80bd1c9f20
- Auto-set enableOnBoot=true when BT is enabled or device is paired,
so board restarts with BT on and can reconnect
- Make RADIO_STATE_ON handler non-exclusive: scan for HID Host,
start HID Device, SPP and MIDI all independently (was else-if)
- Improve HID Host auto-connect for RPA: direct addr match, name-match
fallback, and direct connect to stored identity using resolving list
- Persist addrType in PairedDevice file for more reliable reconnection
- Add verbose logging for loadAll/save to debug missing files
Fixes issue where board restart did not reconnect to previously
connected BT devices. Also preserves f94cc160 fullscreen flag feature.
936 lines
36 KiB
C++
936 lines
36 KiB
C++
#ifdef ESP_PLATFORM
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#include <sdkconfig.h>
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#endif
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#if defined(CONFIG_BT_NIMBLE_ENABLED)
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#include <Tactility/bluetooth/Bluetooth.h>
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#include <Tactility/bluetooth/BluetoothPairedDevice.h>
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#include <Tactility/bluetooth/BluetoothPrivate.h>
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#include <Tactility/bluetooth/BluetoothSettings.h>
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#include <Tactility/Assets.h>
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#include <Tactility/Tactility.h>
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#include <Tactility/lvgl/Keyboard.h>
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#include <Tactility/lvgl/LvglSync.h>
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#include <host/ble_gap.h>
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#include <host/ble_gatt.h>
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#include <host/ble_hs.h>
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#include <host/ble_uuid.h>
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#include <esp_timer.h>
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#include <freertos/FreeRTOS.h>
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#include <freertos/queue.h>
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#include <lvgl.h>
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#include <tactility/log.h>
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#include <algorithm>
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#include <array>
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#include <atomic>
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#include <cstring>
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#include <memory>
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#include <vector>
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namespace tt::bluetooth {
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constexpr auto* TAG = "BtHidHost";
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// ---- Report type ----
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enum class HidReportType : uint8_t { Unknown = 0, Keyboard, Mouse, Consumer };
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struct HidHostInputRpt {
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uint16_t valHandle;
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uint16_t cccdHandle;
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uint16_t rptRefHandle;
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uint8_t reportId;
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HidReportType type;
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};
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struct HidHostCtx {
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uint16_t connHandle = BLE_HS_CONN_HANDLE_NONE;
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uint16_t hidSvcStart = 0;
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uint16_t hidSvcEnd = 0;
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std::vector<HidHostInputRpt> inputRpts;
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std::vector<uint16_t> allChrDefHandles;
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int subscribeIdx = 0;
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int dscDiscIdx = 0;
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int rptRefReadIdx = 0;
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uint16_t rptMapHandle = 0;
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std::vector<uint8_t> rptMap;
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bool securityInitiated = false;
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bool typeResolutionDone = false;
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bool readyBlockFired = false;
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lv_indev_t* kbIndev = nullptr;
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lv_indev_t* mouseIndev = nullptr;
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lv_obj_t* mouseCursor = nullptr;
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std::array<uint8_t, 6> peerAddr = {};
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};
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// ---- Globals ----
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static std::unique_ptr<HidHostCtx> hid_host_ctx;
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static QueueHandle_t hid_host_key_queue = nullptr;
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static uint8_t hid_host_prev_keys[6] = {};
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static esp_timer_handle_t hid_enc_retry_timer = nullptr;
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static std::atomic<int32_t> hid_host_mouse_x{0};
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static std::atomic<int32_t> hid_host_mouse_y{0};
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static std::atomic<bool> hid_host_mouse_btn{false};
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static std::atomic<bool> hid_host_mouse_active{false};
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#define HID_HOST_KEY_QUEUE_SIZE 64
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struct HidHostKeyEvt { uint32_t key; bool pressed; };
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// ---- Forward declarations ----
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static void hidHostSubscribeNext(HidHostCtx& ctx);
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static void hidHostStartRptRefRead(HidHostCtx& ctx);
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static void hidHostReadReportMap(HidHostCtx& ctx);
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static uint16_t getDescEndHandle(const HidHostCtx& ctx, uint16_t valHandle);
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// ---- Keycode mapping ----
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static uint32_t hidHostMapKeycode(uint8_t mod, uint8_t kc) {
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bool shift = (mod & 0x22) != 0;
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switch (kc) {
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case 0x28: return LV_KEY_ENTER;
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case 0x29: return LV_KEY_ESC;
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case 0x2A: return LV_KEY_BACKSPACE;
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case 0x4C: return LV_KEY_DEL;
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case 0x2B: return shift ? (uint32_t)LV_KEY_PREV : (uint32_t)LV_KEY_NEXT;
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case 0x52: return LV_KEY_UP;
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case 0x51: return LV_KEY_DOWN;
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case 0x50: return LV_KEY_LEFT;
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case 0x4F: return LV_KEY_RIGHT;
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case 0x4A: return LV_KEY_HOME;
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case 0x4D: return LV_KEY_END;
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default: break;
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}
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if (kc >= 0x04 && kc <= 0x1D) {
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uint32_t c = static_cast<uint32_t>('a' + (kc - 0x04));
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return shift ? (c - 0x20) : c;
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}
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if (kc >= 0x1E && kc <= 0x27) {
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static const char nums[] = "1234567890";
