Device assembly teaching method, edge data area storage server and system

CN117632059BActive Publication Date: 2026-10-09CHINA UNITED NETWORK COMM GRP CO LTD
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
CN202210952093.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-08-09
Publication Date
2026-10-09
Estimated Expiration
2042-08-09

AI Technical Summary

Technical Problem

[0002]随着微电子电路集成度的大幅度提高,电子设备越来越复杂,组装密度越来越高,承担机械与电气连接的焊点尺寸越来越小,电子设备的组装难度也越来越高,而任意焊点的失效或者组装过程中的错误就有可能造成器件甚至系统整体的失效,因此,需要组装的电子设备容易在安装出错时损坏,但现有的说明书和视频方法无法让用户进行实际操作的练习

Benefits of technology

[0037] The equipment assembly teaching method, edge data area storage server, equipment assembly teaching system, and electronic devices disclosed herein utilize edge big data containerization virtual technology for AR teaching demonstrations. AR simulation calculations can be placed on an edge computing platform, providing users with dedicated core demonstration data containers for equipment assembly teaching. This allows multiple users to simultaneously perform AR assembly simulations, improving the interactivity of product assembly and reducing the return rate of electronic devices.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN117632059B_ABST
    Figure CN117632059B_ABST
Patent Text Reader

Abstract

The present disclosure provides a device assembly teaching method, an edge data area storage server, a device assembly teaching system and an electronic device to solve the problem that the existing virtual simulation teaching technology cannot meet the current device assembly teaching requirements. The method comprises: starting a teaching data container; receiving AR demonstration data pushed by each teaching device component through a teaching data container interface; merging the AR demonstration data of each teaching device component to obtain AR demonstration data results; after receiving a teaching request from a user end, starting a core demonstration data container to which the user belongs, and synchronizing the AR demonstration data results to the core demonstration data container; and communicating with the user end through the core demonstration data container to carry out device assembly teaching. The technical scheme of the present disclosure can place AR simulation calculation on an edge computing platform, and can simultaneously allow multiple users to perform AR assembly simulation, thereby reducing the repair rate of electronic device assembly.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This disclosure relates to the field of assembly teaching technology, specifically to a device assembly teaching method, an edge data area storage server, a device assembly teaching system, and an electronic device. Background Technology

[0002] With the significant increase in the integration of microelectronic circuits, electronic devices are becoming increasingly complex, with higher assembly densities and smaller solder joints for mechanical and electrical connections. This has led to greater assembly difficulties, as failure of any solder joint or error during assembly can cause device or even system failure. Therefore, electronic devices requiring assembly are prone to damage when incorrectly installed. Existing manuals and video methods do not allow users to practice hands-on operation. While virtual simulation teaching technology has emerged, most virtual systems implemented using this technology are often unrealistic, difficult to operate, and lack portability. They are also mostly limited to a one-person-one-device operation mode. Furthermore, virtual simulation applications are generally extremely sensitive to latency and have high demands on computing and communication. Running AR (Augmented Reality) applications on mobile devices also places high demands on the device's computing power and battery consumption. Therefore, existing virtual simulation teaching technologies cannot meet the current requirements for device assembly instruction and have limited applicability. Users cannot perform feasible simulations before actual operation, leading to easy damage and high repair rates during electronic device installation. Summary of the Invention

[0003] To address the aforementioned technical problems in the existing technology, this disclosure provides a device assembly teaching method, an edge data area storage server, a device assembly teaching system, and an electronic device. By using edge big data containerization virtual technology for AR teaching demonstrations, AR simulation calculations can be placed on an edge computing platform, and multiple users can simultaneously perform AR assembly simulations, thereby improving the interactivity of product assembly and reducing the return rate of electronic device assembly.

