Electronic device with dynamic light effect and method for generating dynamic light effect

By designing electronic devices with dynamic lighting effects, using artificial intelligence interactive units and other components to work together to provide tracking, customization and pre-defined lighting effects, it solves the fixed and boring problem of traditional keyboard lighting and achieves a richer and more personalized lighting experience.

CN120179082APending Publication Date: 2025-06-20ACER INC
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Patent Information

Application Number
CN202311771317.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-12-20
Publication Date
2025-06-20

AI Technical Summary

Technical Problem

The lights of traditional keyboards can only shine in a fixed way, which makes them boring and boring when using the computer for e-sports games or interactive programs, affecting the user's experience.

Method used

Design an electronic device with dynamic lighting effects, including artificial intelligence interaction unit, custom lighting effect unit, predefined lighting effect unit, real-time lighting effect processing unit, static lighting effect processing unit, lighting effect application program interface unit, human-computer interface equipment control unit, and dynamic lighting effect device. Through the coordinated work of these components, tracking lighting effects, custom lighting effects and predefined lighting effects are provided to realize the generation and display of dynamic lighting effects.

Benefits of technology

Through the generation and display of dynamic lighting effects, users can freely change the various lighting colors and colorful effects of keyboard backlight to improve user experience and meet personalized needs.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention discloses an electronic device with a dynamic light effect and a dynamic light effect generation method. The dynamic lamp effect generation method comprises the following steps. According to a human eye position of a user, a tracking light effect picture is provided, a dynamic light effect picture is received, or a predefined light effect picture is stored. A tracking light effect picture, a dynamic light effect picture or a predefined light effect picture is obtained. And performing a size adjustment program on the tracking light effect picture, the dynamic light effect picture or the predefined light effect picture to obtain a light effect control chart. And controlling the dynamic lamp effect device according to the lamp effect control chart to generate a dynamic lamp effect.
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Description

Technical Field

[0001] The present disclosure relates to an electronic device, and more particularly to an electronic device with a dynamic lighting effect and a method for generating the dynamic lighting effect. Background Art

[0002] The lighting of a traditional keyboard can only emit light in a fixed manner. When using a computer for e-sports games or interactive programs, the fixed lighting of the keyboard will appear dull and boring, resulting in a poor user experience. Therefore, how to enhance the lighting effect of the keyboard and improve the user experience has become one of the research and development directions in the industry. Summary of the Invention

[0003] The present disclosure relates to an electronic device with a dynamic lighting effect and a method for generating the dynamic lighting effect. By providing various dynamic lighting effects, users can freely change the multiple lighting colors and dazzling effects of the keyboard backlight to create a personalized keyboard.

[0004] According to an aspect of the present disclosure, an electronic device with a dynamic lighting effect is provided. The electronic device with a dynamic lighting effect includes an artificial intelligence interaction unit, a custom lighting effect unit, a predefined lighting effect unit, an instant lighting effect processing unit, a static lighting effect processing unit, a lighting effect application program interface unit, a human-machine interface device control unit, and a dynamic lighting effect device. The artificial intelligence interaction unit is configured to provide a tracking lighting effect screen based on the position of a user's eyes. The custom lighting effect unit is configured to receive a dynamic lighting effect screen. The predefined lighting effect unit is configured to store a predefined lighting effect screen. The instant lighting effect processing unit is connected to the artificial intelligence interaction unit and the custom lighting effect unit to obtain the tracking lighting effect screen or the dynamic lighting effect screen. The static lighting effect processing unit is connected to the predefined lighting effect unit to obtain the predefined lighting effect screen. The lighting effect operation unit is connected to the instant lighting effect processing unit and the static lighting effect processing unit. The lighting effect operation unit is configured to perform a size adjustment process on the tracking lighting effect screen, the dynamic lighting effect screen, or the predefined lighting effect screen to obtain a lighting effect control diagram. The lighting effect application program interface unit is connected to the lighting effect operation unit to obtain the lighting effect control diagram. The human-machine interface device control unit is configured to obtain the lighting effect control diagram from the lighting effect application program interface unit. The human-machine interface device control unit outputs a control signal to the dynamic lighting effect device according to the lighting effect control diagram to generate a dynamic lighting effect.

