Equipment shell appearance display method and related device
By acquiring and fusing environment, status and user preference data, and controlling electrochromic and nanostructure modules, the problem of single appearance color selection of mobile phone housing is solved, and personalized and environmentally adaptable display effects are achieved.
Patent Information
- Application Number
- CN202510533192.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-25
- Publication Date
- 2025-07-22
AI Technical Summary
The appearance and color of the existing mobile phone case is single, making it difficult to adjust in real time according to the environment, situation or personal preferences.
The control system of the electronic device obtains environmental data, status data and user settings preference data, performs multi-dimensional data fusion, and controls the electrochromic module and nanostructure module to make the appearance of the shell present a personalized display effect.
It realizes flexibility and personalized display of the appearance of the mobile phone case, and dynamic adjustments that meet the environment and user needs.
Smart Images

Figure CN120353067A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of data processing, and in particular, to a method for displaying the appearance of a device housing and related devices. Background Art
[0002] Currently, the appearance of mobile phone casings on the market mainly presents a single color or a few fixed color options. When most mobile phone brands launch new products, they usually offer limited color options, which generally include classic colors such as black, white, gold, silver, etc., or are limited to several different appearance color variations.
[0003] With the diversification of the consumer market and user needs, more and more users have higher requirements for the appearance of mobile phone casings. They not only hope that the mobile phone can conform to personal aesthetics but also expect to customize the color of the mobile phone appearance according to personal preferences or different usage scenarios. However, most mobile phone designs on the market still remain at the stage of single or limited color options, and it is difficult for users to adjust the color of the mobile phone appearance in real time according to the environment, situation, or personal preferences. Summary of the Invention
[0004] This application provides a method for displaying the appearance of a device housing and related devices, which can improve the flexibility of the appearance setting of the electronic device, so that the appearance of the device housing presents a display effect that conforms to the environment, device state, and user personalization.
[0005] One technical solution adopted by this application is: to provide a method for displaying the appearance of a device housing, and the method for displaying the appearance of the device housing includes:
[0006] The control system of the electronic device responds to the appearance setting instruction, and obtains environment data, state data, and user setting preference data;
[0007] Fuse the environment data, the state data, and the user setting preference data to obtain appearance setting data;
[0008] According to the appearance setting data, control the electrochromic module and the nanostructure module in the housing of the electronic device, so that the appearance of the housing of the electronic device presents a corresponding display effect.
[0009] In some embodiments, the step of controlling the electrochromic module and the nanostructure module in the housing of the electronic device according to the appearance setting data, so that the appearance of the housing of the electronic device presents a corresponding display effect, includes:
[0010] According to the appearance setting data, control the electrical parameters of the electrochromic module, so that the optical properties of the electrochromic module change correspondingly;
[0011] According to the appearance setting data, control the electric field strength parameter and temperature parameter of the nanostructure module to change the surface plasmon resonance of the nanostructure module, so that the color of the nanostructure module changes correspondingly;
[0012] Based on the changed electrochromic module and nanostructure module, make the appearance of the housing of the electronic device present a corresponding display effect.
[0013] In some embodiments, the controlling the electrical parameters of the electrochromic module according to the appearance setting data includes:
[0014] Perform linear mapping and color model conversion on the appearance setting to generate a corresponding electrochromic control signal;
[0015] According to the electrochromic control signal, adjust at least one of the voltage, current, and pulse width modulation waveform of the electrochromic module.
[0016] In some embodiments, the controlling the electric field strength parameter and temperature parameter of the nanostructure module according to the appearance setting data includes:
[0017] Convert the appearance setting data into an electrical control signal and a heat control signal;
[0018] According to the electrical control signal, adjust the electric field strength applied to the nanostructure module through a voltage regulator or a current source; and, according to the heat control signal, adjust the temperature of the nanostructure module through a heating element.
[0019] In some embodiments, after controlling the electrochromic module and the nanostructure module in the housing of the electronic device according to the appearance setting data so that the appearance of the housing of the electronic device presents a corresponding display effect, it includes:
[0020] Detect the color change of the electrochromic module to obtain a first detection result, and in response to a deviation between the first detection result and the user setting preference data, adjust the electrical parameters of the electrochromic module through a feedback mechanism;
[0021] Detect the electric field strength, temperature, and optical properties of the nanostructure module to obtain a second detection result, and in response to a deviation between the second detection result and the user setting preference data, adjust the electric field strength and temperature parameters through a feedback mechanism.
