MyMesh.cpp 33 KB

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  1. #include "MyMesh.h"
  2. #define REPLY_DELAY_MILLIS 1500
  3. #define PUSH_NOTIFY_DELAY_MILLIS 2000
  4. #define SYNC_PUSH_INTERVAL 1200
  5. #define PUSH_ACK_TIMEOUT_FLOOD 12000
  6. #define PUSH_TIMEOUT_BASE 4000
  7. #define PUSH_ACK_TIMEOUT_FACTOR 2000
  8. #define POST_SYNC_DELAY_SECS 6
  9. #define FIRMWARE_VER_LEVEL 1
  10. #define REQ_TYPE_GET_STATUS 0x01 // same as _GET_STATS
  11. #define REQ_TYPE_KEEP_ALIVE 0x02
  12. #define REQ_TYPE_GET_TELEMETRY_DATA 0x03
  13. #define REQ_TYPE_GET_ACCESS_LIST 0x05
  14. #define RESP_SERVER_LOGIN_OK 0 // response to ANON_REQ
  15. #define LAZY_CONTACTS_WRITE_DELAY 5000
  16. struct ServerStats {
  17. uint16_t batt_milli_volts;
  18. uint16_t curr_tx_queue_len;
  19. int16_t noise_floor;
  20. int16_t last_rssi;
  21. uint32_t n_packets_recv;
  22. uint32_t n_packets_sent;
  23. uint32_t total_air_time_secs;
  24. uint32_t total_up_time_secs;
  25. uint32_t n_sent_flood, n_sent_direct;
  26. uint32_t n_recv_flood, n_recv_direct;
  27. uint16_t err_events; // was 'n_full_events'
  28. int16_t last_snr; // x 4
  29. uint16_t n_direct_dups, n_flood_dups;
  30. uint16_t n_posted, n_post_push;
  31. };
  32. void MyMesh::addPost(ClientInfo *client, const char *postData) {
  33. // TODO: suggested postData format: <title>/<descrption>
  34. posts[next_post_idx].author = client->id; // add to cyclic queue
  35. StrHelper::strncpy(posts[next_post_idx].text, postData, MAX_POST_TEXT_LEN);
  36. posts[next_post_idx].post_timestamp = getRTCClock()->getCurrentTimeUnique();
  37. next_post_idx = (next_post_idx + 1) % MAX_UNSYNCED_POSTS;
  38. next_push = futureMillis(PUSH_NOTIFY_DELAY_MILLIS);
  39. _num_posted++; // stats
  40. }
  41. void MyMesh::pushPostToClient(ClientInfo *client, PostInfo &post) {
  42. int len = 0;
  43. memcpy(&reply_data[len], &post.post_timestamp, 4);
  44. len += 4; // this is a PAST timestamp... but should be accepted by client
  45. uint8_t attempt;
  46. getRNG()->random(&attempt, 1); // need this for re-tries, so packet hash (and ACK) will be different
  47. reply_data[len++] = (TXT_TYPE_SIGNED_PLAIN << 2) | (attempt & 3); // 'signed' plain text
  48. // encode prefix of post.author.pub_key
  49. memcpy(&reply_data[len], post.author.pub_key, 4);
  50. len += 4; // just first 4 bytes
  51. int text_len = strlen(post.text);
  52. memcpy(&reply_data[len], post.text, text_len);
  53. len += text_len;
  54. // calc expected ACK reply
  55. mesh::Utils::sha256((uint8_t *)&client->extra.room.pending_ack, 4, reply_data, len, client->id.pub_key, PUB_KEY_SIZE);
  56. client->extra.room.push_post_timestamp = post.post_timestamp;
  57. auto reply = createDatagram(PAYLOAD_TYPE_TXT_MSG, client->id, client->shared_secret, reply_data, len);
  58. if (reply) {
  59. if (client->out_path_len < 0) {
  60. sendFlood(reply);
  61. client->extra.room.ack_timeout = futureMillis(PUSH_ACK_TIMEOUT_FLOOD);
  62. } else {
  63. sendDirect(reply, client->out_path, client->out_path_len);
  64. client->extra.room.ack_timeout =
  65. futureMillis(PUSH_TIMEOUT_BASE + PUSH_ACK_TIMEOUT_FACTOR * (client->out_path_len + 1));
  66. }
  67. _num_post_pushes++; // stats
  68. } else {
  69. client->extra.room.pending_ack = 0;
  70. MESH_DEBUG_PRINTLN("Unable to push post to client");
  71. }
  72. }
  73. uint8_t MyMesh::getUnsyncedCount(ClientInfo *client) {
  74. uint8_t count = 0;
  75. for (int k = 0; k < MAX_UNSYNCED_POSTS; k++) {
  76. if (posts[k].post_timestamp > client->extra.room.sync_since // is new post for this Client?
  77. && !posts[k].author.matches(client->id)) { // don't push posts to the author
  78. count++;
  79. }
  80. }
  81. return count;
  82. }
  83. bool MyMesh::processAck(const uint8_t *data) {
  84. for (int i = 0; i < acl.getNumClients(); i++) {
  85. auto client = acl.getClientByIdx(i);
  86. if (client->extra.room.pending_ack && memcmp(data, &client->extra.room.pending_ack, 4) == 0) { // got an ACK from Client!
