Terminal body, terminal screen and terminal
Through quantum communication and wireless charging technology, the terminal body and the terminal screen are completely separated, which solves the problem that the terminal body and the terminal screen cannot be completely separated, realizes flexible screen design and efficient communication, and improves user experience.
Patent Information
- Application Number
- CN202310305355.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2019-05-16
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2039-05-16
AI Technical Summary
In the prior art, the terminal body and the terminal screen cannot be completely separated and need to be connected by a connecting line, which limits the freedom and flexibility of screen design and lacks an effective communication and event processing mechanism.
Quantum communication technology is used to communicate between the terminal body and the terminal screen, and wireless charging technology is used to achieve complete separation. The power supply and data transmission between the terminal body and the terminal screen, including the quantum channel transmission module and the wireless communication module, realize the communication and event processing between the independent terminal body and the terminal screen.
The terminal body and the terminal screen are completely separated, which improves the flexibility of production and use. The terminal screen can be folded or bent at any angle, and the terminal body can be designed into any shape, freeing the user's hands. The communication speed is fast and the security is high.
Smart Images

Figure CN116567124B_ABST
Abstract
Description
[0001] This application is a divisional application of the invention patent with the patent name “Terminal body, terminal screen and terminal”, application number “2019104052648”, and application date of May 16, 2019. Technical Field
[0002] The embodiments of the present invention relate to but are not limited to terminal technology, and in particular to a terminal body, a terminal screen, and a terminal. Background Art
[0003] As smartphones have evolved, users have increasingly demanded higher screen resolutions, larger screen sizes, and higher screen-to-body ratios. To address these trends, components in the top, bottom, left, and right sides of the phone have been compromised to accommodate the screen, resulting in higher screen-to-body ratios. The advancement of screen resolution from 2K to the impending 4K resolution has also necessitated larger screen sizes. However, screen size is constrained by user interaction and the size of the phone's motherboard, making it impossible to flexibly control its size independently. Even the emergence of flexible, foldable screens requires adaptation to the phone's motherboard for power supply and data display.
[0004] Patent application publication number CN204498193 proposes a new concept mobile phone with a detachable screen and body. The phone body and screen are connected via a cable to transmit display data, control data, and solve power supply problems, ultimately achieving the purpose of flexible mounting of the phone motherboard and screen. However, in this solution, the phone body and screen cannot be completely separated and need to be connected via a cable. In addition, a slot needs to be provided on the back of the screen to accommodate the phone body, or a placement platform for mounting the phone screen needs to be provided on the phone body. This makes it impossible to freely design the phone body and screen, and the two are still interdependent.
[0005] Patent application CN201130963 proposes a split-type Bluetooth mobile phone. This solution uses a Bluetooth module to separate the keypad module from the phone body, further saving space. However, this solution lacks a specific implementation for communication between the separate terminal body and the terminal screen, and for processing predetermined events. Summary of the Invention
[0006] The embodiment of the present invention provides a terminal body, a terminal screen and a terminal, which can perform quantum communication between the terminal body and the terminal screen, thereby achieving the technical effect of processing predetermined events and communicating between the separated terminal body and the terminal screen.
[0007] In a first aspect, an embodiment of the present invention provides a terminal body, comprising: a first power supply module, a first wireless communication module, and a first signal processing module;
[0008] The first wireless communication module is used to receive a predetermined event and send first display data to the terminal screen through quantum communication technology;
[0009] The first wireless communication module includes: an information receiving module and a quantum channel transmission module;
[0010] The first signal processing module is configured to process a predetermined event and generate first display data based on the processing result. The first signal processing module includes: a main module, a pixel matrix modulation module, a quantum difference module, a quantum information source module, a quantum coding module, and a quantum modulation module. The main module is configured to process the predetermined event and generate the first display data based on the processing result. The pixel matrix modulation module is configured to encode the first display data to obtain a first pixel matrix. The quantum difference module is configured to compare a second pixel matrix in a cache with the first pixel matrix to obtain first difference pixels, each of which corresponds to position information identified in the first pixel matrix, and to package the first difference pixels into a first data frame. The second pixel matrix in the cache is updated to the first pixel matrix. The quantum information source module is configured to convert the first data frame into a first quantum message. The quantum coding module is configured to convert the first quantum message into a first quantum bit. The quantum modulation module is configured to convert the first quantum bit into first quantum information using a quantum state as a carrier. The quantum channel transmission module is configured to send the first quantum information to the quantum channel receiving module in the terminal screen.
[0011] In a second aspect, an embodiment of the present invention provides a terminal screen, the terminal screen comprising: a second power supply module, a second wireless communication module, a second signal processing module, a display driver, and a display panel;
[0012] The second wireless communication module includes: an information sending module and a quantum channel receiving module;
[0013] The second wireless communication module is used to send a predetermined event to the terminal body; receive the first display data sent by the terminal body through quantum communication technology;
[0014] The second signal processing module is used to detect a predetermined event, wherein the second signal processing module includes: a detection module, a quantum demodulation module, a quantum decoding module, a pixel matrix demodulation module, and a display control module; the detection module is used to detect the predetermined event; the quantum demodulation module is used to convert the first quantum information into the first quantum bit; the quantum decoding module is used to decode the first quantum bit to obtain a first quantum message; the pixel matrix demodulation module is used to decode the first quantum message to obtain a first difference pixel; the display control module is used to update a current buffer frame according to the first difference pixel, send the updated buffer frame to a display driver, and drive the display panel to display the image corresponding to the buffer frame through the display driver;
[0015] The display driver is configured to drive the display panel to display an image corresponding to the first display data;
[0016] The display panel is used to display an image corresponding to the first display data.
[0017] In a third aspect, an embodiment of the present invention provides a first computer-readable storage medium storing a first instruction, which is used to implement the first signal processing module and the first wireless communication module in the terminal body as described in any embodiment of the first aspect when the first instruction is executed by the first processor, so as to implement the functions of the main module, the pixel matrix modulation module, the quantum difference module, the quantum information source module, the quantum coding module, the quantum modulation module, the information receiving module and the quantum channel transmission module in the first signal processing module and the first wireless communication module.
[0018] In a fourth aspect, an embodiment of the present invention provides a second computer-readable storage medium storing a second instruction, which is used to implement the second signal processing module and the second wireless communication module in the terminal screen as described in any one of the embodiments in the second aspect when the second instruction is executed by the second processor, so as to implement the functions of the detection module, the quantum demodulation module, the quantum decoding module, the pixel matrix demodulation module, the display control module, the information sending module and the quantum channel receiving module in the second signal processing module and the second wireless communication module.
[0019] In a fifth aspect, an embodiment of the present invention provides a terminal, comprising: the terminal body described in any one of the embodiments in the first aspect and the terminal screen described in any one of the embodiments in the second aspect, wherein the terminal body and the terminal screen are independent of each other.
[0020] The present invention has at least the following beneficial effects: the terminal body and the terminal screen are independent of each other, wherein the terminal body includes: a first wireless communication module and a first signal processing module; the terminal screen includes: a second wireless communication module and a second signal processing module; the first wireless communication module is used to receive a predetermined event and send first display data to the terminal screen through quantum communication technology; the first signal processing module is used to process the predetermined event; the second wireless communication module is used to send the predetermined event to the terminal body and receive the first display data sent by the terminal body through quantum communication technology; the second signal processing module is used to detect the predetermined event. The embodiment of the present invention completely separates the terminal body and the terminal screen based on quantum communication technology, eliminates the dependence between the terminal body and the terminal screen, and the two sides no longer serve as bottlenecks to each other. Quantum communication can be carried out between the terminal body and the terminal screen, achieving the technical effect of communicating and processing predetermined events between the separated terminal body and the terminal screen; and, the terminal screen can use a flexible display panel to achieve folding or bending at any angle, and is no longer restricted by the terminal body, thereby improving the flexibility of production or use, and the terminal body can also be designed into any shape, and the length, width and height are no longer restricted by the terminal screen, which brings greater flexibility to the design of other components, and the weight of the terminal body does not need to be considered too much; and, the terminal body and the terminal screen are completely separated, the user can only operate the terminal screen, and the terminal body can be placed on the body or somewhere else nearby, thereby freeing the user's hands.
