Multi-network collaborative user service configuration method, device and related equipment

By having the first gateway agent proactively request and configure the adaptation service runtime environment when the user equipment meets the handover boundary conditions, the problem of cross-network mobile latency and service interruption caused by the centralization of 5G network architecture is solved, and seamless service continuity and high-quality experience between multiple networks are achieved.

CN121908304APending Publication Date: 2026-04-21CHINA TELECOM CORP LTD TECHNOLOGY INNOVATION CENTER +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
CHINA TELECOM CORP LTD TECHNOLOGY INNOVATION CENTER
Filing Date
2026-01-15
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

The centralized architecture of existing 5G networks requires users to return to their home location for authentication, registration, and subscription data when moving across networks, resulting in high handover latency, complex processes, and difficulty in ensuring business continuity.

Method used

When the user equipment is detected to meet the handover boundary conditions, the first gateway agent actively requests user service information from the second gateway agent and dynamically configures the appropriate service operating environment based on the real-time operating status of the first network, including the mapping and processing of the target network architecture model identifier, network service characteristic parameters and user context information.

Benefits of technology

It enables seamless, continuous, and high-quality service experience for user equipment across multiple networks, avoiding service interruptions and QoS degradation caused by context loss or service parameter mismatch during traditional cross-network handover, and decoupling the ownership relationship between users and networks.

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Abstract

The invention provides a multi-network collaborative user service configuration method and device and related equipment, and relates to the technical field of wireless communication, the method is applied to a first gateway agent of a first network, and the method comprises the following steps: when it is detected that user equipment meets a preset switching boundary condition between the first network and a second network, switching the first network to the second network; under the condition that the user equipment serves a first network and the user equipment serves a second network, a user service information acquisition request is sent to a second gateway agent in the second network, and the coverage area of the first network and the coverage area of the second network are adjacent or partially overlapped; receiving user service information from a second gateway agent; and configuring a service operation environment adaptive to the user equipment based on the user service information in combination with the network operation state information of the first network, so that the service continuity is ensured in the process of switching the user equipment from the second network to the first network. According to the invention, the service continuity can be maintained when the user equipment is switched from the second network to the first network.
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Description

Technical Field

[0001] This disclosure relates to the field of wireless communication technology, and in particular to a method, apparatus and related equipment for configuring user services in multi-network collaboration. Background Technology

[0002] To meet the demands for extreme performance and flexible customization, the Sixth-Generation Mobile Communication System (6G) will feature numerous distributed edge subnets. Given the increasing differentiation of networks and network functions, and the order-of-magnitude expansion in the number of edge subnets, inter-subnet coordination has become a critical issue that urgently needs to be addressed, particularly regarding user mobility, requiring solutions for cross-network mobility management and service continuity assurance.

[0003] The existing fifth-generation mobile communication system (5G) network architecture is a relatively centralized architecture with a large single network range and a centralized configuration of core network control plane elements. Centralized control facilitates mobility management and does not require changes to the session context over a large area, thus ensuring better service continuity. However, it has slower service response and poorer customization capabilities, failing to meet the demands of high-performance services. In related technologies, user equipment typically belongs to a specific home network. When a user moves to a non-home network, a network reselection and access registration process must be performed. At the same time, user authentication and the acquisition of subscription data still rely on the authentication and user data server on the home network side, resulting in signaling interaction delays and session interruption risks during handover, making it difficult to guarantee service continuity.

[0004] It should be noted that the information disclosed in the background section above is only used to enhance the understanding of the background of this disclosure, and therefore may include information that does not constitute prior art known to those skilled in the art. Summary of the Invention

[0005] This disclosure provides a user service configuration method, apparatus, and related equipment for multi-network collaboration, which at least to some extent overcomes the problem in related technologies where users need to return to their home location for authentication, registration, and acquisition of subscription data when moving across networks, resulting in high handover latency, complex processes, and difficulty in ensuring business continuity.

[0006] Other features and advantages of this disclosure will become apparent from the following detailed description, or may be learned in part from practice of this disclosure.

[0007] According to one aspect of this disclosure, a user service configuration method for multi-network collaboration is provided, applied to a first gateway agent in a first network, comprising: when a user equipment (UE) is detected to meet preset handover boundary conditions between the first network and a second network, and the UE is serving the second network, sending a user service information acquisition request to a second gateway agent in the second network, wherein the handover boundary conditions include at least one of the following: the UE is within the coverage area of ​​the first network; the relative strength of the signals received by the UE from the first network and the second network exceeds a preset threshold, wherein the coverage areas of the first network and the second network are adjacent or partially overlap; receiving user service information from the second gateway agent; and configuring a service operating environment adapted to the UE based on the user service information and the network operating status information of the first network, so as to ensure service continuity during the process of the UE switching from the second network to the first network.

[0008] In some exemplary embodiments of this disclosure, based on the foregoing scheme, the user service information includes: a target network architecture model identifier, network service feature parameters, and user context information. Configuring a service operating environment adapted to the user device includes: determining a corresponding target network architecture model based on the target network architecture model identifier, wherein the target network architecture model identifier is the network architecture model identifier of the second network; adjusting the network configuration parameters of the target network architecture model based on the network service feature parameters and the network operating status information of the first network; and mapping the user context information to configure the session context information of the first network.

[0009] In some exemplary embodiments of this disclosure, based on the foregoing scheme, determining the corresponding target network architecture model according to the target network architecture model identifier includes: querying a pre-set network architecture model library in the first network, and determining whether there is a network architecture model in the network architecture model library that matches the target network architecture model identifier; if there is, then the matching network architecture model is determined as the target network architecture model; if there is, then based on the service capability requirements represented by the target network architecture model identifier and combined with the network operation status information of the first network, an adapted target network architecture model is generated.

[0010] In some exemplary embodiments of this disclosure, based on the foregoing scheme, after generating an adapted target network architecture model based on the service capability requirements represented by the network architecture model identifier and in combination with the network operation status information of the first network, the method further includes: updating the network architecture model library.

[0011] According to another aspect of this disclosure, a user service configuration method for multi-network collaboration is also provided, applied to a second gateway agent in a second network, comprising: receiving a user service information acquisition request from a first gateway agent, the first gateway agent being applied to a first network; in response to the user service information acquisition request, extracting user service information corresponding to a user device serving the second network; and sending the user service information to the first gateway agent, so that the first gateway agent configures a service operating environment adapted to the user device based on the user service information and the network operating status information of the first network.