[0005] According to another aspect of the present disclosure, a method for generating a dynamic lighting effect is provided. The method for generating a dynamic lighting effect includes the following steps. Provide a tracking lighting effect screen, receive a dynamic lighting effect screen, or store a predefined lighting effect screen according to the position of one human eye of a user. Obtain the tracking lighting effect screen, the dynamic lighting effect screen, or the predefined lighting effect screen. Perform a size adjustment process on the tracking lighting effect screen, the dynamic lighting effect screen, or the predefined lighting effect screen to obtain a lighting effect control diagram. Control a dynamic lighting effect device according to the lighting effect control diagram to generate a dynamic lighting effect.

[0006] To have a better understanding of the above and other aspects of the present disclosure, the following specific embodiments are given and described in detail with reference to the accompanying drawings as follows: Description of the Drawings

[0007] Figure 1 A schematic diagram of an electronic device with a dynamic lighting effect according to an embodiment of the present disclosure is shown.

[0008] Figure 2 Another schematic diagram of an electronic device with a dynamic lighting effect according to an embodiment of the present disclosure is shown.

[0009] Figure 3 Another schematic diagram of an electronic device with a dynamic lighting effect according to an embodiment of the present disclosure is shown.

[0010] Figure 4 A block diagram of an electronic device with a dynamic lighting effect according to an embodiment of the present disclosure is shown.

[0011] Figure 5 A flowchart of a method for generating a dynamic lighting effect according to an embodiment of the present disclosure is shown.

[0012] Figure 6 A detailed flowchart of step S110 according to an embodiment of the present disclosure is shown.

[0013] Figure 7 A detailed flowchart of step S110 according to another embodiment of the present disclosure is shown.

[0014] Figure 8 A detailed flowchart of step S110 according to another embodiment of the present disclosure is shown.

[0015] Figure 9 A detailed flowchart of step S130 according to an embodiment of the present disclosure is shown.

[0016] Figure 10 Exemplary Description Figure 9 of each step.

[0017] Description of the Reference Numerals

[0018] 110: Artificial Intelligence Interaction Unit

[0019] 120: Customizable lighting effect unit

[0020] 130: Pre - defined lighting effect unit

[0021] 140: Instant lighting effect processing unit

[0022] 150: Static lighting effect processing unit

[0023] 160: Lighting effect operation unit

[0024] 170: Lighting effect application programming interface unit

[0025] 180: Human - machine interface device control unit

[0026] 190: Dynamic lighting effect device

[0027] 1000: Electronic device

[0028] AH, BH: Height

[0029] AW, BW: Width

[0030] CMj: Control signal

[0031] EL: Human eye position

[0032] FM1i: Tracking lighting effect screen

[0033] FM2i: Dynamic lighting effect screen

[0034] FM3i: Pre - defined lighting effect screen

[0035] LMj: Lighting effect control diagram

[0036] S110, S120, S130, S140, S1111, S1112, S1113, S1114, S1121, S1122, S1123, S1131, S1132, S131, S132, S133, S134, S135, S136, S137, S138: Steps Detailed implementation manners

[0037] The technical terms in this specification refer to the customary terms in this technical field. If this specification explains or defines some terms, the explanations of these terms shall be subject to the explanations or definitions in this specification. Each embodiment of this disclosure has one or more technical features. On the premise of possible implementation, those with ordinary knowledge in this technical field can selectively implement some or all of the technical features in any embodiment, or selectively combine some or all of the technical features in these embodiments.

[0038] Please refer to Figure 1, which shows a schematic diagram of an electronic device 1000 with dynamic lighting effects according to an embodiment of the present disclosure. In this embodiment, when using the electronic device 1000, the technology of eye tracking can be utilized to follow the moving direction of the user's eyeballs, so that the dynamic lighting effects of the keyboard also move synchronously.

[0039] Please refer to Figure 2 , which shows another schematic diagram of an electronic device 1000 with dynamic lighting effects according to an embodiment of the present disclosure. In an embodiment, the user can input a certain dynamic picture according to their preference. When using the electronic device 1000, the lighting effects of the keyboard present dynamic lighting effects according to the input dynamic picture.

