NetworkTask.cpp 21 KB

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  1. #include <Kernel/Lock.h>
  2. #include <Kernel/Net/ARP.h>
  3. #include <Kernel/Net/E1000NetworkAdapter.h>
  4. #include <Kernel/Net/EtherType.h>
  5. #include <Kernel/Net/EthernetFrameHeader.h>
  6. #include <Kernel/Net/ICMP.h>
  7. #include <Kernel/Net/IPv4.h>
  8. #include <Kernel/Net/IPv4Socket.h>
  9. #include <Kernel/Net/LoopbackAdapter.h>
  10. #include <Kernel/Net/TCP.h>
  11. #include <Kernel/Net/TCPSocket.h>
  12. #include <Kernel/Net/UDP.h>
  13. #include <Kernel/Net/UDPSocket.h>
  14. #include <Kernel/Process.h>
  15. //#define ETHERNET_DEBUG
  16. //#define ETHERNET_VERY_DEBUG
  17. //#define IPV4_DEBUG
  18. //#define ICMP_DEBUG
  19. //#define UDP_DEBUG
  20. //#define TCP_DEBUG
  21. static void handle_arp(const EthernetFrameHeader&, int frame_size);
  22. static void handle_ipv4(const EthernetFrameHeader&, int frame_size);
  23. static void handle_icmp(const EthernetFrameHeader&, int frame_size);
  24. static void handle_udp(const EthernetFrameHeader&, int frame_size);
  25. static void handle_tcp(const EthernetFrameHeader&, int frame_size);
  26. Lockable<HashMap<IPv4Address, MACAddress>>& arp_table()
  27. {
  28. static Lockable<HashMap<IPv4Address, MACAddress>>* the;
  29. if (!the)
  30. the = new Lockable<HashMap<IPv4Address, MACAddress>>;
  31. return *the;
  32. }
  33. void NetworkTask_main()
  34. {
  35. LoopbackAdapter::the();
  36. auto adapter = E1000NetworkAdapter::the();
  37. if (!adapter)
  38. dbgprintf("E1000 network card not found!\n");
  39. if (adapter)
  40. adapter->set_ipv4_address(IPv4Address(192, 168, 5, 2));
  41. auto dequeue_packet = [&]() -> Optional<KBuffer> {
  42. auto packet = LoopbackAdapter::the().dequeue_packet();
  43. if (packet.has_value()) {
  44. dbgprintf("Receive loopback packet (%d bytes)\n", packet.value().size());
  45. return packet.value();
  46. }
  47. if (adapter && adapter->has_queued_packets())
  48. return adapter->dequeue_packet();
  49. return {};
  50. };
  51. kprintf("NetworkTask: Enter main loop.\n");
  52. for (;;) {
  53. auto packet_maybe_null = dequeue_packet();
  54. if (!packet_maybe_null.has_value()) {
  55. (void)current->block_until("Networking", [] {
  56. if (LoopbackAdapter::the().has_queued_packets())
  57. return true;
  58. if (auto* e1000 = E1000NetworkAdapter::the()) {
  59. if (e1000->has_queued_packets())
  60. return true;
  61. }
  62. return false;
  63. });
  64. continue;
  65. }
  66. auto& packet = packet_maybe_null.value();
  67. if (packet.size() < sizeof(EthernetFrameHeader)) {
  68. kprintf("NetworkTask: Packet is too small to be an Ethernet packet! (%zu)\n", packet.size());
  69. continue;
  70. }
  71. auto& eth = *(const EthernetFrameHeader*)packet.data();
  72. #ifdef ETHERNET_DEBUG
  73. kprintf("NetworkTask: From %s to %s, ether_type=%w, packet_length=%u\n",
  74. eth.source().to_string().characters(),
  75. eth.destination().to_string().characters(),