[0012] In some exemplary embodiments of this disclosure, based on the foregoing scheme, extracting user service information corresponding to the user equipment serving the second network includes: obtaining a target network architecture model identifier, network service feature parameters, and user context information corresponding to the user equipment based on the association information of the user equipment in the second network; and encapsulating the target network architecture model identifier, network service feature parameters, and user context information into the user service information.

[0013] In some exemplary embodiments of this disclosure, based on the foregoing scheme, the first gateway agent is used to generate an access credential for the user equipment after the user equipment accesses the first network. The access credential is valid in all networks within an equivalent network set, wherein the equivalent network set includes multiple shared networks, each network is pre-configured to provide the same or mappable network service capabilities, and the first network and the second network are any two of the multiple networks.

[0014] In some exemplary embodiments of this disclosure, based on the foregoing scheme, the second gateway agent is further configured to perform desensitization processing on sensitive information in the user service information, and to perform encryption and decryption processing on the sent and received user service information; the desensitization processing includes at least one of the following: data masking, identifier mapping, wherein the data masking includes character replacement of fields in the sensitive information.

[0015] According to another aspect of this disclosure, a user service configuration apparatus for multi-network collaboration is also provided, applied to a first gateway agent of a first network, comprising: a service request sending module, configured to send a user service information acquisition request to a second gateway agent in the second network when it is detected that a user equipment meets a preset handover boundary condition between the first network and a second network, and the user equipment is serving the second network, wherein the handover boundary condition includes at least one of the following: the user equipment is in the coverage area of ​​the first network; the relative strength of the signals received by the user equipment from the first network and the second network exceeds a preset threshold, wherein the coverage area of ​​the first network is adjacent to or partially overlaps with the coverage area of ​​the second network; a user service information receiving module, configured to receive user service information from the second gateway agent; and a service operation environment configuration module, configured to configure a service operation environment adapted to the user equipment based on the user service information and the network operation status information of the first network, so as to ensure service continuity during the process of the user equipment switching from the second network to the first network.

[0016] According to another aspect of this disclosure, a user service configuration device for multi-network collaboration is also provided, applied to a second gateway agent in a second network, comprising: a service request receiving module, configured to receive a user service information acquisition request from a first gateway agent, the first gateway agent being applied to the first network; a user service information extraction module, configured to extract user service information corresponding to a user device serving the second network in response to the user service information acquisition request; and a user service information sending module, configured to send the user service information to the first gateway agent, so that the first gateway agent configures a service operating environment adapted to the user device based on the user service information and the network operating status information of the first network.

[0017] According to another aspect of this disclosure, an electronic device is also provided, comprising: a processor; and a memory for storing executable instructions of the processor; wherein the processor is configured to perform any of the above-described multi-network collaborative user service configuration methods by executing the executable instructions.

[0018] According to another aspect of this disclosure, a computer-readable storage medium is also provided, on which a computer program is stored, which, when executed by a processor, implements any of the above-described multi-network collaborative user service configuration methods.

[0019] According to another aspect of this disclosure, a computer program product is also provided, comprising: a computer program or instructions that, when executed by a processor, implement a user service configuration method for multi-network collaboration of any one of the above.

[0020] The embodiments of this disclosure provide a user service configuration method, apparatus, and related equipment for multi-network collaboration. When a user device is detected to meet the preset handover boundary conditions between the first network and the second network, the first gateway agent actively requests user service information from the second gateway agent. Combined with the real-time operating status of the first network, the method dynamically configures an adapted service operating environment. This avoids service interruption, re-authentication delay, or quality of service (QoS) degradation problems caused by context loss or service parameter mismatch in traditional cross-network handover. It decouples the user's affiliation with the network, enabling seamless, continuous, and high-quality service experience for user devices across multiple networks, achieving the technical effect of "network follows the user".

[0021] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and are not intended to limit this disclosure. Attached Figure Description

[0022] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this disclosure and, together with the description, serve to explain the principles of this disclosure. It is obvious that the drawings described below are merely some embodiments of this disclosure, and those skilled in the art can obtain other drawings based on these drawings without any inventive effort.

[0023] Figure 1 This diagram illustrates a 5G home-location routing network scheme in related technologies. Figure 2 This diagram illustrates a 5G local traffic offloading network scheme in related technologies. Figure 3 This diagram illustrates a user service configuration method for multi-network collaboration applied to a first gateway agent according to an embodiment of the present disclosure. Figure 4 This diagram illustrates a user service configuration method for multi-network collaboration applied to a second gateway agent according to an embodiment of the present disclosure. Figure 5 This illustration shows a schematic diagram of an implementation scheme for a user service configuration method for multi-network collaboration in this disclosure. Figure 6 This illustration shows a schematic diagram of the operation of a gateway agent and the collaboration process between gateway agents in an embodiment of the present disclosure. Figure 7 This diagram illustrates a UE cross-network mobility procedure according to an embodiment of the present disclosure. Figure 8 This diagram illustrates a user service configuration device for multi-network collaboration applied to a first gateway agent, according to an embodiment of the present disclosure. Figure 9 This diagram illustrates a user service configuration device for multi-network collaboration applied to a second gateway agent, according to an embodiment of the present disclosure. Figure 10 A schematic diagram of an electronic device illustrating a user service configuration method for multi-network collaboration in an embodiment of this disclosure is shown. Detailed Implementation

[0024] Exemplary embodiments will now be described more fully with reference to the accompanying drawings. However, these exemplary embodiments can be implemented in many forms and should not be construed as limited to the examples set forth herein; rather, they are provided so that this disclosure will be more comprehensive and complete, and will fully convey the concept of the exemplary embodiments to those skilled in the art. The described features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.

[0025] Furthermore, the described features, structures, or characteristics can be combined in any suitable manner in one or more embodiments. Numerous specific details are provided in the following description to give a thorough understanding of embodiments of this disclosure. However, those skilled in the art will recognize that the technical solutions of this disclosure can be practiced without one or more of the specific details, or other methods, components, apparatuses, steps, etc., can be employed. In other instances, well-known methods, apparatuses, implementations, or operations are not shown or described in detail to avoid obscuring various aspects of this disclosure.

[0026] The flowcharts shown in the accompanying drawings are merely illustrative and do not necessarily include all content and operations / steps, nor do they necessarily have to be performed in the described order. For example, some operations / steps can be broken down, while others can be combined or partially combined; therefore, the actual execution order may change depending on the specific circumstances.