[0004] In a first aspect, this disclosure provides a device assembly teaching method applied to an edge data area storage server, the method comprising:

[0005] Start the teaching data container;

[0006] Receive AR demonstration data pushed by various teaching equipment components through the teaching data container interface;

[0007] The AR demonstration data of each teaching equipment component is merged to obtain the AR demonstration data result;

[0008] Upon receiving a teaching request from a user, the core demonstration data container to which the user belongs is activated, and the AR demonstration data results generated by the teaching data container are synchronized to the core demonstration data container.

[0009] The core demonstration data container communicates with the user terminal to conduct equipment assembly instruction.

[0010] Furthermore, the AR demonstration data is generated during the assembly of the teaching equipment components using sensors built into the components.

[0011] The method further includes:

[0012] It establishes a communication connection with the wireless communication module built into the teaching equipment component through an edge communication network to receive AR demonstration data pushed by the teaching equipment component.

[0013] Furthermore, the method also includes:

[0014] After receiving AR demonstration data pushed by various teaching equipment components, the AR demonstration data of each teaching equipment component and the mapping data of different gestures are added to the teaching data container and configured into the AR demonstration data results.

[0015] Furthermore, the AR demonstration data results also include a full teaching demonstration video of the assembly of teaching equipment components;

[0016] The equipment assembly instruction includes:

[0017] Play a full instructional demonstration video of assembling the teaching equipment components on the user's device;

[0018] Instructing users on AR simulation assembly of device components;

[0019] The AR simulation assembly practice teaching for the equipment components includes:

[0020] The system receives user gestures captured and sent in real time by the user's camera. It then generates an assembly action for the teaching equipment component corresponding to the user's gesture in the core demonstration data container of the user's device by using AR demonstration data of various teaching equipment components and mapping data of different gestures. The system then sends the result of the assembly action to the user's device in real time.

[0021] Furthermore, the method also includes:

[0022] Before teaching users how to assemble device components using AR simulation, the timing differences between the user terminal and the edge data area storage server are adjusted to meet preset requirements.

[0023] Furthermore, the communication connection between the core demonstration data container and the user terminal includes:

[0024] A communication connection is established with the remote core data storage server where the user is located, and the interface data of the core demonstration data container is transmitted to the remote core data storage server so that the user can learn to assemble the device after connecting to the remote core data storage server.

[0025] Furthermore, the method also includes:

[0026] After the user equipment assembly tutorial is completed, the data in the core demonstration data container is stored in the edge data area storage server, and the core demonstration data container is destroyed.

[0027] Secondly, this disclosure provides an edge data area storage server, the edge data area storage server comprising:

[0028] The startup module is configured to start the teaching data container;

[0029] The receiving module is configured to receive AR demonstration data pushed by various teaching equipment components through the teaching data container interface;

[0030] The data processing module is configured to merge the AR demonstration data of each teaching equipment component to obtain the AR demonstration data result;

[0031] The synchronization module is configured to, after the receiving module receives the teaching request from the user, start the core demonstration data container to which the user belongs through the startup module, and synchronize the AR demonstration data results generated by the teaching data container to the core demonstration data container.

[0032] The teaching module is configured to communicate with the user terminal through the core demonstration data container to teach equipment assembly.

[0033] Thirdly, this disclosure provides a device assembly teaching system, including teaching device components and an edge data area storage server as described above.

[0034] Fourthly, this disclosure provides an electronic device including a memory and a processor, wherein the memory stores a computer program, and when the processor runs the computer program stored in the memory, the processor executes a device assembly teaching method as described in any of the first aspects.

[0035] Fifthly, this disclosure provides a computer-readable storage medium storing a computer program that, when executed by a processor, implements the device assembly teaching method described in any of the first aspects above.