  76. eth.ether_type(),
  77. packet.size());
  78. #endif
  79. #ifdef ETHERNET_VERY_DEBUG
  80. u8* data = packet.data();
  81. for (size_t i = 0; i < packet.size(); i++) {
  82. kprintf("%b", data[i]);
  83. switch (i % 16) {
  84. case 7:
  85. kprintf(" ");
  86. break;
  87. case 15:
  88. kprintf("\n");
  89. break;
  90. default:
  91. kprintf(" ");
  92. break;
  93. }
  94. }
  95. kprintf("\n");
  96. #endif
  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());
  103. break;
  104. }
  105. }
  106. }
  107. void handle_arp(const EthernetFrameHeader& eth, int frame_size)
  108. {
  109. constexpr int minimum_arp_frame_size = sizeof(EthernetFrameHeader) + sizeof(ARPPacket);
  110. if (frame_size < minimum_arp_frame_size) {
  111. kprintf("handle_arp: Frame too small (%d, need %d)\n", frame_size, minimum_arp_frame_size);
  112. return;
  113. }
  114. auto& packet = *static_cast<const ARPPacket*>(eth.payload());
  115. if (packet.hardware_type() != 1 || packet.hardware_address_length() != sizeof(MACAddress)) {
  116. kprintf("handle_arp: Hardware type not ethernet (%w, len=%u)\n",
  117. packet.hardware_type(),
  118. packet.hardware_address_length());
  119. return;
  120. }
  121. if (packet.protocol_type() != EtherType::IPv4 || packet.protocol_address_length() != sizeof(IPv4Address)) {
  122. kprintf("handle_arp: Protocol type not IPv4 (%w, len=%u)\n",
  123. packet.hardware_type(),
  124. packet.protocol_address_length());
  125. return;
  126. }
  127. #ifdef ARP_DEBUG
  128. kprintf("handle_arp: operation=%w, sender=%s/%s, target=%s/%s\n",
  129. packet.operation(),
  130. packet.sender_hardware_address().to_string().characters(),
  131. packet.sender_protocol_address().to_string().characters(),
  132. packet.target_hardware_address().to_string().characters(),
  133. packet.target_protocol_address().to_string().characters());
  134. #endif
  135. if (packet.operation() == ARPOperation::Request) {
  136. // Who has this IP address?
  137. if (auto adapter = NetworkAdapter::from_ipv4_address(packet.target_protocol_address())) {
  138. // We do!
  139. kprintf("handle_arp: Responding to ARP request for my IPv4 address (%s)\n",
  140. adapter->ipv4_address().to_string().characters());
  141. ARPPacket response;
  142. response.set_operation(ARPOperation::Response);
  143. response.set_target_hardware_address(packet.sender_hardware_address());
  144. response.set_target_protocol_address(packet.sender_protocol_address());
  145. response.set_sender_hardware_address(adapter->mac_address());
  146. response.set_sender_protocol_address(adapter->ipv4_address());
  147. adapter->send(packet.sender_hardware_address(), response);
  148. }
  149. return;
  150. }
  151. if (packet.operation() == ARPOperation::Response) {
  152. // Someone has this IPv4 address. I guess we can try to remember that.
  153. // FIXME: Protect against ARP spamming.
  154. // FIXME: Support static ARP table entries.
