Multimedia multicolor light somatosensory interaction control system
By designing a multimedia fantasy lighting somatosensory interaction control system, using the combination of modules such as interactive end, server end, and processing end, the existing system's lack of adaptability and personalized needs in the site are solved, and the diversity of lighting effects and the improvement of human-computer interaction is achieved.
Patent Information
- Application Number
- CN202510814800.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-18
- Publication Date
- 2025-07-29
AI Technical Summary
The existing multimedia fantasy lighting control system has shortcomings in the adaptability and personalized needs of different sites, and lacks good human-computer interaction.
A multimedia fantasy lighting somatosensory interaction control system is designed, including interactive end, server end, processing end, node end, dynamic adaptation module, multi-dimensional interaction module, deep learning module, interactive precision module and hierarchical collaboration module. Through the combination of these modules, the lighting effect is automatically adjusted according to environmental changes, and personalized settings and multi-modal interaction are supported.
It realizes the diversity of lighting control and environmental adaptability, meets users' personalized needs, and improves human-computer interaction capabilities.
Smart Images

Figure CN120390341A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of lighting control, and particularly to a multimedia colorful lighting somatosensory interaction control system. Background Art
[0002] Multimedia colorful lights are a high-tech lighting device that combines multiple technologies, mainly used to create rich and colorful lighting effects. By integrating LED light strips, controllers, and programming software, it can achieve complex lighting changes and animation effects.
[0003] There are many existing venues using multimedia colorful lights, but the control states of the colorful lights used in these venues are relatively single. It is difficult for the colorful lights to be controlled and adjusted according to the environmental needs of the use venue. In addition, the existing multimedia colorful lights cannot meet the personalized needs of users and do not have good human-computer interaction. Summary of the Invention
[0004] The purpose of the present invention is to provide a multimedia colorful lighting somatosensory interaction control system to solve the problems in the above background art that there are many existing venues using multimedia colorful lights, but the control states of the colorful lights used in these venues are relatively single. It is difficult for the colorful lights to be controlled and adjusted according to the environmental needs of the use venue. In addition, the existing multimedia colorful lights cannot meet the personalized needs of users and do not have good human-computer interaction.
[0005] To achieve the above purpose, the present invention provides the following technical solution: A multimedia colorful lighting somatosensory interaction control system includes an interaction end, a server end, a processing end, a node end, a dynamic adaptation module, a multi-dimensional interaction module, a deep learning module, an interaction precision module, and a hierarchical collaboration module. The output end of the interaction end is unidirectionally connected to the server end. The server end is bidirectionally connected to the processing end. The output end of the processing end is unidirectionally connected to the input end of the node end. The interaction end is bidirectionally connected to the dynamic adaptation module, the multi-dimensional interaction module, and the deep learning module. The processing end is bidirectionally connected to the interaction precision module. The interaction precision module is bidirectionally connected to the hierarchical collaboration module.
[0006] As a preferred solution of the present invention: The interaction end is used to send interaction messages.
[0007] As a preferred solution of the present invention: The server end is used to receive the interaction messages sent by the interaction end and generate a light source linkage control command.
[0008] As a preferred solution of the present invention: The processing end is used to process the light source linkage control command according to preset conditions and generate different node commands.
[0009] As a preferred embodiment of the present invention: The node end is used to receive the corresponding node commands sent by the processing end and control the corresponding light source components to emit light in sequence.
[0010] As a preferred embodiment of the present invention: The processing end includes a controller, a monitoring module, a communication module, and a data storage module. The output end of the processing end is unidirectionally connected to the input end of the controller, and the output ends of the controller are unidirectionally connected to the input ends of the monitoring module, the communication module, and the data storage module;
[0011] The controller conducts data interaction with the server through the communication module;
[0012] The monitoring module is used to monitor the server and the node end;
[0013] The data storage module is used to store the data generated during operation.
[0014] As a preferred embodiment of the present invention: The dynamic adaptation module is used to automatically control and adjust the lights through environmental sensors, and can switch between warm and cold color tones according to changes in temperature and humidity, and adjust the lighting rhythm through noise sensors to achieve scenario-based adaptive adjustment.
[0015] As a preferred embodiment of the present invention: The multi-dimensional interaction module is used to meet different interaction preferences under multi-modal conditions such as combining mobile phone APPs and wearable devices.
[0016] As a preferred embodiment of the present invention: The deep learning module is used to record the usage habits of different venues using machine learning algorithms, and add tags according to different venue habits to facilitate pre-loading configuration through the system before use.
