WO2020168816A1 - 过扫描参数的调节方法、装置、显示设备和存储介质 - Google Patents

过扫描参数的调节方法、装置、显示设备和存储介质 Download PDF

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WO2020168816A1
WO2020168816A1 PCT/CN2019/127717 CN2019127717W WO2020168816A1 WO 2020168816 A1 WO2020168816 A1 WO 2020168816A1 CN 2019127717 W CN2019127717 W CN 2019127717W WO 2020168816 A1 WO2020168816 A1 WO 2020168816A1
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Prior art keywords
image signal
target
signal
display
reference image
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French (fr)
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饶林
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Guangzhou Shiyuan Electronics Thecnology Co Ltd
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Guangzhou Shiyuan Electronics Thecnology Co Ltd
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N5/00Details of television systems
    • H04N5/14Picture signal circuitry for video frequency region

Definitions

  • This application relates to video processing technologies, such as a method, device, display device, and storage medium for adjusting overscan parameters.
  • the level fluctuation causes the edge of the video signal to be irregular.
  • the service provider enlarges the video signal by 5%-10%, and the CRT monitor displays the video
  • the signal is cropped to 90%-95%, and the distorted part is ignored, so as to display the part with good linearity in the middle. This function is called overscan.
  • overscan parameters need to be manually adjusted by technicians before the TV leaves the factory, and the efficiency is low. Moreover, the technicians observe with naked eyes, which may easily cause human interference, resulting in low accuracy of the parameters.
  • This application provides a method, device, display device, and storage medium for adjusting overscan parameters to solve the problem of low efficiency and low accuracy caused by manual adjustment of overscan parameters.
  • this application provides a method for adjusting overscan parameters, including:
  • the reference image signal is an image signal generated by intercepting a screenshot image signal according to a crop width and height corresponding to the video signal, and the screenshot image signal is an image generated by screenshot when the video signal is displayed on a reference display signal;
  • the size of the target display is the same as the size of the reference display.
  • the searching for the reference image signal corresponding to the video signal and displaying the reference image signal on the target display includes:
  • the reference image signal is adapted to the target display for display.
  • the designated storage is a mobile storage
  • the searching for the reference image signal generated based on the signal parameter in the designated memory includes:
  • the signal parameters include video format and resolution.
  • the cropping parameters include cropping width and height, and cropping starting point;
  • the intercepting the target image signal from the video signal according to the set cropping parameters and displaying the target image signal on the target display includes:
  • the target image signal is adapted to the target display for display.
  • the adjusting the image cropping parameters includes:
  • the determining whether the target image signal matches the reference image signal includes:
  • this application also provides a device for adjusting overscan parameters, including:
  • Video signal receiving module for receiving video signals
  • the reference image signal display module is used to search for the reference image signal corresponding to the video signal, and display the reference image signal on the target display;
  • the target image signal display module is configured to intercept the target image signal in the video signal according to the set cropping parameters, and display the target image signal on the target display;
  • the image signal matching module is used to determine whether the target image signal matches the reference image signal; if it is, the overscan parameter setting module is called, if not, the cropping parameter adjustment module is called;
  • An overscan parameter setting module configured to set the cropping parameter as an overscan parameter used for overscan processing
  • the cropping parameter adjustment module is used for adjusting the cropping parameters and returning to call the target image signal display module.
  • the reference image signal is an image signal generated by intercepting a screenshot image signal according to a crop width and height corresponding to the video signal, and the screenshot image signal is an image generated by screenshot when the video signal is displayed on a reference display signal;
  • the size of the target display is the same as the size of the reference display.
  • the reference image signal display module includes:
  • the signal parameter identification sub-module is used to identify the signal parameter of the video signal
  • the reference image signal search sub-module is used to search for a reference image signal generated based on the signal parameters in a designated memory;
  • the reference image signal adaptation display sub-module is used to adapt the reference image signal to the target display for display.
  • the designated storage is a mobile storage
  • the reference image signal search sub-module includes:
  • a reference image signal reading unit for reading a reference image signal in the mobile memory
  • a signal parameter reading unit for reading the signal parameter recorded when the reference image signal is generated from the name of the reference image signal
  • a reference image signal extraction unit configured to extract the reference image signal if the signal parameter of the video signal is the same as the signal parameter of the reference image signal;
  • the signal parameters include video format and resolution.
  • the cropping parameters include cropping width and height, and cropping starting point;
  • the target image signal display module includes:
  • the target image signal interception sub-module is configured to intercept the target image signal satisfying the width and height of the crop from the video signal based on the starting point of the crop;
  • the target image signal adaptation display sub-module is used to adapt the target image signal to the target display for display.
  • the cropping parameter adjustment module includes:
  • the crop starting point adjustment sub-module is used to adjust the crop starting point in the video signal.
  • the image signal matching module includes:
  • the target pixel reading sub-module is used to read the target pixel at a specified position in the target image signal
  • the reference pixel reading sub-module is used to read the reference pixel at a specified position in the reference image signal
  • the color value judging submodule is used to judge whether the color value of the target pixel at the same position is the same as the color value of the reference pixel; if so, call the matching success determination submodule, if not, call the matching failure determination Submodule
  • the matching success determination sub-module is used to determine that the target image signal matches the reference image signal successfully
  • the matching failure determination sub-module is used to determine that the target image signal fails to match the reference image signal.
  • the present application also provides a display device, the display device including:
  • One or more processors are One or more processors;
  • Memory used to store one or more programs
  • Target display used to display video signals and/or image signals
  • the one or more processors When the one or more programs are executed by the one or more processors, the one or more processors implement the method for adjusting the overscan parameters provided in the first aspect of the present application.
  • the present application also provides a computer-readable storage medium on which a computer program is stored.
  • the program is executed by a processor, the method for adjusting the overscan parameter provided in the first aspect of the present application is implemented.
  • the reference image signal corresponding to the video signal is searched, and the reference image signal is displayed on the target display, the target image signal is intercepted from the video signal according to the set cropping parameters, and the target image signal is The target image signal is displayed on the monitor, and it is judged whether the target image signal matches the reference image signal. If so, the cropping parameter is set as the overscan parameter used for overscan processing; if not, the cropping parameter is adjusted and restarted.
  • the target image signal is intercepted, and the over-scanning parameter is adjusted by automatically adjusting the contrast between the input video signal and the reference image signal, which improves the efficiency, and the contrast of the image signal can reach the fineness of the pixel point, which is more accurate than artificial naked eye observation , Can greatly reduce the interference of human factors, thereby improving the accuracy of overscan parameters.
  • FIG. 1 is a flowchart of adjustment of overscan parameters provided by Embodiment 1 of the present application;
  • FIG. 2 is a flowchart of adjustment of overscan parameters provided in the second embodiment of the present application.
