314 lines
13 KiB
C++
314 lines
13 KiB
C++
#ifdef ESP_PLATFORM
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#include <sdkconfig.h>
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#endif
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#if defined(CONFIG_SLAVE_SOC_WIFI_SUPPORTED)
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#include <Tactility/service/espnow/EspNowBackend.h>
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#include <Tactility/service/espnow/EspNowHostedTransport.h>
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#include <Tactility/service/espnow/esp_hosted_espnow_bridge_proto.h>
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// esp_hosted_misc.h lacks its own extern "C" guard, so its declarations get C++ name-mangled
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// when included from a .cpp file, causing "undefined reference" at link time against the
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// library's plain-C symbols (esp_hosted_send_custom_data/register_custom_callback).
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extern "C" {
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#include <esp_hosted_misc.h>
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}
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#include <esp_now.h>
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#include <Tactility/Semaphore.h>
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#include <Tactility/RecursiveMutex.h>
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#include <freertos/FreeRTOS.h>
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#include <freertos/task.h>
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#include <atomic>
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#include <cinttypes>
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#include <cstddef>
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#include <cstring>
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#include <tactility/log.h>
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namespace tt::service::espnow::backend {
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constexpr auto* TAG = "EspNowBackendHosted";
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constexpr TickType_t REQUEST_TIMEOUT = 2000U / portTICK_PERIOD_MS;
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static RecursiveMutex requestMutex;
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static Semaphore responseSemaphore(1, 0);
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// Callbacks (onRespGeneric/onRespInit) run from esp_hosted's own dispatch task, concurrently
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// with doRequest() running on the caller's task - std::atomic instead of requestMutex here
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// because taking requestMutex from the callback would deadlock: doRequest() holds it for its
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// entire wait, including while blocked in responseSemaphore.acquire() waiting on the very
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// callback that would need the lock.
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static std::atomic<esp_err_t> lastResponseErr{ESP_FAIL};
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static std::atomic<bool> waitingForResponse{false};
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// The txn_id doRequest() is currently waiting a response for. Response handlers only accept a
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// response (release the semaphore) if its txn_id matches - otherwise a delayed response to a
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// prior, already-timed-out request (e.g. a REQ_INIT retry's earlier attempt) can't be mistaken
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// for the answer to whatever request is active now, even a later request of the same type.
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static std::atomic<uint32_t> activeTxnId{0};
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static std::atomic<uint32_t> nextTxnId{1};
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// Written by init()/deinit() on the caller's task, read by onEvtRecv() on esp_hosted's dispatch
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// task - atomic so a callback removal during deinit() can't race a concurrent RX event dispatch
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// (the dispatch task must see either the old callback or nullptr, never a torn/stale pointer).
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static std::atomic<esp_now_recv_cb_t> userRecvCallback{nullptr};
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static uint32_t espnowVersion = 0;
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static std::atomic<uint32_t> lastReportedInitVersion{0};
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static void onRespGeneric(uint32_t msgId, const uint8_t* data, size_t dataLen, void* ctx) {
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(void)msgId; (void)ctx;
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if (dataLen != sizeof(espnow_bridge_resp_status_t)) {
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LOG_E(TAG, "Malformed response (%zu bytes)", dataLen);
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return;
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}
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const auto* resp = reinterpret_cast<const espnow_bridge_resp_status_t*>(data);
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if (!waitingForResponse || resp->txn_id != activeTxnId.load()) {
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return; // stale response for a request that's no longer (or never was) being waited on
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}
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lastResponseErr = static_cast<esp_err_t>(resp->esp_err);
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responseSemaphore.release();
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}
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static void onRespInit(uint32_t msgId, const uint8_t* data, size_t dataLen, void* ctx) {
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(void)msgId; (void)ctx;
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if (dataLen != sizeof(espnow_bridge_resp_init_t)) {