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static const char snums[] = "!@#$%^&*()";
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int i = kc - 0x1E;
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return shift ? static_cast<uint32_t>(snums[i]) : static_cast<uint32_t>(nums[i]);
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}
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if (kc == 0x2C) return ' ';
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return 0;
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}
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static void hidHostKeyboardReadCb(lv_indev_t* /*indev*/, lv_indev_data_t* data) {
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if (!hid_host_key_queue) { data->state = LV_INDEV_STATE_RELEASED; return; }
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HidHostKeyEvt evt = {};
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if (xQueueReceive(hid_host_key_queue, &evt, 0) == pdTRUE) {
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data->key = evt.key;
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data->state = evt.pressed ? LV_INDEV_STATE_PRESSED : LV_INDEV_STATE_RELEASED;
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data->continue_reading = (uxQueueMessagesWaiting(hid_host_key_queue) > 0);
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} else {
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data->state = LV_INDEV_STATE_RELEASED;
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}
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}
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static void hidHostHandleKeyboardReport(const uint8_t* data, uint16_t len) {
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if (len < 3 || !hid_host_key_queue) return;
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uint8_t mod = data[0];
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const uint8_t* curr = &data[2];
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int nkeys = std::min((int)(len - 2), 6);
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for (int i = 0; i < 6; i++) {
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uint8_t kc = hid_host_prev_keys[i];
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if (kc == 0) continue;
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bool still = false;
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for (int j = 0; j < nkeys; j++) { if (curr[j] == kc) { still = true; break; } }
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if (!still) {
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uint32_t lv = hidHostMapKeycode(0, kc);
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if (lv) { HidHostKeyEvt e{lv, false}; xQueueSend(hid_host_key_queue, &e, 0); }
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}
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}
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for (int i = 0; i < nkeys; i++) {
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uint8_t kc = curr[i];
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if (kc == 0) continue;
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bool had = false;
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for (int j = 0; j < 6; j++) { if (hid_host_prev_keys[j] == kc) { had = true; break; } }
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if (!had) {
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uint32_t lv = hidHostMapKeycode(mod, kc);
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if (lv) { HidHostKeyEvt e{lv, true}; xQueueSend(hid_host_key_queue, &e, 0); }
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}
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}
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std::memcpy(hid_host_prev_keys, curr, nkeys);
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if (nkeys < 6) std::memset(hid_host_prev_keys + nkeys, 0, 6 - nkeys);
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}
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static void hidHostMouseReadCb(lv_indev_t* /*indev*/, lv_indev_data_t* data) {
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int32_t cx = hid_host_mouse_x.load();
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int32_t cy = hid_host_mouse_y.load();
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lv_display_t* disp = lv_display_get_default();
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if (disp) {
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int32_t ow = lv_display_get_original_horizontal_resolution(disp);
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int32_t oh = lv_display_get_original_vertical_resolution(disp);
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switch (lv_display_get_rotation(disp)) {
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case LV_DISPLAY_ROTATION_0:
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data->point.x = (lv_coord_t)cx;
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data->point.y = (lv_coord_t)cy;
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break;
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case LV_DISPLAY_ROTATION_90:
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data->point.x = (lv_coord_t)cy;
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data->point.y = (lv_coord_t)(oh - cx - 1);
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break;
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case LV_DISPLAY_ROTATION_180:
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data->point.x = (lv_coord_t)(ow - cx - 1);
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data->point.y = (lv_coord_t)(oh - cy - 1);
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break;
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case LV_DISPLAY_ROTATION_270:
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data->point.x = (lv_coord_t)(ow - cy - 1);
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data->point.y = (lv_coord_t)cx;
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break;
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}
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} else {
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data->point.x = (lv_coord_t)cx;
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data->point.y = (lv_coord_t)cy;
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}
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data->state = hid_host_mouse_btn.load() ? LV_INDEV_STATE_PRESSED : LV_INDEV_STATE_RELEASED;
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if (!hid_host_mouse_active.load()) {
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hid_host_mouse_active.store(true);
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if (hid_host_ctx && hid_host_ctx->mouseCursor) {
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lv_obj_remove_flag(hid_host_ctx->mouseCursor, LV_OBJ_FLAG_HIDDEN);
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}
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}
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}
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static void hidHostHandleMouseReport(const uint8_t* data, uint16_t len) {
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if (len < 3) return;
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bool btn = (data[0] & 0x01) != 0;
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int8_t dx = (int8_t)data[1];
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int8_t dy = (int8_t)data[2];
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lv_display_t* disp = lv_display_get_default();
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int32_t w = disp ? lv_display_get_horizontal_resolution(disp) : 320;
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int32_t h = disp ? lv_display_get_vertical_resolution(disp) : 240;
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int32_t nx = hid_host_mouse_x.load() + dx;
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int32_t ny = hid_host_mouse_y.load() + dy;
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if (nx < 0) nx = 0;
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if (nx >= w) nx = w - 1;
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if (ny < 0) ny = 0;
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if (ny >= h) ny = h - 1;
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hid_host_mouse_x.store(nx);
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hid_host_mouse_y.store(ny);
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hid_host_mouse_btn.store(btn);