  • Fig. 3 is an example diagram of a screenshot parameter provided in the second embodiment of the present application.
  • FIG. 4 is an example diagram of reference pixels and target pixels provided in the second embodiment of the present application.
  • FIG. 5 is a schematic structural diagram of a device for adjusting overscan parameters according to Embodiment 3 of the present application.
  • FIG. 6 is a schematic structural diagram of a display device provided by Embodiment 4 of the present application.
  • FIG. 1 is a flow chart of adjusting overscan parameters provided in the first embodiment of the application. This embodiment can be applied to display devices such as LCD TVs before leaving the factory to adjust the overscan parameters. This method can be displayed by Equipment to execute, specifically including the following steps:
  • the embodiments of the present application can be applied to display devices, for example, LCD (Liquid Crystal Display) televisions, LED (Light Emitting Diode, light emitting diode) televisions, 3D televisions, plasma televisions, etc., this application The embodiment does not limit this.
  • LCD Liquid Crystal Display
  • LED Light Emitting Diode, light emitting diode
  • 3D televisions plasma televisions, etc.
  • plasma televisions etc.
  • the display device can be implemented by software and/or hardware.
  • the display device has at least one display.
  • the display is called a target display.
  • the technician can sequentially transmit different video signals to the display device, and adjust the overscan parameters of the display device for different video signals in turn.
  • corresponding reference image signals can be set for different video signals, and the reference image signals meet the goal of overscan.
  • the technician inputs the video signal to the display device and sends an overscan adjustment signal to the display device.
  • the display device searches for a reference image signal corresponding to the current video signal according to the adjustment signal, and displays the reference image signal on the target display.
  • the display device is equipped with the corresponding factory remote control and home remote control.
  • the factory remote control is generally within the range of the factory for technicians to debug the display device.
  • the home remote control is generally set up after leaving the factory. For the user to control the display device.
  • the technician can press a designated button on the factory remote control to send an overscan adjustment signal to the display device.
  • the designated key may be a single key or a combination of two or more keys, which is not limited in the embodiment of the present application.
  • S130 Cut a target image signal from the video signal according to the set cropping parameters, and display the target image signal on the target display.
  • different cropping parameters can be set in sequence, the video signal is cropped according to the cropping parameters, and the target image signal is intercepted therefrom, and the target image signal is displayed on the target display.
  • S160 Adjust the cropping parameters, and return to execute S130.
  • the reference image signal can be used as a reference for overscanning, and the target image signal and the reference image signal can be compared in the displayed area.
  • the cropping parameter can be set as the overscan parameter to perform overscan processing on other video signals of the same type as the video signal.
  • the reference image signal corresponding to the video signal is searched, and the reference image signal is displayed on the target display, the target image signal is intercepted in the video signal according to the set cropping parameters, and Display the target image signal on the target display, determine whether the target image signal matches the reference image signal, if yes, set the cropping parameter as the overscan parameter for overscan processing, if not, adjust the cropping parameter , Re-intercept the target image signal, and complete the adjustment of the overscan parameters by automatically adjusting the contrast between the input video signal and the reference image signal, which improves the efficiency, and the contrast of the image signal can reach the fineness of the pixel, which is better than the artificial naked eye observation To be accurate, it can greatly reduce the interference of human factors, thereby improving the accuracy of overscan parameters.
  • Figure 2 is a flow chart for adjusting the overscan parameters provided in the second embodiment of the application. This embodiment is based on the foregoing embodiment and further adds processing operations on the reference image signal and the target image signal.
  • the method can be executed by a display device and specifically includes the following steps:
  • S201 Receive a video signal.
  • a video layer can be generated, and the video signal can be displayed in the video layer.
  • Video signals with different signal parameters have different requirements for overscan. Therefore, in this embodiment of the present application, the signal parameters of the video signal can be used as different dimensions to distinguish video signals with different signal parameters and set corresponding reference image signals.
  • the signal parameters include video format and resolution.
  • the display device integrates a variety of input channels and can support a variety of video formats.
  • it can support PAL (Phase Alteration Line, Parr system), NTSC (National Television Standards Committee), standard TV broadcast transmission and reception Protocol), SECAM (Sequentiel Couleur A Memoire) and other video formats.
  • PAL Phase Alteration Line, Parr system
  • NTSC National Television Standards Committee
  • SECAM Sequentiel Couleur A Memoire
  • DVB Digital Video Broadcasting
  • ATSC Advanced Television Systems Committee, National Digital Television Standard
  • ISDB Integrated service digital broadcasting
  • DMB Digital Multimedia Broadcasting, Digital Multimedia Broadcasting
  • AV Audio Video
  • YPBPR color difference component interface
  • S-VIDEO Separate Video
  • S Terminal output HDMI (High Definition Multimedia Interface)
  • HDMI High Definition Multimedia Interface
  • USB Universal Serial Bus, Universal Serial Bus
  • the above-mentioned signal parameters are just examples.
  • other signal parameters can be set according to actual conditions, for example, the device information (such as the device type), aspect ratio, etc., that sends the video signal.
  • the embodiment does not limit this.
  • those skilled in the art can also use other signal parameters according to actual needs, which are not limited in the embodiments of the present application.
  • S203 Search for a reference image signal generated based on the signal parameter in a designated memory.
  • corresponding reference image signals can be generated in advance for different signal parameters, stored in a designated memory, and distributed to other display devices to adjust the overscan parameters.
  • a screenshot is taken to generate an image signal.
  • the video signal is generally set with the corresponding crop width and height as the crop standard before leaving the factory.
  • the image signal is cropped according to the corresponding crop width and height of the video signal, and the image signal intercepted from it is set to be generated based on the signal parameters.
  • the reference image signal is generally set with the corresponding crop width and height as the crop standard before leaving the factory.
  • the reference image signal is an image signal generated from the screenshot image signal according to the corresponding crop width and height of the video signal
  • the screenshot image signal is an image signal generated through the screenshot when the video signal is displayed on the reference display.
  • the size of the target display is the same as the size of the reference display.
  • the video signal for generating the reference image signal and the video signal for generating the target image signal are the same frame of video signal.
  • the designated memory is a mobile memory, such as a USB flash drive, and the signal parameter is stored in the file name.
  • the name of the reference image signal generated for the HDMI format and resolution of 480i video signal It can be named hdmi_480i.bmp.
  • the reference image signal can be read in a designated area (such as a root directory, a directory with a designated name, etc.) in the mobile storage.
  • a designated area such as a root directory, a directory with a designated name, etc.
  • the reference image signal is extracted.
  • the signal parameters of the video signal are different from the signal parameters of all reference image signals, it can be prompted that the current video signal does not support automatic adjustment of the overscan parameters.
