CN112073774A - Image quality processing method and display device - Google Patents

Image quality processing method and display device Download PDF

Info

Publication number
CN112073774A
CN112073774A CN201910801248.0A CN201910801248A CN112073774A CN 112073774 A CN112073774 A CN 112073774A CN 201910801248 A CN201910801248 A CN 201910801248A CN 112073774 A CN112073774 A CN 112073774A
Authority
CN
China
Prior art keywords
chip
parameter
adjusted
video
video signal
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
CN201910801248.0A
Other languages
Chinese (zh)
Inventor
李慧娟
陈俊宁
初德进
张瑞吉
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Hisense Visual Technology Co Ltd
Original Assignee
Hisense Visual Technology Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Hisense Visual Technology Co Ltd filed Critical Hisense Visual Technology Co Ltd
Publication of CN112073774A publication Critical patent/CN112073774A/en
Pending legal-status Critical Current

Links

Images

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/40Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
    • H04N21/41Structure of client; Structure of client peripherals
    • H04N21/422Input-only peripherals, i.e. input devices connected to specially adapted client devices, e.g. global positioning system [GPS]
    • H04N21/42204User interfaces specially adapted for controlling a client device through a remote control device; Remote control devices therefor
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/40Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
    • H04N21/43Processing of content or additional data, e.g. demultiplexing additional data from a digital video stream; Elementary client operations, e.g. monitoring of home network or synchronising decoder's clock; Client middleware
    • H04N21/431Generation of visual interfaces for content selection or interaction; Content or additional data rendering
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/40Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
    • H04N21/43Processing of content or additional data, e.g. demultiplexing additional data from a digital video stream; Elementary client operations, e.g. monitoring of home network or synchronising decoder's clock; Client middleware
    • H04N21/436Interfacing a local distribution network, e.g. communicating with another STB or one or more peripheral devices inside the home
    • H04N21/4363Adapting the video or multiplex stream to a specific local network, e.g. a IEEE 1394 or Bluetooth® network
    • H04N21/43632Adapting the video or multiplex stream to a specific local network, e.g. a IEEE 1394 or Bluetooth® network involving a wired protocol, e.g. IEEE 1394
    • H04N21/43635HDMI
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/40Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
    • H04N21/43Processing of content or additional data, e.g. demultiplexing additional data from a digital video stream; Elementary client operations, e.g. monitoring of home network or synchronising decoder's clock; Client middleware
    • H04N21/436Interfacing a local distribution network, e.g. communicating with another STB or one or more peripheral devices inside the home
    • H04N21/4363Adapting the video or multiplex stream to a specific local network, e.g. a IEEE 1394 or Bluetooth® network
    • H04N21/43637Adapting the video or multiplex stream to a specific local network, e.g. a IEEE 1394 or Bluetooth® network involving a wireless protocol, e.g. Bluetooth, RF or wireless LAN [IEEE 802.11]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/40Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
    • H04N21/47End-user applications
    • H04N21/478Supplemental services, e.g. displaying phone caller identification, shopping application
    • H04N21/4781Games
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/40Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
    • H04N21/47End-user applications
    • H04N21/478Supplemental services, e.g. displaying phone caller identification, shopping application
    • H04N21/4788Supplemental services, e.g. displaying phone caller identification, shopping application communicating with other users, e.g. chatting

Abstract

The embodiment of the application shows an image quality processing method and display equipment, and is particularly suitable for a social television. For a first video signal input through the second interface, the second chip sends a first parameter to be adjusted to the first chip, so that the first chip generates a video signal sent by the first chip to the second chip according to the first parameter to be adjusted, the second chip adjusts the video signal received from the first chip according to the second parameter to be adjusted, and finally the adjusted video signal is sent to the display screen. The method effectively avoids the problems of edge hooking and color distortion of the graphic layer signal in the image quality processing process.