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if (hid_host_ctx && hid_host_ctx->mouseIndev == nullptr) {
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getMainDispatcher().dispatch([] {
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if (!hid_host_ctx || hid_host_ctx->mouseIndev != nullptr) return;
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if (!tt::lvgl::lock(1000)) { LOG_W(TAG, "LVGL lock failed for mouse indev"); return; }
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auto* ms = lv_indev_create();
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lv_indev_set_type(ms, LV_INDEV_TYPE_POINTER);
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lv_indev_set_read_cb(ms, hidHostMouseReadCb);
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auto* cur = lv_image_create(lv_layer_sys());
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lv_obj_remove_flag(cur, LV_OBJ_FLAG_CLICKABLE);
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lv_obj_add_flag(cur, LV_OBJ_FLAG_HIDDEN);
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lv_image_set_src(cur, TT_ASSETS_UI_CURSOR);
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lv_indev_set_cursor(ms, cur);
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hid_host_ctx->mouseIndev = ms;
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hid_host_ctx->mouseCursor = cur;
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tt::lvgl::unlock();
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LOG_I(TAG, "Mouse indev registered");
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});
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}
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}
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// ---- Timer callback for post-encryption CCCD retry ----
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static void hidEncRetryTimerCb(void* /*arg*/) {
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if (hid_host_ctx) {
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if (!hid_host_ctx->typeResolutionDone) {
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LOG_W(TAG, "Post-encryption delay — type resolution timed out, proceeding");
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hid_host_ctx->typeResolutionDone = true;
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hid_host_ctx->subscribeIdx = 0;
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} else {
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LOG_I(TAG, "Post-encryption delay complete — starting CCCD subscriptions");
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}
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hidHostSubscribeNext(*hid_host_ctx);
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}
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}
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// ---- Report Map parsing ----
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static void applyReportMapTypes(HidHostCtx& ctx) {
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const uint8_t* data = ctx.rptMap.data();
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size_t len = ctx.rptMap.size();
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uint16_t usagePage = 0, usage = 0;
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uint8_t reportId = 0;
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int depth = 0;
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HidReportType collType = HidReportType::Unknown;
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struct Entry { uint8_t id; HidReportType type; };
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std::vector<Entry> typeMap;
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std::vector<HidReportType> collOrder;
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bool collHadInput = false;
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size_t i = 0;
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while (i < len) {
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uint8_t prefix = data[i++];
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if (prefix == 0xFE) {
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if (i + 1 >= len) break;
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uint8_t lsz = data[i++]; i++; i += lsz; continue;
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}
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uint8_t bSize = prefix & 0x03;
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uint8_t bType = (prefix >> 2) & 0x03;
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uint8_t bTag = (prefix >> 4) & 0x0F;
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uint8_t dataLen = (bSize == 3) ? 4 : bSize;
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if (i + dataLen > len) break;
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uint32_t value = 0;
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for (uint8_t j = 0; j < dataLen; j++) value |= (uint32_t)data[i++] << (8 * j);
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if (bType == 0) {
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if (bTag == 0xA) {
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if (depth == 0 && value == 0x01) {
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if (usagePage == 0x01 && usage == 0x06) collType = HidReportType::Keyboard;
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else if (usagePage == 0x01 && usage == 0x02) collType = HidReportType::Mouse;
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else if (usagePage == 0x0C) collType = HidReportType::Consumer;
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else collType = HidReportType::Unknown;
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collHadInput = false;
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}
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depth++; usage = 0;
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} else if (bTag == 0xC) {
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if (depth > 0) depth--;
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if (depth == 0) { collType = HidReportType::Unknown; collHadInput = false; }
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usage = 0;
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} else if (bTag == 0x8) {
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if (depth > 0 && collType != HidReportType::Unknown) {
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if (!collHadInput) { collOrder.push_back(collType); collHadInput = true; }
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if (reportId != 0) {
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bool found = false;
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for (const auto& e : typeMap) { if (e.id == reportId) { found = true; break; } }
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if (!found) typeMap.push_back({reportId, collType});
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}
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}
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usage = 0;
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} else { usage = 0; }
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} else if (bType == 1) {
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if (bTag == 0x0) usagePage = (uint16_t)value;
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else if (bTag == 0x8) reportId = (uint8_t)value;
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} else if (bType == 2) {
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if (bTag == 0x0) usage = (uint16_t)value;
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}
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}
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bool anyNonZeroId = false;
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for (const auto& rpt : ctx.inputRpts) { if (rpt.reportId != 0) { anyNonZeroId = true; break; } }
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size_t zeroRptIdx = 0;
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for (auto& rpt : ctx.inputRpts) {
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if (anyNonZeroId) {
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for (const auto& e : typeMap) { if (e.id == rpt.reportId) { rpt.type = e.type; break; } }
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} else {
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if (zeroRptIdx < collOrder.size()) rpt.type = collOrder[zeroRptIdx];
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zeroRptIdx++;
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}
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LOG_I(TAG, "Report val_handle=%d reportId=%d type=%d", rpt.valHandle, rpt.reportId, (int)rpt.type);