[0040] Please refer to Figure 3 , which shows another schematic diagram of an electronic device 1000 with dynamic lighting effects according to an embodiment of the present disclosure. In another embodiment, the user can also present dynamic lighting effects according to preset conditions and pictures. For example, when a game user is playing an online shooting game and the ammunition is insufficient, the keyboard can light up the backlights of all the keys with red light to remind the game user.

[0041] Please refer to Figure 4 , which shows a block diagram of an electronic device 1000 with dynamic lighting effects according to another embodiment of the present disclosure. The electronic device 1000 with dynamic lighting effects includes an artificial intelligence interaction unit 110, a custom lighting effects unit 120, a predefined lighting effects unit 130, an instant lighting effects processing (handler) unit 140, a static lighting effects processing unit 150, a lighting effects runtime unit 160, a lighting effects application programming interface unit 170, a human interface device (HID) control unit 180, and a dynamic lighting effects device 190.

[0042] The artificial intelligence interaction unit 110, the custom lighting effects unit 120, and the predefined lighting effects unit 130 are used to provide various lighting effects pictures. The instant lighting effects processing unit 140 and the static lighting effects processing unit 150 are used to obtain the foregoing lighting effects pictures. The lighting effects runtime unit 160 and the lighting effects application programming interface unit 170 are used to perform a conversion program on the foregoing lighting effects pictures to make them conform to the configuration of the dynamic lighting effects device 190. The human interface device control unit 180 is used to control the dynamic lighting effects device 190 so that the dynamic lighting effects device 190 generates dynamic lighting effects.

[0043] The custom lighting effects unit 120 can be any type of data receiving device, such as a wireless transmission module or a USB transmission port.

[0044] The predefined lighting effect unit 130 is, for example, any type of fixed or movable random access memory (RAM), read-only memory (ROM), flash memory, hard disk drive (HDD), solid state drive (SSD), or similar components, or a combination of the above components, and is used to store multiple modules or various application programs that can be executed by the processor.

[0045] The artificial intelligence interaction unit 110, real-time lighting effect processing unit 140, static lighting effect processing unit 150, lighting effect operation unit 160, lighting effect application programming interface unit 170, and human-machine interface device control unit 180 are, for example, a central processing unit (CPU), or other programmable general-purpose or special-purpose micro control units (MCUs), microprocessors, digital signal processors (DSPs), programmable controllers, application specific integrated circuits (ASICs), graphics processing units (GPUs), image signal processors (ISPs), image processing units (IPUs), arithmetic logic units (ALUs), complex programmable logic devices (CPLDs), field programmable gate arrays (FPGAs), solid state or other similar components, or a combination of the above components.

[0046] The dynamic lighting effect device 190 is, for example, a keyboard backlight device, a chassis lighting device, or a mouse housing lighting device.

[0047] In this embodiment, the electronic device 1000 with dynamic lighting effects can, through the above-mentioned various components, allow users to arbitrarily switch different modes according to their preferences, generate different keyboard lighting effects, and meet the users' experience of keyboard lighting effects. The following further details the operation modes of each component in conjunction with a flowchart.

[0048] Please refer to Figure 5, which shows a flowchart of a method for generating a dynamic lighting effect according to an embodiment of the present disclosure. The method for generating a dynamic lighting effect includes steps S110 to S140. In step S110, according to the position EL of a user's one eye, the artificial intelligence interaction unit 110 provides a tracking lighting effect screen FM1i, the custom lighting effect unit 120 receives a dynamic lighting effect screen FM2i, or the predefined lighting effect unit 130 stores a predefined lighting effect screen FM3i.

[0049] For example, when the user's eyeball moves to the left, the light of the tracking lighting effect screen FM1i moves to the left; when the eyeball moves upward, the light of the tracking lighting effect screen FM1i moves towards the computer screen.

[0050] The dynamic lighting effect screen FM2i received by the custom lighting effect unit 120 can be a continuous dynamic screen input by the user according to their preferences.

