Intelligent control method, device and equipment of transparent display device and storage medium

By acquiring ambient light source data in real time and performing pixel-level illumination feature processing, the problems of uneven brightness and color distortion in transparent display devices are solved, achieving uniformity and accuracy in display effects.

CN119811332BActive Publication Date: 2025-11-28深圳市起立科技有限公司
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Patent Information

Application Number
CN202510280367.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2025-11-28
Estimated Expiration
2045-03-11

AI Technical Summary

Technical Problem

The display effect of transparent display devices is subject to complex interference from external ambient lighting conditions. Existing methods are unable to accurately compensate for pixel-level lighting changes, resulting in uneven brightness and color distortion.

Method used

Real-time acquisition of ambient light source data generates pixel-level illumination feature data. Pixel-by-pixel brightness adjustment and color compensation are performed using spectral feature data information generation technology, including processing of illumination received intensity and spectral interference information.

Benefits of technology

It achieves pixel-level brightness uniformity and color fidelity, solving the problems of blurring and dimness caused by uneven lighting, and ensuring the consistency and accuracy of display effects.

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Abstract

The application relates to the technical field of data processing, and provides an intelligent control method and device of a transparent display device, equipment and a storage medium. The method comprises the following steps: acquiring light source data information of an environment in which a transparent display device is located; for each pixel on the transparent display device, generating light illumination feature data information of the pixel based on the light source data information; the light illumination feature data information comprises light illumination receiving intensity and spectral interference information of the pixel; for each pixel, determining display brightness of the pixel based on the light illumination receiving intensity of the pixel, and performing color compensation on the pixel based on the spectral interference information of the pixel, so as to obtain a target RGB color space of the pixel; and for each pixel, adjusting a display effect of the pixel based on the display brightness and the target RGB color space of the pixel. The method can ensure that the display brightness is consistent on the entire transparent display screen.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of data processing, and in particular to an intelligent control method and device for a transparent display device, a device, and a storage medium. BACKGROUND

[0002] With the continuous development of display technology, display devices are evolving towards high resolution, thinness, and multi-functionality. Based on traditional display screens, transparent display devices, as a new display technology, are gradually emerging in the fields of commercial display, augmented reality, smart home, etc. The main feature of transparent display devices is that the display screen has high light transmittance, allowing users to observe the scene behind the screen while displaying information, thereby realizing the deep integration of the screen and the environment.

[0003] However, due to the special nature of transparent display devices, their display effect is greatly affected by external environmental light conditions. Environmental light sources can have complex light intensity distribution and diverse spectral characteristics, and light sources of different positions and wavelengths can significantly interfere with the brightness and color uniformity of transparent display devices.

[0004] Currently, in dealing with the problem of external light interference of transparent display devices, traditional methods are mostly based on global brightness adjustment, which compensates for the influence of external light by increasing or decreasing the overall brightness of the screen. However, this method is difficult to accurately compensate for pixel-level light changes, and is prone to cause non-uniformity of display brightness. In addition, the existing method has weak compensation ability for color distortion, and cannot accurately restore the true color of the display content. SUMMARY

[0005] The present application provides an intelligent control method and device for a transparent display device, a device, and a storage medium. To solve the problems raised in the background technology.

[0006] In a first aspect, the present application provides an intelligent control method for a transparent display device, comprising:

[0007] Real-time acquisition of light source data information of an environment in which the transparent display device is located; the light source data information includes light source data of at least one light source, and the light source data includes light source position, light intensity, and wavelength;

[0008] For each pixel on the transparent display device, generate light feature data information of the pixel based on the light source data information; the light feature data information includes light receiving intensity and spectral interference information of the pixel;

[0009] For each of the pixels, display brightness of the pixel is determined based on light receiving intensity of the pixel, and the pixel is color compensated based on spectral interference information of the pixel, to obtain target RGB color space of the pixel;

[0010] For each of the pixels, display effect of the pixel is adjusted based on the display brightness and the target RGB color space.