  87. client->extra.room.pending_ack = 0; // clear this, so next push can happen
  88. client->extra.room.push_failures = 0;
  89. client->extra.room.sync_since = client->extra.room.push_post_timestamp; // advance Client's SINCE timestamp, to sync next post
  90. return true;
  91. }
  92. }
  93. return false;
  94. }
  95. mesh::Packet *MyMesh::createSelfAdvert() {
  96. uint8_t app_data[MAX_ADVERT_DATA_SIZE];
  97. uint8_t app_data_len = _cli.buildAdvertData(ADV_TYPE_ROOM, app_data);
  98. return createAdvert(self_id, app_data, app_data_len);
  99. }
  100. File MyMesh::openAppend(const char *fname) {
  101. #if defined(NRF52_PLATFORM)
  102. return _fs->open(fname, FILE_O_WRITE);
  103. #elif defined(RP2040_PLATFORM)
  104. return _fs->open(fname, "a");
  105. #else
  106. return _fs->open(fname, "a", true);
  107. #endif
  108. }
  109. int MyMesh::handleRequest(ClientInfo *sender, uint32_t sender_timestamp, uint8_t *payload,
  110. size_t payload_len) {
  111. // uint32_t now = getRTCClock()->getCurrentTimeUnique();
  112. // memcpy(reply_data, &now, 4); // response packets always prefixed with timestamp
  113. memcpy(reply_data, &sender_timestamp, 4); // reflect sender_timestamp back in response packet (kind of like a 'tag')
  114. if (payload[0] == REQ_TYPE_GET_STATUS) {
  115. ServerStats stats;
  116. stats.batt_milli_volts = board.getBattMilliVolts();
  117. stats.curr_tx_queue_len = _mgr->getOutboundCount(0xFFFFFFFF);
  118. stats.noise_floor = (int16_t)_radio->getNoiseFloor();
  119. stats.last_rssi = (int16_t)radio_driver.getLastRSSI();
  120. stats.n_packets_recv = radio_driver.getPacketsRecv();
  121. stats.n_packets_sent = radio_driver.getPacketsSent();
  122. stats.total_air_time_secs = getTotalAirTime() / 1000;
  123. stats.total_up_time_secs = _ms->getMillis() / 1000;
  124. stats.n_sent_flood = getNumSentFlood();
  125. stats.n_sent_direct = getNumSentDirect();
  126. stats.n_recv_flood = getNumRecvFlood();
  127. stats.n_recv_direct = getNumRecvDirect();
  128. stats.err_events = _err_flags;
  129. stats.last_snr = (int16_t)(radio_driver.getLastSNR() * 4);
  130. stats.n_direct_dups = ((SimpleMeshTables *)getTables())->getNumDirectDups();
  131. stats.n_flood_dups = ((SimpleMeshTables *)getTables())->getNumFloodDups();
  132. stats.n_posted = _num_posted;
  133. stats.n_post_push = _num_post_pushes;
  134. memcpy(&reply_data[4], &stats, sizeof(stats));
  135. return 4 + sizeof(stats);
  136. }
  137. if (payload[0] == REQ_TYPE_GET_TELEMETRY_DATA) {
  138. uint8_t perm_mask = ~(payload[1]); // NEW: first reserved byte (of 4), is now inverse mask to apply to permissions
  139. telemetry.reset();
  140. telemetry.addVoltage(TELEM_CHANNEL_SELF, (float)board.getBattMilliVolts() / 1000.0f);
  141. // query other sensors -- target specific
  142. sensors.querySensors((sender->isAdmin() ? 0xFF : 0x00) & perm_mask, telemetry);
  143. uint8_t tlen = telemetry.getSize();
  144. memcpy(&reply_data[4], telemetry.getBuffer(), tlen);
  145. return 4 + tlen; // reply_len
  146. }
  147. if (payload[0] == REQ_TYPE_GET_ACCESS_LIST && sender->isAdmin()) {
  148. uint8_t res1 = payload[1]; // reserved for future (extra query params)
  149. uint8_t res2 = payload[2];
  150. if (res1 == 0 && res2 == 0) {
  151. uint8_t ofs = 4;
  152. for (int i = 0; i < acl.getNumClients() && ofs + 7 <= sizeof(reply_data) - 4; i++) {
  153. auto c = acl.getClientByIdx(i);
  154. if (!c->isAdmin()) continue; // skip non-Admin entries
  155. memcpy(&reply_data[ofs], c->id.pub_key, 6); ofs += 6; // just 6-byte pub_key prefix
  156. reply_data[ofs++] = c->permissions;
  157. }
  158. return ofs;
  159. }
  160. }
  161. return 0; // unknown command
  162. }
  163. void MyMesh::logRxRaw(float snr, float rssi, const uint8_t raw[], int len) {
  164. #if MESH_PACKET_LOGGING
  165. Serial.print(getLogDateTime());
  166. Serial.print(" RAW: ");
  167. mesh::Utils::printHex(Serial, raw, len);
  168. Serial.println();
  169. #endif
  170. }
  171. void MyMesh::logRx(mesh::Packet *pkt, int len, float score) {
  172. if (_logging) {
  173. File f = openAppend(PACKET_LOG_FILE);
  174. if (f) {
  175. f.print(getLogDateTime());
  176. f.printf(": RX, len=%d (type=%d, route=%s, payload_len=%d) SNR=%d RSSI=%d score=%d", len,
  177. pkt->getPayloadType(), pkt->isRouteDirect() ? "D" : "F", pkt->payload_len,
  178. (int)_radio->getLastSNR(), (int)_radio->getLastRSSI(), (int)(score * 1000));
  179. if (pkt->getPayloadType() == PAYLOAD_TYPE_PATH || pkt->getPayloadType() == PAYLOAD_TYPE_REQ ||
  180. pkt->getPayloadType() == PAYLOAD_TYPE_RESPONSE || pkt->getPayloadType() == PAYLOAD_TYPE_TXT_MSG) {
  181. f.printf(" [%02X -> %02X]\n", (uint32_t)pkt->payload[1], (uint32_t)pkt->payload[0]);
  182. } else {
  183. f.printf("\n");
  184. }
