Method, device and computer-readable storage medium for reading telecommunication identification data
By processing identification data through the storage and computing resources of the edge computing node MEC, the problem of insufficient resources in the identification network when storing and reading information is solved, the efficiency of data storage and reading is improved, and the user experience is enhanced.
Patent Information
- Application Number
- CN202310611981.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-05-26
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2043-05-26
AI Technical Summary
Existing identification networks lack powerful data storage and computing resources when faced with storing and reading large amounts of information.
The powerful storage capacity of the edge computing node MEC is used to store huge identification data, and the computing resources of MEC are used to process data reading.
It solves the problem of insufficient resources in the identification network when storing and reading information, improves data storage and reading efficiency, and enhances user experience.
Smart Images

Figure CN116567611B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a method and device for reading telecommunication identification data and a computer-readable storage medium. Background Art
[0002] The goal of the identification system is to provide a unique identification for each item. Since the identification is attached to the object, the combination of identification and communication network can incubate rich functions that far exceed basic applications such as distinguishing different items. Providing users with rich information services through the identification network is one of the important directions.
[0003] The existing identification network provides information services, but when faced with the storage and reading of large amounts of information, there is a problem of lack of powerful data storage and computing resources. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to address the above-mentioned deficiencies in the prior art and provide a telecommunications identification data reading method, device and computer-readable storage medium, which utilize the powerful storage capacity of the edge computing node MEC to store huge amounts of identification data and utilize the computing resources of the MEC to process the data reading, so as to solve the problem that the existing identification network lacks powerful data storage and computing resources when facing large amounts of information storage and reading.
[0005] In a first aspect, the present invention provides a method for reading telecommunication identification data, comprising:
[0006] Receive the Tin identification code sent by the target user terminal;
[0007] authenticating the target user terminal to obtain a target access permission corresponding to the target user terminal;
[0008] The Tin identification code and the target access permission are sent to the target edge computing node MEC corresponding to the Tin identification code to read the target data.
[0009] Preferably, the receiving the Tin identification code sent by the target user terminal includes:
[0010] Receive the Tin identification code sent by the target user terminal through the 5G core network;
[0011] The Tin identification code includes a Tin identification and a sub-identification;
[0012] The Tin identifier and sub-identifier include target routing information corresponding to the Tin identifier code.
[0013] Preferably, the authenticating the target user terminal to obtain a target access permission corresponding to the target user terminal includes:
[0014] Generate a Tin authentication application based on the Tin identification code;
[0015] Sending the Tin authentication application to an authentication server so that the authentication server generates the target access permission according to the authentication application;
[0016] Receive the target access permission sent by the authentication server.
[0017] Preferably, the target data includes: target metadata and target data body;
[0018] The sending the Tin identification code and the target access permission to the target edge computing node MEC corresponding to the Tin identification code to read the target data includes:
[0019] Parsing the Tin identification code to obtain target routing information;
[0020] Acquire, according to the target routing information, the first target edge computing node MEC information storing the target metadata and the second target edge computing node MEC information storing the target data body;
[0021] Sending the access permission and the Tin identification code to the first target edge computing node MEC to read the target metadata;
[0022] The target data body is read from the second target edge node MEC through the first target edge node MEC.
[0023] Preferably, the target metadata includes at least one of the following data:
[0024] The Tin user identity information identifier corresponding to the Tin identification code, the identifier of the Tin identification information directory display template and the Tin identification information directory.
[0025] Preferably, the Tin identification information directory includes at least one of the following information:
[0026] Tin code, information type, information name, information retrieval, information summary, authority mark, information source, storage method, storage location, reading requirements, and digital signature of the information.
[0027] Preferably, it also includes:
[0028] The target data is sent to the target user terminal.
[0029] In a second aspect, the present invention further provides a telecommunications identification data reading device, comprising:
[0030] Receiving module, used to receive the Tin identification code sent by the target user terminal;
[0031] an authentication module, connected to the receiving module, for authenticating the target user terminal to obtain a target access permission corresponding to the target user terminal;
[0032] A reading module, connected to the authentication module, is used to send the Tin identification code and the target access permission to the target edge computing node MEC corresponding to the Tin identification code to read the target data.
[0033] In a third aspect, the present invention further provides a telecommunication identification data reading device, comprising a memory and a processor, wherein the memory stores a computer program, and the processor is configured to run the computer program to implement the telecommunication identification data reading method described in the first aspect.
