Service control method, electronic equipment and computer readable storage medium

By transmitting predefined fixed bytes of PCO messages between user equipment and network-side equipment, user equipment actively requests ultra-high-speed services, and network-side equipment configures CA cell sets and resource blocks, thus solving the problem of insufficient 5G network resource allocation and realizing high-speed data transmission for user equipment.

CN121968050APending Publication Date: 2026-05-01TCL COMM TECH (CHENGDU) LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
TCL COMM TECH (CHENGDU) LTD
Filing Date
2026-01-13
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

In existing technologies, 5G networks have failed to fully utilize their capabilities when allocating resources, thus failing to meet users' needs for high-speed data transmission and reception, especially in high-speed application scenarios.

Method used

By transmitting fixed bytes of a predefined Target Protocol Configuration Options (PCO) message between user equipment and network-side equipment, the request and consent for ultra-high-speed services are realized. User equipment actively requests ultra-high-speed services, and network-side equipment configures the CA cell set and allocates resource blocks according to the user equipment's capabilities to meet the user's high-speed data transmission needs.

Benefits of technology

It enables users' devices to request and agree to ultra-high-speed services on the network side, fully leveraging the network's ultra-high-speed capabilities to meet users' high-speed data transmission and reception needs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention discloses a service control method, electronic equipment and a computer readable storage medium, and relates to the technical field of communication. The method comprises the following steps: when user equipment turns on a data switch and an ultra-high-speed data switch, sending ultra-high-speed service application information to network side equipment; receiving ultra-high-speed service agreement information replied by the network side equipment, and obtaining ultra-high-speed service provided by the network side equipment; the superspeed service application information carries a target PCO message; the fixed byte of the target PCO message is used for indicating the processing state of the superspeed service; a fixed byte of a target PCO message carried by the ultra-high-speed service application information indicates the user equipment to actively apply for an ultra-high-speed service from the network; the superspeed service agreement information carries a target PCO message; the fixed byte of the target PCO message carried by the ultra-high-speed service agreement information indicates that the network replies that the user equipment has acquired the ultra-high-speed service. Therefore, the scheme can provide ultra-high-speed service for the user equipment.
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Description

Service control methods, electronic devices and computer-readable storage media Technical Field

[0001] This application relates to the field of communication technology, specifically to a service control method, an electronic device, and a computer-readable storage medium. Background Technology

[0002] With the widespread adoption and rapid development of 5G, the performance of 5G phones and networks continues to upgrade. In some operators' 2025 carrier aggregation (CA) network deployment plans, New Radio (NR) technology has already achieved the capability of supporting 6 component carriers (CC). Users' demand for high speeds is becoming increasingly prominent in various application scenarios when using 5G terminals. However, in related technologies, networks typically allocate only 2 component carriers. This resource allocation method neither fully utilizes the existing network capabilities nor meets the actual needs of users for high-speed data transmission and reception. Summary of the Invention

[0003] This application provides a service control method, an electronic device, and a computer-readable storage medium that can provide ultra-high-speed services for user equipment.

[0004] In a first aspect, embodiments of this application provide a service control method applied to a user equipment, the user equipment including a data switch and an ultra-high-speed data switch; the method includes: when the user equipment turns on the data switch and the ultra-high-speed data switch, sending ultra-high-speed service request information to a network-side device; receiving ultra-high-speed service consent information from the network-side device, and obtaining the ultra-high-speed service provided by the network-side device; wherein, the ultra-high-speed service request information carries a target protocol configuration option (PCO) message; a fixed byte of the target PCO message is used to indicate the processing status of the ultra-high-speed service; the fixed byte of the target PCO message carried by the ultra-high-speed service request information indicates that the user equipment actively requests ultra-high-speed service from the network; the ultra-high-speed service consent information carries a target PCO message; the fixed byte of the target PCO message carried by the ultra-high-speed service consent information indicates that the network has replied to the user equipment that it has obtained the ultra-high-speed service.

