__  __    __   __  _____      _            _          _____ _          _ _ 
 |  \/  |   \ \ / / |  __ \    (_)          | |        / ____| |        | | |
 | \  / |_ __\ V /  | |__) | __ ___   ____ _| |_ ___  | (___ | |__   ___| | |
 | |\/| | '__|> <   |  ___/ '__| \ \ / / _` | __/ _ \  \___ \| '_ \ / _ \ | |
 | |  | | |_ / . \  | |   | |  | |\ V / (_| | ||  __/  ____) | | | |  __/ | |
 |_|  |_|_(_)_/ \_\ |_|   |_|  |_| \_/ \__,_|\__\___| |_____/|_| |_|\___V 2.1
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Custom metering mode. ../src/gstreamer/gstlibcamerapad.cpp%s:%d: invalid %s id %u for "%s" of type '%s' in '%s'cannot create std::deque larger than max_size()GstElement* gst_libcamera_device_create_element(GstDevice*, const gchar*)../src/gstreamer/gstlibcameraprovider.cppNicolas Dufresne <[email protected]>List camera device using libcameragst_libcamera_src_request_new_pad../src/gstreamer/gstlibcamerasrc.cppstd::vector<_Tp, _Alloc>::reference std::vector<_Tp, _Alloc>::back() [with _Tp = _GstPad*; _Alloc = std::allocator<_GstPad*>; reference = _GstPad*&]/usr/include/c++/14/bits/stl_vector.hEnable or disable the AE. See also: exposure-time, analogue-gain. Specify a metering mode for the AE algorithm to use. The metering modes determine which parts of the image are used to determine the scene brightness. Metering modes may be platform specific and not all metering modes may be supported. Specify a constraint mode for the AE algorithm to use. The constraint modes determine how the measured scene brightness is adjusted to reach the desired target exposure. Constraint modes may be platform specific, and not all constraint modes may be supported. Specify an exposure mode for the AE algorithm to use. The exposure modes specify how the desired total exposure is divided between the exposure time and the sensor's analogue gain. They are platform specific, and not all exposure modes may be supported. Specify an Exposure Value (EV) parameter. The EV parameter will only be applied if the AE algorithm is currently enabled. By convention EV adjusts the exposure as log2. For example EV = [-2, -1, -0.5, 0, 0.5, 1, 2] results in an exposure adjustment of [1/4x, 1/2x, 1/sqrt(2)x, 1x, sqrt(2)x, 2x, 4x]. See also: ae-enable. Exposure time for the frame applied in the sensor device. This value is specified in micro-seconds. Setting this value means that it is now fixed and the AE algorithm may not change it. Setting it back to zero returns it to the control of the AE algorithm. See also: analogue-gain, ae-enable. Todo: Document the interactions between AeEnable and setting a fixed value for this control. Consider interactions with other AE features, such as aperture and aperture/shutter priority mode, and decide if control of which features should be automatically adjusted shouldn't better be handled through a separate AE mode control. Analogue gain value applied in the sensor device. The value of the control specifies the gain multiplier applied to all colour channels. This value cannot be lower than 1.0. Setting this value means that it is now fixed and the AE algorithm may not change it. Setting it back to zero returns it to the control of the AE algorithm. See also: exposure-time, ae-enable. Todo: Document the interactions between AeEnable and setting a fixed value for this control. Consider interactions with other AE features, such as aperture and aperture/shutter priority mode, and decide if control of which features should be automatically adjusted shouldn't better be handled through a separate AE mode control. Manual flicker period in microseconds. This value sets the current flicker period to avoid. It is used when AeFlickerMode is set to FlickerManual. To cancel 50Hz mains flicker, this should be set to 10000 (corresponding to 100Hz), or 8333 (120Hz) for 60Hz mains. Setting the mode to FlickerManual when no AeFlickerPeriod has ever been set means that no flicker cancellation occurs (until the value of this control is updated). Switching to modes other than FlickerManual has no effect on the value of the AeFlickerPeriod control. See also: ae-flicker-mode. Specify a fixed brightness parameter. Positive values (up to 1.0) produce brighter images; negative values (up to -1.0) produce darker images and 0.0 leaves pixels unchanged. Specify a fixed contrast parameter. Normal contrast is given by the value 1.0; larger values produce images with more contrast. Enable or disable the AWB. When AWB is enabled, the algorithm