[0036] Beneficial effects:

[0037] The equipment assembly teaching method, edge data area storage server, equipment assembly teaching system, and electronic devices disclosed herein utilize edge big data containerization virtual technology for AR teaching demonstrations. AR simulation calculations can be placed on an edge computing platform, providing users with dedicated core demonstration data containers for equipment assembly teaching. This allows multiple users to simultaneously perform AR assembly simulations, improving the interactivity of product assembly and reducing the return rate of electronic devices. Attached Figure Description

[0038] Figure 1 This is a flowchart illustrating a teaching method for assembling equipment provided in Embodiment 1 of this disclosure;

[0039] Figure 2 This is a flow architecture diagram of a device assembly teaching system provided in Embodiment 1 of this disclosure;

[0040] Figure 3 This is an architecture diagram of an edge data area storage service server provided in Embodiment 2 of this disclosure;

[0041] Figure 4 This is an architecture diagram of a device assembly teaching system provided in Embodiment 3 of this disclosure;

[0042] Figure 5 This is an architectural diagram of an electronic device provided in Embodiment 4 of this disclosure. Detailed Implementation

[0043] To enable those skilled in the art to better understand the technical solutions of this disclosure, the disclosure will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments and drawings described herein are merely for explaining the invention and are not intended to limit the invention.

[0044] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this disclosure are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence; furthermore, in the absence of conflict, the embodiments and features in the embodiments of this disclosure can be arbitrarily combined with each other.

[0045] The terminology used in the embodiments of this disclosure is for the purpose of describing particular embodiments only and is not intended to be limiting of this disclosure. The singular forms “a,” “the,” and “the” as used in the embodiments of this disclosure and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise.

[0046] In the following description, the use of suffixes such as “module,” “part,” or “unit” to denote elements is solely for the purpose of illustrative purposes and has no specific meaning in itself. Therefore, “module,” “part,” or “unit” may be used interchangeably.

[0047] The following detailed embodiments illustrate the technical solution of this disclosure and how it solves the technical problem that existing virtual simulation teaching technologies cannot meet the current requirements for equipment assembly teaching. These specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described again in some embodiments.

[0048] Figure 1 This is a schematic diagram of a device assembly teaching method provided in Embodiment 1 of this disclosure, applied to an edge data area storage server, such as... Figure 1 As shown, the method includes:

[0049] Step S101: Start the teaching data container;

[0050] Step S102: Receive AR demonstration data pushed by each teaching equipment component through the teaching data container interface;

[0051] Step S103: Merge the AR demonstration data of each teaching equipment component to obtain the AR demonstration data result;

[0052] Step S104: After receiving the teaching request from the user, start the core demonstration data container to which the user belongs, and synchronize the AR demonstration data results generated by the teaching data container to the core demonstration data container.

[0053] Step S105: Connect the core demonstration data container to the user terminal for equipment assembly instruction.

[0054] In this embodiment, the edge data area storage server receives storage communication requests initiated by each teaching equipment component through the edge real-time communication network during the operation of each teaching equipment component. Upon receiving the communication request, it starts the teaching data container and begins receiving AR demonstration data pushed by each teaching equipment component through the container interface. This data is collected and merged through the data synchronization interface opened by the virtualization container. The AR demonstration data from each teaching equipment component is then merged within the container to obtain the AR demonstration data result. The teaching data container stores static data, such as AR demonstration data results, component information, and user data, and is a persistent container. Upon receiving a teaching request from a user, the edge data area storage server starts the core demonstration data container belonging to that user. The core demonstration data container corresponds to a user; one user can have one core demonstration data container, or multiple users can have one core demonstration data container. The AR demonstration data result generated by the teaching data container is synchronized to the core demonstration data container. The core demonstration data container stores time-series data, such as teaching operation data performed by a user in a specific instance. It is a stateless container that is started when the user uses the teaching demonstration. To verify the accuracy of the user's assembly order and position of electronic device components, it can be removed after a period of time when the user exits. The core demonstration data container communicates with the user terminal, allowing users to learn how to assemble equipment through the user terminal, such as through video learning and simulated assembly exercises.