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}
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ctx.rptMap.clear();
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}
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// ---- Report Reference read chain ----
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static void hidHostStartRptRefRead(HidHostCtx& ctx) {
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while (ctx.rptRefReadIdx < (int)ctx.inputRpts.size() &&
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ctx.inputRpts[ctx.rptRefReadIdx].rptRefHandle == 0) {
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ctx.rptRefReadIdx++;
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}
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if (ctx.rptRefReadIdx >= (int)ctx.inputRpts.size()) {
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hidHostReadReportMap(ctx);
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return;
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}
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uint16_t handle = ctx.inputRpts[ctx.rptRefReadIdx].rptRefHandle;
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int rc = ble_gattc_read(ctx.connHandle, handle, [](uint16_t conn_handle,
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const struct ble_gatt_error* error,
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struct ble_gatt_attr* attr, void* /*arg*/) -> int {
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if (!hid_host_ctx) return 0;
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auto& ctx = *hid_host_ctx;
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if (conn_handle != ctx.connHandle) return 0;
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if (error->status == BLE_HS_EDONE) return 0;
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if (error->status == 0 && attr != nullptr) {
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if (OS_MBUF_PKTLEN(attr->om) >= 2 && ctx.rptRefReadIdx < (int)ctx.inputRpts.size()) {
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uint8_t rpt_ref[2] = {};
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os_mbuf_copydata(attr->om, 0, 2, rpt_ref);
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ctx.inputRpts[ctx.rptRefReadIdx].reportId = rpt_ref[0];
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LOG_I(TAG, "Report[%d] val_handle=%d reportId=%d", ctx.rptRefReadIdx,
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ctx.inputRpts[ctx.rptRefReadIdx].valHandle, rpt_ref[0]);
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}
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}
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ctx.rptRefReadIdx++;
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hidHostStartRptRefRead(ctx);
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return 0;
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}, nullptr);
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if (rc != 0) {
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LOG_W(TAG, "rptRef read[%d] failed rc=%d — skipping", ctx.rptRefReadIdx, rc);
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ctx.rptRefReadIdx++;
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hidHostStartRptRefRead(ctx);
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}
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}
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// ---- Report Map read ----
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static void hidHostReadReportMap(HidHostCtx& ctx) {
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if (ctx.rptMapHandle == 0) {
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LOG_I(TAG, "No Report Map char — skipping type resolution");
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ctx.typeResolutionDone = true;
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ctx.subscribeIdx = 0;
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hidHostSubscribeNext(ctx);
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return;
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}
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int rc = ble_gattc_read_long(ctx.connHandle, ctx.rptMapHandle, 0,
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[](uint16_t conn_handle, const struct ble_gatt_error* error,
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struct ble_gatt_attr* attr, void* /*arg*/) -> int {
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if (!hid_host_ctx) return 0;
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auto& ctx = *hid_host_ctx;
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if (conn_handle != ctx.connHandle) return 0;
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if (error->status == 0 && attr != nullptr) {
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uint16_t chunk = OS_MBUF_PKTLEN(attr->om);
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size_t old_sz = ctx.rptMap.size();
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ctx.rptMap.resize(old_sz + chunk);
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os_mbuf_copydata(attr->om, 0, chunk, ctx.rptMap.data() + old_sz);
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return 0;
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}
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if (!ctx.rptMap.empty()) {
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LOG_I(TAG, "Report map read (%d bytes)", (int)ctx.rptMap.size());
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applyReportMapTypes(ctx);
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} else {
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LOG_W(TAG, "Report map read failed — types remain Unknown");
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}
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ctx.typeResolutionDone = true;
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ctx.subscribeIdx = 0;
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hidHostSubscribeNext(ctx);
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return 0;
|
|
}, nullptr);
|
|
if (rc != 0) {
|
|
LOG_W(TAG, "Report map read_long failed rc=%d — skipping", rc);
|
|
ctx.typeResolutionDone = true;
|
|
ctx.subscribeIdx = 0;
|
|
hidHostSubscribeNext(ctx);
|
|
}
|
|
}
|
|
|
|
// ---- CCCD subscription chain ----
|
|
|
|
static int hidHostCccdWriteCb(uint16_t conn_handle, const struct ble_gatt_error* error,
|
|
struct ble_gatt_attr* /*attr*/, void* /*arg*/) {
|
|
if (!hid_host_ctx) return 0;
|
|
auto& ctx = *hid_host_ctx;
|
|
if (conn_handle != ctx.connHandle) return 0;
|
|
|
|
if (error->status != 0 && error->status != BLE_HS_EDONE) {
|
|
if ((error->status == BLE_HS_ATT_ERR(BLE_ATT_ERR_INSUFFICIENT_AUTHEN) ||
|
|
error->status == BLE_HS_ATT_ERR(BLE_ATT_ERR_INSUFFICIENT_ENC))
|
|
&& !ctx.securityInitiated) {
|
|
LOG_I(TAG, "CCCD auth required — initiating security");
|
|
ctx.securityInitiated = true;
|
|
ble_gap_security_initiate(conn_handle);
|
|
return 0;
|
|
}
|
|
if (error->status == BLE_HS_ETIMEOUT) {
|
|
LOG_W(TAG, "CCCD write timed out for report[%d] — skipping", ctx.subscribeIdx);
|
|
ctx.subscribeIdx++;
|
|
hidHostSubscribeNext(ctx);
|
|
return 0;
|
|
}
|
|
if (error->status == BLE_HS_ENOTCONN) {
|
|
LOG_W(TAG, "CCCD write failed — not connected");
|
|
return 0;
|
|
}
|
|
LOG_W(TAG, "CCCD write failed status=%d", error->status);
|
|
}
|
|
ctx.subscribeIdx++;
|
|
hidHostSubscribeNext(ctx);
|
|
return 0;
|
|
}
|
|
|
|
static void hidHostSubscribeNext(HidHostCtx& ctx) {
|
|
if (ctx.subscribeIdx >= (int)ctx.inputRpts.size()) {
|
|
if (ctx.readyBlockFired) {
|
|
LOG_I(TAG, "Subscribe ready block already ran — ignoring duplicate");
|
|
return;
|
|
}
|
|
ctx.readyBlockFired = true;
|
|
LOG_I(TAG, "All %d reports subscribed — ready", (int)ctx.inputRpts.size());
|
|
if (hid_enc_retry_timer) esp_timer_stop(hid_enc_retry_timer);
|
|
|
|
if (!hid_host_key_queue) {
|
|
hid_host_key_queue = xQueueCreate(HID_HOST_KEY_QUEUE_SIZE, sizeof(HidHostKeyEvt));
|
|
}
|
|
getMainDispatcher().dispatch([] {
|
|
if (!hid_host_ctx || hid_host_ctx->kbIndev != nullptr) return;
|
|
if (!tt::lvgl::lock(1000)) { LOG_W(TAG, "LVGL lock failed for kb indev"); return; }
|
|
auto* kb = lv_indev_create();
|
|
lv_indev_set_type(kb, LV_INDEV_TYPE_KEYPAD);
|
|
lv_indev_set_read_cb(kb, hidHostKeyboardReadCb);
|
|
hid_host_ctx->kbIndev = kb;
|
|
tt::lvgl::hardware_keyboard_set_indev(kb);
|
|
tt::lvgl::unlock();
|
|
LOG_I(TAG, "Keyboard indev registered");
|
|
});
|
|
|
|
auto peer_addr = ctx.peerAddr;
|
|
getMainDispatcher().dispatch([peer_addr] {
|
|
// Ensure BT stays on after reboot so this keyboard can be re-found.