estimates the colour temperature of the scene and computes colour gains and the colour correction matrix automatically. The computed colour temperature, gains and correction matrix are reported in metadata. The corresponding controls are ignored if set in a request. When AWB is disabled, the colour temperature, gains and correction matrix are not updated automatically and can be set manually in requests. See also: colour-correction-matrix. See also: colour-gains. See also: colour-temperature. Specify the range of illuminants to use for the AWB algorithm. The modes supported are platform specific, and not all modes may be supported. Pair of gain values for the Red and Blue colour channels, in that order. ColourGains can only be applied in a Request when the AWB is disabled. If ColourGains is set in a request but ColourTemperature is not, the implementation shall calculate and set the ColourTemperature based on the ColourGains. See also: awb-enable. See also: colour-temperature. Specify a fixed saturation parameter. Normal saturation is given by the value 1.0; larger values produce more saturated colours; 0.0 produces a greyscale image. Intensity of the sharpening applied to the image. A value of 0.0 means no sharpening. The minimum value means minimal sharpening, and shall be 0.0 unless the camera can't disable sharpening completely. The default value shall give a "reasonable" level of sharpening, suitable for most use cases. The maximum value may apply extremely high levels of sharpening, higher than anyone could reasonably want. Negative values are not allowed. Note also that sharpening is not applied to raw streams. One ColourCorrectionMatrix element valuecolour-correction-matrix-valueThe 3x3 matrix that converts camera RGB to sRGB within the imaging pipeline. This should describe the matrix that is used after pixels have been white-balanced, but before any gamma transformation. The 3x3 matrix is stored in conventional reading order in an array of 9 floating point values. ColourCorrectionMatrix can only be applied in a Request when the AWB is  disabled. See also: awb-enable. See also: colour-temperature. One rectangle value, either x, y, width or height.Sets the image portion that will be scaled to form the whole of the final output image. The (x,y) location of this rectangle is relative to the PixelArrayActiveAreas that is being used. The units remain native sensor pixels, even if the sensor is being used in a binning or skipping mode. This control is only present when the pipeline supports scaling. Its maximum valid value is given by the properties::ScalerCropMaximum property, and the two can be used to implement digital zoom. Digital gain value applied during the processing steps applied to the image as captured from the sensor. The global digital gain factor is applied to all the colour channels of the RAW image. Different pipeline models are free to specify how the global gain factor applies to each separate channel. If an imaging pipeline applies digital gain in distinct processing steps, this value indicates their total sum. Pipelines are free to decide how to adjust each processing step to respect the received gain factor and shall report their total value in the request metadata. The mode of the AF (autofocus) algorithm. An implementation may choose not to implement all the modes. The range of focus distances that is scanned. An implementation may choose not to implement all the options here. Determine whether the AF is to move the lens as quickly as possible or more steadily. For example, during video recording it may be desirable not to move the lens too abruptly, but when in a preview mode (waiting for a still capture) it may be helpful to move the lens as quickly as is reasonably possible. The parts of the image used by the AF algorithm to measure focus. The focus windows used by the AF algorithm when AfMetering is set to AfMeteringWindows. The units used are pixels within the rectangle returned by the ScalerCropMaximum property. In order to be activated, a rectangle must be programmed with non-zero width and height. Internally, these rectangles are intersected with the ScalerCropMaximum rectangle. If the window becomes empty after this operation, then the window is ignored. If all the windows end up being ignored, then the behaviour is platform dependent. On platforms that support the ScalerCrop control (for implementing digital zoom, for example), no automatic recalculation or adjustment of