[0055] This disclosure embodiment uses edge big data containerization virtual technology to perform AR teaching demonstrations. It can place the computationally intensive tasks of AR simulation computing on the edge computing platform and provide users with a dedicated core demonstration data container for device assembly teaching.

[0056] Furthermore, the AR demonstration data is generated during the assembly of the teaching equipment components using sensors built into the components.

[0057] The method further includes:

[0058] It establishes a communication connection with the wireless communication module built into the teaching equipment component through an edge communication network to receive AR demonstration data pushed by the teaching equipment component.

[0059] During the assembly of teaching equipment components, the sensors built into the electronic equipment components combine the necessary data, such as the distance the components need to move to a certain position, the assembly sequence, and the assembly actions, to generate AR demonstration data. This data is then transmitted to the edge data area storage server via the edge communication network through the built-in wireless communication module.

[0060] Furthermore, the method also includes:

[0061] After receiving AR demonstration data pushed by various teaching equipment components, the AR demonstration data of each teaching equipment component and the mapping data of different gestures are added to the teaching data container and configured into the AR demonstration data results.

[0062] Upon receiving AR demonstration data, the teaching data container adds AR demonstration data for each teaching device component and mapping data for different gestures. This mapping data is obtained by acquiring a large amount of real-time installation gesture data and device component installation results, and then training a model. For example, during the assembly of teaching device components, a Leap Motion sensor senses a physical hand, acquires gesture data, and accurately calculates hand movement speed, position, and direction. These gestures are then mapped to the assembly results of the teaching device components. After model training, the mapping data for each teaching device component's AR demonstration data and different gestures is obtained. This mapping data is then configured into the AR demonstration data results, allowing users to easily operate the electronic device components in the AR demonstration using gestures via the camera.

[0063] Furthermore, the AR demonstration data results also include a full teaching demonstration video of the assembly of teaching equipment components;

[0064] The equipment assembly instruction includes:

[0065] Play a full instructional demonstration video of assembling the teaching equipment components on the user's device;

[0066] Instructing users on AR simulation assembly of device components;

[0067] The AR simulation assembly practice teaching for the equipment components includes:

[0068] The system receives user gestures captured and sent in real time by the user's camera. It then generates an assembly action for the teaching equipment component corresponding to the user's gesture in the core demonstration data container of the user's device by using AR demonstration data of various teaching equipment components and mapping data of different gestures. The system then sends the result of the assembly action to the user's device in real time.

[0069] Equipment assembly tutorials can be delivered via fully recorded AR demonstrations played directly by the user: the user connects to the core demonstration data container via their mobile phone, retrieves the tutorial videos from the container, and performs AR tutorials on assembling electronic devices. Alternatively, by using the mapping data of each electronic device component used in the tutorial and different gestures stored in the core demonstration data container, the user can simulate the assembly of AR electronic device components using gestures via their camera. During model assembly training, the video source and renderer components are executed on the user's device, while the computationally most demanding calculations performed by the tracker, mapper, and object recognizer components can be performed within the container.

[0070] Furthermore, the method also includes:

[0071] Before teaching users how to assemble device components using AR simulation, the timing differences between the user terminal and the edge data area storage server are adjusted to meet preset requirements.

[0072] When the timing requirements are met, the user terminal synchronously receives data from the core demonstration data container. Timing requirements include that the client's clock, latency, etc., are consistent with or meet the requirements of the server. For example, the clock must be consistent, and the latency must meet standard requirements, such as the YD / T 3898-2021 standard. This ensures that gestures and assembly actions correspond well during simulated assembly exercises, satisfying the user's AR simulated assembly experience.

[0073] Furthermore, the communication connection between the core demonstration data container and the user terminal includes:

[0074] A communication connection is established with the remote core data storage server where the user is located, and the interface data of the core demonstration data container is transmitted to the remote core data storage server so that the user can learn to assemble the device after connecting to the remote core data storage server.