[0051] The predefined lighting effect screen FM3i stored in the predefined lighting effect unit 130 can be a preset static screen or dynamic screen corresponding to a certain condition.

[0052] Only one of the above tracking lighting effect screen FM1i, dynamic lighting effect screen FM2i, or predefined lighting effect screen FM3i may be provided, without providing them simultaneously. The above tracking lighting effect screen FM1i and dynamic lighting effect screen FM2i are instantaneously changing screens, while the predefined lighting effect screen FM3i is a predefined screen.

[0053] Next, in step S120, the real-time lighting effect processing unit 140 obtains the tracking lighting effect screen FM1i, the real-time lighting effect processing unit 140 obtains the dynamic lighting effect screen FM2i, or the static lighting effect processing unit 150 obtains the predefined lighting effect screen FM3i. In this step, only the tracking lighting effect screen FM1i, or only the dynamic lighting effect screen FM2i, or only the predefined lighting effect screen FM3i may be obtained.

[0054] The real-time lighting effect processing unit 140 is connected to both the artificial intelligence interaction unit 110 and the custom lighting effect unit 120, and is used to receive the tracking lighting effect screen FM1i from the artificial intelligence interaction unit 110 or the dynamic lighting effect screen FM2i from the custom lighting effect unit 120. The static lighting effect processing unit 150 is connected to the predefined lighting effect unit 130 and is used to obtain the predefined lighting effect screen FM3i from the predefined lighting effect unit 130. The tracking lighting effect screen FM1i changes dynamically with the movement of the human eye, and the detailed method of providing and obtaining the tracking lighting effect screen FM1i will be described in Figure 6 . The dynamic lighting effect screen FM2i changes dynamically with time, and the detailed method of providing and obtaining the dynamic lighting effect screen FM2i will be described in Figure 7。The predefined light effect screen FM3i is a predefined screen. The detailed method for providing and obtaining the predefined light effect screen FM3i will be described in Figure 8 。

[0055] Then, in step S130, the light effect operation unit 160 performs a size adjustment procedure on the tracking light effect screen FM1i, the dynamic light effect screen FM2i, or the predefined light effect screen FM3i to obtain a light effect control diagram LMj.

[0056] In step S130, the light effect operation unit 160 performs a width adjustment procedure and a height adjustment procedure on the tracking light effect screen FM1i, the dynamic light effect screen FM2i, or the predefined light effect screen FM3i. The detailed steps of the size adjustment procedure will be described in Figure 9 。

[0057] Next, in step S140, the dynamic light effect device 190 controls the dynamic light effect device 190 according to the light effect control diagram LMj to generate a dynamic light effect. In this step, the light effect application program interface unit 170 obtains the light effect control diagram LMj from the light effect operation unit 160. Then, after the human-machine interface device control unit 180 obtains the light effect control diagram LMj from the light effect application program interface unit 170, it outputs a control signal CMj to the dynamic light effect device 190 according to the light effect control diagram LMj to control the dynamic light effect device 190 to generate the corresponding dynamic light effect.

[0058] According to the above embodiments, the electronic device 1000 with a dynamic light effect can generate different dynamic light effects according to the user's preference, enabling the user to have a better user experience when using the keyboard. The following further describes the detailed processes of each step.

[0059] Please refer to Figure 6 , which shows the detailed flowchart of step S110 according to an embodiment of the present disclosure. According to the above embodiments, the detailed process of step S110 includes steps S1111 to S1114. In step S1111, the artificial intelligence interaction unit 110 obtains the user's eye position EL. The artificial intelligence interaction unit 110, for example, uses an eye recognition model to instantaneously recognize the image in front of the electronic device 1000 to recognize the eyes and track the eye position EL.

[0060] Next, in step S1112, the artificial intelligence interaction unit 110 generates a tracking light effect screen FM1i having a first color and a second color according to the eye position EL. The first color and the second color are two colors with strong contrast, such as red and blue. The first color corresponds to the eye position EL. When the eye position EL moves, the first color can move correspondingly according to the moving direction of the eye position EL.

