TCPSocket.cpp 22 KB

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  1. /*
  2. * Copyright (c) 2018-2020, Andreas Kling <kling@serenityos.org>
  3. *
  4. * SPDX-License-Identifier: BSD-2-Clause
  5. */
  6. #include <AK/Singleton.h>
  7. #include <AK/Time.h>
  8. #include <Kernel/Debug.h>
  9. #include <Kernel/Devices/RandomDevice.h>
  10. #include <Kernel/FileSystem/OpenFileDescription.h>
  11. #include <Kernel/Locking/MutexProtected.h>
  12. #include <Kernel/Net/EthernetFrameHeader.h>
  13. #include <Kernel/Net/IPv4.h>
  14. #include <Kernel/Net/NetworkAdapter.h>
  15. #include <Kernel/Net/NetworkingManagement.h>
  16. #include <Kernel/Net/Routing.h>
  17. #include <Kernel/Net/TCP.h>
  18. #include <Kernel/Net/TCPSocket.h>
  19. #include <Kernel/Process.h>
  20. #include <Kernel/Random.h>
  21. namespace Kernel {
  22. void TCPSocket::for_each(Function<void(const TCPSocket&)> callback)
  23. {
  24. sockets_by_tuple().for_each_shared([&](const auto& it) {
  25. callback(*it.value);
  26. });
  27. }
  28. void TCPSocket::set_state(State new_state)
  29. {
  30. dbgln_if(TCP_SOCKET_DEBUG, "TCPSocket({}) state moving from {} to {}", this, to_string(m_state), to_string(new_state));
  31. auto was_disconnected = protocol_is_disconnected();
  32. auto previous_role = m_role;
  33. m_state = new_state;
  34. if (new_state == State::Established && m_direction == Direction::Outgoing) {
  35. set_role(Role::Connected);
  36. [[maybe_unused]] auto rc = set_so_error(KSuccess);
  37. }
  38. if (new_state == State::TimeWait) {
  39. // Once we hit TimeWait, we are only holding the socket in case there
  40. // are packets on the way which we wouldn't want a new socket to get hit
  41. // with, so there's no point in keeping the receive buffer around.
  42. drop_receive_buffer();
  43. }
  44. if (new_state == State::Closed) {
  45. closing_sockets().with_exclusive([&](auto& table) {
  46. table.remove(tuple());
  47. });
  48. if (m_originator)
  49. release_to_originator();
  50. }
  51. if (previous_role != m_role || was_disconnected != protocol_is_disconnected())
  52. evaluate_block_conditions();
  53. }
  54. static Singleton<MutexProtected<HashMap<IPv4SocketTuple, RefPtr<TCPSocket>>>> s_socket_closing;
  55. MutexProtected<HashMap<IPv4SocketTuple, RefPtr<TCPSocket>>>& TCPSocket::closing_sockets()
  56. {
  57. return *s_socket_closing;
  58. }
  59. static Singleton<MutexProtected<HashMap<IPv4SocketTuple, TCPSocket*>>> s_socket_tuples;
  60. MutexProtected<HashMap<IPv4SocketTuple, TCPSocket*>>& TCPSocket::sockets_by_tuple()
  61. {
  62. return *s_socket_tuples;
  63. }
  64. RefPtr<TCPSocket> TCPSocket::from_tuple(const IPv4SocketTuple& tuple)
  65. {
  66. return sockets_by_tuple().with_shared([&](const auto& table) -> RefPtr<TCPSocket> {
  67. auto exact_match = table.get(tuple);
  68. if (exact_match.has_value())