  185. f.close();
  186. }
  187. }
  188. }
  189. void MyMesh::logTx(mesh::Packet *pkt, int len) {
  190. if (_logging) {
  191. File f = openAppend(PACKET_LOG_FILE);
  192. if (f) {
  193. f.print(getLogDateTime());
  194. f.printf(": TX, len=%d (type=%d, route=%s, payload_len=%d)", len, pkt->getPayloadType(),
  195. pkt->isRouteDirect() ? "D" : "F", pkt->payload_len);
  196. if (pkt->getPayloadType() == PAYLOAD_TYPE_PATH || pkt->getPayloadType() == PAYLOAD_TYPE_REQ ||
  197. pkt->getPayloadType() == PAYLOAD_TYPE_RESPONSE || pkt->getPayloadType() == PAYLOAD_TYPE_TXT_MSG) {
  198. f.printf(" [%02X -> %02X]\n", (uint32_t)pkt->payload[1], (uint32_t)pkt->payload[0]);
  199. } else {
  200. f.printf("\n");
  201. }
  202. f.close();
  203. }
  204. }
  205. }
  206. void MyMesh::logTxFail(mesh::Packet *pkt, int len) {
  207. if (_logging) {
  208. File f = openAppend(PACKET_LOG_FILE);
  209. if (f) {
  210. f.print(getLogDateTime());
  211. f.printf(": TX FAIL!, len=%d (type=%d, route=%s, payload_len=%d)\n", len, pkt->getPayloadType(),
  212. pkt->isRouteDirect() ? "D" : "F", pkt->payload_len);
  213. f.close();
  214. }
  215. }
  216. }
  217. int MyMesh::calcRxDelay(float score, uint32_t air_time) const {
  218. if (_prefs.rx_delay_base <= 0.0f) return 0;
  219. return (int)((pow(_prefs.rx_delay_base, 0.85f - score) - 1.0) * air_time);
  220. }
  221. const char *MyMesh::getLogDateTime() {
  222. static char tmp[32];
  223. uint32_t now = getRTCClock()->getCurrentTime();
  224. DateTime dt = DateTime(now);
  225. sprintf(tmp, "%02d:%02d:%02d - %d/%d/%d U", dt.hour(), dt.minute(), dt.second(), dt.day(), dt.month(),
  226. dt.year());
  227. return tmp;
  228. }
  229. uint32_t MyMesh::getRetransmitDelay(const mesh::Packet *packet) {
  230. uint32_t t = (_radio->getEstAirtimeFor(packet->path_len + packet->payload_len + 2) * _prefs.tx_delay_factor);
  231. return getRNG()->nextInt(0, 6) * t;
  232. }
  233. uint32_t MyMesh::getDirectRetransmitDelay(const mesh::Packet *packet) {
  234. uint32_t t = (_radio->getEstAirtimeFor(packet->path_len + packet->payload_len + 2) * _prefs.direct_tx_delay_factor);
  235. return getRNG()->nextInt(0, 6) * t;
  236. }
  237. bool MyMesh::allowPacketForward(const mesh::Packet *packet) {
  238. if (_prefs.disable_fwd) return false;
  239. if (packet->isRouteFlood() && packet->path_len >= _prefs.flood_max) return false;
  240. return true;
  241. }
  242. void MyMesh::onAnonDataRecv(mesh::Packet *packet, const uint8_t *secret, const mesh::Identity &sender,
  243. uint8_t *data, size_t len) {
  244. if (packet->getPayloadType() == PAYLOAD_TYPE_ANON_REQ) { // received an initial request by a possible admin
  245. // client (unknown at this stage)
  246. uint32_t sender_timestamp, sender_sync_since;
  247. memcpy(&sender_timestamp, data, 4);
  248. memcpy(&sender_sync_since, &data[4], 4); // sender's "sync messags SINCE x" timestamp
  249. data[len] = 0; // ensure null terminator
  250. ClientInfo* client = NULL;
  251. if (data[8] == 0) { // blank password, just check if sender is in ACL
  252. client = acl.getClient(sender.pub_key, PUB_KEY_SIZE);
  253. if (client == NULL) {
  254. #if MESH_DEBUG
  255. MESH_DEBUG_PRINTLN("Login, sender not in ACL");
  256. #endif
  257. }
  258. }
  259. if (client == NULL) {
  260. uint8_t perm;
  261. if (strcmp((char *)&data[8], _prefs.password) == 0) { // check for valid admin password
  262. perm = PERM_ACL_ADMIN;
  263. } else {
  264. if (strcmp((char *)&data[8], _prefs.guest_password) == 0) { // check the room/public password
  265. perm = PERM_ACL_READ_WRITE;
  266. } else if (_prefs.allow_read_only) {
  267. perm = PERM_ACL_GUEST;
  268. } else {
  269. MESH_DEBUG_PRINTLN("Incorrect room password");
  270. return; // no response. Client will timeout
  271. }
  272. }
  273. client = acl.putClient(sender, 0); // add to known clients (if not already known)
  274. if (sender_timestamp <= client->last_timestamp) {
  275. MESH_DEBUG_PRINTLN("possible replay attack!");
  276. return;
  277. }
  278. MESH_DEBUG_PRINTLN("Login success!");
  279. client->last_timestamp = sender_timestamp;
  280. client->extra.room.sync_since = sender_sync_since;
  281. client->extra.room.pending_ack = 0;
  282. client->extra.room.push_failures = 0;
  283. client->last_activity = getRTCClock()->getCurrentTime();
  284. client->permissions &= ~0x03;
  285. client->permissions |= perm;
  286. memcpy(client->shared_secret, secret, PUB_KEY_SIZE);
  287. dirty_contacts_expiry = futureMillis(LAZY_CONTACTS_WRITE_DELAY);
  288. }
  289. uint32_t now = getRTCClock()->getCurrentTimeUnique();
  290. memcpy(reply_data, &now, 4); // response packets always prefixed with timestamp
  291. // TODO: maybe reply with count of messages waiting to be synced for THIS client?