[0027] first, Figure 1 This refers to the home-routed routing networking scheme in related technologies. Figure 2 This refers to the local breakout networking scheme in related technologies. Figure 1 and Figure 2The functional entities in the solution include: User Equipment (UE), Radio Access Network (RAN), Access and Mobility Management Function (AMF), Session Management Function (SMF), User Plane Function (UPF), Data Network (DN), Network Repository Function (NRF), Policy Control Function (PCF), Authentication Server Function (AUSF), Unified Data Management (UDM), Visited Security Edge Protection Proxy (vSEPP) on the roaming side, and Home Security Edge Protection Proxy (hSEPP) on the home side. hSEPP and vSEPP are key network elements in 5G networks for secure interoperability across operators, representing two deployment roles of SEPP. Their main functions include control plane message filtering, topology hiding, and sensitive information protection. Figure 1 It can be seen that SMF can be divided into vSMF and hSMF, deployed at the roaming visited location and the home location respectively. The roaming visited location UPF connects to the home location UPF through vSEPP, and Figure 2 The process only involves the SMF of the roaming visit location, but still requires key operations such as authentication and subscription data query with the home network through vSEPP / hSEPP. However, regardless of the networking scheme, users have a clear home network. When users move to a non-home network, they need to perform network reselection and access registration procedures, which leads to signaling interaction delays and session interruption risks during the handover process, making it difficult to ensure the continuity of services.

[0028] To address the need to ensure user mobility in 6G distributed networking scenarios, this disclosure provides a user service configuration method based on multi-network collaboration using gateway agents. This method includes deploying gateway devices in each distributed edge subnet. Specifically, the distributed edge subnets include a first network, a second network, a third network, etc. The gateway devices perform functions such as data sensing and collection, model learning, network configuration, context storage, transmission and mapping, and inter-network security isolation. They collaborate with other gateway agents using an agent-based operation mode. Therefore, this disclosure sets the gateway devices as gateway agents; that is, the first gateway agent is deployed in the first network, the second gateway agent is deployed in the second network, and the third gateway agent is deployed in the middle of the third network. The third gateway agent is deployed, and so on. Further, the gateway agents deployed in each network can dynamically adjust the network architecture model identifier and extract the user's network service characteristic parameters based on the resource status, user, and service conditions of the corresponding network. During the user's handover between equivalent networks, the gateway agent collects the user's context information from its own network and transmits the network architecture model identifier, network service characteristic parameters, and the user's context information to the corresponding gateway agent across the network. The corresponding gateway agent across the network selects and adjusts its local network architecture model as needed based on the received network architecture model identifier and the resource status and service availability of its local network. It further learns and adjusts network configuration parameters by combining the network service characteristic parameters and finally writes the user's context information. In this way, when a user switches to a corresponding network across networks, it can present the same service capabilities as the original network. Simultaneously, because the edge network stores the user's service context information, the registration process for users to new subnets can be simplified, and the continuity of user services across networks can be guaranteed.

[0029] Figure 3 This diagram illustrates a user service configuration method for multi-network collaboration in an embodiment of the present disclosure. The method is applied to a first gateway agent of a first network and includes the following steps: S302, when it is detected that the user equipment meets the preset handover boundary conditions between the first network and the second network, and the user equipment is serving the second network, a user service information acquisition request is sent to the second gateway agent in the second network. The handover boundary conditions include at least one of the following: the user equipment is in the coverage area of ​​the first network; the relative strength of the signals received by the user equipment from the first network and the second network exceeds a preset threshold, wherein the coverage area of ​​the first network and the coverage area of ​​the second network are adjacent or partially overlap.

[0030] It should be noted that, in this embodiment, the first network is the target network that the user equipment is currently entering or about to access, and the second network is the source network that the user equipment has previously registered or is currently associating with. The wireless coverage areas of the two networks are geographically adjacent or partially overlap, supporting cross-network movement of the user equipment. For example, the first network could be cell A covered by a 6G base station, and the second network could be cell B covered by an adjacent 6G base station. In this embodiment, the gateway agent is an intelligent software entity or functional module deployed on the gateway that possesses specific agent functions. For example, it has the function of sensing and collecting user behavior data and network resource status within the network, analyzing user-level network architecture models and network service characteristic parameters, and interacting with other gateway agents regarding the user's network architecture model, network service characteristic parameters, and user... The gateway agent interacts with user context information to synchronize or map its context information when the UE moves across networks, ensuring service continuity. In addition, the gateway agent in this embodiment can also perform the security functions of traditional gateway devices, including message filtering, topology hiding, sensitive information protection, and data stream encryption and decryption. The first gateway agent in this embodiment is an agent deployed on the first gateway in the first network, and the second gateway agent is an agent deployed on the second gateway in the second network. The handover boundary conditions in this embodiment may include: the user equipment is located at the boundary or overlap of the coverage areas of two networks, the relative strength of the signals received by the user equipment from the first network and the second network exceeds a preset threshold, and the future location is predicted by an AI model based on the historical trajectory of the user equipment.

[0031] In some embodiments, the coverage areas of the first network (such as a 6G base station A) and the second network (such as a 6G base station B) intersect on a highway. When the user equipment's GPS or network positioning shows that it is in the overlapping area of ​​the two base station coverages (e.g., within a geofence), the handover boundary condition in this embodiment of the disclosure is met. Alternatively, the user equipment is currently connected to the second network (base station B), with a Reference Signal Received Power (RSRP) of -95dBm. At the same time, the user equipment also detects the nearby first network (base station A), with a Reference Signal Received Power (RSRP) of -88dBm. The difference between these two signals is 7dB. Assuming a preset threshold of 6dB, this indicates that the user is rapidly approaching the coverage center of the first network, thus meeting the handover boundary condition in this embodiment of the disclosure. Alternatively, the first gateway agent analyzes the user's location data over the past 5 seconds, fits a prediction that the user is traveling in a straight line at a speed of 60km / h towards the coverage center of the first network, and predicts that the user will completely leave the coverage of the second network in 2 seconds, thus meeting the handover boundary condition in this embodiment of the disclosure.

[0032] S304 receives user service information from the second gateway agent.

[0033] It should be noted that the user service information acquisition request in this embodiment is initiated by the first gateway agent of the first network to obtain user service information from the second network. The user service information is a data set describing the user's service status in the second network, which is used to reconstruct the equivalent service environment (i.e., the equivalent network) in the first network. The user service information may include the target network architecture model identifier, network service characteristic parameters, and user context information. In addition, the equivalent network is a network that can provide the same network service capabilities and usually has different service areas. When the user equipment (UE) moves between equivalent networks, it does not need to perform a network selection operation.

[0034] S306, based on user service information and network operation status information of the first network, configure a service operation environment adapted to the user equipment so as to ensure service continuity during the process of user equipment switching from the second network to the first network.

