Intelligent cooperation system

Through the distributed coding box and wireless transmission technology of the intelligent collaboration system, the complex management and signal delay of multiple devices in traditional systems are solved, and unified management and real-time interaction of multiple devices are realized, and user experience and system efficiency are improved.

CN223157150UActive Publication Date: 2025-07-25NANJING GOLDMAN SACHS MAGIC FLUTE INFORMATION TECH CO LTD
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Patent Information

Application Number
CN202422399117.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2025-07-25
Estimated Expiration
2034-09-30

AI Technical Summary

Technical Problem

Traditional teaching and conference systems are difficult to achieve unified management and control in a multi-equipment environment, and signal transmission is delayed and costly, resulting in complex operations and inefficient efficiency.

Method used

It adopts an intelligent collaboration system, including TeamHub host, touch display, LED screen, multiple ShareHub hosts and multiple distributed encoding boxes, and realizes signal transmission through HDMI and Ethernet interfaces, and uses WIFI modules for wireless transmission. The distributed encoding box includes STM32F405RG microcontroller, video and audio encoder, realizing unified management and real-time interaction of multiple devices.

Benefits of technology

It realizes unified management and real-time interaction of multiple devices, improves the interactivity and participation of teaching and conferences, simplifies equipment management, reduces wiring costs and complexity, and reduces signal delay.

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Abstract

The utility model relates to the technical field of intelligent learning, in particular to an intelligent cooperation system, which comprises a TeamHub host, a touch display, an LED (light-emitting diode) screen, a plurality of ShareHub hosts and a plurality of distributed coding boxes, the TeamHub host and the plurality of ShareHub hosts form a network, the TeamHub host is respectively connected with the touch display and the LED screen, and user equipment is connected with the ShareHub hosts through the corresponding distributed coding boxes. The introduction of the distributed coding box simplifies the equipment management process, so that the user equipment can easily access the system, and the operation complexity is reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of intelligent learning, and particularly relates to an intelligent collaboration system. Background Art

[0002] In modern education and conference systems, interactivity and collaboration are key factors in improving efficiency and effectiveness. Traditional teaching and conference systems usually rely on a single display device and limited interaction means, making it difficult to meet the collaboration needs of multiple users and multiple devices.

[0003] Defects and deficiencies of the prior art:

[0004] Complex device management: In a multi-device environment, traditional systems are difficult to achieve unified management and control of multiple devices, resulting in complex operations and low efficiency.

[0005] Signal transmission delay: When existing systems perform signal transmission, they often encounter delay and synchronization problems, affecting the user experience.

[0006] High cost: Existing high-end interactive systems usually have a high cost, making it difficult to popularize and apply on a large scale. Summary of the Utility Model

[0007] The utility model provides an intelligent collaboration system, which realizes unified management and real-time interaction of multiple devices, and greatly improves the interactivity and participation of teaching and conferences.

[0008] In order to achieve the purpose of the utility model, the technical solution adopted is: an intelligent collaboration system, including a TeamHub host, a touch display, an LED screen, multiple ShareHub hosts and multiple distributed encoding boxes. The TeamHub host and multiple ShareHub hosts form a network. The TeamHub host is respectively connected to the touch display and the LED screen. User devices are connected to the ShareHub hosts through corresponding distributed encoding boxes.

[0009] As an optimized scheme of the utility model, the distributed encoding box includes an HDMI interface and an Ethernet interface. The distributed encoding box receives digital video / audio of user devices through the HDMI interface, and transmits the digital audio / video in the network through the Ethernet interface.

[0010] As an optimized scheme of the utility model, the distributed encoding box includes a processor U1, and the processor U1 is an STM32F405RG microcontroller.