[0005] Secondly, embodiments of this application provide a service control method applied to a network-side device. The method includes: when a user equipment (UE) requests ultra-high-speed service based on a target PCO message, sending 5G CA capability query information to the UE; fixed bytes of the target PCO message are used to indicate the processing status of the ultra-high-speed service; the 5G CA capability query information is used to query the maximum 5G CA capability parameters supported by the UE; obtaining the maximum 5G CA capability parameters supported by the UE as fed back by the UE in response to the 5G CA capability query information; sending a CA reconfiguration instruction to the UE according to the maximum 5G CA capability parameters; the CA reconfiguration instruction instructing the UE to complete its own configuration; receiving a reconfiguration completion message sent by the UE after completing the CA configuration; and in response to the reconfiguration completion message, activating the CA cell set configured by the UE and allocating RBs corresponding to the CA cell set to the UE, so that the UE can perform ultra-high-speed data transmission based on the activated CA cell set and the allocated RBs.

[0006] In one embodiment, before sending the 5G CA capability query information to the user equipment, the method further includes: receiving ultra-high-speed service request information sent by the user equipment when the data switch and the ultra-high-speed data switch are turned on; replying to the user equipment with ultra-high-speed service consent information and providing ultra-high-speed service to the user equipment; wherein the ultra-high-speed service request information carries a target PCO message; the fixed bytes of the target PCO message carried by the ultra-high-speed service request information indicate that the user equipment actively requests ultra-high-speed service from the network; the ultra-high-speed service consent information carries a target PCO message; the fixed bytes of the target PCO message carried by the ultra-high-speed service consent information indicate that the network has replied to the user equipment that it has obtained ultra-high-speed service.

[0007] In one embodiment, the method further includes: receiving an ultra-high-speed service request information sent by the user equipment when the data switch and the ultra-high-speed data switch are turned on; replying to the user equipment with a no-permission message and providing the user equipment with normal network services; wherein the no-permission message carries a target PCO message; the fixed bytes of the target PCO message carried by the no-permission message indicate that the network replies to the user equipment that it has no permission to obtain ultra-high-speed services.

[0008] In one embodiment, before sending the 5G CA capability query information to the user equipment, the method further includes: when a target data transmission requirement is detected in the user equipment, sending ultra-high-speed service consultation information to the user equipment; receiving ultra-high-speed service reception information sent by the user equipment based on the ultra-high-speed service consultation information, and providing ultra-high-speed service to the user equipment after the user equipment automatically turns on the ultra-high-speed data switch; wherein, the ultra-high-speed service consultation information carries a target PCO message; the fixed bytes of the target PCO message carried by the ultra-high-speed service consultation information indicate to the network whether to consult the user equipment to request ultra-high-speed service; the ultra-high-speed service reception information carries a target PCO message; the fixed bytes of the target PCO message carried by the ultra-high-speed service reception information indicate to the user equipment to reply to the network to request ultra-high-speed service.

[0009] In one embodiment, after sending the ultra-high-speed service consultation information to the user equipment, the method further includes: receiving an ultra-high-speed service rejection information sent by the user equipment based on the ultra-high-speed service consultation information, and providing ordinary network services to the user equipment; wherein the ultra-high-speed service rejection information carries a target PCO message; the fixed bytes of the target PCO message carried by the ultra-high-speed service rejection information indicate that the user equipment replies that the network does not request ultra-high-speed services.

[0010] In one embodiment, the method further includes: during the process of providing ultra-high-speed service to the user equipment, receiving ordinary network service request information sent by the user equipment, sending information indicating that ultra-high-speed service has been stopped to the user equipment, and providing ordinary network service to the user equipment; wherein, the ordinary network service request information carries a target PCO message; the fixed bytes of the target PCO message carried by the ordinary network service request information indicate that the user equipment actively requests ordinary network service from the network; the information indicating that ultra-high-speed service has been stopped carries a target PCO message; the fixed bytes of the target PCO message carried by the information indicating that ultra-high-speed service has been stopped indicate that the network has stopped providing ultra-high-speed service.

[0011] In one embodiment, the method further includes: when not providing ultra-high-speed service to the user equipment, receiving ordinary network service request information sent by the user equipment, and providing ordinary network service to the user equipment; wherein the ordinary network service request information carries a target PCO message; the fixed bytes of the target PCO message carried by the ordinary network service request information indicate that the user equipment actively requests ordinary network service from the network.