[0034] In a fourth aspect, the present invention further provides a computer-readable storage medium having a computer program stored thereon, and when the computer program is executed by a processor, the method for reading telecommunication identification data as described in the first aspect above is implemented.
[0035] The telecommunications identification data reading method, device, and computer-readable storage medium provided by the present invention first receive a Tin identification code sent by a target user terminal; authenticate the target user terminal to obtain a target access permission corresponding to the target user terminal; and send the Tin identification code and the target access permission to a target edge computing node MEC corresponding to the Tin identification code to read the target data. Since the present invention utilizes the powerful storage capacity of the edge computing node MEC to store huge amounts of identification data and utilizes the computing resources of the MEC to process data reading, the problem of the existing identification network lacking powerful data storage and computing resources when facing large amounts of information storage and reading is solved. BRIEF DESCRIPTION OF THE DRAWINGS
[0036] Figure 1 This is a flowchart of a method for reading telecommunication identification data according to embodiment 1 of the present invention;
[0037] Figure 2 This is a schematic diagram of a Tin identification data reading process implemented by a security system based on MEC in a telecommunications identification data reading method according to Example 1 of the present invention;
[0038] Figure 3 This is a structural diagram of a telecommunication identification data reading device according to embodiment 2 of the present invention;
[0039] Figure 4 This is a structural diagram of a telecommunication identification data reading device according to embodiment 3 of the present invention. DETAILED DESCRIPTION
[0040] In order to enable those skilled in the art to better understand the technical solutions of the present invention, the embodiments of the present invention will be described in further detail below with reference to the accompanying drawings.
[0041] It should be understood that the specific embodiments and drawings described herein are only used to explain the present invention rather than to limit the present invention.
[0042] It is understood that, in the absence of conflict, the various embodiments of the present invention and the various features in the embodiments may be combined with each other.
[0043] It can be understood that, for the convenience of description, the drawings of the present invention only show parts related to the present invention, while parts unrelated to the present invention are not shown in the drawings.
[0044] It can be understood that each unit and module involved in the embodiments of the present invention may correspond to only one physical structure, or may be composed of multiple physical structures, or multiple units and modules may be integrated into one physical structure.
[0045] It will be understood that, without conflict, the functions and steps marked in the flowcharts and block diagrams of the present invention may occur in an order different from that marked in the drawings.
[0046] It is understood that the flowcharts and block diagrams of the present invention illustrate the possible architectures, functions, and operations of the systems, devices, equipment, and methods according to various embodiments of the present invention. Each box in the flowchart or block diagram may represent a unit, module, program segment, or code, which contains executable instructions for implementing the specified functions. Moreover, each box or combination of boxes in the block diagram and flowchart may be implemented using a hardware-based system that implements the specified functions, or may be implemented using a combination of hardware and computer instructions.
[0047] It is understandable that the units and modules involved in the embodiments of the present invention may be implemented by software or hardware. For example, the units and modules may be located in a processor.
[0048] Example 1:
[0049] This embodiment provides a method for reading telecommunication identification data. Figure 1 As shown, the method includes:
[0050] Step S101: receiving a Tin (Telecommunication Identification Network) identification code sent by a target user terminal.
[0051] In this embodiment, the UE (User Equipment) can scan a barcode or a QR code and obtain a Tin identification code through methods such as RFID (Radio Frequency Identification) and NFC (Near Field Communication).
[0052] Optionally, the receiving a Tin identification code sent by a target user terminal includes:
[0053] Receive the Tin identification code sent by the target user terminal through the 5G core network;
[0054] The Tin identification code includes a Tin identification and a sub-identification;
[0055] The Tin identifier and sub-identifier include target routing information corresponding to the Tin identifier code.
[0056] In this embodiment, the UE sends the Tin identification code to the 5G network. The AKA (Authentication and Key Agreement) authentication protocol of the 5G network can complete the authentication and authentication of the UE by obtaining authentication data, two-way authentication between UE and network, and home network authentication, and then send the user information through the API (Application Programming Interface) provided by NEF (Network Exposure Function).
[0057] Step S102: authenticating the target user terminal to obtain a target access permission corresponding to the target user terminal.