  • a graphics layer can be generated, the size of the reference image signal is adjusted to fit the target display, and set to a specified transparency (such as 50%), and full-screen display is performed in the graphics layer.
  • the cropping parameters include the width and height of the cropping and the starting point of the cropping.
  • the width and height of the crop is generally set by the manufacturer that generates the video signal, and is mostly 90%-95% of the width and height of the video signal.
  • the starting point 31 of the crop and the width and height 32 of the crop can form a crop area (slashed part), and move the video layer in a certain order (such as from left to right, from top to bottom, etc.)
  • the four corner points 301 of 30 adjust the position of the crop starting point 31 in the video signal, thereby adjusting the position of the crop area in the video signal to intercept the target image signal.
  • S206 Cut a target image signal that meets the width and height of the crop from the video signal based on the starting point of the crop.
  • the target image signal that meets the width and height of the crop can be intercepted from the video signal, so that the target image signal that meets the crop area is intercepted.
  • the size of the intercepted target image signal is adjusted to fit the target display for full-screen display.
  • the target image signal and the reference image signal are generated based on the same video signal, at this time, the content of the target image signal and the reference image signal are the same.
  • the target pixel is read at a specified position in the target image signal.
  • the reference pixel is read at a specified position in the reference image signal.
  • the target pixel point and the reference pixel point have the same position and number.
  • the pixel points 411 located at the upper left, middle left, lower left, upper right, middle right, and lower right can be read as reference pixels.
  • the pixel points 421 located at the upper left, middle left, lower left, upper right, middle right, and lower right can be read as target pixels.
  • S209 Set the cropping parameter as an overscan parameter used for overscan processing.
  • S210 Adjust the starting point of the crop in the video signal, and return to execute S206.
  • the target image signal does not match the reference image signal, you can re-move the position of the video signal (ie video layer) to adjust the position of the starting point of the crop in the video signal, readjust the crop area, and re-capture the target video signal .
  • the display device completes the overscan parameters for the video parameter settings of different signal parameters and stores them in the local memory. After the display device receives the video signal after leaving the factory, it will find the overscan parameters corresponding to the signal parameters of the video signal and follow the The overscan parameter performs overscan processing on the video signal.
  • FIG. 5 is a schematic structural diagram of an overscan parameter adjustment device provided in Embodiment 3 of the application, which specifically includes the following modules:
  • the video signal receiving module 510 is used to receive video signals
  • the reference image signal display module 520 is configured to search for a reference image signal corresponding to the video signal, and display the reference image signal on the target display;
  • the target image signal display module 530 is configured to intercept the target image signal in the video signal according to the set cropping parameters, and display the target image signal on the target display;
  • the image signal matching module 540 is used to determine whether the target image signal matches the reference image signal; if so, the overscan parameter setting module 550 is invoked, and if not, the cropping parameter adjustment module 560 is invoked;
  • An overscan parameter setting module 550 configured to set the cropping parameters as overscan parameters for overscan processing
  • the cropping parameter adjustment module 560 is configured to adjust the cropping parameters and return to calling the target image signal display module 530.
  • the reference image signal is an image signal generated by intercepting a screenshot image signal according to the crop width and height corresponding to the video signal, and the screenshot image signal is when the video signal is displayed on a reference display, Image signal generated by screenshot;
  • the size of the target display is the same as the size of the reference display.
  • the reference image signal display module 520 includes:
  • the signal parameter identification sub-module is used to identify the signal parameter of the video signal
  • the reference image signal search sub-module is used to search for a reference image signal generated based on the signal parameters in a designated memory;
  • the reference image signal adaptation display sub-module is used to adapt the reference image signal to the target display for display.
  • the designated storage is a mobile storage
  • the reference image signal search sub-module includes:
  • a reference image signal reading unit for reading a reference image signal in the mobile memory
  • a signal parameter reading unit for reading the signal parameter recorded when the reference image signal is generated from the name of the reference image signal
  • a reference image signal extraction unit configured to extract the reference image signal if the signal parameter of the video signal is the same as the signal parameter of the reference image signal;
  • the signal parameters include video format and resolution.
  • the cropping parameters include cropping width and height, and cropping starting point;
  • the target image signal display module 530 includes:
  • the target image signal interception sub-module is configured to intercept the target image signal satisfying the width and height of the crop from the video signal based on the starting point of the crop;
  • the target image signal adaptation display sub-module is used to adapt the target image signal to the target display for display.
  • the cropping parameter adjustment module 560 includes:
  • the crop starting point adjustment sub-module is used to adjust the crop starting point in the video signal.
  • the image signal matching module 540 includes:
  • the target pixel reading sub-module is used to read the target pixel at a specified position in the target image signal
  • the reference pixel reading sub-module is used to read the reference pixel at a specified position in the reference image signal
  • the color value judging submodule is used to judge whether the color value of the target pixel at the same position is the same as the color value of the reference pixel; if so, call the matching success determination submodule, if not, call the matching failure determination Submodule
  • the matching success determination sub-module is used to determine that the target image signal matches the reference image signal successfully
  • the matching failure determination sub-module is used to determine that the target image signal fails to match the reference image signal.
  • the device for adjusting the overscan parameter provided by the embodiment of the present application can execute the method for adjusting the overscan parameter provided by any embodiment of the present application, and has functional modules and beneficial effects corresponding to the execution method.
  • the display device includes a processor 60, a memory 61, an input device 62, and an output device 63; the processor 60 in the display device The number can be one or more.
  • One processor 60 is taken as an example in Fig. 6; the processor 60, memory 61, input device 62 and output device 63 in the display device can be connected by a bus or other means. Take bus connection as an example.
  • the memory 61 can be used to store software programs, computer-executable programs, and modules, such as program instructions/modules corresponding to the method for adjusting overscan parameters in the embodiments of the present application (for example, video signal receiving module). 510, a reference image signal display module 520, a target image signal display module 530, an image signal matching module 540, an overscan parameter setting module 550, and a cropping parameter adjustment module 560).
  • the processor 60 executes various functional applications and data processing of the display device by running the software programs, instructions, and modules stored in the memory 61, that is, realizes the above-mentioned adjustment method of overscan parameters.
  • the memory 61 may mainly include a program storage area and a data storage area.
  • the program storage area may store an operating system and an application program required by at least one function; the data storage area may store data created according to the use of the terminal, etc.
  • the memory 61 may include a high-speed random access memory, and may also include a non-volatile memory, such as at least one magnetic disk storage device, a flash memory device, or other non-volatile solid-state storage devices.
  • the memory 61 may further include a memory remotely provided with respect to the processor 60, and these remote memories may be connected to the display device through a network. Examples of the aforementioned networks include but are not limited to the Internet, corporate intranets, local area networks, mobile communication networks, and combinations thereof.