  292. reply_data[4] = RESP_SERVER_LOGIN_OK;
  293. reply_data[5] = 0; // Legacy: was recommended keep-alive interval (secs / 16)
  294. reply_data[6] = (client->isAdmin() ? 1 : (client->permissions == 0 ? 2 : 0));
  295. // LEGACY: reply_data[7] = getUnsyncedCount(client);
  296. reply_data[7] = client->permissions; // NEW
  297. getRNG()->random(&reply_data[8], 4); // random blob to help packet-hash uniqueness
  298. reply_data[12] = FIRMWARE_VER_LEVEL; // New field
  299. next_push = futureMillis(PUSH_NOTIFY_DELAY_MILLIS); // delay next push, give RESPONSE packet time to arrive first
  300. if (packet->isRouteFlood()) {
  301. // let this sender know path TO here, so they can use sendDirect(), and ALSO encode the response
  302. mesh::Packet *path = createPathReturn(sender, client->shared_secret, packet->path, packet->path_len,
  303. PAYLOAD_TYPE_RESPONSE, reply_data, 13);
  304. if (path) sendFlood(path, SERVER_RESPONSE_DELAY);
  305. } else {
  306. mesh::Packet *reply = createDatagram(PAYLOAD_TYPE_RESPONSE, sender, client->shared_secret, reply_data, 13);
  307. if (reply) {
  308. if (client->out_path_len >= 0) { // we have an out_path, so send DIRECT
  309. sendDirect(reply, client->out_path, client->out_path_len, SERVER_RESPONSE_DELAY);
  310. } else {
  311. sendFlood(reply, SERVER_RESPONSE_DELAY);
  312. }
  313. }
  314. }
  315. }
  316. }
  317. int MyMesh::searchPeersByHash(const uint8_t *hash) {
  318. int n = 0;
  319. for (int i = 0; i < acl.getNumClients(); i++) {
  320. if (acl.getClientByIdx(i)->id.isHashMatch(hash)) {
  321. matching_peer_indexes[n++] = i; // store the INDEXES of matching contacts (for subsequent 'peer' methods)
  322. }
  323. }
  324. return n;
  325. }
  326. void MyMesh::getPeerSharedSecret(uint8_t *dest_secret, int peer_idx) {
  327. int i = matching_peer_indexes[peer_idx];
  328. if (i >= 0 && i < acl.getNumClients()) {
  329. // lookup pre-calculated shared_secret
  330. memcpy(dest_secret, acl.getClientByIdx(i)->shared_secret, PUB_KEY_SIZE);
  331. } else {
  332. MESH_DEBUG_PRINTLN("getPeerSharedSecret: Invalid peer idx: %d", i);
  333. }
  334. }
  335. void MyMesh::onPeerDataRecv(mesh::Packet *packet, uint8_t type, int sender_idx, const uint8_t *secret,
  336. uint8_t *data, size_t len) {
  337. int i = matching_peer_indexes[sender_idx];
  338. if (i < 0 || i >= acl.getNumClients()) { // get from our known_clients table (sender SHOULD already be known in this context)
  339. MESH_DEBUG_PRINTLN("onPeerDataRecv: invalid peer idx: %d", i);
  340. return;
  341. }
  342. auto client = acl.getClientByIdx(i);
  343. if (type == PAYLOAD_TYPE_TXT_MSG && len > 5) { // a CLI command or new Post
  344. uint32_t sender_timestamp;
  345. memcpy(&sender_timestamp, data, 4); // timestamp (by sender's RTC clock - which could be wrong)
  346. uint flags = (data[4] >> 2); // message attempt number, and other flags
  347. if (!(flags == TXT_TYPE_PLAIN || flags == TXT_TYPE_CLI_DATA)) {
  348. MESH_DEBUG_PRINTLN("onPeerDataRecv: unsupported command flags received: flags=%02x", (uint32_t)flags);
  349. } else if (sender_timestamp >= client->last_timestamp) { // prevent replay attacks, but send Acks for retries
  350. bool is_retry = (sender_timestamp == client->last_timestamp);
  351. client->last_timestamp = sender_timestamp;
  352. uint32_t now = getRTCClock()->getCurrentTimeUnique();
  353. client->last_activity = now;
  354. client->extra.room.push_failures = 0; // reset so push can resume (if prev failed)
  355. // len can be > original length, but 'text' will be padded with zeroes
  356. data[len] = 0; // need to make a C string again, with null terminator
  357. uint32_t ack_hash; // calc truncated hash of the message timestamp + text + sender pub_key, to prove to
  358. // sender that we got it
  359. mesh::Utils::sha256((uint8_t *)&ack_hash, 4, data, 5 + strlen((char *)&data[5]), client->id.pub_key,
  360. PUB_KEY_SIZE);