[0022] In some embodiments, the fusing the environmental data, the status data, and the user setting preference data to obtain appearance setting data includes:
[0023] Using a preset rule engine, make decisions and fusions on the environmental data, the status data, and the user-set preference data to obtain the appearance setting data.
[0024] In some embodiments, the fusing of the environmental data, the status data, and the user-set preference data to obtain the appearance setting data includes:
[0025] Input the environmental data, the status data, and the user-set preference data into a fusion model for processing to obtain the appearance setting data; wherein, the fusion model is trained by a self-supervised learning method or an unsupervised learning method.
[0026] Another technical solution adopted by this application is: to provide a display device for the appearance of a housing, the display device for the appearance of the housing includes:
[0027] An acquisition module, configured to, in response to an appearance setting instruction by the control system of an electronic device, acquire environmental data, status data, and user-set preference data;
[0028] A fusion module, configured to fuse the environmental data, the status data, and the user-set preference data to obtain appearance setting data;
[0029] A control module, configured to, according to the appearance setting data, control an electrochromic module and a nanostructure module in the housing of the electronic device, so that the appearance of the housing of the electronic device presents a corresponding display effect.
[0030] Another technical solution adopted by this application is: to provide an electronic device, the electronic device includes:
[0031] A memory, configured to store executable program code;
[0032] A processor, configured to call and run the executable program code from the memory, so that the electronic device executes the display method for the appearance of the device housing described in any one of the above.
[0033] Another technical solution adopted by this application is: to provide a computer-readable storage medium, the computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the display method for the appearance of the device housing described in any one of the above is implemented.
[0034] An embodiment of the present application provides a method for displaying the appearance of a device housing. The method for displaying the appearance of the device housing includes: in response to an appearance setting instruction through the control system of the electronic device, acquiring environmental data, status data, and user-set preference data; fusing the environmental data, the status data, and the user-set preference data to obtain appearance setting data; and controlling an electrochromic module and a nanostructure module in the housing of the electronic device according to the appearance setting data, so that the appearance of the housing of the electronic device presents a corresponding display effect. By the control system of the electronic device responding to the appearance setting instruction, acquiring environmental data, status data, and user-set preference data, and performing multi-dimensional data fusion, and controlling the electrochromic module and the nanostructure module in the housing of the electronic device according to the fused appearance setting data, the flexibility of the appearance setting of the housing of the electronic device is improved, so that the appearance of the housing of the device presents a display effect that conforms to the environment, the device status, and user personalization. BRIEF DESCRIPTION OF THE DRAWINGS
[0035] Figure 1 is a flowchart of the first embodiment of the method for displaying the appearance of the device housing of the present application;
[0036] Figure 2 is a flowchart of the second embodiment of the method for displaying the appearance of the device housing of the present application;
[0037] Figure 3 is a flowchart of the third embodiment of the method for displaying the appearance of the device housing of the present application;
[0038] Figure 4 is a flowchart of an exemplary scenario of the method for displaying the appearance of the device housing of the present application;
[0039] Figure 5 is a flowchart of the fourth embodiment of the method for displaying the appearance of the device housing of the present application;
[0040] Figure 6 is an exemplary structural block diagram of an electronic device of the method for displaying the appearance of the device housing of the present application;
[0041] Figure 7 is an exemplary structural block diagram of a computer-readable storage medium of the method for displaying the appearance of the device housing of the present application. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0042] The present application will be described in detail below with reference to the drawings and embodiments.
[0043] In some embodiments, please refer to Figure 1 , Figure 1It is a schematic flowchart of the first embodiment of the method for displaying the appearance of the device housing of the present application. It should be noted that if there are substantially the same results, the method of the present application is not limited to Figure 1 the process sequence shown. For example, Figure 1 as shown, the method for displaying the appearance of the device housing includes:
[0044] Step S101, the control system of the electronic device responds to the appearance setting instruction and obtains environmental data, status data, and user setting preference data;
[0045] As an exemplary example, the appearance setting instruction can be an instruction operated by the user on the application program of the electronic device, indicating that the user needs to adjust the appearance of the device housing. For example, the user can set the housing of the electronic device to automatically change color according to the current environment and / or adjust according to user preferences.