  • the input device 62 can be used to receive inputted numeric or character information and generate key signal input related to user settings and function control of the display device.
  • the output device 63 may include a target display 631 such as a liquid crystal display, and audio equipment such as a speaker.
  • the target display 631 includes a capacitive screen, an electromagnetic screen or an infrared screen, and may be used to display video signals and/or image signals.
  • the fifth embodiment of the present application also provides a storage medium containing computer-executable instructions, which are used to perform an overscan parameter adjustment method when the computer-executable instructions are executed by a computer processor, and the method includes:
  • a storage medium containing computer-executable instructions provided by the embodiments of the present application and the computer-executable instructions are not limited to the method operations described above, and can also perform the adjustment of the overscan parameters provided by any embodiment of the present application Related operations in the method.
  • the computer software product can be stored in a computer-readable storage medium, such as a computer floppy disk, Read-Only Memory (ROM), Random Access Memory (RAM), Flash memory (FLASH), hard disk or optical disk, etc., including several instructions to make a computer device (which can be a personal computer, A server, or a network device, etc.) execute the method described in each embodiment of the present application.
  • a computer-readable storage medium such as a computer floppy disk, Read-Only Memory (ROM), Random Access Memory (RAM), Flash memory (FLASH), hard disk or optical disk, etc., including several instructions to make a computer device (which can be a personal computer, A server, or a network device, etc.) execute the method described in each embodiment of the present application.
  • the various units and modules included are only divided according to functional logic, but are not limited to the above-mentioned division, as long as the corresponding function can be realized;
  • the specific names of the functional units are only used to facilitate distinguishing from each other, and are not used to limit the protection scope of this application.

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Abstract

本申请公开了一种过扫描参数的调节方法、装置、显示设备和存储介质。该方法包括:接收视频信号;查找所述视频信号对应的参考图像信号,并在目标显示器中显示所述参考图像信号;按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号;判断所述目标图像信号与所述参考图像信号是否匹配;若是,则将所述裁图参数设置为用于进行过扫描处理的过扫描参数;若否,则调整所述裁图参数,返回执行所述按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号。

Description

过扫描参数的调节方法、装置、显示设备和存储介质
本公开要求在2019年02月20日提交中国专利局、申请号为201910127864.2的中国专利申请的优先权,以上申请的全部内容通过引用结合在本公开中。
技术领域
本申请涉及视频处理的技术,例如涉及一种过扫描参数的调节方法、装置、显示设备和存储介质。
背景技术
过去的电视机多使用CRT(Cathode Ray Tube,阴极射线管)显示器,并且,视频信号多为模拟信号。
CRT显示器在显示视频信号时,电平波动造成视频信号边沿的不整齐,为了避免在屏幕边沿出现视频信号的畸变部分,服务商将视频信号扩大5%-10%,CRT显示器在显示时将视频信号裁剪至90%-95%,忽略发生畸变的部分,从而显示中部线性好的部分,此功能称之为过扫描(overscan)。
虽然目前的电视机多为液晶显示器,并不存在上述缺陷,但是,由于各个地区的视频信号具有差异,如果直接显示这些视频信号,可能会出现漏边、干扰等现象,因此,目前的电视机依旧保留了过扫描(overscan)。
目前,过扫描(overscan)的参数需要技术人员在电视机出厂之前手动进行调节,效率较低,并且,技术人员是通过肉眼去观察,容易造成人为干扰,导致参数的准确性较低。
发明内容