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LOG_E(TAG, "Malformed RESP_INIT (%zu bytes)", dataLen);
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return;
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}
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const auto* resp = reinterpret_cast<const espnow_bridge_resp_init_t*>(data);
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if (!waitingForResponse || resp->txn_id != activeTxnId.load()) {
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return; // stale response for a request that's no longer (or never was) being waited on
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}
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lastResponseErr = static_cast<esp_err_t>(resp->esp_err);
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lastReportedInitVersion = resp->espnow_version;
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responseSemaphore.release();
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}
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static void onEvtRecv(uint32_t msgId, const uint8_t* data, size_t dataLen, void* ctx) {
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(void)msgId; (void)ctx;
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if (dataLen != sizeof(espnow_bridge_evt_recv_t)) {
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LOG_E(TAG, "Malformed RX event (%zu bytes)", dataLen);
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return;
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}
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esp_now_recv_cb_t recvCallback = userRecvCallback.load();
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if (recvCallback == nullptr) {
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return;
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}
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const auto* evt = reinterpret_cast<const espnow_bridge_evt_recv_t*>(data);
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if (evt->data_len > ESPNOW_BRIDGE_MAX_DATA_LEN) {
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LOG_E(TAG, "Malformed RX event: data_len %u exceeds buffer capacity", (unsigned)evt->data_len);
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return;
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}
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// Build a transient esp_now_recv_info_t matching the shape native ESP-NOW delivers.
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wifi_pkt_rx_ctrl_t rxCtrl = {};
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rxCtrl.rssi = evt->rssi;
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rxCtrl.channel = evt->channel;
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uint8_t srcAddr[ESPNOW_BRIDGE_ETH_ALEN];
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uint8_t desAddr[ESPNOW_BRIDGE_ETH_ALEN];
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memcpy(srcAddr, evt->src_addr, ESPNOW_BRIDGE_ETH_ALEN);
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memcpy(desAddr, evt->des_addr, ESPNOW_BRIDGE_ETH_ALEN);
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esp_now_recv_info_t recvInfo = {};
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recvInfo.src_addr = srcAddr;
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recvInfo.des_addr = desAddr;
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recvInfo.rx_ctrl = &rxCtrl;
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recvCallback(&recvInfo, evt->data, evt->data_len);
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}
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static void onEvtSendStatus(uint32_t msgId, const uint8_t* data, size_t dataLen, void* ctx) {
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(void)msgId; (void)ctx;
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if (dataLen != sizeof(espnow_bridge_evt_send_status_t)) {
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LOG_E(TAG, "Malformed send-status event (%zu bytes)", dataLen);
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return;
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}
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const auto* evt = reinterpret_cast<const espnow_bridge_evt_send_status_t*>(data);
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if (!evt->success) {
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LOG_W(TAG, "Peer send reported failure");
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}
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}
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/** Sends a request and blocks (holding requestMutex) until the matching response arrives or
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* times out. Every request struct's first field is `uint32_t txn_id`; doRequest() stamps a
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* fresh transaction id directly into that leading 4 bytes of reqData (memcpy rather than a
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* `uint32_t*` into the packed struct, which trips -Waddress-of-packed-member even though the
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* first field of every one of these structs is always naturally aligned) before sending - the
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* matching response handler (onRespGeneric/onRespInit) only accepts a response whose txn_id
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* equals this call's, so a late response to an earlier, already-timed-out request (e.g. a
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* REQ_INIT retry) can't be mistaken for the answer to this request. */
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static esp_err_t doRequest(uint32_t reqMsgId, uint8_t* reqData, size_t reqDataLen) {
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auto lock = requestMutex.asScopedLock();
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lock.lock();
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// Drain any stale token left by a response that arrived after a previous request's
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// doRequest() call already timed out - without this, that late release would let this new
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// request's acquire() below return immediately with a stale lastResponseErr/version instead
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// of actually waiting for its own response.