[0046] When the control system receives the appearance setting instruction, it can instruct the external sensors of the electronic device to collect environmental data. The environmental data can be used as one of the decision conditions to determine whether the electronic device needs to adjust the display effect of the housing according to the external environmental data. Among them, the external sensors can be at least one of a light sensor, a temperature sensor, and a humidity sensor.
[0047] The control system can also be used to instruct the internal sensors of the electronic device to collect status data about the electronic device itself. The status data can be used as one of the decision conditions to determine whether the electronic device needs to adjust the display effect of the housing according to the current status. For example, when the battery is low, the brightness may need to be lowered or the display mode changed to save power. Among them, the status data includes but is not limited to whether the device is charging, the current temperature, and whether it is in a high-power consumption state.
[0048] The control system can also collect user personalized setting data through user interaction methods, including appearance adjustment preferences such as colors, brightness, and color temperature selected by the user. Among them, the user interaction methods include but are not limited to touch screens, setting interfaces of application programs, and voice control.
[0049] Step S102, fuse the environmental data, the status data, and the user setting preference data to obtain appearance setting data;
[0050] As an exemplary example, since the environmental data, status data, and user setting preference data each reflect different control factors, fusing these data can improve the accuracy of the appearance setting that meets user needs. Data fusion can be to analyze and combine data from different sources to generate appearance setting data. Among them, the appearance setting data can include a series of parameters, including at least one of color parameters, brightness parameters, contrast parameters, color temperature parameters, texture or surface structure parameters, and dynamic adjustment parameters.
[0051] Step S103: Control the electrochromic module and the nanostructure module inside the housing of the electronic device according to the appearance setting data, so that the appearance of the housing of the electronic device presents a corresponding display effect.
[0052] As an exemplary example, the electrochromic module can be used to change the color or transparency of the housing; the nanostructure module can be used to change the color, brightness, reflectivity, etc. of the housing. The appearance setting data can be used as an input signal for the electrochromic module and the nanostructure module. The control system adjusts the electrical parameters, temperature parameters, etc. of the electrochromic module and the nanostructure module according to these appearance setting data, and then adjusts the appearance display effect of the device housing. Thus, the appearance display of the electronic device housing not only meets the environmental requirements, but also can be automatically adjusted according to the user's operation preferences.
[0053] In this embodiment, the control system of the electronic device responds to the appearance setting instruction, obtains environmental data, status data, and user setting preference data, performs multi-dimensional data fusion, and controls the electrochromic module and the nanostructure module inside the housing of the electronic device according to the fused appearance setting data, improving the flexibility of the appearance setting of the housing of the electronic device, so that the appearance of the housing of the device presents a display effect that conforms to the environment, device status, and user personalization.
[0054] Please refer to Figure 2 , Figure 2 which is a schematic flowchart of the second embodiment of the method for displaying the appearance of the device housing of the present application. The method includes the following steps:
[0055] Step S201: The control system of the electronic device responds to the appearance setting instruction, and obtains environmental data, status data, and user setting preference data;
[0056] Among them, the specific implementation manner and beneficial effects of step S201 can be as described in step S101 above, and will not be elaborated here.
[0057] Step S202: Perform fusion on the environmental data, the status data, and the user setting preference data to obtain appearance setting data;
[0058] Among them, the specific implementation manner and beneficial effects of step S202 can be as described in step S102 above, and will not be elaborated here.
[0059] Step S203: Control the electrical parameters of the electrochromic module according to the appearance setting data, so that the optical characteristics of the electrochromic module change correspondingly;
[0060] As an exemplary example, an electrochromic module can change its optical properties under the action of an electric field. The electrical parameters of the electrochromic module can include the intensity and waveform of voltage and / or current. When the electrical parameters of the electrochromic module change, the electronic structure of the electrochromic module will change accordingly, resulting in a color change of the material. When the electric field is removed, the electrochromic module returns to its initial state.
[0061] In some embodiments, step S203 may include: performing linear mapping and color model conversion on the appearance setting to generate a corresponding electrochromic control signal; and adjusting at least one of the voltage, current, and pulse width modulation waveform of the electrochromic module according to the electrochromic control signal.