[0058] In this embodiment, based on the 5G authentication NEF architecture and MEC architecture, in addition to basic UE authentication, the 5G network also supports secondary authentication based on EAP (Extensible Authentication Protocol) by an external DN-AAA (Date Network Authentication, Authorization, Accounting) server.
[0059] The core of the Tin identification information reading method is the permission control based on the communication network. Since the Tin identification information is stored in the edge computing node MEC, the reading permission control of the Tin identification information is based on the security system of MEC. Figure 2As shown in the figure, 5G achieves the separation of the control and user planes of the core network. Therefore, the User Plane Function (UPF) can be deployed independently from control plane functions such as the Policy Control Function (PCF) and Session Management Function (SMF) in the MEC at the network edge. Based on a service-oriented architecture, the 5G Network Exposure Function (NEF) connects to all Network Functions (NFs). It encapsulates network capabilities through APIs and exposes them to third-party applications in the MEC via the edge computing PaaS (Platform as a Service). This provides 5G network capabilities to various MEC applications, including monitoring, provisioning, policy or billing, analysis and reporting, and security services. Security services include authentication, authorization control, and network defense. Third-party applications can also manage authorized slices to more comprehensively configure and adjust network security capabilities.
[0060] The user completes authentication and obtains target access permission through the UE access side MEC. During the authentication process, the UE access side MEC obtains user information through the NEF of the 5G core network. After authentication, the UE access side MEC reads the corresponding target data from the corresponding Tin data storage side MEC using the Tin identification code queried by the user.
[0061] Optionally, authenticating the target user terminal to obtain a target access permission corresponding to the target user terminal includes:
[0062] Generate a Tin authentication application based on the Tin identification code;
[0063] Sending the Tin authentication application to an authentication server so that the authentication server generates the target access permission according to the authentication application;
[0064] Receive the target access permission sent by the authentication server.
[0065] In this embodiment, after obtaining the Tin identification code, the subject identification portion of the Tin identification information, such as the identification of the product's manufacturer, is separated. The telephone number and subject identification in the identification information are combined to form a Tin authentication application, which is sent to Tin's DN-AAA authentication server. The DN-AAA authentication server searches the visitor's telephone number data server to determine whether the UE has the authority to access the Tin unified identification information resource corresponding to the subject identification, as well as the access role set by the system. In order to shield user information and role information during system transmission and improve system security, the UE user information and UE role information are generated into an access token to complete identity authentication on the Tin identification network.
[0066] The access token is sent to the DN-AAA service authorization, which queries whether the service can be provided based on the user information and role, such as the account balance of charging information, as well as the scope of services and information, such as the right to view different parts of the TIN information; the scope of operations, such as whether to download and copy, etc., and then generates an access license based on the obtained service permission information.
[0067] Step S103: Send the Tin identification code and the target access permission to the target edge computing node MEC corresponding to the Tin identification code to read the target data.
[0068] Optionally, the target data includes: target metadata and target data body;
[0069] The sending the Tin identification code and the target access permission to the target edge computing node MEC corresponding to the Tin identification code to read the target data includes:
[0070] Parsing the Tin identification code to obtain target routing information;
[0071] Acquire, according to the target routing information, the first target edge computing node MEC information storing the target metadata and the second target edge computing node MEC information storing the target data body;
[0072] Sending the access permission and the Tin identification code to the first target edge computing node MEC to read the target metadata;
[0073] The target data body is read from the second target edge node MEC through the first target edge node MEC.
[0074] In this embodiment, the Tin identification code is parsed, and routing information is generated after obtaining the location information. Then, the access license and the Tin identification code are sent to the metadata server of the Tin unified identification information storage MEC. The metadata server parses the access license, converts it into access control and sends it to the Tin directory server. The directory server obtains the directory data of the information corresponding to the Tin identification code, such as location, summary, etc.
[0075] In this embodiment, in order to meet the operations of different types of data, metadata in a unified format and different types of information data subjects are stored and read separately, where the information data subject of Tin identification information is uploaded to the system storage according to the storage location allocated by the system, and the metadata is stored in a distributed relational database. The metadata is stored in the metadata server in the MEC, and the data subject is stored in the Tin unified identification information library in the MEC.
[0076] Due to the large number of Tin identification codes, the principle of decentralized and nearby storage of identification data is adopted. The published information is stored in the corresponding MEC according to the access location of the information publisher. This method facilitates direct addressing based on the storage location, is also conducive to identifying users to manage identification data, and can also meet users' needs such as changing production and business sites.