[0075] Communication between users and edge data area storage servers can be established through remote core data storage servers, such as... Figure 2 As shown in the diagram, the electronic equipment components are the aforementioned teaching equipment components, the edge big data area storage server is the aforementioned edge data area storage server, the teaching AR data container is the teaching data container, and the core AR demonstration data container is the core demonstration data container. Users connect to the core demonstration data container via a remote core data storage server. The remote core data storage server can record user operation data in real time, perform preliminary judgments on user operations, eliminate erroneous data, and improve the network communication quality between the user terminal and the core demonstration data container.

[0076] Furthermore, the method also includes:

[0077] After the user equipment assembly tutorial is completed, the data in the core demonstration data container is stored in the edge data area storage server, and the core demonstration data container is destroyed.

[0078] After a user exits the tutorial for a period of time, the core demonstration data container is destroyed. The user data stored in the core demonstration data container can be uploaded to an edge data area storage server for storage. When the user practices again, the data is downloaded from the edge data area storage server to the newly restarted core demonstration data container. Through the startup and destruction of the core demonstration data container, AR simulation assembly exercises can be conducted by multiple users on the edge data area storage server. Edge computing addresses the high computational and communication requirements of AR simulation, solving the problem of personal terminals being unable to handle the computational power and battery consumption. Furthermore, by jointly optimizing the allocation of communication and computational resources during container use, mobile device energy consumption can be significantly reduced under latency constraints. All users may upload and download some of the same data, and their computational tasks are shared on one or more servers. The mapper and object recognizer in the container can collect input from all user devices in the same geographical location, limiting redundant information transmitted in the user's uplink. Therefore, communication and computational overhead can be reduced through joint optimization of communication and computational resources.

[0079] This disclosed embodiment, based on edge big data technology combined with containerized virtualization technology, utilizes the wireless communication modules built into the electronic device components used in teaching to upload AR demonstration data of electronic device assembly to a data container, and maps and binds different gestures to the AR data of the electronic device components in each teaching demonstration. After the data container pushes the AR demonstration data to a remote core data storage server, users can access the AR teaching demonstrations in real time through their terminals and practice assembling the mapped and bound AR electronic device components using gestures via their cameras. This allows multiple users to simultaneously perform AR assembly simulations, improving the interactivity of product assembly and reducing the return rate of electronic devices.

[0080] Figure 3 This is an architecture diagram of an edge data area storage service server provided in Embodiment 3 of this disclosure, as follows: Figure 3 As shown, the edge data area storage server includes:

[0081] Startup module 11, which is configured to start the teaching data container;

[0082] The receiving module 12 is configured to receive AR demonstration data pushed by various teaching equipment components through the teaching data container interface;

[0083] Data processing module 13 is configured to merge the AR demonstration data of each teaching equipment component to obtain the AR demonstration data result;

[0084] The synchronization module 14 is configured to, after the receiving module 12 receives the teaching request from the user, start the core demonstration data container to which the user belongs through the starting module 11, and synchronize the AR demonstration data results generated by the teaching data container to the core demonstration data container.

[0085] Teaching module 15 is configured to communicate with the user terminal through the core demonstration data container to teach equipment assembly.

[0086] Furthermore, the AR demonstration data is generated during the assembly of the teaching equipment components using sensors built into the components.

[0087] The receiving module 12 is specifically configured to establish a communication connection with the wireless communication module built into the teaching equipment component through an edge communication network in order to receive AR demonstration data pushed by the teaching equipment component.

[0088] Furthermore, the data processing module 13 is also configured as follows:

[0089] After the receiving module 12 receives the AR demonstration data pushed by each data teaching device component, it adds the AR demonstration data of each teaching device component and the mapping data of different gestures to the teaching data container and configures it into the AR demonstration data result.