[0012] Thirdly, embodiments of this application provide a service control device applied to a user equipment (UE), the UE including a data switch and an ultra-high-speed data switch; the device includes: an ultra-high-speed request module, used to send ultra-high-speed service request information to a network-side device when the UE turns on the data switch and the ultra-high-speed data switch; and an ultra-high-speed acquisition module, used to receive ultra-high-speed service consent information from the network-side device and acquire the ultra-high-speed service provided by the network-side device; wherein, the ultra-high-speed service request information carries a target protocol configuration option (PCO) message; a fixed byte of the target PCO message is used to indicate the processing status of the ultra-high-speed service; the fixed byte of the target PCO message carried by the ultra-high-speed service request information indicates that the UE actively requests ultra-high-speed service from the network; the ultra-high-speed service consent information carries a target PCO message; and the fixed byte of the target PCO message carried by the ultra-high-speed service consent information indicates that the network has replied to the UE that it has acquired the ultra-high-speed service.

[0013] Fourthly, embodiments of this application provide a service control device applied to a network-side device. The device includes: a query sending module, configured to send 5G CA capability query information to a user equipment (UE) when the UE requests ultra-high-speed service based on a target PCO message; fixed bytes of the target PCO message are used to indicate the processing status of the ultra-high-speed service; the 5G CA capability query information is used to query the maximum 5G CA capability parameters supported by the UE; a response acquisition module, configured to acquire the maximum 5G CA capability parameters supported by the UE as feedback from the UE in response to the 5G CA capability query information; an instruction sending module, configured to send a CA reconfiguration instruction to the UE according to the maximum 5G CA capability parameters; the CA reconfiguration instruction is used to instruct the UE to complete its own configuration; a message receiving module, configured to receive a reconfiguration completion message sent by the UE after completing the CA configuration; and an activation module, configured to activate the CA cell set configured by the UE in response to the reconfiguration completion message and allocate RBs corresponding to the CA cell set to the UE, so that the UE can perform ultra-high-speed data transmission based on the activated CA cell set and the allocated RBs.

[0014] Fifthly, embodiments of this application also provide an electronic device, which includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the computer program is executed by the processor, it implements the steps in the above-described service control method.

[0015] Sixthly, embodiments of this application also provide a computer-readable storage medium storing a computer program, which, when executed by a processor, implements the steps in the above-described service control method.

[0016] In a seventh aspect, embodiments of this application also provide a computer program product or computer program, which includes computer instructions stored in a computer-readable storage medium. A processor of a computer device reads the computer instructions from the computer-readable storage medium and executes the computer instructions, causing the computer device to perform the methods provided in the various optional implementations described in embodiments of this application.

[0017] The embodiments of this application have the following beneficial effects: User equipment (UE) includes a data switch and an ultra-high-speed data switch. When the UE turns on the data switch and the ultra-high-speed data switch, it can automatically send ultra-high-speed service request information to the network-side equipment. This ultra-high-speed service request information carries the target protocol configuration option. The fixed bytes of the Options (PCO) message indicate that the user equipment (UE) actively requests ultra-high-speed service from the network. Upon receiving this request, the network-side device can parse the target PCO message to obtain the fixed bytes, thus understanding that the UE has requested ultra-high-speed service. When the network-side device provides ultra-high-speed service to the UE, it can reply with an ultra-high-speed service consent message. The fixed bytes of the target PCO message in this consent message indicate that the network has acknowledged obtaining the ultra-high-speed service. Upon receiving this consent message, the UE can parse the target PCO message to obtain the fixed bytes, thus understanding that the network has provided the ultra-high-speed service and can therefore use it. In this way, by pre-defining different meanings represented by the fixed bytes of the target PCO message, the UE and network-side device can implement control operations such as requesting and consenting to ultra-high-speed service by transmitting different target PCO messages, thereby fully utilizing the network's ultra-high-speed capabilities and meeting the user's actual needs for high-speed data transmission and reception. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0019] Figure 1 is a schematic diagram of the steps of a service control method provided in an embodiment of this application; Figure 2 is a schematic diagram of the process of a user equipment actively applying for ultra-high-speed service provided in an embodiment of this application; Figure 3 is a schematic diagram of the process of a user equipment dynamically applying for ultra-high-speed service provided in an embodiment of this application; Figure 4 is a schematic diagram of the steps of a service control method provided in an embodiment of this application; Figure 5 is a schematic diagram of the structure of a service control device provided in an embodiment of this application; Figure 6 is a schematic diagram of the structure of a service control device provided in an embodiment of this application; Figure 7 is a schematic diagram of the structure of an electronic device provided in an embodiment of this application. Detailed Implementation