[0077] The storage method of Tin unified identification information system is based on Tin's identification storage coding. Tin's identification storage coding includes 4 parts: national center node coding, regional center or provincial capital node coding, local core or edge node coding and edge internal node coding.
[0078] The identification number utilizes the encoding of existing data nodes to construct an identification storage code. This portion of the identification number allows for routing of identification data. The service identification storage code is the identification storage code corresponding to the serving network after the phone number leaves the home network. If the home network and serving network are the same, the identification storage code and the service identification storage code are identical. Otherwise, routing uses the service identification storage code for addressing. This allows for changes and migrations in user phone numbers and facilitates routing of identification data.
[0079] Since the read and write characteristics of Tin unified identification information are write-once and read-frequent, the principle of storing information near the publisher leads to the problem that Tin unified identification data is far away from the user end, which increases the delay in information reading, and the data traversing the Tin network increases system overhead. Since Tin identification network data is stored in the MEC, and users also access the Tin identification network by accessing the MEC, the data is placed in the memory of the MEC storage device in the MEC close to the user as a memory buffer. Subsequent requests for the same content can be read directly from the cache, greatly increasing the data reading speed of the Tin unified information system, reducing data reading overhead, enhancing the user experience, and achieving fast data reading and presentation.
[0080] The storage method of Tin data is based on Tin's identification storage coding. Information is stored in a decentralized manner in the MEC to which the information provider belongs. In order to improve the reading efficiency of the reading user, a storage method based on distributed memory cache technology is designed. The implementation method is as follows:
[0081] In the MEC close to the user, data is placed in the memory of the MEC storage device as a memory buffer, including local core cache nodes, local aggregation cache nodes, and access aggregation nodes, which are deployed on the local core node, local aggregation node, and local access node of the MEC respectively. A Tin identifier reading counter is deployed on the local core node.
[0082] The local core cache nodes, local aggregation cache nodes, and access aggregation nodes are connected using a star architecture. At the same time, a ring architecture is added between the access nodes in a region. The consistent hashing algorithm is used to map all local access cache nodes in the region into a virtual ring. When the cache data of a virtual node increases by more than the set value, the node is virtually split to cope with dynamic changes in data.
[0083] The system adopts a centralized regional cache elimination and screening management strategy. The Tin reading counter set in the MEC local core node uses the Tin identifier as the key value, counts the read Tin identifier and the subject identifier separated from the read Tin identifier, and sets the last reading timestamp. The bubble algorithm is used to migrate the data with the largest number of common readings of the Tin identifiers of each access cache node in the region to the upper-level cache node, so that the hot data in the region is gradually aggregated to the higher-level cache node to adapt to the star-shaped distributed memory cache architecture of the Tin unified identification system, reduce the overall storage overhead of the system, and improve cache reading efficiency.
[0084] Optionally, the target metadata includes at least one of the following data:
[0085] The Tin user identity information identifier corresponding to the Tin identification code, the identifier of the Tin identification information directory display template and the Tin identification information directory.
[0086] In this embodiment, metadata is used to describe the characteristics of data, such as basic information of the data, storage location information, index and summary of the data to facilitate unified retrieval. The metadata format of the present invention is shown in the following table:
[0087] Tin identification code Tin user identity information identifier Tin identification information directory Tin identification information directory Tin identification information directory ……
[0088] Among them, the Tin identification code is the Tin identification code corresponding to the data when it is read; the Tin user identity information identifier is the identity identifier of the user who publishes the information, such as the company's name, registered address, Tin registration phone number, legal person information, personal name, Tin registration phone number; the identifier of the Tin identification information directory display template is the identifier in the template library corresponding to the display template of the Tin identification information directory information. The template library contains various directory templates designed by the system, such as list modes of information names, pictures, and summaries, as well as directory sorting options. Different templates are identified by template identifiers; the Tin identification information directory is stored and managed by the directory server and is stored in a distributed relational database.
[0089] Optionally, the Tin identification information directory includes at least one of the following information:
[0090] Tin code, information type, information name, information retrieval, information summary, authority mark, information source, storage method, storage location, reading requirements, and digital signature of the information.