[0090] Furthermore, the AR demonstration data results also include a full teaching demonstration video of the assembly of teaching equipment components;

[0091] The teaching module 15 is specifically configured as follows:

[0092] Play a full instructional demonstration video of assembling the teaching equipment components on the user's device;

[0093] Instructing users on AR simulation assembly of device components;

[0094] The AR simulation assembly practice teaching for the equipment components includes:

[0095] The receiving module 12 receives user operation gestures captured by the camera and sent in real time by the user terminal. The AR demonstration data of each teaching equipment component and the mapping data of different gestures are used to generate the assembly action of the teaching equipment component corresponding to the user's operation gesture in the core demonstration data container to which the user belongs, and the result of the assembly action is sent to the user terminal in real time.

[0096] Furthermore, the edge data area storage server also includes an adjustment module 16;

[0097] The adjustment module 16 is configured to adjust the timing difference between the user terminal and the edge data area storage server to meet preset requirements before the teaching module 15 conducts AR simulation assembly practice teaching for the user on device components.

[0098] Furthermore, the teaching module 15 is also configured as follows:

[0099] A communication connection is established with the remote core data storage server where the user is located, and the interface data of the core demonstration data container is transmitted to the remote core data storage server so that the user can learn to assemble the device after connecting to the remote core data storage server.

[0100] Furthermore, the edge data area storage server also includes a container destruction module 17;

[0101] The container destruction module 17 is configured to store the core demonstration data container in the edge data area storage server and destroy the core demonstration data container after the user equipment assembly teaching is completed.

[0102] Figure 4 This is an architecture diagram of a device assembly teaching system provided in Embodiment 3 of this disclosure, as shown below. Figure 4 As shown, it includes teaching equipment component 2 and edge data area storage server 1 as described above.

[0103] The teaching equipment component 2 comprises multiple components.

[0104] The edge data area storage server and device assembly teaching system of this disclosure are used to implement the device assembly teaching method in Method Embodiment 1, so the description is relatively simple. For details, please refer to the relevant description in Method Embodiment 1 above, which will not be repeated here.

[0105] In addition, such as Figure 5 As shown, Embodiment 4 of this disclosure also provides an electronic device, including a memory 10 and a processor 20. The memory 10 stores a computer program. When the processor 20 runs the computer program stored in the memory 10, the processor 20 executes the various possible methods described above.

[0106] The memory 10 is connected to the processor 20. The memory 10 can be a flash memory, a read-only memory, or another type of memory. The processor 20 can be a central processing unit or a microcontroller.

[0107] Furthermore, embodiments of this disclosure also provide a computer-readable storage medium storing a computer program, which is executed by a processor using the various possible methods described above.

[0108] The computer-readable storage medium includes volatile or non-volatile, removable or non-removable media implemented in any method or technology for storing information (such as computer-readable instructions, data structures, computer program modules or other data). Computer-readable storage media includes, but is not limited to, RAM (Random Access Memory), ROM (Read-Only Memory), EEPROM (Electrically Erasable Programmable Read-Only Memory), flash memory or other memory technologies, CD-ROM (Compact Disc Read-Only Memory), Digital Video Disc (DVD) or other optical disc storage, cartridges, magnetic tapes, disk storage or other magnetic storage devices, or any other medium that can be used to store desired information and is accessible to a computer.

[0109] It is understood that the above embodiments are merely exemplary embodiments used to illustrate the principles of this disclosure, and this disclosure is not limited thereto. For those skilled in the art, various modifications and improvements can be made without departing from the spirit and substance of this disclosure, and these modifications and improvements are also considered to be within the scope of protection of this disclosure.

Claims

1. A teaching method for assembling equipment, characterized in that, The method, applied to an edge data area storage server, includes: Start the teaching data container; wherein, the teaching data container is a persistent container used to store static data, the static data including AR demonstration data results, component information, and user data; Receive augmented reality (AR) demonstration data pushed by various teaching equipment components through the teaching data container interface; The AR demonstration data of each teaching equipment component is merged to obtain the AR demonstration data result; Upon receiving a teaching request from a user, the core demonstration data container belonging to the user is activated, and the AR demonstration data results generated by the teaching data container are synchronized to the core demonstration data container. The core demonstration data container is a stateless container used to store time-series data, which includes teaching operation data performed by a single user. The core demonstration data container is activated when the user uses the teaching demonstration and is removed after the user exits for a period of time. The core demonstration data container communicates with the user terminal to conduct equipment assembly instruction.