[0011] In a possible implementation, the generating the light feature data information of the pixel based on the light source data information comprises:

[0012] The light receiving intensity of the pixel is generated based on light source position and light intensity of each light source;

[0013] The spectral interference information of the pixel is generated based on light source position and wavelength of each light source; the light receiving intensity and the spectral interference information constitute the light feature data information.

[0014] In a possible implementation, the generating the light receiving intensity of the pixel based on the light source position and the light intensity of each of the light sources comprises:

[0015] For each of the light sources, the incident angle of the light source relative to the pixel is determined based on the light source position of the light source and the position of the pixel, and the light intensity of the light source is multiplied by the cosine value of the incident angle, to obtain incident light intensity of the light source on the pixel;

[0016] The light receiving intensity of the pixel is obtained by adding each of the incident light intensities.

[0017] In a possible implementation, the generating the spectral interference information of the pixel based on the light source position and the wavelength of each of the light sources comprises:

[0018] For each of the light sources, the incident angle of the light source relative to the pixel is determined based on the light source position of the light source and the position of the pixel, and the incident angle is compared with a preset incident angle, and if the incident angle is less than the preset incident angle, the wavelength of the light source is determined as a target wavelength; each target wavelength constitutes the spectral interference information of the pixel.

[0019] In a possible implementation, the color compensating the pixel based on the spectral interference information of the pixel to obtain the target RGB color space of the pixel comprises:

[0020] An initial RGB color space of the pixel is obtained; the initial RGB color space comprises an initial red component, an initial blue component and an initial green component;

[0021] Based on the spectral interference information, the initial red component is color-compensated to obtain the target red component;

[0022] Based on the spectral interference information, the initial blue component is color-compensated to obtain the target blue component;

[0023] The initial green component is color-compensated based on the spectral interference information to obtain the target green component; the target red component, the target blue component, and the target green component constitute the target RGB color space.

[0024] In one possible implementation, the step of performing color compensation on the initial red component based on the spectral interference information to obtain the target red component includes:

[0025] Color compensation is performed on the initial red component using equation (1), wherein, C out(R) The target red component, C display(R) For the initial red component, α i For the first i Spectral compensation coefficients corresponding to each target wavelength λ i For the first i One target wavelength, λ R To preset the red light wavelength, n The spectral interference information represents the following: n One target wavelength;

[0026] (1).

[0027] In one possible implementation, the The methods for obtaining it include:

[0028] Obtain the spectral response curve of the transparent display device; the horizontal axis of the spectral response curve is wavelength, and the vertical axis is responsivity;

[0029] A first responsivity and a second responsivity are determined based on the spectral response curve; the first responsivity is the... The responsivity of a target wavelength, wherein the second responsivity is the maximum responsivity on the spectral response curve;

[0030] The target difference is obtained by subtracting the first response from the second response, and a first ratio of the target difference to the second response is obtained. The first ratio is then compared with the second response. The second ratio between the light intensities corresponding to the target wavelengths is used as the... A spectral compensation coefficient corresponding to a target wavelength.

[0031] In a second aspect, the present application provides a smart control device of a transparent display device, comprising:

[0032] An acquisition module, configured to acquire light source data information of an environment in which the transparent display device is located in real time; the light source data information comprises light source data of at least one light source, and the light source data comprises a light source position, a light intensity and a wavelength;

[0033] A generation module, configured to generate, for each pixel on the transparent display device, light illumination feature data information of the pixel based on the light source data information; the light illumination feature data information comprises light illumination receiving intensity and spectral interference information of the pixel;

[0034] A pixel processing module, configured to determine, for each pixel, display brightness of the pixel based on the light illumination receiving intensity of the pixel, and perform color compensation on the pixel based on the spectral interference information of the pixel, to obtain a target RGB color space of the pixel.

