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/*
*
* Copyright (c) 2020 Project CHIP Authors
* Copyright (c) 2019 Google LLC.
* All rights reserved.
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
#include "AppTask.h"
#include "AppConfig.h"
#include "AppEvent.h"
#include "ButtonHandler.h"
#include "DataModelHandler.h"
#include "LEDWidget.h"
#include "Server.h"
#include "lcd.h"
#include "qrcodegen.h"
#include <assert.h>
#include <setup_payload/QRCodeSetupPayloadGenerator.h>
#include <setup_payload/SetupPayload.h>
using namespace chip::TLV;
using namespace chip::DeviceLayer;
#include <platform/CHIPDeviceLayer.h>
#if CHIP_ENABLE_OPENTHREAD
#include <platform/EFR32/ThreadStackManagerImpl.h>
#include <platform/OpenThread/OpenThreadUtils.h>
#include <platform/ThreadStackManager.h>
#include <platform/internal/DeviceNetworkInfo.h>
#define JOINER_START_TRIGGER_TIMEOUT 1500
#endif
#define FACTORY_RESET_TRIGGER_TIMEOUT 3000
#define FACTORY_RESET_CANCEL_WINDOW_TIMEOUT 3000
#define APP_TASK_STACK_SIZE (4096)
#define APP_TASK_PRIORITY 2
#define APP_EVENT_QUEUE_SIZE 10
#define EXAMPLE_VENDOR_ID 0xcafe
TimerHandle_t sFunctionTimer; // FreeRTOS app sw timer.
static TaskHandle_t sAppTaskHandle;
static QueueHandle_t sAppEventQueue;
static LEDWidget sStatusLED;
static LEDWidget sLockLED;
static bool sIsThreadProvisioned = false;
static bool sIsThreadEnabled = false;
static bool sIsThreadAttached = false;
static bool sIsPairedToAccount = false;
static bool sHaveBLEConnections = false;
static bool sHaveServiceConnectivity = false;
using namespace ::chip::DeviceLayer;
AppTask AppTask::sAppTask;
int AppTask::StartAppTask()
{
int err = CHIP_ERROR_MAX;
sAppEventQueue = xQueueCreate(APP_EVENT_QUEUE_SIZE, sizeof(AppEvent));
if (sAppEventQueue == NULL)
{
EFR32_LOG("Failed to allocate app event queue");
appError(err);
}
// Start App task.
if (xTaskCreate(AppTaskMain, "APP", APP_TASK_STACK_SIZE / sizeof(StackType_t), NULL, 1, &sAppTaskHandle) == pdPASS)
{
err = CHIP_NO_ERROR;
}
return err;
}
int AppTask::Init()
{
CHIP_ERROR err = CHIP_NO_ERROR;
// Initialise WSTK buttons PB0 and PB1 (including debounce).
ButtonHandler::Init();
// Create FreeRTOS sw timer for Function Selection.
sFunctionTimer = xTimerCreate("FnTmr", // Just a text name, not used by the RTOS kernel
1, // == default timer period (mS)
false, // no timer reload (==one-shot)
(void *) this, // init timer id = app task obj context
TimerEventHandler // timer callback handler
);
if (sFunctionTimer == NULL)
{
EFR32_LOG("funct timer create failed");
appError(err);
}
EFR32_LOG("Current Firmware Version: %s", CHIP_DEVICE_CONFIG_DEVICE_FIRMWARE_REVISION);
err = BoltLockMgr().Init();
if (err != CHIP_NO_ERROR)
{
EFR32_LOG("BoltLockMgr().Init() failed");
appError(err);
}
BoltLockMgr().SetCallbacks(ActionInitiated, ActionCompleted);
// Initialize LEDs
LEDWidget::InitGpio();
sStatusLED.Init(SYSTEM_STATE_LED);
sLockLED.Init(LOCK_STATE_LED);
sLockLED.Set(!BoltLockMgr().IsUnlocked());
// Print setup info on LCD if available
#ifdef DISPLAY_ENABLED
chip::SetupPayload payload;
uint32_t setUpPINCode = 0;
uint16_t setUpDiscriminator = 0;
err = ConfigurationMgr().GetSetupPinCode(setUpPINCode);
if (err != CHIP_NO_ERROR)
{
EFR32_LOG("ConfigurationMgr().GetSetupPinCode() failed: %s", chip::ErrorStr(err));
}
err = ConfigurationMgr().GetSetupDiscriminator(setUpDiscriminator);
if (err != CHIP_NO_ERROR)
{
EFR32_LOG("ConfigurationMgr().GetSetupDiscriminator() failed: %s", chip::ErrorStr(err));
}
payload.version = 1;
payload.vendorID = EXAMPLE_VENDOR_ID;
payload.productID = 1;
payload.setUpPINCode = setUpPINCode;
