This adds more portability to existing cam sinks. You can pass a YUYV camera buffer and SDL will handle the pixel buffer conversion to the display. This allows cam reference implementation to display images on VMs, Mac M1, Raspberry Pi, etc. This also enables cam reference implementation, to run as a desktop application in Wayland or X11. SDL also has support for Android and ChromeOS which has not been tested. Also tested on simpledrm Raspberry Pi 4 framebuffer successfully where existing kms sink did not work. Can also be used as kmsdrm sink. Only supports one camera stream at present. Signed-off-by: Eric Curtin <ecurtin@redhat.com> Reviewed-by: Laurent Pinchart <laurent.pinchart@ideasonboard.com> Reviewed-by: Kieran Bingham <kieran.bingham@ideasonboard.com> Tested-by: Jacopo Mondi <jacopo@jmondi.org> Signed-off-by: Laurent Pinchart <laurent.pinchart@ideasonboard.com>
451 lines
11 KiB
C++
451 lines
11 KiB
C++
/* SPDX-License-Identifier: GPL-2.0-or-later */
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/*
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* Copyright (C) 2019, Google Inc.
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*
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* camera_session.cpp - Camera capture session
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*/
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#include <iomanip>
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#include <iostream>
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#include <limits.h>
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#include <sstream>
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#include <libcamera/control_ids.h>
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#include <libcamera/property_ids.h>
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#include "camera_session.h"
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#include "capture_script.h"
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#include "event_loop.h"
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#include "file_sink.h"
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#ifdef HAVE_KMS
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#include "kms_sink.h"
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#endif
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#include "main.h"
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#ifdef HAVE_SDL
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#include "sdl_sink.h"
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#endif
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#include "stream_options.h"
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using namespace libcamera;
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CameraSession::CameraSession(CameraManager *cm,
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const std::string &cameraId,
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unsigned int cameraIndex,
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const OptionsParser::Options &options)
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: options_(options), cameraIndex_(cameraIndex), last_(0),
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queueCount_(0), captureCount_(0), captureLimit_(0),
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printMetadata_(false)
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{
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char *endptr;
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unsigned long index = strtoul(cameraId.c_str(), &endptr, 10);
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if (*endptr == '\0' && index > 0 && index <= cm->cameras().size())
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camera_ = cm->cameras()[index - 1];
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else
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camera_ = cm->get(cameraId);
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if (!camera_) {
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std::cerr << "Camera " << cameraId << " not found" << std::endl;
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return;
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}
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if (camera_->acquire()) {
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std::cerr << "Failed to acquire camera " << cameraId
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<< std::endl;
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return;
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}
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StreamRoles roles = StreamKeyValueParser::roles(options_[OptStream]);
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std::unique_ptr<CameraConfiguration> config =
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camera_->generateConfiguration(roles);
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if (!config || config->size() != roles.size()) {
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std::cerr << "Failed to get default stream configuration"
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<< std::endl;
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return;
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}
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/* Apply configuration if explicitly requested. */
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if (StreamKeyValueParser::updateConfiguration(config.get(),
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options_[OptStream])) {
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std::cerr << "Failed to update configuration" << std::endl;
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return;
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}
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bool strictFormats = options_.isSet(OptStrictFormats);
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#ifdef HAVE_KMS
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if (options_.isSet(OptDisplay)) {
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if (options_.isSet(OptFile)) {
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std::cerr << "--display and --file options are mutually exclusive"
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<< std::endl;
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return;
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}
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if (roles.size() != 1) {
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std::cerr << "Display doesn't support multiple streams"
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<< std::endl;
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return;
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}
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if (roles[0] != StreamRole::Viewfinder) {
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std::cerr << "Display requires a viewfinder stream"
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<< std::endl;
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return;
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}
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}
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#endif
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if (options_.isSet(OptCaptureScript)) {
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std::string scriptName = options_[OptCaptureScript].toString();
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script_ = std::make_unique<CaptureScript>(camera_, scriptName);
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if (!script_->valid()) {
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std::cerr << "Invalid capture script '" << scriptName
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<< "'" << std::endl;
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return;
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}
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}
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switch (config->validate()) {
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case CameraConfiguration::Valid:
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break;
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case CameraConfiguration::Adjusted:
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if (strictFormats) {
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std::cout << "Adjusting camera configuration disallowed by --strict-formats argument"
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<< std::endl;
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return;
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}
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std::cout << "Camera configuration adjusted" << std::endl;
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break;
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case CameraConfiguration::Invalid:
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std::cout << "Camera configuration invalid" << std::endl;
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return;
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}