[0035] An adjustment module, configured to adjust, for each pixel, a display effect of the pixel based on the display brightness and the target RGB color space of the pixel.

[0036] In a third aspect, the present application provides a terminal device, comprising a processor, a memory and a computer program stored in the memory and executable by the processor, wherein when the computer program is executed by the processor, the smart control method of the transparent display device is implemented.

[0037] In a fourth aspect, the present application provides a computer readable storage medium, wherein a computer program is stored in the computer readable storage medium, and when the computer program is executed by a processor, the smart control method of the transparent display device is implemented.

[0038] The present application provides a smart control method, device and equipment of a transparent display device and a storage medium, and the method comprises the following steps: acquiring light source data information of an environment in which the transparent display device is located in real time; the light source data information comprises light source data of at least one light source, and the light source data comprises a light source position, a light intensity and a wavelength;

[0039] For each pixel on the transparent display device, light feature data information of the pixel is generated based on the light source data information; the light feature data information includes light receiving intensity and spectral interference information of the pixel; for each pixel, display brightness of the pixel is determined based on the light receiving intensity of the pixel, and color compensation is performed on the pixel based on the spectral interference information of the pixel to obtain a target RGB color space of the pixel; for each pixel, display effect of the pixel is adjusted based on the display brightness and the target RGB color space of the pixel. On the one hand, the light receiving intensity is calculated pixel by pixel to realize pixel-level brightness adjustment, which can effectively solve the blurring and dullness of display content caused by uneven light, and ensure that the display brightness remains consistent on the entire transparent display screen; on the other hand, the pixel-by-pixel color compensation method can effectively offset the influence of specific wavelength light in external light on color display effect, reduce color distortion, and ensure the authenticity of display content color. BRIEF DESCRIPTION OF DRAWINGS

[0040] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced. Obviously, the drawings in the following description are some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor.

[0041] Figure 1 The flowchart of the intelligent control method of the transparent display device provided by the embodiments of the present application;

[0042] Figure 2 The structural schematic block diagram of the intelligent control device of the transparent display device provided by the embodiments of the present application;

[0043] Figure 3 The structural schematic block diagram of the terminal device provided by the embodiments of the present application. DETAILED DESCRIPTION

[0044] The technical solutions in the embodiments of the present application will be described clearly and completely in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are some embodiments of the present application, not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the protection scope of the present application.

[0045] The flowchart shown in the drawings is only an example, not necessarily including all contents and operations / steps, and not necessarily executed in the described order. For example, some operations / steps can be decomposed, combined or partially combined, so that the actual execution order can be changed according to the actual situation.

[0046] It should also be understood that the terms used herein are for the purpose of describing particular embodiments and are not intended to limit the application. As used in the specification and the appended claims, the singular forms "a," "an" and "the" are intended to include plural forms as well, unless the context clearly indicates otherwise.

[0047] It should further be understood that the term "and / or" used in the specification and the appended claims, means one or more of the listed items, as well as all possible combinations of the items.

[0048] Some embodiments of the present application will be described in detail with reference to the drawings. The following embodiments and features of the embodiments can be combined with each other, without conflict.

[0049] Please refer to Figure 1 , Figure 1 The flowchart of the intelligent control method of the transparent display device provided by the embodiments of the present application is shown in Figure 1 The intelligent control method of the transparent display device provided by the embodiments of the present application includes steps S1 to S4.

[0050] Step S1, real-time acquisition of light source data information of the environment where the transparent display device is located; the light source data information includes light source data of at least one light source, and the light source data includes light source position, light intensity and wavelength.

[0051] Specifically, multi-directional light sensors are uniformly arranged around the transparent display device, and the light source data information is acquired in real time by each light sensor.

[0052] Step S2, for each pixel on the transparent display device, generating light illumination feature data information of the pixel based on the light source data information; the light illumination feature data information includes light illumination receiving intensity and spectral interference information of the pixel.