  69. return { *exact_match.value() };
  70. auto address_tuple = IPv4SocketTuple(tuple.local_address(), tuple.local_port(), IPv4Address(), 0);
  71. auto address_match = table.get(address_tuple);
  72. if (address_match.has_value())
  73. return { *address_match.value() };
  74. auto wildcard_tuple = IPv4SocketTuple(IPv4Address(), tuple.local_port(), IPv4Address(), 0);
  75. auto wildcard_match = table.get(wildcard_tuple);
  76. if (wildcard_match.has_value())
  77. return { *wildcard_match.value() };
  78. return {};
  79. });
  80. }
  81. KResultOr<NonnullRefPtr<TCPSocket>> TCPSocket::try_create_client(const IPv4Address& new_local_address, u16 new_local_port, const IPv4Address& new_peer_address, u16 new_peer_port)
  82. {
  83. auto tuple = IPv4SocketTuple(new_local_address, new_local_port, new_peer_address, new_peer_port);
  84. return sockets_by_tuple().with_exclusive([&](auto& table) -> KResultOr<NonnullRefPtr<TCPSocket>> {
  85. if (table.contains(tuple))
  86. return EEXIST;
  87. auto receive_buffer = TRY(try_create_receive_buffer());
  88. auto client = TRY(TCPSocket::try_create(protocol(), move(receive_buffer)));
  89. client->set_setup_state(SetupState::InProgress);
  90. client->set_local_address(new_local_address);
  91. client->set_local_port(new_local_port);
  92. client->set_peer_address(new_peer_address);
  93. client->set_peer_port(new_peer_port);
  94. client->set_direction(Direction::Incoming);
  95. client->set_originator(*this);
  96. m_pending_release_for_accept.set(tuple, client);
  97. table.set(tuple, client);
  98. return { move(client) };
  99. });
  100. }
  101. void TCPSocket::release_to_originator()
  102. {
  103. VERIFY(!!m_originator);
  104. m_originator.strong_ref()->release_for_accept(this);
  105. m_originator.clear();
  106. }
  107. void TCPSocket::release_for_accept(RefPtr<TCPSocket> socket)
  108. {
  109. VERIFY(m_pending_release_for_accept.contains(socket->tuple()));
  110. m_pending_release_for_accept.remove(socket->tuple());
  111. // FIXME: Should we observe this error somehow?
  112. [[maybe_unused]] auto rc = queue_connection_from(*socket);
  113. }
  114. TCPSocket::TCPSocket(int protocol, NonnullOwnPtr<DoubleBuffer> receive_buffer, NonnullOwnPtr<KBuffer> scratch_buffer)
  115. : IPv4Socket(SOCK_STREAM, protocol, move(receive_buffer), move(scratch_buffer))
  116. {
  117. m_last_retransmit_time = kgettimeofday();
  118. }
  119. TCPSocket::~TCPSocket()
  120. {
  121. sockets_by_tuple().with_exclusive([&](auto& table) {
  122. table.remove(tuple());
  123. });
  124. dequeue_for_retransmit();
  125. dbgln_if(TCP_SOCKET_DEBUG, "~TCPSocket in state {}", to_string(state()));
  126. }
  127. KResultOr<NonnullRefPtr<TCPSocket>> TCPSocket::try_create(int protocol, NonnullOwnPtr<DoubleBuffer> receive_buffer)
  128. {
  129. // Note: Scratch buffer is only used for SOCK_STREAM sockets.