[0017] As a preferred embodiment of the present invention: The interaction precision module is used to combine a depth camera and a measurement unit to automatically identify the spatial layout and light interference, and then ensure stable interaction in a complex venue environment through a dynamic optimization sensor;
[0018] The hierarchical collaboration module is used for personalized custom setting of operation steps, enabling the preset scene to be enabled with one key at the first level to meet the plug-and-play requirement, and opening API interfaces and programming tools at the second level for technical users to deeply customize the light effect algorithm, and supporting the cooperation of light bodies.
[0019] Compared with the prior art, the beneficial effects of the present invention are as follows: By adding an interaction terminal, the present invention can send interaction messages. By adding a server terminal, it can receive the interaction messages sent by the interaction terminal and generate a light source linkage control command. By adding a processing terminal, it can process the light source linkage control command according to preset conditions and generate different node commands. By adding a node terminal, it can receive the corresponding node commands sent by the processing terminal and control the corresponding light source components to emit light in sequence. By adding a controller, data interaction with the server terminal can be realized through a communication module. By adding a monitoring module, the server terminal and the node terminal can be monitored. By adding a data storage module, the data generated during operation can be stored. Furthermore, through the above cooperation, the control state of the colorful lights can be made more diverse, better adapted to different environmental venues, meet the personalized needs of users, and have good human-computer interaction. Brief Description of the Drawings
[0020] Figure 1 It is a block diagram of the system of the present invention. Detailed Embodiment
[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0022] Please refer to Figure 1 , the present invention provides a technical solution: A multimedia colorful light somatosensory interaction control system, including an interaction terminal, a server terminal, a processing terminal, a node terminal, a dynamic adaptation module, a multi-dimensional interaction module, a deep learning module, an interaction precision module, and a hierarchical cooperation module. The output end of the interaction terminal is unidirectionally connected to the server terminal, the server terminal is bidirectionally connected to the processing terminal, the output end of the processing terminal is unidirectionally connected to the input end of the node terminal, the interaction terminal is bidirectionally connected to the dynamic adaptation module, the multi-dimensional interaction module, and the deep learning module, the processing terminal is bidirectionally connected to the interaction precision module, and the interaction precision module is bidirectionally connected to the hierarchical cooperation module.
[0023] Among them, the interaction terminal is used to send interaction messages.
[0024] Among them, the server terminal is used to receive the interaction messages sent by the interaction terminal and generate a light source linkage control command.
[0025] Among them, the processing terminal is used to process the light source linkage control command according to preset conditions and generate different node commands.
[0026] Among them, the node end is used to receive the corresponding node commands sent by the processing end and control the corresponding light source components to emit light in sequence.
[0027] Among them, the processing end includes a controller, a monitoring module, a communication module, and a data storage module. The output end of the processing end is unidirectionally connected to the input end of the controller, and the output ends of the controller are unidirectionally connected to the input ends of the monitoring module, the communication module, and the data storage module;
[0028] The controller conducts data interaction with the server through the communication module;
[0029] The monitoring module is used to monitor the server and the node end;
[0030] The data storage module is used to store the data generated during operation.
[0031] Among them, the dynamic adaptation module is used to automatically control and adjust the lights through environmental sensors, and thus can switch between warm and cold color tones according to the changes in temperature and humidity, and adjust the lighting rhythm through noise sensors to achieve situational adaptive adjustment.
[0032] Among them, the multi-dimensional interaction module is used to meet different interaction preferences under multi-modal conditions such as combining mobile phone APPs and wearable devices.
[0033] Among them, the deep learning module is used to record the usage habits of different venues using machine learning algorithms, and add labels according to different venue habits, so as to facilitate preloading configuration through the system before use.
[0034] Among them, the interaction precision module is used to combine a depth camera and a measurement unit to automatically identify the spatial layout and light interference, and then ensure stable interaction in a complex venue environment through a dynamic optimization sensor;
[0035] The hierarchical cooperation module is used for personalized custom setting of operation steps, enabling preset scenarios with one key at the first level to meet the plug-and-play requirements, and opening API interfaces and programming tools at the second level for technical users to deeply customize light effect algorithms, and supporting light body cooperation.
