t)];
			validate_gen(src_ip, curr, (uint8_t *)validation);
			zconf.probe_module->make_packet(buf, src_ip, curr, validation, i);

			if (zconf.dryrun) {
				zconf.probe_module->print_packet(stdout, buf);
			} else {
				int length = zconf.probe_module->packet_length;
				void *contents = buf + zconf.send_ip_pkts*sizeof(struct ether_header);
				int rc = send_packet(sock, contents, length);
				if (rc < 0) {
					struct in_addr addr;
					addr.s_addr = curr;
					log_debug("send", "send_packet failed for %s. %s",
							  inet_ntoa(addr), strerror(errno));
					pthread_mutex_lock(&send_mutex);
					zsend.sendto_failures++;
					pthread_mutex_unlock(&send_mutex);
				}
			}
		}
	}
	cyclic_free(c);
	log_debug("send", "thread finished");
	return EXIT_SUCCESS;
}