The invention relates to signal processing, and more particularly, to a signal processing device that processes the signal through on screen display (OSD) processing.
Nowadays, most of video and audio signal processing products only provide a single processing effect but not a scene mode selection mechanism. Therefore, when a user desires to have best effects in different application scenarios, the user can only choose different products to obtain different effects. For example, when a user wants to watch a movie, he/she must choose a product that enhances the video and audio effects of the movie; when a user wants to play a video game, he/she must choose a product that enhances the game screen/sound effect. Furthermore, the actual processing effects of different audio and video signal processing products can be known by the user just after the user needs to change the product. Therefore, the current video and audio signal processing products do not have any mechanism for allowing users to quickly switch between different signal processing effects for selecting the most suitable signal processing effect applied to the current scene. Thus, a novel method and associated architecture are needed for quickly switching scene modes and displaying signal processing effects on the screen with no or fewer side effects.
It is an objective of the present invention to provide a signal processing device that can be configured to quickly switch between different scene modes and can process the signal through on screen display (OSD) processing, such that the user can select the most suitable scene mode according to the processed signal displayed on the display, in order to solve the above-mentioned problems.
At least one embodiment of the present invention provides a signal processing device comprising a receiver, a signal processor and a transmitter. The receiver is configured to receive a first video signal. The signal processor is coupled to the receiver, and configured to support a plurality of scene modes, select a current scene mode from the plurality of scene modes according to a user input, and operate in the current scene mode to process the first video signal to generate a second video signal. The transmitter is configured to output the second video signal.
At least one embodiment of the present invention provides a dongle device comprising a signal processing device, a first connector and a second connector. The signal processing device comprises a receiver, a signal processor and a transmitter. The receiver is configured to receive a first video signal. The signal processor is coupled to the receiver, and configured to support a plurality of scene modes, select a current scene mode from the plurality of scene modes according to a user input, and operate in the current scene mode to process the first video signal to generate a second video signal. The transmitter is configured to output the second video signal. The first connector is coupled to the receiver. The second connector is coupled to the transmitter. The first video signal is received from a player device through the first connector and the second video signal is provided to a display device through the second connector.
At least one embodiment of the present invention provides an adaptor cable comprising a signal processing device, a cable and a connector. The signal processing device comprises a receiver, a signal processor and a transmitter. The receiver is configured to receive a first video signal. The signal processor is coupled to the receiver, and configured to support a plurality of scene modes, select a current scene mode from the plurality of scene modes according to a user input, and operate in the current scene mode to process the first video signal to generate a second video signal. The transmitter is configured to output the second video signal. The cable is coupled to one of the receiver and the transmitter. The connector is coupled to another of the receiver and the transmitter. When the cable is coupled to the receiver, the first video signal is received from a playback device through the cable, and the second video signal is provided to a display device through the connector. When the cable is coupled to the transmitter, the first video signal is received from the playback device through the connector, and the second video signal is provided to the display device through the cable.
One of the advantages of the present invention is that the processed signal in the current scene mode can be displayed via on screen display (OSD). The signal processing device of the present invention can provide a directly visible selection mechanism to a user. The user may select the operating scene mode according to the current application scene, and may further select the intensity of processing the video signal in the scene mode. In comparison with the related art, the present invention can select the scene mode under the condition of direct visualization. In addition, the present invention can realize a signal processing device capable of rapidly switching between different scene modes with no or fewer side effects.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
The signal processor 106 of the signal processing device 100 may further comprise a video/audio signal decoder 103, an image extractor 104, and an audio processor 105. The video/audio signal decoder 103 may be configured to decode the received video signal or audio signal into a predetermined format based on requirements. The image extractor 104 may extract image data from the video signal. The audio processor 105 may extract audio data from the video signal, and process the audio signal according to the audio format. For example, the audio processor 105 performs audio signal processing on the audio data, where the audio signal processing may be, for example, noise elimination, signal purification, signal amplification, etc., but the present invention is not limited thereto.
In addition, the signal processor 106 of the signal processing device 100 may further comprise an image scaler 107, an image processor 108 and an image and audio packager 109. The image scaler 107 is configured to scale the image. For example, the image scaler 107 may adjust the size and/or resolution of the image based on the current image resolution. For example, an image interpolation method is used to add extra pixels, so as to improve the resolution of the output image. The image processor 108 is configured to perform corresponding processing according to the current image format and image resolution, to further improve image quality. By way of example, but not limitation, the corresponding processing may be edge sharpening, denoising, contrast enhancement, smoothing processing, etc. The image and audio packager 109 is configured to package the processed audio data and image data into video signals. The signal processing device 100 may further comprise a transmitter 110, a power delivery controller 111 and a user input device 112. The transmitter 110 is configured to output the video signals. The power delivery controller 111 is configured to acquire power from the peripheral device (e.g., the playback device or the display device) coupled thereto, and provide the power to the internal components of the signal processing device 100 (note that the coupling relationship between them is not shown in
The receivers 101 and 102 of the signal processing device 100 of the present invention are configured to receive a first video signal from an external circuit, and the signal processor 106 of the signal processing device 100 supports a plurality of scene modes. In other words, the signal processor 106 can be configured to select the current scene mode from a plurality of scene modes according to the user input, and operate in the current scene mode to process the first video signal to generate a second video signal. The transmitter 110 is configured to output the second video signal. Different scene modes can apply different processing to the first video signal for presenting different video processing effects, and the signal processor 106 superimposes a video processing effect on the first video signal through on screen display (OSD) processing to generate the second video signal. Therefore, the present invention can reduce the processing time of the first video signal. For example, when a user makes the signal processing device 100 receive a user input through the user input device 112 and the user input selects a game scene mode as the current scene mode, the signal processor 106 adjusts the sharpness and contrast of the first video signal, and improves the resolution, but the present invention is not limited thereto. The video processing result obtained after the game scene mode is selected can be displayed on the display device in real time, so that the user can select the most suitable scene mode through a directly visible selection mechanism.