AF windows is performed internally if the ScalerCrop is changed. If any window lies outside the output image after the scaler crop has been applied, it is up to the application to recalculate them. The details of how the windows are used are platform dependent. We note that when there is more than one AF window, a typical implementation might find the optimal focus position for each one and finally select the window where the focal distance for the objects shown in that part of the image are closest to the camera. Set and report the focus lens position. This control instructs the lens to move to a particular position and also reports back the position of the lens for each frame. The LensPosition control is ignored unless the AfMode is set to AfModeManual, though the value is reported back unconditionally in all modes. This value, which is generally a non-integer, is the reciprocal of the focal distance in metres, also known as dioptres. That is, to set a focal distance D, the lens position LP is given by \f$LP = \frac{1\mathrm{m}}{D}\f$ For example: - 0 moves the lens to infinity. - 0.5 moves the lens to focus on objects 2m away. - 2 moves the lens to focus on objects 50cm away. - And larger values will focus the lens closer. The default value of the control should indicate a good general position for the lens, often corresponding to the hyperfocal distance (the closest position for which objects at infinity are still acceptably sharp). The minimum will often be zero (meaning infinity), and the maximum value defines the closest focus position. Todo: Define a property to report the Hyperfocal distance of calibrated lenses. Specify a fixed gamma value. The default gamma value must be 2.2 which closely mimics sRGB gamma. Note that this is camera gamma, so it is applied as 1.0/gamma. src/gstreamer/gstlibcamera-controls.cppControl '%s' is not available, default value will be returnedT libcamera::ControlValue::get() const [with T = bool; typename std::enable_if<((! libcamera::details::is_span<U>::value) && (! std::is_same<std::__cxx11::basic_string<char>, typename std::remove_cv< <template-parameter-1-1> >::type>::value)), std::nullptr_t>::type <anonymous> = nullptr]../include/libcamera/controls.htype_ == details::control_type<std::remove_cv_t<T>>::valueT libcamera::ControlValue::get() const [with T = int; typename std::enable_if<((! libcamera::details::is_span<U>::value) && (! std::is_same<std::__cxx11::basic_string<char>, typename std::remove_cv< <template-parameter-1-1> >::type>::value)), std::nullptr_t>::type <anonymous> = nullptr]T libcamera::ControlValue::get() const [with T = float; typename std::enable_if<((! libcamera::details::is_span<U>::value) && (! std::is_same<std::__cxx11::basic_string<char>, typename std::remove_cv< <template-parameter-1-1> >::type>::value)), std::nullptr_t>::type <anonymous> = nullptr]T libcamera::ControlValue::get() const [with T = libcamera::Span<const float, 2>; typename std::enable_if<(libcamera::details::is_span<U>::value || std::is_same<std::__cxx11::basic_string<char>, typename std::remove_cv< <template-parameter-1-1> >::type>::value), std::nullptr_t>::type <anonymous> = nullptr]T libcamera::ControlValue::get() const [with T = libcamera::Span<const float, 9>; typename std::enable_if<(libcamera::details::is_span<U>::value || std::is_same<std::__cxx11::basic_string<char>, typename std::remove_cv< <template-parameter-1-1> >::type>::value), std::nullptr_t>::type <anonymous> = nullptr]T libcamera::ControlValue::get() const [with T = libcamera::Rectangle; typename std::enable_if<((! libcamera::details::is_span<U>::value) && (! std::is_same<std::__cxx11::basic_string<char>, typename std::remove_cv< <template-parameter-1-1> >::type>::value)), std::nullptr_t>::type <anonymous> = nullptr]T libcamera::ControlValue::get() const [with T = libcamera::Span<const libcamera::Rectangle>; typename std::enable_if<(libcamera::details::is_span<U>::value || std::is_same<std::__cxx11::basic_string<char>, typename std::remove_cv< <template-parameter-1-1> >::type>::value), std::nullptr_t>::type <anonymous> = nullptr]Control '%s' is not supported by the camera and will be ignoredIncorrect array size for control 'colour-gains', must be of size 2Incorrect array size for control 'colour-correction-matrix', must be of size 9Rectangle in control 'scaler-crop' must be an array of size 4Rectangle in control 'af-windows' atindex %zu must be an array of size 4std::vector<_Tp, _Alloc>::reference