/* SPDX-License-Identifier: GPL-2.0-or-later */ /* * Copyright (C) 2019, Google Inc. * * timer.cpp - Timer test */ #include #include #include #include #include #include "test.h" using namespace libcamera; using namespace std; using namespace std::chrono_literals; class ManagedTimer : public Timer { public: ManagedTimer() : Timer(), count_(0) { timeout.connect(this, &ManagedTimer::timeoutHandler); } void start(std::chrono::milliseconds msec) { count_ = 0; start_ = std::chrono::steady_clock::now(); expiration_ = std::chrono::steady_clock::time_point(); Timer::start(msec); } void start(std::chrono::steady_clock::time_point deadline) { count_ = 0; start_ = std::chrono::steady_clock::now(); expiration_ = std::chrono::steady_clock::time_point(); Timer::start(deadline); } int jitter() { std::chrono::steady_clock::duration duration = expiration_ - deadline(); return abs(std::chrono::duration_cast(duration).count()); } bool hasFailed() { return isRunning() || count_ != 1 || jitter() > 50; } private: void timeoutHandler() { expiration_ = std::chrono::steady_clock::now(); count_++; } unsigned int count_; std::chrono::steady_clock::time_point start_; std::chrono::steady_clock::time_point expiration_; }; class TimerTest : public Test { protected: int init() { return 0; } int run() { EventDispatcher *dispatcher = Thread::current()->eventDispatcher(); ManagedTimer timer; ManagedTimer timer2; /* Timer expiration. */ timer.start(1000ms); if (!timer.isRunning()) { cout << "Timer expiration test failed" << endl; return TestFail; } dispatcher->processEvents(); if (timer.hasFailed()) { cout << "Timer expiration test failed" << endl; return TestFail; } /* * 32 bit wrap test * Nanosecond resolution in a 32 bit value wraps at 4.294967 * seconds (0xFFFFFFFF / 1000000) */ timer.start(4295ms); dispatcher->processEvents(); if (timer.hasFailed()) { cout << "Timer expiration test failed" << endl; return TestFail; } /* Timer restart. */ timer.start(500ms); if (!timer.isRunning()) { cout << "Timer restart test failed" << endl; return TestFail; } dispatcher->processEvents(); if (timer.hasFailed()) { cout << "Timer restart test failed" << endl; return TestFail; } /* Timer restart before expiration. */ timer.start(50ms); timer.start(100ms); timer.start(150ms); dispatcher->processEvents(); if (timer.hasFailed()) { cout << "Timer restart before expiration test failed" << endl; return TestFail; } /* Timer with absolute deadline. */ timer.start(std::chrono::steady_clock::now() + std::chrono::milliseconds(200)); dispatcher->processEvents(); if (timer.hasFailed()) { cout << "Absolute deadline test failed" << endl; return TestFail; } /* Two timers. */ timer.start(1000ms); timer2.start(300ms); dispatcher->processEvents(); if (!timer.isRunning()) { cout << "Two timers test failed" << endl; return TestFail; } if (timer2.jitter() > 50) { cout << "Two timers test failed" << endl; return TestFail; } dispatcher->processEvents(); if (timer.jitter() > 50) { cout << "Two timers test failed" << endl; return TestFail; } /* Restart timer before expiration. */ timer.start(1000ms); timer2.start(300ms); dispatcher->processEvents(); if (timer2.jitter() > 50) { cout << "Two timers test failed" << endl; return TestFail; } timer.start(1000ms); dispatcher->processEvents(); if (timer.jitter() > 50) { cout << "Two timers test failed" << endl; return TestFail; } /* * Test that dynamically allocated timers are stopped when * deleted. This will result in a crash on failure. */ ManagedTimer *dyntimer = new ManagedTimer(); dyntimer->start(100ms); delete dyntimer; timer.start(200ms); dispatcher->processEvents(); return TestPass; } void cleanup() { } }; TEST_REGISTER(TimerTest) mmitter
blob: ab5cb35c11f23ba96ed9fa2f9c9453f1437f066a (plain)
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/* SPDX-License-Identifier: GPL-2.0-or-later */
/*
 * Copyright (C) 2020-2021, Google Inc.
 *
 * simple_capture.cpp - Simple capture helper
 */

#include <gtest/gtest.h>

#include "simple_capture.h"

using namespace libcamera;

SimpleCapture::SimpleCapture(std::shared_ptr<Camera> camera)
	: loop_(nullptr), camera_(camera),
	  allocator_(std::make_unique<FrameBufferAllocator>(camera))
{
}