[0053] Specifically, step S2 includes the following steps:

[0054] generate the light receiving intensity of the pixel based on the light source position and the light intensity of each light source; specifically, for each light source, determine the incident angle of the light source relative to the pixel based on the light source position of the light source and the position of the pixel, and multiply the light intensity of the light source by the cosine value of the incident angle to obtain the incident light intensity of the light source on the pixel; add each incident light intensity to obtain the light receiving intensity of the pixel; it should be noted that the angle between the line connecting the position of the light source and the position of the pixel and the normal at the pixel is taken as the incident angle of the light source relative to the pixel; the light receiving intensity is the light intensity received by the pixel;

[0055] generate the spectral interference information of the pixel based on the light source position and the wavelength of each light source; the light receiving intensity and the spectral interference information constitute the light feature data information; specifically, for each light source, compare the incident angle with a preset incident angle based on the light source position of the light source and the position of the pixel, and if the incident angle is less than the preset incident angle, determine the wavelength of the light source as the target wavelength; each target wavelength constitutes the spectral interference information of the pixel.

[0056] It can be understood that step S2 accurately calculates the incident light intensity of each light source on the pixel position by comprehensively considering the light source position, light intensity and light source incident angle, and obtains the total light receiving intensity of the pixel by adding the incident light intensity of each light source, which can truly reflect the influence of external light source on each pixel on the display screen, helps to avoid errors caused by simple global brightness adjustment, realizes accurate compensation of pixel-level brightness, and ensures the accuracy and uniformity of brightness adjustment.

[0057] Step S3, for each pixel, determine the display brightness of the pixel based on the light receiving intensity of the pixel, and perform color compensation on the pixel based on the spectral interference information of the pixel to obtain the target RGB color space of the pixel.

[0058] Specifically, input the light receiving intensity of the pixel into a preset display brightness prediction model to obtain the display brightness of the pixel, the display brightness prediction model is a pre-trained neural network model, and the color compensation on the pixel based on the spectral interference information of the pixel to obtain the target RGB color space of the pixel includes the following steps:

[0059] obtain the initial RGB color space of the pixel; the initial RGB color space includes an initial red component, an initial blue component and an initial green component;

[0060] Based on the spectral interference information, the initial red component is color-compensated to obtain the target red component;

[0061] Based on the spectral interference information, the initial blue component is color-compensated to obtain the target blue component;

[0062] The initial green component is color-compensated based on the spectral interference information to obtain the target green component; the target red component, the target blue component, and the target green component constitute the target RGB color space.

[0063] The step of performing color compensation on the initial red component based on the spectral interference information to obtain the target red component includes the following steps:

[0064] Color compensation is performed on the initial red component using equation (1), wherein, C out(R) The target red component, C display(R) For the initial red component, α i For the first i Spectral compensation coefficients corresponding to each target wavelength λ i For the first i One target wavelength, λ R To preset the red light wavelength, n The spectral interference information represents the following: n One target wavelength;

[0065] (1).

[0066] Among them, the The method for obtaining it includes the following steps:

[0067] Obtain the spectral response curve of the transparent display device; the horizontal axis of the spectral response curve is wavelength, and the vertical axis is responsivity; specifically, the spectral response curve is obtained by measuring the responsivity of light of different wavelengths on the transparent display device using a spectrophotometer.

[0068] A first responsivity and a second responsivity are determined based on the spectral response curve; the first responsivity is the... The responsivity of a target wavelength, wherein the second responsivity is the maximum responsivity on the spectral response curve;

[0069] The target difference is obtained by subtracting the first response from the second response, and a first ratio of the target difference to the second response is obtained. The first ratio is then compared with the second response. The second ratio between the light intensities corresponding to the target wavelengths is used as the... The spectral compensation coefficients corresponding to each target wavelength; specifically, the first ratio is obtained by dividing the target difference by the second responsivity, and the first ratio is then divided by the spectral compensation coefficients corresponding to each target wavelength. The second ratio is obtained by calculating the light intensity corresponding to each target wavelength.