  130. auto scratch_buffer = TRY(KBuffer::try_create_with_size(65536));
  131. return adopt_nonnull_ref_or_enomem(new (nothrow) TCPSocket(protocol, move(receive_buffer), move(scratch_buffer)));
  132. }
  133. KResultOr<size_t> TCPSocket::protocol_receive(ReadonlyBytes raw_ipv4_packet, UserOrKernelBuffer& buffer, size_t buffer_size, [[maybe_unused]] int flags)
  134. {
  135. auto& ipv4_packet = *reinterpret_cast<const IPv4Packet*>(raw_ipv4_packet.data());
  136. auto& tcp_packet = *static_cast<const TCPPacket*>(ipv4_packet.payload());
  137. size_t payload_size = raw_ipv4_packet.size() - sizeof(IPv4Packet) - tcp_packet.header_size();
  138. dbgln_if(TCP_SOCKET_DEBUG, "payload_size {}, will it fit in {}?", payload_size, buffer_size);
  139. VERIFY(buffer_size >= payload_size);
  140. SOCKET_TRY(buffer.write(tcp_packet.payload(), payload_size));
  141. return payload_size;
  142. }
  143. KResultOr<size_t> TCPSocket::protocol_send(const UserOrKernelBuffer& data, size_t data_length)
  144. {
  145. RoutingDecision routing_decision = route_to(peer_address(), local_address(), bound_interface());
  146. if (routing_decision.is_zero())
  147. return set_so_error(EHOSTUNREACH);
  148. size_t mss = routing_decision.adapter->mtu() - sizeof(IPv4Packet) - sizeof(TCPPacket);
  149. data_length = min(data_length, mss);
  150. TRY(send_tcp_packet(TCPFlags::PUSH | TCPFlags::ACK, &data, data_length, &routing_decision));
  151. return data_length;
  152. }
  153. KResult TCPSocket::send_ack(bool allow_duplicate)
  154. {
  155. if (!allow_duplicate && m_last_ack_number_sent == m_ack_number)
  156. return KSuccess;
  157. return send_tcp_packet(TCPFlags::ACK);
  158. }
  159. KResult TCPSocket::send_tcp_packet(u16 flags, const UserOrKernelBuffer* payload, size_t payload_size, RoutingDecision* user_routing_decision)
  160. {
  161. RoutingDecision routing_decision = user_routing_decision ? *user_routing_decision : route_to(peer_address(), local_address(), bound_interface());
  162. if (routing_decision.is_zero())
  163. return set_so_error(EHOSTUNREACH);
  164. auto ipv4_payload_offset = routing_decision.adapter->ipv4_payload_offset();
  165. const bool has_mss_option = flags == TCPFlags::SYN;
  166. const size_t options_size = has_mss_option ? sizeof(TCPOptionMSS) : 0;
  167. const size_t tcp_header_size = sizeof(TCPPacket) + options_size;
  168. const size_t buffer_size = ipv4_payload_offset + tcp_header_size + payload_size;
  169. auto packet = routing_decision.adapter->acquire_packet_buffer(buffer_size);
  170. if (!packet)
  171. return set_so_error(ENOMEM);
  172. routing_decision.adapter->fill_in_ipv4_header(*packet, local_address(),
  173. routing_decision.next_hop, peer_address(), IPv4Protocol::TCP,
  174. buffer_size - ipv4_payload_offset, type_of_service(), ttl());
  175. memset(packet->buffer->data() + ipv4_payload_offset, 0, sizeof(TCPPacket));
  176. auto& tcp_packet = *(TCPPacket*)(packet->buffer->data() + ipv4_payload_offset);
  177. VERIFY(local_port());
  178. tcp_packet.set_source_port(local_port());
  179. tcp_packet.set_destination_port(peer_port());
  180. tcp_packet.set_window_size(NumericLimits<u16>::max());
  181. tcp_packet.set_sequence_number(m_sequence_number);
  182. tcp_packet.set_data_offset(tcp_header_size / sizeof(u32));
  183. tcp_packet.set_flags(flags);
  184. if (flags & TCPFlags::ACK) {
  185. m_last_ack_number_sent = m_ack_number;
