NetworkTask.cpp 28 KB

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  1. /*
  2. * Copyright (c) 2018-2021, Andreas Kling <kling@serenityos.org>
  3. *
  4. * SPDX-License-Identifier: BSD-2-Clause
  5. */
  6. #include <Kernel/Debug.h>
  7. #include <Kernel/Locking/Mutex.h>
  8. #include <Kernel/Locking/MutexProtected.h>
  9. #include <Kernel/Net/ARP.h>
  10. #include <Kernel/Net/EtherType.h>
  11. #include <Kernel/Net/EthernetFrameHeader.h>
  12. #include <Kernel/Net/ICMP.h>
  13. #include <Kernel/Net/IPv4.h>
  14. #include <Kernel/Net/IPv4Socket.h>
  15. #include <Kernel/Net/LoopbackAdapter.h>
  16. #include <Kernel/Net/NetworkTask.h>
  17. #include <Kernel/Net/NetworkingManagement.h>
  18. #include <Kernel/Net/Routing.h>
  19. #include <Kernel/Net/TCP.h>
  20. #include <Kernel/Net/TCPSocket.h>
  21. #include <Kernel/Net/UDP.h>
  22. #include <Kernel/Net/UDPSocket.h>
  23. #include <Kernel/Process.h>
  24. namespace Kernel {
  25. static void handle_arp(EthernetFrameHeader const&, size_t frame_size);
  26. static void handle_ipv4(EthernetFrameHeader const&, size_t frame_size, Time const& packet_timestamp);
  27. static void handle_icmp(EthernetFrameHeader const&, IPv4Packet const&, Time const& packet_timestamp);
  28. static void handle_udp(IPv4Packet const&, Time const& packet_timestamp);
  29. static void handle_tcp(IPv4Packet const&, Time const& packet_timestamp);
  30. static void send_delayed_tcp_ack(RefPtr<TCPSocket> socket);
  31. static void send_tcp_rst(IPv4Packet const& ipv4_packet, TCPPacket const& tcp_packet, RefPtr<NetworkAdapter> adapter);
  32. static void flush_delayed_tcp_acks();
  33. static void retransmit_tcp_packets();
  34. static Thread* network_task = nullptr;
  35. static HashTable<RefPtr<TCPSocket>>* delayed_ack_sockets;
  36. [[noreturn]] static void NetworkTask_main(void*);
  37. void NetworkTask::spawn()
  38. {
  39. RefPtr<Thread> thread;
  40. Process::create_kernel_process(thread, "NetworkTask", NetworkTask_main, nullptr);
  41. network_task = thread;
  42. }
  43. bool NetworkTask::is_current()
  44. {
  45. return Thread::current() == network_task;
  46. }
  47. void NetworkTask_main(void*)
  48. {
  49. delayed_ack_sockets = new HashTable<RefPtr<TCPSocket>>;
  50. WaitQueue packet_wait_queue;
  51. int pending_packets = 0;
  52. NetworkingManagement::the().for_each([&](auto& adapter) {
  53. dmesgln("NetworkTask: {} network adapter found: hw={}", adapter.class_name(), adapter.mac_address().to_string());
  54. if (String(adapter.class_name()) == "LoopbackAdapter") {
  55. adapter.set_ipv4_address({ 127, 0, 0, 1 });
  56. adapter.set_ipv4_netmask({ 255, 0, 0, 0 });
  57. adapter.set_ipv4_gateway({ 0, 0, 0, 0 });
  58. }
  59. adapter.on_receive = [&]() {
  60. pending_packets++;
  61. packet_wait_queue.wake_all();
  62. };
  63. });
  64. auto dequeue_packet = [&pending_packets](u8* buffer, size_t buffer_size, Time& packet_timestamp) -> size_t {
  65. if (pending_packets == 0)
  66. return 0;
  67. size_t packet_size = 0;
  68. NetworkingManagement::the().for_each([&](auto& adapter) {
  69. if (packet_size || !adapter.has_queued_packets())
  70. return;
  71. packet_size = adapter.dequeue_packet(buffer, buffer_size, packet_timestamp);
  72. pending_packets--;
  73. dbgln_if(NETWORK_TASK_DEBUG, "NetworkTask: Dequeued packet from {} ({} bytes)", adapter.name(), packet_size);