[0091] In this embodiment, the target data may be in the form of text, data, voice, video, HTML (HyperText Mark-up Language), and various professional electronic documents (such as e-books, engineering drawings, medical images, and geographic information).
[0092] Optionally, the method further includes:
[0093] The target data is sent to the target user terminal.
[0094] In this embodiment, after obtaining the directory data corresponding to the Tin identification code, the directory server reads the information body data of the Tin unified identification information and sends it to the UE for parsing and display.
[0095] The UE can display a directory that identifies the information body and metadata. The directory is displayed after parsing the directory data according to the identifier of the directory template, such as the title, image, summary, and operation buttons of the list display information;
[0096] For different titles in the user option directory, click the corresponding operation button, send the Tin ID and sub-ID to the Tin ID network again, and obtain the next Tin ID information until the required information is finally obtained.
[0097] The advantage of this embodiment is that it overcomes the current WEB technology and extension technology, such as the information organization of Weibo, WeChat, video account, etc. with a single theme or several themes of information release mode. Through the Tin identification code attached to the item and the subcode within the Tin identification code, an information system organized around a specific model, characteristic item or a specific item is constructed, thereby constructing a new information release and query mode and laying a platform foundation for extending this mode to more other applications. The present invention not only enriches the application form of the Tin identification network, but also expands the application scope of the 5G network, which has positive significance for promoting the development of both the Tin identification network and the 5G network.
[0098] To further illustrate the specific usage process of the present invention, a specific embodiment is described below. It should be noted that in this specific embodiment, the publisher of Tin information first maintains the directory data, and then publishes various types of information to the set location under the control of the Tin identification system, and simultaneously updates the metadata corresponding to the unified information:
[0099] The information sources for electric frying pans of brand A and model B mainly come from the following categories:
[0100] Manufacturer: Company information, information related to Brand A (brand history, honors, product categories, etc.), information related to Model B (electronic instruction manual, user guide video, special dish recipes and preparation videos, maintenance and repair information, common usage problem-solving videos), information for maintenance personnel (repair drawings and materials, parts ordering information, various troubleshooting instructions and videos);
[0101] Users of the same brand and model: sharing usage experiences, reviews and complaints, recipes and videos;
[0102] Related supply chains: information on various food ingredients provided by suppliers of fresh produce, vegetables, grains and oils, etc.
[0103] Various information providers first maintain a unified information directory, and then publish information on the information publishing interface of the Tin identification system. Tin unified identification information is published to the designated location under the control of the information storage algorithm.
[0104] The specific steps for reading telecommunications identification data are as follows:
[0105] 1) The user scans the Tin logo QR code on the electric frying pan with their mobile phone;
[0106] 2) The Tin system determines whether the user is a regular user based on their mobile phone number. The Tin system reads the user information of the mobile phone through the API interface, such as mobile phone number, geographic location, express delivery address, etc., and assigns corresponding access permissions;
[0107] 3) Read the corresponding Tin uniformly identified information and directory, such as centrally displaying the instruction manual, usage video, model specifications, usage tips, manufacturer's website related information, video number related information, manufacturer-provided recipe ingredient list and cooking video, recipe ingredient list and cooking video uploaded by other users, etc. Because it is a unified identification information, the manufacturer can flexibly set the type and arrangement mode of the directory and information, and the information can be flexibly sorted according to the user's different usage stages. For example, the electronic instruction document and usage operation video of the user who accesses the system Tin for the first time are placed in the front, and the recipes and cooking videos preferred by normal users based on historical data are placed in the front, etc.;
[0108] 4) If the user selects a recipe, the information of the ingredients in the recipe around the user's geographic location will be further displayed, such as the name of the supermarket or online merchant, the Tin identification code of each ingredient in the store, the price, etc. The user can further view the traceability information in the Tin unified identification information of each ingredient, such as green certification, the name of the growing farm, contact number and other users' comments, etc. to make a selection. Finally, the Tin identification codes of all selected ingredients are compiled into a shopping list. After payment, the Tin identification code of the shopping list is formed. The user can scan the Tin identification code of the electric frying pan to check the status of the express delivery until the delivery is received.
[0109] 5) If a maintenance technician scans the frying pan's Tin ID with their phone, the Tin system reads the phone's user information through an API interface. If the technician is authenticated as a maintenance technician, a maintenance information license is issued. Subsequent access to the system then includes maintenance information specific to the product, such as electronic maintenance documents like circuit diagrams, manufacturer-published troubleshooting videos, and videos shared by other maintenance technicians. The technician can scan a faulty component to display a replacement video, the inventory of spare parts in various warehouses, and each component's Tin ID. The technician then selects the Tin ID code for the required component to place an order.