Description

Image quality processing method and display device
This application claims priority to a chinese patent application filed by the national intellectual property office on 10/6/2019 under application number 201910498198.3. The entire contents of which are incorporated by reference in the present application.
Technical Field
The embodiment of the application relates to a display technology. And more particularly, to a picture quality processing method and a display apparatus.
Background
Currently, since a display device can provide a user with a play picture such as audio, video, picture, and the like, it is receiving a wide attention of the user. In recent years, the functional demands of users for display devices have increased. For example, a user wants to watch a high-definition cable television through a display device, and sometimes the user wants to watch a network television through the display device.
The video signal of the network television can be from a network or from a USB, and generally, the video signal of the network television comprises a graphic layer signal and a video layer signal. Before the video layer signal and the graphic layer signal are superposed, the set top box chip does not perform image quality processing on the video signal, but directly mixes and superposes the video signal to form an HDMI video signal, and the display device chip performs image quality processing on the signal input by an HDMI channel.
Therefore, there is a need for an image quality processing method that can ensure that the color of the graphics layer signal does not change while the image quality of the video signal is being processed, and that provides a user with a good experience.
Disclosure of Invention
In view of the above technical problems, an object of the present application is to provide an image quality processing method and a display device.
A first aspect of the present disclosure shows an image quality processing method applied to a display device, where the display device includes a display screen, a second chip connected to the display screen, and a first chip connected to the second chip, and the method includes:
the second chip receives parameters to be adjusted, wherein the parameters to be adjusted comprise a first parameter to be adjusted and a second parameter to be adjusted;
the second chip determines a channel connected with a signal source;
responding to the channel connected by the signal source that the second chip is directly connected with the first interface outside the display equipment, and adjusting the video signal received from the first interface by the second chip according to the adjusting parameter;
responding to that a channel connected with a signal source is a second interface connected with the first chip, and sending a first parameter to be adjusted to the first chip by the second chip so that the first chip generates a video signal sent by the first chip to the second chip according to the first parameter to be adjusted, and adjusting the video signal received from the first chip by the second chip according to a second adjustment parameter;
and the second chip sends the adjusted video signal to the display screen.
A second aspect of the embodiment of the present application shows an image quality processing method applied to a display device, where the display device includes a display screen, a second chip connected to the display screen, and a first chip connected to the second chip, and the method includes:
the second chip receives a first parameter to be adjusted, wherein the first parameter to be adjusted is a parameter for adjusting the video layer image signal;
responding to the video signal sent by the first chip, the second chip sends the first parameter to be adjusted to the first chip, and the first chip adjusts the video layer image signal in the video signal sent to the second chip according to the parameter to be adjusted;
and responding to the video signal directly received by the second chip, and adjusting the video layer image signal in the received video signal according to the parameter to be adjusted by the second chip.
A third aspect of embodiments of the present application shows a display device including: first chip with first chip is connected, second chip and with the display screen that the second chip is connected:
the second chip is used for receiving parameters to be adjusted, and the parameters to be adjusted comprise a first parameter to be adjusted and a second parameter to be adjusted;
the second chip is also used for determining a channel connected with a signal source;
responding to a channel connected by a signal source, wherein the second chip is directly connected with a first interface outside the display equipment, and the second chip is also used for adjusting the video signal received from the first interface according to the adjusting parameter;
responding to that a channel connected with a signal source is a second interface connected with the first chip, wherein the second chip is further used for sending a first parameter to be adjusted to the first chip, so that the first chip generates a video signal sent by the first chip to the second chip according to the first parameter to be adjusted, and the second chip adjusts the video signal received from the first chip according to a second adjustment parameter;
and the second chip is also used for sending the adjusted video signal to the display screen.
A fourth aspect of the embodiments of the present application shows a display device, including: first chip with first chip is connected, second chip and with the display screen that the second chip is connected:
the second chip is used for receiving a first parameter to be adjusted, wherein the first parameter to be adjusted is a parameter used for adjusting the video layer image signal;
responding to the video signal sent by the first chip, the second chip is further used for sending the first parameter to be adjusted to the first chip, so that the first chip adjusts the video layer image signal in the video signal sent to the second chip according to the parameter to be adjusted;
and responding to the video signal received directly by the second chip, wherein the second chip is also used for adjusting the video layer image signal in the received video signal according to the parameter to be adjusted.
According to the technical scheme, on the premise of distinguishing signal input ends, the parameters to be adjusted are distributed through different signal input ends, and for the wired video input through the first interface, the parameters to be adjusted of the wired video signal are directly adjusted on the second chip, so that the image quality processing effect of the wired video signal is achieved. For a first video signal input through the second interface, the second chip sends a first parameter to be adjusted to the first chip, so that the first chip generates a video signal sent by the first chip to the second chip according to the first parameter to be adjusted, the second chip adjusts the video signal received from the first chip according to the second parameter to be adjusted, and finally the adjusted video signal is sent to the display screen. The method effectively avoids the problems of edge hooking and color distortion of the graphic layer signal in the image quality processing process.
Meanwhile, in the technical scheme shown in the embodiment of the application, the adjustment value of the second parameter to be adjusted is kept on the second chip, on one hand, the change of the second parameter to be adjusted of the graphics layer signal does not affect the display of the graphics layer signal, and therefore, the adjustment of the second parameter to be adjusted of the mixed graphics layer signal and video layer signal on the second chip does not affect the display of the graphics layer signal. On the other hand, the second chip is directly connected with the display screen, the related parameters of the display screen can be transmitted to the second chip in real time, when the related parameters of the display screen change, the second chip can also timely receive the changed related parameters of the display screen, and corresponding adjustment values of the second parameters are timely adjusted according to the changed related parameters of the display screen.
Drawings
In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings needed to be used in the embodiments will be briefly described below, and it is obvious that the drawings in the following description are only some embodiments of the present application, and it is obvious for those skilled in the art to obtain other drawings without creative efforts.
Fig. 1 is a schematic diagram illustrating an operation scenario between a display device and a control apparatus according to an embodiment;
fig. 2 is a block diagram exemplarily showing a hardware configuration of the control apparatus 100 according to the embodiment;
fig. 3 is a block diagram exemplarily showing a hardware configuration of the display device 200 according to the embodiment;
a block diagram of the hardware architecture of the display device 200 according to fig. 3 is exemplarily shown in fig. 4;
fig. 5 is a diagram exemplarily showing a functional configuration of the display device 200 according to the embodiment;
fig. 6a schematically shows a software configuration in the display device 200 according to an embodiment;
fig. 6b schematically shows a configuration of an application in the display device 200 according to an embodiment;
fig. 7 schematically illustrates a user interface in the display device 200 according to an embodiment;
fig. 8 is a flowchart illustrating an image quality processing method;
fig. 9 is a flowchart illustrating an image quality processing method;
fig. 10 is a block diagram illustrating the structure of the display device.
Detailed Description
To make the objects, technical solutions and advantages of the exemplary embodiments of the present application clearer, the technical solutions in the exemplary embodiments of the present application will be clearly and completely described below with reference to the drawings in the exemplary embodiments of the present application, and it is obvious that the described exemplary embodiments are only a part of the embodiments of the present application, but not all the embodiments.
For the convenience of users, various external device interfaces are usually provided on the display device to facilitate connection of different peripheral devices or cables to implement corresponding functions. When a high-definition camera is connected to an interface of the display device, if a hardware system of the display device does not have a hardware interface of a high-pixel camera receiving the source code, data received by the camera cannot be displayed on a display screen of the display device.
Furthermore, due to the hardware structure, the hardware system of the conventional display device only supports one path of hard decoding resources, and usually only supports video decoding with a resolution of 4K at most, so when a user wants to perform video chat while watching a network television, the user needs to use the hard decoding resources (usually GPU in the hardware system) to decode the network video without reducing the definition of the network video screen, and in this case, the user can only process the video chat screen by using a general-purpose processor (e.g. CPU) in the hardware system to perform soft decoding on the video.
The soft decoding is adopted to process the video chat picture, so that the data processing burden of a CPU (central processing unit) can be greatly increased, and when the data processing burden of the CPU is too heavy, the problem of picture blocking or unsmooth flow can occur. Further, due to the data processing capability of the CPU, when the CPU performs soft decoding on the video chat screen, multi-channel video calls cannot be generally implemented, and when a user wants to perform video chat with multiple other users in the same chat scene, access is blocked.
In view of the above aspects, to overcome the above drawbacks, the present application discloses a dual hardware system architecture to implement multiple channels of video chat data (at least one channel of local video).
The concept to which the present application relates will be first explained below with reference to the drawings. It should be noted that the following descriptions of the concepts are only for the purpose of facilitating understanding of the contents of the present application, and do not represent limitations on the scope of the present application.
The term "module," as used in various embodiments of the present application, may refer to any known or later developed hardware, software, firmware, artificial intelligence, fuzzy logic, or combination of hardware and/or software code that is capable of performing the functionality associated with that element.
The term "remote control" as used in the embodiments of the present application refers to a component of an electronic device (such as the display device disclosed in the present application) that is capable of wirelessly controlling the electronic device, typically over a short distance. The component may typically be connected to the electronic device using infrared and/or Radio Frequency (RF) signals and/or bluetooth, and may also include functional modules such as WiFi, wireless USB, bluetooth, motion sensors, etc. For example: the hand-held touch remote controller replaces most of the physical built-in hard keys in the common remote control device with the user interface in the touch screen.
The term "gesture" as used in the embodiments of the present application refers to a user behavior used to express an intended idea, action, purpose, or result through a change in hand shape or an action such as hand movement.
The term "hardware system" used in the embodiments of the present application may refer to a physical component having computing, controlling, storing, inputting and outputting functions, which is formed by a mechanical, optical, electrical and magnetic device such as an Integrated Circuit (IC), a Printed Circuit Board (PCB) and the like. In various embodiments of the present application, a hardware system may also be referred to as a motherboard (or chip).
Fig. 1 is a schematic diagram illustrating an operation scenario between a display device and a control apparatus according to an embodiment. As shown in fig. 1, a user may operate the display apparatus 200 through the control device 100.
The control device 100 may be a remote controller 100A, which can communicate with the display device 200 through an infrared protocol communication, a bluetooth protocol communication, a ZigBee (ZigBee) protocol communication, or other short-range communication, and is used to control the display device 200 in a wireless or other wired manner. The user may input a user instruction through a key on a remote controller, voice input, control panel input, etc., to control the display apparatus 200. Such as: the user can input a corresponding control command through a volume up/down key, a channel control key, up/down/left/right moving keys, a voice input key, a menu key, a power on/off key, etc. on the remote controller, to implement the function of controlling the display device 200.
The control apparatus 100 may also be a smart device, such as a mobile terminal 100B, a tablet computer, a notebook computer, etc., which may communicate with the display device 200 through a Local Area Network (LAN), a Wide Area Network (WAN), a Wireless Local Area Network (WLAN), or other networks, and implement control of the display device 200 through an application program corresponding to the display device 200.
For example, the mobile terminal 100B and the display device 200 may each have a software application installed thereon, so that connection communication between the two can be realized through a network communication protocol, and the purpose of one-to-one control operation and data communication can be further realized. Such as: a control instruction protocol can be established between the mobile terminal 100B and the display device 200, a remote control keyboard is synchronized to the mobile terminal 100B, and the function of controlling the display device 200 is realized by controlling a user interface on the mobile terminal 100B; the audio and video content displayed on the mobile terminal 100B may also be transmitted to the display device 200, so as to implement a synchronous display function.
As shown in fig. 1, the display apparatus 200 may also perform data communication with the server 300 through various communication means. In various embodiments of the present application, the display device 200 may be allowed to be communicatively coupled to the server 300 via a local area network, a wireless local area network, or other network. The server 300 may provide various contents and interactions to the display apparatus 200.
Illustratively, the display device 200 receives software Program updates, or accesses a remotely stored digital media library by sending and receiving information, and Electronic Program Guide (EPG) interactions. The servers 300 may be a group or groups, and may be one or more types of servers. Other web service contents such as a video on demand and an advertisement service are provided through the server 300.
The display device 200 may be, for example, a liquid crystal display, an oled (organic Light Emitting diode) display, or a projection display device; on the other hand, the display device can be a display system consisting of an intelligent television or a display and a set-top box. The specific display device type, size, resolution, etc. are not limiting, and those skilled in the art will appreciate that the display device 200 may be modified in performance and configuration as desired.
The display apparatus 200 may additionally provide an intelligent network tv function that provides a computer support function in addition to the broadcast receiving tv function. Examples include a web tv, a smart tv, an Internet Protocol Tv (IPTV), and the like. In some embodiments, the display device may not have a broadcast receiving television function.