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while (responseSemaphore.acquire(0)) {}
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uint32_t txnId = nextTxnId.fetch_add(1);
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memcpy(reqData, &txnId, sizeof(txnId));
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activeTxnId = txnId;
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waitingForResponse = true;
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esp_err_t sendErr = esp_hosted_send_custom_data(reqMsgId, reqData, reqDataLen);
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if (sendErr != ESP_OK) {
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waitingForResponse = false;
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LOG_E(TAG, "esp_hosted_send_custom_data() failed for req 0x%lx: %d", (unsigned long)reqMsgId, sendErr);
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return sendErr;
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}
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bool gotResponse = responseSemaphore.acquire(REQUEST_TIMEOUT);
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waitingForResponse = false;
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if (!gotResponse) {
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LOG_E(TAG, "Timed out waiting for response to req 0x%lx", (unsigned long)reqMsgId);
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return ESP_ERR_TIMEOUT;
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}
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return lastResponseErr;
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}
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static bool registerCallbacksOnce() {
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static bool registered = false;
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if (registered) {
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return true;
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}
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bool allOk = true;
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allOk &= esp_hosted_register_custom_callback(ESPNOW_BRIDGE_RESP_INIT, onRespInit, nullptr) == ESP_OK;
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allOk &= esp_hosted_register_custom_callback(ESPNOW_BRIDGE_RESP_DEINIT, onRespGeneric, nullptr) == ESP_OK;
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allOk &= esp_hosted_register_custom_callback(ESPNOW_BRIDGE_RESP_ADD_PEER, onRespGeneric, nullptr) == ESP_OK;
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allOk &= esp_hosted_register_custom_callback(ESPNOW_BRIDGE_RESP_SEND, onRespGeneric, nullptr) == ESP_OK;
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allOk &= esp_hosted_register_custom_callback(ESPNOW_BRIDGE_EVT_RECV, onEvtRecv, nullptr) == ESP_OK;
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allOk &= esp_hosted_register_custom_callback(ESPNOW_BRIDGE_EVT_SEND_STATUS, onEvtSendStatus, nullptr) == ESP_OK;
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if (!allOk) {
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LOG_E(TAG, "Failed to register one or more custom callbacks");
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return false;
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}
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registered = true;
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return true;
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}
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bool init(const EspNowConfig& config, esp_now_recv_cb_t recvCallback) {
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constexpr uint32_t HOSTED_TRANSPORT_WAIT_TIMEOUT_MS = 10000;
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if (!waitForHostedTransport(HOSTED_TRANSPORT_WAIT_TIMEOUT_MS)) {
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LOG_E(TAG, "esp_hosted transport didn't come up within %" PRIu32 "ms - is WiFi enabled?",
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HOSTED_TRANSPORT_WAIT_TIMEOUT_MS);
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return false;
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}
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if (!registerCallbacksOnce()) {
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return false;
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}
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userRecvCallback = recvCallback;
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espnow_bridge_req_init_t req = {};
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memcpy(req.pmk, config.masterKey, ESPNOW_BRIDGE_KEY_LEN);
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req.channel = config.channel;
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req.long_range = config.longRange;
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req.mode = (config.mode == Mode::AccessPoint) ? ESPNOW_BRIDGE_MODE_ACCESS_POINT : ESPNOW_BRIDGE_MODE_STATION;
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// The slave registers its custom RPC handlers (slave_espnow_bridge_init()) partway through
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// its own app_main(), which isn't gated on - and can run later than - the CP_INIT event
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// waitForHostedTransport() already waited for. So the very first REQ_INIT after a cold
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// boot can still race ahead of the slave being ready to handle it, timing out once even
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// though the transport itself is fine. Retry a few times with a short backoff before
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// giving up - the slave finishes registering shortly after CP_INIT in practice.