  155. LOCKER(arp_table().lock());
  156. arp_table().resource().set(packet.sender_protocol_address(), packet.sender_hardware_address());
  157. kprintf("ARP table (%d entries):\n", arp_table().resource().size());
  158. for (auto& it : arp_table().resource()) {
  159. kprintf("%s :: %s\n", it.value.to_string().characters(), it.key.to_string().characters());
  160. }
  161. }
  162. }
  163. void handle_ipv4(const EthernetFrameHeader& eth, int frame_size)
  164. {
  165. constexpr int minimum_ipv4_frame_size = sizeof(EthernetFrameHeader) + sizeof(IPv4Packet);
  166. if (frame_size < minimum_ipv4_frame_size) {
  167. kprintf("handle_ipv4: Frame too small (%d, need %d)\n", frame_size, minimum_ipv4_frame_size);
  168. hang();
  169. return;
  170. }
  171. auto& packet = *static_cast<const IPv4Packet*>(eth.payload());
  172. if (packet.length() < sizeof(IPv4Packet)) {
  173. kprintf("handle_ipv4: IPv4 packet too short (%u, need %u)\n", packet.length(), sizeof(IPv4Packet));
  174. hang();
  175. return;
  176. }
  177. size_t actual_ipv4_packet_length = frame_size - sizeof(EthernetFrameHeader);
  178. if (packet.length() > actual_ipv4_packet_length) {
  179. kprintf("handle_ipv4: IPv4 packet claims to be longer than it is (%u, actually %zu)\n", packet.length(), actual_ipv4_packet_length);
  180. hang();
  181. return;
  182. }
  183. #ifdef IPV4_DEBUG
  184. kprintf("handle_ipv4: source=%s, target=%s\n",
  185. packet.source().to_string().characters(),
  186. packet.destination().to_string().characters());
  187. #endif
  188. switch ((IPv4Protocol)packet.protocol()) {
  189. case IPv4Protocol::ICMP:
  190. return handle_icmp(eth, frame_size);
  191. case IPv4Protocol::UDP:
  192. return handle_udp(eth, frame_size);
  193. case IPv4Protocol::TCP:
  194. return handle_tcp(eth, frame_size);
  195. default:
  196. kprintf("handle_ipv4: Unhandled protocol %u\n", packet.protocol());
  197. break;
  198. }
  199. }
  200. void handle_icmp(const EthernetFrameHeader& eth, int frame_size)
  201. {
  202. (void)frame_size;
  203. auto& ipv4_packet = *static_cast<const IPv4Packet*>(eth.payload());
  204. auto& icmp_header = *static_cast<const ICMPHeader*>(ipv4_packet.payload());
  205. #ifdef ICMP_DEBUG
  206. kprintf("handle_icmp: source=%s, destination=%s, type=%b, code=%b\n",
  207. ipv4_packet.source().to_string().characters(),
  208. ipv4_packet.destination().to_string().characters(),
  209. icmp_header.type(),
  210. icmp_header.code());
  211. #endif
  212. {
  213. LOCKER(IPv4Socket::all_sockets().lock());
  214. for (RefPtr<IPv4Socket> socket : IPv4Socket::all_sockets().resource()) {
  215. LOCKER(socket->lock());
  216. if (socket->protocol() != (unsigned)IPv4Protocol::ICMP)
  217. continue;
  218. socket->did_receive(ipv4_packet.source(), 0, KBuffer::copy(&ipv4_packet, sizeof(IPv4Packet) + ipv4_packet.payload_size()));
  219. }
  220. }
  221. auto adapter = NetworkAdapter::from_ipv4_address(ipv4_packet.destination());
  222. if (!adapter)
  223. return;
  224. if (icmp_header.type() == ICMPType::EchoRequest) {
  225. auto& request = reinterpret_cast<const ICMPEchoPacket&>(icmp_header);
  226. kprintf("handle_icmp: EchoRequest from %s: id=%u, seq=%u\n",
  227. ipv4_packet.source().to_string().characters(),
  228. (u16)request.identifier,
  229. (u16)request.sequence_number);
  230. size_t icmp_packet_size = ipv4_packet.payload_size();
  231. auto buffer = ByteBuffer::create_zeroed(icmp_packet_size);
  232. auto& response = *(ICMPEchoPacket*)buffer.pointer();
  233. response.header.set_type(ICMPType::EchoReply);
  234. response.header.set_code(0);
  235. response.identifier = request.identifier;
  236. response.sequence_number = request.sequence_number;