  186. m_last_ack_sent_time = kgettimeofday();
  187. tcp_packet.set_ack_number(m_ack_number);
  188. }
  189. if (payload) {
  190. if (auto result = payload->read(tcp_packet.payload(), payload_size); result.is_error()) {
  191. routing_decision.adapter->release_packet_buffer(*packet);
  192. return set_so_error(result);
  193. }
  194. }
  195. if (flags & TCPFlags::SYN) {
  196. ++m_sequence_number;
  197. } else {
  198. m_sequence_number += payload_size;
  199. }
  200. if (has_mss_option) {
  201. u16 mss = routing_decision.adapter->mtu() - sizeof(IPv4Packet) - sizeof(TCPPacket);
  202. TCPOptionMSS mss_option { mss };
  203. VERIFY(packet->buffer->size() >= ipv4_payload_offset + sizeof(TCPPacket) + sizeof(mss_option));
  204. memcpy(packet->buffer->data() + ipv4_payload_offset + sizeof(TCPPacket), &mss_option, sizeof(mss_option));
  205. }
  206. tcp_packet.set_checksum(compute_tcp_checksum(local_address(), peer_address(), tcp_packet, payload_size));
  207. routing_decision.adapter->send_packet(packet->bytes());
  208. m_packets_out++;
  209. m_bytes_out += buffer_size;
  210. if (tcp_packet.has_syn() || payload_size > 0) {
  211. m_unacked_packets.with_exclusive([&](auto& unacked_packets) {
  212. unacked_packets.packets.append({ m_sequence_number, move(packet), ipv4_payload_offset, *routing_decision.adapter });
  213. unacked_packets.size += payload_size;
  214. enqueue_for_retransmit();
  215. });
  216. } else {
  217. routing_decision.adapter->release_packet_buffer(*packet);
  218. }
  219. return KSuccess;
  220. }
  221. void TCPSocket::receive_tcp_packet(const TCPPacket& packet, u16 size)
  222. {
  223. if (packet.has_ack()) {
  224. u32 ack_number = packet.ack_number();
  225. dbgln_if(TCP_SOCKET_DEBUG, "TCPSocket: receive_tcp_packet: {}", ack_number);
  226. int removed = 0;
  227. m_unacked_packets.with_exclusive([&](auto& unacked_packets) {
  228. while (!unacked_packets.packets.is_empty()) {
  229. auto& packet = unacked_packets.packets.first();
  230. dbgln_if(TCP_SOCKET_DEBUG, "TCPSocket: iterate: {}", packet.ack_number);
  231. if (packet.ack_number <= ack_number) {
  232. auto old_adapter = packet.adapter.strong_ref();
  233. if (old_adapter)
  234. old_adapter->release_packet_buffer(*packet.buffer);
  235. TCPPacket& tcp_packet = *(TCPPacket*)(packet.buffer->buffer->data() + packet.ipv4_payload_offset);
  236. auto payload_size = packet.buffer->buffer->data() + packet.buffer->buffer->size() - (u8*)tcp_packet.payload();
  237. unacked_packets.size -= payload_size;
  238. evaluate_block_conditions();
  239. unacked_packets.packets.take_first();
  240. removed++;
  241. } else {
  242. break;
  243. }
  244. }
  245. if (unacked_packets.packets.is_empty()) {
  246. m_retransmit_attempts = 0;
  247. dequeue_for_retransmit();
  248. }
  249. dbgln_if(TCP_SOCKET_DEBUG, "TCPSocket: receive_tcp_packet acknowledged {} packets", removed);
  250. });
  251. }
  252. m_packets_in++;
  253. m_bytes_in += packet.header_size() + size;
  254. }
  255. bool TCPSocket::should_delay_next_ack() const
  256. {
  257. // FIXME: We don't know the MSS here so make a reasonable guess.
  258. const size_t mss = 1500;
  259. // RFC 1122 says we should send an ACK for every two full-sized segments.
  260. if (m_ack_number >= m_last_ack_number_sent + 2 * mss)
  261. return false;
  262. // RFC 1122 says we should not delay ACKs for more than 500 milliseconds.