[0110] The telecommunications identification data reading method provided in Example 1 first receives a Tin identification code sent by a target user terminal; authenticates the target user terminal to obtain a target access permission corresponding to the target user terminal; and sends the Tin identification code and the target access permission to the target edge computing node MEC corresponding to the Tin identification code to read the target data. Since the present invention utilizes the powerful storage capacity of the edge computing node MEC to store huge identification data and utilizes the computing resources of the MEC to process data reading, it solves the problem that the existing identification network lacks powerful data storage and computing resources when facing large amounts of information storage and reading.
[0111] Example 2:
[0112] like Figure 3 As shown, this embodiment provides a telecommunication identification data reading device, which is used to execute the above-mentioned telecommunication identification data reading method, including:
[0113] Receiving module 11, used to receive the Tin identification code sent by the target user terminal;
[0114] an authentication module 12, connected to the receiving module 11, for authenticating the target user terminal to obtain a target access permission corresponding to the target user terminal;
[0115] The reading module 13 is connected to the authentication module 12 and is used to send the Tin identification code and the target access permission to the target edge computing node MEC corresponding to the Tin identification code to read the target data.
[0116] Preferably, the receiving module 11 specifically includes:
[0117] A receiving unit, configured to receive a Tin identification code sent by the target user terminal via the 5G core network;
[0118] The Tin identification code includes a Tin identification and a sub-identification;
[0119] The Tin identifier and sub-identifier include target routing information corresponding to the Tin identifier code.
[0120] Preferably, the authentication module 12 specifically includes:
[0121] An application unit, configured to generate a Tin authentication application based on the Tin identification code;
[0122] a permission generating unit, configured to send the Tin authentication application to an authentication server, so that the authentication server generates the target access permission according to the authentication application;
[0123] The permission sending unit is configured to receive the target access permission sent by the authentication server.
[0124] Preferably, the target data includes: target metadata and target data body;
[0125] The reading module 13 specifically includes:
[0126] A parsing unit, configured to parse the Tin identification code to obtain target routing information;
[0127] An acquiring unit, configured to acquire, according to the target routing information, the first target edge computing node MEC information storing the target metadata and the second target edge computing node MEC information storing the target data body;
[0128] a metadata unit, configured to send the access permission and the Tin identification code to the first target edge computing node MEC to read the target metadata;
[0129] A data body unit is configured to read the target data body from the second target edge node MEC via the first target edge node MEC.
[0130] Preferably, the target metadata includes at least one of the following data:
[0131] The Tin user identity information identifier corresponding to the Tin identification code, the identifier of the Tin identification information directory display template and the Tin identification information directory.
[0132] Preferably, the Tin identification information directory includes at least one of the following information:
[0133] Tin code, information type, information name, information retrieval, information summary, authority mark, information source, storage method, storage location, reading requirements, and digital signature of the information.
[0134] Preferably, the device further comprises:
[0135] A sending module is used to send the target data to the target user terminal.
[0136] Example 3:
[0137] like Figure 4 As shown, this embodiment provides a telecommunication identification data reading device for executing the above-mentioned telecommunication identification data reading method, including a memory 21 and a processor 22. The memory 21 stores a computer program, and the processor 22 is configured to run the computer program to execute the telecommunication identification data reading method in Example 1.
[0138] The memory 21 is connected to the processor 22 . The memory 21 may be a flash memory, a read-only memory, or other memory. The processor 22 may be a central processing unit or a single-chip microcomputer.
[0139] Example 4:
[0140] This embodiment provides a computer-readable storage medium having a computer program stored thereon. When the computer program is executed by a processor, the method for reading telecommunication identification data in the above-mentioned embodiment 1 is implemented.
[0141] 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 include, but are not limited to, RAM (Random Access Memory), ROM (Read-Only Memory), EEPROM (Electrically Erasable Programmable read only memory), flash memory or other memory technology, CD-ROM (Compact Disc Read-Only Memory), digital versatile disks (DVD) or other optical disk storage, magnetic cassettes, magnetic tape, magnetic disk storage or other magnetic storage devices, or any other medium that can be used to store the desired information and can be accessed by a computer.