[0035] It should be noted that the network operation status information of the first network in this embodiment is the real-time resource availability and performance status of the first network at the current moment, used to assess whether it can meet the user's service needs. The network operation status information may include: resource load (e.g., CPU / memory utilization, wireless spectrum utilization, core network processing queue length, slice resource margin), available bandwidth (e.g., idle transmission capacity), QoS capabilities (e.g., currently commensurable minimum latency, maximum bit rate), topology status (e.g., distance and weight of connections between network elements, routing path health), security policies (e.g., whether external context import is allowed, authentication mechanism type), etc. In addition, the service operation environment in this embodiment is dynamically constructed or adjusted based on user service information and the operation status information of the first network to ensure that user equipment can obtain an alternative service with the same or optimal experience as its original service after access.

[0036] The user service configuration method for multi-network collaboration provided in the embodiments of this disclosure firstly, when it is detected that the user equipment meets the preset handover boundary conditions between the first network and the second network, and the user equipment is serving the second network, a user service information acquisition request is sent to the second gateway agent in the second network; then, user service information is received from the second gateway agent; finally, based on the user service information and the network operation status information of the first network, a service operation environment adapted to the user equipment is configured. Compared with the related technologies where users need to return to their home location for authentication, registration, and acquisition of subscription data when moving across networks, resulting in high handover latency, complex processes, and difficulty in ensuring service continuity, the embodiments of this disclosure, when it is detected that the user equipment meets the preset handover boundary conditions between the first network and the second network, have the first gateway agent actively request its user service information from the second gateway agent, and dynamically configure an adapted service operation environment based on the real-time operation status of the first network. This can avoid the service interruption, re-authentication delay, or QoS degradation problems caused by context loss or service parameter mismatch in traditional cross-network handover, decouple the user's affiliation with the network, and achieve a seamless, continuous, and high-quality service experience for user equipment across multiple networks, achieving the technical effect of "network follows the user".

[0037] In some embodiments of this disclosure, in order to reduce the resource consumption of data collection within each network, operations such as data collection and model adjustment can be conditionally triggered. For example, when a user approaches the first network, an alarm message is received indicating that the user has entered the boundary location, so that the first network can promptly send a user service information acquisition request to the second network where the user device is located. In addition, embodiments of this disclosure introduce a gateway agent to support network architecture model learning and complete inter-network collaborative tasks, ensuring the user's mobility across networks, thereby providing a valuable application method for network agents.

[0038] In some embodiments, the user service information in this disclosure includes: a target network architecture model identifier, network service feature parameters, and user context information. Configuring a service operating environment adapted to the user device includes: determining the corresponding target network architecture model based on the target network architecture model identifier, where the target network architecture model identifier is the network architecture model identifier of the second network; adjusting the network configuration parameters of the target network architecture model based on the network service feature parameters and the network operating status information of the first network; and mapping the user context information to configure the session context information of the first network. Specifically, this disclosure divides user service information into three structured dimensions: the target network architecture model identifier, network service feature parameters, and user context information, and performs model matching, parameter adjustment, and context mapping and writing respectively. This accurately restores or adapts the user's service intent and experience requirements in the second network, avoiding service mismatch or context breakage caused by network heterogeneity. Furthermore, this disclosure dynamically adjusts the configuration parameters based on the real-time operating status of the first network, maximizing service quality while ensuring the feasibility of local resources, thereby achieving the technical effects of service continuity, QoS consistency, and seamless session migration across network scenarios.

[0039] It should be noted that the network service feature parameters in this embodiment are user-dimensional parameters, which are related to the user's contractual relationship and network behavior. The network service feature parameters and user context information may have some identical data.

[0040] In some embodiments, this disclosure determines the corresponding target network architecture model based on the target network architecture model identifier, including: querying a pre-set network architecture model library in the first network to determine whether there is a network architecture model in the library that matches the target network architecture model identifier; if there is, the matching network architecture model is determined as the target network architecture model; if not, an adapted target network architecture model is generated based on the service capability requirements represented by the network architecture model identifier and the network operation status information of the first network. Specifically, this disclosure pre-sets a network architecture model library in the first network and performs a priority matching query based on the received target network architecture model identifier. If a match is successful, the existing model is directly reused; if no match is found, an adapted network architecture model is dynamically generated based on the service capability requirements represented by the identifier and the real-time operation status of the first network. This approach balances the efficiency and flexibility of service configuration, avoiding redundant modeling overhead and improving cross-network switching response speed. Furthermore, it ensures that feasible service topologies can still be built as needed when facing new or customized service requirements, thereby achieving highly compatible, low-latency, and resource-optimized multi-network collaborative service deployment.

[0041] In some embodiments, after generating an adapted target network architecture model based on the service capability requirements represented by the target network architecture model identifier and the network operation status information of the first network, the user service configuration method for multi-network collaboration in this embodiment further includes updating the network architecture model library. Specifically, by dynamically generating an adapted target network architecture model based on the service capability requirements represented by the target network architecture model identifier and the real-time operation status of the first network, this embodiment stores the newly generated model in a local network architecture model library, enabling continuous accumulation of model assets and knowledge accumulation. When the same or similar service requirements reappear, the verified model can be directly reused, avoiding redundant calculations and resource exploration, thereby improving the response speed, resource utilization efficiency, and deployment reliability of cross-network service configuration, forming a positive reinforcement closed loop of on-demand generation, effective verification, and reuse in the library.

[0042] Figure 4 This diagram illustrates a user service configuration method for multi-network collaboration in an embodiment of the present disclosure. The method is applied to a second gateway agent in a second network and includes the following steps: S402, Receive a user service information acquisition request from the first gateway agent, the first gateway agent is applied to the first network; S404, in response to the user service information acquisition request, extract the user service information corresponding to the user equipment serving the second network; S406, send user service information to the first gateway agent so that the first gateway agent can configure a service operation environment adapted to the user equipment based on the user service information and the network operation status information of the first network.

[0043] In some embodiments, the multi-network collaborative user service configuration method in this disclosure is applied to the second gateway agent of the second network. After receiving a request from the first gateway agent, the second gateway agent actively extracts and sends structured user service information associated with the user device. This enables the first network to quickly obtain the complete service intent and context state of the user in the source network without relying on a central database or requiring user re-authentication, thereby achieving efficient, secure, and seamless cross-domain service migration.