[0062] As an exemplary example, the electrochromic control signal can be used to adjust the working state of the electrochromic module. Among them, the pulse width modulation waveform can adjust the output power by adjusting the duty cycle of the signal, that is, by periodically changing the voltage to adjust the reaction process of the electrochromic material, making the color change of the electrochromic module smoother and more accurate.
[0063] Step S204, controlling the electric field strength parameter and temperature parameter of the nanostructure module according to the appearance setting data to change the surface plasmon resonance of the nanostructure module, so that the color of the nanostructure module changes correspondingly;
[0064] As an exemplary example, the nanostructure module can be a nanoscale material with surface plasmon resonance characteristics, such as metal nanoparticles, nanofilms, etc. When the electric field or temperature changes, the resonance phenomenon will affect the optical properties of the material, such as the color, reflectivity, and gloss of the shell.
[0065] In some embodiments, step S204 may include: converting the appearance setting data into an electrical control signal and a heat control signal; adjusting the electric field strength applied to the nanostructure module through a voltage regulator or current source according to the electrical control signal; and adjusting the temperature of the nanostructure module through a heating element according to the heat control signal.
[0066] As an exemplary example, a voltage regulator can be used to adjust the voltage to control the electric field strength applied to the nanostructure, adjust the current direction and magnitude, so as to achieve fast and efficient temperature control, and further improve the accuracy of adjusting the temperature of the nanostructure module. The heating element can be a current source that provides a stable current to control the magnitude of the current flowing through the nanostructure module, indirectly adjust the electric field strength, and thus affect the optical behavior of the nanostructure. Thus, by the combined action of the electric field strength and temperature on the optical properties of the nanostructure module, the electronic device can dynamically adjust its color, brightness, or transparency according to the appearance setting data, meeting the specific appearance requirements of the user for the housing appearance of the electronic device.
[0067] Step S205: Based on the changed electrochromic module and nanostructure module, make the housing appearance of the electronic device present a corresponding display effect.
[0068] As an exemplary example, due to the fast response capabilities of the electrochromic module and nanostructure module, the electronic device can perform fast and smooth appearance switching according to environmental changes or changes in user preferences. For example, when the user uses the device outdoors, the system can automatically increase the brightness and color temperature, and the device appearance presents a bright and clear visual effect; while in a dim environment, the system may automatically reduce the brightness and switch to a warmer color tone.
[0069] In some embodiments, after step S205, it may include: detecting the color change of the electrochromic module to obtain a first detection result, and in response to a deviation between the first detection result and the user-set preference data, adjusting the electrical parameters of the electrochromic module through a feedback mechanism;
[0070] As an exemplary example, the first detection result can be the real-time detection of the color state of the electrochromic module. For example, the electronic device uses an external sensor or camera to detect the reflection spectrum or color of the electrochromic module to obtain the actual color value. Then, the control system compares the detected color value with the user-set color preference. If there is a deviation between the actual color value and the desired color value, the feedback mechanism can be used to automatically adjust the electrical parameters of the electrochromic module according to this difference.
[0071] In some embodiments, after step S205, it may include: detecting the electric field strength, temperature, and optical properties of the nanostructure module to obtain a second detection result, and in response to a deviation between the second detection result and the user-set preference data, adjusting the electric field strength and temperature parameters through a feedback mechanism.
[0072] As an exemplary example, the second detection result can be the detection data on the electric field strength, temperature, and optical characteristics obtained in real time. Then, the actually detected electric field strength, temperature, and optical characteristics are compared with the appearance data set by the user. If there is a deviation between the two, the feedback mechanism automatically adjusts the electric field strength and temperature parameters after detecting the deviation.
[0073] In a specific embodiment, the electrochromic material and the nanostructure can be located at different levels of the electronic device. For example, the electrochromic material can be used as a functional material on the outer layer of the housing to adjust the color of the housing, while the nanostructure module can be embedded in the inner layer or surface of the housing to control the reflection, refraction, etc. of light and enhance the appearance effect. Thus, not only can the aesthetic effect be improved, but also the heat dissipation and durability of the housing can be optimized.
[0074] Please refer to Figure 3 , through the user operating the intelligent application program in the electronic device, the intelligent control system is controlled through the intelligent application program, so that the intelligent control system can identify the external environment, and according to the external environment, the electrochromic material and the nanostructure are regulated, so that the housing of the electronic device presents the corresponding effect.