  237. if (size_t icmp_payload_size = icmp_packet_size - sizeof(ICMPEchoPacket))
  238. memcpy(response.payload(), request.payload(), icmp_payload_size);
  239. response.header.set_checksum(internet_checksum(&response, icmp_packet_size));
  240. adapter->send_ipv4(eth.source(), ipv4_packet.source(), IPv4Protocol::ICMP, buffer.data(), buffer.size());
  241. }
  242. }
  243. void handle_udp(const EthernetFrameHeader& eth, int frame_size)
  244. {
  245. (void)frame_size;
  246. auto& ipv4_packet = *static_cast<const IPv4Packet*>(eth.payload());
  247. auto adapter = NetworkAdapter::from_ipv4_address(ipv4_packet.destination());
  248. if (!adapter) {
  249. kprintf("handle_udp: this packet is not for me, it's for %s\n", ipv4_packet.destination().to_string().characters());
  250. return;
  251. }
  252. auto& udp_packet = *static_cast<const UDPPacket*>(ipv4_packet.payload());
  253. #ifdef UDP_DEBUG
  254. kprintf("handle_udp: source=%s:%u, destination=%s:%u length=%u\n",
  255. ipv4_packet.source().to_string().characters(),
  256. udp_packet.source_port(),
  257. ipv4_packet.destination().to_string().characters(),
  258. udp_packet.destination_port(),
  259. udp_packet.length());
  260. #endif
  261. auto socket = UDPSocket::from_port(udp_packet.destination_port());
  262. if (!socket) {
  263. kprintf("handle_udp: No UDP socket for port %u\n", udp_packet.destination_port());
  264. return;
  265. }
  266. ASSERT(socket->type() == SOCK_DGRAM);
  267. ASSERT(socket->local_port() == udp_packet.destination_port());
  268. socket->did_receive(ipv4_packet.source(), udp_packet.source_port(), KBuffer::copy(&ipv4_packet, sizeof(IPv4Packet) + ipv4_packet.payload_size()));
  269. }
  270. void handle_tcp(const EthernetFrameHeader& eth, int frame_size)
  271. {
  272. (void)frame_size;
  273. auto& ipv4_packet = *static_cast<const IPv4Packet*>(eth.payload());
  274. auto adapter = NetworkAdapter::from_ipv4_address(ipv4_packet.destination());
  275. if (!adapter) {
  276. kprintf("handle_tcp: this packet is not for me, it's for %s\n", ipv4_packet.destination().to_string().characters());
  277. return;
  278. }
  279. auto& tcp_packet = *static_cast<const TCPPacket*>(ipv4_packet.payload());
  280. size_t payload_size = ipv4_packet.payload_size() - tcp_packet.header_size();
  281. #ifdef TCP_DEBUG
  282. kprintf("handle_tcp: source=%s:%u, destination=%s:%u seq_no=%u, ack_no=%u, flags=%w (%s%s%s%s), window_size=%u, payload_size=%u\n",
  283. ipv4_packet.source().to_string().characters(),
  284. tcp_packet.source_port(),
  285. ipv4_packet.destination().to_string().characters(),
  286. tcp_packet.destination_port(),
  287. tcp_packet.sequence_number(),
  288. tcp_packet.ack_number(),
  289. tcp_packet.flags(),
  290. tcp_packet.has_syn() ? "SYN " : "",
  291. tcp_packet.has_ack() ? "ACK " : "",
  292. tcp_packet.has_fin() ? "FIN " : "",
  293. tcp_packet.has_rst() ? "RST " : "",
  294. tcp_packet.window_size(),
  295. payload_size);
  296. #endif
  297. IPv4SocketTuple tuple(ipv4_packet.destination(), tcp_packet.destination_port(), ipv4_packet.source(), tcp_packet.source_port());
  298. #ifdef TCP_DEBUG
  299. kprintf("handle_tcp: looking for socket; tuple=%s\n", tuple.to_string().characters());
  300. #endif
  301. auto socket = TCPSocket::from_tuple(tuple);
  302. if (!socket) {
  303. kprintf("handle_tcp: No TCP socket for tuple %s\n", tuple.to_string().characters());
  304. return;
  305. }
  306. ASSERT(socket->type() == SOCK_STREAM);
  307. ASSERT(socket->local_port() == tcp_packet.destination_port());
  308. #ifdef TCP_DEBUG
  309. kprintf("handle_tcp: got socket; state=%s\n", socket->tuple().to_string().characters(), TCPSocket::to_string(socket->state()));