payload.discriminator = setUpDiscriminator;
chip::QRCodeSetupPayloadGenerator generator(payload);
std::string result;
err = generator.payloadBase41Representation(result);
if (err != CHIP_NO_ERROR)
{
EFR32_LOG("Failed to get Base41 payload for QR code with %s", chip::ErrorStr(err));
}
EFR32_LOG("SetupPINCode: [%" PRIu32 "]", setUpPINCode);
LCDWriteQRCode((uint8_t *) result.c_str());
#endif
return err;
}
void AppTask::HandleBLEConnectionOpened(chip::Ble::BLEEndPoint * endPoint)
{
assert(endPoint != NULL);
ChipLogProgress(DeviceLayer, "AppTask: Connection opened");
GetAppTask().mBLEEndPoint = endPoint;
endPoint->OnMessageReceived = AppTask::HandleBLEMessageReceived;
endPoint->OnConnectionClosed = AppTask::HandleBLEConnectionClosed;
}
void AppTask::HandleBLEConnectionClosed(chip::Ble::BLEEndPoint * endPoint, BLE_ERROR err)
{
ChipLogProgress(DeviceLayer, "AppTask: Connection closed");
GetAppTask().mBLEEndPoint = nullptr;
}
void AppTask::HandleBLEMessageReceived(chip::Ble::BLEEndPoint * endPoint, chip::System::PacketBuffer * buffer)
{
assert(endPoint != NULL);
#if CHIP_ENABLE_OPENTHREAD
assert(buffer != NULL);
uint16_t bufferLen = buffer->DataLength();
uint8_t * data = buffer->Start();
chip::DeviceLayer::Internal::DeviceNetworkInfo networkInfo;
ChipLogProgress(DeviceLayer, "AppTask: Receive message size %u", bufferLen);
memcpy(networkInfo.ThreadNetworkName, data, sizeof(networkInfo.ThreadNetworkName));
data += sizeof(networkInfo.ThreadNetworkName);
memcpy(networkInfo.ThreadExtendedPANId, data, sizeof(networkInfo.ThreadExtendedPANId));
data += sizeof(networkInfo.ThreadExtendedPANId);
memcpy(networkInfo.ThreadMeshPrefix, data, sizeof(networkInfo.ThreadMeshPrefix));
data += sizeof(networkInfo.ThreadMeshPrefix);
memcpy(networkInfo.ThreadNetworkKey, data, sizeof(networkInfo.ThreadNetworkKey));
data += sizeof(networkInfo.ThreadNetworkKey);
memcpy(networkInfo.ThreadPSKc, data, sizeof(networkInfo.ThreadPSKc));
data += sizeof(networkInfo.ThreadPSKc);
networkInfo.ThreadPANId = data[0] | (data[1] << 8);
data += sizeof(networkInfo.ThreadPANId);
networkInfo.ThreadChannel = data[0];
data += sizeof(networkInfo.ThreadChannel);
networkInfo.FieldPresent.ThreadExtendedPANId = *data;
data++;
networkInfo.FieldPresent.ThreadMeshPrefix = *data;
data++;
networkInfo.FieldPresent.ThreadPSKc = *data;
data++;
networkInfo.NetworkId = 0;
networkInfo.FieldPresent.NetworkId = true;
ThreadStackMgr().SetThreadEnabled(false);
ThreadStackMgr().SetThreadProvision(networkInfo);
ThreadStackMgr().SetThreadEnabled(true);
#endif
endPoint->Close();
chip::System::PacketBuffer::Free(buffer);
}
void AppTask::AppTaskMain(void * pvParameter)
{
int err;
AppEvent event;
uint64_t mLastChangeTimeUS = 0;
err = sAppTask.Init();
if (err != CHIP_NO_ERROR)
{
EFR32_LOG("AppTask.Init() failed");
appError(err);
}
EFR32_LOG("App Task started");
chip::DeviceLayer::ConnectivityMgr().AddCHIPoBLEConnectionHandler(&AppTask::HandleBLEConnectionOpened);
SetDeviceName("EFR32LockDemo._chip._udp.local.");
while (true)
{
BaseType_t eventReceived = xQueueReceive(sAppEventQueue, &event, pdMS_TO_TICKS(10));
while (eventReceived == pdTRUE)
{
sAppTask.DispatchEvent(&event);
eventReceived = xQueueReceive(sAppEventQueue, &event, 0);
}
// Collect connectivity and configuration state from the CHIP stack. Because
// the CHIP event loop is being run in a separate task, the stack must be
// locked while these values are queried. However we use a non-blocking
// lock request (TryLockCHIPStack()) to avoid blocking other UI activities
// when the CHIP task is busy (e.g. with a long crypto operation).