  74. });
  75. return packet_size;
  76. };
  77. size_t buffer_size = 64 * KiB;
  78. auto buffer_region = MM.allocate_kernel_region(buffer_size, "Kernel Packet Buffer", Memory::Region::Access::ReadWrite);
  79. auto buffer = (u8*)buffer_region->vaddr().get();
  80. Time packet_timestamp;
  81. for (;;) {
  82. flush_delayed_tcp_acks();
  83. retransmit_tcp_packets();
  84. size_t packet_size = dequeue_packet(buffer, buffer_size, packet_timestamp);
  85. if (!packet_size) {
  86. auto timeout_time = Time::from_milliseconds(500);
  87. auto timeout = Thread::BlockTimeout { false, &timeout_time };
  88. [[maybe_unused]] auto result = packet_wait_queue.wait_on(timeout, "NetworkTask");
  89. continue;
  90. }
  91. if (packet_size < sizeof(EthernetFrameHeader)) {
  92. dbgln("NetworkTask: Packet is too small to be an Ethernet packet! ({})", packet_size);
  93. continue;
  94. }
  95. auto& eth = *(EthernetFrameHeader const*)buffer;
  96. dbgln_if(ETHERNET_DEBUG, "NetworkTask: From {} to {}, ether_type={:#04x}, packet_size={}", eth.source().to_string(), eth.destination().to_string(), eth.ether_type(), packet_size);
  97. switch (eth.ether_type()) {
  98. case EtherType::ARP:
  99. handle_arp(eth, packet_size);
  100. break;
  101. case EtherType::IPv4:
  102. handle_ipv4(eth, packet_size, packet_timestamp);
  103. break;
  104. case EtherType::IPv6:
  105. // ignore
  106. break;
  107. default:
  108. dbgln_if(ETHERNET_DEBUG, "NetworkTask: Unknown ethernet type {:#04x}", eth.ether_type());
  109. }
  110. }
  111. }
  112. void handle_arp(EthernetFrameHeader const& eth, size_t frame_size)
  113. {
  114. constexpr size_t minimum_arp_frame_size = sizeof(EthernetFrameHeader) + sizeof(ARPPacket);
  115. if (frame_size < minimum_arp_frame_size) {
  116. dbgln("handle_arp: Frame too small ({}, need {})", frame_size, minimum_arp_frame_size);
  117. return;
  118. }
  119. auto& packet = *static_cast<ARPPacket const*>(eth.payload());
  120. if (packet.hardware_type() != 1 || packet.hardware_address_length() != sizeof(MACAddress)) {
  121. dbgln("handle_arp: Hardware type not ethernet ({:#04x}, len={})", packet.hardware_type(), packet.hardware_address_length());
  122. return;
  123. }
  124. if (packet.protocol_type() != EtherType::IPv4 || packet.protocol_address_length() != sizeof(IPv4Address)) {
  125. dbgln("handle_arp: Protocol type not IPv4 ({:#04x}, len={})", packet.protocol_type(), packet.protocol_address_length());
  126. return;
  127. }
  128. dbgln_if(ARP_DEBUG, "handle_arp: operation={:#04x}, sender={}/{}, target={}/{}",
  129. packet.operation(),
  130. packet.sender_hardware_address().to_string(),
  131. packet.sender_protocol_address().to_string(),
  132. packet.target_hardware_address().to_string(),
  133. packet.target_protocol_address().to_string());
  134. if (!packet.sender_hardware_address().is_zero() && !packet.sender_protocol_address().is_zero()) {
  135. // Someone has this IPv4 address. I guess we can try to remember that.
  136. // FIXME: Protect against ARP spamming.
  137. update_arp_table(packet.sender_protocol_address(), packet.sender_hardware_address(), UpdateArp::Set);
  138. }
  139. if (packet.operation() == ARPOperation::Request) {
  140. // Who has this IP address?
  141. if (auto adapter = NetworkingManagement::the().from_ipv4_address(packet.target_protocol_address())) {
  142. // We do!