[0020] In the description of this application, unless otherwise stated, " / " indicates that the objects before and after are in an "or" relationship. For example, A / B can represent A or B. "And / or" in this application merely describes the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A alone, A and B simultaneously, and B alone. A and B can be singular or plural. Furthermore, to facilitate a clear description of the technical solutions of the embodiments of this application, the terms "first" and "second" are used in the embodiments of this application to distinguish identical or similar items with substantially the same function and effect. Those skilled in the art will understand that the terms "first" and "second" do not limit the quantity or execution order, and the terms "first" and "second" are not necessarily different. In the embodiments of this application, the words "exemplary" or "for example" are used to indicate examples, illustrations, or explanations. Any embodiment or design scheme described as "exemplary" or "for example" in the embodiments of this application should not be construed as being more preferred or advantageous than other embodiments or design schemes. Specifically, the use of terms such as "exemplary" or "for example" is intended to present the relevant concepts in a concrete manner for ease of understanding. It is understood that the term "embodiment" throughout the specification means that a specific feature, structure, or characteristic related to an embodiment is included in at least one embodiment of this application. Therefore, various embodiments throughout the specification do not necessarily refer to the same embodiment. Furthermore, these specific features, structures, or characteristics can be combined in any suitable manner in one or more embodiments. It is understood that in the various embodiments of this application, the sequence number of each process does not imply the order of execution; the execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this application. It is understood that in this application, "...when" and "if" both refer to the occurrence of corresponding processing under certain objective circumstances, not a time limit, nor do they require a judgment action during implementation, nor do they imply any other limitations. It is understood that some optional features in the embodiments of this application can be implemented independently in certain scenarios without relying on other features, such as the current solution upon which they are based, to solve corresponding technical problems and achieve corresponding effects, or can be combined with other features according to needs in certain scenarios. Correspondingly, the apparatus given in the embodiments of this application can also implement these features or functions, which will not be elaborated here. In this application, unless otherwise specified, the same or similar parts between the various embodiments can be referred to each other. In the various embodiments of this application, unless otherwise specified or logically conflicting, the terminology and / or descriptions between different embodiments are consistent and can be referenced mutually. Technical features in different embodiments can be combined to form new embodiments according to their inherent logical relationships. The following descriptions of the embodiments of this application do not constitute a limitation on the scope of protection of this application.The technical solutions of the embodiments of this application will now be described with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.

[0021] For ease of understanding, the relevant terminology in the embodiments of this application will be briefly introduced.

[0022] Ultra-high-speed service: A data service that maximizes data rate based on technologies such as 5G CA, maximizing the utilization of network deployment resources. By adapting the capabilities of the network side and the UE (such as the maximum number of CA aggregations supported by the UE and the available CA cell resources on the network side), multiple component carriers are aggregated and sufficient radio resource blocks (RBs) are allocated to maximize the peak rate and transmission bandwidth, meeting the actual needs of users for high-speed data transmission and reception (such as the needs of high-bandwidth, high-concurrency scenarios such as ultra-high-definition video, cloud gaming, and high-speed download of large files). The service quality and resource usage priority of the ultra-high-speed service are higher than those of ordinary network services.

[0023] Standard network service: A basic data transmission / network service designed to ensure everyday network communication needs. Deployed based on single-component carrier or low-order CA aggregation technology, network resource allocation follows a general scheduling strategy, prioritizing access stability and coverage. The speed, bandwidth, and other performance indicators of standard network service are adapted to typical scenarios such as web browsing, social chat, and regular video playback. Its resource consumption priority is lower than that of ultra-high-speed services, making it a standardized service that meets users' basic network usage needs.

[0024] Network-side equipment: All hardware devices and network elements that support the operation of the 5G network and provide communication services. Network-side equipment may include, but is not limited to: radio access network equipment, core network equipment, and auxiliary support equipment. Radio access network equipment (such as 5G base stations) can initiate 5G CA capability queries, send CA reconfiguration commands to user equipment, activate CA cells (binding multiple CCs), and / or directly allocate RBs, and is the core of CA configuration execution. Core network equipment can be used to: manage the access status of UEs (such as whether to allow network access), formulate CA configuration policies (such as deciding whether to allocate multiple CCs based on UE capabilities and network load), and be responsible for forwarding data after CA aggregation (ensuring that data from multiple CCs does not conflict). Auxiliary support equipment may include: transmission network equipment (such as optical fibers, routers, and switches, responsible for data transmission between base stations and the core network), network management equipment (backend systems used by operators to monitor the status of base stations and the core network), and / or clock synchronization equipment (ensuring time synchronization of multiple CA cells and avoiding data transmission errors), etc.