[0070] It should be noted that the method for color compensation of the initial blue component based on the spectral interference information to obtain the target blue component and the method for color compensation of the initial green component based on the spectral interference information to obtain the target green component refer to the above-described method for color compensation of the initial red component based on the spectral interference information to obtain the target red component, and will not be repeated here.

[0071] Understandably, step S3 achieves precise color compensation by performing color compensation on each color component of each pixel of the transparent display device, effectively solving the color shift problem caused by specific wavelengths of ambient light and ensuring the color accuracy of the displayed content.

[0072] Step S4: For each pixel, adjust the display effect of the pixel based on the pixel's display brightness and target RGB color space.

[0073] The method provided in this embodiment, on the one hand, realizes pixel-level brightness adjustment by calculating the light reception intensity pixel by pixel, which can effectively solve the blurring and dimness of the displayed content caused by uneven lighting, and ensure that the display brightness is consistent across the entire transparent display screen. On the other hand, by using pixel-by-pixel color compensation, it can effectively counteract the influence of specific wavelengths of light in external illumination on the color display effect, reduce color distortion, and ensure the authenticity of the displayed content colors.

[0074] Please see Figure 2 , Figure 2 A schematic block diagram of the structure of the intelligent control device 100 for the transparent display device provided in the embodiments of this application, as shown below. Figure 2 As shown, the intelligent control device 100 for the transparent display device provided in this application embodiment includes:

[0075] The acquisition module 110 is used to acquire light source data information of the environment where the transparent display device is located in real time; the light source data information includes light source data of at least one light source, and the light source data includes the light source position, light intensity and wavelength.

[0076] The generation module 120 is used to generate illumination feature data information for each pixel on the transparent display device based on the light source data information; the illumination feature data information includes the illumination received intensity and spectral interference information of the pixel.

[0077] The pixel processing module 130 is used to determine the display brightness of each pixel based on the light received intensity of the pixel, and to perform color compensation on the pixel based on the spectral interference information of the pixel to obtain the target RGB color space of the pixel.

[0078] The adjustment module 140 is used to adjust the display effect of each pixel based on the display brightness of the pixel and the target RGB color space.

[0079] It should be noted that those skilled in the art will understand that, for the sake of convenience and brevity, the specific working process of the device and each module described above can be referred to the process in the aforementioned embodiment of the intelligent control method for transparent display devices, and will not be repeated here.

[0080] The intelligent control device 100 for the transparent display device provided in the above embodiments can be implemented as a computer program, which can be used in, for example... Figure 3 The terminal device 200 shown is running on it.

[0081] Please see Figure 3 , Figure 3 The present invention provides a schematic block diagram of the structure of a terminal device 200. The terminal device 200 includes a processor 201 and a memory 202, which are connected via a device bus 203. The memory 202 may include a non-volatile storage medium and internal memory.

[0082] The non-volatile storage medium can store a computer program. The computer program includes program instructions that, when executed by the processor 201, cause the processor 201 to perform any of the aforementioned intelligent control methods for the transparent display device.

[0083] The processor 201 provides computing and control capabilities to support the operation of the entire terminal device 200.

[0084] The internal memory provides an environment for the execution of computer programs in non-volatile storage media. When the computer program is executed by the processor 201, the processor 201 can execute any of the above-mentioned intelligent control methods for transparent display devices.

[0085] Those skilled in the art will understand that Figure 3It should be noted that the structure shown in the figure is only a block diagram of part of the structure related to the scheme of the present application, and does not constitute a limitation on the terminal device 200 involved in the scheme of the present application. The specific terminal device 200 can include more or fewer components than those shown in the figure, or combine certain components, or have a different component arrangement.