  361. uint8_t temp[166];
  362. bool send_ack;
  363. if (flags == TXT_TYPE_CLI_DATA) {
  364. if (client->isAdmin()) {
  365. if (is_retry) {
  366. temp[5] = 0; // no reply
  367. } else {
  368. handleCommand(sender_timestamp, (char *)&data[5], (char *)&temp[5]);
  369. temp[4] = (TXT_TYPE_CLI_DATA << 2); // attempt and flags, (NOTE: legacy was: TXT_TYPE_PLAIN)
  370. }
  371. send_ack = false;
  372. } else {
  373. temp[5] = 0; // no reply
  374. send_ack = false; // and no ACK... user shoudn't be sending these
  375. }
  376. } else { // TXT_TYPE_PLAIN
  377. if ((client->permissions & PERM_ACL_ROLE_MASK) == PERM_ACL_GUEST) {
  378. temp[5] = 0; // no reply
  379. send_ack = false; // no ACK
  380. } else {
  381. if (!is_retry) {
  382. addPost(client, (const char *)&data[5]);
  383. }
  384. temp[5] = 0; // no reply (ACK is enough)
  385. send_ack = true;
  386. }
  387. }
  388. uint32_t delay_millis;
  389. if (send_ack) {
  390. if (client->out_path_len < 0) {
  391. mesh::Packet *ack = createAck(ack_hash);
  392. if (ack) sendFlood(ack, TXT_ACK_DELAY);
  393. delay_millis = TXT_ACK_DELAY + REPLY_DELAY_MILLIS;
  394. } else {
  395. uint32_t d = TXT_ACK_DELAY;
  396. if (getExtraAckTransmitCount() > 0) {
  397. mesh::Packet *a1 = createMultiAck(ack_hash, 1);
  398. if (a1) sendDirect(a1, client->out_path, client->out_path_len, d);
  399. d += 300;
  400. }
  401. mesh::Packet *a2 = createAck(ack_hash);
  402. if (a2) sendDirect(a2, client->out_path, client->out_path_len, d);
  403. delay_millis = d + REPLY_DELAY_MILLIS;
  404. }
  405. } else {
  406. delay_millis = 0;
  407. }
  408. int text_len = strlen((char *)&temp[5]);
  409. if (text_len > 0) {
  410. if (now == sender_timestamp) {
  411. // WORKAROUND: the two timestamps need to be different, in the CLI view
  412. now++;
  413. }
  414. memcpy(temp, &now, 4); // mostly an extra blob to help make packet_hash unique
  415. // calc expected ACK reply
  416. // mesh::Utils::sha256((uint8_t *)&expected_ack_crc, 4, temp, 5 + text_len, self_id.pub_key,
  417. // PUB_KEY_SIZE);
  418. auto reply = createDatagram(PAYLOAD_TYPE_TXT_MSG, client->id, secret, temp, 5 + text_len);
  419. if (reply) {
  420. if (client->out_path_len < 0) {
  421. sendFlood(reply, delay_millis + SERVER_RESPONSE_DELAY);
  422. } else {
  423. sendDirect(reply, client->out_path, client->out_path_len, delay_millis + SERVER_RESPONSE_DELAY);
  424. }
  425. }
  426. }
  427. } else {
  428. MESH_DEBUG_PRINTLN("onPeerDataRecv: possible replay attack detected");
  429. }
  430. } else if (type == PAYLOAD_TYPE_REQ && len >= 5) {
  431. uint32_t sender_timestamp;
  432. memcpy(&sender_timestamp, data, 4); // timestamp (by sender's RTC clock - which could be wrong)
  433. if (sender_timestamp < client->last_timestamp) { // prevent replay attacks
  434. MESH_DEBUG_PRINTLN("onPeerDataRecv: possible replay attack detected");
  435. } else {
  436. client->last_timestamp = sender_timestamp;
  437. uint32_t now = getRTCClock()->getCurrentTime();
  438. client->last_activity = now; // <-- THIS will keep client connection alive
  439. client->extra.room.push_failures = 0; // reset so push can resume (if prev failed)
  440. if (data[4] == REQ_TYPE_KEEP_ALIVE && packet->isRouteDirect()) { // request type
  441. uint32_t forceSince = 0;
  442. if (len >= 9) { // optional - last post_timestamp client received
  443. memcpy(&forceSince, &data[5], 4); // NOTE: this may be 0, if part of decrypted PADDING!
  444. } else {
  445. memcpy(&data[5], &forceSince, 4); // make sure there are zeroes in payload (for ack_hash calc below)
  446. }
  447. if (forceSince > 0) {
  448. client->extra.room.sync_since = forceSince; // force-update the 'sync since'
  449. }
  450. client->extra.room.pending_ack = 0;
  451. // TODO: Throttle KEEP_ALIVE requests!
  452. // if client sends too quickly, evict()
  453. // RULE: only send keep_alive response DIRECT!