[0044] In some embodiments, this disclosure extracts user service information corresponding to user equipment serving a second network, including: obtaining a target network architecture model identifier, network service feature parameters, and user context information corresponding to the user equipment based on the association information of the user equipment in the second network; and encapsulating the target network architecture model identifier, network service feature parameters, and user context information into user service information. Specifically, this disclosure accurately obtains the target network architecture model identifier, network service feature parameters, and user context information corresponding to the user equipment based on its local association information in the second network, and encapsulates the three in a structured manner into unified user service information. This ensures that the transmitted service description has semantic integrity, technical feasibility, and contextual continuity. Furthermore, this disclosure avoids misjudging user needs by the target network due to information fragmentation or missing information, and provides standardized input for subsequent model matching, parameter tuning, and session mapping, thereby significantly improving the accuracy, efficiency, and reliability of cross-network service migration.

[0045] In some embodiments, this disclosure delegates the responsibility for service configuration during the user equipment's cross-network access process to the gateway agents of the first and second networks in an autonomous and collaborative manner. This enables the user equipment to switch from the second network to the first network without performing additional authentication, parameter reporting, or context synchronization operations, thus avoiding handover failures due to differences in terminal capabilities or protocol incompatibility. This achieves seamless network migration that is completely transparent to the user, ensuring service continuity, reducing terminal power consumption, and improving the overall mobility management efficiency in heterogeneous multi-network environments.

[0046] In some embodiments of this disclosure, the first gateway agent is further configured to generate access credentials for the user equipment after it accesses the first network. These access credentials are valid across all networks within an equivalent network set, where the equivalent network set includes multiple shared networks, each pre-configured to provide the same or mappable network service capabilities. The first network and the second network are any two of these networks. Specifically, by generating unified access credentials valid across all networks within the equivalent network set after the user equipment accesses the first network from the second network, this disclosure avoids the user equipment repeatedly performing authentication and key negotiation processes when subsequently traversing other networks in the set. This significantly reduces handover latency and terminal power consumption, improves mobile service continuity, and further reduces the load and signaling overhead of the core network authentication server. Simultaneously, it ensures the secure applicability boundaries of credentials based on pre-defined service capability equivalence, thereby achieving an efficient, secure, and seamless multi-network collaborative access experience.

[0047] In some embodiments of this disclosure, the access credentials of each network to the user equipment can be obtained by passing user context information or by relying on a shared database between equivalent networks. The shared database is a secure transmission and verification carrier for access credentials. Specifically, the access credentials themselves are usually not directly stored in the visited network. When a user equipment attempts to access an equivalent network: the network can query the shared database through a pre-established trust mechanism (e.g., a secure interface, a federated protocol); the shared database of the equivalent network returns the necessary authentication vector; when visiting the network, the user equipment uses the necessary authentication vector to complete the authentication of the UE and derives a session key, thereby indirectly obtaining the right to use the access credentials without holding the original credentials.

[0048] In some embodiments, such as Figure 5 As shown, the user service configuration method for multi-network collaboration in this embodiment of the present disclosure specifically includes: a second gateway agent in the second network periodically collects network data, including: the resource status of the second network, user and service status, context of critical users, etc., and performs model training and network architecture model adjustment as needed. When the first network senses the proximity of the UE, it takes an early warning action, prompting the first gateway agent of the first network to send a user service information acquisition request to the second gateway agent; the second gateway agent further extracts the user's network service feature parameters and collects user context information in combination with user information, so as to feed back the network architecture model identifier (e.g., IoT model), network service feature parameters (e.g., QoS), user context (e.g., user identification (ID), Internet Protocol (IP) address, access credentials, etc.) to the first gateway agent of the first network; when transmitting information, the second gateway agent masks or maps some sensitive information as needed; after receiving the information, the first gateway agent evaluates and adjusts the network architecture model as needed in combination with the resource status of its own network and the status of users in service, adjusts the network configuration in combination with the network service feature parameters, and maps and configures the user context as needed (e.g., enabling Network Address Translation (NAT)). Translation (NAT)); When a UE moves to an equivalent first network carrying access credentials obtained from successful registration in the second network, the UE can use these credentials to access the first network. Since the first network has already written the context information of the user's service usage, the user can skip a series of connection establishment processes and continuously use the service after arriving in the first network. It can be seen that in this embodiment of the disclosure, there is no need for a clear affiliation between the user and the subnet, and the network follows the user.

[0049] It should be noted that when a user authorizes access, they obtain an access credential, which carries the user's shared authorization information on the equivalent network.

[0050] In some embodiments, the second gateway agent in this disclosure is further configured to desensitize sensitive information in user service information and to encrypt and decrypt the sent and received user service information. The desensitization process includes at least one of the following: data masking and identifier mapping. Data masking includes character replacement of fields in the sensitive information. Specifically, before sending user service information, the second gateway agent in this disclosure performs desensitization processing on the sensitive information therein. This enables the first network to provide sufficient information to support service configuration without disclosing the original privacy data, avoiding security risks caused by transmitting plaintext sensitive information (such as real IP addresses, service network element information, etc.). This achieves efficient cross-network service collaboration while constructing a privacy-secure and reliable multi-network collaboration mechanism.

[0051] In some embodiments, such as Figure 6 As shown, the operation of the gateway agent itself and the collaboration process between gateway agents in this embodiment include: the gateway agent continuously collects resource status, user and service status, and user context; the gateway agent has a built-in lightweight machine learning model, which is used to train the model and extract features from the collected resource status, user and service status, and user context information, and generates a corresponding network architecture model identifier based on the extracted network service feature parameters according to the preset network architecture model library and user configuration parameters, for subsequent decision-making; in addition, the gateway agent can also perform reinforcement learning, specifically, by combining real-time resource status, user and service status, subnet service feature parameters, and locally stored architecture model and user configuration parameters, the network configuration and user context mapping are output through reinforcement learning algorithms; furthermore, when multiple gateway agents cover the same area or there is service overlap, cross-gateway collaboration is required, specifically, when cross-gateway users are detected, adjacent gateway agents start the collaboration mode, share their respective network service feature parameters and resource status, and jointly decide on a cross-gateway unified configuration strategy.

[0052] In some embodiments, such as Figure 7 As shown, this disclosure provides an implementation process for UE cross-network mobility, including: S702: Each network gateway agent continuously collects network operation status information (including resource status, user and service status) within the network, and adjusts the network architecture model and network configuration parameters as needed through model training.

[0053] S704, the UE registers and uses services in the second network.

[0054] S706, UE moving, discovers equivalent network: first network.

[0055] S708, the first network agent in the first network senses the proximity of the UE and requests user service information related to the UE from the second network agent in the second network.

[0056] S710, the second network agent receives a user service information retrieval request sent by the first network agent.

[0057] S712, the second network agent collects the context information of the UE.