[0061] In step S1113, the artificial intelligence interaction unit 110 stores the tracking light effect screen FM1i in a shared memory. The shared memory can be, for example, any type of fixed or removable random access memory, read-only memory, flash memory, solid-state hard drive, or similar components, or a combination of the above components. In one embodiment, although the artificial intelligence interaction unit 110 detects the human eye position EL at any time, it may update and store the tracking light effect screen FM1i only when the human eye position EL moves. The newly stored tracking light effect screen FM1i replaces the previously stored tracking light effect screen FM1i.

[0062] In step S1114, the artificial intelligence interaction unit 110 notifies the real-time light effect processing unit 140 to retrieve the tracking light effect screen FM1i from the shared memory. In one embodiment, although the artificial intelligence interaction unit 110 detects the human eye position EL at any time, it may notify the real-time light effect processing unit 140 to retrieve the tracking light effect screen FM1i from the shared memory only when the human eye position EL moves.

[0063] Next, the process proceeds to subsequent steps S120 to S140 to generate corresponding dynamic light effects. Steps S120 to S140 are as described above and will not be repeated here. Therefore, in this embodiment, using the eye tracking technology, as the human eye position EL moves, the dynamic light effect of the keyboard also moves instantaneously in correspondence with its moving direction.

[0064] Please refer to Figure 7 , which shows a detailed flowchart of step S110 according to another embodiment of the present disclosure. In another embodiment, the detailed process of step S110 includes steps S1121 to S1123. In step S1121, the custom light effect unit 120 receives the dynamic light effect screen FM2i. The dynamic light effect screen FM2i can be a dynamic screen input by the user himself. The custom light effect unit 120 receives the dynamic light effect screen FM2i in real time, for example, by obtaining the dynamic screen in real time from the network.

[0065] Then, in step S1122, the custom light effect unit 120 stores the dynamic light effect screen FM2i in the shared memory. Since the dynamic light effect screen FM2i is obtained in real time, the custom light effect unit 120 will store the dynamic light effect screen FM2i in the shared memory in sequence in real time and periodically. The newly stored dynamic light effect screen FM2i replaces the previously stored dynamic light effect screen FM2i.

[0066] Next, in step S1123, the custom light effect unit 120 notifies the real-time light effect processing unit 140 to retrieve the dynamic light effect picture FM2i from the shared memory according to a sampling interval. The sampling interval is, for example, the cycle of storing the picture in the shared memory. According to this sampling interval, the real-time light effect processing unit 140 can successfully obtain the dynamic light effect picture FM2i stored in each cycle.

[0067] Then, proceed to the subsequent steps S120 to S140 to generate corresponding dynamic light effects. Steps S120 to S140 are as described above and will not be repeated here. Therefore, in this embodiment, the light effect of the keyboard can instantaneously present different dynamic light effects according to the dynamic picture instantaneously input by the user.

[0068] Please refer to Figure 8 , which shows the detailed flowchart of step S110 according to another embodiment of the present disclosure. In another embodiment, the detailed process of step S110 includes steps S1131 to S1132. In step S1131, the predefined light effect unit 130 stores the predefined light effect picture FM3i in the shared memory. The predefined light effect picture FM3i is, for example, a single static picture or a dynamic picture of a fixed length. In this embodiment, the predefined light effect picture FM3i corresponds to a certain preset condition.

[0069] In step S1132, the predefined light effect unit 130 notifies the static light effect processing unit 150 to retrieve the predefined light effect picture FM3i from the shared memory according to the sampling interval. Each time the static light effect processing unit 150 retrieves the predefined light effect picture FM3i from the shared memory, it sequentially and cyclically retrieves the predefined light effect picture FM3i according to the predetermined position order.

[0070] Then, proceed to the subsequent steps S120 to S140 to generate corresponding dynamic light effects. Steps S120 to S140 are as described above and will not be repeated here. In this embodiment, the light effect of the keyboard will present the light effect according to the preset condition. When the condition is met, the preset static or dynamic light effect will be presented.

[0071] Please also refer to Figure 9 and Figure 10 , Figure 9 which shows the detailed flowchart of step S130 according to an embodiment of the present disclosure, Figure 10 illustrating the steps of Figure 9 . In this embodiment, the detailed process of step S130 includes steps S131 to S138. In step S131, the light effect operation unit 160 first obtains the width AW and height AH of the dynamic light effect device 190.