As shown in fig. 1, the display device may be connected or provided with a camera, and is configured to present a picture taken by the camera on a display interface of the display device or other display devices, so as to implement interactive chat between users. Specifically, the picture shot by the camera can be displayed on the display device in a full screen mode, a half screen mode or any optional area.
As an optional connection mode, the camera is connected with the display rear shell through the connecting plate, is fixedly installed in the middle of the upper side of the display rear shell, and can be fixedly installed at any position of the display rear shell as an installable mode, so that an image acquisition area is ensured not to be shielded by the rear shell, for example, the display orientation of the image acquisition area is the same as that of the display equipment.
As another alternative connection mode, the camera is connected to the display rear shell through a connection board or other conceivable connector, the camera is capable of lifting, the connector is provided with a lifting motor, when a user wants to use the camera or an application program wants to use the camera, the camera is lifted out of the display, and when the camera is not needed, the camera can be embedded in the rear shell to protect the camera from being damaged.
As an embodiment, the camera adopted in the present application may have 1600 ten thousand pixels, so as to achieve the purpose of ultra high definition display. In actual use, cameras higher or lower than 1600 ten thousand pixels may also be used.
After the camera is installed on the display device, the contents displayed by different application scenes of the display device can be fused in various different modes, so that the function which cannot be realized by the traditional display device is achieved.
Illustratively, a user may conduct a video chat with at least one other user while watching a video program. The presentation of the video program may be as a background frame over which a window for video chat is displayed. The function is called 'chat while watching'.
Optionally, in a scene of "chat while watching", at least one video chat is performed across terminals while watching a live video or a network video.
In another example, a user can conduct a video chat with at least one other user while entering the educational application for learning. For example, a student may interact remotely with a teacher while learning content in an educational application. Vividly, this function can be called "chatting while learning".
In another example, a user conducts a video chat with a player entering a card game while playing the game. For example, a player may enable remote interaction with other players when entering a gaming application to participate in a game. Figuratively, this function may be referred to as "watch while playing".
Optionally, the game scene is fused with the video picture, the portrait in the video picture is scratched and displayed in the game picture, and the user experience is improved.
Optionally, in the motion sensing game (such as ball hitting, boxing, running and dancing), the human posture and motion, limb detection and tracking and human skeleton key point data detection are obtained through the camera, and then the human posture and motion, the limb detection and tracking and the human skeleton key point data detection are fused with the animation in the game, so that the game of scenes such as sports and dancing is realized.
In another example, a user may interact with at least one other user in a karaoke application in video and voice. Vividly, this function can be called "sing while watching". Preferably, when at least one user enters the application in a chat scenario, a plurality of users can jointly complete recording of a song.
In another example, a user may turn on a camera locally to take pictures and videos, figurative, which may be referred to as "looking into the mirror".
In other examples, more or less functionality may be added. The function of the display device is not particularly limited in the present application.
Fig. 2 is a block diagram schematically showing the configuration of the control apparatus 100 according to the exemplary embodiment. As shown in fig. 2, the control device 100 includes a controller 110, a communicator 130, a user input/output interface 140, a memory 190, and a power supply 180.
The control apparatus 100 is configured to control the display device 200, and to receive an input operation instruction from a user, and convert the operation instruction into an instruction recognizable and responsive by the display device 200, and to mediate interaction between the user and the display device 200. Such as: the user operates the channel up/down key on the control device 100, and the display device 200 responds to the channel up/down operation.
In some embodiments, the control device 100 may be a smart device. Such as: the control apparatus 100 may install various applications that control the display device 200 according to user demands.
In some embodiments, as shown in fig. 1, the mobile terminal 100B or other intelligent electronic device may function similar to the control apparatus 100 after installing an application for manipulating the display device 200. Such as: the user may implement the functions of controlling the physical keys of the apparatus 100 by installing applications, various function keys or virtual buttons of a graphical user interface available on the mobile terminal 100B or other intelligent electronic devices.
The controller 110 includes a processor 112, a RAM113 and a ROM114, a communication interface, and a communication bus. The controller 110 is used to control the operation of the control device 100, as well as the internal components for communication and coordination and external and internal data processing functions.
The communicator 130 enables communication of control signals and data signals with the display apparatus 200 under the control of the controller 110. Such as: the received user input signal is transmitted to the display apparatus 200. The communicator 130 may include at least one of a WIFI module 131, a bluetooth module 132, an NFC module 133, and the like.
A user input/output interface 140, wherein the input interface includes at least one of a microphone 141, a touch pad 142, a sensor 143, a key 144, and the like. Such as: the user can realize a user instruction input function through actions such as voice, touch, gesture, pressing, and the like, and the input interface converts the received analog signal into a digital signal and converts the digital signal into a corresponding instruction signal, and sends the instruction signal to the display device 200.
The output interface includes an interface that transmits the received user instruction to the display apparatus 200. In some embodiments, it may be an infrared interface or a radio frequency interface. Such as: when the infrared signal interface is used, the user input instruction needs to be converted into an infrared control signal according to an infrared control protocol, and the infrared control signal is sent to the display device 200 through the infrared sending module. The following steps are repeated: when the rf signal interface is used, a user input command needs to be converted into a digital signal, and then the digital signal is modulated according to the rf control signal modulation protocol and then transmitted to the display device 200 through the rf transmitting terminal.
In some embodiments, the control device 100 includes at least one of a communicator 130 and an output interface. The communicator 130 is configured in the control device 100, such as: the modules of WIFI, bluetooth, NFC, etc. may send the user input command to the display device 200 through the WIFI protocol, or the bluetooth protocol, or the NFC protocol code.
And a memory 190 for storing various operation programs, data and applications for driving and controlling the control apparatus 100 under the control of the controller 110. The memory 190 may store various control signal commands input by a user.
And a power supply 180 for providing operational power support to the components of the control device 100 under the control of the controller 110. A battery and associated control circuitry.
A hardware configuration block diagram of a hardware system in the display apparatus 200 according to an exemplary embodiment is exemplarily shown in fig. 3.
When a dual hardware system architecture is adopted, the mechanism relationship of the hardware system can be shown in fig. 3. For convenience of description, one hardware system in the dual hardware system architecture will be referred to as a first hardware system or a system, a-chip, and the other hardware system will be referred to as a second hardware system or N-system, N-chip. The chip A comprises a controller of the chip A and various modules connected with the controller of the chip A through various interfaces, and the chip N comprises a controller of the chip N and various modules connected with the controller of the chip N through various interfaces. The chip a and the chip N may each have a relatively independent operating system, and the operating system of the chip a and the operating system of the chip N may communicate with each other through a communication protocol, which is as follows: the frame layer of the operating system of the a-chip and the frame layer of the operating system of the N-chip can communicate to transmit commands and data, so that two independent subsystems, which are associated with each other, exist in the display device 200.
As shown in fig. 3, the a chip and the N chip may be connected, communicated and powered through a plurality of different types of interfaces. The interface type of the interface between the a chip and the N chip may include a General-purpose input/output (GPIO) interface, a USB interface, an HDMI interface, a UART interface, and the like. One or more of these interfaces may be used for communication or power transfer between the a-chip and the N-chip. For example, as shown in fig. 3, in the dual hardware system architecture, the N chip may be powered by an external power source (power), and the a chip may not be powered by the external power source but by the N chip.
In addition to the interface for connecting with the N chip, the a chip may further include an interface for connecting other devices or components, such as an MIPI interface for connecting a Camera (Camera) shown in fig. 3, a bluetooth interface, and the like.
Similarly, in addition to the interface for connecting with the N chip, the N chip may further include an VBY interface for connecting with a display screen tcon (timer Control register), and an i2S interface for connecting with a power Amplifier (AMP) and a Speaker (Speaker); and an IR/Key interface, a USB interface, a Wifi interface, a bluetooth interface, an HDMI interface, a Tuner interface, and the like.
The dual hardware system architecture of the present application is further described below with reference to fig. 4. It should be noted that fig. 4 is only an exemplary illustration of the dual hardware system architecture of the present application, and does not represent a limitation of the present application. In actual practice, both hardware systems may contain more or less hardware or interfaces as desired.
A block diagram of the hardware architecture of the display device 200 according to fig. 3 is exemplarily shown in fig. 4. As shown in fig. 4, the hardware system of the display device 200 may include an a chip and an N chip, and a module connected to the a chip or the N chip through various interfaces.
The N-chip may include a tuner demodulator 220, a communicator 230, an external device interface 250, a controller 210, a memory 290, a user input interface, a video processor 260-1, an audio processor 260-2, a display 280, an audio output interface 270, and a power supply. The N-chip may also include more or fewer modules in other embodiments.
The tuning demodulator 220 is configured to perform modulation and demodulation processing such as amplification, mixing, resonance and the like on a broadcast television signal received in a wired or wireless manner, so as to demodulate an audio/video signal carried in a frequency of a television channel selected by a user and additional information (e.g., an EPG data signal) from a plurality of wireless or wired broadcast television signals. Depending on the broadcast system of the television signal, the signal path of the tuner 220 may be various, such as: terrestrial broadcasting, cable broadcasting, satellite broadcasting, internet broadcasting, or the like; according to different modulation types, the adjustment mode of the signal can be a digital modulation mode or an analog modulation mode; and depending on the type of television signal being received, tuner demodulator 220 may demodulate analog and/or digital signals.
The tuner demodulator 220 is also operative to respond to the user-selected television channel frequency and the television signals carried thereby, in accordance with the user selection, and as controlled by the controller 210.
In other exemplary embodiments, the tuner/demodulator 220 may be in an external device, such as an external set-top box. In this way, the set-top box outputs television audio/video signals after modulation and demodulation, and the television audio/video signals are input into the display device 200 through the external device interface 250.
The communicator 230 is a component for communicating with an external device or an external server according to various communication protocol types. For example: the communicator 230 may include a WIFI module 231, a bluetooth communication protocol module 232, a wired ethernet communication protocol module 233, and other network communication protocol modules such as an infrared communication protocol module or a near field communication protocol module.
The display apparatus 200 may establish a connection of a control signal and a data signal with an external control apparatus or a content providing apparatus through the communicator 230. For example, the communicator may receive a control signal of the remote controller 100 according to the control of the controller.
The external device interface 250 is a component for providing data transmission between the N-chip controller 210 and the a-chip and other external devices. The external device interface may be connected with an external apparatus such as a set-top box, a game device, a notebook computer, etc. in a wired/wireless manner, and may receive data such as a video signal (e.g., moving image), an audio signal (e.g., music), additional information (e.g., EPG), etc. of the external apparatus.
The external device interface 250 may include: a High Definition Multimedia Interface (HDMI) terminal is also referred to as HDMI251, a Composite Video Blanking Sync (CVBS) terminal is also referred to as AV252, an analog or digital component terminal is also referred to as component 253, a Universal Serial Bus (USB) terminal 254, a Red Green Blue (RGB) terminal (not shown in the figure), and the like. The number and type of external device interfaces are not limited by this application.
The controller 210 controls the operation of the display device 200 and responds to the user's operation by running various software control programs (e.g., an operating system and/or various application programs) stored on the memory 290.
As shown in fig. 4, the controller 210 includes a read only memory RAM213, a random access memory ROM214, a graphics processor 216, a CPU processor 212, a communication interface 218, and a communication bus. The RAM213 and the ROM214, the graphic processor 216, the CPU processor 212, and the communication interface 218 are connected via a bus.
A ROM213 for storing instructions for various system boots. If the display device 200 is powered on upon receipt of the power-on signal, the CPU processor 212 executes a system boot instruction in the ROM and copies the operating system stored in the memory 290 to the RAM214 to start running the boot operating system. After the start of the operating system is completed, the CPU processor 212 copies the various application programs in the memory 290 to the RAM214, and then starts running and starting the various application programs.
A graphics processor 216 for generating various graphics objects, such as: icons, operation menus, user input instruction display graphics, and the like. The display device comprises an arithmetic unit which carries out operation by receiving various interactive instructions input by a user and displays various objects according to display attributes. And a renderer for generating various objects based on the operator and displaying the rendered result on the display 280.
A CPU processor 212 for executing operating system and application program instructions stored in memory 290. And executing various application programs, data and contents according to various interactive instructions received from the outside so as to finally display and play various audio and video contents.
In some exemplary embodiments, the CPU processor 212 may include a plurality of processors. The plurality of processors may include a main processor and a plurality of or a sub-processor. A main processor for performing some operations of the display apparatus 200 in a pre-power-up mode and/or operations of displaying a screen in a normal mode. A plurality of or one sub-processor for performing an operation in a standby mode or the like.
The communication interfaces may include a first interface 218-1 through an nth interface 218-n. These interfaces may be network interfaces that are connected to external devices via a network.