|
|
settings::setEnableOnBoot(true);
|
|
// Find name from cached scan results
|
|
std::string name;
|
|
{
|
|
auto results = getScanResults();
|
|
for (const auto& r : results) {
|
|
if (r.addr == peer_addr) { name = r.name; break; }
|
|
}
|
|
}
|
|
uint8_t cached_type = 0;
|
|
bool has_cached_type = getCachedScanAddrType(peer_addr.data(), &cached_type);
|
|
settings::PairedDevice device;
|
|
device.addr = peer_addr;
|
|
device.profileId = BT_PROFILE_HID_HOST;
|
|
device.autoConnect = true;
|
|
device.addrType = has_cached_type ? cached_type : 0;
|
|
const auto addr_hex = settings::addrToHex(peer_addr);
|
|
LOG_I(TAG, "HID host ready: saving device %s name='%s' cached_type=%d has_cached=%d",
|
|
addr_hex.c_str(), name.c_str(), (int)cached_type, (int)has_cached_type);
|
|
settings::PairedDevice existing;
|
|
if (settings::load(addr_hex, existing)) {
|
|
LOG_I(TAG, "Existing file found for %s, preserving autoConnect=%d", addr_hex.c_str(), (int)existing.autoConnect);
|
|
device.autoConnect = existing.autoConnect;
|
|
// Preserve existing addrType if we don't have a cached one
|
|
if (!has_cached_type) {
|
|
device.addrType = existing.addrType;
|
|
}
|
|
// Preserve stored name if scan didn't provide one
|
|
if (name.empty() && !existing.name.empty()) {
|
|
name = existing.name;
|
|
}
|
|
} else {
|
|
LOG_I(TAG, "No existing file for %s, creating new", addr_hex.c_str());
|
|
}
|
|
device.name = name;
|
|
bool saved = settings::save(device);
|
|
LOG_I(TAG, "Save result for %s: %d", addr_hex.c_str(), (int)saved);
|
|
if (Device* dev = device_find_first_active_by_type(&BLUETOOTH_TYPE)) {
|
|
BtEvent e = {};
|
|
e.type = BT_EVENT_PROFILE_STATE_CHANGED;
|
|
e.profile_state.state = BT_PROFILE_STATE_CONNECTED;
|
|
e.profile_state.profile = BT_PROFILE_HID_HOST;
|
|
bluetooth_fire_event(dev, e);
|
|
}
|
|
});
|
|
return;
|
|
}
|
|
auto& rpt = ctx.inputRpts[ctx.subscribeIdx];
|
|
if (rpt.cccdHandle == 0) {
|
|
ctx.subscribeIdx++;
|
|
hidHostSubscribeNext(ctx);
|
|
return;
|
|
}
|
|
static const uint16_t notify_val = 0x0001;
|
|
int rc = ble_gattc_write_flat(ctx.connHandle, rpt.cccdHandle,
|
|
¬ify_val, sizeof(notify_val),
|
|
hidHostCccdWriteCb, nullptr);
|
|
if (rc != 0) {
|
|
LOG_W(TAG, "gattc_write_flat CCCD failed rc=%d", rc);
|
|
ctx.subscribeIdx++;
|
|
hidHostSubscribeNext(ctx);
|
|
}
|
|
}
|
|
|
|
// ---- Descriptor discovery ----
|
|
|
|
static int hidHostDscDiscCb(uint16_t conn_handle, const struct ble_gatt_error* error,
|
|
uint16_t chr_val_handle, const struct ble_gatt_dsc* dsc, void* /*arg*/) {
|
|
if (!hid_host_ctx) return 0;
|
|
auto& ctx = *hid_host_ctx;
|
|
if (conn_handle != ctx.connHandle) return 0;
|
|
|
|
if (error->status == 0 && dsc != nullptr) {
|
|
uint16_t dsc_uuid = ble_uuid_u16(&dsc->uuid.u);
|
|
for (auto& rpt : ctx.inputRpts) {
|
|
if (rpt.valHandle != chr_val_handle) continue;
|
|
if (dsc_uuid == 0x2902) { rpt.cccdHandle = dsc->handle; }
|
|
else if (dsc_uuid == 0x2908) { rpt.rptRefHandle = dsc->handle; }
|
|
break;
|
|
}
|
|
} else if (error->status == BLE_HS_EDONE) {
|
|
int next_idx = ctx.dscDiscIdx + 1;
|
|
if (next_idx < (int)ctx.inputRpts.size()) {
|
|
ctx.dscDiscIdx = next_idx;
|
|
auto& next_rpt = ctx.inputRpts[next_idx];
|
|
uint16_t end = getDescEndHandle(ctx, next_rpt.valHandle);
|
|
int rc = ble_gattc_disc_all_dscs(ctx.connHandle, next_rpt.valHandle, end,
|
|
hidHostDscDiscCb, nullptr);
|
|
if (rc != 0) {
|
|
LOG_W(TAG, "disc_all_dscs[%d] failed rc=%d", next_idx, rc);
|
|
ctx.rptRefReadIdx = 0;
|
|
hidHostStartRptRefRead(ctx);
|
|
}
|
|
} else {
|
|
ctx.rptRefReadIdx = 0;
|
|
hidHostStartRptRefRead(ctx);
|
|
}
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
static uint16_t getDescEndHandle(const HidHostCtx& ctx, uint16_t valHandle) {
|
|
for (uint16_t dh : ctx.allChrDefHandles) {
|
|
if (dh > valHandle) return dh - 1;
|
|
}
|
|
return ctx.hidSvcEnd;
|
|
}
|
|
|
|
// ---- Characteristic discovery ----
|
|
|
|
static int hidHostChrDiscCb(uint16_t conn_handle, const struct ble_gatt_error* error,