[0025] User equipment (UE) is a terminal device used to access a communication network. UE may include mobile phones, tablets, IoT terminals, and / or laptops. UE can interact with network-side devices to provide communication services such as sending and receiving data and voice. UE is the core user-facing terminal in the communication network and a direct user of network services. UE and network-side devices can interact via an air interface (User Equipment to gNodeB interface, Uu interface).

[0026] PCO (Configuration Component Objective) is a parameter negotiation carrier defined by the 3GPP protocol between the UE and the network. It is typically embedded in the core interactive messages during data connection establishment in an optional TLV format, serving as a supplementary channel for configuration negotiation during the network connection phase. Its core function is to transmit customized information such as basic network configuration and operator-customized function switches, including 5G CA aggregation activation commands and ultra-high-speed service permission identifiers. PCO supports both 3GPP standardized parameters and operator-defined parameters, balancing compatibility and customization flexibility. As a crucial bridge for the UE and network to reach configuration consensus, PCO ensures that the UE adapts to network resources and enables corresponding functions, providing support for the deployment of differentiated network services.

[0027] CA (Carrier Aggregator) is a key 5G technology that aggregates multiple independent carriers into a virtual large carrier. Its core purpose is to improve network peak speed and capacity to meet the demands of ultra-high-speed data transmission. It requires collaborative support from both the UE (User Equipment) and the network side, and the number of aggregated carriers directly determines the upper limit of the speed.

[0028] CC: The basic unit constituting CA technology, it is an independent carrier conforming to 5G standards. Each CC has its own dedicated frequency band, bandwidth, and resource blocks, and can independently carry services. Multiple CCs are aggregated through CA to achieve performance synergy, making it the core resource carrier for ultra-high-speed services.

[0029] Non-Standalone (NSA): A transitional 5G networking mode that relies on the 4G core network and control signaling. NSA deploys 5G (NR) base stations and 4G (LTE) base stations in a coordinated manner, with 5G only responsible for high-speed data transmission. It has low deployment costs and a short deployment cycle, but cannot support core 5G capabilities such as low latency.

[0030] Standalone (SA): A complete 5G network mode with its own dedicated 5G base stations and core network (5GC). It does not rely on 4G networks and can fully support high speed, low latency, and wide connectivity.

[0031] A cell is a specific geographical area covered by a base station or a sector of a base station, and is the basic unit in a mobile communication network. Cells are used to provide wireless signal coverage and communication services to users. Each cell has a unique identifier. Base stations within a cell transmit data and interact with mobile devices via wireless signals, providing users with voice, data, and other communication services. The coverage areas of different cells may overlap to enable seamless handover.

[0032] In one embodiment, as shown in FIG1, a service control method is provided. Although the logical order is shown in the step diagram, in some cases, the steps shown or described may be performed in a different order than that shown in the figures. Specifically, this service control method can be applied to user equipment.

[0033] A submenu, "Ultra-High-Speed ​​Data Switch," has been pre-added to the user equipment's Data switch. Therefore, the user equipment includes both a Data switch and an Ultra-High-Speed ​​Data switch. The Data switch is the master control function for the user equipment's access to the cellular mobile data network, used to enable or disable basic data transmission services. It is the core entry point for managing the user equipment's network connection, determining whether the device sends and receives data via the cellular network. The Ultra-High-Speed ​​Data Switch is a submenu under the Data switch, used to enable or disable maximum-rate data services (ultra-high-speed services) based on technologies such as 5G CA. The Ultra-High-Speed ​​Data Switch can activate capabilities such as multi-carrier aggregation and dedicated resource allocation, thereby providing users with a high-speed data transmission experience far exceeding that of ordinary network services. These will be described in detail below. It should be noted that the order of description in the following embodiments is not intended to limit the priority of the embodiments.

[0034] In 3GPP protocol 24.008, the PCO ID in the range of PCO FF00-FFFF is reserved for operators for specific purposes. The PCO ID is the tag of the PCO message. It is a numerical identifier used in the 3GPP protocol to uniquely identify a certain type of PCO configuration parameter. Its core function is to allow the UE and network-side equipment to quickly identify which type of configuration the currently transmitted PCO message belongs to during signaling interaction.