  454. if (client->out_path_len >= 0) {
  455. uint32_t ack_hash; // calc ACK to prove to sender that we got request
  456. mesh::Utils::sha256((uint8_t *)&ack_hash, 4, data, 9, client->id.pub_key, PUB_KEY_SIZE);
  457. auto reply = createAck(ack_hash);
  458. if (reply) {
  459. reply->payload[reply->payload_len++] = getUnsyncedCount(client); // NEW: add unsynced counter to end of ACK packet
  460. sendDirect(reply, client->out_path, client->out_path_len, SERVER_RESPONSE_DELAY);
  461. }
  462. }
  463. } else {
  464. int reply_len = handleRequest(client, sender_timestamp, &data[4], len - 4);
  465. if (reply_len > 0) { // valid command
  466. if (packet->isRouteFlood()) {
  467. // let this sender know path TO here, so they can use sendDirect(), and ALSO encode the response
  468. mesh::Packet *path = createPathReturn(client->id, secret, packet->path, packet->path_len,
  469. PAYLOAD_TYPE_RESPONSE, reply_data, reply_len);
  470. if (path) sendFlood(path, SERVER_RESPONSE_DELAY);
  471. } else {
  472. mesh::Packet *reply = createDatagram(PAYLOAD_TYPE_RESPONSE, client->id, secret, reply_data, reply_len);
  473. if (reply) {
  474. if (client->out_path_len >= 0) { // we have an out_path, so send DIRECT
  475. sendDirect(reply, client->out_path, client->out_path_len, SERVER_RESPONSE_DELAY);
  476. } else {
  477. sendFlood(reply, SERVER_RESPONSE_DELAY);
  478. }
  479. }
  480. }
  481. }
  482. }
  483. }
  484. }
  485. }
  486. bool MyMesh::onPeerPathRecv(mesh::Packet *packet, int sender_idx, const uint8_t *secret, uint8_t *path,
  487. uint8_t path_len, uint8_t extra_type, uint8_t *extra, uint8_t extra_len) {
  488. // TODO: prevent replay attacks
  489. int i = matching_peer_indexes[sender_idx];
  490. if (i >= 0 && i < acl.getNumClients()) { // get from our known_clients table (sender SHOULD already be known in this context)
  491. MESH_DEBUG_PRINTLN("PATH to client, path_len=%d", (uint32_t)path_len);
  492. auto client = acl.getClientByIdx(i);
  493. memcpy(client->out_path, path, client->out_path_len = path_len); // store a copy of path, for sendDirect()
  494. client->last_activity = getRTCClock()->getCurrentTime();
  495. } else {
  496. MESH_DEBUG_PRINTLN("onPeerPathRecv: invalid peer idx: %d", i);
  497. }
  498. if (extra_type == PAYLOAD_TYPE_ACK && extra_len >= 4) {
  499. // also got an encoded ACK!
  500. processAck(extra);
  501. }
  502. // NOTE: no reciprocal path send!!
  503. return false;
  504. }
  505. void MyMesh::onAckRecv(mesh::Packet *packet, uint32_t ack_crc) {
  506. if (processAck((uint8_t *)&ack_crc)) {
  507. packet->markDoNotRetransmit(); // ACK was for this node, so don't retransmit
  508. }
  509. }
  510. MyMesh::MyMesh(mesh::MainBoard &board, mesh::Radio &radio, mesh::MillisecondClock &ms, mesh::RNG &rng,
  511. mesh::RTCClock &rtc, mesh::MeshTables &tables)
  512. : mesh::Mesh(radio, ms, rng, rtc, *new StaticPoolPacketManager(32), tables),
  513. _cli(board, rtc, &_prefs, this), telemetry(MAX_PACKET_PAYLOAD - 4) {
  514. next_local_advert = next_flood_advert = 0;
  515. dirty_contacts_expiry = 0;
  516. _logging = false;
  517. set_radio_at = revert_radio_at = 0;
  518. // defaults
  519. memset(&_prefs, 0, sizeof(_prefs));
  520. _prefs.airtime_factor = 1.0; // one half
  521. _prefs.rx_delay_base = 0.0f; // off by default, was 10.0
  522. _prefs.tx_delay_factor = 0.5f; // was 0.25f;
  523. StrHelper::strncpy(_prefs.node_name, ADVERT_NAME, sizeof(_prefs.node_name));
  524. _prefs.node_lat = ADVERT_LAT;
  525. _prefs.node_lon = ADVERT_LON;
  526. StrHelper::strncpy(_prefs.password, ADMIN_PASSWORD, sizeof(_prefs.password));
  527. _prefs.freq = LORA_FREQ;
  528. _prefs.sf = LORA_SF;
  529. _prefs.bw = LORA_BW;
  530. _prefs.cr = LORA_CR;
  531. _prefs.tx_power_dbm = LORA_TX_POWER;
  532. _prefs.disable_fwd = 1;
  533. _prefs.advert_interval = 1; // default to 2 minutes for NEW installs
  534. _prefs.flood_advert_interval = 12; // 12 hours
  535. _prefs.flood_max = 64;
  536. _prefs.interference_threshold = 0; // disabled
  537. #ifdef ROOM_PASSWORD
  538. StrHelper::strncpy(_prefs.guest_password, ROOM_PASSWORD, sizeof(_prefs.guest_password));
  539. #endif
  540. // GPS defaults
  541. _prefs.gps_enabled = 0;
  542. _prefs.gps_interval = 0;
  543. _prefs.advert_loc_policy = ADVERT_LOC_PREFS;
  544. next_post_idx = 0;
  545. next_client_idx = 0;
  546. next_push = 0;
  547. memset(posts, 0, sizeof(posts));