|
|
const struct ble_gatt_chr* chr, void* /*arg*/) {
|
|
if (!hid_host_ctx) return 0;
|
|
auto& ctx = *hid_host_ctx;
|
|
if (conn_handle != ctx.connHandle) return 0;
|
|
|
|
if (error->status == 0 && chr != nullptr) {
|
|
ctx.allChrDefHandles.push_back(chr->def_handle);
|
|
uint16_t uuid16 = ble_uuid_u16(&chr->uuid.u);
|
|
if (uuid16 == 0x2A4D && (chr->properties & BLE_GATT_CHR_PROP_NOTIFY)) {
|
|
HidHostInputRpt rpt = {};
|
|
rpt.valHandle = chr->val_handle;
|
|
ctx.inputRpts.push_back(rpt);
|
|
LOG_I(TAG, "Input Report chr val_handle=%d", chr->val_handle);
|
|
} else if (uuid16 == 0x2A4B) {
|
|
ctx.rptMapHandle = chr->val_handle;
|
|
}
|
|
} else if (error->status == BLE_HS_EDONE) {
|
|
std::sort(ctx.allChrDefHandles.begin(), ctx.allChrDefHandles.end());
|
|
if (ctx.inputRpts.empty()) {
|
|
LOG_W(TAG, "No Input Report chars — disconnecting");
|
|
ble_gap_terminate(ctx.connHandle, BLE_ERR_REM_USER_CONN_TERM);
|
|
return 0;
|
|
}
|
|
ctx.dscDiscIdx = 0;
|
|
auto& first = ctx.inputRpts[0];
|
|
uint16_t end = getDescEndHandle(ctx, first.valHandle);
|
|
int rc = ble_gattc_disc_all_dscs(ctx.connHandle, first.valHandle, end,
|
|
hidHostDscDiscCb, nullptr);
|
|
if (rc != 0) {
|
|
LOG_W(TAG, "disc_all_dscs[0] failed rc=%d", rc);
|
|
ctx.rptRefReadIdx = 0;
|
|
hidHostStartRptRefRead(ctx);
|
|
}
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
// ---- Service discovery ----
|
|
|
|
static int hidHostSvcDiscCb(uint16_t conn_handle, const struct ble_gatt_error* error,
|
|
const struct ble_gatt_svc* svc, void* /*arg*/) {
|
|
if (!hid_host_ctx) return 0;
|
|
auto& ctx = *hid_host_ctx;
|
|
if (conn_handle != ctx.connHandle) return 0;
|
|
|
|
if (error->status == 0 && svc != nullptr) {
|
|
if (ble_uuid_u16(&svc->uuid.u) == 0x1812) {
|
|
ctx.hidSvcStart = svc->start_handle;
|
|
ctx.hidSvcEnd = svc->end_handle;
|
|
LOG_I(TAG, "HID service start=%d end=%d", ctx.hidSvcStart, ctx.hidSvcEnd);
|
|
}
|
|
} else if (error->status == BLE_HS_EDONE) {
|
|
if (ctx.hidSvcStart == 0) {
|
|
LOG_W(TAG, "No HID service found — disconnecting");
|
|
ble_gap_terminate(ctx.connHandle, BLE_ERR_REM_USER_CONN_TERM);
|
|
return 0;
|
|
}
|
|
int rc = ble_gattc_disc_all_chrs(ctx.connHandle, ctx.hidSvcStart, ctx.hidSvcEnd,
|
|
hidHostChrDiscCb, nullptr);
|
|
if (rc != 0) {
|
|
LOG_W(TAG, "disc_all_chrs failed rc=%d", rc);
|
|
ble_gap_terminate(ctx.connHandle, BLE_ERR_REM_USER_CONN_TERM);
|
|
}
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
// ---- GAP callback for HID host central connection ----
|
|
|
|
static int hidHostGapCb(struct ble_gap_event* event, void* /*arg*/) {
|
|
if (!hid_host_ctx) return 0;
|
|
auto& ctx = *hid_host_ctx;
|
|
|
|
switch (event->type) {
|
|
case BLE_GAP_EVENT_CONNECT:
|
|
if (event->connect.status == 0) {
|
|
ctx.connHandle = event->connect.conn_handle;
|
|
LOG_I(TAG, "Connected (handle=%d)", ctx.connHandle);
|
|
int rc = ble_gattc_disc_all_svcs(ctx.connHandle, hidHostSvcDiscCb, nullptr);
|
|
if (rc != 0) {
|
|
LOG_W(TAG, "disc_all_svcs failed rc=%d", rc);
|
|
ble_gap_terminate(ctx.connHandle, BLE_ERR_REM_USER_CONN_TERM);
|
|
}
|
|
} else {
|
|
LOG_W(TAG, "Connect failed status=%d", event->connect.status);
|
|
hid_host_ctx.reset();
|
|
if (Device* dev = device_find_first_active_by_type(&BLUETOOTH_TYPE)) {
|
|
bluetooth_set_hid_host_active(dev, false);
|
|
struct BtEvent e = {};
|
|
e.type = BT_EVENT_PROFILE_STATE_CHANGED;
|
|
e.profile_state.state = BT_PROFILE_STATE_IDLE;
|
|
e.profile_state.profile = BT_PROFILE_HID_HOST;
|
|
bluetooth_fire_event(dev, e);
|
|
}
|
|
}
|
|
break;
|
|
|
|
case BLE_GAP_EVENT_DISCONNECT: {
|
|
LOG_I(TAG, "Disconnected reason=%d", event->disconnect.reason);
|
|
lv_indev_t* saved_kb = hid_host_ctx ? hid_host_ctx->kbIndev : nullptr;
|
|
lv_indev_t* saved_mouse = hid_host_ctx ? hid_host_ctx->mouseIndev : nullptr;
|
|
lv_obj_t* saved_cursor = hid_host_ctx ? hid_host_ctx->mouseCursor : nullptr;
|
|
QueueHandle_t saved_queue = hid_host_key_queue;
|
|
hid_host_ctx.reset();
|
|