The controller 210 may control the overall operation of the display apparatus 200. For example: in response to receiving a user command for selecting a UI object to be displayed on the display 280, the controller 210 may perform an operation related to the object selected by the user command.
Wherein the object may be any one of selectable objects, such as a hyperlink or an icon. Operations related to the selected object, such as: displaying an operation connected to a hyperlink page, document, image, or the like, or performing an operation of a program corresponding to an icon. The user command for selecting the UI object may be a command input through various input means (e.g., a mouse, a keyboard, a touch pad, etc.) connected to the display apparatus 200 or a voice command corresponding to a voice spoken by the user.
The memory 290 includes a memory for storing various software modules for driving and controlling the display apparatus 200. Such as: various software modules stored in memory 290, including: the system comprises a basic module, a detection module, a communication module, a display control module, a browser module, various service modules and the like.
The basic module is a bottom layer software module for signal communication between hardware in the display device 200 and sending processing and control signals to an upper layer module. The detection module is a management module used for collecting various information from various sensors or user input interfaces, and performing digital-to-analog conversion and analysis management.
For example: the voice recognition module comprises a voice analysis module and a voice instruction database module. The display control module is a module for controlling the display 280 to display image content, and may be used to play information such as multimedia image content and UI interface. The communication module is used for carrying out control and data communication with external equipment. And the browser module is used for executing data communication between the browsing servers. The service module is a module for providing various services and various application programs.
Meanwhile, the memory 290 is also used to store visual effect maps and the like for receiving external data and user data, images of respective items in various user interfaces, and a focus object.
A user input interface for transmitting an input signal of a user to the controller 210 or transmitting a signal output from the controller to the user. For example, the control device (e.g., a mobile terminal or a remote controller) may send an input signal, such as a power switch signal, a channel selection signal, a volume adjustment signal, etc., input by a user to the user input interface, and then the input signal is forwarded to the controller by the user input interface; alternatively, the control device may receive an output signal such as audio, video, or data output from the user input interface via the controller, and display the received output signal or output the received output signal in audio or vibration form.
In some embodiments, a user may enter a user command on a Graphical User Interface (GUI) displayed on the display 280, and the user input interface receives the user input command through the Graphical User Interface (GUI). Alternatively, the user may input the user command by inputting a specific sound or gesture, and the user input interface receives the user input command by recognizing the sound or gesture through the sensor.
The video processor 260-1 is configured to receive a video signal, and perform video data processing such as decompression, decoding, scaling, noise reduction, frame rate conversion, resolution conversion, and image synthesis according to a standard codec protocol of the input signal, so as to obtain a video signal that is directly displayed or played on the display 280.
Illustratively, the video processor 260-1 includes a demultiplexing module, a video decoding module, an image synthesizing module, a frame rate conversion module, a display formatting module, and the like.
The demultiplexing module is used for demultiplexing the input audio and video data stream, and if the input MPEG-2 is input, the demultiplexing module demultiplexes the input audio and video data stream into a video signal and an audio signal.
And the video decoding module is used for processing the video signal after demultiplexing, including decoding, scaling and the like.
And the image synthesis module, such as an image synthesizer, is used for performing superposition mixing processing on the GUI signal input by the user or generated by the user and the video picture after the zooming processing by the graphics generator so as to generate an image signal for display.
The frame rate conversion module is configured to convert a frame rate of an input video, such as a 24Hz, 25Hz, 30Hz, or 60Hz video, into a 60Hz, 120Hz, or 240Hz frame rate, where the input frame rate may be related to a source video stream, and the output frame rate may be related to an update rate of a display. The input is realized in a common format by using a frame insertion mode.
And a display formatting module for converting the signal output by the frame rate conversion module into a signal conforming to a display format of a display, such as converting the format of the signal output by the frame rate conversion module to output an RGB data signal.
And a display 280 for receiving the image signal input from the video processor 260-1 and displaying the video content and image and the menu manipulation interface. The display 280 includes a display component for presenting a picture and a driving component for driving the display of an image. The video content may be displayed from the video in the broadcast signal received by the tuner/demodulator 220, or from the video content input from the communicator or the external device interface. The display 280 simultaneously displays a user manipulation interface UI generated in the display apparatus 200 and used to control the display apparatus 200.
And, a driving component for driving the display according to the type of the display 280. Alternatively, in case the display 280 is a projection display, it may also comprise a projection device and a projection screen.
The audio processor 260-2 is configured to receive an audio signal, decompress and decode the audio signal according to a standard codec protocol of the input signal, and perform noise reduction, digital-to-analog conversion, amplification and other audio data processing to obtain an audio signal that can be played in the speaker 272.
An audio output interface 270 for receiving the audio signal output by the audio processor 260-2 under the control of the controller 210, wherein the audio output interface may include a speaker 272 or an external sound output terminal 274 for outputting to a generating device of an external device, such as: external sound terminal or earphone output terminal.
In other exemplary embodiments, video processor 260-1 may comprise one or more chip components. The audio processor 260-2 may also include one or more chips.
And, in other exemplary embodiments, the video processor 260-1 and the audio processor 260-2 may be separate chips or may be integrated in one or more chips with the controller 210.
And a power supply for supplying power supply support to the display apparatus 200 from the power input from the external power source under the control of the controller 210. The power supply may include a built-in power supply circuit installed inside the display apparatus 200, or may be a power supply installed outside the display apparatus 200, such as a power supply interface for providing an external power supply in the display apparatus 200.
Similar to the N-chip, as shown in fig. 4, the a-chip may include a controller 310, a communicator 330, a detector 340, and a memory 390. A user input interface, a video processor, an audio processor, a display, an audio output interface may also be included in some embodiments. In some embodiments, there may also be a power supply that independently powers the A-chip.
The communicator 330 is a component for communicating with an external device or an external server according to various communication protocol types. For example: the communicator 330 may include a WIFI module 331, a bluetooth communication protocol module 332, a wired ethernet communication protocol module 333, and other network communication protocol modules such as an infrared communication protocol module or a near field communication protocol module.
The communicator 330 of the a-chip and the communicator 230 of the N-chip also interact with each other. For example, the WiFi module 231 within the N-chip hardware system is used to connect to an external network, generate network communication with an external server, and the like. The WiFi module 331 in the a-chip hardware system is used to connect to the N-chip WiFi module 231 without making a direct connection with an external network or the like, and the a-chip is connected to an external network through the N-chip. Therefore, for the user, a display device as in the above embodiment displays a WiFi account to the outside.
The detector 340 is a component of the display device a chip for collecting signals of an external environment or interacting with the outside. The detector 340 may include a light receiver 342, a sensor for collecting the intensity of ambient light, which may be used to adapt to display parameter changes, etc.; the system may further include an image collector 341, such as a camera, a video camera, etc., which may be configured to collect external environment scenes, collect attributes of the user or interact gestures with the user, adaptively change display parameters, and identify user gestures, so as to implement a function of interaction with the user.
An external device interface 350, which provides a component for data transmission between the controller 310 and the N-chip or other external devices. The external device interface may be connected with an external apparatus such as a set-top box, a game device, a notebook computer, etc. in a wired/wireless manner.
A video processor 360 for processing the associated video signal.
The controller 310 controls the operation of the display device 200 and responds to the user's operation by running various software control programs stored on the memory 390 (e.g., using installed third party applications, etc.), and interacting with the N-chip.
As shown in fig. 4, the controller 310 includes a read only memory ROM313, a random access memory RAM314, a graphics processor 316, a CPU processor 312, a communication interface 318, and a communication bus. The ROM313 and the RAM314, the graphic processor 316, the CPU processor 312, and the communication interface 318 are connected via a bus.
A ROM313 for storing instructions for various system boots. CPU processor 312 executes system boot instructions in ROM and copies the operating system stored in memory 390 to RAM314 to begin running the boot operating system. After the start of the operating system is completed, the CPU processor 312 copies various application programs in the memory 390 to the RAM314, and then starts running and starting various application programs.
The CPU processor 312 is used for executing the operating system and application program instructions stored in the memory 390, communicating with the N chip, transmitting and interacting signals, data, instructions, etc., and executing various application programs, data and contents according to various interaction instructions received from the outside, so as to finally display and play various audio and video contents.
The communication interface 318 is plural. These interfaces may be network interfaces connected to external devices via a network, or may be network interfaces connected to the N-chip via a network.
The controller 310 may control the overall operation of the display apparatus 200. For example: in response to receiving a user command for selecting a UI object to be displayed on the display 280, the controller 210 may perform an operation related to the object selected by the user command.
A graphics processor 316 for generating various graphics objects, such as: icons, operation menus, user input instruction display graphics, and the like. The display device comprises an arithmetic unit which carries out operation by receiving various interactive instructions input by a user and displays various objects according to display attributes. And a renderer for generating various objects based on the operator and displaying the rendered result on the display 280.
Both the A-chip graphics processor 316 and the N-chip graphics processor 216 are capable of generating various graphics objects. In distinction, if application 1 is installed on the a-chip and application 2 is installed on the N-chip, the a-chip graphics processor 316 generates a graphics object when a user performs a command input by the user in application 1 at the interface of application 1. When a user makes a command input by the user in the interface of the application 2 and within the application 2, a graphic object is generated by the graphic processor 216 of the N chip.
Fig. 5 is a diagram schematically illustrating a functional configuration of a display device according to an exemplary embodiment.
As shown in fig. 5, the memory 390 of the a-chip and the memory 290 of the N-chip are used to store an operating system, an application program, contents, user data, and the like, respectively, and perform system operations for driving the display device 200 and various operations in response to a user under the control of the controller 310 of the a-chip and the controller 210 of the N-chip. The A-chip memory 390 and the N-chip memory 290 may include volatile and/or non-volatile memory.
The memory 290 is specifically configured to store an operating program for driving the controller 210 in the display device 200, and store various applications installed in the display device 200, various applications downloaded by a user from an external device, various graphical user interfaces related to the applications, various objects related to the graphical user interfaces, user data information, and internal data of various supported applications. The memory 290 is used to store system software such as an Operating System (OS) kernel, middleware, and applications, and to store input video data and audio data, and other user data.
The memory 290 is specifically used for storing drivers and related data of the video processor 260-1 and the audio processor 260-2, the display 280, the communicator 230, the tuning demodulator 220, the input/output interface, and the like.
In some embodiments, memory 290 may store software and/or programs, software programs for representing an Operating System (OS) including, for example: a kernel, middleware, an Application Programming Interface (API), and/or an application program. For example, the kernel may control or manage system resources, or functions implemented by other programs (e.g., the middleware, APIs, or applications), and the kernel may provide interfaces to allow the middleware and APIs, or applications, to access the controller to implement controlling or managing system resources.
The memory 290, for example, includes a broadcast receiving module 2901, a channel control module 2902, a volume control module 2903, an image control module 2904, a display control module 2905, a first audio control module 2906, an external instruction recognition module 2907, a communication control module 2908, a light receiving module 2909, a power control module 2910, an operating system 2911, and other applications 2912, a browser module, and the like. The controller 210 performs functions such as: the system comprises a broadcast television signal receiving and demodulating function, a television channel selection control function, a volume selection control function, an image control function, a display control function, an audio control function, an external instruction identification function, a communication control function, an optical signal receiving function, an electric power control function, a software control platform supporting various functions, a browser function and other various functions.
The memory 390 includes a memory storing various software modules for driving and controlling the display apparatus 200. Such as: various software modules stored in memory 390, including: the system comprises a basic module, a detection module, a communication module, a display control module, a browser module, various service modules and the like. Since the functions of the memory 390 and the memory 290 are similar, reference may be made to the memory 290 for relevant points, and thus, detailed description thereof is omitted here.
Illustratively, the memory 390 includes an image control module 3904, a second audio control module 3906, an external instruction recognition module 3907, a communication control module 3908, a light receiving module 3909, an operating system 3911, and other application programs 3912, a browser module, and the like. The controller 210 performs functions such as: the system comprises an image control function, a display control function, an audio control function, an external instruction identification function, a communication control function, an optical signal receiving function, an electric power control function, a software control platform supporting various functions, a browser function and other various functions.
Differently, the external instruction recognition module 2907 of the N-chip and the external instruction recognition module 3907 of the a-chip can recognize different instructions.