if (PlatformMgr().TryLockChipStack())
{
sIsThreadProvisioned = ConnectivityMgr().IsThreadProvisioned();
sIsThreadEnabled = ConnectivityMgr().IsThreadEnabled();
sIsThreadAttached = ConnectivityMgr().IsThreadAttached();
sHaveBLEConnections = (ConnectivityMgr().NumBLEConnections() != 0);
sHaveServiceConnectivity = ConnectivityMgr().HaveServiceConnectivity();
PlatformMgr().UnlockChipStack();
}
// Update the status LED if factory reset has not been initiated.
//
// If system has "full connectivity", keep the LED On constantly.
//
// If thread and service provisioned, but not attached to the thread network
// yet OR no connectivity to the service OR subscriptions are not fully
// established THEN blink the LED Off for a short period of time.
//
// If the system has ble connection(s) uptill the stage above, THEN blink
// the LEDs at an even rate of 100ms.
//
// Otherwise, blink the LED ON for a very short time.
if (sAppTask.mFunction != kFunction_FactoryReset)
{
// Consider the system to be "fully connected" if it has service
// connectivity
if (sHaveServiceConnectivity)
{
sStatusLED.Set(true);
}
else if (sIsThreadProvisioned && sIsThreadEnabled && sIsPairedToAccount &&
(!sIsThreadAttached || !sHaveServiceConnectivity))
{
sStatusLED.Blink(950, 50);
}
else if (sHaveBLEConnections)
{
sStatusLED.Blink(100, 100);
}
else
{
sStatusLED.Blink(50, 950);
}
}
sStatusLED.Animate();
sLockLED.Animate();
uint64_t nowUS = chip::System::Platform::Layer::GetClock_Monotonic();
uint64_t nextChangeTimeUS = mLastChangeTimeUS + 5 * 1000 * 1000UL;
if (nowUS > nextChangeTimeUS)
{
PublishService();
mLastChangeTimeUS = nowUS;
}
}
}
void AppTask::LockActionEventHandler(AppEvent * aEvent)
{
bool initiated = false;
BoltLockManager::Action_t action;
int32_t actor;
int err = CHIP_NO_ERROR;
if (aEvent->Type == AppEvent::kEventType_Lock)
{
action = static_cast<BoltLockManager::Action_t>(aEvent->LockEvent.Action);
actor = aEvent->LockEvent.Actor;
}
else if (aEvent->Type == AppEvent::kEventType_Button)
{
if (BoltLockMgr().IsUnlocked())
{
action = BoltLockManager::LOCK_ACTION;
}
else
{
action = BoltLockManager::UNLOCK_ACTION;
}
actor = 0; // BOLT_LOCK_ACTOR_METHOD_PHYSICAL
}
else
{
err = CHIP_ERROR_MAX;
}
if (err == CHIP_NO_ERROR)
{
initiated = BoltLockMgr().InitiateAction(actor, action);
if (!initiated)
{
EFR32_LOG("Action is already in progress or active.");
}
}
}
void AppTask::ButtonEventHandler(uint8_t btnIdx, uint8_t btnAction)
{
if (btnIdx != APP_LOCK_BUTTON && btnIdx != APP_FUNCTION_BUTTON)
{
return;
}
AppEvent button_event = {};
button_event.Type = AppEvent::kEventType_Button;
button_event.ButtonEvent.ButtonIdx = btnIdx;
button_event.ButtonEvent.Action = btnAction;
if (btnIdx == APP_LOCK_BUTTON && btnAction == APP_BUTTON_PRESSED)
{
button_event.Handler = LockActionEventHandler;