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config_ = std::move(config);
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}
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CameraSession::~CameraSession()
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{
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if (camera_)
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camera_->release();
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}
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void CameraSession::listControls() const
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{
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for (const auto &[id, info] : camera_->controls()) {
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std::cout << "Control: " << id->name() << ": "
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<< info.toString() << std::endl;
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}
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}
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void CameraSession::listProperties() const
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{
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for (const auto &[key, value] : camera_->properties()) {
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const ControlId *id = properties::properties.at(key);
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std::cout << "Property: " << id->name() << " = "
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<< value.toString() << std::endl;
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}
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}
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void CameraSession::infoConfiguration() const
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{
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unsigned int index = 0;
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for (const StreamConfiguration &cfg : *config_) {
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std::cout << index << ": " << cfg.toString() << std::endl;
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const StreamFormats &formats = cfg.formats();
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for (PixelFormat pixelformat : formats.pixelformats()) {
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std::cout << " * Pixelformat: "
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<< pixelformat << " "
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<< formats.range(pixelformat).toString()
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<< std::endl;
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for (const Size &size : formats.sizes(pixelformat))
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std::cout << " - " << size << std::endl;
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}
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index++;
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}
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}
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int CameraSession::start()
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{
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int ret;
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queueCount_ = 0;
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captureCount_ = 0;
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captureLimit_ = options_[OptCapture].toInteger();
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printMetadata_ = options_.isSet(OptMetadata);
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ret = camera_->configure(config_.get());
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if (ret < 0) {
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std::cout << "Failed to configure camera" << std::endl;
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return ret;
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}
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streamNames_.clear();
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for (unsigned int index = 0; index < config_->size(); ++index) {
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StreamConfiguration &cfg = config_->at(index);
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streamNames_[cfg.stream()] = "cam" + std::to_string(cameraIndex_)
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+ "-stream" + std::to_string(index);
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}
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camera_->requestCompleted.connect(this, &CameraSession::requestComplete);
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#ifdef HAVE_KMS
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if (options_.isSet(OptDisplay))
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sink_ = std::make_unique<KMSSink>(options_[OptDisplay].toString());
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#endif
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#ifdef HAVE_SDL
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if (options_.isSet(OptSDL))
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sink_ = std::make_unique<SDLSink>();
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#endif
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if (options_.isSet(OptFile)) {
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if (!options_[OptFile].toString().empty())
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sink_ = std::make_unique<FileSink>(streamNames_,
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options_[OptFile]);
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else
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sink_ = std::make_unique<FileSink>(streamNames_);
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}
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if (sink_) {
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ret = sink_->configure(*config_);
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if (ret < 0) {
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std::cout << "Failed to configure frame sink"
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<< std::endl;
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return ret;
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}
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sink_->requestProcessed.connect(this, &CameraSession::sinkRelease);
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}
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allocator_ = std::make_unique<FrameBufferAllocator>(camera_);
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return startCapture();
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}
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void CameraSession::stop()
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{
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int ret = camera_->stop();
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if (ret)
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std::cout << "Failed to stop capture" << std::endl;
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if (sink_) {
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ret = sink_->stop();
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if (ret)
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std::cout << "Failed to stop frame sink" << std::endl;
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}
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sink_.reset();
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requests_.clear();
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allocator_.reset();
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}
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int CameraSession::startCapture()
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{
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int ret;
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/* Identify the stream with the least number of buffers. */
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unsigned int nbuffers = UINT_MAX;
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for (StreamConfiguration &cfg : *config_) {
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ret = allocator_->allocate(cfg.stream());
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if (ret < 0) {
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std::cerr << "Can't allocate buffers" << std::endl;
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return -ENOMEM;
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}
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unsigned int allocated = allocator_->buffers(cfg.stream()).size();
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nbuffers = std::min(nbuffers, allocated);
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}
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/*
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* TODO: make cam tool smarter to support still capture by for
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* example pushing a button. For now run all streams all the time.