std::vector<_Tp, _Alloc>::operator[](size_type) [with _Tp = libcamera::Rectangle; _Alloc = std::allocator<libcamera::Rectangle>; reference = libcamera::Rectangle&; size_type = long unsigned int]gst_libcamera_stream_formats_to_caps../src/gstreamer/gstlibcamera-utils.cppUnsupported DRM format %c%c%c%cGot invalid colorimetry from ColorSpace: %svoid gst_libcamera_configure_stream_from_caps(libcamera::StreamConfiguration&, GstCaps*, GstVideoTransferFunction*)Colorimetry primaries %d not mapped in gstlibcameraGAMMA 18, 20, 22, 28 transfer functions not supportedColorimetry transfer function %d not mapped in gstlibcameraColorimetry matrix %d not mapped in gstlibcameraColorimetry range %d not mapped in gstlibcameragst_libcamera_get_framerate_from_capsgst_libcamera_clamp_and_set_framedurationFrameDurationLimits not found in camera controls.T libcamera::ControlValue::get() const [with T = long int; typename std::enable_if<((! libcamera::details::is_span<U>::value) && (! std::is_same<std::__cxx11::basic_string<char>, typename std::remove_cv< <template-parameter-1-1> >::type>::value)), std::nullptr_t>::type <anonymous> = nullptr]constexpr const _Tp& std::clamp(const _Tp&, const _Tp&, const _Tp&) [with _Tp = long int]/usr/include/c++/14/bits/stl_algo.hlibcamera::CameraMananger::start() failed: %sCould not find a camera named '%s'.libcamera::CameraMananger::get() returned nullptrCould not find any supported camera on this system.libcamera::CameraMananger::cameras() is emptyCamera '%s' is already in use.libcamera::Camera::acquire() failed: %slibcamera::Camera.release() failed: %sframe->outstandingPlanes_ == 0void gst_libcamera_allocator_free_pool(gpointer)../src/gstreamer/gstlibcameraallocator.cppgboolean gst_libcamera_allocator_release(GstMiniObject*)bool gst_libcamera_allocator_prepare_buffer(GstLibcameraAllocator*, libcamera::Stream*, GstBuffer*)gsize gst_libcamera_allocator_get_pool_size(GstLibcameraAllocator*, libcamera::Stream*)Linux Camera source using libcameraSelect by name which camera to use.cannot create std::vector larger than max_size()std::vector<_Tp, _Alloc>::reference std::vector<_Tp, _Alloc>::operator[](size_type) [with _Tp = GstVideoTransferFunction; _Alloc = std::allocator<GstVideoTransferFunction>; reference = GstVideoTransferFunction&; size_type = long unsigned int]Failed to configure camera: %sCamera::configure() failed with error code %igst_libcamera_allocator_new() failed.std::vector<_Tp, _Alloc>::reference std::vector<_Tp, _Alloc>::back() [with _Tp = libcamera::StreamRole; _Alloc = std::allocator<libcamera::StreamRole>; reference = libcamera::StreamRole&]Failed to generate camera configuration from rolesCamera::generateConfiguration() returned nullptrstate->config_->size() == state->srcpads_.size()void gst_libcamera_src_task_enter(GstTask*, GThread*, gpointer)streaming stopped, reason %s (%d)Failed to start the camera: %sCamera.start() failed with error code %iProbing cameras using libcameraFailed to retrieve device list: %sFailed to generate a default configuration for %stypename std::add_lvalue_reference<_Tp>::type std::unique_ptr<_Tp, _Dp>::operator*() const [with _Tp = libcamera::CameraConfiguration; _Dp = std::default_delete<libcamera::CameraConfiguration>; typename std::add_lvalue_reference<_Tp>::type = libcamera::CameraConfiguration&]/usr/include/c++/14/bits/unique_ptr.hstd::queue<_Tp, _Sequence>::reference std::queue<_Tp, _Sequence>::front() [with _Tp = std::unique_ptr<RequestWrap>; _Sequence = std::deque<std::unique_ptr<RequestWrap>, std::allocator<std::unique_ptr<RequestWrap> > >; reference = std::unique_ptr<RequestWrap>&]/usr/include/c++/14/bits/stl_queue.hwrap->request_.get() == requestvoid GstLibcameraSrcState::requestCompleted(libcamera::Request*)std::deque<_Tp, _Alloc>::reference std::deque<_Tp, _Alloc>::back() [with _Tp = std::unique_ptr<RequestWrap>; _Alloc = std::allocator<std::unique_ptr<RequestWrap> >; reference = std::unique_ptr<RequestWrap>&]/usr/include/c++/14/bits/stl_deque.hFailed to allocate request for camera '%s'.libcamera::Camera::createRequest() failedStreaming thread is about to stopvideo/x-raw; image/jpeg; video/x-bayerLet the AF algorithm decide for itself where it will measure focus. Use the rectangles defined by the AfWindows control to measure focus. If no windows are specified the behaviour is platform dependent. Move the lens at its usual speed. A wide range of focus distances is scanned. Scanned distances cover all the way from infinity down to close distances, though