  143. dbgln("handle_arp: Responding to ARP request for my IPv4 address ({})", adapter->ipv4_address());
  144. ARPPacket response;
  145. response.set_operation(ARPOperation::Response);
  146. response.set_target_hardware_address(packet.sender_hardware_address());
  147. response.set_target_protocol_address(packet.sender_protocol_address());
  148. response.set_sender_hardware_address(adapter->mac_address());
  149. response.set_sender_protocol_address(adapter->ipv4_address());
  150. adapter->send(packet.sender_hardware_address(), response);
  151. }
  152. return;
  153. }
  154. }
  155. void handle_ipv4(EthernetFrameHeader const& eth, size_t frame_size, Time const& packet_timestamp)
  156. {
  157. constexpr size_t minimum_ipv4_frame_size = sizeof(EthernetFrameHeader) + sizeof(IPv4Packet);
  158. if (frame_size < minimum_ipv4_frame_size) {
  159. dbgln("handle_ipv4: Frame too small ({}, need {})", frame_size, minimum_ipv4_frame_size);
  160. return;
  161. }
  162. auto& packet = *static_cast<IPv4Packet const*>(eth.payload());
  163. if (packet.length() < sizeof(IPv4Packet)) {
  164. dbgln("handle_ipv4: IPv4 packet too short ({}, need {})", packet.length(), sizeof(IPv4Packet));
  165. return;
  166. }
  167. size_t actual_ipv4_packet_length = frame_size - sizeof(EthernetFrameHeader);
  168. if (packet.length() > actual_ipv4_packet_length) {
  169. dbgln("handle_ipv4: IPv4 packet claims to be longer than it is ({}, actually {})", packet.length(), actual_ipv4_packet_length);
  170. return;
  171. }
  172. dbgln_if(IPV4_DEBUG, "handle_ipv4: source={}, destination={}", packet.source(), packet.destination());
  173. NetworkingManagement::the().for_each([&](auto& adapter) {
  174. if (adapter.link_up()) {
  175. auto my_net = adapter.ipv4_address().to_u32() & adapter.ipv4_netmask().to_u32();
  176. auto their_net = packet.source().to_u32() & adapter.ipv4_netmask().to_u32();
  177. if (my_net == their_net)
  178. update_arp_table(packet.source(), eth.source(), UpdateArp::Set);
  179. }
  180. });
  181. switch ((IPv4Protocol)packet.protocol()) {
  182. case IPv4Protocol::ICMP:
  183. return handle_icmp(eth, packet, packet_timestamp);
  184. case IPv4Protocol::UDP:
  185. return handle_udp(packet, packet_timestamp);
  186. case IPv4Protocol::TCP:
  187. return handle_tcp(packet, packet_timestamp);
  188. default:
  189. dbgln_if(IPV4_DEBUG, "handle_ipv4: Unhandled protocol {:#02x}", packet.protocol());
  190. break;
  191. }
  192. }
  193. void handle_icmp(EthernetFrameHeader const& eth, IPv4Packet const& ipv4_packet, Time const& packet_timestamp)
  194. {
  195. auto& icmp_header = *static_cast<ICMPHeader const*>(ipv4_packet.payload());
  196. dbgln_if(ICMP_DEBUG, "handle_icmp: source={}, destination={}, type={:#02x}, code={:#02x}", ipv4_packet.source().to_string(), ipv4_packet.destination().to_string(), icmp_header.type(), icmp_header.code());
  197. {
  198. NonnullRefPtrVector<IPv4Socket> icmp_sockets;
  199. IPv4Socket::all_sockets().with_exclusive([&](auto& sockets) {
  200. for (auto& socket : sockets) {
  201. if (socket.protocol() == (unsigned)IPv4Protocol::ICMP)
  202. icmp_sockets.append(socket);
  203. }
  204. });
  205. for (auto& socket : icmp_sockets)
  206. socket.did_receive(ipv4_packet.source(), 0, { &ipv4_packet, sizeof(IPv4Packet) + ipv4_packet.payload_size() }, packet_timestamp);
  207. }
  208. auto adapter = NetworkingManagement::the().from_ipv4_address(ipv4_packet.destination());
  209. if (!adapter)
  210. return;
  211. if (icmp_header.type() == ICMPType::EchoRequest) {