Illustratively, since the image receiving device such as a camera is connected with the a-chip, the external instruction recognition module 3907 of the a-chip may include the pattern recognition module 2907-1, a pattern database is stored in the pattern recognition module 3907-1, and when the camera receives an external pattern instruction, the camera corresponds to the instruction in the pattern database to perform instruction control on the display device. Since the voice receiving device and the remote controller are connected to the N-chip, the external command recognition module 2907 of the N-chip may include a voice recognition module 2907-2, a voice database is stored in the voice recognition module 2907-2, and when the voice receiving device receives an external voice command or the like, the voice receiving device and the like perform a corresponding relationship with a command in the voice database to perform command control on the display device. Similarly, a control device 100 such as a remote controller is connected to the N-chip, and the key command recognition module 2907-3 performs command interaction with the control device 100.
A block diagram of a configuration of a software system in a display device 200 according to an exemplary embodiment is exemplarily shown in fig. 6 a.
For an N-chip, as shown in fig. 6a, the operating system 2911, which includes executing operating software for handling various basic system services and for performing hardware related tasks, serves as an intermediary between applications and hardware components for data processing.
In some embodiments, portions of the operating system kernel may contain a series of software to manage the display device hardware resources and provide services to other programs or software code.
In other embodiments, portions of the operating system kernel may include one or more device drivers, which may be a set of software code in the operating system that assists in operating or controlling the devices or hardware associated with the display device. The drivers may contain code that operates the video, audio, and/or other multimedia components. Examples include a display, a camera, Flash, WiFi, and audio drivers.
The accessibility module 2911-1 is configured to modify or access the application program to achieve accessibility and operability of the application program for displaying content.
A communication module 2911-2 for connection to other peripherals via associated communication interfaces and a communication network.
The user interface module 2911-3 is configured to provide an object for displaying a user interface, so that each application program can access the object, and user operability can be achieved.
Control applications 2911-4 for controlling process management, including runtime applications and the like.
The event transmission system 2914 may be implemented within the operating system 2911 or within the application 2912. In some embodiments, an aspect is implemented within the operating system 2911, while implemented in the application 2912, for listening for various user input events, and will implement one or more sets of predefined operations in response to various events referring to the recognition of various types of events or sub-events.
The event monitoring module 2914-1 is configured to monitor an event or a sub-event input by the user input interface.
The event identification module 2914-2 is used to input various event definitions for various user input interfaces, identify various events or sub-events, and transmit them to the process for executing one or more sets of their corresponding handlers.
The event or sub-event refers to an input detected by one or more sensors in the display device 200 and an input of an external control device (e.g., the control apparatus 100). Such as: the method comprises the following steps of inputting various sub-events through voice, inputting a gesture sub-event through gesture recognition, inputting a remote control key command of a control device and the like. Illustratively, the one or more sub-events in the remote control include a variety of forms including, but not limited to, one or a combination of key presses up/down/left/right/, ok keys, key presses, and the like. And non-physical key operations such as move, hold, release, etc.
The interface layout management module 2913, directly or indirectly receiving the input events or sub-events from the event transmission system 2914, monitors the input events or sub-events, and updates the layout of the user interface, including but not limited to the position of each control or sub-control in the interface, and the size, position, and level of the container, which are related to the layout of the interface.
Since the functions of the operating system 3911 of the a chip are similar to those of the operating system 2911 of the N chip, reference may be made to the operating system 2911 for relevant points, and details are not repeated here.
As shown in fig. 6b, the application layer of the display device contains various applications that can be executed at the display device 200.
The N-chip application layer 2912 may include, but is not limited to, one or more applications such as: a video-on-demand application, an application center, a game application, and the like. The application layer 3912 of the a-chip may include, but is not limited to, one or more applications such as: live television applications, media center applications, and the like. It should be noted that what applications are respectively contained in the a chip and the N chip is determined according to an operating system and other designs, and the present invention does not need to make specific limitations and divisions on the applications contained in the a chip and the N chip.
The live television application program can provide live television through different signal sources. For example, a live television application may provide television signals using input from cable television, radio broadcasts, satellite services, or other types of live television services. And, the live television application may display video of the live television signal on the display device 200.
A video-on-demand application may provide video from different storage sources. Unlike live television applications, video on demand provides a video display from some storage source. For example, the video on demand may come from a server side of the cloud storage, from a local hard disk storage containing stored video programs.
The media center application program can provide various applications for playing multimedia contents. For example, a media center, which may be other than live television or video on demand, may provide services that a user may access to various images or audio through a media center application.
The application program center can provide and store various application programs. The application may be a game, an application, or some other application associated with a computer system or other device that may be run on a display device. The application center may obtain these applications from different sources, store them in local storage, and then be operable on the display device 200.
A schematic diagram of a user interface in a display device 200 according to an exemplary embodiment is illustrated in fig. 7. As shown in fig. 7, the user interface includes a plurality of view display areas, illustratively, a first view display area 201 and a play screen 202, wherein the play screen includes a layout of one or more different items. And a selector in the user interface indicating that the item is selected, the position of the selector being movable by user input to change the selection of a different item.
It should be noted that the multiple view display areas may present display screens of different hierarchies. For example, a first view display area may present video chat project content and a second view display area may present application layer project content (e.g., web page video, VOD presentations, application screens, etc.).
Optionally, the different view display areas are presented with different priorities, and the display priorities of the view display areas are different among the view display areas with different priorities. If the priority of the system layer is higher than that of the application layer, when the user uses the acquisition selector and picture switching in the application layer, the picture display of the view display area of the system layer is not blocked; and when the size and the position of the view display area of the application layer are changed according to the selection of the user, the size and the position of the view display area of the system layer are not influenced.
The display frames of the same hierarchy can also be presented, at this time, the selector can switch between the first view display area and the second view display area, and when the size and the position of the first view display area are changed, the size and the position of the second view display area can be changed along with the change.
Since the first chip and the second chip may have independent operation display devices respectively installed therein, there are two independent sub display devices in the display device 200, which are associated with each other. For example, Android (Android) and various APPs can be independently installed on the first chip and the N, so that each chip can realize a certain function, and the first chip and the second chip cooperatively realize a certain function.
In the practical application process, the second chip and the first chip are both used for receiving a video signal, wherein the video signal includes: network video signals and cable video signals. The first chip is used for receiving network video signals. Wherein the network video signal comprises: a video layer signal and a graphics layer signal. Before the video layer signal and the graphic layer signal are superposed, the first chip directly mixes and superposes the signals into the HDMI video signal without carrying out image quality processing on the video layer signal. The second chip performs image quality effect processing on the signal input by the HDMI channel, and because the image quality effect processing relates to processing of chromaticity, definition and noise reduction, and different video signals have different image quality processing effects, the color of the graphic layer signal changes along with different image quality processing, and even the edge hooking problem occurs because of high noise reduction intensity.
In order to solve the foregoing technical problem, an embodiment of the present application illustrates an image quality processing method applied to a display device, where the display device includes a display screen, a second chip connected to the display screen, and a first chip connected to the second chip, and specifically, refer to fig. 8, where the method includes:
s101, receiving parameters to be adjusted by the second chip, wherein the parameters to be adjusted comprise a first parameter to be adjusted and a second parameter to be adjusted; the technical scheme shown in the embodiment of the application includes that the parameters to be adjusted include a first parameter to be adjusted and a second parameter to be adjusted.
The second chip in the technical scheme shown in the embodiment of the application is used for receiving video signals, wherein one signal source of the video signals is a first video signal transmitted by the first chip through the second interface, and the other signal source of the video signals is a cable video signal transmitted by the set-top box through the first interface. Wherein the first video signal comprises: the network video signal is a pre-downloaded product signal transmitted through a USB interface. The cable video signal is received from air and converted into various television signals, including satellite television signals, V-section television signals, U-section television signals and other television signals transmitted by other cable stations through microwaves (or optical cables); another source of signals is cable television display device-owned television programming. The main equipment includes satellite ground station, microwave station, V-section and U-section receiving antennas, video camera, video recorder, TV broadcasting vehicle, broadcasting control equipment, display equipment managing computer, etc. Wired video only relates to video layer signals.
In the technical solution shown in the embodiment of the present application, the first video signal includes: a video layer signal and a graphics layer signal. The video layer signals are provided by a video website, and not only comprise video programs such as network movies, television shows, news, comprehensive programs, advertisements and the like; but also self-timer Dv short, video chat, video games and other video programs. The graphics layer signal is also referred to as an OSD (on screen display) in the embodiment of the present application, and the OSD attaches or changes the color of some pixels in the video in real time with the video so as to combine the pixels into data that can be recognized by human beings in the video. Displayed in a fixed or unfixed manner. For example: the information that various notifications can be superimposed by using characters while playing a video program can be called OSD.
In some embodiments, the video signal received by the first chip may include a video layer signal but not an OSD layer signal, the OSD layer signal is generated by the first chip itself, the first chip may process the video layer signal by using the first parameter to be adjusted before the OSD layer signal and the video layer signal are superimposed, and the video signal sent to the second chip is generated according to the processed video layer signal and the OSD signal superimposed.
In practical applications, image quality processing is usually required for video signals to provide better visual effects for users. If the image quality processing is directly performed on the video signal received by the second chip on the second chip, since the image quality processing involves processing of chrominance, sharpness and noise reduction, and different video signals have different image quality processing effects, the color of the graphic layer signal in the video signal changes along with different image quality processing, and even the edge hooking problem occurs because of the high noise reduction strength.
Based on the above technical problems, in the technical scheme shown in the embodiment of the present application, the sources of the signal input ends of the wired video signal and the first video are different, and the embodiment of the present application performs image quality processing together through the first chip and the second chip on the premise of distinguishing the signal input ends, so as to solve the problems in the prior art.
The specific treatment process is as follows:
s102, the second chip determines a channel connected with a signal source;
in the embodiment of the present application, the second interface between the first chip and the second chip is closed by default. The second chip in this application receives the wired video signal through the first interface by default. Correspondingly, in the technical scheme shown in the embodiment of the application, the second chip defaults to starting all the adjusting channels corresponding to the parameters to be adjusted, and when the second chip determines that the signal source is communicated with the second interface, the second chip closes the adjusting channels corresponding to the first parameters to be adjusted.
In response to that the channel connected by the signal source is the first interface of the second chip directly connected to the outside of the display device, S10311 the second chip adjusts the video signal received from the first interface according to the adjustment parameter;
in a feasible embodiment, the channel of the second chip responding to the signal source connection is that the second chip is directly connected with the first interface outside the display device, and the second chip determines that the received video signal is a wired video signal. In this case, the second chip retains the parameter to be adjusted and adjusts the video signal received from the first interface according to the adjustment parameter.
The specific adjusting process comprises the following steps: the second chip adjusts relevant parameters of the wired video signal according to the parameters to be adjusted, converts the adjusted wired video signal into VBY1 signals and sends the signals to the display screen.
In response to that the channel connected to the signal source is the second interface connected to the first chip, S10321 the second chip sends the first parameter to be adjusted to the first chip, so that the first chip generates the video signal sent by the first chip to the second chip according to the first parameter to be adjusted;
s10322, the second chip adjusts the video signal received from the first chip according to a second adjusting parameter;
in a possible embodiment, the channel to which the second chip is connected in response to the signal source is a second interface connected to the first chip, and the second chip determines that the received video signal is the first video signal, in which case the second chip sends the first parameter to be adjusted to the first chip, and the second chip retains the second parameter to be adjusted.
The technical scheme shown in the embodiment of the application has the advantage that the parameters to be adjusted are parameters related to image quality processing. The specific parameters to be adjusted include: contrast, brightness, color, hue, sharpness, hue, color temperature, noise reduction, mpeg noise reduction, dot noise reduction, white enhancement, color enhancement, red gain, green gain, blue gain, R-compensation, G-compensation, B-bias, white balance, etc. a series of parameters related to image quality processing.
In the technical solution shown in the embodiment of the present application, the first video signal includes: OSD (Object Sequence dictionary, screen menu type adjustment) is also referred to as a graphics layer signal in the embodiments of the present application. In the technical solution shown in the embodiment of the present application, all the parameters that have a certain influence on the display of the OSD are referred to as first parameters to be processed. Specifically, in this embodiment of the present application, the first to-be-processed parameter includes: contrast, brightness, color, hue, sharpness, hue, color temperature, noise reduction, mpeg noise reduction, point noise reduction, white enhancement, color enhancement, red gain, green gain, blue gain, R-compensation, G-compensation, B-offset, etc. a series of parameters that have some effect on the display of the OSD.