hid_host_key_queue = nullptr;
|
|
std::memset(hid_host_prev_keys, 0, sizeof(hid_host_prev_keys));
|
|
hid_host_mouse_x.store(0);
|
|
hid_host_mouse_y.store(0);
|
|
hid_host_mouse_btn.store(false);
|
|
hid_host_mouse_active.store(false);
|
|
|
|
if (Device* dev = device_find_first_active_by_type(&BLUETOOTH_TYPE)) {
|
|
bluetooth_set_hid_host_active(dev, false);
|
|
struct BtEvent e = {};
|
|
e.type = BT_EVENT_PROFILE_STATE_CHANGED;
|
|
e.profile_state.state = BT_PROFILE_STATE_IDLE;
|
|
e.profile_state.profile = BT_PROFILE_HID_HOST;
|
|
bluetooth_fire_event(dev, e);
|
|
}
|
|
|
|
getMainDispatcher().dispatch([saved_kb, saved_mouse, saved_cursor, saved_queue] {
|
|
if (!tt::lvgl::lock(1000)) {
|
|
LOG_W(TAG, "Failed to acquire LVGL lock for indev cleanup");
|
|
if (saved_queue) vQueueDelete(saved_queue);
|
|
return;
|
|
}
|
|
if (saved_kb) {
|
|
tt::lvgl::hardware_keyboard_set_indev(nullptr);
|
|
lv_indev_delete(saved_kb);
|
|
}
|
|
if (saved_mouse) lv_indev_delete(saved_mouse);
|
|
if (saved_cursor) lv_obj_delete(saved_cursor);
|
|
tt::lvgl::unlock();
|
|
if (saved_queue) vQueueDelete(saved_queue);
|
|
});
|
|
break;
|
|
}
|
|
|
|
case BLE_GAP_EVENT_ENC_CHANGE:
|
|
if (event->enc_change.conn_handle == ctx.connHandle) {
|
|
if (event->enc_change.status == 0) {
|
|
LOG_I(TAG, "Encryption established — retrying CCCD in 500ms");
|
|
ctx.subscribeIdx = 0;
|
|
if (hid_enc_retry_timer) {
|
|
esp_timer_stop(hid_enc_retry_timer);
|
|
esp_timer_start_once(hid_enc_retry_timer, 500 * 1000);
|
|
} else {
|
|
hidHostSubscribeNext(ctx);
|
|
}
|
|
} else {
|
|
LOG_W(TAG, "Encryption failed status=%d", event->enc_change.status);
|
|
}
|
|
}
|
|
break;
|
|
|
|
case BLE_GAP_EVENT_NOTIFY_RX:
|
|
if (event->notify_rx.conn_handle == ctx.connHandle) {
|
|
uint16_t len = OS_MBUF_PKTLEN(event->notify_rx.om);
|
|
if (len > 0 && len <= 64) {
|
|
uint8_t buf[64] = {};
|
|
os_mbuf_copydata(event->notify_rx.om, 0, len, buf);
|
|
for (const auto& rpt : ctx.inputRpts) {
|
|
if (rpt.valHandle != event->notify_rx.attr_handle) continue;
|
|
switch (rpt.type) {
|
|
case HidReportType::Keyboard: hidHostHandleKeyboardReport(buf, len); break;
|
|
case HidReportType::Mouse: hidHostHandleMouseReport(buf, len); break;
|
|
case HidReportType::Consumer:
|
|
LOG_I(TAG, "Consumer report len=%d", len);
|
|
break;
|
|
case HidReportType::Unknown:
|
|
if (len >= 6) hidHostHandleKeyboardReport(buf, len);
|
|
else if (len >= 3) hidHostHandleMouseReport(buf, len);
|
|
break;
|
|
}
|
|
break;
|
|
}
|
|
}
|
|
}
|
|
break;
|
|
|
|
default:
|
|
break;
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
// ---- Public functions ----
|
|
|
|
void hidHostConnect(const std::array<uint8_t, 6>& addr) {
|
|
if (getRadioState() != RadioState::On) {
|
|
LOG_W(TAG, "hidHostConnect: radio not on");
|
|
return;
|
|
}
|
|
if (hid_host_ctx) {
|
|
LOG_W(TAG, "hidHostConnect: already connecting/connected");
|
|
return;
|
|
}
|
|
|
|
hid_host_mouse_x.store(0);
|
|
hid_host_mouse_y.store(0);
|
|
hid_host_mouse_btn.store(false);
|
|
hid_host_mouse_active.store(false);
|
|
|
|
hid_host_ctx = std::make_unique<HidHostCtx>();
|
|
hid_host_ctx->peerAddr = addr;
|
|
|
|
// Create enc retry timer lazily
|
|
if (hid_enc_retry_timer == nullptr) {
|
|
esp_timer_create_args_t args = {};
|
|
args.callback = hidEncRetryTimerCb;
|
|
args.dispatch_method = ESP_TIMER_TASK;
|
|
args.name = "hid_enc_retry";
|
|
if (esp_timer_create(&args, &hid_enc_retry_timer) != ESP_OK) {
|
|
LOG_E(TAG, "Failed to create hid_enc_retry timer");
|
|
hid_enc_retry_timer = nullptr;
|
|
}
|
|
}
|
|
|
|
// Notify driver that a HID host central connection is starting.
|
|
if (Device* dev = device_find_first_active_by_type(&BLUETOOTH_TYPE)) bluetooth_set_hid_host_active(dev, true);
|
|
|
|
// Look up the addr_type from the cached scan results, or from persisted storage.
|
|
// For RPA devices we may have cached RPA type, but we want to connect using identity.
|
|
// Prefer cached scan type for direct scan-match, fallback to stored file's addrType.