  212. auto& request = reinterpret_cast<ICMPEchoPacket const&>(icmp_header);
  213. dbgln("handle_icmp: EchoRequest from {}: id={}, seq={}", ipv4_packet.source(), (u16)request.identifier, (u16)request.sequence_number);
  214. size_t icmp_packet_size = ipv4_packet.payload_size();
  215. if (icmp_packet_size < sizeof(ICMPEchoPacket)) {
  216. dbgln("handle_icmp: EchoRequest packet is too small, ignoring.");
  217. return;
  218. }
  219. auto ipv4_payload_offset = adapter->ipv4_payload_offset();
  220. auto packet = adapter->acquire_packet_buffer(ipv4_payload_offset + icmp_packet_size);
  221. if (!packet) {
  222. dbgln("Could not allocate packet buffer while sending ICMP packet");
  223. return;
  224. }
  225. adapter->fill_in_ipv4_header(*packet, adapter->ipv4_address(), eth.source(), ipv4_packet.source(), IPv4Protocol::ICMP, icmp_packet_size, 64);
  226. memset(packet->buffer->data() + ipv4_payload_offset, 0, sizeof(ICMPEchoPacket));
  227. auto& response = *(ICMPEchoPacket*)(packet->buffer->data() + ipv4_payload_offset);
  228. response.header.set_type(ICMPType::EchoReply);
  229. response.header.set_code(0);
  230. response.identifier = request.identifier;
  231. response.sequence_number = request.sequence_number;
  232. if (size_t icmp_payload_size = icmp_packet_size - sizeof(ICMPEchoPacket))
  233. memcpy(response.payload(), request.payload(), icmp_payload_size);
  234. response.header.set_checksum(internet_checksum(&response, icmp_packet_size));
  235. // FIXME: What is the right TTL value here? Is 64 ok? Should we use the same TTL as the echo request?
  236. adapter->send_packet(packet->bytes());
  237. adapter->release_packet_buffer(*packet);
  238. }
  239. }
  240. void handle_udp(IPv4Packet const& ipv4_packet, Time const& packet_timestamp)
  241. {
  242. if (ipv4_packet.payload_size() < sizeof(UDPPacket)) {
  243. dbgln("handle_udp: Packet too small ({}, need {})", ipv4_packet.payload_size(), sizeof(UDPPacket));
  244. return;
  245. }
  246. auto& udp_packet = *static_cast<UDPPacket const*>(ipv4_packet.payload());
  247. dbgln_if(UDP_DEBUG, "handle_udp: source={}:{}, destination={}:{}, length={}",
  248. ipv4_packet.source(), udp_packet.source_port(),
  249. ipv4_packet.destination(), udp_packet.destination_port(),
  250. udp_packet.length());
  251. auto socket = UDPSocket::from_port(udp_packet.destination_port());
  252. if (!socket) {
  253. dbgln_if(UDP_DEBUG, "handle_udp: No local UDP socket for {}:{}", ipv4_packet.destination(), udp_packet.destination_port());
  254. return;
  255. }
  256. VERIFY(socket->type() == SOCK_DGRAM);
  257. VERIFY(socket->local_port() == udp_packet.destination_port());
  258. auto& destination = ipv4_packet.destination();
  259. if (destination == IPv4Address(255, 255, 255, 255) || NetworkingManagement::the().from_ipv4_address(destination) || socket->multicast_memberships().contains_slow(destination))
  260. socket->did_receive(ipv4_packet.source(), udp_packet.source_port(), { &ipv4_packet, sizeof(IPv4Packet) + ipv4_packet.payload_size() }, packet_timestamp);
  261. }
  262. void send_delayed_tcp_ack(RefPtr<TCPSocket> socket)
  263. {
  264. VERIFY(socket->mutex().is_locked());
  265. if (!socket->should_delay_next_ack()) {
  266. [[maybe_unused]] auto result = socket->send_ack();
  267. return;
  268. }
  269. delayed_ack_sockets->set(move(socket));
  270. }
  271. void flush_delayed_tcp_acks()
  272. {
  273. Vector<RefPtr<TCPSocket>, 32> remaining_sockets;
  274. for (auto& socket : *delayed_ack_sockets) {
  275. MutexLocker locker(socket->mutex());
  276. if (socket->should_delay_next_ack()) {
  277. remaining_sockets.append(socket);