In the technical solution shown in the embodiment of the present application, the second parameter to be processed includes: white balance parameter, gamma parameter.
In the embodiment of the present application, an HDMI channel (also referred to as a second interface in the present application) between the first chip and the second chip is turned off by default. According to the technical scheme shown in the embodiment of the application, the second chip starts all the parameter channels to be adjusted by default. When the second chip is switched into the signal source, the second chip judges whether the current channel is a first interface or a second interface, if the current channel is the first interface, the second chip continues to start all the corresponding adjusting channels to be adjusted, and the adjusting values of the parameters to be adjusted are reserved; if the interface is the second interface, closing the adjusting channel corresponding to the first parameter to be adjusted, sending the adjusting value of the first parameter to be adjusted to the first chip, and simultaneously keeping the adjusting value of the second parameter to be adjusted.
The step of generating, by the first chip, the video signal sent by the first chip to the second chip according to the first parameter to be adjusted specifically includes:
the first chip receiving the first video signal includes: video layer signals and graphics layer signals. The first chip adjusts the relevant parameters of the video layer signal according to the first parameter to be adjusted to generate an adjusted video layer signal; and the first chip mixes the adjusted video layer signal and the adjusted graphic layer signal to generate an HDMI video signal which is sent to the second chip.
The first chip changes the first parameter to be adjusted of the video layer signal based on the first parameter to be adjusted, so that the first parameter to be adjusted of the video layer signal tends to the first parameter to be adjusted sent by the second chip. For example, if the transmission contrast of the second chip is 20, the first chip adjusts the contrast value of the video layer signal, so that the contrast value of the video layer signal tends to be 20. The embodiment of the present application only illustrates an adjustment process of a first parameter to be adjusted, and in an actual application process, one or more first parameters to be adjusted may be adjusted simultaneously. The specific adjustment process is similar to that shown in the above embodiments, and is not described herein for reasons of space.
After the first chip performs image quality processing on the video layer signal, the first chip mixes the graphics layer signal and the adjusted video layer signal to generate an HDMI video signal which is sent to the second chip.
The adjusting, by the second chip, the video signal received from the first chip according to the second adjustment parameter specifically includes:
and the second chip adjusts the relevant parameters of the HDMI video signal according to the adjustment value of the second parameter to be adjusted.
The second chip receives the HDMI video signal sent by the first chip, then adjusts the relevant parameters of the HDMI video signal according to the adjustment value of the second parameter to be adjusted, and finally converts the adjusted HDMI video signal into VBY1 signals to be sent to the display screen.
In a possible embodiment, the second parameter to be adjusted is a white balance parameter. And the second chip receives the display screen parameters fed back by the display screen and then determines the adjustment value of the white balance parameter according to the display screen parameters. In the technical solution shown in the embodiment of the present application, the design value of the photoelectric conversion of R, G, B three primary colors of the display screen is also referred to as an adjustment value of white balance in the technical solution shown in the embodiment of the present application.
Specifically, according to the display screen parameters, the process of determining the adjustment value of the white balance parameter is as follows: the white field of a typical display screen results in white when the red, green and blue driving voltages are equal. However, since the driving voltages and color coordinates of the three colors of actual red, green, and blue are different from the theoretical values, white balance adjustment is necessary for this purpose.
In a possible embodiment, the white balance parameter adjustment process is as follows: and adding a white balance signal of half white and half black to the display screen, wherein the parameters of the display screen are the deviation of the color coordinates of a bright field and a dark field relative to the color coordinates of a standard white field, and the second chip repeatedly adjusts R, G, B cut-off voltage and excitation voltage of three colors according to the deviation value fed back by the display screen, so that the white field and the standard white field of the display screen under the two luminances are consistent, and the cut-off voltage and the excitation voltage of R, G, B three colors, namely the design value of photoelectric conversion of R, G, B three primary colors, are the adjustment value of white balance.
According to the adjustment value of the white balance, the process of adjusting the video signal is as follows: the second chip performs white balance adjustment on the HDMI video signal, and can control the analog output quantity of the relevant control unit in the second chip to change according to the design value of storage R, G, B for the photoelectric conversion of the three primary colors, so as to change the values of R, G, B three driving voltages in the HDMI video signal, so that the photoelectric conversion superposition effect of the R, G, B three primary colors tends to the preset design value, thereby achieving white balance.
In some application scenarios with high requirements on picture quality, the Gamma parameter of the video signal needs to be adjusted. In order to meet the requirements of different users, in the technical solution shown in the embodiment of the present application, the second to-be-processed parameter further includes: gamma parameter.
And the second chip receives the display screen parameters fed back by the display screen and determines Gamma parameters according to the display screen parameters. The Gamma value or the Gamma correction table is an adjustment value of the Gamma parameter in the embodiment of the application.
In a possible embodiment, the display screen can provide a certain Gamma value for the second chip. In another possible embodiment, the second chip calls an interface function (Drv Icm Set Device Gamma Ramp) of the driver to call a Gamma correction table, which is 3 × 256 entries, 16 bytes each, corresponding to three channels of RGB, each with 256 levels. And then determining the Gamma parameter based on the display screen parameters sent by the display screen and the Gamma correction table.
The second chip corrects the Gamma value of the HDMI video signal according to the Gamma parameter, and finally the second chip converts the adjusted HDMI video signal into VBY1 signals (low-voltage differential signals) and sends the signals to the display screen.
S104 the second chip sends the adjusted video signal to the display screen.
According to the technical scheme, on the premise that the signal input ends are distinguished, the parameters to be adjusted are distributed through different signal input ends, and for the wired video input through the first interface, the parameters to be adjusted of the wired video signals are directly adjusted on the second chip, so that the image quality processing effect of the wired video signals is achieved. For a first video signal input through the second interface, firstly, the first chip adjusts the video layer signal through the adjustment value of the first parameter to be adjusted sent by the second chip, and then the adjusted video layer signal and the graphics layer signal are mixed to generate the HDIM video signal. And then, adjusting the HDIM video signal according to the second adjusting parameter, and finally sending the adjusted video signal to a display screen. The method effectively avoids the problems of edge hooking and color distortion of the graphic layer signal in the image quality processing process.
Meanwhile, in the technical scheme shown in the embodiment of the application, the adjustment value of the second parameter to be adjusted is kept on the second chip, on one hand, the change of the second parameter to be adjusted of the graphics layer signal does not affect the display of the graphics layer signal, and therefore, the adjustment of the second parameter to be adjusted of the mixed graphics layer signal and video layer signal on the second chip does not affect the display of the graphics layer signal. On the other hand, the second chip is directly connected with the display screen, the related parameters of the display screen can be transmitted to the second chip in real time, when the related parameters of the display screen change, the second chip can also timely receive the changed related parameters of the display screen, and corresponding adjustment values of the second parameters are timely adjusted according to the changed related parameters of the display screen.
A second aspect of the embodiment of the present application shows an image quality processing method applied to a display device, where the display device includes a display screen, a second chip connected to the display screen, and a first chip connected to the second chip, and specifically, refer to fig. 9, the method includes:
s201, a second chip receives parameters to be adjusted, wherein the parameters to be adjusted comprise a first parameter to be adjusted and a second parameter to be adjusted, and the first parameter to be adjusted is a parameter for adjusting video layer image signals;
in response to the video signal being directly received by the second chip, S202211 the second chip adjusts the video signal received from the first interface according to the adjustment parameter;
in response to that the video signal is sent by the first chip, S20221 the second chip sends the first parameter to be adjusted to the first chip, so that the first chip adjusts a video layer image signal in the video signal sent to the second chip according to the parameter to be adjusted;
s20222 the second chip adjusts the video signal received from the first chip according to a second adjustment parameter; or the second chip directly transmits the video signal received from the first chip to the display screen.
S203, the second chip sends the adjusted video signal to the display screen.
A third aspect of the embodiments of the present application shows a display device, specifically referring to fig. 10, including: first chip with first chip is connected, second chip and with the display screen that the second chip is connected:
in the practical application process, the first chip and the second chip are connected through any one or more of a Universal Serial Bus (USB), a high-definition multimedia interface (HDMI) terminal, a Composite Video Blanking Synchronization (CVBS) terminal, an analog or digital component terminal, a red, green and blue (RGB) terminal, a network interface, and the like. The number and type of external device interfaces are not limited by this application.
According to the technical scheme, the first chip is connected with the camera, the camera is used for collecting image information of a user in real time in the video chatting process, the first chip obtains the image information, and the USB mainly acts on transmitting image data of the camera to the second chip through the USB.
The network cable interface is mainly used for enabling the second chip and the first chip to be connected to the internet at the same time, and keys of the remote controller are also transmitted to the first chip through the network cable interface.
The second interface mainly sends the signal received by the first chip to the second chip, and the signal includes: first video data, image information collected by a camera, and the like. The signal received by the first chip is transmitted to the second chip through the second communication interface, and it should be noted that, in the technical solution shown in the embodiment of the present application, the second interface is not open to a user.
The first interface is mainly used for equipment such as an external set top box and the like, and the external set top box receives signals and transmits the signals to the second chip through the first communication interface.
The second chip is used for receiving parameters to be adjusted, and the parameters to be adjusted comprise a first parameter to be adjusted and a second parameter to be adjusted;
the second chip is also used for determining a channel connected with a signal source;
responding to a channel connected by a signal source, wherein the second chip is directly connected with a first interface outside the display equipment, and the second chip is also used for adjusting the video signal received from the first interface according to the adjusting parameter;
responding to that a channel connected with a signal source is a second interface connected with the first chip, wherein the second chip is further used for sending a first parameter to be adjusted to the first chip, so that the first chip generates a video signal sent by the first chip to the second chip according to the first parameter to be adjusted, and the second chip adjusts the video signal received from the first chip according to a second adjustment parameter;
and the second chip is also used for sending the adjusted video signal to the display screen.
A fourth aspect of the embodiments of the present application shows a display device, which may specifically continue to refer to fig. 10, including: first chip with first chip is connected, second chip and with the display screen that the second chip is connected:
the second chip is used for receiving a first parameter to be adjusted, wherein the first parameter to be adjusted is a parameter used for adjusting the video layer image signal;
responding to the video signal sent by the first chip, the second chip is further used for sending the first parameter to be adjusted to the first chip, so that the first chip adjusts the video layer image signal in the video signal sent to the second chip according to the parameter to be adjusted;
and in response to the video signal being directly received by the second chip, the second chip is further configured to adjust a video layer image signal in the received video signal according to the parameter to be adjusted, and the second chip adjusts the video signal received from the first chip according to a second adjustment parameter. Direct reception means that the second chip is directly connected to the outside of the display device and receives signals or data from the outside.
According to the technical scheme, on the premise of distinguishing signal input ends, the parameters to be adjusted are distributed through different signal input ends, and for the wired video input through the first interface, the parameters to be adjusted of the wired video signal are directly adjusted on the second chip, so that the image quality processing effect of the wired video signal is achieved. For a first video signal input through the second interface, the second chip sends a first parameter to be adjusted to the first chip, so that the first chip generates a video signal sent by the first chip to the second chip according to the first parameter to be adjusted, the second chip adjusts the video signal received from the first chip according to the second parameter to be adjusted, and finally the adjusted video signal is sent to the display screen. The method effectively avoids the problems of edge hooking and color distortion of the graphic layer signal in the image quality processing process.
It should be understood that the terms "first," "second," "third," and the like in the description and in the claims of the present application and in the drawings described above are used for distinguishing between similar elements and not necessarily for describing a particular sequential or chronological order. It is to be understood that the data so used are interchangeable under appropriate circumstances and can be implemented in sequences other than those illustrated or otherwise described herein with respect to the embodiments of the application, for example.
Furthermore, the terms "comprises" and "comprising," and any variations thereof, are intended to cover a non-exclusive inclusion, such that a product or device that comprises a list of elements is not necessarily limited to those elements explicitly listed, but may include other elements not expressly listed or inherent to such product or device.
Finally, it should be noted that: the above embodiments are only used for illustrating the technical solutions of the present application, and not for limiting the same; although the present application has been described in detail with reference to the foregoing embodiments, it should be understood by those of ordinary skill in the art that: the technical solutions described in the foregoing embodiments may still be modified, or some or all of the technical features may be equivalently replaced; and the modifications or the substitutions do not make the essence of the corresponding technical solutions depart from the scope of the technical solutions of the embodiments of the present application.