[0021] Other features and advantages of the embodiments of the present invention will be described in the following description, and in part will become apparent from the description, or may be understood by practicing the embodiments of the present invention. The objectives and other advantages of the embodiments of the present invention can be achieved and obtained through the structures particularly pointed out in the description, claims, and drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The accompanying drawings are used to provide a further understanding of the technical solutions of the embodiments of the present invention and constitute a part of the specification. Together with the embodiments of the embodiments of the present invention, they are used to explain the technical solutions of the embodiments of the present invention and do not constitute a limitation on the technical solutions of the embodiments of the present invention.
[0023] Figure 1 A schematic diagram of the structure of a terminal according to an embodiment of the present invention;
[0024] FIG2(a) is a schematic diagram of the structure of the terminal body according to an embodiment of the present invention. Figure 1 ;
[0025] FIG2( b ) is a schematic diagram showing the structure of a terminal screen according to an embodiment of the present invention;
[0026] FIG2( c ) is a second schematic diagram of the structure of the terminal body according to an embodiment of the present invention;
[0027] FIG2( d ) is a third schematic diagram of the structure of the terminal body according to an embodiment of the present invention;
[0028] FIG2(e) is a schematic diagram of the structure of the terminal body according to an embodiment of the present invention. Figure 4 ;
[0029] FIG3( a ) is a schematic diagram showing the structural composition of a first signal processing module and a first wireless communication module according to an embodiment of the present invention;
[0030] FIG3( b ) is a schematic diagram showing the structural composition of a second signal processing module and a second wireless communication module according to an embodiment of the present invention;
[0031] Figure 4 This is a schematic diagram of an embodiment of the present invention using quantum states to represent pixel sources;
[0032] Figure 5 A schematic diagram of an embodiment of the present invention using plane coordinate angles to identify quantum states;
[0033] Figure 6 A schematic diagram of an embodiment of the present invention using a high-frequency sound wave cosine function as a communication medium;
[0034] Figure 7 Schematic diagram of opening the expanded mode and closing the collapsed mode of the terminal according to an embodiment of the present invention. DETAILED DESCRIPTION
[0035] The embodiments of the present invention will be described in detail below with reference to the accompanying drawings. It should be noted that, in the absence of any conflict, the embodiments of the present invention and the features in the embodiments can be combined with each other in any manner.
[0036] The steps shown in the flowcharts of the accompanying drawings can be executed in a computer system such as a set of computer executable instructions. Also, although a logical order is shown in the flowcharts, in some cases, the steps shown or described can be performed in an order different from that shown here.
[0037] Currently, high screen-to-body ratio and foldable screen mobile devices pose greater challenges to mobile terminal manufacturing processes. Components on the mobile terminal body must further compromise with the screen.
[0038] See also Figure 1 One embodiment of the present invention proposes a terminal, which can be any terminal or device, for example, a mobile terminal (such as a mobile phone, IPAD, etc.), a portable terminal, a non-portable terminal, a terminal or device whose screen size needs to be flexibly adjusted and is subject to a control subject.
[0039] The terminal includes a terminal body 110 and a terminal screen 120 that are independent of each other;
[0040] The terminal body 110 includes: a first power module 111 and a first wireless communication module 112;
[0041] The terminal screen 120 includes: a second power supply module 121 and a second wireless communication module 122;
[0042] The first power module 111 supplies power to the terminal body 110 through a battery and supplies power to the terminal screen 120 through wireless charging technology; alternatively, the first wireless charging source supplies power to the terminal body 110 and the terminal screen 120 based on wireless charging technology;
[0043] The first wireless communication module 112 and the second wireless communication module 122 communicate with each other through at least one of the following: wireless communication method and quantum communication technology.
[0044] The embodiments of the present invention completely separate the terminal body and the terminal screen based on wireless charging technology, wireless communication mode or quantum communication technology, thereby eliminating the dependence between the terminal body and the terminal screen, and the two parties no longer serve as bottlenecks to each other. Through wireless charging technology, the power supply demand of the terminal screen is met, thereby solving the power supply problem of the terminal screen; and, the terminal screen can adopt a flexible display panel to achieve folding or bending at any angle, and is no longer restricted by the terminal body, thereby improving the flexibility of production or use, and the terminal body can also be designed into any shape, and the length, width and height are no longer restricted by the terminal screen, which brings greater flexibility to the design of other components, and the weight of the terminal body does not need to be considered too much; and, the terminal body and the terminal screen are completely separated, and the user can only operate the terminal screen, and the terminal body can be placed on the body or somewhere else nearby, thereby freeing the user's hands.
[0045] In one illustrative example, Figure 1 As shown, the first power module 111 is located at the bottom of the terminal body 110, and the first wireless communication module 112 is located at the top of the terminal body 110; of course, the first power module 111 and the first wireless communication module 112 may also be located at other positions of the terminal body 110. The embodiment of the present invention does not limit the specific positions of the first power module 111 and the first wireless communication module 112, and their specific positions are not used to limit the protection scope of the embodiment of the present invention.
[0046] In one illustrative example, Figure 1 As shown, the second power module 121 is located at the bottom of the terminal screen 120, and the second wireless communication module 122 is located at the top of the terminal screen 120; of course, the second power module 121 and the second wireless communication module 122 may also be located at other positions of the terminal screen 120. The embodiment of the present invention does not limit the specific positions of the second power module 121 and the second wireless communication module 122, and their specific positions are not used to limit the protection scope of the embodiment of the present invention.
[0047] In the embodiment of the present invention, the terminal body 110 and the terminal screen 120 may be powered by any of the following methods.
[0048] (1) The first power module 111 of the terminal body 110 supplies power to the terminal body 110 through a battery and supplies power to the terminal screen 120 based on wireless charging technology.
[0049] As shown in FIG2(a), the first power module 111 includes: a battery 1111, a first coil module 1112, and a first wireless transmitting chip 1113; as shown in FIG2(b), the second power module 121 includes: a first transmitting coil 1211 and a first wireless receiving chip 1212;
[0050] The battery 1111 is used to supply power to the terminal body 110 and drive the coil module 1112 to generate a first current energy;
[0051] The first wireless transmitting chip 1113 is configured to transmit the first current energy;
[0052] The first wireless receiving chip 1212 is configured to receive the first current energy and transmit the first current energy to the first transmitting coil 1211;
[0053] The first transmission coil 1211 is used to supply power to the terminal screen according to the first current energy.
[0054] In an exemplary embodiment, as shown in FIG2( a ), the first coil module 1112 may be located below the battery 1111 and the first wireless transmitter chip 1113 . Of course, the first coil module 1112 , the battery 1111 , and the first wireless transmitter chip 1113 may also be located in other positions, which is not limited in this embodiment of the present invention.
[0055] In the embodiment of the present invention, the battery 1111 can be charged by a wired charging source or a second wireless charging source (not shown in the figure).
[0056] In an exemplary embodiment, as shown in FIG2( c ), when the battery 1111 is charged by a second wireless charging source (not shown in the figure), the second wireless charging source includes: a second coil module and a second wireless transmitting chip; the first power module 111 further includes: a second wireless receiving chip 1114;
[0057] The second coil module is used to generate second current energy;
[0058] The second wireless transmitting chip is used to send the second current energy;
[0059] The second wireless receiving chip 1114 is configured to receive the second current energy and transmit the second current energy to the first coil module 1112;
[0060] The first coil module 1112 is further configured to charge the battery according to the second current energy.