2. The equipment assembly teaching method according to claim 1, characterized in that, The AR demonstration data is generated during the assembly of the teaching equipment components using sensors built into the components. The method further includes: It establishes a communication connection with the wireless communication module built into the teaching equipment component through an edge communication network to receive AR demonstration data pushed by the teaching equipment component.

3. The equipment assembly teaching method according to claim 1, characterized in that, The method further includes: After receiving AR demonstration data pushed by various teaching equipment components, the AR demonstration data of each teaching equipment component and the mapping data of different gestures are added to the teaching data container and configured into the AR demonstration data results.

4. The equipment assembly teaching method according to claim 3, characterized in that, The AR demonstration data results also include a full teaching demonstration video of the assembly of the teaching equipment components; The equipment assembly instruction includes: Play a full instructional demonstration video of assembling the teaching equipment components on the user's device; Instructing users on AR simulation assembly of device components; The AR simulation assembly practice teaching for the equipment components includes: The system receives user gestures captured and sent in real time by the user's camera. It then generates an assembly action for the teaching equipment component corresponding to the user's gesture in the core demonstration data container of the user's device by using AR demonstration data of various teaching equipment components and mapping data of different gestures. The system then sends the result of the assembly action to the user's device in real time.

5. The equipment assembly teaching method according to claim 4, characterized in that, The method further includes: Before teaching users how to assemble device components using AR simulation, the timing differences between the user terminal and the edge data area storage server are adjusted to meet preset requirements.

6. The equipment assembly teaching method according to claim 1, characterized in that, The communication connection between the core demonstration data container and the user terminal includes: A communication connection is established with the remote core data storage server where the user is located, and the interface data of the core demonstration data container is transmitted to the remote core data storage server so that the user can learn to assemble the device after connecting to the remote core data storage server.

7. The equipment assembly teaching method according to claim 1, characterized in that, The method further includes: After the user equipment assembly tutorial is completed, the data in the core demonstration data container is stored in the edge data area storage server, and the core demonstration data container is destroyed.

8. An edge data area storage server, characterized in that, The edge data area storage server includes: The startup module is configured to start the teaching data container; wherein, the teaching data container is a persistent container used to store static data, the static data including AR demonstration data results, component information, and user data; The receiving module is configured to receive AR demonstration data pushed by various teaching equipment components through the teaching data container interface; The data processing module is configured to merge the AR demonstration data of each teaching equipment component to obtain the AR demonstration data result; The synchronization module is configured to, after the receiving module receives a teaching request from the user, launch the core demonstration data container belonging to the user through the launch module, and synchronize the AR demonstration data results generated by the teaching data container to the core demonstration data container; wherein, the core demonstration data container is a stateless container used to store time-series data, the time-series data includes teaching operation data performed by a single user, and the core demonstration data container is launched when the user uses the teaching demonstration and is removed after the user exits for a period of time; The teaching module is configured to communicate with the user terminal through the core demonstration data container to teach equipment assembly.

9. A teaching system for assembling equipment, characterized in that, It includes teaching equipment components and the edge data area storage server as described in claim 8.

10. An electronic device, characterized in that, It includes a memory and a processor, wherein the memory stores a computer program, and when the processor runs the computer program stored in the memory, the processor executes the device assembly teaching method as described in any one of claims 1-7.

Citation Information

Patent Citations

  • Network edge calculation method and device, and medium

    CN112532668A

  • Intelligent augmented reality assembly assisting method and system based on edge calculation

    CN113469108A

  • Immersive virtual reality interactive teaching system for building assembly

    CN214796310U