[0035] The core structure of a PCO is "tag + length + value". PCOs are typically in TLV format, where the standard Tag field is 8 bits by default (0x00-0xFF) and used to define the PCO. 3GPP TS 24.008 clearly defines the scope of use for Tags (i.e., PCOIDs). 0x0000-0xEFFF: standardized by 3GPP, used to define globally universal PCO parameters (all operators and UEs must follow the unified meaning); 0xFF00-0xFFFF: belongs to the "operator-specific range," whose specific meaning is not defined by 3GPP, and is defined by each operator for their own use (e.g., custom private network configurations, specific service parameters, region-specific configurations, etc.). As long as the UE and the operator's network side (network-side equipment) agree in advance on the meaning of the parameters corresponding to the bytes in the operator-specific range, they can transmit exclusive configurations through PCO signaling. When the terminal and network side transmit PCOs during attach, PDU session establishment, etc., they can quickly identify the parameter type through the PCO ID (Tag).

[0036] Any PCO ID in the range FF00-FFFF can be used as the target PCO message indicating the processing status of the ultra-high-speed service. The fourth octet of the target PCO message is defined as a fixed byte used to indicate the processing status of the ultra-high-speed service. In one embodiment of this application, PCO ID=FF08 is selected as the target PCO message. The first three octets of the target PCO message can be used as MCC / MNC (Mobile Country Code / Mobile Network Code, Operator Identifier), and the fourth octet is defined as the Specific value (Operator-Specific Service Value). The processing status information of the ultra-high-speed service can be transmitted through the Specific Value.

[0037] When a UE attach / PDU session is established, the network-side device can send a target PCO message to the UE. After receiving the target PCO message, the UE first parses Tag=0xFF08 (to identify if it is a carrier-defined parameter), and then parses the Value field. Among these, the MCC / MNC is extracted, and after confirming that it belongs to its own carrier, the UE reads the unique value of fixed bytes and performs the operation represented by the fixed bytes (such as using the ultra-high-speed service). If the MCC / MNC does not match, the UE directly ignores the PCO message, which does not affect other functions.

[0038] Table 1

[0039] In one embodiment of this application, the bytes of the target PCO message are defined as shown in Table 1. Based on the Specific value defined in Table 1, if the Specific value of the target PCO message included in the message sent by the UE to the network-side device is 1, it indicates that the UE actively requests ultra-high-speed service from the network; if the Specific value of the target PCO message included in the message sent by the UE to the network-side device is 4, it indicates that the UE actively requests ordinary network service from the network. It is understood that Table 1 only shows one way of defining the Specific value, and other ways of defining it are also possible. For example, Specific value = 1 can be defined to indicate that the UE actively requests ordinary network service from the network. For ease of understanding, the following description refers to the definition method in Table 1.

[0040] According to the service control method shown in Figure 1, the method includes at least steps S110 to S120, which are described in detail below: In step S110, when the user equipment turns on the data switch and the ultra-high-speed data switch, it sends an ultra-high-speed service request information to the network-side device.

[0041] In step S120, the ultra-high-speed service consent information replied by the network-side device is received, and the ultra-high-speed service provided by the network-side device is obtained.

[0042] The ultra-high-speed service request information carries a target protocol configuration option (PCO) message; the fixed bytes of the target PCO message are used to indicate the processing status of the ultra-high-speed service; the fixed bytes of the target PCO message carried in the ultra-high-speed service request information indicate that the user equipment actively requests the ultra-high-speed service from the network; the ultra-high-speed service consent information carries a target PCO message; the fixed bytes of the target PCO message carried in the ultra-high-speed service consent information indicate that the network has replied to the user equipment that it has obtained the ultra-high-speed service.

[0043] Steps S110 to S120 are steps for the user equipment (UE) to actively request ultra-high-speed service. The UE can trigger this by activating the data switch and the ultra-high-speed data switch, thereby triggering the UE to actively send ultra-high-speed service request information to the network-side equipment. The ultra-high-speed service request information is used to request the network-side equipment to provide ultra-high-speed service. The specific value of the target PCO message carried in the ultra-high-speed service request information is 1, indicating that the UE actively requests ultra-high-speed service from the network.