Claims (8)

1. An image quality processing method is applied to a display device, the display device comprises a display screen, a second chip connected with the display screen, and a first chip connected with the second chip, and the method comprises the following steps:
the second chip receives parameters to be adjusted, wherein the parameters to be adjusted comprise a first parameter to be adjusted and a second parameter to be adjusted;
the second chip determines a channel connected with a signal source;
responding to the channel connected by the signal source that the second chip is directly connected with the first interface outside the display equipment, and adjusting the video signal received from the first interface by the second chip according to the adjusting parameter;
responding to that a channel connected with a signal source is a second interface connected with the first chip, and sending a first parameter to be adjusted to the first chip by the second chip so that the first chip generates a video signal sent by the first chip to the second chip according to the first parameter to be adjusted, and adjusting the video signal received from the first chip by the second chip according to a second adjustment parameter;
and the second chip sends the adjusted video signal to the display screen.
2. The method according to claim 1, wherein the step of the first chip generating the video signal sent by the first chip to the second chip according to the first parameter to be adjusted is specifically:
the first chip receives a first video signal, wherein the first video signal comprises a video layer signal and a graphic layer signal, and the first chip adjusts related parameters of the video layer signal according to the adjustment value of the first parameter to be adjusted to generate an adjusted video layer signal;
the first chip mixes the graphic layer signal and the adjusted video layer signal to generate an HDMI video signal which is sent to the second chip;
the adjusting, by the second chip, the video signal received from the first chip according to the second adjustment parameter specifically includes:
and the second chip adjusts the relevant parameters of the HDMI video signal according to the adjustment value of the second parameter to be adjusted.
3. The method according to claim 1, wherein the first interface is a cable television signal interface, and the step of the second chip adjusting the video signal received from the first interface according to the adjustment parameter is specifically:
and the second chip adjusts related parameters of the cable video signal according to the parameters to be adjusted, wherein the cable video signal is the video signal received from the first interface.
4. The method according to any one of claims 1 to 3, wherein the second parameter to be adjusted is at least one of a white balance parameter and a gamma parameter.
5. The method according to any of claims 1-3, wherein the first parameter to be adjusted is at least one of a contrast parameter, a brightness parameter, a color parameter, a hue parameter, a sharpness parameter, a hue parameter, a color temperature parameter, a noise reduction parameter, an mpeg noise reduction parameter, a point noise reduction parameter, a white enhancement parameter, a color enhancement parameter, a red gain parameter, a green gain parameter, a blue gain parameter, an R-compensation parameter, a G-compensation parameter, a B-bias parameter.
6. An image quality processing method is applied to a display device, the display device comprises a display screen, a second chip connected with the display screen, and a first chip connected with the second chip, and the method comprises the following steps:
the second chip receives parameters to be adjusted, wherein the parameters to be adjusted comprise a first parameter to be adjusted and a second parameter to be adjusted, and the first parameter to be adjusted is a parameter for adjusting the video layer image signal;
in response to the video signal sent by the first chip, the second chip sends the first parameter to be adjusted to the first chip, so that the first chip generates a video layer image signal in the video signal sent to the second chip according to the parameter to be adjusted;
and responding to the video signal directly received by the second chip, and adjusting the video layer image signal in the received video signal according to the parameter to be adjusted by the second chip.
7. A display device, comprising: first chip with first chip is connected, second chip and with the display screen that the second chip is connected:
the second chip is used for receiving parameters to be adjusted, and the parameters to be adjusted comprise a first parameter to be adjusted and a second parameter to be adjusted;
the second chip is also used for determining a channel connected with a signal source;
responding to a channel connected by a signal source, wherein the second chip is directly connected with a first interface outside the display equipment, and the second chip is also used for adjusting the video signal received from the first interface according to the adjusting parameter;
responding to that a channel connected with a signal source is a second interface connected with the first chip, wherein the second chip is further used for sending a first parameter to be adjusted to the first chip, so that the first chip generates a video signal sent by the first chip to the second chip according to the first parameter to be adjusted, and the second chip adjusts the video signal received from the first chip according to a second adjustment parameter;
and the second chip is also used for sending the adjusted video signal to the display screen.
8. A display device, comprising: first chip with first chip is connected, second chip and with the display screen that the second chip is connected:
the second chip is used for receiving a first parameter to be adjusted, wherein the first parameter to be adjusted is a parameter used for adjusting the video layer image signal;
responding to the video signal sent by the first chip, the second chip is further used for sending the first parameter to be adjusted to the first chip, and enabling the first chip to generate a video layer image signal in the video signal sent to the second chip according to the parameter to be adjusted;
and responding to the video signal received directly by the second chip, wherein the second chip is also used for adjusting the video layer image signal in the received video signal according to the parameter to be adjusted.
CN201910801248.0A 2019-06-10 2019-08-28 Image quality processing method and display device Pending CN112073774A (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
CN2019104981983 2019-06-10
CN201910498198 2019-06-10