  548. _num_posted = _num_post_pushes = 0;
  549. }
  550. void MyMesh::begin(FILESYSTEM *fs) {
  551. mesh::Mesh::begin();
  552. _fs = fs;
  553. // load persisted prefs
  554. _cli.loadPrefs(_fs);
  555. acl.load(_fs);
  556. radio_set_params(_prefs.freq, _prefs.bw, _prefs.sf, _prefs.cr);
  557. radio_set_tx_power(_prefs.tx_power_dbm);
  558. updateAdvertTimer();
  559. updateFloodAdvertTimer();
  560. #if ENV_INCLUDE_GPS == 1
  561. applyGpsPrefs();
  562. #endif
  563. }
  564. void MyMesh::applyTempRadioParams(float freq, float bw, uint8_t sf, uint8_t cr, int timeout_mins) {
  565. set_radio_at = futureMillis(2000); // give CLI reply some time to be sent back, before applying temp radio params
  566. pending_freq = freq;
  567. pending_bw = bw;
  568. pending_sf = sf;
  569. pending_cr = cr;
  570. revert_radio_at = futureMillis(2000 + timeout_mins * 60 * 1000); // schedule when to revert radio params
  571. }
  572. bool MyMesh::formatFileSystem() {
  573. #if defined(NRF52_PLATFORM)
  574. return InternalFS.format();
  575. #elif defined(RP2040_PLATFORM)
  576. return LittleFS.format();
  577. #elif defined(ESP32)
  578. return SPIFFS.format();
  579. #else
  580. #error "need to implement file system erase"
  581. return false;
  582. #endif
  583. }
  584. void MyMesh::sendSelfAdvertisement(int delay_millis) {
  585. mesh::Packet *pkt = createSelfAdvert();
  586. if (pkt) {
  587. sendFlood(pkt, delay_millis);
  588. } else {
  589. MESH_DEBUG_PRINTLN("ERROR: unable to create advertisement packet!");
  590. }
  591. }
  592. void MyMesh::updateAdvertTimer() {
  593. if (_prefs.advert_interval > 0) { // schedule local advert timer
  594. next_local_advert = futureMillis((uint32_t)_prefs.advert_interval * 2 * 60 * 1000);
  595. } else {
  596. next_local_advert = 0; // stop the timer
  597. }
  598. }
  599. void MyMesh::updateFloodAdvertTimer() {
  600. if (_prefs.flood_advert_interval > 0) { // schedule flood advert timer
  601. next_flood_advert = futureMillis(((uint32_t)_prefs.flood_advert_interval) * 60 * 60 * 1000);
  602. } else {
  603. next_flood_advert = 0; // stop the timer
  604. }
  605. }
  606. void MyMesh::dumpLogFile() {
  607. #if defined(RP2040_PLATFORM)
  608. File f = _fs->open(PACKET_LOG_FILE, "r");
  609. #else
  610. File f = _fs->open(PACKET_LOG_FILE);
  611. #endif
  612. if (f) {
  613. while (f.available()) {
  614. int c = f.read();
  615. if (c < 0) break;
  616. Serial.print((char)c);
  617. }
  618. f.close();
  619. }
  620. }
  621. void MyMesh::setTxPower(uint8_t power_dbm) {
  622. radio_set_tx_power(power_dbm);
  623. }
  624. void MyMesh::saveIdentity(const mesh::LocalIdentity &new_id) {
  625. self_id = new_id;
  626. #if defined(NRF52_PLATFORM) || defined(STM32_PLATFORM)
  627. IdentityStore store(*_fs, "");
  628. #elif defined(ESP32)
  629. IdentityStore store(*_fs, "/identity");
  630. #elif defined(RP2040_PLATFORM)
  631. IdentityStore store(*_fs, "/identity");
  632. #else
  633. #error "need to define saveIdentity()"
  634. #endif
  635. store.save("_main", self_id);
  636. }
  637. void MyMesh::clearStats() {
  638. radio_driver.resetStats();
  639. resetStats();
  640. ((SimpleMeshTables *)getTables())->resetStats();
  641. }
  642. void MyMesh::handleCommand(uint32_t sender_timestamp, char *command, char *reply) {
  643. while (*command == ' ')
  644. command++; // skip leading spaces
  645. if (strlen(command) > 4 && command[2] == '|') { // optional prefix (for companion radio CLI)
  646. memcpy(reply, command, 3); // reflect the prefix back
  647. reply += 3;
  648. command += 3;
  649. }
  650. // handle ACL related commands
  651. if (memcmp(command, "setperm ", 8) == 0) { // format: setperm {pubkey-hex} {permissions-int8}
  652. char* hex = &command[8];
  653. char* sp = strchr(hex, ' '); // look for separator char
  654. if (sp == NULL) {
  655. strcpy(reply, "Err - bad params");
  656. } else {
  657. *sp++ = 0; // replace space with null terminator
  658. uint8_t pubkey[PUB_KEY_SIZE];
  659. int hex_len = min(sp - hex, PUB_KEY_SIZE*2);
  660. if (mesh::Utils::fromHex(pubkey, hex_len / 2, hex)) {
  661. uint8_t perms = atoi(sp);
  662. if (acl.applyPermissions(self_id, pubkey, hex_len / 2, perms)) {
  663. dirty_contacts_expiry = futureMillis(LAZY_CONTACTS_WRITE_DELAY); // trigger acl.save()
  664. strcpy(reply, "OK");
  665. } else {
  666. strcpy(reply, "Err - invalid params");
  667. }
  668. } else {