[0061] In another exemplary embodiment, as shown in FIG2( d ), when the battery 1111 is charged by a second wireless charging source, the second wireless charging source includes: a second coil module and a second wireless transmitting chip; the first power module 111 further includes: a second wireless receiving chip 1114 and a second transmitting coil 1115;
[0062] The second coil module is used to generate second current energy;
[0063] The second wireless transmitting chip is used to send the second current energy;
[0064] The second wireless receiving chip 1114 is configured to receive the second current energy and transmit the second current energy to the second transmitting coil;
[0065] The second transmission coil 1115 is configured to charge the battery according to the second current energy.
[0066] In this method, the terminal body 110 powers itself through the battery 1111, thereby solving its own power supply problem, and powers the terminal screen 120 through wireless charging technology, thereby solving the power supply problem of the terminal screen 120.
[0067] (2) The first wireless charging source supplies power to the terminal body 110 and the terminal screen 120 based on wireless charging technology.
[0068] As shown in FIG2(e), when the first wireless charging source powers the terminal body 110 and the terminal screen 120 through wireless charging technology, the first wireless charging source includes: a third coil module and a third wireless transmitting chip; the first power module 111 includes: a third transmitting coil 1117 and a third wireless receiving chip 1116; the second power module 121 includes: a first transmitting coil 1211 and a first wireless receiving chip 1212;
[0069] The third coil module is used to generate a third current energy;
[0070] The third wireless transmitting chip is used to send the third current energy;
[0071] The third wireless receiving chip 1116 is configured to receive the third current energy and transmit the third current energy to the third transmitting coil;
[0072] The third transmission coil 1117 is used to: supply power to the terminal body according to the third current energy;
[0073] The first wireless receiving chip 1212 is configured to receive the third current energy and transmit the third current energy to the first transmitting coil;
[0074] The first transmission coil 211 is used to supply power to the terminal screen according to the third current energy.
[0075] In this method, the first wireless charging source supplies power to the terminal body 110 and the terminal screen 120 based on wireless charging technology, thereby solving the power supply problem of the terminal body 110 and the terminal screen 120 .
[0076] In an exemplary embodiment, the wireless communication method includes any one of the following: Bluetooth, high-frequency sound, etc. For example, Figure 6 As shown, a high-frequency acoustic cosine function can be used as a communication medium. Different periods identify different states. To resist interference, each time a state is transmitted, it can be repeated N times, for example, 16 times or 32 times.
[0077] In another embodiment of the present invention, the terminal body 110 further includes: a first signal processing module 113; the terminal screen 120 further includes: a second signal processing module 123, a display driver 124 and a display panel 125;
[0078] The first wireless communication module 112 is configured to receive a predetermined event via wireless communication; and transmit first display data to the terminal screen 120 via wireless communication or quantum communication technology; wherein the predetermined event includes at least one of the following: an input event and a screen folding event;
[0079] The first signal processing module 113 is used to process the predetermined event and generate first display data according to the processing result;
[0080] The second signal processing module 123 is configured to detect a predetermined event;
[0081] The second wireless communication module 122 is configured to send a predetermined event to the terminal body via wireless communication; and receive the first display data via wireless communication or quantum communication technology;
[0082] The display driver 124 is configured to drive the display panel 125 to display an image corresponding to the first display data;
[0083] The display panel 125 is configured to display an image corresponding to the first display data.
[0084] When data is transmitted between the first wireless communication module 112 and the second wireless communication module 122 using quantum communication technology, the transmission speed is faster and the security is higher.
[0085] In an embodiment of the present invention, the input event includes at least one of the following: a touch event, a key event;
[0086] The key event includes at least one of the following: an event in which the user presses the back key (Back), an event in which the user presses the return to main interface key (Home), an event in which the user presses the recent application key (Recent), an event in which the user presses the volume up key, and an event in which the user presses the volume down key.
[0087] In an exemplary embodiment, the back button, the return to main interface button, the enter recent applications button, the volume up button, and the volume down button are all virtual buttons, thereby not limiting the design of the terminal screen 120 .
[0088] In an exemplary instance, the first signal processing module 113 and the first wireless communication module 112 are located together at the top of the terminal body 110. Of course, the first signal processing module 113 can also be located at other positions of the terminal body 110. The embodiment of the present invention does not limit the specific position of the first signal processing module 113, and its specific position is not used to limit the protection scope of the embodiment of the present invention.
[0089] In an exemplary instance, the second signal processing module 123, the display driver 124, the display panel 125 and the second wireless communication module 122 are located together at the top of the terminal screen 120; of course, the second signal processing module 123, the display driver 124, and the display panel 125 can also be located at other positions of the terminal screen 120. The embodiment of the present invention does not limit the specific positions of the second signal processing module 123, the display driver 124, and the display panel 125, and their specific positions are not used to limit the protection scope of the embodiment of the present invention.
[0090] In an exemplary embodiment, when the first wireless communication module 112 transmits data to the second wireless communication module 122 through quantum communication technology, and the second wireless communication module 122 transmits data to the first wireless communication module 112 through wireless communication, as shown in FIG3( a ), the first signal processing module 113 includes: a main module 1131 , a pixel matrix modulation module 1132 , a quantum difference module 1133 , a quantum information source module 1134 , a quantum encoding module 1135 , and a quantum modulation module 1136 ;
[0091] As shown in FIG3( b ), the first wireless communication module 112 includes: an information receiving module 1121 and a quantum channel transmission module 1122 ;
[0092] The second signal processing module 123 includes: a detection module 1231, a quantum demodulation module 1232, a quantum decoding module 1233, a pixel matrix demodulation module 1234, and a display control module 1235;
[0093] The second wireless communication module 122 includes: an information sending module 1221 and a quantum channel receiving module 1222;
[0094] The detection module 1231 is configured to detect the predetermined event.
[0095] The information sending module 1221 is used to send the scheduled event;
[0096] The information receiving module 1121 is used to receive the predetermined event;
[0097] The main module 1131 is configured to process the predetermined event and generate first display data according to the processing result;
[0098] The pixel matrix modulation module 1132 is configured to encode the first display data to obtain a first pixel matrix;
[0099] The quantum difference module 1133 is configured to compare the second pixel matrix in the cache with the first pixel matrix to obtain first difference pixels, where each of the first difference pixels corresponds to position information identified in the first pixel matrix, and to package the first difference pixels into a first data frame; and to update the second pixel matrix in the cache to the first pixel matrix.
[0100] The quantum information source module 1134 is configured to convert the first data frame into a first quantum message;
[0101] The quantum encoding module 1135 is configured to convert the first quantum message into a first quantum bit;
[0102] The quantum modulation module 1136 is configured to convert the first quantum bit into first quantum information using a quantum state as a carrier;
[0103] The quantum channel transmission module 1122 is configured to send the first quantum information to the quantum channel receiving module;
[0104] The quantum channel receiving module 1222 is configured to receive the first quantum information;
[0105] The quantum demodulation module 1232 is configured to convert the first quantum information into the first quantum bit;
[0106] The quantum decoding module 1233 is used to decode the first quantum bit to obtain a first quantum message;
[0107] The pixel matrix demodulation module 1234 is configured to decode the first quantum message to obtain the first difference pixel;
[0108] The display control module 1235 is configured to update a current buffer frame according to the first difference pixel, send the updated buffer frame to a display driver, and drive the display panel to display an image corresponding to the buffer frame through the display driver.
[0109] For example, Figure 4 As shown, multiple quantum states are arranged to determine the value of a pixel source (i.e., the first display data and the second display data). When a pixel source is represented by four values: red, green, blue, and transparency, four quantum states are used to represent it. When a quantum state represents a single byte, a plane coordinate angle is used to identify the quantum state. When a quantum state represents two or more bytes, a three-dimensional coordinate angle is used to identify the quantum state. When the three-dimensional coordinate angle is insufficient to identify a quantum state, two or more quantum states can be used to identify the quantum state.
[0110] Figure 5 Schematic diagram of the embodiment of the present invention using plane coordinate angles to identify quantum states. Figure 5 As shown, one quantum state identifies a pixel source of one byte. One byte has 256 states, and one plane is 265 degrees. Therefore, each quantum state is identified at intervals of 1.4 degrees. When a quantum state is needed to identify a pixel source of more than two bytes, three-dimensional coordinates are used for identification.