  263. if (kgettimeofday() >= m_last_ack_sent_time + Time::from_milliseconds(500))
  264. return false;
  265. return true;
  266. }
  267. NetworkOrdered<u16> TCPSocket::compute_tcp_checksum(const IPv4Address& source, const IPv4Address& destination, const TCPPacket& packet, u16 payload_size)
  268. {
  269. struct [[gnu::packed]] PseudoHeader {
  270. IPv4Address source;
  271. IPv4Address destination;
  272. u8 zero;
  273. u8 protocol;
  274. NetworkOrdered<u16> payload_size;
  275. };
  276. PseudoHeader pseudo_header { source, destination, 0, (u8)IPv4Protocol::TCP, packet.header_size() + payload_size };
  277. u32 checksum = 0;
  278. auto raw_pseudo_header = bit_cast<u16*>(&pseudo_header);
  279. for (size_t i = 0; i < sizeof(pseudo_header) / sizeof(u16); ++i) {
  280. checksum += AK::convert_between_host_and_network_endian(raw_pseudo_header[i]);
  281. if (checksum > 0xffff)
  282. checksum = (checksum >> 16) + (checksum & 0xffff);
  283. }
  284. auto raw_packet = bit_cast<u16*>(&packet);
  285. for (size_t i = 0; i < packet.header_size() / sizeof(u16); ++i) {
  286. checksum += AK::convert_between_host_and_network_endian(raw_packet[i]);
  287. if (checksum > 0xffff)
  288. checksum = (checksum >> 16) + (checksum & 0xffff);
  289. }
  290. VERIFY(packet.data_offset() * 4 == packet.header_size());
  291. auto raw_payload = bit_cast<u16*>(packet.payload());
  292. for (size_t i = 0; i < payload_size / sizeof(u16); ++i) {
  293. checksum += AK::convert_between_host_and_network_endian(raw_payload[i]);
  294. if (checksum > 0xffff)
  295. checksum = (checksum >> 16) + (checksum & 0xffff);
  296. }
  297. if (payload_size & 1) {
  298. u16 expanded_byte = ((const u8*)packet.payload())[payload_size - 1] << 8;
  299. checksum += expanded_byte;
  300. if (checksum > 0xffff)
  301. checksum = (checksum >> 16) + (checksum & 0xffff);
  302. }
  303. return ~(checksum & 0xffff);
  304. }
  305. KResult TCPSocket::protocol_bind()
  306. {
  307. if (has_specific_local_address() && !m_adapter) {
  308. m_adapter = NetworkingManagement::the().from_ipv4_address(local_address());
  309. if (!m_adapter)
  310. return set_so_error(EADDRNOTAVAIL);
  311. }
  312. return KSuccess;
  313. }
  314. KResult TCPSocket::protocol_listen(bool did_allocate_port)
  315. {
  316. if (!did_allocate_port) {
  317. bool ok = sockets_by_tuple().with_exclusive([&](auto& table) -> bool {
  318. if (table.contains(tuple()))
  319. return false;
  320. table.set(tuple(), this);
  321. return true;
  322. });
  323. if (!ok)
  324. return set_so_error(EADDRINUSE);
  325. }
  326. set_direction(Direction::Passive);
  327. set_state(State::Listen);
  328. set_setup_state(SetupState::Completed);
  329. return KSuccess;
  330. }
  331. KResult TCPSocket::protocol_connect(OpenFileDescription& description, ShouldBlock should_block)
  332. {
  333. MutexLocker locker(mutex());
  334. auto routing_decision = route_to(peer_address(), local_address());
  335. if (routing_decision.is_zero())
  336. return set_so_error(EHOSTUNREACH);
  337. if (!has_specific_local_address())
  338. set_local_address(routing_decision.adapter->ipv4_address());
  339. if (auto result = allocate_local_port_if_needed(); result.error_or_port.is_error())
  340. return result.error_or_port.error();
  341. m_sequence_number = get_good_random<u32>();
  342. m_ack_number = 0;
  343. set_setup_state(SetupState::InProgress);
  344. TRY(send_tcp_packet(TCPFlags::SYN));
  345. m_state = State::SynSent;
  346. set_role(Role::Connecting);
  347. m_direction = Direction::Outgoing;
  348. evaluate_block_conditions();
  349. if (should_block == ShouldBlock::Yes) {
  350. locker.unlock();
  351. auto unblock_flags = Thread::FileBlocker::BlockFlags::None;