[0058] S714, the second network agent learns and extracts the network service feature parameters of the UE based on the UE context and existing network architecture model and parameters.

[0059] S716, the second network agent transmits the target network architecture model identifier, network service characteristic parameters and corresponding user context information to the first network agent.

[0060] S718, the first network agent learns from the received target network architecture model identifier and network service characteristic parameters, combined with the network operation status information of the local network (including resource status, user and service status, etc.), and derives network adjustment suggestions.

[0061] S720 adjusts the target network architecture model as needed, performs UE context mapping, configures the network, and finally writes it into the UE context.

[0062] S722, the UE moves to a location that meets the handover conditions and switches to the first network.

[0063] S724, the UE registers with the first network and obtains a new access credential.

[0064] S726, the UE continuously uses services on the first network.

[0065] Based on the same inventive concept, this disclosure also provides a user service configuration device for multi-network collaboration, as shown in the following embodiment. Since the principle by which this device embodiment solves the problem is similar to that of the above-described method embodiment, the implementation of this device embodiment can refer to the implementation of the above-described method embodiment, and repeated details will not be elaborated further.

[0066] Figure 8 This diagram illustrates a user service configuration device for multi-network collaboration in an embodiment of the present disclosure. The device is applied to a first gateway agent in a first network and includes: The service request sending module 801 is used to send a user service information acquisition request to the second gateway agent in the second network when it detects that the user equipment meets the preset handover boundary conditions between the first network and the second network, and the user equipment is serving the second network. The handover boundary conditions include at least one of the following: the user equipment is in the coverage area of ​​the first network; the relative strength of the signals received by the user equipment from the first network and the second network exceeds a preset threshold, wherein the coverage areas of the first network and the coverage areas of the second network are adjacent or partially overlap. User service information receiving module 802 is used to receive user service information from the second gateway intelligent agent; The service operation environment configuration module 803 is used to configure a service operation environment adapted to the user equipment based on user service information and network operation status information of the first network, so as to ensure service continuity during the process of user equipment switching from the second network to the first network.

[0067] This disclosure provides a user service configuration device for multi-network collaboration. Through a service request sending module, when a user device (PAP) is detected to meet preset handover boundary conditions between a first network and a second network, and the PAP is associated with the second network, a user service information acquisition request is sent to a second gateway agent in the second network. Through a user service information receiving module, user service information is received from the second gateway agent. Through a service runtime environment configuration module, a service runtime environment adapted to the PAP is configured based on the user service information and the network runtime status information of the first network. Compared to related technologies where users need to return to their home location for authentication, registration, and subscription data when moving across networks, resulting in high handover latency, complex processes, and difficulty in ensuring service continuity, this disclosure, when detecting that the PAP meets preset handover boundary conditions between the first and second networks, has the first gateway agent proactively request user service information from the second gateway agent and dynamically configure an adapted service runtime environment based on the real-time runtime status of the first network. This avoids service interruptions, re-authentication delays, or QoS degradation caused by context loss or service parameter mismatches in traditional cross-network handovers, achieving a seamless, continuous, and high-quality service experience for PAPs across multiple networks.

[0068] In some embodiments, the user service information in this disclosure includes: a target network architecture model identifier, network service feature parameters, and user context information. The service runtime environment configuration module is further configured to determine the corresponding target network architecture model based on the target network architecture model identifier, wherein the target network architecture model identifier is the network architecture model identifier of the second network; adjust the network configuration parameters of the target network architecture model based on the network service feature parameters and the network runtime status information of the first network; and perform mapping processing on the user context information to configure the session context information of the first network.

[0069] In some embodiments of this disclosure, the service runtime environment configuration module is further configured to query a pre-set network architecture model library in the first network, and determine whether there is a network architecture model in the network architecture model library that matches the target network architecture model identifier; if there is, the matching network architecture model is determined as the target network architecture model; if there is, an adapted target network architecture model is generated based on the service capability requirements represented by the target network architecture model identifier and combined with the network runtime status information of the first network.

[0070] In some embodiments of this disclosure, the user service configuration device for multi-network collaboration further includes: a network architecture model library update module, used to update the network architecture model library after generating an adapted target network architecture model based on the service capability requirements represented by the target network architecture model identifier and in combination with the network operation status information of the first network.

[0071] Figure 9 This diagram illustrates a user service configuration device for multi-network collaboration in an embodiment of the present disclosure. The device is applied to a second gateway agent in a second network and includes: The service request receiving module 901 is used to receive a user service information acquisition request from the first gateway agent. The first gateway agent is applied to the first network, and the coverage area of ​​the first network is adjacent to the coverage area of ​​the second network. The user service information extraction module 902 is used to extract user service information corresponding to the user equipment serving the second network in response to the user service information acquisition request. The user service information sending module 903 is used to send user service information to the first gateway agent so that the first gateway agent can configure a service operation environment that is compatible with the user equipment based on the user service information and the network operation status information of the first network.

[0072] In some embodiments of this disclosure, the multi-network collaborative user service configuration device, after receiving a request from the first gateway agent, actively extracts and sends structured user service information associated with the user device. This enables the first network to quickly obtain the user's complete service intent and context state in the source network without relying on a central database or requiring user re-authentication, thereby achieving efficient, secure, and seamless cross-domain service migration.

[0073] In some embodiments of this disclosure, the user service information extraction module is further configured to obtain the target network architecture model identifier, network service feature parameters, and user context information corresponding to the user equipment based on the association information of the user equipment in the second network; and encapsulate the target network architecture model identifier, network service feature parameters, and user context information into user service information.

[0074] In some embodiments of this disclosure, after a user equipment accesses the first network from the second network, the first gateway agent is further configured to generate access credentials for the user equipment. The access credentials are valid in all networks within an equivalent network set, wherein the equivalent network set includes multiple shared networks, each network being pre-configured to provide the same or mappable network service capabilities, and the first network and the second network are any two of the multiple networks.

[0075] In some embodiments of this disclosure, the second gateway agent is further configured to perform desensitization processing on sensitive information in user service information and to perform encryption and decryption processing on the received and sent user service information. The desensitization processing includes at least one of the following: data masking and identifier mapping. Data masking includes character replacement of fields in sensitive information.

[0076] Those skilled in the art will understand that various aspects of this disclosure can be implemented as a system, method, or program product. Therefore, various aspects of this disclosure can be specifically implemented in the following forms: a completely hardware implementation, a completely software implementation (including firmware, microcode, etc.), or a combination of hardware and software aspects, collectively referred to herein as a "circuit," "module," or "system."