[0111] In another embodiment of the present invention, after being started, the main module 1131 is further used to:
[0112] Initialize all modules. After all modules are initialized, generate the second display data of the startup interface;
[0113] The pixel matrix modulation module 1132 is further configured to: encode the second display data to obtain a third pixel matrix;
[0114] The quantum difference module 1133 is further configured to: compare the fourth pixel matrix in the cache with the third pixel matrix to obtain second difference pixels, where each of the second difference pixels corresponds to position information identified in the third pixel matrix, and package the second difference pixels into a second data frame; and update the fourth pixel matrix in the cache to the third pixel matrix.
[0115] The quantum information source module 1134 is further configured to: convert the second data frame into a second quantum message;
[0116] The quantum encoding module 1135 is further configured to: convert the second quantum message into a second quantum bit;
[0117] The quantum modulation module 1136 is further configured to convert the second quantum bit into second quantum information using a quantum state as a carrier;
[0118] The quantum channel transmission module 1122 is further configured to: send the second quantum information to the quantum channel receiving module;
[0119] The quantum channel receiving module 1222 is further configured to: receive the second quantum information;
[0120] The quantum demodulation module 1232 is further configured to: convert the second quantum information into the second quantum bit;
[0121] The quantum decoding module 1233 is further configured to: decode the second quantum bit to obtain a second quantum message;
[0122] The pixel matrix demodulation module 1234 is further configured to: decode the second quantum message to obtain the second difference pixel;
[0123] The display control module 1235 is further configured to update a current buffer frame according to the second difference pixel, send the updated buffer frame to a display driver, and drive the display panel to display an image corresponding to the buffer frame through the display driver.
[0124] In an exemplary embodiment, the terminal body 110 further includes a start button. When the user presses the start button, the battery 1111 starts working to supply power to the terminal body 110 and the terminal screen 120, and the main module 1131 starts. Figure 7 As shown, when the user starts to use the terminal, the expanded mode is turned on, the terminal body is placed in the user's pocket or not far from the user, and the user directly operates the screen. During use, the terminal body transmits display data to the terminal screen, and the terminal screen transmits scheduled events to the terminal body in real time, and the user is completely unaware of the terminal body; when the user does not need to use the terminal, the closed and folded mode is presented, and the terminal screen is folded or curled up and adsorbed on the terminal body.
[0125] In this embodiment of the present invention, the main module 1131 is specifically configured to initialize all modules in the following manner:
[0126] Starting other modules of the terminal body and establishing a communication channel with the information receiving module 1121; initializing the pixel matrix modulation module 1132 and establishing a communication channel with the pixel matrix modulation module 1132; receiving a display event and sending the display event to the pixel matrix modulation module 1132;
[0127] The information receiving module 1121 is further used to: negotiate the communication mode and communication format with the information sending module 1221; receive display events, and send the display events to the main module; wherein the communication mode is preferably Bluetooth communication mode;
[0128] The information sending module 1221 is further configured to: negotiate a communication method and format with the information receiving module 1121; send a display event to the information receiving module 1121 based on the hardware information of the display panel, wherein the display event includes a coding format of a pixel source; for example, red, green, blue, and transparency are used to represent each type, with one bit representing each type;
[0129] The pixel matrix modulation module 1132 is further configured to initialize the coding scheme according to the coding format.
[0130] In one exemplary embodiment, the communication format between the information sending module and the information receiving module is primarily determined by the following factors: event type (input event, display event, screen folding event, etc.), touch event precision, event accuracy, and the number of event attributes. For example, if the screen size is 1920×1080, a touch event has two attributes: coordinate X and coordinate Y, with a precision of four decimal places. A key event has one attribute, Code, which represents the key status. Therefore, the communication format is determined as: packet header + total packet length + check digit + event type + touch event (2×9 bits, where bits 1–4 represent information before the decimal point, bit 5 represents the decimal point, and bits 6–9 represent four decimal places) + key event (1 bit; if one bit is insufficient to represent all keyboard states, two or more bits are used). Of course, the communication format is not limited to the formats listed above; any pre-agreed format is acceptable, and this is not a limitation of the present invention.
[0131] In another exemplary instance, when the first wireless communication module 112 transmits data to the second wireless communication module 122 via wireless communication, and the second wireless communication module 122 transmits data to the first wireless communication module 112 via wireless communication, the first wireless communication module 112 includes an information receiving module 1121 and an information sending module (not shown in the figure, different from the information sending module 1221 in the second wireless communication module 122), and the first signal processing module 113 only includes the main module 1131; the second wireless communication module 122 includes an information sending module 1221 and an information receiving module (not shown in the figure, different from the information receiving module 1121 in the first wireless communication module 112), and the second signal processing module 123 only includes the detection module 1231.
[0132] In an exemplary instance, the first signal processing module and the first wireless communication module are implemented by a first processor and a first computer-readable storage medium. The first computer-readable storage medium stores a first instruction. When the first instruction is executed by the first processor, the functions of the main module, the pixel matrix modulation module, the quantum difference module, the quantum information source module, the quantum coding module, the quantum modulation module, the information receiving module and the quantum channel transmission module are implemented.
[0133] The second signal processing module and the second wireless communication module are implemented by a second processor and a second computer-readable storage medium. The second computer-readable storage medium stores a second instruction. When the second instruction is executed by the second processor, the functions of the detection module, the quantum demodulation module, the quantum decoding module, the pixel matrix demodulation module, the display control module, the information sending module and the quantum channel receiving module are implemented.
[0134] Another embodiment of the present invention provides a terminal body, such as Figure 1 As shown, the terminal body 110 and the terminal screen are independent of each other.
[0135] The terminal body 110 includes: a first power module 111 and a first wireless communication module 112;
[0136] The first power module 111 supplies power to the terminal body 110 through a battery and supplies power to the terminal screen 120 through wireless charging technology; alternatively, the first wireless charging source supplies power to the terminal body 110 and the terminal screen 120 based on wireless charging technology;
[0137] The first wireless communication module 112 and the terminal screen 120 communicate with each other through at least one of the following: wireless communication method and quantum communication technology.
[0138] The embodiments of the present invention completely separate the terminal body and the terminal screen based on wireless charging technology, wireless communication mode or quantum communication technology, thereby eliminating the dependence between the terminal body and the terminal screen, and the two parties no longer serve as bottlenecks to each other. Through wireless charging technology, the power supply demand of the terminal screen is met, thereby solving the power supply problem of the terminal screen; and, the terminal screen can adopt a flexible display panel to achieve folding or bending at any angle, and is no longer restricted by the terminal body, thereby improving the flexibility of production or use, and the terminal body can also be designed into any shape, and the length, width and height are no longer restricted by the terminal screen, which brings greater flexibility to the design of other components, and the weight of the terminal body does not need to be considered too much; and, the terminal body and the terminal screen are completely separated, and the user can only operate the terminal screen, and the terminal body can be placed on the body or somewhere else nearby, thereby freeing the user's hands.
[0139] In one illustrative example, Figure 1 As shown, the first power module 111 is located at the bottom of the terminal body 110, and the first wireless communication module 112 is located at the top of the terminal body 110; of course, the first power module 111 and the first wireless communication module 112 may also be located at other positions of the terminal body 110. The embodiment of the present invention does not limit the specific positions of the first power module 111 and the first wireless communication module 112, and their specific positions are not used to limit the protection scope of the embodiment of the present invention.
[0140] In the embodiment of the present invention, the terminal body 110 may be powered by any of the following methods.
[0141] (1) The first power module 111 of the terminal body 110 supplies power to the terminal body 110 through a battery.
[0142] As shown in FIG2( a ), the first power module 111 includes: a battery 1111 , a first coil module 1112 , and a first wireless transmitting chip 1113 ;
[0143] The battery 1111 is used to supply power to the terminal body 110 and drive the coil module 1112 to generate a first current energy;
[0144] The first wireless transmitting chip 1113 is configured to transmit the first current energy.