[0011] As an optimized solution of the utility model, the distributed coding box further includes a video encoder U2. The first pin of the video encoder U2 is grounded through a series-connected capacitor C30 and resistor R17. The ninth pin of the video encoder U2 is connected to the 26th pin of the processor U1. The 25th pin of the video encoder U2 is connected to the 27th pin of the processor U1. The 24th pin of the video encoder U2 is connected to the 28th pin of the processor U1. The 18th pin of the video encoder U2 is connected to the 8th pin of the processor U1. The 17th pin of the video encoder U2 is connected to the 9th pin of the processor U1. The 16th pin of the video encoder U2 is connected to the 10th pin of the processor U1. The 15th pin of the video encoder U2 is connected to the 11th pin of the processor U1. The 14th pin of the video encoder U2 is connected to the 24th pin of the processor U1. The 13th pin of the video encoder U2 is connected to the 25th pin of the processor U1. The 12th pin of the video encoder U2 is connected to the 37th pin of the processor U1. The 11th pin of the video encoder U2 is connected to the 38th pin of the processor U1.

[0012] As an optimized solution of the utility model, the distributed coding box further includes an audio encoder U3. The fourth pin of the audio encoder U3 is connected to a microphone through a series-connected resistor R18 and capacitor C11. The bead L3, L4 and capacitor C18 form an output filter circuit. The 11th pin of the audio encoder U3 is connected to the 56th pin of the processor U1. The 12th pin of the audio encoder U3 is connected to the 57th pin of the processor U1. The 13th pin of the audio encoder U3 is connected to the 58th pin of the processor U1. The 14th pin of the audio encoder U3 is connected to the 59th pin of the processor U1. The 16th pin of the audio encoder U3 is connected to the 61st pin of the processor U1. The 17th pin of the audio encoder U3 is connected to the 62nd pin of the processor U1. The 18th pin of the audio encoder U3 is connected to the 29th pin of the processor U1.

[0013] As an optimized solution of the utility model, the distributed coding box further includes a WIFI module. The distributed coding box wirelessly transmits digital audio / video through the WIFI module.

[0014] As an optimized solution of the present utility model, the WIFI module includes a WIFI chip U4, a capacitor C3, an inductor L1, an inductor L2, and a resistor R2. One end of the capacitor C3 is connected to the antenna. The inductor L1 is connected between one end of the capacitor C3 and the ground. The inductor L2 is connected between the other end of the capacitor C3 and the ground. The 7th pin of the WIFI chip U4 is connected to the 30th pin of the processor U1. The 32nd pin of the WIFI chip U4 is connected to the 33rd pin of the processor U1. The 21st pin of the WIFI chip U4 is connected to the 34th pin of the processor U1 through the resistor R2. The 26th pin of the WIFI chip U4 is connected to the 44th pin of the processor U1. The 25th pin of the WIFI chip U4 is connected to the 43rd pin of the processor U1.

[0015] The present utility model has positive effects: 1) Through the distributed control of TeamHub and ShareHub, the present utility model realizes the unified management and real-time interaction of multiple devices, greatly improving the interactivity and participation of teaching and meetings;

[0016] 2) The present utility model system introduces a distributed coding box, enabling user devices to be conveniently connected to the system, enhancing the flexibility and expandability of the system, and being able to adapt to different usage scenarios and requirements;

[0017] 3) The introduction of the distributed coding box of the present utility model simplifies the device management process, enabling user devices to be easily connected to the system and reducing the operation complexity. Receiving the digital video / audio of the user device through the HDMI interface and transmitting it in the network through the Ethernet interface ensures the real-time and stability of signal transmission, reducing latency and synchronization problems;

[0018] 4) The present utility model uses a WIFI module for wireless transmission, making the deployment of the system more flexible, adaptable to different application scenarios, and reducing the wiring cost and complexity. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] The following further elaborates on the present utility model in detail in conjunction with the drawings and specific embodiments.

[0020] Figure 1 is the overall principle block diagram of the present utility model;

[0021] Figure 2 is the circuit schematic diagram of the processor of the present utility model;

[0022] Figure 3 is the circuit schematic diagram of the video encoder of the present utility model;

[0023] Figure 4 is the circuit schematic diagram of the audio encoder of the present utility model;

[0024] Figure 5 This is the circuit schematic diagram of the WIFI module of the present utility model. Detailed implementation manners

[0025] As Figure 1 As shown in the figure, the present utility model discloses an intelligent collaboration system, including a TeamHub host, a touch display, an LED screen, multiple ShareHub hosts, and multiple distributed encoding boxes. The TeamHub host and the multiple ShareHub hosts form a network. The TeamHub host is respectively connected to the touch display and the LED screen. The user device is connected to the ShareHub host through the corresponding distributed encoding box. Among them, the TeamHub host is operated by the meeting host, and the ShareHub host is operated by the participants. The TeamHub host serves as the host, and the ShareHub host serves as a group.