|
|
ble_addr_t ble_addr = {};
|
|
ble_addr.type = BLE_ADDR_PUBLIC;
|
|
std::memcpy(ble_addr.val, addr.data(), 6);
|
|
uint8_t addr_type = 0;
|
|
if (getCachedScanAddrType(addr.data(), &addr_type)) {
|
|
ble_addr.type = addr_type;
|
|
} else {
|
|
// Try persisted addrType if available
|
|
const auto hex = settings::addrToHex(addr);
|
|
settings::PairedDevice stored;
|
|
if (settings::load(hex, stored)) {
|
|
ble_addr.type = stored.addrType;
|
|
}
|
|
}
|
|
|
|
uint8_t own_addr_type;
|
|
if (ble_hs_id_infer_auto(0, &own_addr_type) != 0) {
|
|
own_addr_type = BLE_OWN_ADDR_PUBLIC;
|
|
}
|
|
|
|
int rc = ble_gap_connect(own_addr_type, &ble_addr, 5000, nullptr, hidHostGapCb, nullptr);
|
|
if (rc != 0) {
|
|
LOG_W(TAG, "ble_gap_connect failed rc=%d", rc);
|
|
hid_host_ctx.reset();
|
|
if (Device* dev = device_find_first_active_by_type(&BLUETOOTH_TYPE)) {
|
|
bluetooth_set_hid_host_active(dev, false);
|
|
// Fire IDLE so bt_event_bridge can start a new scan and retry.
|
|
BtEvent e = {};
|
|
e.type = BT_EVENT_PROFILE_STATE_CHANGED;
|
|
e.profile_state.state = BT_PROFILE_STATE_IDLE;
|
|
e.profile_state.profile = BT_PROFILE_HID_HOST;
|
|
bluetooth_fire_event(dev, e);
|
|
}
|
|
} else {
|
|
LOG_I(TAG, "Connecting...");
|
|
}
|
|
}
|
|
|
|
void hidHostDisconnect() {
|
|
if (!hid_host_ctx || hid_host_ctx->connHandle == BLE_HS_CONN_HANDLE_NONE) return;
|
|
ble_gap_terminate(hid_host_ctx->connHandle, BLE_ERR_REM_USER_CONN_TERM);
|
|
}
|
|
|
|
bool hidHostIsConnected() {
|
|
return hid_host_ctx != nullptr &&
|
|
hid_host_ctx->connHandle != BLE_HS_CONN_HANDLE_NONE &&
|
|
!hid_host_ctx->inputRpts.empty() &&
|
|
hid_host_ctx->subscribeIdx >= (int)hid_host_ctx->inputRpts.size();
|
|
}
|
|
|
|
bool hidHostGetConnectedPeer(std::array<uint8_t, 6>& addr_out) {
|
|
if (!hidHostIsConnected()) return false;
|
|
addr_out = hid_host_ctx->peerAddr;
|
|
return true;
|
|
}
|
|
|
|
void autoConnectHidHost() {
|
|
if (hidHostIsConnected()) return;
|
|
|
|
// Gather all stored peers that want auto-connect as HID host (central).
|
|
auto all_peers = settings::loadAll();
|
|
std::vector<settings::PairedDevice> auto_peers;
|
|
for (const auto& p : all_peers) {
|
|
if (p.autoConnect && p.profileId == BT_PROFILE_HID_HOST) {
|
|
auto_peers.push_back(p);
|
|
}
|
|
}
|
|
if (auto_peers.empty()) return;
|
|
|
|
auto scan = getScanResults();
|
|
|
|
// 1. Direct address match (public address devices, most keyboards).
|
|
// cacheScanAddr() is populated during scanning so addr_type is available for ble_gap_connect.
|
|
for (const auto& r : scan) {
|
|
settings::PairedDevice stored;
|
|
if (settings::load(settings::addrToHex(r.addr), stored) &&
|
|
stored.autoConnect &&
|
|
stored.profileId == BT_PROFILE_HID_HOST) {
|
|
LOG_I(TAG, "Auto-connecting HID host to %s (direct match)", settings::addrToHex(r.addr).c_str());
|
|
hidHostConnect(r.addr);
|
|
return;
|
|
}
|
|
}
|
|
|
|
// 2. RPA / name fallback: some peripherals use Resolvable Private Addresses.
|
|
// Their advertised address (RPA) does not equal the stored identity address,
|
|
// so hex-lookup fails. If we see a scan result whose name matches a stored
|
|
// auto-connect peer, attempt a direct connection to the stored identity address.
|
|
// The controller's resolving list (populated from NVS IRK) will resolve the RPA.
|
|
for (const auto& r : scan) {
|
|
if (r.name.empty()) continue;
|
|
for (const auto& stored : auto_peers) {
|
|
if (!stored.name.empty() && stored.name == r.name) {
|
|
LOG_I(TAG, "Auto-connecting HID host to %s via name match '%s' (RPA handling: scan=%s stored=%s)",
|
|
settings::addrToHex(stored.addr).c_str(),
|
|
r.name.c_str(),
|
|
settings::addrToHex(r.addr).c_str(),
|
|
settings::addrToHex(stored.addr).c_str());
|
|
hidHostConnect(stored.addr);
|
|
return;
|
|
}
|
|
}
|
|
}
|
|
|
|
// 3. Direct connect fallback: if device not in scan (or uses RPA without name in adv),
|
|
// try to connect directly to the first stored auto peer. ble_gap_connect() will
|
|
// internally scan and use the resolving list to match RPA to identity.
|
|
// This also covers the case where the keyboard is powered off and later on.
|
|
LOG_I(TAG, "Auto-connect HID host: %d auto peer(s) not in scan, trying direct connect to %s",
|
|
(int)auto_peers.size(), settings::addrToHex(auto_peers[0].addr).c_str());
|
|
hidHostConnect(auto_peers[0].addr);
|
|
}
|
|
|
|
} // namespace tt::bluetooth
|
|
|
|
#endif // CONFIG_BT_NIMBLE_ENABLED
|