[0145] In an exemplary embodiment, as shown in FIG2( a ), the first coil module 1112 may be located below the battery 1111 and the first wireless transmitter chip 1113 . Of course, the first coil module 1112 , the battery 1111 , and the first wireless transmitter chip 1113 may also be located in other positions, which is not limited in this embodiment of the present invention.
[0146] In the embodiment of the present invention, the battery 1111 can be charged by a wired charging source or a second wireless charging source (not shown in the figure).
[0147] In an exemplary embodiment, as shown in FIG2( c ), when the battery 1111 is charged by a second wireless charging source (not shown in the figure), the second wireless charging source includes: a second coil module and a second wireless transmitting chip; the first power module 111 further includes: a second wireless receiving chip 1114;
[0148] The second coil module is used to generate second current energy;
[0149] The second wireless transmitting chip is used to send the second current energy;
[0150] The second wireless receiving chip 1114 is configured to receive the second current energy and transmit the second current energy to the first coil module 1112;
[0151] The first coil module 1112 is further configured to charge the battery according to the second current energy.
[0152] In another exemplary embodiment, as shown in FIG2( d ), when the battery 1111 is charged by a second wireless charging source, the second wireless charging source includes: a second coil module and a second wireless transmitting chip; the first power module 111 further includes: a second wireless receiving chip 1114 and a second transmitting coil 1115;
[0153] The second coil module is used to generate second current energy;
[0154] The second wireless transmitting chip is used to send the second current energy;
[0155] The second wireless receiving chip 1114 is configured to receive the second current energy and transmit the second current energy to the second transmitting coil;
[0156] The second transmission coil 1115 is configured to charge the battery according to the second current energy.
[0157] In this method, the terminal body 110 powers itself through the battery 1111, thereby solving its own power supply problem, and powers the terminal screen 120 through wireless charging technology, thereby solving the power supply problem of the terminal screen 120.
[0158] (2) The first wireless charging source supplies power to the terminal body 110 based on wireless charging technology.
[0159] As shown in FIG2(e), when the first wireless charging source powers the terminal body 110 and the terminal screen 120 through wireless charging technology, the first wireless charging source includes: a third coil module and a third wireless transmitting chip; the first power module 111 includes: a third transmitting coil 1117 and a third wireless receiving chip 1116;
[0160] The third coil module is used to generate a third current energy;
[0161] The third wireless transmitting chip is used to send the third current energy;
[0162] The third wireless receiving chip 1116 is configured to receive the third current energy and transmit the third current energy to the third transmitting coil;
[0163] The third transmission coil 1117 is used to supply power to the terminal body according to the third current energy.
[0164] In this method, the first wireless charging source supplies power to the terminal body 110 based on wireless charging technology, thereby solving the power supply problem of the terminal body 110 .
[0165] In an exemplary embodiment, the wireless communication method includes any one of the following: Bluetooth, high-frequency sound, etc. For example, Figure 6 As shown, a high-frequency acoustic cosine function can be used as a communication medium. Different periods identify different states. To resist interference, each time a state is transmitted, it can be repeated N times, for example, 16 times or 32 times.
[0166] In another embodiment of the present invention, the terminal body 110 further includes: a first signal processing module 113;
[0167] The first wireless communication module 112 is configured to receive a predetermined event via wireless communication; and transmit first display data to the terminal screen 120 via wireless communication or quantum communication technology; wherein the predetermined event includes at least one of the following: an input event and a screen folding event;
[0168] The first signal processing module 113 is configured to process a predetermined event and generate first display data according to the processing result.
[0169] When data is transmitted between the first wireless communication module 112 and the second wireless communication module 122 using quantum communication technology, the transmission speed is faster and the security is higher.
[0170] In an embodiment of the present invention, the input event includes at least one of the following: a touch event, a key event;
[0171] The key event includes at least one of the following: an event in which the user presses the back key (Back), an event in which the user presses the return to main interface key (Home), an event in which the user presses the recent application key (Recent), an event in which the user presses the volume up key, and an event in which the user presses the volume down key.
[0172] In an exemplary embodiment, the back button, the return to main interface button, the enter recent applications button, the volume up button, and the volume down button are all virtual buttons, thereby not limiting the design of the terminal screen 120 .
[0173] In an exemplary instance, the first signal processing module 113 and the first wireless communication module 112 are located together at the top of the terminal body 110. Of course, the first signal processing module 113 can also be located at other positions of the terminal body 110. The embodiment of the present invention does not limit the specific position of the first signal processing module 113, and its specific position is not used to limit the protection scope of the embodiment of the present invention.
[0174] In an exemplary embodiment, when the first wireless communication module 112 transmits data to the second wireless communication module 122 through quantum communication technology, as shown in FIG3( a ), the first signal processing module 113 includes: a main module 1131 , a pixel matrix modulation module 1132 , a quantum difference module 1133 , a quantum information source module 1134 , a quantum encoding module 1135 , and a quantum modulation module 1136 ;
[0175] The information receiving module 1121 is configured to receive the predetermined event;
[0176] The main module 1131 is configured to process the predetermined event and generate first display data according to the processing result;
[0177] The pixel matrix modulation module 1132 is configured to encode the first display data to obtain a first pixel matrix;
[0178] The quantum difference module 1133 is configured to compare the second pixel matrix in the cache with the first pixel matrix to obtain first difference pixels, where each of the first difference pixels corresponds to position information identified in the first pixel matrix, and to package the first difference pixels into a first data frame; and to update the second pixel matrix in the cache to the first pixel matrix.
[0179] The quantum information source module 1134 is configured to convert the first data frame into a first quantum message;
[0180] The quantum encoding module 1135 is configured to convert the first quantum message into a first quantum bit;
[0181] The quantum modulation module 1136 is configured to convert the first quantum bit into first quantum information using a quantum state as a carrier;
[0182] The quantum channel transmission module 1122 is configured to send the first quantum information to the quantum channel receiving module.
[0183] For example, Figure 4As shown, multiple quantum states are arranged to determine the value of a pixel source (i.e., the first display data and the second display data). When a pixel source is represented by four values: red, green, blue, and transparency, four quantum states are used to represent it. When a quantum state represents a single byte, a plane coordinate angle is used to identify the quantum state. When a quantum state represents two or more bytes, a three-dimensional coordinate angle is used to identify the quantum state. When the three-dimensional coordinate angle is insufficient to identify a quantum state, two or more quantum states can be used to identify the quantum state.
[0184] Figure 5 Schematic diagram of the embodiment of the present invention using plane coordinate angles to identify quantum states. Figure 5 As shown, one quantum state identifies a pixel source of one byte. One byte has 256 states, and one plane is 265 degrees. Therefore, each quantum state is identified at intervals of 1.4 degrees. When a quantum state is needed to identify a pixel source of more than two bytes, three-dimensional coordinates are used for identification.
[0185] In another embodiment of the present invention, after being started, the main module 1131 is further used to:
[0186] Initialize all modules. After all modules are initialized, generate the second display data of the startup interface;
[0187] The pixel matrix modulation module 1132 is further configured to: encode the second display data to obtain a third pixel matrix;
[0188] The quantum difference module 1133 is further configured to: compare the fourth pixel matrix in the cache with the third pixel matrix to obtain second difference pixels, where each of the second difference pixels corresponds to position information identified in the third pixel matrix, and package the second difference pixels into a second data frame; and update the fourth pixel matrix in the cache to the third pixel matrix.
[0189] The quantum information source module 1134 is further configured to: convert the second data frame into a second quantum message;
[0190] The quantum encoding module 1135 is further configured to: convert the second quantum message into a second quantum bit;
[0191] The quantum modulation module 1136 is further configured to convert the second quantum bit into second quantum information using a quantum state as a carrier;
[0192] The quantum channel transmission module 1122 is further configured to send the second quantum information to the quantum channel receiving module.