  310. #endif
  311. if (tcp_packet.ack_number() != socket->sequence_number()) {
  312. kprintf("handle_tcp: ack/seq mismatch: got %u, wanted %u\n", tcp_packet.ack_number(), socket->sequence_number());
  313. return;
  314. }
  315. socket->record_incoming_data(ipv4_packet.payload_size());
  316. switch (socket->state()) {
  317. case TCPSocket::State::Closed:
  318. kprintf("handle_tcp: unexpected flags in Closed state\n");
  319. // TODO: we may want to send an RST here, maybe as a configurable option
  320. return;
  321. case TCPSocket::State::TimeWait:
  322. kprintf("handle_tcp: unexpected flags in TimeWait state\n");
  323. socket->send_tcp_packet(TCPFlags::RST);
  324. socket->set_state(TCPSocket::State::Closed);
  325. kprintf("handle_tcp: TimeWait -> Closed\n");
  326. return;
  327. case TCPSocket::State::Listen:
  328. switch (tcp_packet.flags()) {
  329. case TCPFlags::SYN: {
  330. kprintf("handle_tcp: incoming connection\n");
  331. auto& local_address = ipv4_packet.destination();
  332. auto& peer_address = ipv4_packet.source();
  333. auto client = socket->create_client(local_address, tcp_packet.destination_port(), peer_address, tcp_packet.source_port());
  334. if (!client) {
  335. kprintf("handle_tcp: couldn't create client socket\n");
  336. return;
  337. }
  338. kprintf("handle_tcp: created new client socket with tuple %s\n", client->tuple().to_string().characters());
  339. client->set_sequence_number(1000);
  340. client->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  341. client->send_tcp_packet(TCPFlags::SYN | TCPFlags::ACK);
  342. client->set_sequence_number(1001);
  343. client->set_state(TCPSocket::State::SynReceived);
  344. kprintf("handle_tcp: Closed -> SynReceived\n");
  345. return;
  346. }
  347. default:
  348. kprintf("handle_tcp: unexpected flags in Listen state\n");
  349. // socket->send_tcp_packet(TCPFlags::RST);
  350. return;
  351. }
  352. case TCPSocket::State::SynSent:
  353. switch (tcp_packet.flags()) {
  354. case TCPFlags::SYN:
  355. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  356. socket->send_tcp_packet(TCPFlags::ACK);
  357. socket->set_state(TCPSocket::State::SynReceived);
  358. kprintf("handle_tcp: SynSent -> SynReceived\n");
  359. return;
  360. case TCPFlags::SYN | TCPFlags::ACK:
  361. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  362. socket->send_tcp_packet(TCPFlags::ACK);
  363. socket->set_state(TCPSocket::State::Established);
  364. socket->set_connected(true);
  365. kprintf("handle_tcp: SynSent -> Established\n");
  366. return;
  367. default:
  368. kprintf("handle_tcp: unexpected flags in SynSent state\n");
  369. socket->send_tcp_packet(TCPFlags::RST);
  370. socket->set_state(TCPSocket::State::Closed);
  371. kprintf("handle_tcp: SynSent -> Closed\n");
  372. return;
  373. }
  374. case TCPSocket::State::SynReceived:
  375. switch (tcp_packet.flags()) {
  376. case TCPFlags::ACK:
  377. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  378. socket->set_state(TCPSocket::State::Established);
  379. if (socket->direction() == TCPSocket::Direction::Outgoing)
  380. socket->set_connected(true);
  381. kprintf("handle_tcp: SynReceived -> Established\n");
  382. return;
  383. default:
  384. kprintf("handle_tcp: unexpected flags in SynReceived state\n");
  385. socket->send_tcp_packet(TCPFlags::RST);
  386. socket->set_state(TCPSocket::State::Closed);
  387. kprintf("handle_tcp: SynReceived -> Closed\n");
  388. return;
  389. }
  390. case TCPSocket::State::CloseWait:
  391. switch (tcp_packet.flags()) {
  392. default:
  393. kprintf("handle_tcp: unexpected flags in CloseWait state\n");
  394. socket->send_tcp_packet(TCPFlags::RST);