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constexpr int MAX_INIT_ATTEMPTS = 4;
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constexpr TickType_t INIT_RETRY_DELAY = 500U / portTICK_PERIOD_MS;
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esp_err_t err = ESP_FAIL;
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for (int attempt = 1; attempt <= MAX_INIT_ATTEMPTS; attempt++) {
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err = doRequest(ESPNOW_BRIDGE_REQ_INIT, reinterpret_cast<uint8_t*>(&req), sizeof(req));
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if (err == ESP_OK) {
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break;
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}
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if (attempt < MAX_INIT_ATTEMPTS) {
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LOG_W(TAG, "REQ_INIT attempt %d/%d failed (%d) - retrying, slave may still be booting",
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attempt, MAX_INIT_ATTEMPTS, err);
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vTaskDelay(INIT_RETRY_DELAY);
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}
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}
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if (err != ESP_OK) {
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LOG_E(TAG, "Remote esp_now_init() failed after %d attempts: %d", MAX_INIT_ATTEMPTS, err);
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userRecvCallback = nullptr;
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return false;
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}
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espnowVersion = lastReportedInitVersion;
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if (espnowVersion != 0) {
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LOG_I(TAG, "Co-processor ESP-NOW version: %u.0", (unsigned)espnowVersion);
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} else {
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LOG_W(TAG, "Co-processor didn't report an ESP-NOW version - assuming v1.0");
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espnowVersion = 1;
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}
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return true;
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}
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bool deinit() {
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espnow_bridge_req_deinit_t req = {};
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esp_err_t err = doRequest(ESPNOW_BRIDGE_REQ_DEINIT, reinterpret_cast<uint8_t*>(&req), sizeof(req));
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userRecvCallback = nullptr;
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espnowVersion = 0;
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if (err != ESP_OK) {
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LOG_E(TAG, "Remote esp_now_deinit() failed: %d", err);
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return false;
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}
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return true;
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}
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bool addPeer(const esp_now_peer_info_t& peer) {
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espnow_bridge_req_add_peer_t req = {};
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memcpy(req.peer_addr, peer.peer_addr, ESPNOW_BRIDGE_ETH_ALEN);
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memcpy(req.lmk, peer.lmk, ESPNOW_BRIDGE_KEY_LEN);
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req.channel = peer.channel;
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req.encrypt = peer.encrypt;
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req.ifidx = (peer.ifidx == WIFI_IF_AP) ? ESPNOW_BRIDGE_MODE_ACCESS_POINT : ESPNOW_BRIDGE_MODE_STATION;
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esp_err_t err = doRequest(ESPNOW_BRIDGE_REQ_ADD_PEER, reinterpret_cast<uint8_t*>(&req), sizeof(req));
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if (err != ESP_OK) {
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LOG_E(TAG, "Remote esp_now_add_peer() failed: %d", err);
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return false;
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}
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return true;
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}
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bool send(const uint8_t* address, const uint8_t* buffer, size_t bufferLength) {
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if (bufferLength > ESPNOW_BRIDGE_MAX_DATA_LEN) {
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LOG_E(TAG, "Payload too large for bridge (%zu bytes)", bufferLength);
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return false;
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}
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espnow_bridge_req_send_t req = {};
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req.broadcast = (address == nullptr);
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if (!req.broadcast) {
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memcpy(req.dest_addr, address, ESPNOW_BRIDGE_ETH_ALEN);
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}
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req.data_len = static_cast<uint16_t>(bufferLength);
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memcpy(req.data, buffer, bufferLength);
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// Must send the full fixed-size struct, not just header + payload: the slave's on_req_send
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// validates data_len against sizeof(espnow_bridge_req_send_t) exactly, so a truncated wire
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// length was always rejected as ESP_ERR_INVALID_SIZE (this made every send fail while
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// receive still worked fine, since RX events aren't size-truncated the same way).
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esp_err_t err = doRequest(ESPNOW_BRIDGE_REQ_SEND, reinterpret_cast<uint8_t*>(&req), sizeof(req));
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return err == ESP_OK;
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}
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uint32_t getVersion() {
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return espnowVersion;
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}
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}
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#endif // CONFIG_SLAVE_SOC_WIFI_SUPPORTED
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