[0193] In an exemplary embodiment, the terminal body 110 further includes a start button. When the user presses the start button, the battery 1111 starts working to supply power to the terminal body 110 and the terminal screen 120, and the main module 1131 starts. Figure 7 As shown, when the user starts to use the terminal, the expanded mode is turned on, the terminal body is placed in the user's pocket or not far from the user, and the user directly operates the screen. During use, the terminal body transmits display data to the terminal screen, and the terminal screen transmits scheduled events to the terminal body in real time, and the user is completely unaware of the terminal body; when the user does not need to use the terminal, the closed and folded mode is presented, and the terminal screen is folded or curled up and adsorbed on the terminal body.
[0194] In the embodiment of the present invention, the main module 1131 is specifically configured to initialize all modules in the following manner:
[0195] Starting other modules of the terminal body and establishing a communication channel with the information receiving module 1121; initializing the pixel matrix modulation module 1132 and establishing a communication channel with the pixel matrix modulation module 1132; receiving a display event and sending the display event to the pixel matrix modulation module 1132;
[0196] The information receiving module 1121 is further used to: negotiate the communication mode and communication format with the information sending module 1221; receive display events, and send the display events to the main module; wherein the communication mode is preferably Bluetooth communication mode;
[0197] The information sending module 1221 is further configured to: negotiate a communication method and format with the information receiving module 1121; send a display event to the information receiving module 1121 based on the hardware information of the display panel, wherein the display event includes a coding format of a pixel source; for example, red, green, blue, and transparency are used to represent each type, with one bit representing each type;
[0198] The pixel matrix modulation module 1132 is further configured to initialize the coding scheme according to the coding format.
[0199] In one exemplary embodiment, the communication format between the information sending module and the information receiving module is primarily determined by the following factors: event type (input event, display event, screen folding event, etc.), touch event precision, event accuracy, and the number of event attributes. For example, if the screen size is 1920×1080, a touch event has two attributes: coordinate X and coordinate Y, with a precision of four decimal places. A key event has one attribute, Code, which represents the key status. Therefore, the communication format is determined as: packet header + total packet length + check digit + event type + touch event (2×9 bits, where bits 1–4 represent information before the decimal point, bit 5 represents the decimal point, and bits 6–9 represent four decimal places) + key event (1 bit; if one bit is insufficient to represent all keyboard states, two or more bits are used). Of course, the communication format is not limited to the formats listed above; any pre-agreed format is acceptable, and this is not a limitation of the present invention.
[0200] In another exemplary instance, when the first wireless communication module 112 transmits data to the second wireless communication module 122 via wireless communication, and the second wireless communication module 122 transmits data to the first wireless communication module 112 via wireless communication, the first wireless communication module 112 includes an information receiving module 1121 and an information sending module (not shown in the figure, different from the information sending module 1221 in the second wireless communication module 122), and the first signal processing module 113 only includes the main module 1131.
[0201] In an exemplary instance, the first signal processing module and the first wireless communication module are implemented by a first processor and a first computer-readable storage medium. The first computer-readable storage medium stores a first instruction. When the first instruction is executed by the first processor, the functions of the main module, the pixel matrix modulation module, the quantum difference module, the quantum information source module, the quantum coding module, the quantum modulation module, the information receiving module and the quantum channel transmission module are implemented.
[0202] Another embodiment of the present invention provides a terminal screen, such as Figure 1 As shown, the terminal screen 120 and the terminal body 110 are independent of each other;
[0203] The terminal screen 120 includes: a second power supply module 121 and a second wireless communication module 122;
[0204] The terminal body 110 supplies power to the terminal screen 120 through wireless charging technology; or, the first wireless charging source supplies power to the terminal screen 120 based on wireless charging technology;
[0205] The terminal body 110 and the second wireless communication module 122 communicate with each other through at least one of the following: wireless communication method and quantum communication technology.
[0206] The embodiments of the present invention completely separate the terminal body and the terminal screen based on wireless charging technology, wireless communication mode or quantum communication technology, thereby eliminating the dependence between the terminal body and the terminal screen, and the two parties no longer serve as bottlenecks to each other. Through wireless charging technology, the power supply demand of the terminal screen is met, thereby solving the power supply problem of the terminal screen; and, the terminal screen can adopt a flexible display panel to achieve folding or bending at any angle, and is no longer restricted by the terminal body, thereby improving the flexibility of production or use, and the terminal body can also be designed into any shape, and the length, width and height are no longer restricted by the terminal screen, which brings greater flexibility to the design of other components, and the weight of the terminal body does not need to be considered too much; and, the terminal body and the terminal screen are completely separated, and the user can only operate the terminal screen, and the terminal body can be placed on the body or somewhere else nearby, thereby freeing the user's hands.
[0207] In one illustrative example, Figure 1 As shown, the second power module 121 is located at the bottom of the terminal screen 120, and the second wireless communication module 122 is located at the top of the terminal screen 120; of course, the second power module 121 and the second wireless communication module 122 may also be located at other positions of the terminal screen 120. The embodiment of the present invention does not limit the specific positions of the second power module 121 and the second wireless communication module 122, and their specific positions are not used to limit the protection scope of the embodiment of the present invention.
[0208] In the embodiment of the present invention, the terminal screen 120 may be powered by any of the following methods.
[0209] (1) The terminal body 110 supplies power to the terminal screen 120 based on wireless charging technology.
[0210] As shown in FIG2(a), the first power module 111 includes: a battery 1111, a first coil module 1112, and a first wireless transmitting chip 1113; as shown in FIG2(b), the second power module 121 includes: a first transmitting coil 1211 and a first wireless receiving chip 1212;
[0211] The battery 1111 is used to supply power to the terminal body 110 and drive the coil module 1112 to generate a first current energy;
[0212] The first wireless transmitting chip 1113 is configured to transmit the first current energy;
[0213] The first wireless receiving chip 1212 is configured to receive the first current energy and transmit the first current energy to the first transmitting coil 1211;
[0214] The first transmission coil 1211 is used to supply power to the terminal screen according to the first current energy.
[0215] In an exemplary embodiment, as shown in FIG2( a ), the first coil module 1112 may be located below the battery 1111 and the first wireless transmitter chip 1113 . Of course, the first coil module 1112 , the battery 1111 , and the first wireless transmitter chip 1113 may also be located in other positions, which is not limited in this embodiment of the present invention.
[0216] In the embodiment of the present invention, the battery 1111 can be charged by a wired charging source or a second wireless charging source (not shown in the figure).
[0217] In an exemplary embodiment, as shown in FIG2( c ), when the battery 1111 is charged by a second wireless charging source (not shown in the figure), the second wireless charging source includes: a second coil module and a second wireless transmitting chip; the first power module 111 further includes: a second wireless receiving chip 1114;
[0218] The second coil module is used to generate second current energy;
[0219] The second wireless transmitting chip is used to send the second current energy;
[0220] The second wireless receiving chip 1114 is configured to receive the second current energy and transmit the second current energy to the first coil module 1112;
[0221] The first coil module 1112 is further configured to charge the battery according to the second current energy.
[0222] In another exemplary embodiment, as shown in FIG2( d ), when the battery 1111 is charged by a second wireless charging source, the second wireless charging source includes: a second coil module and a second wireless transmitting chip; the first power module 111 further includes: a second wireless receiving chip 1114 and a second transmitting coil 1115;
[0223] The second coil module is used to generate second current energy;
[0224] The second wireless transmitting chip is used to send the second current energy;
[0225] The second wireless receiving chip 1114 is configured to receive the second current energy and transmit the second current energy to the second transmitting coil;
[0226] The second transmission coil 1115 is configured to charge the battery according to the second current energy.
[0227] In this method, the terminal body 110 powers itself through the battery 1111, thereby solving its own power supply problem, and powers the terminal screen 120 through wireless charging technology, thereby solving the power supply problem of the terminal screen 120.
[0228] (2) The first wireless charging source supplies power to the terminal screen 120 based on wireless charging technology.