[0142] The telecommunications identification data reading device and computer-readable storage medium provided in Examples 2 to 4 first receive the Tin identification code sent by the target user terminal; authenticate the target user terminal to obtain a target access permission corresponding to the target user terminal; and send the Tin identification code and the target access permission to the target edge computing node MEC corresponding to the Tin identification code to read the target data. Since the present invention utilizes the powerful storage capacity of the edge computing node MEC to store huge identification data and utilizes the computing resources of the MEC to process data reading, it solves the problem that the existing identification network lacks powerful data storage and computing resources when facing large amounts of information storage and reading.
[0143] It will be understood that the above embodiments are merely exemplary embodiments for illustrating the principles of the present invention, and the present invention is not limited thereto. Those skilled in the art will appreciate that various modifications and improvements can be made without departing from the spirit and substance of the present invention, and such modifications and improvements are also considered to be within the scope of protection of the present invention.
Claims
1. A method for reading telecommunication identification data, characterized in that: include: Receive the Tin identification code sent by the target user terminal; authenticating the target user terminal to obtain a target access permission corresponding to the target user terminal; Sending the Tin identification code and the target access permission to the target edge computing node MEC corresponding to the Tin identification code to read the target data; The target data includes: target metadata and target data body; The sending the Tin identification code and the target access permission to the target edge computing node MEC corresponding to the Tin identification code to read the target data includes: Parsing the Tin identification code to obtain target routing information; Acquire, according to the target routing information, the first target edge computing node MEC information storing the target metadata and the second target edge computing node MEC information storing the target data body; Sending the access permission and the Tin identification code to the first target edge computing node MEC to read the target metadata; The target data body is read from the second target edge node MEC through the first target edge node MEC.
2. The method for reading telecommunication identification data according to claim 1, wherein: The receiving of the Tin identification code sent by the target user terminal includes: Receive the Tin identification code sent by the target user terminal through the 5G core network; The Tin identification code includes a Tin identification and a sub-identification; The Tin identifier and sub-identifier include target routing information corresponding to the Tin identifier code.
3. The method for reading telecommunication identification data according to claim 1, wherein: The authenticating the target user terminal to obtain a target access permission corresponding to the target user terminal includes: Generate a Tin authentication application based on the Tin identification code; Sending the Tin authentication application to an authentication server so that the authentication server generates the target access permission according to the authentication application; Receive the target access permission sent by the authentication server.
4. The method for reading telecommunication identification data according to claim 1, wherein: The target metadata includes at least one of the following data: The Tin user identity information identifier corresponding to the Tin identification code, the identifier of the Tin identification information directory display template and the Tin identification information directory.
5. The method for reading telecommunication identification data according to claim 4, characterized in that: The Tin identification information directory includes at least one of the following information: Tin code, information type, information name, information retrieval, information summary, authority mark, information source, storage method, storage location, reading requirements, and digital signature of the information.
6. The method for reading telecommunication identification data according to claim 1, wherein: Also includes: The target data is sent to the target user terminal.
7. A telecommunication identification data reading device, characterized in that: include: Receiving module, used to receive the Tin identification code sent by the target user terminal; an authentication module, connected to the receiving module, for authenticating the target user terminal to obtain a target access permission corresponding to the target user terminal; A reading module, connected to the authentication module, configured to send the Tin identification code and the target access permission to the target edge computing node MEC corresponding to the Tin identification code to read the target data; The target data includes: target metadata and target data body; The reading module specifically includes: A parsing unit, configured to parse the Tin identification code to obtain target routing information; An acquiring unit, configured to acquire, according to the target routing information, the first target edge computing node MEC information storing the target metadata and the second target edge computing node MEC information storing the target data body; a metadata unit, configured to send the access permission and the Tin identification code to the first target edge computing node MEC to read the target metadata; A data body unit is configured to read the target data body from the second target edge node MEC via the first target edge node MEC.
8. A telecommunication identification data reading device, characterized in that: The method comprises a memory and a processor, wherein the memory stores a computer program, and the processor is configured to run the computer program to implement the telecommunication identification data reading method according to any one of claims 1 to 6.
9. A computer-readable storage medium, characterized in that The computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the method for reading telecommunication identification data according to any one of claims 1 to 6 is implemented.
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