[0086] It should be understood that the processor 201 can be a central processing unit (CPU), and can also be other general-purpose processors, digital signal processors (DSPs), application specific integrated circuits (ASICs), field programmable gate arrays (FPGAs) or other programmable logic devices, discrete gates or transistor logic components, discrete hardware components, etc. Among them, the general-purpose processor can be a microprocessor or the processor can also be any conventional processor, etc.

[0087] In some embodiments, the processor 201 is configured to run a computer program stored in the memory to perform the following steps:

[0088] obtaining light source data information of an environment in which the transparent display device is located in real time; the light source data information includes light source data of at least one light source, and the light source data includes light source position, light intensity and wavelength;

[0089] generating light illumination feature data information of each pixel on the transparent display device based on the light source data information; the light illumination feature data information includes light illumination receiving intensity and spectral interference information of the pixel;

[0090] determining display brightness of the pixel based on the light illumination receiving intensity of the pixel, and performing color compensation on the pixel based on the spectral interference information of the pixel, to obtain a target RGB color space of the pixel;

[0091] adjusting display effect of the pixel based on the display brightness and the target RGB color space of the pixel.

[0092] It should be noted that those skilled in the art can clearly understand that, for the convenience and brevity of description, the specific working process of the terminal device 200 described above can refer to the process of the intelligent control method of the transparent display device, which will not be described here.

[0093] The embodiment of the present application further provides a computer readable storage medium, which stores a computer program. The computer program, when executed by one or more processors, causes the one or more processors to implement the intelligent control method of the transparent display device provided by the embodiment of the present application.

[0094] The computer readable storage medium can be an internal storage unit of the terminal device 200, for example, a hard disk or a memory of the terminal device 200. The computer readable storage medium can also be an external storage device of the terminal device 200, for example, a plug-in hard disk, a smart media card (SMC), a secure digital (SD) card, a flash card, etc.

[0095] The above merely provides the specific implementation of the present application, but the protection scope of the present application is not limited to this. Any person skilled in the art can easily think of various equivalent modifications or replacements within the technical range disclosed by the present application, and these modifications or replacements should be covered in the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.