[0077] Based on the same inventive concept, this disclosure also provides an electronic device, which includes: a processor; and a memory for storing executable instructions of the processor; wherein the processor is configured to execute the multi-network collaborative user service configuration method described above by executing the executable instructions. Since the principle by which this electronic device embodiment solves the problem is similar to that of the above method embodiments, the implementation of this electronic device embodiment can refer to the implementation of the above method embodiments, and repeated details will not be described again.

[0078] The following reference Figure 10 To describe an electronic device 1000 according to such an embodiment of the present disclosure. Figure 10 The electronic device 1000 shown is merely an example and should not impose any limitation on the functionality and scope of use of the embodiments disclosed herein.

[0079] like Figure 10 As shown, the electronic device 1000 is manifested in the form of a general-purpose computing device. The components of the electronic device 1000 may include, but are not limited to: at least one processing unit 1001, at least one storage unit 1002, and a bus 1003 connecting different system components (including storage unit 1002 and processing unit 1001).

[0080] The storage unit stores program code, which can be executed by the processing unit 1001, causing the processing unit 1001 to perform the steps described in the "Exemplary Methods" section above according to various exemplary embodiments of this disclosure.

[0081] In some embodiments, when an electronic device is used to control, for example, the user service configuration method for multi-network collaboration described in this disclosure, the processing unit 1001 may execute the following steps of the method embodiment described above: When it is detected that the user equipment meets the preset handover boundary conditions between the first network and the second network, and the user equipment is serving the second network, a user service information acquisition request is sent to the second gateway agent in the second network. The handover boundary conditions include at least one of the following: the user equipment is in the coverage area of ​​the first network; the relative strength of the signals received by the user equipment from the first network and the second network exceeds a preset threshold, wherein the coverage areas of the first network and the second network are adjacent or partially overlap; user service information is received from the second gateway agent; based on the user service information and the network operation status information of the first network, a service operation environment adapted to the user equipment is configured so that the process of the user equipment switching from the second network to the first network ensures service continuity.

[0082] Storage unit 1002 may include a readable medium in the form of a volatile storage unit, such as a random access memory unit (RAM) 10021 and / or a cache memory unit 10022, and may further include a read-only memory unit (ROM) 10023.

[0083] Storage unit 1002 may also include a program / utility 10024 having a set (at least one) program module 10025, such program module 10025 including but not limited to: operating system, one or more application programs, other program modules and program data, each of these examples or some combination of these may include an implementation of a network environment.

[0084] Bus 1003 can represent one or more of several types of bus structures, including a memory cell bus or memory cell controller, a peripheral bus, a graphics acceleration port, a processing unit, or a local bus using any of the various bus structures.

[0085] Electronic device 1000 can also communicate with one or more external devices 1004 (e.g., keyboard, pointing device, Bluetooth device, etc.), one or more devices that enable a user to interact with electronic device 1000, and / or any device that enables electronic device 1000 to communicate with one or more other computing devices (e.g., router, modem, etc.). This communication can be performed via input / output (I / O) interface 1005. Furthermore, electronic device 1000 can also communicate with one or more networks (e.g., local area network (LAN), wide area network (WAN), and / or public networks, such as the Internet) via network adapter 1006. As shown, network adapter 1006 communicates with other modules of electronic device 1000 via bus 1003. It should be understood that, although not shown in the figures, other hardware and / or software modules can be used in conjunction with electronic device 1000, including but not limited to: microcode, device drivers, redundant processing units, external disk drive arrays, RAID systems, tape drives, and data backup storage systems.

[0086] From the above description of the embodiments, those skilled in the art will readily understand that the exemplary embodiments described herein can be implemented by software or by combining software with necessary hardware. Therefore, the technical solutions according to the embodiments of this disclosure can be embodied in the form of a software product, which can be stored in a non-volatile storage medium (such as a CD-ROM, USB flash drive, external hard drive, etc.) or on a network, including several instructions to cause a computing device (such as a personal computer, server, terminal device, or network device, etc.) to execute the methods according to the embodiments of this disclosure.

[0087] Based on the same inventive concept, this disclosure also provides a computer-readable storage medium storing a computer program that, when executed by a processor, implements the user service configuration method for multi-network collaboration described above. Since the principle by which this computer-readable storage medium embodiment solves the problem is similar to that of the above method embodiments, the implementation of this computer-readable storage medium embodiment can refer to the implementation of the above method embodiments, and repeated details will not be elaborated further.

[0088] More specific examples of computer-readable storage media in this disclosure may include, but are not limited to: electrical connections having one or more wires, portable computer disks, hard disks, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fiber, portable compact disk read-only memory (CD-ROM), optical storage devices, magnetic storage devices, or any suitable combination of the foregoing.

[0089] In this disclosure, a computer-readable storage medium may include a data signal propagated in baseband or as part of a carrier wave, carrying readable program code. Such propagated data signals may take various forms, including but not limited to electromagnetic signals, optical signals, or any suitable combination thereof. A readable signal medium may also be any readable medium other than a readable storage medium, capable of transmitting, propagating, or transmitting a program for use by or in connection with an instruction execution system, apparatus, or device.

[0090] Optionally, the program code contained on the computer-readable storage medium may be transmitted using any suitable medium, including but not limited to wireless, wired, optical fiber, RF, etc., or any suitable combination thereof.

[0091] In practice, program code for performing the operations of this disclosure can be written in any combination of one or more programming languages, including object-oriented programming languages ​​such as Java and C++, and conventional procedural programming languages ​​such as C or similar languages. The program code can execute entirely on the user's computing device, partially on the user's computing device, as a standalone software package, partially on the user's computing device and partially on a remote computing device, or entirely on a remote computing device or server. In cases involving remote computing devices, the remote computing device can be connected to the user's computing device via any type of network, including a local area network (LAN) or a wide area network (WAN), or it can be connected to an external computing device (e.g., via the Internet using an Internet service provider).

[0092] Based on the same inventive concept, this disclosure also provides a computer program product, including: a computer program or instructions, which, when executed by a processor, implement the multi-network collaborative user service configuration method of any one of the above method embodiments. Since the principle by which this computer program product embodiment solves the problem is similar to that of the above method embodiments, the implementation of this computer program product embodiment can refer to the implementation of the above method embodiments, and repeated details will not be elaborated further.

[0093] It should be noted that although several modules or units for the device used to perform actions have been mentioned in the detailed description above, this division is not mandatory. In fact, according to embodiments of this disclosure, the features and functions of two or more modules or units described above can be embodied in one module or unit. Conversely, the features and functions of one module or unit described above can be further divided and embodied by multiple modules or units.

