92ca046681
- Apps can specify task stack depth and preferred memory placement in their manifests. - App identifiers are validated against length and character requirements. - Crash diagnostics now show the crash cause, reason, fault address, call stack, and program-counter details, with logs saved for review. - App closing is more consistent across built-in screens. There's now a dedicated function, and the old _emit() function is made private. - Crash diagnostics no longer display a QR code without a call stack. - Improved memory allocation for unrestricted requests.
251 lines
7.6 KiB
C++
251 lines
7.6 KiB
C++
#include <lvgl/lvgl.h>
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#include <Tactility/app/btmanage/BtManagePrivate.h>
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#include <Tactility/app/btmanage/View.h>
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#include <app/event.h>
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#include <app/manager.h>
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#include <app/manifest.h>
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#include <app/scheduler.h>
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#include <lvgl_window_manager/window_manager.h>
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#include <tactility/check.h>
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#include <tactility/device.h>
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#include <tactility/log.h>
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namespace tt::app::btmanage {
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constexpr auto* TAG = "BtManage";
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extern const ::AppManifest manifest;
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static void onBtToggled(void* /*context*/, bool requestOn) {
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#if defined(CONFIG_BT_NIMBLE_ENABLED)
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Device* dev;
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if (device_get_first_by_type(&BLUETOOTH_TYPE, &dev) == ERROR_NONE) {
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bool radio_on = bluetooth::isRadioOnOrPending(dev);
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if (requestOn && !radio_on) {
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LOG_I(TAG, "Turning on");
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bluetooth::start(dev);
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} else if (!requestOn && radio_on) {
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LOG_I(TAG, "Turning off");
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bluetooth::stop(dev);
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}
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device_put(dev);
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} else {
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LOG_W(TAG, "Toggle: No bluetooth device found");
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}
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#endif
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}
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static void onScanToggled(void* /*context*/, bool enabled) {
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Device* dev;
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if (device_get_first_active_by_type(&BLUETOOTH_TYPE, &dev) != ERROR_NONE) {
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LOG_W(TAG, "Scan: No bluetooth device found");
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return;
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}
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if (enabled) {
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bluetooth_scan_start(dev);
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} else {
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bluetooth_scan_stop(dev);
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}
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device_put(dev);
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}
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static void onConnectPeer(const std::array<uint8_t, 6>& addr, int profileId) {
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bluetooth::connect(addr, profileId);
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}
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static void onDisconnectPeer(const std::array<uint8_t, 6>& addr, int profileId) {
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bluetooth::disconnect(addr, profileId);
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}
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static void onPairPeer(void* /*context*/, const std::array<uint8_t, 6>& addr) {
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// Clicking an unrecognised scan result initiates a HID host connection.
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// Bond exchange happens automatically during the first connection.
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bluetooth::hidHostConnect(addr);
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}
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static void onForgetPeer(const std::array<uint8_t, 6>& addr) {
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bluetooth::unpair(addr);
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}
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void requestViewUpdate(Context* ctx) {
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// Lock order must match appMain()'s setup/teardown: both run under the LVGL lock
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// and then take `ctx->mutex` internally. Taking `mutex` before lvgl_lock() here would
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// invert that order and deadlock against a concurrent teardown (GUI task holding the
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// LVGL lock, waiting on `mutex`; this task holding `mutex`, waiting on the LVGL lock) -
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// exactly what happens when BT events fire rapidly (e.g. during scanning) while the app
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// is closing.