本申请提供一种过扫描参数的调节方法、装置、显示设备和存储介质,以解决手动调节过扫描的参数导致效率较低、准确性较低的问题。
第一方面,本申请提供了一种过扫描参数的调节方法,包括:
接收视频信号;
查找所述视频信号对应的参考图像信号,并在目标显示器中显示所述参考图像信号;
按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号;
判断所述目标图像信号与所述参考图像信号是否匹配;
若是,则将所述裁图参数设置为用于进行过扫描处理的过扫描参数;
若否,则调整所述裁图参数,返回执行所述按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号。
所述参考图像信号为按照所述视频信号对应的裁图宽高从截屏图像信号中截取生成的图像信号,所述截屏图像信号为所述视频信号在参考显示器中显示时、通过截屏生成的图像信号;
其中,所述目标显示器的尺寸与所述参考显示的尺寸相同。
所述查找所述视频信号对应的参考图像信号,并在目标显示器中显示所述参考图像信号,包括:
识别所述视频信号的信号参数;
在指定的存储器中查找基于所述信号参数生成的参考图像信号;
将所述参考图像信号适配目标显示器进行显示。
所述指定的存储器为移动存储器;
所述在指定的存储器中查找基于所述信号参数生成的参考图像信号,包括:
在所述移动存储器中读取参考图像信号;
从所述参考图像信号的名称中读取在生成所述参考图像信号时记录的信号参数;
若所述视频信号的信号参数与所述参考图像信号的信号参数相同,则提取所述参考图像信号;
其中,所述信号参数包括视频格式和分辨率。
所述裁图参数包括裁图宽高、裁图起始点;
所述按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号,包括:
读取所述视频信号对应的裁图宽高;
基于所述裁图起始点在所述视频信号中截取满足所述裁图宽高的目标图像信号;
将所述目标图像信号适配所述目标显示器进行显示。
所述调整所述裁图参数,包括:
在所述视频信号中调整所述裁图起始点。
所述判断所述目标图像信号与所述参考图像信号是否匹配,包括:
在所述目标图像信号中指定的位置读取目标像素点;
在所述参考图像信号中指定的位置读取参考像素点;
判断位置相同的所述目标像素点的颜色值与所述参考像素点的颜色值是否相同;
若是,则确定所述目标图像信号与所述参考图像信号匹配成功;
若否,则确定所述目标图像信号与所述参考图像信号匹配失败。
第二方面,本申请还提供了一种过扫描参数的调节装置,包括:
视频信号接收模块,用于接收视频信号;
参考图像信号显示模块,用于查找所述视频信号对应的参考图像信号,并在目标显示器中显示所述参考图像信号;
目标图像信号显示模块,用于按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号;
图像信号匹配模块,用于判断所述目标图像信号与所述参考图像信号是否匹配;若是,则调用过扫描参数设置模块,若否,则调用裁图参数调整模块;
过扫描参数设置模块,用于将所述裁图参数设置为用于进行过扫描处理的过扫描参数;
裁图参数调整模块,用于调整所述裁图参数,返回调用所述目标图像信号显示模块。
所述参考图像信号为按照所述视频信号对应的裁图宽高从截屏图像信号中截取生成的图像信号,所述截屏图像信号为所述视频信号在参考显示器中显示时、通过截屏生成的图像信号;
其中,所述目标显示器的尺寸与所述参考显示的尺寸相同。
所述参考图像信号显示模块包括:
信号参数识别子模块,用于识别所述视频信号的信号参数;
参考图像信号查找子模块,用于在指定的存储器中查找基于所述信号参数生成的参考图像信号;
参考图像信号适配显示子模块,用于将所述参考图像信号适配目标显示器进行显示。
所述指定的存储器为移动存储器;
所述参考图像信号查找子模块包括:
参考图像信号读取单元,用于在所述移动存储器中读取参考图像信号;
信号参数读取单元,用于从所述参考图像信号的名称中读取在生成所述参考图像信号时记录的信号参数;
参考图像信号提取单元,用于若所述视频信号的信号参数与所述参考图像信号的信号参数相同,则提取所述参考图像信号;
其中,所述信号参数包括视频格式和分辨率。
所述裁图参数包括裁图宽高、裁图起始点;
所述目标图像信号显示模块包括:
裁图宽高读取子模块,用于读取所述视频信号对应的裁图宽高;
目标图像信号截取子模块,用于基于所述裁图起始点在所述视频信号中截取满足所述裁图宽高的目标图像信号;
目标图像信号适配显示子模块,用于将所述目标图像信号适配所述目标显示器进行显示。
所述裁图参数调整模块包括:
裁图起始点调整子模块,用于在所述视频信号中调整所述裁图起始点。
所述图像信号匹配模块包括:
目标像素点读取子模块,用于在所述目标图像信号中指定的位置读取目标像素点;
参考像素点读取子模块,用于在所述参考图像信号中指定的位置读取参考像素点;
颜色值判断子模块,用于判断位置相同的所述目标像素点的颜色值与所述参考像素点的颜色值是否相同;若是,则调用匹配成功确定子模块,若否,则调用匹配失败确定子模块;
匹配成功确定子模块,用于确定所述目标图像信号与所述参考图像信号匹配成功;
匹配失败确定子模块,用于确定所述目标图像信号与所述参考图像信号匹配失败。
第三方面,本申请还提供了一种显示设备,所述显示设备包括:
一个或多个处理器;
存储器,用于存储一个或多个程序;
目标显示器,用于显示视频信号和/或图像信号;
当所述一个或多个程序被所述一个或多个处理器执行,使得所述一个或多个处理器实现本申请第一方面提供的过扫描参数的调节方法。
第四方面,本申请还提供了一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现本申请第一方面提供的过扫描参数的调节方法。
在本申请中,若接收到视频信号,则查找视频信号对应的参考图像信号,并在目标显示器中显示参考图像信号,按照设定的裁图参数在视频信号中截取目标图像信号,并在目标显示器中显示所述目标图像信号,判断目标图像信号与参考图像信号是否匹配,若是,则将裁图参数设置为用于进行过扫描处理的过扫描参数,若否,则调整裁图参数,重新截取目标图像信号,通过自动调整输入的视频信号跟参考图像信号的对比来完成过扫描参数的调整,提高了效率, 并且,图像信号的对比可达像素点的精细度,比人工肉眼观察要准确,可以大大减少人为因素的干扰,从而提高过扫描参数的准确性。
附图说明
图1是本申请实施例一提供的一种过扫描参数的调节的流程图;
图2是本申请实施例二提供的一种过扫描参数的调节的流程图;
图3是本申请实施例二提供的一种截图参数的示例图;
图4是本申请实施例二提供的一种参考像素点和目标像素点的示例图;
图5是本申请实施例三提供的一种过扫描参数的调节装置的结构示意图;
图6是本申请实施例四提供的一种显示设备的结构示意图。
具体实施方式
下面结合附图和实施例对本申请作进一步的详细说明。可以理解的是,此处所描述的具体实施例仅仅用于解释本申请,而非对本申请的限定。另外还需要说明的是,为了便于描述,附图中仅示出了与本申请相关的部分而非全部结构。
实施例一
图1为本申请实施例一提供的一种过扫描参数的调节的流程图,本实施例可适用于诸如液晶电视等显示设备在出厂之前调节过扫描(overscan)的参数,该方法可以由显示设备来执行,具体包括如下步骤:
S110、接收视频信号。
在具体实现中,本申请实施例可以应用在显示设备中,例如,LCD(Liquid Crystal Display,液晶显示器)电视、LED(Light Emitting Diode,发光二极管)电视、3D电视、等离子电视等等,本申请实施例对此不加以限制。