[0036] Specifically, during use, interaction messages are sent through the interaction terminal. The service terminal receives the interaction messages sent by the interaction terminal and generates light source linkage control commands. Then, the processing terminal processes the light source linkage control commands according to preset conditions and generates different node commands. After that, the node terminal receives the corresponding node commands sent by the processing terminal and controls the corresponding light source components to emit light in sequence. Through the controller in the processing terminal, data interaction is carried out with the service terminal through the communication module, the service terminal and the node terminal are monitored through the monitoring module, and the data generated during work is stored through the data storage module. During use, the dynamic adaptation module automatically controls and adjusts the lights through the environmental sensor as needed, and can switch between warm and cold color tones according to changes in temperature and humidity, and adjusts the lighting rhythm through the noise sensor to achieve scenario-based adaptive adjustment. Through the multi-dimensional interaction module, in combination with multi-modal conditions such as mobile phone APPs and wearable devices, different interaction preferences are satisfied. Through the deep learning module, machine learning algorithms can be used to record the usage habits of different venues and add tags according to different venue habits, which is convenient for preloading and configuration through the system before use. Furthermore, through the dynamic adaptation module, multi-dimensional interaction module and deep learning module, they can be used to interactively allocate the working conditions of the interaction terminal. And through the interaction precision module, in combination with the depth camera and the measurement unit, the space layout and light interference can be automatically identified, and then through the dynamic optimization sensor, stable interaction in a complex venue environment is ensured. Through the hierarchical cooperation module, personalized custom setting of operation steps can be carried out. One key enables the preset scene at the first level to meet the plug-and-play requirement. The second level opens the API interface and programming tools for technical users to deeply customize the light effect algorithm and supports light body cooperation. Furthermore, through the cooperation of the interaction precision module and the hierarchical cooperation module, the precise interaction ability and collaborative working ability of the processing terminal can be enhanced.
[0037] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made in these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A multimedia magic color light body-sensing interaction control system, characterized in that, It includes an interaction end, a server end, a processing end, a node end, a dynamic adaptation module, a multi-dimensional interaction module, a deep learning module, an interaction precision module, and a hierarchical collaboration module. The output end of the interaction end is unidirectionally connected to the server end. The server end is bidirectionally connected to the processing end. The output end of the processing end is unidirectionally connected to the input end of the node end. The interaction end is bidirectionally connected to the dynamic adaptation module, the multi-dimensional interaction module, and the deep learning module. The processing end is bidirectionally connected to the interaction precision module. The interaction precision module is bidirectionally connected to the hierarchical collaboration module.
2. The multimedia magic color light somatosensory interaction control system according to claim 1, wherein: The interaction end is used to send interaction messages.
3. The multimedia psychedelic lighting somatosensory interaction control system according to claim 1, characterized in that: The server end is used to receive the interaction messages sent by the interaction end and generate a light source linkage control command.
4. A multimedia magic color light somatosensory interaction control system according to claim 1, characterized in that: The processing end is used to process the light source linkage control command according to preset conditions and generate different node commands.
5. The multimedia magic color light somatosensory interaction control system according to claim 1, characterized in that: The node end is used to receive the corresponding node commands sent by the processing end and control the corresponding light source components to emit light in sequence.
6. The multimedia magic color light body-sensing interaction control system according to claim 1, characterized in that: The processing end includes a controller, a monitoring module, a communication module, and a data storage module. The output end of the processing end is unidirectionally connected to the input end of the controller. The output end of the controller is unidirectionally connected to the input ends of the monitoring module, the communication module, and the data storage module; The controller performs data interaction with the server end through the communication module; The monitoring module is used to monitor the server end and the node end; The data storage module is used to store the data generated during operation.
7. The multimedia magic color light somatosensory interaction control system according to claim 1, characterized in that: The dynamic adaptation module is used to automatically control and adjust the lights through an environmental sensor, and then can switch between warm and cold color tones according to the changes in temperature and humidity, and adjust the light rhythm through a noise sensor to achieve scenario-based adaptive adjustment.
8. A multimedia magic color light somatosensory interaction control system according to claim 1, characterized in that: The multi-dimensional interaction module is used to meet different interaction preferences under multi-modal conditions such as combining a mobile phone APP and wearable devices.
9. The multimedia magic color light somatosensory interaction control system according to claim 1, characterized in that: The deep learning module is used to use machine learning algorithms to record the usage habits of different venues and add tags according to different venue habits, facilitating pre-loading configuration through the system before use.
10. A multimedia magic color light body-sensing interaction control system according to claim 1, characterized in that: The interaction precision module is used to combine a depth camera and a measurement unit to automatically identify the spatial layout and light interference, and then ensure stable interaction in a complex venue environment through a dynamic optimization sensor; The hierarchical collaboration module is used to customize the operation steps personally, enable the preset scene with one key at the first level to meet the plug-and-play requirements, and open the API interface and programming tools at the second level for technical users to deeply customize the light effect algorithm and support the cooperation of light bodies.