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tactility/TactilityFreeRtos/Include/Tactility/Timer.h
T
2026-08-30 23:10:52 +02:00

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7.2 KiB
C++

// SPDX-License-Identifier: Apache-2.0
#pragma once
#include "Thread.h"
#include "freertoscompat/Timers.h"
#ifdef ESP_PLATFORM
#include <freertos/semphr.h>
#else
#include <semphr.h>
#endif
#include <atomic>
#include <functional>
#include <memory>
namespace tt {
/**
* Wrapper class for xTimer functions.
* @warning Cannot be called from an ISR context except for ::setPendingCallback()
*/
class Timer final {
public:
enum class Type {
Once = 0, // Timer triggers once after time has passed
Periodic = 1 // Timer triggers repeatedly after time has passed
};
typedef std::function<void()> Callback;
typedef void (*PendingCallback)(void* context, uint32_t arg);
private:
struct TimerHandleDeleter {
void operator()(TimerHandle_t handleToDelete) const {
xTimerDelete(handleToDelete, kernel::FREERTOS_MAX_TICKS);
}
};
Callback callback;
std::unique_ptr<std::remove_pointer_t<TimerHandle_t>, TimerHandleDeleter> handle;
// Set for the duration of a callback invocation. xTimerStop()/xTimerDelete() only prevent
// *future* dispatches: if a callback was already dispatched by the timer daemon task, they
// return immediately without waiting for it to finish. Callers that stop a timer and then
// immediately destroy state the callback reads/writes (e.g. a Service destructing itself
// right after stopping its own update timer) can otherwise race an in-flight callback against
// that destruction. stop() below spins on this flag so it only returns once no callback is
// executing and none can start afterward.
std::atomic<bool> callbackRunning {false};
static TimerHandle_t createTimer(Type type, TickType_t ticks, void* timerId, TimerCallbackFunction_t callback) {
assert(timerId != nullptr);
assert(callback != nullptr);
BaseType_t auto_reload = (type == Type::Once) ? pdFALSE : pdTRUE;
return xTimerCreate(nullptr, ticks, auto_reload, timerId, callback);
}
static void onCallback(TimerHandle_t hTimer) {
auto* timer = static_cast<Timer*>(pvTimerGetTimerID(hTimer));
if (timer != nullptr) {
timer->callbackRunning.store(true, std::memory_order_release);
timer->callback();
timer->callbackRunning.store(false, std::memory_order_release);
}
}
// Signals a SemaphoreHandle_t (passed as context) from the timer daemon task. Used by stop()
// as a barrier: FreeRTOS timer commands are processed FIFO, so queuing this via
// xTimerPendFunctionCall right after xTimerStop() guarantees it only runs once the daemon has
// drained everything queued ahead of it - including an expiry command that raced the stop.
static void onStopBarrier(void* context, uint32_t /*arg*/) {
xSemaphoreGive(static_cast<SemaphoreHandle_t>(context));
}
public:
/**
* @param[in] type The timer type
* @param[in] callback The callback function
*/
Timer(Type type, TickType_t ticks, Callback callback) :
callback(callback),
handle(createTimer(type, ticks, this, onCallback))
{
assert(xPortInIsrContext() == pdFALSE);
assert(handle != nullptr);
}
~Timer() {
assert(xPortInIsrContext() == pdFALSE);
}
/**
* Start the timer
* @return success result
*/
bool start() const {
assert(xPortInIsrContext() == pdFALSE);
return xTimerStart(handle.get(), kernel::FREERTOS_MAX_TICKS) == pdPASS;
}
/**
* Stop the timer. Unlike a bare xTimerStop(), this blocks until any
* callback invocation already queued or dispatched by the timer daemon
* task at the time of the call has finished running, so it is safe to
* destroy state the callback reads or writes as soon as this returns.
* @warning Do not call this from within the timer's own callback - it
* would deadlock waiting on itself.
* @return success result
*/
bool stop() const {
assert(xPortInIsrContext() == pdFALSE);
bool result = xTimerStop(handle.get(), kernel::FREERTOS_MAX_TICKS) == pdPASS;
if (result) {
// xTimerStop() only queues tmrCOMMAND_STOP - the daemon may not have processed it yet,
// and an expiry command already ahead of it in the queue can still dispatch a callback
// after this returns. Queuing a pend-function-call barrier right after the stop command
// guarantees (FIFO command processing) that it only runs once everything queued ahead
// of it - including such an expiry - has been handled.
SemaphoreHandle_t barrier = xSemaphoreCreateBinary();
assert(barrier != nullptr);
if (setPendingCallback(onStopBarrier, barrier, 0, kernel::FREERTOS_MAX_TICKS)) {
xSemaphoreTake(barrier, kernel::FREERTOS_MAX_TICKS);
}
vSemaphoreDelete(barrier);
}
while (callbackRunning.load(std::memory_order_acquire)) {
vTaskDelay(1);
}
return result;
}
/**
* Set a new interval and reset the timer
* @param[in] interval The new timer interval
* @return success result
*/
bool reset(TickType_t interval) const {
assert(xPortInIsrContext() == pdFALSE);
return xTimerChangePeriod(handle.get(), interval, kernel::FREERTOS_MAX_TICKS) == pdPASS &&
xTimerReset(handle.get(), kernel::FREERTOS_MAX_TICKS) == pdPASS;
}
/**
* Reset the timer
* @return success result
*/
bool reset() const {
assert(xPortInIsrContext() == pdFALSE);
return xTimerReset(handle.get(), kernel::FREERTOS_MAX_TICKS) == pdPASS;
}
/** @return true when the timer is running */
bool isRunning() const {
assert(xPortInIsrContext() == pdFALSE);
return xTimerIsTimerActive(handle.get()) == pdTRUE;
}
/** @return the expiry time in ticks */
TickType_t getExpiryTime() const {
assert(xPortInIsrContext() == pdFALSE);
return xTimerGetExpiryTime(handle.get());
}
/**
* Calls xTimerPendFunctionCall internally.
* @param[in] callback the function to call
* @param[in] callbackContext the first function argument
* @param[in] callbackArg the second function argument
* @param[in] timeout the function timeout (must set to 0 in ISR mode)
* @return true on success
*/
bool setPendingCallback(PendingCallback newCallback, void* callbackContext, uint32_t callbackArg, TickType_t timeout) const {
if (xPortInIsrContext() == pdTRUE) {
assert(timeout == 0);
return xTimerPendFunctionCallFromISR(newCallback, callbackContext, callbackArg, nullptr) == pdPASS;
} else {
return xTimerPendFunctionCall(newCallback, callbackContext, callbackArg, timeout) == pdPASS;
}
}
/** Set callback priority
* @param[in] priority The priority
*/
void setCallbackPriority(Thread::Priority priority) const {
assert(xPortInIsrContext() == pdFALSE);
TaskHandle_t task_handle = xTimerGetTimerDaemonTaskHandle();
assert(task_handle); // Don't call this method before timer task start
vTaskPrioritySet(task_handle, static_cast<UBaseType_t>(priority));
}
};
} // namespace