该显示设备可以通过软件和/或硬件的方式实现,该显示设备具有至少一个显示器,在本实施例中,该显示器称之为目标显示器。
显示设备在出厂之前,技术人员可以将用于不同的视频信号依次传输至显示设备,并依次针对不同的视频信号调节显示设备的过扫描参数。
S120、查找所述视频信号对应的参考图像信号,并在目标显示器中显示所 述参考图像信号。
应用本申请实施例,可以针对不同的视频信号设置相应的参考图像信号,该参考图像信号符合过扫描(overscan)的目标。
技术人员将视频信号输入至显示设备,并向显示设备发送过扫描调整信号,显示设备依据该调整信号查找当前视频信号相应的参考图像信号,并在目标显示器中显示该参考图像信号。
在一种实施方式中,显示设备配置了相应的工厂遥控器与家庭遥控器,工厂遥控器一般在工厂的范围内,供技术人员调试显示设备之用,而家庭遥控弄起一般在出厂之后,供用户控制显示设备之用。
在此实施方式中,技术人员可以在工厂遥控器中按下指定的按键,向显示设备发送过扫描调整信号。
其中,该指定的按键可以为单个按键,也可以为两个或两个以上按键的组合,本申请实施例对此不加以限制。
S130、按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号。
在本申请实施例中,可以依次设定不同的裁图参数,按照该裁图参数对视频信号进行裁剪,并从中截取目标图像信号,在目标显示器中显示该目标图像信号。
S140、判断所述目标图像信号与所述参考图像信号是否匹配;若是,则执行S150,若否,则执行S160。
S150、将所述裁图参数设置为用于进行过扫描处理的过扫描参数。
S160、调整所述裁图参数,返回执行S130。
在本申请实施例中,同时显示目标图像信号与参考图像信号,则可以以参考图像信号作为过扫描的参考,在显示的区域内对目标图像信号与参考图像信号进行对比。
如果两者匹配,即此次的裁剪符合过扫描(overscan)的目标,则可以将裁图参数设置为过扫描参数,用于对与该视频信号相同类型的其他视频信号进行过扫描处理。
如果两者不匹配,即此次的裁剪不符合过扫描(overscan)的目标,则可以重新调整裁图参数,以此在视频信号中截取新的目标图像信号,并与参考图像信号进行匹配,直至目标图像信号与参考图像信号匹配成功。
在本申请实施例中,若接收到视频信号,则查找视频信号对应的参考图像信号,并在目标显示器中显示参考图像信号,按照设定的裁图参数在视频信号中截取目标图像信号,并在目标显示器中显示所述目标图像信号,判断目标图像信号与参考图像信号是否匹配,若是,则将裁图参数设置为用于进行过扫描处理的过扫描参数,若否,则调整裁图参数,重新截取目标图像信号,通过自动调整输入的视频信号跟参考图像信号的对比来完成过扫描参数的调整,提高了效率,并且,图像信号的对比可达像素点的精细度,比人工肉眼观察要准确,可以大大减少人为因素的干扰,从而提高过扫描参数的准确性。
实施例二
图2为本申请实施例二提供的一种过扫描参数的调节的流程图,本实施例本实施例以前述实施例为基础,进一步增加了对参考图像信号、目标图像信号的处理操作,该方法可以由显示设备来执行,具体包括如下步骤:
S201,接收视频信号。
对于接收到的视频信号,可生成一视频层,并将该视频信号显示至该视频层中。
S202,识别所述视频信号的信号参数。
不同信号参数的视频信号对于过扫描具有不同的要求,因此,在本申请实施例中,可以以视频信号的信号参数作为不同的维度,区分不同信号参数的视频信号设置相应的参考图像信号。
在一个示例中,信号参数包括视频格式和分辨率。
其中,显示设备集成了多种输入通道,可支持多种视频格式,对于模拟制式而言,可支持PAL(Phase Alteration Line,帕尔制)、NTSC(National Television Standards Committee,标准电视广播传输和接收协议)、SECAM(Sequentiel Couleur A Memoire,塞康制)等视频格式,对于数字制式,可支持DVB(Digital Video Broadcasting,数字视频广播)、ATSC(Advanced  Television Systems Committee,数字电视国家标准)、ISDB(综合业务数字广播)、DMB(Digital Multimedia Broadcasting,数字多媒体广播)等视频格式,对于其他制式,可支持AV(Audio Video,音频视频)、YPBPR(色差分量接口)、S-VIDEO(Separate Video,S端子输出)、HDMI(High Definition Multimedia Interface,高清晰度多媒体接口)、USB(Universal Serial Bus,通用串行总线)等视频格式。
当然,上述信号参数只是作为示例,在实施本申请实施例时,可以根据实际情况设置其他信号参数,例如,发送该视频信号的设备信息(如设备类型)、宽高比,等等,本申请实施例对此不加以限制。另外,除了上述信号参数外,本领域技术人员还可以根据实际需要采用其它信号参数,本申请实施例对此也不加以限制。
S203,在指定的存储器中查找基于所述信号参数生成的参考图像信号。
应用本申请实施例,可以预先针对不同的信号参数生成相应的参考图像信号,并存储在指定的存储器中,分发至其他显示设备调整过扫描参数。
在一种实施方式中,在参考显示器中显示某种信号参数的视频信号时,截屏生成图像信号。
而视频信号在出厂之前一般设置有相应的裁图宽高作为裁图标准,按照该视频信号对应的裁图宽高对该图像信号进行裁剪,将从中截取的图像信号设置为基于该信号参数生成的参考图像信号。
在此实施方式中,参考图像信号为按照视频信号对应的裁图宽高从截屏图像信号中截取生成的图像信号,而截屏图像信号为视频信号在参考显示器中显示时、通过截屏生成的图像信号。
其中,目标显示器的尺寸与参考显示的尺寸相同。
需要说明的是,为了方便对参考图像信号与目标图像信号进行匹配,生成参考图像信号的视频信号与生成目标图像信号的视频信号为同一帧视频信号。
在具体实现中,存储器具有多种类型,例如,显示设备本地的存储器、移动存储器、服务器,等等,同时,信号参数的存储方式也具有多种方式,例如,写入文件名、生成索引文件、写入文件夹名称,等等,因此,针对不同的存储 器、不同的信号参数的存储方式,可以选择相应的访问方式从在存储器中查找基于信号参数生成的参考图像信号。
在一个示例中,指定的存储器为移动存储器,如U盘等,信号参数的存储方式为写入文件名中,例如,针对HDMI格式、分辨率为480i的视频信号生成的参考图像信号,其名称可命名为hdmi_480i.bmp。
则在本示例中,可以在移动存储器中指定的区域(如根目录、指定名称的目录等)读取参考图像信号。
从参考图像信号的名称中读取在生成参考图像信号时记录的信号参数,并将视频信号的信号参数与参考图像信号的信号参数进行对比。
若视频信号的信号参数与参考图像信号的信号参数相同,则提取参考图像信号。
若视频信号的信号参数与所有的参考图像信号的信号参数不相同,则可以提示当前的视频信号不支持自动调节过扫描参数。
S204,将所述参考图像信号适配目标显示器进行显示。
对于参考图像信号,可生成一图形层,将参考图像信号的尺寸调整至适配目标显示器,并设置为指定的透明度(如50%),在该图形层中进行全屏显示。
S205,读取所述视频信号对应的裁图宽高。
在本申请实施例中,裁图参数包括裁图宽高、裁图起始点。
其中,裁图宽高一般由生成该视频信号的厂家设置,多为视频信号的宽高的90%-95%。