[0094] Furthermore, although the steps of the method in this disclosure are described in a specific order in the accompanying drawings, this does not require or imply that the steps must be performed in that specific order, or that all the steps shown must be performed to achieve the desired result. Additional or alternative steps may be omitted, multiple steps may be combined into one step, and / or a step may be broken down into multiple steps.

[0095] From the above description of the embodiments, those skilled in the art will readily understand that the exemplary embodiments described herein can be implemented by software or by combining software with necessary hardware. Therefore, the technical solutions according to the embodiments of this disclosure can be embodied in the form of a software product, which can be stored in a non-volatile storage medium (such as a CD-ROM, USB flash drive, external hard drive, etc.) or on a network, including several instructions to cause a computing device (such as a personal computer, server, mobile terminal, or network device, etc.) to execute the methods according to the embodiments of this disclosure.

[0096] Other embodiments of this disclosure will readily occur to those skilled in the art upon consideration of the specification and practice of the invention disclosed herein. This disclosure is intended to cover any variations, uses, or adaptations of this disclosure that follow the general principles of this disclosure and include common knowledge or customary techniques in the art not disclosed herein. The specification and examples are to be considered exemplary only, and the true scope and spirit of this disclosure are indicated by the appended claims.

Claims

1. A method for configuring user services in a multi-network collaborative manner, characterized in that, The first gateway agent applied to the first network includes: When it is detected that the user equipment meets the preset handover boundary conditions between the first network and the second network, and the user equipment is serving the second network, a user service information acquisition request is sent to the second gateway agent in the second network. The handover boundary conditions include at least one of the following: the user equipment is in the coverage area of ​​the first network; the relative strength of the signals received by the user equipment from the first network and the second network exceeds a preset threshold, wherein the coverage area of ​​the first network is adjacent to or partially overlaps with the coverage area of ​​the second network. Receive user service information from the second gateway agent; Based on the user service information and the network operation status information of the first network, a service operation environment adapted to the user equipment is configured so that the process of the user equipment switching from the second network to the first network ensures service continuity.

2. The user service configuration method for multi-network collaboration according to claim 1, characterized in that, The user service information includes: target network architecture model identifier, network service characteristic parameters, and user context information, and configures a service operating environment adapted to the user device, including: Based on the target network architecture model identifier, the corresponding target network architecture model is determined, wherein the target network architecture model identifier is the network architecture model identifier of the second network; Based on the network service characteristic parameters and the network operation status information of the first network, adjust the network configuration parameters of the target network architecture model; The user context information is mapped to configure the session context information of the first network.

3. The user service configuration method for multi-network collaboration according to claim 2, characterized in that, Based on the target network architecture model identifier, determine the corresponding target network architecture model, including: Query the pre-set network architecture model library in the first network to determine whether there is a network architecture model in the network architecture model library that matches the target network architecture model identifier; If it exists, the matching network architecture model will be determined as the target network architecture model; If it does not exist, an adapted target network architecture model is generated based on the service capability requirements represented by the target network architecture model identifier and the network operation status information of the first network.

4. The user service configuration method for multi-network collaboration according to claim 3, characterized in that, After generating an adapted target network architecture model based on the service capability requirements represented by the target network architecture model identifier and in conjunction with the network operation status information of the first network, the method further includes: Update the network architecture model library.

5. A method for configuring user services in a multi-network collaborative manner, characterized in that, The second gateway agent applied to the second network includes: Receives a user service information acquisition request from a first gateway agent, which is applied to the first network; In response to the user service information acquisition request, user service information corresponding to the user equipment serving the second network is extracted; The user service information is sent to the first gateway agent so that the first gateway agent can configure a service operating environment adapted to the user device based on the user service information and the network operating status information of the first network.

6. The user service configuration method for multi-network collaboration according to claim 5, characterized in that, Extracting user service information corresponding to user equipment serving the second network, including: Based on the association information of the user equipment in the second network, obtain the target network architecture model identifier, network service feature parameters and user context information corresponding to the user equipment; The target network architecture model identifier, the network service feature parameters, and the user context information are encapsulated into the user service information.

7. The user service configuration method for multi-network collaboration according to claim 1, characterized in that, The first gateway agent is used to generate access credentials for the user equipment after the user equipment accesses the first network. The access credentials are valid in all networks within an equivalent network set, wherein the equivalent network set includes multiple shared networks, each network is pre-configured to provide the same or mappable network service capabilities, and the first network and the second network are any two of the multiple networks.

8. The user service configuration method for multi-network collaboration according to claim 5, characterized in that, The second gateway agent is also used to desensitize sensitive information in the user service information and to encrypt and decrypt the sent and received user service information. The desensitization process includes at least one of the following: data masking and identifier mapping. The data masking includes character replacement of fields in the sensitive information.

9. A user service configuration device for multi-network collaboration, characterized in that, The first gateway agent applied to the first network includes: A service request sending module is used to send a user service information acquisition request to a second gateway agent in the second network when it is detected that the user equipment meets the preset handover boundary conditions between the first network and the second network, and the user equipment is serving the second network. The handover boundary conditions include at least one of the following: the relative strength of the signals received by the user equipment from the first network and the second network exceeds a preset threshold, wherein the coverage area of ​​the first network is adjacent to or partially overlaps with the coverage area of ​​the second network. The user service information receiving module is used to receive user service information from the second gateway intelligent agent; The service operation environment configuration module is used to configure a service operation environment adapted to the user equipment based on the user service information and the network operation status information of the first network, so as to ensure service continuity during the process of the user equipment switching from the second network to the first network.

10. A user service configuration device for multi-network collaboration, characterized in that, The second gateway agent applied to the second network includes: The service request receiving module is used to receive user service information acquisition requests from the first gateway agent, which is applied to the first network. The user service information extraction module is used to extract user service information corresponding to the user equipment serving the second network in response to the user service information acquisition request. The user service information sending module is used to send the user service information to the first gateway agent, so that the first gateway agent can configure a service operation environment adapted to the user device based on the user service information and the network operation status information of the first network.

11. An electronic device, characterized in that, include: processor; as well as Memory for storing the executable instructions of the processor; The processor is configured to execute the user service configuration method for multi-network collaboration as described in any one of claims 1 to 8 by executing the executable instructions.

12. A computer-readable storage medium having a computer program stored thereon, characterized in that, When the computer program is executed by the processor, it implements the user service configuration method for multi-network collaboration as described in any one of claims 1 to 8.

13. A computer program product comprising: A computer program or instruction, characterized in that, when executed by a processor, the computer program or instruction implements the user service configuration method for multi-network collaboration as described in any one of claims 1 to 8.