[0229] As shown in FIG2(e), when the first wireless charging source powers the terminal screen 120 through wireless charging technology, the first wireless charging source includes: a third coil module and a third wireless transmitting chip; the second power supply module 121 includes: a first transmitting coil 1211 and a first wireless receiving chip 1212;
[0230] The third coil module is used to generate a third current energy;
[0231] The third wireless transmitting chip is used to send the third current energy;
[0232] The first wireless receiving chip 1212 is configured to receive the third current energy and transmit the third current energy to the first transmitting coil;
[0233] The first transmission coil 211 is used to supply power to the terminal screen according to the third current energy.
[0234] In this method, the first wireless charging source supplies power to the terminal screen 120 based on wireless charging technology, thereby solving the power supply problem of the terminal screen 120 .
[0235] In an exemplary embodiment, the wireless communication method includes any one of the following: Bluetooth, high-frequency sound, etc. For example, Figure 6 As shown, a high-frequency acoustic cosine function can be used as a communication medium. Different periods identify different states. To resist interference, each time a state is transmitted, it can be repeated N times, for example, 16 times or 32 times.
[0236] In another embodiment of the present invention, the terminal screen 120 further includes: a second signal processing module 123, a display driver 124 and a display panel 125;
[0237] The second signal processing module 123 is configured to detect a predetermined event;
[0238] The second wireless communication module 122 is configured to send a predetermined event to the terminal body via wireless communication; and receive the first display data via wireless communication or quantum communication technology;
[0239] The display driver 124 is configured to drive the display panel 125 to display an image corresponding to the first display data;
[0240] The display panel 125 is configured to display an image corresponding to the first display data.
[0241] When data is transmitted between the first wireless communication module 112 and the second wireless communication module 122 using quantum communication technology, the transmission speed is faster and the security is higher.
[0242] In an embodiment of the present invention, the input event includes at least one of the following: a touch event, a key event;
[0243] The key event includes at least one of the following: an event in which the user presses the back key (Back), an event in which the user presses the return to main interface key (Home), an event in which the user presses the recent application key (Recent), an event in which the user presses the volume up key, and an event in which the user presses the volume down key.
[0244] In an exemplary embodiment, the back button, the return to main interface button, the enter recent applications button, the volume up button, and the volume down button are all virtual buttons, thereby not limiting the design of the terminal screen 120 .
[0245] In an exemplary instance, the second signal processing module 123, the display driver 124, the display panel 125 and the second wireless communication module 122 are located together at the top of the terminal screen 120; of course, the second signal processing module 123, the display driver 124, and the display panel 125 can also be located at other positions of the terminal screen 120. The embodiment of the present invention does not limit the specific positions of the second signal processing module 123, the display driver 124, and the display panel 125, and their specific positions are not used to limit the protection scope of the embodiment of the present invention.
[0246] In an exemplary embodiment, when the first wireless communication module 112 transmits data to the second wireless communication module 122 through quantum communication technology, and the second wireless communication module 122 transmits data to the first wireless communication module 112 through wireless communication, as shown in FIG3( b ), the first wireless communication module 112 includes: an information receiving module 1121 and a quantum channel transmission module 1122;
[0247] The second signal processing module 123 includes: a detection module 1231, a quantum demodulation module 1232, a quantum decoding module 1233, a pixel matrix demodulation module 1234, and a display control module 1235;
[0248] The second wireless communication module 122 includes: an information sending module 1221 and a quantum channel receiving module 1222;
[0249] The detection module 1231 is configured to detect the predetermined event.
[0250] The information sending module 1221 is used to send the scheduled event;
[0251] The quantum channel receiving module 1222 is configured to receive the first quantum information;
[0252] The quantum demodulation module 1232 is configured to convert the first quantum information into the first quantum bit;
[0253] The quantum decoding module 1233 is used to decode the first quantum bit to obtain a first quantum message;
[0254] The pixel matrix demodulation module 1234 is configured to decode the first quantum message to obtain the first difference pixel;
[0255] The display control module 1235 is configured to update a current buffer frame according to the first difference pixel, send the updated buffer frame to a display driver, and drive the display panel to display an image corresponding to the buffer frame through the display driver.
[0256] In another embodiment of the present invention, the quantum channel receiving module 1222 is further configured to: receive the second quantum information;
[0257] The quantum demodulation module 1232 is further configured to: convert the second quantum information into the second quantum bit;
[0258] The quantum decoding module 1233 is further configured to: decode the second quantum bit to obtain a second quantum message;
[0259] The pixel matrix demodulation module 1234 is further configured to: decode the second quantum message to obtain the second difference pixel;
[0260] The display control module 1235 is further configured to update a current buffer frame according to the second difference pixel, send the updated buffer frame to a display driver, and drive the display panel to display an image corresponding to the buffer frame through the display driver.
[0261] In another exemplary instance, when the first wireless communication module 112 transmits data to the second wireless communication module 122 via wireless communication, and the second wireless communication module 122 transmits data to the first wireless communication module 112 via wireless communication, the second wireless communication module 122 includes an information sending module 1221 and an information receiving module (not shown in the figure, different from the information receiving module 1121 in the first wireless communication module 112), and the second signal processing module 123 only includes a detection module 1231.
[0262] In an exemplary embodiment, the second signal processing module and the second wireless communication module are implemented by a second processor and a second computer-readable storage medium, and the second computer-readable storage medium stores a second instruction. When the second instruction is executed by the second processor, the functions of the detection module, the quantum demodulation module, the quantum decoding module, the pixel matrix demodulation module, the display control module, the information sending module and the quantum channel receiving module are implemented.
[0263] It will be appreciated by those skilled in the art that all or some of the steps, systems, and functional modules / units in the methods disclosed above may be implemented as software, firmware, hardware, and appropriate combinations thereof. In hardware implementations, the division between the functional modules / units mentioned in the above description does not necessarily correspond to the division of physical components; for example, a physical component may have multiple functions, or a function or step may be performed by several physical components in cooperation. Some or all components may be implemented as software executed by a processor, such as a digital signal processor or a microprocessor, or implemented as hardware, or implemented as an integrated circuit, such as an application-specific integrated circuit. Such software may be distributed on a computer-readable medium, which may include a computer storage medium (or non-transitory medium) and a communication medium (or temporary medium). As is well known to those skilled in the art, the term computer storage medium includes volatile and non-volatile, removable, and non-removable media implemented in any method or technology for storing information (such as computer-readable instructions, data structures, program modules, or other data). Computer storage media include, but are not limited to, RAM, ROM, EEPROM, flash memory or other memory technology, CD-ROM, digital versatile disks (DVD) or other optical disk storage, magnetic cassettes, magnetic tape, magnetic disk storage or other magnetic storage devices, or any other medium that can be used to store the desired information and can be accessed by a computer. In addition, it is well known to those skilled in the art that communication media generally embodies computer-readable instructions, data structures, program modules, or other data in a modulated data signal such as a carrier wave or other transport mechanism, and may include any information delivery media.
[0264] Although the embodiments disclosed in the embodiments of the present invention are as described above, the contents described are only embodiments adopted to facilitate understanding of the embodiments of the present invention and are not intended to limit the embodiments of the present invention. Any person skilled in the art in the field to which the embodiments of the present invention belong may make any modifications and changes in the form and details of the implementation without departing from the spirit and scope disclosed in the embodiments of the present invention. However, the scope of patent protection of the embodiments of the present invention shall still be based on the scope defined by the attached claims.