如图3所示,裁图起始点31与裁图宽高32可形成一个裁图区域(斜线部分),按照一定的顺序(如从左往右、从上往下等)逐次移动视频层30的四个角点301,调整裁图起始点31在视频信号中的位置,从而调整裁图区域在视频信号中截取目标图像信号的位置。
S206,基于所述裁图起始点在所述视频信号中截取满足所述裁图宽高的目标图像信号。
S207,将所述目标图像信号适配所述目标显示器进行显示。
每次调整完成裁图起始点,则可以在视频信号中截取满足该裁图宽高的目标图像信号,从而才截取满足该裁图区域的目标图像信号。
将截取出来的目标图像信号的尺寸调整至适配目标显示器,以进行全屏显示。
S208,判断所述目标图像信号与所述参考图像信号是否匹配;若是,则执行S209,若否,则执行S210。
在具体实现中,若目标图像信号与参考图像信号基于相同的视频信号生成,此时,目标图像信号与参考图像信号的内容部分相同。
一方面,在目标图像信号中指定的位置读取目标像素点。
另一方面,在参考图像信号中指定的位置读取参考像素点。
其中,目标像素点与参考像素点的位置相同、数量相等。
需要说明的是,为了降低目标像素点的颜色值与参考像素点的颜色值之间相同的偶然性,可选择多个位置的目标像素点和参考像素点。
例如,如图4所示,在参考图像信号41中,可读取位于左上、左中、左下、右上、右中、右下的像素点411作为参考像素点,相对应地,在目标图像信号42中,可读取位于左上、左中、左下、右上、右中、右下的像素点421作为目标像素点。
判断位置相同的目标像素点的颜色值与参考像素点的颜色值是否相同。
若是(即全部位置相同),则确定目标图像信号与参考图像信号匹配成功。
若否(即至少一个位置不同),则确定目标图像信号与参考图像信号匹配失败。
S209,将所述裁图参数设置为用于进行过扫描处理的过扫描参数。
S210,在所述视频信号中调整所述裁图起始点,返回执行S206。
如果目标图像信号与参考图像信号不匹配,则可以重新移动视频信号(即视频层)的位置,从而调整裁图起始点在该视频信号中的位置,重新调整裁图区域,重新截取目标视频信号。
显示设备针对不同信号参数的视频参数设置完成过扫描参数,并存储在本 地的存储器,显示设备在出厂之后,接收到视频信号,则查找该视频信号的信号参数对应的过扫描参数,并按照该过扫描参数对该视频信号进行过扫描处理。
实施例三
图5为本申请实施例三提供的一种过扫描参数的调节装置的结构示意图,具体包括如下模块:
视频信号接收模块510,用于接收视频信号;
参考图像信号显示模块520,用于查找所述视频信号对应的参考图像信号,并在目标显示器中显示所述参考图像信号;
目标图像信号显示模块530,用于按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号;
图像信号匹配模块540,用于判断所述目标图像信号与所述参考图像信号是否匹配;若是,则调用过扫描参数设置模块550,若否,则调用裁图参数调整模块560;
过扫描参数设置模块550,用于将所述裁图参数设置为用于进行过扫描处理的过扫描参数;
裁图参数调整模块560,用于调整所述裁图参数,返回调用所述目标图像信号显示模块530。
在具体实现中,所述参考图像信号为按照所述视频信号对应的裁图宽高从截屏图像信号中截取生成的图像信号,所述截屏图像信号为所述视频信号在参考显示器中显示时、通过截屏生成的图像信号;
其中,所述目标显示器的尺寸与所述参考显示的尺寸相同。
在本申请的一个实施例中,所述参考图像信号显示模块520包括:
信号参数识别子模块,用于识别所述视频信号的信号参数;
参考图像信号查找子模块,用于在指定的存储器中查找基于所述信号参数生成的参考图像信号;
参考图像信号适配显示子模块,用于将所述参考图像信号适配目标显示器进行显示。
在本申请实施例的一个示例中,所述指定的存储器为移动存储器;
所述参考图像信号查找子模块包括:
参考图像信号读取单元,用于在所述移动存储器中读取参考图像信号;
信号参数读取单元,用于从所述参考图像信号的名称中读取在生成所述参考图像信号时记录的信号参数;
参考图像信号提取单元,用于若所述视频信号的信号参数与所述参考图像信号的信号参数相同,则提取所述参考图像信号;
其中,所述信号参数包括视频格式和分辨率。
在本申请的一个实施例中,所述裁图参数包括裁图宽高、裁图起始点;
所述目标图像信号显示模块530包括:
裁图宽高读取子模块,用于读取所述视频信号对应的裁图宽高;
目标图像信号截取子模块,用于基于所述裁图起始点在所述视频信号中截取满足所述裁图宽高的目标图像信号;
目标图像信号适配显示子模块,用于将所述目标图像信号适配所述目标显示器进行显示。
在本申请的一个实施例中,所述裁图参数调整模块560包括:
裁图起始点调整子模块,用于在所述视频信号中调整所述裁图起始点。
在本申请的一个实施例中,所述图像信号匹配模块540包括:
目标像素点读取子模块,用于在所述目标图像信号中指定的位置读取目标像素点;
参考像素点读取子模块,用于在所述参考图像信号中指定的位置读取参考像素点;
颜色值判断子模块,用于判断位置相同的所述目标像素点的颜色值与所述参考像素点的颜色值是否相同;若是,则调用匹配成功确定子模块,若否,则调用匹配失败确定子模块;
匹配成功确定子模块,用于确定所述目标图像信号与所述参考图像信号匹配成功;
匹配失败确定子模块,用于确定所述目标图像信号与所述参考图像信号匹配失败。
本申请实施例所提供的过扫描参数的调节装置可执行本申请任意实施例所提供的过扫描参数的调节方法,具备执行方法相应的功能模块和有益效果。
实施例四
图6为本申请实施例四提供的一种显示设备的结构示意图,如图6所示,该显示设备包括处理器60、存储器61、输入装置62和输出装置63;显示设备中处理器60的数量可以是一个或多个,图6中以一个处理器60为例;显示设备中的处理器60、存储器61、输入装置62和输出装置63可以通过总线或其他方式连接,图6中以通过总线连接为例。
存储器61作为一种计算机可读存储介质,可用于存储软件程序、计算机可执行程序以及模块,如本申请实施例中的过扫描参数的调节方法对应的程序指令/模块(例如,视频信号接收模块510、参考图像信号显示模块520、目标图像信号显示模块530、图像信号匹配模块540、过扫描参数设置模块550和裁图参数调整模块560)。处理器60通过运行存储在存储器61中的软件程序、指令以及模块,从而执行显示设备的各种功能应用以及数据处理,即实现上述的过扫描参数的调节方法。
存储器61可主要包括存储程序区和存储数据区,其中,存储程序区可存储操作系统、至少一个功能所需的应用程序;存储数据区可存储根据终端的使用所创建的数据等。此外,存储器61可以包括高速随机存取存储器,还可以包括非易失性存储器,例如至少一个磁盘存储器件、闪存器件、或其他非易失性固态存储器件。在一些实例中,存储器61可进一步包括相对于处理器60远程设置的存储器,这些远程存储器可以通过网络连接至显示设备。上述网络的实例包括但不限于互联网、企业内部网、局域网、移动通信网及其组合。
输入装置62可用于接收输入的数字或字符信息,以及产生与显示设备的用户设置以及功能控制有关的键信号输入。
输出装置63可包括液晶显示屏等目标显示器631、扬声器等音频设备,该目标显示器631包括电容屏、电磁屏或者红外屏,可用于显示视频信号和/或图像信号。
实施例五
本申请实施例五还提供一种包含计算机可执行指令的存储介质,所述计算机可执行指令在由计算机处理器执行时用于执行一种过扫描参数的调节方法,该方法包括:
接收视频信号;