[0075] In this embodiment, based on the fast response ability of the electrochromic module and the nanostructure module, the electronic device can perform fast and smooth appearance switching according to environmental changes or changes in user preferences; at the same time, through the synergistic effect of the electrochromic module and the nanostructure module, the control system of the electronic device can adjust the appearance display of the housing according to the external environment, device state, and user preferences, thereby providing rich personalized visual effects.
[0076] Please refer to Figure 4 , Figure 4 is a schematic flowchart of the third embodiment of the method for displaying the appearance of the device housing of the present application. The method includes the following steps:
[0077] Step S401, the control system of the electronic device responds to the appearance setting instruction and obtains environmental data, status data, and user setting preference data.
[0078] Among them, the specific implementation manner and beneficial effects of step S401 can be as described in step S101 above, and will not be elaborated here.
[0079] Step S402, using a preset rule engine, making decisions and fusing the environmental data, the status data, and the user setting preference data to obtain the appearance setting data.
[0080] As an exemplary example, a rules engine can be a system used to process input data according to certain logical rules and output decision results. In this application, the task of the rules engine is to process data from different sources and decide how to adjust the appearance of the device's housing.
[0081] Environmental data, status data, and user-set preference data can be passed into the rules engine, and then logical judgments and decisions are made according to the preset rules in the rules engine, and finally appearance setting data or other control signals are output.
[0082] In an exemplary embodiment, first, missing data, error data, or abnormal data in the appearance setting data can be processed, and then converted into a unified format, or the appearance setting data can be normalized to the same scale; then, according to the preset rules, the rules engine makes conditional judgments on the input appearance setting data, and according to the results of the conditional judgments, matches the rules that meet the conditions; then, the rules that meet the conditions are used to trigger control operations on the electrochromic module and the nanostructure module.
[0083] Step S403: According to the appearance setting data, control the electrochromic module and the nanostructure module in the housing of the electronic device, so that the appearance of the housing of the electronic device presents a corresponding display effect.
[0084] Among them, the specific implementation manner and beneficial effects of step S403 can be as described in step S103 above, and will not be elaborated here.
[0085] In this embodiment, different types of environmental data, status data, and user-set preference data are decision-making through the rules engine, and a fused appearance setting data is output; specific appearance setting data is generated through the rules engine to control the color, brightness, etc. of the electrochromic module and the nanostructure module, so that the appearance of the housing of the electronic device can present a corresponding effect.
[0086] Please refer to Figure 5 , Figure 5 which is a schematic flowchart of the fourth embodiment of the method for displaying the appearance of the device housing in this application. The method includes the following steps:
[0087] Step S501: The control system of the electronic device responds to an appearance setting instruction and obtains environmental data, status data, and user-set preference data;
[0088] Among them, the specific implementation manner and beneficial effects of step S501 can be as described in step S101 above, and will not be elaborated here.
[0089] Step S502: Input the environmental data, the status data, and the user-set preference data into a fusion model for processing to obtain the appearance setting data. The fusion model is trained by a self-supervised learning method or an unsupervised learning method.
[0090] As an exemplary example, the feature vectors of the environmental data, the status data, and the user preference data can be concatenated together through a multi-layer perceptron or a convolutional neural network to generate a multi-dimensional feature vector, that is, the appearance setting data.
[0091] As another exemplary example, the concatenated feature vectors of the environmental data, the status data, and the user preference data can be subjected to independent mapping processing, and then the final judgment is made through the decision-making layer of the fusion model to generate the appearance setting data.
[0092] Among them, before step S502, the fusion model can automatically generate labels from the input data or the training data for training. For example, by inputting the ambient light intensity and the battery power, the fusion model predicts the appearance configuration that the user may set. When the model is trained, no explicit external labels are required, and it depends on the internal structure of the data itself. Pattern recognition between different data can also be achieved through clustering algorithms or dimensionality reduction algorithms. For example, the fusion model can associate "high brightness" with "high battery power" and "preference for cold tones" to form a specific display pattern.
[0093] Step S503: According to the appearance setting data, control the electrochromic module and the nanostructure module in the housing of the electronic device, so that the appearance of the housing of the electronic device presents the corresponding display effect.