[0072] Then, in step S132, the lighting effect operation unit 160 obtains the width BW and height BH of the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i.

[0073] Next, in step S133, the lighting effect operation unit 160 determines whether the width AW of the dynamic lighting effect device 190 is greater than the width BW of the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i.

[0074] If the width AW of the dynamic lighting effect device 190 is greater than the width BW of the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i, then step S134 is entered. In step S134, the lighting effect operation unit 160 performs interpolation on the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i to enlarge the width BW of the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i.

[0075] If the width AW of the dynamic lighting effect device 190 is less than the width BW of the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i, then step S135 is entered. In step S135, the lighting effect operation unit 160 performs pixel - selective deletion on the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i to reduce the width BW of the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i.

[0076] Next, in step S136, the lighting effect operation unit 160 determines whether the height AH of the dynamic lighting effect device 190 is greater than the height BH of the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i.

[0077] If the height AH of the dynamic lighting effect device 190 is greater than the height BH of the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i, then step S137 is entered. In step S137, the lighting effect operation unit 160 performs interpolation on the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i to enlarge the height BH of the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i.

[0078] If the height AH of the dynamic lighting effect device 190 is less than the height BH of the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i, then step S138 is entered. In step S138, the lighting effect operation unit 160 selectively deletes pixels from the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i to reduce the height BH of the tracking lighting effect screen FM1i, the dynamic lighting effect screen FM2i, or the predefined lighting effect screen FM3i.

[0079] According to the various embodiments described above, through the method of generating different dynamic lighting effects, users can arbitrarily switch different modes according to their preferences, generating different keyboard lighting effects and satisfying users' experience of keyboard lighting effects.

[0080] The above disclosure provides different features for implementing some embodiments or examples of the present disclosure. The specific examples of the components and configurations described above (such as the numerical values or names mentioned) are used to simplify / schematize some embodiments of the present disclosure. Of course, these components and configurations are only examples and are not intended to be restrictive. In addition, some embodiments of the present disclosure may repeat reference symbols and / or letters in various examples. This repetition is for the purpose of simplicity and clarity and does not itself indicate the relationship between the various embodiments and / or configurations discussed.

[0081] In summary, although the present disclosure has been disclosed as above with embodiments, it is not intended to limit the present disclosure. Those of ordinary skill in the art to which the present disclosure pertains can make various modifications and refinements without departing from the spirit and scope of the present disclosure. Therefore, the scope of protection of the present disclosure shall be defined by the appended claims.

Claims

1. An electronic device with dynamic lighting effects, characterized in that, Comprising: An artificial intelligence interaction unit for providing a tracking light effect screen according to the position of a user's human eye; A custom light effect unit for receiving a dynamic light effect screen; A predefined light effect unit for storing a predefined light effect screen; An instant light effect processing unit connected to the artificial intelligence interaction unit and the custom light effect unit to obtain the tracking light effect screen or the dynamic light effect screen; A static light effect processing unit connected to the predefined light effect unit to obtain the predefined light effect screen; A light effect operation unit connected to the instant light effect processing unit and the static light effect processing unit. The light effect operation unit is used to perform a size adjustment program on the tracking light effect screen, the dynamic light effect screen or the predefined light effect screen to obtain a light effect control diagram; A light effect application program interface unit connected to the light effect operation unit to obtain the light effect control diagram; A human-machine interface device control unit for obtaining the light effect control diagram from the light effect application program interface unit; and A dynamic light effect device. The human-machine interface device control unit outputs a control signal to the dynamic light effect device according to the light effect control diagram to generate the dynamic light effect.

2. The electronic device with dynamic lighting effects according to claim 1, characterized in that, The artificial intelligence interaction unit obtains the position of the user's human eye and generates the tracking light effect screen with a first color and a second color according to the position of the human eye. The first color corresponds to the position of the human eye.

3. The electronic device with dynamic lighting effects according to claim 1, characterized in that, If the artificial intelligence interaction unit generates the tracking light effect screen, the artificial intelligence interaction unit stores the tracking light effect screen in a shared memory and notifies the instant light effect processing unit to retrieve the tracking light effect screen from the shared memory.