[0044] Figure 2 is a schematic diagram of the process of a user equipment actively applying for ultra-high-speed service according to an embodiment of this application. As shown in Figure 2, after receiving the ultra-high-speed service application information, the network-side device can parse it to obtain a Specific value of 1, thereby determining that the user equipment has applied to use the ultra-high-speed service. The network side can query whether the user equipment has the permission and capability to use the ultra-high-speed service application information. When it is determined that the user equipment can use the ultra-high-speed service, it performs reconfiguration, and after the reconfiguration is completed, it activates the CA cell set configured for the user equipment and allocates the resource block (RB) corresponding to the CA cell set to the user equipment to provide ultra-high-speed service to the user equipment. The network-side device can reply to the user equipment with ultra-high-speed service consent information, which is used to inform the user equipment that ultra-high-speed service has been provided to the user equipment. The Specific value of the target PCO message carried in the ultra-high-speed service consent information is 2, indicating that the network has replied to the UE that it has obtained the ultra-high-speed service.

[0045] The user equipment can display the number of downlink (DL) aggregated carriers and the number of uplink (UL) aggregated carriers for CA (Cyclic Access Control). The number of downlink aggregated carriers indicates how many independent carriers the user uses to receive data, while the number of uplink aggregated carriers indicates how many independent carriers the user uses to transmit data. These numbers directly reflect the network speed and bandwidth capacity. A higher number of downlink aggregated carriers results in a higher peak download speed; a higher number of uplink aggregated carriers results in a higher peak upload speed. If the display shows "Downlink aggregated carrier count = 1, Uplink aggregated carrier count = 1," it means that CA is not currently enabled and only single-carrier transmission is used, limiting the transmission rate to the bandwidth of that single carrier.

[0046] The user equipment (UE) using the technical solution of this application includes a data switch and an ultra-high-speed data switch. When the UE turns on the data switch and the ultra-high-speed data switch, it can automatically send an ultra-high-speed service request to the network-side device. The fixed bytes of the target PCO message carried in the ultra-high-speed service request information indicate that the UE actively requests ultra-high-speed service from the network. After receiving the ultra-high-speed service request information, the network-side device can parse the target PCO message carried in the ultra-high-speed service request information to obtain the fixed bytes, thereby knowing that the UE has requested ultra-high-speed service. When the network-side device provides ultra-high-speed service to the UE, the network-side device can reply with ultra-high-speed service consent information to the UE. The fixed bytes of the target PCO message carried in the service consent information indicate that the network has replied to the user equipment that it has obtained the ultra-high-speed service. After receiving the ultra-high-speed service consent information, the user equipment can parse the target PCO message carried in the ultra-high-speed service consent information to obtain the fixed bytes, thereby knowing that the network-side device has provided the ultra-high-speed service, and therefore the user equipment can use the ultra-high-speed service. In this way, by pre-defining the different meanings represented by the fixed bytes of the target PCO message, the user equipment and the network-side device can realize the control operations such as requesting and agreeing to the ultra-high-speed service by transmitting different target PCO messages, thereby giving full play to the ultra-high-speed capability of the network and meeting the actual needs of users for high-speed data transmission and reception.

[0047] In one embodiment, in an NSA network environment, when a user equipment (UE) powers on, attaches, and initiates a data service (such as downloading or browsing the internet), it sends a Packet Data Network (PDN) connection request to the network-side device to establish a logical connection from the UE to the target PDN (i.e., a PDN connection, corresponding to the 4G PDP context and the 5G PDU session), thereby obtaining configurations such as IP address and DNS (including target PCO message passing) and enabling communication with the external data network.

[0048] Therefore, when a user equipment (UE) sends a PDN connection request to a network-side device, it can incorporate the corresponding target PCO message into the communication to achieve the transmission of ultra-high-speed service request information; when the network-side device responds to the PDN connection request, it can incorporate the corresponding target PCO message into the communication to achieve the transmission of ultra-high-speed service consent information. Specifically, in an NSA network environment, the UE and the network-side device can send the following information to achieve the interaction of ultra-high-speed service request information and ultra-high-speed service consent information: PDN connectivity request (Direction: UE to network); → 27 Protocol configuration options Protocol configuration options 9.9.4.11 O TLV 3-253; Activate default EPS bearer context request (Direction: network to UE); → 27 Protocol configuration options Protocol configuration options 9.9.4.11 O TLV 3-253; Activate default EPS bearer context accept (Direction: UE to network); → 27 Protocol configuration options Protocol configuration options 9.9.4.11 O TLV 3-253.