[0094] Among them, the specific implementation manner and beneficial effects of step S503 can be as described in step S103 above, and will not be elaborated here.
[0095] In this embodiment, by integrating the environmental data, the status data, and the user-set preference data, and generating the appearance setting data based on these data; through self-supervised learning and unsupervised learning methods, the fusion model does not require additional manual labels, and learns the relationships between the training data, thereby realizing automated data processing and decision-making, and generating the corresponding appearance setting data through the trained fusion model, and then setting and displaying the appearance of the housing of the electronic device, which can improve the setting efficiency of the appearance of the housing of the electronic device.
[0096] In addition, an embodiment of the present application also proposes a display device for the appearance of the housing. The display device for the appearance of the housing includes:
[0097] An acquisition module, configured to obtain environmental data, status data, and user-set preference data in response to an appearance setting instruction by the control system of the electronic device.
[0098] A fusion module, configured to fuse the environmental data, the status data, and the user-set preference data to obtain appearance setting data;
[0099] A control module, configured to control an electrochromic module and a nanostructure module in the housing of the electronic device according to the appearance setting data, so that the housing appearance of the electronic device presents a corresponding display effect.
[0100] Please refer to Figure 6 , Figure 6 which is an exemplary structural block diagram of an electronic device for the method of displaying the housing appearance of the device in this application. As Figure 6 shown, the electronic device 600 of this application may include a processor 601 and a memory 602, where the processor 601 and the memory 602 communicate with each other through a bus. The memory 602 stores program instructions for displaying the housing appearance. When the program instructions are executed by the processor 601, the above processor executes the above-related method steps to implement a method of displaying the housing appearance of a device in the above embodiments.
[0101] Please refer to Figure 7 , Figure 7 which is an exemplary structural block diagram of a computer-readable storage medium for the method of displaying the housing appearance of the device in this application. As Figure 7 shown, the computer-readable storage medium 700 stores a computer program 701. When the computer program 701 runs on a computer by a processor, the computer executes the above-related method steps to implement a method of displaying the housing appearance of a device in the above embodiments.
[0102] In the above solution, the control system of the electronic device responds to an appearance setting instruction to obtain environmental data, status data, and user-set preference data; fuses the environmental data, the status data, and the user-set preference data to obtain appearance setting data; and controls an electrochromic module and a nanostructure module in the housing of the electronic device according to the appearance setting data, so that the housing appearance of the electronic device presents a corresponding display effect. By the control system of the electronic device responding to an appearance setting instruction, obtaining environmental data, status data, and user-set preference data, and performing multi-dimensional data fusion, and controlling an electrochromic module and a nanostructure module in the housing of the electronic device according to the fused appearance setting data, the flexibility of the housing appearance setting of the electronic device is improved, so that the housing appearance of the device presents a display effect that conforms to the environment, the device status, and user personalization.
[0103] In several embodiments provided in the present application, it should be understood that the disclosed methods, electronic devices, and storage media can be implemented in other ways. For example, the device embodiments described above are merely illustrative. For example, the division of the modules or units is only a logical function division. In actual implementation, there may be other division methods. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the displayed or discussed couplings or direct couplings or communication connections between each other can be through some interfaces. The indirect couplings or communication connections of the devices or units can be in electrical, mechanical, or other forms.
[0104] The units described as separate components may or may not be physically separated. The components displayed as units may or may not be physical units, that is, they may be located in one place or distributed to multiple network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0105] In addition, in each embodiment of the present application, the functional units can be integrated in a processing unit, or each unit can exist physically alone, or two or more units can be integrated in one unit. The above-mentioned integrated units can be implemented in the form of hardware or in the form of software functional units.
[0106] If the above-mentioned integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present application, in essence, or the part that contributes to the prior art, or all or part of this technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to enable a computer device (which can be a personal computer, a server, or a network device, etc.) or a processor to execute all or part of the steps of the display method of the device housing appearance described in each embodiment of the present application. The aforementioned storage medium includes: USB flash drives, mobile hard disks, read-only memories (ROM, Read-Only Memory), random access memories (RAM, Random Access Memory), magnetic disks, or optical discs and other various media that can store program codes.