sAppTask.PostEvent(&button_event);
}
else if (btnIdx == APP_FUNCTION_BUTTON)
{
button_event.Handler = FunctionHandler;
sAppTask.PostEvent(&button_event);
}
}
void AppTask::TimerEventHandler(TimerHandle_t xTimer)
{
AppEvent event;
event.Type = AppEvent::kEventType_Timer;
event.TimerEvent.Context = (void *) xTimer;
event.Handler = FunctionTimerEventHandler;
sAppTask.PostEvent(&event);
}
void AppTask::FunctionTimerEventHandler(AppEvent * aEvent)
{
if (aEvent->Type != AppEvent::kEventType_Timer)
{
return;
}
// If we reached here, the button was held past FACTORY_RESET_TRIGGER_TIMEOUT,
// initiate factory reset
if (sAppTask.mFunctionTimerActive && sAppTask.mFunction == kFunction_SoftwareUpdate)
{
#if CHIP_ENABLE_OPENTHREAD
EFR32_LOG("Release button now to Start Thread Joiner");
EFR32_LOG("Hold to trigger Factory Reset");
sAppTask.mFunction = kFunction_Joiner;
sAppTask.StartTimer(FACTORY_RESET_TRIGGER_TIMEOUT);
}
else if (sAppTask.mFunctionTimerActive && sAppTask.mFunction == kFunction_Joiner)
{
#endif
EFR32_LOG("Factory Reset Triggered. Release button within %ums to cancel.", FACTORY_RESET_CANCEL_WINDOW_TIMEOUT);
// Start timer for FACTORY_RESET_CANCEL_WINDOW_TIMEOUT to allow user to
// cancel, if required.
sAppTask.StartTimer(FACTORY_RESET_CANCEL_WINDOW_TIMEOUT);
sAppTask.mFunction = kFunction_FactoryReset;
// Turn off all LEDs before starting blink to make sure blink is
// co-ordinated.
sStatusLED.Set(false);
sLockLED.Set(false);
sStatusLED.Blink(500);
sLockLED.Blink(500);
}
else if (sAppTask.mFunctionTimerActive && sAppTask.mFunction == kFunction_FactoryReset)
{
// Actually trigger Factory Reset
sAppTask.mFunction = kFunction_NoneSelected;
ConfigurationMgr().InitiateFactoryReset();
}
}
void AppTask::FunctionHandler(AppEvent * aEvent)
{
if (aEvent->ButtonEvent.ButtonIdx != APP_FUNCTION_BUTTON)
{
return;
}
// To trigger software update: press the APP_FUNCTION_BUTTON button briefly (<
// FACTORY_RESET_TRIGGER_TIMEOUT) To initiate factory reset: press the
// APP_FUNCTION_BUTTON for FACTORY_RESET_TRIGGER_TIMEOUT +
// FACTORY_RESET_CANCEL_WINDOW_TIMEOUT All LEDs start blinking after
// FACTORY_RESET_TRIGGER_TIMEOUT to signal factory reset has been initiated.
// To cancel factory reset: release the APP_FUNCTION_BUTTON once all LEDs
// start blinking within the FACTORY_RESET_CANCEL_WINDOW_TIMEOUT
if (aEvent->ButtonEvent.Action == APP_BUTTON_PRESSED)
{
if (!sAppTask.mFunctionTimerActive && sAppTask.mFunction == kFunction_NoneSelected)
{
#if CHIP_ENABLE_OPENTHREAD
sAppTask.StartTimer(JOINER_START_TRIGGER_TIMEOUT);
#else
sAppTask.StartTimer(FACTORY_RESET_TRIGGER_TIMEOUT);
#endif
sAppTask.mFunction = kFunction_SoftwareUpdate;
}
}
else
{
// If the button was released before factory reset got initiated, trigger a
// software update.