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lvgl_lock();
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ctx->lock();
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ctx->view.update();
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ctx->unlock();
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lvgl_unlock();
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}
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void onBtEvent(Context* ctx, const BtEvent& event) {
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auto radio_state = bluetooth::getRadioState();
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LOG_I(TAG, "Update with state %s", bluetooth::radioStateToString(radio_state));
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ctx->state.setRadioState(radio_state);
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switch (event.type) {
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case BT_EVENT_SCAN_STARTED:
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ctx->state.setScanning(true);
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break;
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case BT_EVENT_SCAN_FINISHED:
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ctx->state.setScanning(false);
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ctx->state.updateScanResults();
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ctx->state.updatePairedPeers();
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break;
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case BT_EVENT_PEER_FOUND:
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ctx->state.updateScanResults();
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break;
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case BT_EVENT_PAIR_RESULT:
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ctx->state.updatePairedPeers();
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break;
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case BT_EVENT_PROFILE_STATE_CHANGED:
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ctx->state.updateScanResults();
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ctx->state.updatePairedPeers();
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break;
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case BT_EVENT_RADIO_STATE_CHANGED:
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if (event.radio_state == BT_RADIO_STATE_ON) {
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ctx->state.updatePairedPeers();
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Device* dev = nullptr;
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if (device_get_first_active_by_type(&BLUETOOTH_TYPE, &dev) == ERROR_NONE && !bluetooth_is_scanning(dev)) {
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bluetooth_scan_start(dev);
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}
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if (dev) {
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device_put(dev);
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}
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}
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break;
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default:
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break;
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}
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requestViewUpdate(ctx);
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}
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void onBackPressed(lv_event_t* event) {
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auto* ctx = static_cast<Context*>(lv_event_get_user_data(event));
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app_event_emit_close(ctx->appInstanceId);
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}
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void createWidgets(lv_obj_t* parent, void* userData) {
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auto* ctx = static_cast<Context*>(userData);
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ctx->lock();
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ctx->view.init(ctx, parent);
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ctx->view.update();
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ctx->unlock();
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}
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int32_t appMain(int argc, char* argv[]) {
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uint32_t appInstanceId = app_scheduler_current_app_id();
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Context ctx;
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ctx.appInstanceId = appInstanceId;
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ctx.bindings = (Bindings) {
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.onBtToggled = onBtToggled,
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.onScanToggled = onScanToggled,
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.onConnectPeer = onConnectPeer,
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.onDisconnectPeer = onDisconnectPeer,
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.onPairPeer = onPairPeer,
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.onForgetPeer = onForgetPeer,
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};
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// Initialise state before subscribing to avoid incoming events racing with it.
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ctx.state.setRadioState(bluetooth::getRadioState());
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Device* dev = nullptr;
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device_get_first_by_type(&BLUETOOTH_TYPE, &dev);
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ctx.state.setScanning(dev ? bluetooth_is_scanning(dev) : false);
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ctx.state.updateScanResults();
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ctx.state.updatePairedPeers();
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TaskEventGroup event_group {};
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task_event_group_construct(&event_group);
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AppEventSubscription sub {};
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check(app_event_subscribe(&sub, &event_group) == ERROR_NONE);
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// dev is started for the process lifetime once ble0 is enabled in the devicetree -
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// subscribe once here rather than resubscribing on every bluetooth::start()/stop() toggle.
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if (dev != nullptr) {
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if (bluetooth_event_subscribe(dev, &ctx.btEventSub, &event_group) == ERROR_NONE) {
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ctx.btDevice = dev;
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} else {
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LOG_W(TAG, "Failed to subscribe to BT events");
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}
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}
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WindowId window = window_manager_create(appInstanceId, createWidgets, &ctx);
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auto radio_state = bluetooth::getRadioState();
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bool can_scan = radio_state == bluetooth::RadioState::On;
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LOG_I(TAG, "Radio: %s, Scanning: %d, Can scan: %d",
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bluetooth::radioStateToString(radio_state),
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(int)(dev ? bluetooth_is_scanning(dev) : false),
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(int)can_scan);
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if (can_scan && dev && !bluetooth_is_scanning(dev)) {
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bluetooth_scan_start(dev);
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}
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bool shouldClose = false;
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while (!shouldClose) {
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task_event_group_wait_any(&event_group, nullptr, portMAX_DELAY);
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AppEvent event {};
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while (app_event_poll(&sub, &event) == ERROR_NONE) {
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switch (event.type) {
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case APP_EVENT_CLOSE:
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shouldClose = true;
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break;
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default:
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break;
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}
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if (shouldClose) break;
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}
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if (ctx.btDevice != nullptr) {
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BtEvent bt_event {};
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while (bluetooth_event_poll(&ctx.btEventSub, &bt_event) == ERROR_NONE) {
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onBtEvent(&ctx, bt_event);
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}
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}
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}
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if (ctx.btDevice) {
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bluetooth_event_unsubscribe(ctx.btDevice, &ctx.btEventSub);
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ctx.btDevice = nullptr;
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}
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if (dev != nullptr) {
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device_put(dev);
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}
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window_manager_remove(window);
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check(app_event_unsubscribe(&sub) == ERROR_NONE);
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task_event_group_destruct(&event_group);
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return 0;
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}
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uint32_t start() {
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uint32_t instanceId = 0;
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app_manager_start(manifest.id, &instanceId);
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return instanceId;
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}
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extern const ::AppManifest manifest = {
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.id = "tactility.btmanage",
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.name = "Bluetooth",
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.category = APP_CATEGORY_SETTINGS,
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.location = { APP_LOCATION_MEMORY, reinterpret_cast<void*>(appMain) }
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};
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} // namespace tt::app::btmanage
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