SimpleCapture::~SimpleCapture()
{
	stop();
}

void SimpleCapture::configure(StreamRole role)
{
	config_ = camera_->generateConfiguration({ role });

	if (!config_) {
		std::cout << "Role not supported by camera" << std::endl;
		GTEST_SKIP();
	}

	if (config_->validate() != CameraConfiguration::Valid) {
		config_.reset();
		FAIL() << "Configuration not valid";
	}

	if (camera_->configure(config_.get())) {
		config_.reset();
		FAIL() << "Failed to configure camera";
	}
}

void SimpleCapture::start()
{
	Stream *stream = config_->at(0).stream();
	int count = allocator_->allocate(stream);

	ASSERT_GE(count, 0) << "Failed to allocate buffers";
	EXPECT_EQ(count, config_->at(0).bufferCount) << "Allocated less buffers than expected";

	camera_->requestCompleted.connect(this, &SimpleCapture::requestComplete);

	ASSERT_EQ(camera_->start(), 0) << "Failed to start camera";
}

void SimpleCapture::stop()
{
	if (!config_ || !allocator_->allocated())
		return;

	camera_->stop();

	camera_->requestCompleted.disconnect(this);

	Stream *stream = config_->at(0).stream();
	allocator_->free(stream);
}

/* SimpleCaptureBalanced */

SimpleCaptureBalanced::SimpleCaptureBalanced(std::shared_ptr<Camera> camera)
	: SimpleCapture(camera)
{
}

void SimpleCaptureBalanced::capture(unsigned int numRequests)
{
	start();

	Stream *stream = config_->at(0).stream();
	const std::vector<std::unique_ptr<FrameBuffer>> &buffers = allocator_->buffers(stream);

	/* No point in testing less requests then the camera depth. */
	if (buffers.size() > numRequests) {
		std::cout << "Camera needs " + std::to_string(buffers.size())
			+ " requests, can't test only "
			+ std::to_string(numRequests) << std::endl;
		GTEST_SKIP();
	}

	queueCount_ = 0;
	captureCount_ = 0;
	captureLimit_ = numRequests;

	/* Queue the recommended number of reqeuests. */
	std::vector<std::unique_ptr<libcamera::Request>> requests;
	for (const std::unique_ptr<FrameBuffer> &buffer : buffers) {
		std::unique_ptr<Request> request = camera_->createRequest();
		ASSERT_TRUE(request) << "Can't create request";

		ASSERT_EQ(request->addBuffer(stream, buffer.get()), 0) << "Can't set buffer for request";

		ASSERT_EQ(queueRequest(request.get()), 0) << "Failed to queue request";

		requests.push_back(std::move(request));
	}

	/* Run capture session. */
	loop_ = new EventLoop();
	loop_->exec();
	stop();
	delete loop_;

	ASSERT_EQ(captureCount_, captureLimit_);
}

int SimpleCaptureBalanced::queueRequest(Request *request)
{
	queueCount_++;
	if (queueCount_ > captureLimit_)
		return 0;

	return camera_->queueRequest(request);
}

void SimpleCaptureBalanced::requestComplete(Request *request)
{
	captureCount_++;
	if (captureCount_ >= captureLimit_) {
		loop_->exit(0);
		return;
	}

	request->reuse(Request::ReuseBuffers);
	if (queueRequest(request))
		loop_->exit(-EINVAL);
}

/* SimpleCaptureUnbalanced */

SimpleCaptureUnbalanced::SimpleCaptureUnbalanced(std::shared_ptr<Camera> camera)
	: SimpleCapture(camera)
{
}

void SimpleCaptureUnbalanced::capture(unsigned int numRequests)
{
	start();

	Stream *stream = config_->at(0).stream();
	const std::vector<std::unique_ptr<FrameBuffer>> &buffers = allocator_->buffers(stream);

	captureCount_ = 0;
	captureLimit_ = numRequests;

	/* Queue the recommended number of reqeuests. */
	std::vector<std::unique_ptr<libcamera::Request>> requests;
	for (const std::unique_ptr<FrameBuffer> &buffer : buffers) {
		std::unique_ptr<Request> request = camera_->createRequest();
		ASSERT_TRUE(request) << "Can't create request";

		ASSERT_EQ(request->addBuffer(stream, buffer.get()), 0) << "Can't set buffer for request";

		ASSERT_EQ(camera_->queueRequest(request.get()), 0) << "Failed to queue request";

		requests.push_back(std::move(request));
	}

	/* Run capture session. */
	loop_ = new EventLoop();
	int status = loop_->exec();
	stop();
	delete loop_;

	ASSERT_EQ(status, 0);
}

void SimpleCaptureUnbalanced::requestComplete(Request *request)
{
	captureCount_++;
	if (captureCount_ >= captureLimit_) {
		loop_->exit(0);
		return;
	}

	request->reuse(Request::ReuseBuffers);
	if (camera_->queueRequest(request))
		loop_->exit(-EINVAL);
}