[0107] The above is only the embodiment of the present application, and does not limit the patent scope of the present application. All equivalent structural or equivalent process transformations made by using the content of the specification and drawings of the present application, or directly or indirectly applied in other related technical fields, are equally included in the patent protection scope of the present application.
Claims
1. A display method for the appearance of a device housing, characterized in that, The display method for the appearance of the device housing includes: The control system of the electronic device responds to the appearance setting instruction, and obtains environmental data, status data, and user setting preference data; Fuse the environmental data, the status data, and the user setting preference data to obtain appearance setting data; According to the appearance setting data, control the electrochromic module and the nanostructure module in the housing of the electronic device, so that the appearance of the housing of the electronic device presents a corresponding display effect.
2. The display method of the appearance of the device housing according to claim 1, characterized in that, The controlling the electrochromic module and the nanostructure module in the housing of the electronic device according to the appearance setting data, so that the appearance of the housing of the electronic device presents a corresponding display effect includes: According to the appearance setting data, control the electrical parameters of the electrochromic module, so that the optical characteristics of the electrochromic module change correspondingly; According to the appearance setting data, control the electric field intensity parameter and the temperature parameter of the nanostructure module to change the surface plasmon resonance of the nanostructure module, so that the color of the nanostructure module changes correspondingly; Based on the changed electrochromic module and the nanostructure module, make the appearance of the housing of the electronic device present a corresponding display effect.
3. The display method of the appearance of the device housing according to claim 2, characterized in that, The controlling the electrical parameters of the electrochromic module according to the appearance setting data includes: Perform linear mapping and color model conversion on the appearance setting to generate a corresponding electrochromic control signal; According to the electrochromic control signal, adjust at least one of the voltage, current, and pulse width modulation waveform of the electrochromic module.
4. The display method for the appearance of the device housing according to claim 2, characterized in that, The controlling the electric field intensity parameter and the temperature parameter of the nanostructure module according to the appearance setting data includes: Convert the appearance setting data into an electrical control signal and a heat control signal; According to the electrical control signal, adjust the electric field intensity applied to the nanostructure module through a voltage regulator or a current source; and, according to the heat control signal, adjust the temperature of the nanostructure module through a heating element.
5. The display method for the appearance of the device housing according to claim 1, characterized in that, After the controlling the electrochromic module and the nanostructure module in the housing of the electronic device according to the appearance setting data, so that the appearance of the housing of the electronic device presents a corresponding display effect, it includes: Detect the color change of the electrochromic module to obtain a first detection result, and in response to a deviation between the first detection result and the user setting preference data, adjust the electrical parameters of the electrochromic module through a feedback mechanism; Detect the electric field intensity, temperature, and optical characteristics of the nanostructure module to obtain a second detection result, and in response to a deviation between the second detection result and the user setting preference data, adjust the electric field intensity and temperature parameters through a feedback mechanism.
6. The display method of the appearance of the device housing according to any one of claims 2-5, characterized in that, The fusing the environmental data, the status data, and the user setting preference data to obtain appearance setting data includes: Use a preset rule engine to make decisions and fusions on the environmental data, the status data, and the user setting preference data to obtain the appearance setting data.
7. The display method of the appearance of the device housing according to any one of claims 2-5, characterized in that, Fusing the environmental data, the status data, and the user-set preference data to obtain appearance setting data includes: Inputting the environmental data, the status data, and the user-set preference data into a fusion model for processing to obtain the appearance setting data; wherein, the fusion model is trained by a self-supervised learning method or an unsupervised learning method.
8. A display device for the appearance of a housing, characterized in that, The display device on the housing appearance includes: An acquisition module, configured to obtain environmental data, status data, and user-set preference data in response to an appearance setting instruction by a control system of an electronic device; A fusion module, configured to fuse the environmental data, the status data, and the user-set preference data to obtain appearance setting data; A control module, configured to control an electrochromic module and a nanostructure module in the housing of the electronic device according to the appearance setting data, so that the housing appearance of the electronic device presents a corresponding display effect.
9. An electronic device, characterized in that, The electronic device includes: A memory, configured to store executable program codes; A processor, configured to call and run the executable program codes from the memory, so that the electronic device executes the display method of the housing appearance of the device according to any one of claims 1 to 7.
10. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program, which, when executed by a processor, implements the display method of the housing appearance of the device according to any one of claims 1 to 7.