if (sAppTask.mFunctionTimerActive && sAppTask.mFunction == kFunction_SoftwareUpdate)
{
sAppTask.CancelTimer();
sAppTask.mFunction = kFunction_NoneSelected;
EFR32_LOG("Software Update currently not supported.");
}
#if CHIP_ENABLE_OPENTHREAD
else if (sAppTask.mFunctionTimerActive && sAppTask.mFunction == kFunction_Joiner)
{
sAppTask.CancelTimer();
sAppTask.mFunction = kFunction_NoneSelected;
CHIP_ERROR error = ThreadStackMgr().JoinerStart();
EFR32_LOG("Thread joiner triggered: %s", chip::ErrorStr(error));
}
#endif
else if (sAppTask.mFunctionTimerActive && sAppTask.mFunction == kFunction_FactoryReset)
{
// Set lock status LED back to show state of lock.
sLockLED.Set(!BoltLockMgr().IsUnlocked());
sAppTask.CancelTimer();
// Change the function to none selected since factory reset has been
// canceled.
sAppTask.mFunction = kFunction_NoneSelected;
EFR32_LOG("Factory Reset has been Canceled");
}
}
}
void AppTask::CancelTimer()
{
if (xTimerStop(sFunctionTimer, 0) == pdFAIL)
{
EFR32_LOG("app timer stop() failed");
appError(CHIP_ERROR_MAX);
}
mFunctionTimerActive = false;
}
void AppTask::StartTimer(uint32_t aTimeoutInMs)
{
if (xTimerIsTimerActive(sFunctionTimer))
{
EFR32_LOG("app timer already started!");
CancelTimer();
}
// timer is not active, change its period to required value (== restart).
// FreeRTOS- Block for a maximum of 100 ticks if the change period command
// cannot immediately be sent to the timer command queue.
if (xTimerChangePeriod(sFunctionTimer, aTimeoutInMs / portTICK_PERIOD_MS, 100) != pdPASS)
{
EFR32_LOG("app timer start() failed");
appError(CHIP_ERROR_MAX);
}
mFunctionTimerActive = true;
}
void AppTask::ActionInitiated(BoltLockManager::Action_t aAction, int32_t aActor)
{
// If the action has been initiated by the lock, update the bolt lock trait
// and start flashing the LEDs rapidly to indicate action initiation.
if (aAction == BoltLockManager::LOCK_ACTION)
{
EFR32_LOG("Lock Action has been initiated")
}
else if (aAction == BoltLockManager::UNLOCK_ACTION)
{
EFR32_LOG("Unlock Action has been initiated")
}
sLockLED.Blink(50, 50);
}
void AppTask::ActionCompleted(BoltLockManager::Action_t aAction)
{
// if the action has been completed by the lock, update the bolt lock trait.
// Turn on the lock LED if in a LOCKED state OR
// Turn off the lock LED if in an UNLOCKED state.
if (aAction == BoltLockManager::LOCK_ACTION)
{
EFR32_LOG("Lock Action has been completed")
sLockLED.Set(true);
}
else if (aAction == BoltLockManager::UNLOCK_ACTION)
{
EFR32_LOG("Unlock Action has been completed")
sLockLED.Set(false);
}
}
void AppTask::PostLockActionRequest(int32_t aActor, BoltLockManager::Action_t aAction)
{
AppEvent event;
event.Type = AppEvent::kEventType_Lock;
event.LockEvent.Actor = aActor;
event.LockEvent.Action = aAction;
event.Handler = LockActionEventHandler;
PostEvent(&event);
}
void AppTask::PostEvent(const AppEvent * aEvent)
{
if (sAppEventQueue != NULL)
{
if (!xQueueSend(sAppEventQueue, aEvent, 1))
{
EFR32_LOG("Failed to post event to app task event queue");
}
}
}
void AppTask::DispatchEvent(AppEvent * aEvent)
{
if (aEvent->Handler)
{
aEvent->Handler(aEvent);
}
else
{
EFR32_LOG("Event received with no handler. Dropping event.");
}
}