Claims
1. A terminal body, comprising: a first power supply module, a first wireless communication module, and a first signal processing module; The first wireless communication module is used to receive a predetermined event and send first display data to the terminal screen through quantum communication technology; The first wireless communication module includes: an information receiving module and a quantum channel transmission module; The first signal processing module is configured to process a predetermined event and generate first display data based on the processing result. The first signal processing module includes: a main module, a pixel matrix modulation module, a quantum difference module, a quantum information source module, a quantum coding module, and a quantum modulation module. The main module is configured to process the predetermined event and generate the first display data based on the processing result. The pixel matrix modulation module is configured to encode the first display data to obtain a first pixel matrix. The quantum difference module is configured to compare a second pixel matrix in a cache with the first pixel matrix to obtain first difference pixels, each of which corresponds to position information identified in the first pixel matrix, and to package the first difference pixels into a first data frame. The second pixel matrix in the cache is updated to the first pixel matrix. The quantum information source module is configured to convert the first data frame into a first quantum message. The quantum coding module is configured to convert the first quantum message into a first quantum bit. The quantum modulation module is configured to convert the first quantum bit into first quantum information using a quantum state as a carrier. The quantum channel transmission module is configured to send the first quantum information to the quantum channel receiving module in the terminal screen.
2. The terminal body according to claim 1, characterized in that: The first power module supplies power to the terminal body through a battery and supplies power to the terminal screen through wireless charging technology. The first power module includes: a battery, a first coil module, and a first wireless transmission chip; The battery is used to power the terminal body and drive the first coil module to generate the first current energy; The first wireless transmitting chip is used to send the first current energy.
3. The terminal body according to claim 2, characterized in that: The battery is charged via a wired charging source or a second wireless charging source.
4. The terminal body according to claim 2, characterized in that: When the battery is charged by a second wireless charging source, the first power module further includes: a second wireless receiving chip; The second wireless receiving chip is configured to receive the second current energy sent by the second wireless charging source and transmit the second current energy to the first coil module; The first coil module is further used to charge the battery according to the second current energy.
5. The terminal body according to claim 2, characterized in that: When the battery is charged by a second wireless charging source, the first power module further comprises: a second wireless receiving chip and a second transmitting coil; The second wireless receiving chip is configured to receive the second current energy sent by the second wireless charging source and transmit the second current energy to the second transmitting coil; The second transmission coil is used to charge the battery according to the second current energy.
6. The terminal body according to claim 1, characterized in that: When the first wireless charging source supplies power to the terminal body and the terminal screen through wireless charging technology, the first power module includes: a third transmission coil and a third wireless receiving chip; The third wireless receiving chip is configured to receive the third current energy sent by the first wireless charging source and transmit the third current energy to the third transmitting coil; The third transmission coil is used to supply power to the terminal body according to the third current energy.
7. The terminal body according to claim 1, characterized in that: in, The predetermined event includes at least one of the following: an input event, a screen folding event; The input event includes at least one of the following: a touch event, a key event; The key event includes at least one of the following: an event in which a user presses a return key, an event in which a user presses a return to main interface key, an event in which a user presses an enter recent application key, an event in which a user presses a volume increase key, and an event in which a user presses a volume decrease key.
8. The terminal body according to claim 1, wherein: After the main module is started, it is also used to: Initialize all modules. After all modules are initialized, generate the second display data of the startup interface; The pixel matrix modulation module is further used to: encode the second display data to obtain a third pixel matrix; The quantum difference module is further configured to: compare the fourth pixel matrix in the cache with the third pixel matrix to obtain second difference pixels, each of the second difference pixels corresponding to position information identified in the third pixel matrix, and package the second difference pixels into a second data frame; and update the fourth pixel matrix in the cache to the third pixel matrix; The quantum information source module is further used to: convert the second data frame into a second quantum message; The quantum encoding module is further configured to: convert the second quantum message into a second quantum bit; The quantum modulation module is further used to: convert the second quantum bit into second quantum information using quantum state as a carrier; The quantum channel transmission module is further configured to send the second quantum information to the quantum channel receiving module.
9. The terminal body according to claim 8, characterized in that: in, The main module is specifically used to initialize all modules in the following way: Starting other modules of the terminal body, establishing a communication channel with the information receiving module; establishing a communication channel with the pixel matrix modulation module; receiving a display event, and sending the display event to the pixel matrix modulation module; The information receiving module is further used to: negotiate the communication mode and communication format with the information sending module in the terminal screen; receive display events, and send the display events to the main module; The information sending module is further configured to: negotiate a communication method and format with the information receiving module; send a display event to the information receiving module based on the hardware information of the display panel, wherein the display event includes an encoding format of a pixel source; The pixel matrix modulation module is further used to initialize the coding scheme according to the coding format.
10. The terminal body according to claim 1, characterized in that: in, The first wireless communication module is used to receive the predetermined event via wireless communication, and the wireless communication method includes any one of the following: Bluetooth, high-frequency sound.
11. A first computer-readable storage medium, characterized in that: A first instruction is stored, and is used to implement the first signal processing module and the first wireless communication module in the terminal body according to any one of claims 1 to 10 when the first instruction is executed by the first processor, so as to implement the functions of the main module, the pixel matrix modulation module, the quantum difference module, the quantum information source module, the quantum coding module, the quantum modulation module, the information receiving module and the quantum channel transmission module in the first signal processing module and the first wireless communication module.
12. A terminal screen, comprising: A second power supply module, a second wireless communication module, a second signal processing module, a display driver and a display panel; The second wireless communication module includes: an information sending module and a quantum channel receiving module; The second wireless communication module is used to send a predetermined event to the terminal body; and receive the first display data sent by the terminal body through quantum communication technology; The second signal processing module is used to detect a predetermined event, wherein the second signal processing module includes: a detection module, a quantum demodulation module, a quantum decoding module, a pixel matrix demodulation module, and a display control module; the detection module is used to detect the predetermined event; the quantum demodulation module is used to convert the first quantum information into the first quantum bit; the quantum decoding module is used to decode the first quantum bit to obtain a first quantum message; the pixel matrix demodulation module is used to decode the first quantum message to obtain a first difference pixel; the display control module is used to update the current buffer frame according to the first difference pixel, send the updated buffer frame to the display driver, and drive the display panel to display the image corresponding to the buffer frame through the display driver; The display driver is configured to drive the display panel to display an image corresponding to the first display data; The display panel is used to display an image corresponding to the first display data.
13. The terminal screen according to claim 12, characterized in that: The second power supply module includes: a first transmission coil and a first wireless receiving chip; The first wireless receiving chip is configured to receive the first current energy sent by the terminal body or the third current energy sent by the first wireless charging source, and transmit the first current energy or the third current energy to the first transmitting coil; The first transmission coil is used to supply power to the terminal screen according to the first current energy or the third current energy.
14. The terminal screen according to claim 12, characterized in that: in, The predetermined event includes at least one of the following: an input event, a screen folding event; The input event includes at least one of the following: a touch event, a key event; The key event includes at least one of the following: an event in which a user presses a return key, an event in which a user presses a return to main interface key, an event in which a user presses an enter recent application key, an event in which a user presses a volume increase key, and an event in which a user presses a volume decrease key.
15. The terminal screen according to claim 12, characterized in that: The quantum channel receiving module is further configured to: receive second quantum information; The quantum demodulation module is further used to: convert the second quantum information into a second quantum bit; The quantum decoding module is further configured to: decode the second quantum bit to obtain a second quantum message; The pixel matrix demodulation module is further used to: decode the second quantum message to obtain a second difference pixel; The display control module is further configured to update a current buffer frame according to the second difference pixel, send the updated buffer frame to a display driver, and drive the display panel to display an image corresponding to the buffer frame through the display driver.
16. The terminal screen according to claim 12, characterized in that: in, The second wireless communication module is used to send the predetermined event to the terminal body via wireless communication, and the wireless communication method includes any one of the following: Bluetooth, high-frequency sound.
17. A second computer-readable storage medium, characterized in that: A second instruction is stored, which is used to implement the second signal processing module and the second wireless communication module in the terminal screen according to any one of claims 12 to 16 when the second instruction is executed by the second processor, so as to implement the functions of the detection module, the quantum demodulation module, the quantum decoding module, the pixel matrix demodulation module, the display control module, the information sending module and the quantum channel receiving module in the second signal processing module and the second wireless communication module.
18. A terminal comprising: The terminal body according to any one of claims 1 to 11 and the terminal screen according to any one of claims 12 to 16, wherein the terminal body and the terminal screen are independent of each other.
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