  278. continue;
  279. }
  280. [[maybe_unused]] auto result = socket->send_ack();
  281. }
  282. if (remaining_sockets.size() != delayed_ack_sockets->size()) {
  283. delayed_ack_sockets->clear();
  284. if (remaining_sockets.size() > 0)
  285. dbgln("flush_delayed_tcp_acks: {} sockets remaining", remaining_sockets.size());
  286. for (auto&& socket : remaining_sockets)
  287. delayed_ack_sockets->set(move(socket));
  288. }
  289. }
  290. void send_tcp_rst(IPv4Packet const& ipv4_packet, TCPPacket const& tcp_packet, RefPtr<NetworkAdapter> adapter)
  291. {
  292. auto routing_decision = route_to(ipv4_packet.source(), ipv4_packet.destination(), adapter);
  293. if (routing_decision.is_zero())
  294. return;
  295. auto ipv4_payload_offset = routing_decision.adapter->ipv4_payload_offset();
  296. const size_t options_size = 0;
  297. const size_t tcp_header_size = sizeof(TCPPacket) + options_size;
  298. const size_t buffer_size = ipv4_payload_offset + tcp_header_size;
  299. auto packet = routing_decision.adapter->acquire_packet_buffer(buffer_size);
  300. if (!packet)
  301. return;
  302. routing_decision.adapter->fill_in_ipv4_header(*packet, ipv4_packet.destination(),
  303. routing_decision.next_hop, ipv4_packet.source(), IPv4Protocol::TCP,
  304. buffer_size - ipv4_payload_offset, 64);
  305. auto& rst_packet = *(TCPPacket*)(packet->buffer->data() + ipv4_payload_offset);
  306. rst_packet = {};
  307. rst_packet.set_source_port(tcp_packet.destination_port());
  308. rst_packet.set_destination_port(tcp_packet.source_port());
  309. rst_packet.set_window_size(0);
  310. rst_packet.set_sequence_number(0);
  311. rst_packet.set_ack_number(tcp_packet.sequence_number() + 1);
  312. rst_packet.set_data_offset(tcp_header_size / sizeof(u32));
  313. rst_packet.set_flags(TCPFlags::RST | TCPFlags::ACK);
  314. rst_packet.set_checksum(TCPSocket::compute_tcp_checksum(ipv4_packet.source(), ipv4_packet.destination(), rst_packet, 0));
  315. routing_decision.adapter->send_packet(packet->bytes());
  316. routing_decision.adapter->release_packet_buffer(*packet);
  317. }
  318. void handle_tcp(IPv4Packet const& ipv4_packet, Time const& packet_timestamp)
  319. {
  320. if (ipv4_packet.payload_size() < sizeof(TCPPacket)) {
  321. dbgln("handle_tcp: IPv4 payload is too small to be a TCP packet ({}, need {})", ipv4_packet.payload_size(), sizeof(TCPPacket));
  322. return;
  323. }
  324. auto& tcp_packet = *static_cast<TCPPacket const*>(ipv4_packet.payload());
  325. size_t minimum_tcp_header_size = 5 * sizeof(u32);
  326. size_t maximum_tcp_header_size = 15 * sizeof(u32);
  327. if (tcp_packet.header_size() < minimum_tcp_header_size || tcp_packet.header_size() > maximum_tcp_header_size) {
  328. dbgln("handle_tcp: TCP packet header has invalid size {}", tcp_packet.header_size());
  329. }
  330. if (ipv4_packet.payload_size() < tcp_packet.header_size()) {
  331. dbgln("handle_tcp: IPv4 payload is smaller than TCP header claims ({}, supposedly {})", ipv4_packet.payload_size(), tcp_packet.header_size());
  332. return;
  333. }
  334. size_t payload_size = ipv4_packet.payload_size() - tcp_packet.header_size();
  335. dbgln_if(TCP_DEBUG, "handle_tcp: source={}:{}, destination={}:{}, seq_no={}, ack_no={}, flags={:#04x} ({}{}{}{}), window_size={}, payload_size={}",
  336. ipv4_packet.source().to_string(),
  337. tcp_packet.source_port(),
  338. ipv4_packet.destination().to_string(),
  339. tcp_packet.destination_port(),
  340. tcp_packet.sequence_number(),
  341. tcp_packet.ack_number(),
  342. tcp_packet.flags(),