  669. strcpy(reply, "Err - bad pubkey");
  670. }
  671. }
  672. } else if (sender_timestamp == 0 && strcmp(command, "get acl") == 0) {
  673. Serial.println("ACL:");
  674. for (int i = 0; i < acl.getNumClients(); i++) {
  675. auto c = acl.getClientByIdx(i);
  676. if (c->permissions == 0) continue; // skip deleted (or guest) entries
  677. Serial.printf("%02X ", c->permissions);
  678. mesh::Utils::printHex(Serial, c->id.pub_key, PUB_KEY_SIZE);
  679. Serial.printf("\n");
  680. }
  681. reply[0] = 0;
  682. } else{
  683. _cli.handleCommand(sender_timestamp, command, reply); // common CLI commands
  684. }
  685. }
  686. bool MyMesh::saveFilter(ClientInfo* client) {
  687. return client->isAdmin(); // only save Admins
  688. }
  689. void MyMesh::loop() {
  690. mesh::Mesh::loop();
  691. if (millisHasNowPassed(next_push) && acl.getNumClients() > 0) {
  692. // check for ACK timeouts
  693. for (int i = 0; i < acl.getNumClients(); i++) {
  694. auto c = acl.getClientByIdx(i);
  695. if (c->extra.room.pending_ack && millisHasNowPassed(c->extra.room.ack_timeout)) {
  696. c->extra.room.push_failures++;
  697. c->extra.room.pending_ack = 0; // reset (TODO: keep prev expected_ack's in a list, incase they arrive LATER, after we retry)
  698. MESH_DEBUG_PRINTLN("pending ACK timed out: push_failures: %d", (uint32_t)c->push_failures);
  699. }
  700. }
  701. // check next Round-Robin client, and sync next new post
  702. auto client = acl.getClientByIdx(next_client_idx);
  703. bool did_push = false;
  704. if (client->extra.room.pending_ack == 0 && client->last_activity != 0 &&
  705. client->extra.room.push_failures < 3) { // not already waiting for ACK, AND not evicted, AND retries not max
  706. MESH_DEBUG_PRINTLN("loop - checking for client %02X", (uint32_t)client->id.pub_key[0]);
  707. uint32_t now = getRTCClock()->getCurrentTime();
  708. for (int k = 0, idx = next_post_idx; k < MAX_UNSYNCED_POSTS; k++) {
  709. auto p = &posts[idx];
  710. if (now >= p->post_timestamp + POST_SYNC_DELAY_SECS &&
  711. p->post_timestamp > client->extra.room.sync_since // is new post for this Client?
  712. && !p->author.matches(client->id)) { // don't push posts to the author
  713. // push this post to Client, then wait for ACK
  714. pushPostToClient(client, *p);
  715. did_push = true;
  716. MESH_DEBUG_PRINTLN("loop - pushed to client %02X: %s", (uint32_t)client->id.pub_key[0], p->text);
  717. break;
  718. }
  719. idx = (idx + 1) % MAX_UNSYNCED_POSTS; // wrap to start of cyclic queue
  720. }
  721. } else {
  722. MESH_DEBUG_PRINTLN("loop - skipping busy (or evicted) client %02X", (uint32_t)client->id.pub_key[0]);
  723. }
  724. next_client_idx = (next_client_idx + 1) % acl.getNumClients(); // round robin polling for each client
  725. if (did_push) {
  726. next_push = futureMillis(SYNC_PUSH_INTERVAL);
  727. } else {
  728. // were no unsynced posts for curr client, so proccess next client much quicker! (in next loop())
  729. next_push = futureMillis(SYNC_PUSH_INTERVAL / 8);
  730. }
  731. }
  732. if (next_flood_advert && millisHasNowPassed(next_flood_advert)) {
  733. mesh::Packet *pkt = createSelfAdvert();
  734. if (pkt) sendFlood(pkt);
  735. updateFloodAdvertTimer(); // schedule next flood advert
  736. updateAdvertTimer(); // also schedule local advert (so they don't overlap)
  737. } else if (next_local_advert && millisHasNowPassed(next_local_advert)) {
  738. mesh::Packet *pkt = createSelfAdvert();
  739. if (pkt) sendZeroHop(pkt);
  740. updateAdvertTimer(); // schedule next local advert
  741. }
  742. if (set_radio_at && millisHasNowPassed(set_radio_at)) { // apply pending (temporary) radio params
  743. set_radio_at = 0; // clear timer
  744. radio_set_params(pending_freq, pending_bw, pending_sf, pending_cr);
  745. MESH_DEBUG_PRINTLN("Temp radio params");
  746. }
  747. if (revert_radio_at && millisHasNowPassed(revert_radio_at)) { // revert radio params to orig
  748. revert_radio_at = 0; // clear timer
  749. radio_set_params(_prefs.freq, _prefs.bw, _prefs.sf, _prefs.cr);
  750. MESH_DEBUG_PRINTLN("Radio params restored");
  751. }
  752. // is pending dirty contacts write needed?
  753. if (dirty_contacts_expiry && millisHasNowPassed(dirty_contacts_expiry)) {
  754. acl.save(_fs, MyMesh::saveFilter);
  755. dirty_contacts_expiry = 0;
  756. }
  757. // TODO: periodically check for OLD/inactive entries in known_clients[], and evict
  758. }