[0026] The distributed encoding box includes an HDMI interface and an Ethernet interface. The distributed encoding box receives the digital video / audio of the user device through the HDMI interface, and transmits the digital audio / video in the network through the Ethernet interface. The ShareHub host corresponds to the distributed encoding box one by one. When there is a signal in the encoding box, it is automatically displayed on the ShareHub; when there is no signal in the encoding box, it is automatically offline on the ShareHub. The ShareHub host only manages the currently corresponding encoding box. The user's notebook device accesses the system through the distributed encoding box to achieve signal transmission and display.

[0027] As Figure 2 As shown in the figure, the distributed encoding box includes a processor U1, and the processor U1 is an STM32F405RG microcontroller.

[0028] As Figure 3As shown, the distributed coding box further includes a video encoder U2. The first pin of the video encoder U2 is grounded through a series-connected capacitor C30 and resistor R17. The ninth pin of the video encoder U2 is connected to the 26th pin of the processor U1. The 25th pin of the video encoder U2 is connected to the 27th pin of the processor U1. The 24th pin of the video encoder U2 is connected to the 28th pin of the processor U1. The 18th pin of the video encoder U2 is connected to the 8th pin of the processor U1. The 17th pin of the video encoder U2 is connected to the 9th pin of the processor U1. The 16th pin of the video encoder U2 is connected to the 10th pin of the processor U1. The 15th pin of the video encoder U2 is connected to the 11th pin of the processor U1. The 14th pin of the video encoder U2 is connected to the 24th pin of the processor U1. The 13th pin of the video encoder U2 is connected to the 25th pin of the processor U1. The 12th pin of the video encoder U2 is connected to the 37th pin of the processor U1. The 11th pin of the video encoder U2 is connected to the 38th pin of the processor U1.

[0029] As Figure 4 As shown, the distributed coding box further includes an audio encoder U3. The fourth pin of the audio encoder U3 is connected to a microphone through a series-connected resistor R18 and capacitor C11. The beads L3, L4 and capacitor C18 form an output filter circuit. The 11th pin of the audio encoder U3 is connected to the 56th pin of the processor U1. The 12th pin of the audio encoder U3 is connected to the 57th pin of the processor U1. The 13th pin of the audio encoder U3 is connected to the 58th pin of the processor U1. The 14th pin of the audio encoder U3 is connected to the 59th pin of the processor U1. The 16th pin of the audio encoder U3 is connected to the 61st pin of the processor U1. The 17th pin of the audio encoder U3 is connected to the 62nd pin of the processor U1. The 18th pin of the audio encoder U3 is connected to the 29th pin of the processor U1.

[0030] The design of the distributed coding box allows user equipment to easily access the system, enhancing the flexibility and scalability of the system. The introduction of the distributed coding box improves the real-time performance and stability of signal transmission, reduces latency, and thus improves the user experience.

[0031] The distributed coding box further includes a WIFI module. The distributed coding box wirelessly transmits digital audio / video through the WIFI module.

[0032] As Figure 5As shown in the figure, the WIFI module includes a WIFI chip U4, a capacitor C3, an inductor L1, an inductor L2, and a resistor R2. One end of the capacitor C3 is connected to the antenna. The inductor L1 is connected between one end of the capacitor C3 and the ground. The inductor L2 is connected between the other end of the capacitor C3 and the ground. The 7th pin of the WIFI chip U4 is connected to the 30th pin of the processor U1. The 32nd pin of the WIFI chip U4 is connected to the 33rd pin of the processor U1. The 21st pin of the WIFI chip U4 is connected to the 34th pin of the processor U1 through the resistor R2. The 26th pin of the WIFI chip U4 is connected to the 44th pin of the processor U1. The 25th pin of the WIFI chip U4 is connected to the 43rd pin of the processor U1.