  343. tcp_packet.has_syn() ? "SYN " : "",
  344. tcp_packet.has_ack() ? "ACK " : "",
  345. tcp_packet.has_fin() ? "FIN " : "",
  346. tcp_packet.has_rst() ? "RST " : "",
  347. tcp_packet.window_size(),
  348. payload_size);
  349. auto adapter = NetworkingManagement::the().from_ipv4_address(ipv4_packet.destination());
  350. if (!adapter) {
  351. dbgln("handle_tcp: this packet is not for me, it's for {}", ipv4_packet.destination());
  352. return;
  353. }
  354. IPv4SocketTuple tuple(ipv4_packet.destination(), tcp_packet.destination_port(), ipv4_packet.source(), tcp_packet.source_port());
  355. dbgln_if(TCP_DEBUG, "handle_tcp: looking for socket; tuple={}", tuple.to_string());
  356. auto socket = TCPSocket::from_tuple(tuple);
  357. if (!socket) {
  358. if (!tcp_packet.has_rst()) {
  359. dbgln("handle_tcp: No TCP socket for tuple {}. Sending RST.", tuple.to_string());
  360. send_tcp_rst(ipv4_packet, tcp_packet, adapter);
  361. }
  362. return;
  363. }
  364. MutexLocker locker(socket->mutex());
  365. VERIFY(socket->type() == SOCK_STREAM);
  366. VERIFY(socket->local_port() == tcp_packet.destination_port());
  367. dbgln_if(TCP_DEBUG, "handle_tcp: got socket {}; state={}", socket->tuple().to_string(), TCPSocket::to_string(socket->state()));
  368. socket->receive_tcp_packet(tcp_packet, ipv4_packet.payload_size());
  369. switch (socket->state()) {
  370. case TCPSocket::State::Closed:
  371. dbgln("handle_tcp: unexpected flags in Closed state");
  372. // TODO: we may want to send an RST here, maybe as a configurable option
  373. return;
  374. case TCPSocket::State::TimeWait:
  375. dbgln("handle_tcp: unexpected flags in TimeWait state");
  376. (void)socket->send_tcp_packet(TCPFlags::RST);
  377. socket->set_state(TCPSocket::State::Closed);
  378. return;
  379. case TCPSocket::State::Listen:
  380. switch (tcp_packet.flags()) {
  381. case TCPFlags::SYN: {
  382. dbgln_if(TCP_DEBUG, "handle_tcp: incoming connection");
  383. auto& local_address = ipv4_packet.destination();
  384. auto& peer_address = ipv4_packet.source();
  385. auto client = socket->create_client(local_address, tcp_packet.destination_port(), peer_address, tcp_packet.source_port());
  386. if (!client) {
  387. dmesgln("handle_tcp: couldn't create client socket");
  388. return;
  389. }
  390. MutexLocker locker(client->mutex());
  391. dbgln_if(TCP_DEBUG, "handle_tcp: created new client socket with tuple {}", client->tuple().to_string());
  392. client->set_sequence_number(1000);
  393. client->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  394. [[maybe_unused]] auto rc2 = client->send_tcp_packet(TCPFlags::SYN | TCPFlags::ACK);
  395. client->set_state(TCPSocket::State::SynReceived);
  396. return;
  397. }
  398. default:
  399. dbgln("handle_tcp: unexpected flags in Listen state ({:x})", tcp_packet.flags());
  400. // socket->send_tcp_packet(TCPFlags::RST);
  401. return;
  402. }
  403. case TCPSocket::State::SynSent:
  404. switch (tcp_packet.flags()) {
  405. case TCPFlags::SYN:
  406. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  407. (void)socket->send_ack(true);
  408. socket->set_state(TCPSocket::State::SynReceived);
  409. return;
  410. case TCPFlags::ACK | TCPFlags::SYN:
  411. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  412. (void)socket->send_ack(true);
  413. socket->set_state(TCPSocket::State::Established);
  414. socket->set_setup_state(Socket::SetupState::Completed);
  415. socket->set_connected(true);
  416. return;
  417. case TCPFlags::ACK | TCPFlags::FIN:
  418. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  419. send_delayed_tcp_ack(socket);