Please refer to
In this example, the input connector and the output connector are the connectors of the same interface, that is, the connectors of the HDMI interface. However, the present invention is not limited thereto, and the input connector and the output connector can also be connectors of different video interfaces. Furthermore, in this example, the power input is a USB power source 206, where the interface connecting the playback device 201 and the display device 205 has a USB interface, and the USB connector for receiving/transmitting signals and the USB connector 207 for receiving power can be merged into a single USB connector.
According to the above arrangement, the electronic device 200 equipped with the signal processing device 100 of the present invention can receive a first video signal from the playback device 201 through the HDMI connector 203, and the signal processor 106 of the signal processing device 100 can be configured to select a current scene mode from the plurality of scene modes according to a user input, and operate the current scene mode to process the first video signal to generate a second video signal. The transmitter 110 is configured to output the second video signal, and the HDMI connector 204 is configured to transmit the second video signal to the display device 205. Different scene modes can perform different processing operations on the first video signal to present different video processing effects on the display device 205, and the signal processor 106 superimposes a video processing effect on the first video signal through OSD processing to generate a second video signal, so the processing time of the first video signal can be reduced, and the display device 205 can quickly display the second video signal. For example, when a user operates the user input device 112, the signal processing device 100 receives a user input from the user input device 112. If the user input selects a portrait scene mode as the current scene mode, the signal processor 106 performs saturation adjustment, flesh tone adjustment and/or resolution improvement on the first video signal. The video processing result obtained after the portrait scene mode is selected can be displayed on the display device 205 in real time. Therefore, the user can select the most suitable scene mode through a directly visible selection mechanism.
Please refer to
When the current scene mode is set by the automatic scene mode, the signal processor 106 can divide the first video signal into a plurality of sections according to the contents. After detecting these sections respectively, the signal processor 106 can further set each section to one of the plurality of scene modes according to the content of each section. In other words, when the current scene mode is the automatic scene mode and an image of the first video signal comprises portraits, artificial objects, and natural objects, etc., the signal processor 106 detects the sections of the first video signal respectively, generates video processing result(s) for the section(s) with portraits according to the portrait scene mode, generates video processing result(s) for the section(s) with artificial objects according to the artificial object scene mode, and generates video processing result(s) for the section(s) with natural objects according to the natural object scene mode.
In addition, each scene mode of the plurality of scene modes corresponds to an adjustable processing intensity, and the processing intensity is the degree to which the signal processor 106 processes the first video signal in the current scene mode. As shown in
In addition, when the user input device 112 is a physical button, the signal processing device 100 can be controlled by long depressing (e.g., depressing for more than 2 seconds) or short depressing (e.g., depressing for less than 0.5 seconds) on the button. For example, long depressing of the button may be set to instruct the signal processing device 100 to enter the scene mode selection and display OSD; short depressing of the button may be set to instruct the signal processing device 100 to switch between different scene modes in sequence for current scene mode selection; depressing the button in a period between a period of long depressing of the button and a period of short depressing of the button may be set to instruct the signal processing device 100 to confirm the selection of the relevant processing items of the current scene mode, and one following short depressing of the button may instruct the signal processing device 100 to switch the confirmed scene mode; and two consecutive short depressing of the button may be set to instruct the signal processing device 100 to leave the scene mode selection. These button settings are only used for illustration and example, and the present invention is not limited thereto.
The electronic device 200 having the signal processing device 100 of the present invention may be an electronic device used in an audio/video (A/V) device, such as a dongle or an adaptor cable for transmitting A/V signal from a playback device to a display device. For example, please refer to
For another example, please refer to
One of the advantages of the present invention is that the processed signal in the current scene mode can be displayed via on screen display (OSD). The signal processing device of the present invention can provide a directly visible selection mechanism to a user. The user may select the operating scene mode according to the current application scene, and may further select the intensity of processing the video signal in the scene mode. In comparison with the related art, the present invention can select the scene mode under the condition of direct visualization. In addition, the present invention can realize a signal processing device capable of rapidly switching between different scene modes with no or fewer side effects.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
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110148576 | Dec 2021 | TW | national |