  395. socket->set_state(TCPSocket::State::Closed);
  396. kprintf("handle_tcp: CloseWait -> Closed\n");
  397. return;
  398. }
  399. case TCPSocket::State::LastAck:
  400. switch (tcp_packet.flags()) {
  401. case TCPFlags::ACK:
  402. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  403. socket->set_state(TCPSocket::State::Closed);
  404. kprintf("handle_tcp: LastAck -> Closed\n");
  405. return;
  406. default:
  407. kprintf("handle_tcp: unexpected flags in LastAck state\n");
  408. socket->send_tcp_packet(TCPFlags::RST);
  409. socket->set_state(TCPSocket::State::Closed);
  410. kprintf("handle_tcp: LastAck -> Closed\n");
  411. return;
  412. }
  413. case TCPSocket::State::FinWait1:
  414. switch (tcp_packet.flags()) {
  415. case TCPFlags::ACK:
  416. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  417. socket->set_state(TCPSocket::State::FinWait2);
  418. kprintf("handle_tcp: FinWait1 -> FinWait2\n");
  419. return;
  420. case TCPFlags::FIN:
  421. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  422. socket->set_state(TCPSocket::State::Closing);
  423. kprintf("handle_tcp: FinWait1 -> Closing\n");
  424. return;
  425. default:
  426. kprintf("handle_tcp: unexpected flags in FinWait1 state\n");
  427. socket->send_tcp_packet(TCPFlags::RST);
  428. socket->set_state(TCPSocket::State::Closed);
  429. kprintf("handle_tcp: FinWait1 -> Closed\n");
  430. return;
  431. }
  432. case TCPSocket::State::FinWait2:
  433. switch (tcp_packet.flags()) {
  434. case TCPFlags::FIN:
  435. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  436. socket->set_state(TCPSocket::State::TimeWait);
  437. kprintf("handle_tcp: FinWait2 -> TimeWait\n");
  438. return;
  439. default:
  440. kprintf("handle_tcp: unexpected flags in FinWait2 state\n");
  441. socket->send_tcp_packet(TCPFlags::RST);
  442. socket->set_state(TCPSocket::State::Closed);
  443. kprintf("handle_tcp: FinWait2 -> Closed\n");
  444. return;
  445. }
  446. case TCPSocket::State::Closing:
  447. switch (tcp_packet.flags()) {
  448. case TCPFlags::ACK:
  449. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  450. socket->set_state(TCPSocket::State::TimeWait);
  451. kprintf("handle_tcp: Closing -> TimeWait\n");
  452. return;
  453. default:
  454. kprintf("handle_tcp: unexpected flags in Closing state\n");
  455. socket->send_tcp_packet(TCPFlags::RST);
  456. socket->set_state(TCPSocket::State::Closed);
  457. kprintf("handle_tcp: Closing -> Closed\n");
  458. return;
  459. }
  460. case TCPSocket::State::Established:
  461. if (tcp_packet.has_fin()) {
  462. if (payload_size != 0)
  463. socket->did_receive(ipv4_packet.source(), tcp_packet.source_port(), KBuffer::copy(&ipv4_packet, sizeof(IPv4Packet) + ipv4_packet.payload_size()));
  464. socket->set_ack_number(tcp_packet.sequence_number() + payload_size + 1);
  465. socket->send_tcp_packet(TCPFlags::ACK);
  466. socket->set_state(TCPSocket::State::CloseWait);
  467. socket->set_connected(false);
  468. kprintf("handle_tcp: Established -> CloseWait\n");
  469. return;
  470. }
  471. socket->set_ack_number(tcp_packet.sequence_number() + payload_size);
  472. #ifdef TCP_DEBUG
  473. kprintf("Got packet with ack_no=%u, seq_no=%u, payload_size=%u, acking it with new ack_no=%u, seq_no=%u\n",
  474. tcp_packet.ack_number(),
  475. tcp_packet.sequence_number(),
  476. payload_size,
  477. socket->ack_number(),
  478. socket->sequence_number());
  479. #endif
  480. socket->send_tcp_packet(TCPFlags::ACK);
  481. if (payload_size != 0)
  482. socket->did_receive(ipv4_packet.source(), tcp_packet.source_port(), KBuffer::copy(&ipv4_packet, sizeof(IPv4Packet) + ipv4_packet.payload_size()));
  483. }
  484. }