[0033] Through the design of the distributed control architecture and the distributed coding box, the utility model realizes the unified management and real-time interaction of multiple devices, improves the interactivity and participation of the system, simplifies device management and signal transmission, enhances the flexibility and scalability of the system, and is suitable for the intelligent collaboration of modern education and conference systems.

[0034] The above specific embodiments have further elaborated on the purpose, technical solutions, and beneficial effects of the utility model. It should be understood that the above are only specific embodiments of the utility model and are not used to limit the utility model. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the utility model shall be included within the protection scope of the utility model.

Claims

1. An intelligent collaboration system, characterized in that: It includes a TeamHub host, a touch display, an LED screen, multiple ShareHub hosts, and multiple distributed encoding boxes. The TeamHub host and the multiple ShareHub hosts form a network. The TeamHub host is respectively connected to the touch display and the LED screen. The user device is connected to the ShareHub host through the corresponding distributed encoding box.

2. The intelligent collaboration system according to claim 1, characterized in that: The distributed encoding box includes an HDMI interface and an Ethernet interface. The distributed encoding box receives the digital video / audio of the user device through the HDMI interface and transmits the digital audio / video in the network through the Ethernet interface.

3. An intelligent collaboration system according to claim 2, characterized in that: The distributed encoding box includes a processor U1, and the processor U1 is an STM32F405RG microcontroller.

4. An intelligent collaboration system according to claim 3, characterized in that: The distributed encoding box further includes a video encoder U2. The first pin of the video encoder U2 is grounded through a series-connected capacitor C30 and resistor R17. The ninth pin of the video encoder U2 is connected to the 26th pin of the processor U1. The 25th pin of the video encoder U2 is connected to the 27th pin of the processor U1. The 24th pin of the video encoder U2 is connected to the 28th pin of the processor U1. The 18th pin of the video encoder U2 is connected to the 8th pin of the processor U1. The 17th pin of the video encoder U2 is connected to the 9th pin of the processor U1. The 16th pin of the video encoder U2 is connected to the 10th pin of the processor U1. The 15th pin of the video encoder U2 is connected to the 11th pin of the processor U1. The 14th pin of the video encoder U2 is connected to the 24th pin of the processor U1. The 13th pin of the video encoder U2 is connected to the 25th pin of the processor U1. The 12th pin of the video encoder U2 is connected to the 37th pin of the processor U1. The 11th pin of the video encoder U2 is connected to the 38th pin of the processor U1.

5. An intelligent collaboration system according to claim 4, characterized in that: The distributed encoding box further includes an audio encoder U3. The fourth pin of the audio encoder U3 is connected to a microphone through a series-connected resistor R18 and capacitor C11. The beads L3, L4, and capacitor C18 form an output filter circuit. The 11th pin of the audio encoder U3 is connected to the 56th pin of the processor U1. The 12th pin of the audio encoder U3 is connected to the 57th pin of the processor U1. The 13th pin of the audio encoder U3 is connected to the 58th pin of the processor U1. The 14th pin of the audio encoder U3 is connected to the 59th pin of the processor U1. The 16th pin of the audio encoder U3 is connected to the 61st pin of the processor U1. The 17th pin of the audio encoder U3 is connected to the 62nd pin of the processor U1. The 18th pin of the audio encoder U3 is connected to the 29th pin of the processor U1.

6. An intelligent collaboration system according to claim 5, wherein: The distributed encoding box further includes a WIFI module, and the distributed encoding box wirelessly transmits the digital audio / video through the WIFI module.

7. An intelligent collaboration system according to claim 6, wherein: The WIFI module includes a WIFI chip U4, a capacitor C3, an inductor L1, an inductor L2, and a resistor R2. One end of the capacitor C3 is connected to the antenna. The inductor L1 is connected between one end of the capacitor C3 and the ground. The inductor L2 is connected between the other end of the capacitor C3 and the ground. The 7th pin of the WIFI chip U4 is connected to the 30th pin of the processor U1. The 32nd pin of the WIFI chip U4 is connected to the 33rd pin of the processor U1. The 21st pin of the WIFI chip U4 is connected to the 34th pin of the processor U1 through the resistor R2. The 26th pin of the WIFI chip U4 is connected to the 44th pin of the processor U1. The 25th pin of the WIFI chip U4 is connected to the 43rd pin of the processor U1.