  420. socket->set_state(TCPSocket::State::Closed);
  421. socket->set_error(TCPSocket::Error::FINDuringConnect);
  422. socket->set_setup_state(Socket::SetupState::Completed);
  423. return;
  424. case TCPFlags::ACK | TCPFlags::RST:
  425. socket->set_state(TCPSocket::State::Closed);
  426. socket->set_error(TCPSocket::Error::RSTDuringConnect);
  427. socket->set_setup_state(Socket::SetupState::Completed);
  428. return;
  429. default:
  430. dbgln("handle_tcp: unexpected flags in SynSent state ({:x})", tcp_packet.flags());
  431. (void)socket->send_tcp_packet(TCPFlags::RST);
  432. socket->set_state(TCPSocket::State::Closed);
  433. socket->set_error(TCPSocket::Error::UnexpectedFlagsDuringConnect);
  434. socket->set_setup_state(Socket::SetupState::Completed);
  435. return;
  436. }
  437. case TCPSocket::State::SynReceived:
  438. switch (tcp_packet.flags()) {
  439. case TCPFlags::ACK:
  440. socket->set_ack_number(tcp_packet.sequence_number() + payload_size);
  441. switch (socket->direction()) {
  442. case TCPSocket::Direction::Incoming:
  443. if (!socket->has_originator()) {
  444. dbgln("handle_tcp: connection doesn't have an originating socket; maybe it went away?");
  445. (void)socket->send_tcp_packet(TCPFlags::RST);
  446. socket->set_state(TCPSocket::State::Closed);
  447. return;
  448. }
  449. socket->set_state(TCPSocket::State::Established);
  450. socket->set_setup_state(Socket::SetupState::Completed);
  451. socket->release_to_originator();
  452. return;
  453. case TCPSocket::Direction::Outgoing:
  454. socket->set_state(TCPSocket::State::Established);
  455. socket->set_setup_state(Socket::SetupState::Completed);
  456. socket->set_connected(true);
  457. return;
  458. default:
  459. dbgln("handle_tcp: got ACK in SynReceived state but direction is invalid ({})", TCPSocket::to_string(socket->direction()));
  460. (void)socket->send_tcp_packet(TCPFlags::RST);
  461. socket->set_state(TCPSocket::State::Closed);
  462. return;
  463. }
  464. return;
  465. case TCPFlags::SYN:
  466. dbgln("handle_tcp: ignoring SYN for partially established connection");
  467. return;
  468. default:
  469. dbgln("handle_tcp: unexpected flags in SynReceived state ({:x})", tcp_packet.flags());
  470. (void)socket->send_tcp_packet(TCPFlags::RST);
  471. socket->set_state(TCPSocket::State::Closed);
  472. return;
  473. }
  474. case TCPSocket::State::CloseWait:
  475. switch (tcp_packet.flags()) {
  476. default:
  477. dbgln("handle_tcp: unexpected flags in CloseWait state ({:x})", tcp_packet.flags());
  478. (void)socket->send_tcp_packet(TCPFlags::RST);
  479. socket->set_state(TCPSocket::State::Closed);
  480. return;
  481. }
  482. case TCPSocket::State::LastAck:
  483. switch (tcp_packet.flags()) {
  484. case TCPFlags::ACK:
  485. socket->set_ack_number(tcp_packet.sequence_number() + payload_size);
  486. socket->set_state(TCPSocket::State::Closed);
  487. return;
  488. default:
  489. dbgln("handle_tcp: unexpected flags in LastAck state ({:x})", tcp_packet.flags());
  490. (void)socket->send_tcp_packet(TCPFlags::RST);
  491. socket->set_state(TCPSocket::State::Closed);
  492. return;
  493. }
  494. case TCPSocket::State::FinWait1:
  495. switch (tcp_packet.flags()) {
  496. case TCPFlags::ACK:
  497. socket->set_ack_number(tcp_packet.sequence_number() + payload_size);
  498. socket->set_state(TCPSocket::State::FinWait2);
  499. return;
  500. case TCPFlags::FIN:
  501. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  502. socket->set_state(TCPSocket::State::Closing);
  503. return;