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*/
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for (unsigned int i = 0; i < nbuffers; i++) {
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std::unique_ptr<Request> request = camera_->createRequest();
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if (!request) {
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std::cerr << "Can't create request" << std::endl;
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return -ENOMEM;
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}
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for (StreamConfiguration &cfg : *config_) {
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Stream *stream = cfg.stream();
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const std::vector<std::unique_ptr<FrameBuffer>> &buffers =
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allocator_->buffers(stream);
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const std::unique_ptr<FrameBuffer> &buffer = buffers[i];
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ret = request->addBuffer(stream, buffer.get());
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if (ret < 0) {
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std::cerr << "Can't set buffer for request"
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<< std::endl;
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return ret;
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}
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if (sink_)
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sink_->mapBuffer(buffer.get());
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}
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requests_.push_back(std::move(request));
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}
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if (sink_) {
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ret = sink_->start();
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if (ret) {
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std::cout << "Failed to start frame sink" << std::endl;
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return ret;
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}
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}
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ret = camera_->start();
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if (ret) {
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std::cout << "Failed to start capture" << std::endl;
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if (sink_)
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sink_->stop();
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return ret;
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}
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for (std::unique_ptr<Request> &request : requests_) {
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ret = queueRequest(request.get());
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if (ret < 0) {
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std::cerr << "Can't queue request" << std::endl;
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camera_->stop();
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if (sink_)
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sink_->stop();
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return ret;
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}
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}
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if (captureLimit_)
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std::cout << "cam" << cameraIndex_
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<< ": Capture " << captureLimit_ << " frames"
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<< std::endl;
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else
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std::cout << "cam" << cameraIndex_
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<< ": Capture until user interrupts by SIGINT"
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<< std::endl;
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return 0;
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}
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int CameraSession::queueRequest(Request *request)
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{
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if (captureLimit_ && queueCount_ >= captureLimit_)
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return 0;
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if (script_)
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request->controls() = script_->frameControls(queueCount_);
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queueCount_++;
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return camera_->queueRequest(request);
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}
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void CameraSession::requestComplete(Request *request)
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{
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if (request->status() == Request::RequestCancelled)
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return;
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/*
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* Defer processing of the completed request to the event loop, to avoid
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* blocking the camera manager thread.
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*/
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EventLoop::instance()->callLater([=]() { processRequest(request); });
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}
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void CameraSession::processRequest(Request *request)
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{
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/*
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* If we've reached the capture limit, we're done. This doesn't
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* duplicate the check below that emits the captureDone signal, as this
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* function will be called for each request still in flight after the
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* capture limit is reached and we don't want to emit the signal every
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* single time.
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*/
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if (captureLimit_ && captureCount_ >= captureLimit_)
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return;
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const Request::BufferMap &buffers = request->buffers();
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/*
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* Compute the frame rate. The timestamp is arbitrarily retrieved from
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* the first buffer, as all buffers should have matching timestamps.
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*/
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uint64_t ts = buffers.begin()->second->metadata().timestamp;
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double fps = ts - last_;
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fps = last_ != 0 && fps ? 1000000000.0 / fps : 0.0;
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last_ = ts;
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bool requeue = true;
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std::stringstream info;
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info << ts / 1000000000 << "."
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<< std::setw(6) << std::setfill('0') << ts / 1000 % 1000000
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<< " (" << std::fixed << std::setprecision(2) << fps << " fps)";
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for (const auto &[stream, buffer] : buffers) {
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const FrameMetadata &metadata = buffer->metadata();
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info << " " << streamNames_[stream]
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<< " seq: " << std::setw(6) << std::setfill('0') << metadata.sequence
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<< " bytesused: ";
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unsigned int nplane = 0;
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for (const FrameMetadata::Plane &plane : metadata.planes()) {
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info << plane.bytesused;
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if (++nplane < metadata.planes().size())
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info << "/";
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}
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}
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if (sink_) {
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if (!sink_->processRequest(request))
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requeue = false;
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}
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std::cout << info.str() << std::endl;
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if (printMetadata_) {
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const ControlList &requestMetadata = request->metadata();
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for (const auto &[key, value] : requestMetadata) {
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const ControlId *id = controls::controls.at(key);
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std::cout << "\t" << id->name() << " = "
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<< value.toString() << std::endl;
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}
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}
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/*
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* Notify the user that capture is complete if the limit has just been
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* reached.
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*/
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captureCount_++;
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if (captureLimit_ && captureCount_ >= captureLimit_) {
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captureDone.emit();
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return;
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}
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/*
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* If the frame sink holds on the request, we'll requeue it later in the
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* complete handler.
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*/
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if (!requeue)
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return;
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request->reuse(Request::ReuseBuffers);
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queueRequest(request);
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}
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void CameraSession::sinkRelease(Request *request)
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{
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request->reuse(Request::ReuseBuffers);
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queueRequest(request);
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}
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