  352. if (Thread::current()->block<Thread::ConnectBlocker>({}, description, unblock_flags).was_interrupted())
  353. return set_so_error(EINTR);
  354. locker.lock();
  355. VERIFY(setup_state() == SetupState::Completed);
  356. if (has_error()) { // TODO: check unblock_flags
  357. set_role(Role::None);
  358. if (error() == TCPSocket::Error::RetransmitTimeout)
  359. return set_so_error(ETIMEDOUT);
  360. else
  361. return set_so_error(ECONNREFUSED);
  362. }
  363. return KSuccess;
  364. }
  365. return set_so_error(EINPROGRESS);
  366. }
  367. KResultOr<u16> TCPSocket::protocol_allocate_local_port()
  368. {
  369. constexpr u16 first_ephemeral_port = 32768;
  370. constexpr u16 last_ephemeral_port = 60999;
  371. constexpr u16 ephemeral_port_range_size = last_ephemeral_port - first_ephemeral_port;
  372. u16 first_scan_port = first_ephemeral_port + get_good_random<u16>() % ephemeral_port_range_size;
  373. return sockets_by_tuple().with_exclusive([&](auto& table) -> KResultOr<u16> {
  374. for (u16 port = first_scan_port;;) {
  375. IPv4SocketTuple proposed_tuple(local_address(), port, peer_address(), peer_port());
  376. auto it = table.find(proposed_tuple);
  377. if (it == table.end()) {
  378. set_local_port(port);
  379. table.set(proposed_tuple, this);
  380. return port;
  381. }
  382. ++port;
  383. if (port > last_ephemeral_port)
  384. port = first_ephemeral_port;
  385. if (port == first_scan_port)
  386. break;
  387. }
  388. return set_so_error(EADDRINUSE);
  389. });
  390. }
  391. bool TCPSocket::protocol_is_disconnected() const
  392. {
  393. switch (m_state) {
  394. case State::Closed:
  395. case State::CloseWait:
  396. case State::LastAck:
  397. case State::FinWait1:
  398. case State::FinWait2:
  399. case State::Closing:
  400. case State::TimeWait:
  401. return true;
  402. default:
  403. return false;
  404. }
  405. }
  406. void TCPSocket::shut_down_for_writing()
  407. {
  408. if (state() == State::Established) {
  409. dbgln_if(TCP_SOCKET_DEBUG, " Sending FIN/ACK from Established and moving into FinWait1");
  410. [[maybe_unused]] auto rc = send_tcp_packet(TCPFlags::FIN | TCPFlags::ACK);
  411. set_state(State::FinWait1);
  412. } else {
  413. dbgln(" Shutting down TCPSocket for writing but not moving to FinWait1 since state is {}", to_string(state()));
  414. }
  415. }
  416. KResult TCPSocket::close()
  417. {
  418. MutexLocker locker(mutex());
  419. auto result = IPv4Socket::close();
  420. if (state() == State::CloseWait) {
  421. dbgln_if(TCP_SOCKET_DEBUG, " Sending FIN from CloseWait and moving into LastAck");
  422. [[maybe_unused]] auto rc = send_tcp_packet(TCPFlags::FIN | TCPFlags::ACK);
  423. set_state(State::LastAck);
  424. }
  425. if (state() != State::Closed && state() != State::Listen)
  426. closing_sockets().with_exclusive([&](auto& table) {
  427. table.set(tuple(), *this);
  428. });
  429. return result;
  430. }
  431. static Singleton<MutexProtected<TCPSocket::RetransmitList>> s_sockets_for_retransmit;
  432. MutexProtected<TCPSocket::RetransmitList>& TCPSocket::sockets_for_retransmit()
  433. {
  434. return *s_sockets_for_retransmit;
  435. }
  436. void TCPSocket::enqueue_for_retransmit()
  437. {
  438. sockets_for_retransmit().with_exclusive([&](auto& list) {
  439. list.append(*this);
  440. });
  441. }
  442. void TCPSocket::dequeue_for_retransmit()
  443. {
  444. sockets_for_retransmit().with_exclusive([&](auto& list) {
  445. list.remove(*this);
  446. });
  447. }
  448. void TCPSocket::retransmit_packets()
  449. {
  450. auto now = kgettimeofday();
  451. // RFC6298 says we should have at least one second between retransmits. According to
  452. // RFC1122 we must do exponential backoff - even for SYN packets.