  504. default:
  505. dbgln("handle_tcp: unexpected flags in FinWait1 state ({:x})", tcp_packet.flags());
  506. (void)socket->send_tcp_packet(TCPFlags::RST);
  507. socket->set_state(TCPSocket::State::Closed);
  508. return;
  509. }
  510. case TCPSocket::State::FinWait2:
  511. switch (tcp_packet.flags()) {
  512. case TCPFlags::FIN:
  513. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  514. socket->set_state(TCPSocket::State::TimeWait);
  515. return;
  516. case TCPFlags::ACK | TCPFlags::RST:
  517. socket->set_state(TCPSocket::State::Closed);
  518. return;
  519. default:
  520. dbgln("handle_tcp: unexpected flags in FinWait2 state ({:x})", tcp_packet.flags());
  521. (void)socket->send_tcp_packet(TCPFlags::RST);
  522. socket->set_state(TCPSocket::State::Closed);
  523. return;
  524. }
  525. case TCPSocket::State::Closing:
  526. switch (tcp_packet.flags()) {
  527. case TCPFlags::ACK:
  528. socket->set_ack_number(tcp_packet.sequence_number() + payload_size);
  529. socket->set_state(TCPSocket::State::TimeWait);
  530. return;
  531. default:
  532. dbgln("handle_tcp: unexpected flags in Closing state ({:x})", tcp_packet.flags());
  533. (void)socket->send_tcp_packet(TCPFlags::RST);
  534. socket->set_state(TCPSocket::State::Closed);
  535. return;
  536. }
  537. case TCPSocket::State::Established:
  538. if (tcp_packet.has_rst()) {
  539. socket->set_state(TCPSocket::State::Closed);
  540. return;
  541. }
  542. if (tcp_packet.sequence_number() != socket->ack_number()) {
  543. dbgln_if(TCP_DEBUG, "Discarding out of order packet: seq {} vs. ack {}", tcp_packet.sequence_number(), socket->ack_number());
  544. if (socket->duplicate_acks() < TCPSocket::maximum_duplicate_acks) {
  545. dbgln_if(TCP_DEBUG, "Sending ACK with same ack number to trigger fast retransmission");
  546. socket->set_duplicate_acks(socket->duplicate_acks() + 1);
  547. [[maybe_unused]] auto result = socket->send_ack(true);
  548. }
  549. return;
  550. }
  551. socket->set_duplicate_acks(0);
  552. if (tcp_packet.has_fin()) {
  553. if (payload_size != 0)
  554. socket->did_receive(ipv4_packet.source(), tcp_packet.source_port(), { &ipv4_packet, sizeof(IPv4Packet) + ipv4_packet.payload_size() }, packet_timestamp);
  555. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  556. send_delayed_tcp_ack(socket);
  557. socket->set_state(TCPSocket::State::CloseWait);
  558. socket->set_connected(false);
  559. return;
  560. }
  561. if (payload_size) {
  562. if (socket->did_receive(ipv4_packet.source(), tcp_packet.source_port(), { &ipv4_packet, sizeof(IPv4Packet) + ipv4_packet.payload_size() }, packet_timestamp)) {
  563. socket->set_ack_number(tcp_packet.sequence_number() + payload_size);
  564. dbgln_if(TCP_DEBUG, "Got packet with ack_no={}, seq_no={}, payload_size={}, acking it with new ack_no={}, seq_no={}",
  565. tcp_packet.ack_number(), tcp_packet.sequence_number(), payload_size, socket->ack_number(), socket->sequence_number());
  566. send_delayed_tcp_ack(socket);
  567. }
  568. }
  569. }
  570. }
  571. void retransmit_tcp_packets()
  572. {
  573. // We must keep the sockets alive until after we've unlocked the hash table
  574. // in case retransmit_packets() realizes that it wants to close the socket.
  575. NonnullRefPtrVector<TCPSocket, 16> sockets;
  576. TCPSocket::sockets_for_retransmit().for_each_shared([&](const auto& socket) {
  577. sockets.append(socket);
  578. });
  579. for (auto& socket : sockets) {
  580. MutexLocker socket_locker(socket.mutex());
  581. socket.retransmit_packets();
  582. }
  583. }
  584. }