4. The electronic device with dynamic lighting effects according to claim 1, characterized in that, If the custom light effect unit receives the dynamic light effect screen, the custom light effect unit stores the dynamic light effect screen in a shared memory and notifies the instant light effect processing unit to retrieve the dynamic light effect screen from the shared memory according to a sampling interval.

5. The electronic device with dynamic lighting effects according to claim 1, characterized in that, The predefined light effect unit stores the predefined light effect screen in a shared memory and notifies the static light effect processing unit to retrieve the predefined light effect screen from the shared memory according to a sampling interval.

6. The electronic device with dynamic lighting effects according to claim 1, characterized in that, The light effect operation unit performs a width adjustment program on the width of the tracking light effect screen, the dynamic light effect screen or the predefined light effect screen, and performs a height adjustment program on the height of the tracking light effect screen, the dynamic light effect screen or the predefined light effect screen.

7. The electronic device with dynamic lighting effects according to claim 1, characterized in that, The light effect operation unit performs interpolation on the tracking light effect screen, the dynamic light effect screen or the predefined light effect screen to enlarge the width or height.

8. The electronic device with dynamic lighting effects according to claim 1, characterized in that, The light effect operation unit performs pixel selection on the tracking light effect screen, the dynamic light effect screen or the predefined light effect screen to reduce the width or height.

9. A method for generating dynamic lighting effects, characterized in that, Comprising: Providing a tracking light effect screen, receiving a dynamic light effect screen, or storing a predefined light effect screen according to the position of a user's human eye; Obtaining the tracking light effect screen, the dynamic light effect screen or the predefined light effect screen; Performing a size adjustment program on the tracking light effect screen, the dynamic light effect screen or the predefined light effect screen to obtain a light effect control diagram; and Control the dynamic lighting effect device according to the lighting effect control diagram to generate the dynamic lighting effect.

10. The method for generating dynamic lighting effects according to claim 9, characterized in that, In the step of providing the tracking lighting effect screen, generate the tracking lighting effect screen with a first color and a second color according to the human eye position, and the first color corresponds to the human eye position.

11. The method for generating dynamic lighting effects according to claim 9, characterized in that, The tracking lighting effect screen is stored in a shared memory, and an immediate lighting effect processing unit is notified to retrieve the tracking lighting effect screen from the shared memory.

12. The method for generating dynamic lighting effects according to claim 9, characterized in that, The dynamic lighting effect screen is stored in a shared memory, and an immediate lighting effect processing unit is notified to retrieve the dynamic lighting effect screen from the shared memory according to a sampling interval.

13. The method for generating a dynamic lighting effect according to claim 9, wherein, The predefined lighting effect screen is stored in a shared memory, and a static lighting effect processing unit is notified to retrieve the dynamic lighting effect screen from the shared memory according to a sampling interval.

14. The method for generating a dynamic lighting effect according to claim 9, wherein, In the step of performing the size adjustment procedure on the tracking lighting effect screen, the dynamic lighting effect screen, or the predefined lighting effect screen, perform a width adjustment procedure on the width of the tracking lighting effect screen, the dynamic lighting effect screen, or the predefined lighting effect screen, and perform a height adjustment procedure on the height of the tracking lighting effect screen, the dynamic lighting effect screen, or the predefined lighting effect screen.

15. The method for generating a dynamic lighting effect according to claim 9, wherein, In the step of performing the size adjustment procedure on the tracking lighting effect screen, the dynamic lighting effect screen, or the predefined lighting effect screen, perform interpolation on the tracking lighting effect screen, the dynamic lighting effect screen, or the predefined lighting effect screen to enlarge the width or height.

16. The method for generating a dynamic lighting effect according to claim 9, wherein, In the step of performing the size adjustment procedure on the tracking lighting effect screen, the dynamic lighting effect screen, or the predefined lighting effect screen, perform pixel selection on the tracking lighting effect screen, the dynamic lighting effect screen, or the predefined lighting effect screen to reduce the width or height.