Claims

1. A method for intelligent control of a transparent display device, characterized in that, The method comprises the following steps: real-time acquisition of light source data information of an environment in which a transparent display device is located; the light source data information comprises light source data of at least one light source, and the light source data comprises a light source position, a light intensity and a wavelength; for each pixel on the transparent display device, light illumination feature data information of the pixel is generated based on the light source data information; the light illumination feature data information comprises light illumination receiving intensity and spectral interference information of the pixel; for each pixel, display brightness of the pixel is determined based on the light illumination receiving intensity of the pixel, and color compensation is performed on the pixel based on the spectral interference information of the pixel, so as to obtain a target RGB color space of the pixel; for each pixel, the display effect of the pixel is adjusted based on the display brightness and the target RGB color space of the pixel; wherein the generation of the light illumination feature data information of the pixel based on the light source data information comprises: for each light source, an incident angle of the light source relative to the pixel is determined based on the light source position of the light source and the position of the pixel, and the light intensity of the light source is multiplied by the cosine value of the incident angle, so as to obtain incident light intensity of the light source on the pixel; the incident light intensities are added together to obtain the light illumination receiving intensity of the pixel; for each light source, the incident angle of the light source relative to the pixel is determined based on the light source position of the light source and the position of the pixel, and the incident angle is compared with a preset incident angle; if the incident angle is less than the preset incident angle, the wavelength of the light source is determined as a target wavelength; each target wavelength constitutes the spectral interference information of the pixel; the light illumination receiving intensity and the spectral interference information constitute the light illumination feature data information. 2.The intelligent control method of a transparent display device according to claim 1, wherein, the color compensation performed on the pixel based on the spectral interference information of the pixel to obtain the target RGB color space of the pixel comprises: an initial RGB color space of the pixel is acquired; the initial RGB color space comprises an initial red component, an initial blue component and an initial green component; the initial red component is color compensated based on the spectral interference information to obtain a target red component; the initial blue component is color compensated based on the spectral interference information to obtain a target blue component; the initial green component is color compensated based on the spectral interference information to obtain a target green component; the target red component, the target blue component and the target green component constitute the target RGB color space. 3.The intelligent control method of a transparent display device according to claim 2, wherein, the color compensation performed on the initial red component based on the spectral interference information to obtain a target red component comprises: Color compensation is performed on the initial red component using equation (1), wherein, C out(R) The target red component, C display(R) For the initial red component, α i For the first i Spectral compensation coefficients corresponding to each target wavelength λ i For the first i One target wavelength, λ R To preset the red light wavelength, n The spectral interference information represents the following: n One target wavelength; (1)。 4.The intelligent control method of a transparent display device according to claim 3, wherein, The The methods for obtaining it include: a spectral response curve of the transparent display device is acquired; the abscissa of the spectral response curve is a wavelength, and the ordinate is a responsivity; determining a first responsivity and a second responsivity based on the spectral response curve; the first responsivity being a responsivity for a first target wavelength, the second responsivity being a maximum responsivity on the spectral response curve; determining a first responsivity and a second responsivity based on the spectral response curve; the first responsivity being a responsivity for a first target wavelength, the second responsivity being a maximum responsivity on the spectral response curve; The target difference value is obtained by subtracting the first responsivity from the second responsivity, and a first ratio of the target difference value to the second responsivity is obtained, and a second ratio between the first ratio and a light intensity corresponding to the second target wavelength is taken as a spectral compensation coefficient corresponding to the second target wavelength. the second ratio between the first ratio and a light intensity corresponding to the second target wavelength is taken as a spectral compensation coefficient corresponding to the second target wavelength.​ 5. A smart control device for a transparent display device, characterized in that, The method comprises the following steps: an acquisition module is configured to acquire light source data information of an environment in which a transparent display device is located; the light source data information comprises light source data of at least one light source, and the light source data comprises a light source position, a light intensity and a wavelength; The generating module is configured to generate, for each pixel on the transparent display device, light feature data information of the pixel based on the light source data information; The light feature data information comprises light receiving intensity and spectral interference information of the pixel; The pixel processing module is configured to determine, for each pixel, display brightness of the pixel based on the light receiving intensity of the pixel, and perform color compensation on the pixel based on the spectral interference information of the pixel to obtain a target RGB color space of the pixel; The adjusting module is configured to adjust, for each pixel, display effect of the pixel based on the display brightness and the target RGB color space of the pixel; The generating module is configured to generate, for each pixel on the transparent display device, light feature data information of the pixel based on the light source data information; For each light source, the light source position and the position of the pixel are determined to determine an incident angle of the light source relative to the pixel, and the light intensity of the light source is multiplied by the cosine value of the incident angle to obtain incident light intensity of the light source on the pixel; The incident light intensity of each light source is added to obtain the light receiving intensity of the pixel; For each light source, the light source position and the position of the pixel are determined to determine an incident angle of the light source relative to the pixel, and the incident angle is compared with a preset incident angle, and if the incident angle is less than the preset incident angle, the wavelength of the light source is determined as a target wavelength; each target wavelength constitutes the spectral interference information of the pixel; the light receiving intensity and the spectral interference information constitute the light feature data information.

6. A terminal device, characterized by comprising: The terminal device comprises a processor, a memory, and a computer program stored on the memory and executable by the processor, wherein when the computer program is executed by the processor, the intelligent control method of the transparent display device is realized.

7. A computer readable storage medium characterized by The computer readable storage medium stores a computer program, wherein when the computer program is executed by the processor, the intelligent control method of the transparent display device is realized.

Citation Information

Patent Citations

  • Image display method and device, electron equipment and computer readable storage medium

    CN107221294A

  • Image color compensation method and device

    CN108376539A