depending on the implementation, possibly not including the very closest macro positions. Only close distances are scanned. The full range of focus distances is scanned. This range is similar to AfRangeNormal but includes the very closest macro positions. The AF algorithm is in manual mode. In this mode it will never perform any action nor move the lens of its own accord, but an application can specify the desired lens position using the LensPosition control. The AfState will always report AfStateIdle. If the camera is started in AfModeManual, it will move the focus lens to the position specified by the LensPosition control. This mode is the recommended default value for the AfMode control. External cameras (as reported by the Location property set to CameraLocationExternal) may use a different default value. The AF algorithm is in auto mode. In this mode the algorithm will never move the lens or change state unless the AfTrigger control is used. The AfTrigger control can be used to initiate a focus scan, the results of which will be reported by AfState. If the autofocus algorithm is moved from AfModeAuto to another mode while a scan is in progress, the scan is cancelled immediately, without waiting for the scan to finish. When first entering this mode the AfState will report AfStateIdle. When a trigger control is sent, AfState will report AfStateScanning for a period before spontaneously changing to AfStateFocused or AfStateFailed, depending on the outcome of the scan. It will remain in this state until another scan is initiated by the AfTrigger control. If a scan is cancelled (without changing to another mode), AfState will return to AfStateIdle. The AF algorithm is in continuous mode. In this mode the lens can re-start a scan spontaneously at any moment, without any user intervention. The AfState still reports whether the algorithm is currently scanning or not, though the application has no ability to initiate or cancel scans, nor to move the lens for itself. However, applications can pause the AF algorithm from continuously scanning by using the AfPause control. This allows video or still images to be captured whilst guaranteeing that the focus is fixed. When set to AfModeContinuous, the system will immediately initiate a scan so AfState will report AfStateScanning, and will settle on one of AfStateFocused or AfStateFailed, depending on the scan result. Search over the whole colour temperature range. Exposure mode allowing only short exposure times. Exposure mode allowing long exposure times. Default constraint mode. This mode aims to balance the exposure of different parts of the image so as to reach a reasonable average level. However, highlights in the image may appear over-exposed and lowlights may appear under-exposed. Highlight constraint mode. This mode adjusts the exposure levels in order to try and avoid over-exposing the brightest parts (highlights) of an image. Other non-highlight parts of the image may appear under-exposed. Shadows constraint mode. This mode adjusts the exposure levels in order to try and avoid under-exposing the dark parts (shadows) of an image. Other normally exposed parts of the image may appear over-exposed. Centre-weighted metering mode. ������������`��`�����`�`���������8��`���`�������`�����������������0����`���������`�������X������� �����������@������������������������@�����(�������������P���p���������������P���� �����������8������������������q����}�����d�������K��h+��*��*��*��*��*��*��h*��*���)��*��*��*��*��*��*��X*��*��H*��*��*��*��*��*��*��8*��N9libcamera15BoundMethodBaseEN9libcamera15BoundMethodArgsIvJPNS_7RequestEEEEN9libcamera17BoundMethodMemberI20GstLibcameraSrcStatevJPNS_7RequestEEEESt19_Sp_make_shared_tagSt11_Mutex_baseILN9__gnu_cxx12_Lock_policyE2EESt16_Sp_counted_baseILN9__gnu_cxx12_Lock_policyE2EESt23_Sp_counted_ptr_inplaceIN9libcamera13CameraManagerESaIvELN9__gnu_cxx12_Lock_policyE2EE�������.AN9libcamera19BoundMethodPackBaseEN9libcamera15BoundMethodPackIvJPNS_7RequestEEEESt23_Sp_counted_ptr_inplaceIN9libcamera15BoundMethodPackIvJPNS0_7RequestEEEESaIvELN9__gnu_cxx12_Lock_policyE2EE;T�P���pК�����p���T�������(����8���l	����	"����
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Filemanager

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libgstaudioresample.so File 38.46 KB 0644
libgstaudiotestsrc.so File 74.46 KB 0644
libgstauparse.so File 30.46 KB 0644
libgstautodetect.so File 30.71 KB 0644
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Filemanager