  453. i64 retransmit_interval = 1;
  454. for (decltype(m_retransmit_attempts) i = 0; i < m_retransmit_attempts; i++)
  455. retransmit_interval *= 2;
  456. if (m_last_retransmit_time > now - Time::from_seconds(retransmit_interval))
  457. return;
  458. dbgln_if(TCP_SOCKET_DEBUG, "TCPSocket({}) handling retransmit", this);
  459. m_last_retransmit_time = now;
  460. ++m_retransmit_attempts;
  461. if (m_retransmit_attempts > maximum_retransmits) {
  462. set_state(TCPSocket::State::Closed);
  463. set_error(TCPSocket::Error::RetransmitTimeout);
  464. set_setup_state(Socket::SetupState::Completed);
  465. return;
  466. }
  467. auto routing_decision = route_to(peer_address(), local_address(), bound_interface());
  468. if (routing_decision.is_zero())
  469. return;
  470. m_unacked_packets.with_exclusive([&](auto& unacked_packets) {
  471. for (auto& packet : unacked_packets.packets) {
  472. packet.tx_counter++;
  473. if constexpr (TCP_SOCKET_DEBUG) {
  474. auto& tcp_packet = *(const TCPPacket*)(packet.buffer->buffer->data() + packet.ipv4_payload_offset);
  475. dbgln("Sending TCP packet from {}:{} to {}:{} with ({}{}{}{}) seq_no={}, ack_no={}, tx_counter={}",
  476. local_address(), local_port(),
  477. peer_address(), peer_port(),
  478. (tcp_packet.has_syn() ? "SYN " : ""),
  479. (tcp_packet.has_ack() ? "ACK " : ""),
  480. (tcp_packet.has_fin() ? "FIN " : ""),
  481. (tcp_packet.has_rst() ? "RST " : ""),
  482. tcp_packet.sequence_number(),
  483. tcp_packet.ack_number(),
  484. packet.tx_counter);
  485. }
  486. size_t ipv4_payload_offset = routing_decision.adapter->ipv4_payload_offset();
  487. if (ipv4_payload_offset != packet.ipv4_payload_offset) {
  488. // FIXME: Add support for this. This can happen if after a route change
  489. // we ended up on another adapter which doesn't have the same layer 2 type
  490. // like the previous adapter.
  491. VERIFY_NOT_REACHED();
  492. }
  493. auto packet_buffer = packet.buffer->bytes();
  494. routing_decision.adapter->fill_in_ipv4_header(*packet.buffer,
  495. local_address(), routing_decision.next_hop, peer_address(),
  496. IPv4Protocol::TCP, packet_buffer.size() - ipv4_payload_offset, type_of_service(), ttl());
  497. routing_decision.adapter->send_packet(packet_buffer);
  498. m_packets_out++;
  499. m_bytes_out += packet_buffer.size();
  500. }
  501. });
  502. }
  503. bool TCPSocket::can_write(const OpenFileDescription& file_description, size_t size) const
  504. {
  505. if (!IPv4Socket::can_write(file_description, size))
  506. return false;
  507. if (m_state == State::SynSent || m_state == State::SynReceived)
  508. return false;
  509. if (!file_description.is_blocking())
  510. return true;
  511. return m_unacked_packets.with_shared([&](auto& unacked_packets) {
  512. return unacked_packets.size + size <= m_send_window_size;
  513. });
  514. }
  515. }