Publications (1)

Publication Number Publication Date
CN112073774A true CN112073774A (en) 2020-12-11

Family

ID=73657955

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201910801248.0A Pending CN112073774A (en) 2019-06-10 2019-08-28 Image quality processing method and display device

Country Status (1)

Country Link
CN (1) CN112073774A (en)

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112839252A (en) * 2019-11-25 2021-05-25 青岛海信电器股份有限公司 Display device
CN113938672A (en) * 2021-09-16 2022-01-14 青岛信芯微电子科技股份有限公司 Signal identification method of signal source and terminal equipment
US20230046660A1 (en) * 2020-09-23 2023-02-16 Beijing Boe Optoelectronics Technology Co., Ltd. Display device, method and system for displaying image thereof, and storage medium
CN116467099A (en) * 2023-05-24 2023-07-21 南京芯驰半导体科技有限公司 Information processing method and device based on inter-core communication, chip and electronic equipment

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112839252A (en) * 2019-11-25 2021-05-25 青岛海信电器股份有限公司 Display device
CN112839252B (en) * 2019-11-25 2023-03-21 青岛海信电器股份有限公司 Display device
US20230046660A1 (en) * 2020-09-23 2023-02-16 Beijing Boe Optoelectronics Technology Co., Ltd. Display device, method and system for displaying image thereof, and storage medium
US11922853B2 (en) * 2020-09-23 2024-03-05 Beijing Boe Optoelectronics Technology Co., Ltd. Display device, method and system for displaying image thereof, and storage medium
CN113938672A (en) * 2021-09-16 2022-01-14 青岛信芯微电子科技股份有限公司 Signal identification method of signal source and terminal equipment
CN116467099A (en) * 2023-05-24 2023-07-21 南京芯驰半导体科技有限公司 Information processing method and device based on inter-core communication, chip and electronic equipment
CN116467099B (en) * 2023-05-24 2023-11-03 南京芯驰半导体科技有限公司 Information processing method and device based on inter-core communication, chip and electronic equipment

Similar Documents

Publication Publication Date Title
CN113330736B (en) Display and image processing method
CN112073797B (en) Volume adjusting method and display device
CN112073788B (en) Video data processing method and device and display equipment
CN112073774A (en) Image quality processing method and display device
CN112399232A (en) Display equipment, camera priority use control method and device
CN112073795B (en) Video data processing method and device and display equipment
CN112399254B (en) Display device and color gamut space dynamic adjustment method
CN112068741B (en) Display device and display method for Bluetooth switch state of display device
CN111385631B (en) Display device, communication method and storage medium
CN112995733B (en) Display device, device discovery method and storage medium
CN112073789B (en) Sound processing method and display device
CN112073812B (en) Application management method on smart television and display device
CN112073808A (en) Color space switching method and display device
CN112399245A (en) Playing method and display device
CN112073666A (en) Power supply control method of display equipment and display equipment
CN112073769A (en) Display device and method for applying common display
CN112073776A (en) Voice control method and display device
CN112073777A (en) Voice interaction method and display device
CN112073803A (en) Sound reproduction method and display equipment
CN112073773A (en) Screen interaction method and device and display equipment
CN112399223B (en) Method for improving moire fringe phenomenon and display device
CN112073772B (en) Key seamless transmission method based on dual systems and display equipment
CN112995113B (en) Display device, port control method and storage medium
CN112073763B (en) Display equipment
CN112073779B (en) Display device and fault-tolerant method for key transmission

Legal Events

Date Code Title Description
PB01 Publication
PB01 Publication
SE01 Entry into force of request for substantive examination
SE01 Entry into force of request for substantive examination