查找所述视频信号对应的参考图像信号,并在目标显示器中显示所述参考图像信号;
按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号;
判断所述目标图像信号与所述参考图像信号是否匹配;
若是,则将所述裁图参数设置为用于进行过扫描处理的过扫描参数;
若否,则调整所述裁图参数,返回执行所述按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号。
当然,本申请实施例所提供的一种包含计算机可执行指令的存储介质,其计算机可执行指令不限于如上所述的方法操作,还可以执行本申请任意实施例所提供的过扫描参数的调节方法中的相关操作。
通过以上关于实施方式的描述,所属领域的技术人员可以清楚地了解到,本申请可借助软件及必需的通用硬件来实现,当然也可以通过硬件实现,但很多情况下前者是更佳的实施方式。基于这样的理解,本申请的技术方案本质上或者说对相关技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品可以存储在计算机可读存储介质中,如计算机的软盘、只读存储器(Read-Only Memory,ROM)、随机存取存储器(Random Access Memory,RAM)、闪存(FLASH)、硬盘或光盘等,包括若干指令用以使得一台计算机设备(可以是个人计算机,服务器,或者网络设备等)执行本申请各个实施例所述的方法。
值得注意的是,上述过扫描参数的调节装置的实施例中,所包括的各个单元和模块只是按照功能逻辑进行划分的,但并不局限于上述的划分,只要能够实现相应的功能即可;另外,各功能单元的具体名称也只是为了便于相互区分,并不用于限制本申请的保护范围。

Claims (13)

  1. 一种过扫描参数的调节方法,包括:
    接收视频信号;
    查找所述视频信号对应的参考图像信号,并在目标显示器中显示所述参考图像信号;
    按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号;
    判断所述目标图像信号与所述参考图像信号是否匹配;
    若是,则将所述裁图参数设置为用于进行过扫描处理的过扫描参数;
    若否,则调整所述裁图参数,返回执行所述按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号。
  2. 根据权利要求1所述的方法,其中,所述参考图像信号为按照所述视频信号对应的裁图宽高从截屏图像信号中截取生成的图像信号,所述截屏图像信号为所述视频信号在参考显示器中显示时、通过截屏生成的图像信号;
    其中,所述目标显示器的尺寸与所述参考显示的尺寸相同。
  3. 根据权利要求1或2所述的方法,其中,所述查找所述视频信号对应的参考图像信号,并在目标显示器中显示所述参考图像信号,包括:
    识别所述视频信号的信号参数;
    在指定的存储器中查找基于所述信号参数生成的参考图像信号;
    将所述参考图像信号适配目标显示器进行显示。
  4. 根据权利要求3所述的方法,其中,所述指定的存储器为移动存储器;
    所述在指定的存储器中查找基于所述信号参数生成的参考图像信号,包括:
    在所述移动存储器中读取参考图像信号;
    从所述参考图像信号的名称中读取在生成所述参考图像信号时记录的信号参数;
    若所述视频信号的信号参数与所述参考图像信号的信号参数相同,则提取所述参考图像信号;
    其中,所述信号参数包括视频格式和分辨率。
  5. 根据权利要求1或2或4所述的方法,其中,所述裁图参数包括裁图宽高、裁图起始点;
    所述按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号,包括:
    读取所述视频信号对应的裁图宽高;
    基于所述裁图起始点在所述视频信号中截取满足所述裁图宽高的目标图像信号;
    将所述目标图像信号适配所述目标显示器进行显示。
  6. 根据权利要求5所述的方法,其中,所述调整所述裁图参数,包括:
    在所述视频信号中调整所述裁图起始点。
  7. 根据权利要求1或2或4所述的方法,其中,所述判断所述目标图像信号与所述参考图像信号是否匹配,包括:
    在所述目标图像信号中指定的位置读取目标像素点;
    在所述参考图像信号中指定的位置读取参考像素点;
    判断位置相同的所述目标像素点的颜色值与所述参考像素点的颜色值是否相同;
    若是,则确定所述目标图像信号与所述参考图像信号匹配成功;
    若否,则确定所述目标图像信号与所述参考图像信号匹配失败。
  8. 一种过扫描参数的调节装置,包括:
    视频信号接收模块,用于接收视频信号;
    参考图像信号显示模块,用于查找所述视频信号对应的参考图像信号,并在目标显示器中显示所述参考图像信号;
    目标图像信号显示模块,用于按照设定的裁图参数在所述视频信号中截取目标图像信号,并在所述目标显示器中显示所述目标图像信号;
    图像信号匹配模块,用于判断所述目标图像信号与所述参考图像信号是否匹配;若是,则调用过扫描参数设置模块,若否,则调用裁图参数调整模块;
    过扫描参数设置模块,用于将所述裁图参数设置为用于进行过扫描处理的过扫描参数;
    裁图参数调整模块,用于调整所述裁图参数,返回调用所述目标图像信号显示模块。
  9. 根据权利要求8所述的装置,其中,所述参考图像信号显示模块包括:
    信号参数识别子模块,用于识别所述视频信号的信号参数;
    参考图像信号查找子模块,用于在指定的存储器中查找基于所述信号参数生成的参考图像信号;
    参考图像信号适配显示子模块,用于将所述参考图像信号适配目标显示器进行显示。
  10. 根据权利要求8所述的装置,其中,所述裁图参数包括裁图宽高、裁图起始点;
    所述目标图像信号显示模块包括:
    裁图宽高读取子模块,用于读取所述视频信号对应的裁图宽高;
    目标图像信号截取子模块,用于基于所述裁图起始点在所述视频信号中截取满足所述裁图宽高的目标图像信号;
    目标图像信号适配显示子模块,用于将所述目标图像信号适配所述目标显示器进行显示。
  11. 根据权利要求8或9或10所述的装置,其中,所述图像信号匹配模块包括:
    目标像素点读取子模块,用于在所述目标图像信号中指定的位置读取目标像素点;
    参考像素点读取子模块,用于在所述参考图像信号中指定的位置读取参考像素点;
    颜色值判断子模块,用于判断位置相同的所述目标像素点的颜色值与所述参考像素点的颜色值是否相同;若是,则调用匹配成功确定子模块,若否,则调用匹配失败确定子模块;
    匹配成功确定子模块,用于确定所述目标图像信号与所述参考图像信号匹配成功;
    匹配失败确定子模块,用于确定所述目标图像信号与所述参考图像信号匹配失败。
  12. 一种显示设备,包括:
    一个或多个处理器;
    存储器,用于存储一个或多个程序;
    目标显示器,用于显示视频信号和/或图像信号;
    当所述一个或多个程序被所述一个或多个处理器执行,使得所述一个或多个处理器实现如权利要求1-7中任一所述的过扫描参数的调节方法。
  13. 一种计算机可读存储介质,其上存储有计算机程序,其中,该程序被处理器执行时实现如权利要求1-7中任一所述的过扫描参数的调节方法。
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