[0049] The above information refers to the PDN connection request (direction: UE to network), the request to activate the default EPS bearer context (direction: network to UE), and the acceptance of the request to activate the default EPS bearer context (direction: UE to network).

[0050] In one embodiment, in an SA network environment, the user equipment and the network-side equipment can send the following information to achieve the interaction of ultra-high-speed service request information and ultra-high-speed service consent information: PDU session establishment request (Direction: UE to network); → 7B Extended protocol configuration options Extended protocol configuration options 9.11.4.6 O TLV-E 4-65538; PDU session establishment accept (Direction: network to UE); → 7B Extended protocol configuration options Extended protocol configuration options 9.11.4.6 O TLV-E 4-65538.

[0051] The above information represents a PDU session establishment request (direction: UE to network) and a PDU session establishment acceptance (direction: network to UE).

[0052] Based on the above technical solution, as an embodiment, after sending the ultra-high-speed service request information to the network-side device, the method may further include: receiving the no-authority information replied by the network-side device, and obtaining the ordinary network service provided by the network-side device; wherein, the no-authority information carries a target PCO message; the fixed bytes of the target PCO message carried by the no-authority information indicate that the network replied to the user equipment that it has no authority to obtain the ultra-high-speed service.

[0053] The user equipment (UE) proactively sends an ultra-high-speed service request to the network-side equipment. The specific value of the target PCO message carried in the ultra-high-speed service request message is 1, indicating that the UE is proactively requesting ultra-high-speed service from the network.

[0054] After receiving a request for ultra-high-speed service, the network-side device can determine that the user equipment has requested to use the service. The network can then query whether the user equipment has the necessary permissions and capabilities to use the ultra-high-speed service. If it determines that the user equipment does not have the permission to use the ultra-high-speed network service, it can reply with a "no permission" message. This "no permission" message informs the user equipment that it lacks the necessary authorization to use the ultra-high-speed network service. The "no permission" message carries a specific value of 3 in the target PCO message, indicating that the network is replying to the user equipment that it does not have permission to obtain the ultra-high-speed service.

[0055] Therefore, after receiving an unauthorized message, the user equipment can parse the information that Specific value=3, and thus use ordinary network services.

[0056] By adopting the technical solution of this application embodiment, by pre-defining the fixed bytes of the target PCO with the information that the network replies to the user equipment that it has no permission to obtain the ultra-high-speed service, the user equipment can determine that it does not have the permission to use the ultra-high-speed network service when it receives the information Specificvalue=3 sent by the network side, and thus use the ordinary network service.

[0057] Based on the above technical solutions, as an embodiment, Figure 3 is a schematic diagram of a user equipment dynamically applying for ultra-high-speed services according to an embodiment of this application. As shown in Figure 3, the user equipment can dynamically apply for ultra-high-speed services, and dynamic application indicates that an application is made when needed. The user equipment can receive ultra-high-speed service consultation information sent by the network-side device; the ultra-high-speed service resource information is sent by the network side when it detects that the user equipment has a target data transmission requirement. After receiving the ultra-high-speed service consultation information sent by the network-side device, the user equipment can choose to enable or disable the ultra-high-speed service. When the user equipment chooses to enable the ultra-high-speed service, it can send ultra-high-speed service reception information to the network-side device according to the ultra-high-speed service consultation information; automatically turn on the ultra-high-speed data switch, and obtain the ultra-high-speed service provided by the network-side device. When the user equipment chooses not to enable the ultra-high-speed service, it can send ultra-high-speed service rejection information to the network-side device according to the ultra-high-speed service consultation information, and obtain the normal network service provided by the network-side device.

[0058] The ultra-high-speed service inquiry information carries a target PCO message; the fixed bytes of the target PCO message carried in the ultra-high-speed service inquiry information indicate to the network whether the user equipment requests ultra-high-speed service; the ultra-high-speed service reception information carries a target PCO message; the fixed bytes of the target PCO message carried in the ultra-high-speed service reception information indicate to the user equipment reply to the network requesting ultra-high-speed service; the ultra-high-speed service rejection information carries a target PCO message; the fixed bytes of the target PCO message carried in the ultra-high-speed service rejection information indicate to the user equipment reply to the network that it does not request ultra-high-speed service.

[0059] Target data transmission demand refers to a transmission demand where the amount of data to be transmitted exceeds a data volume threshold. For example, when a network-side device detects that a user equipment (UE) has a need to transmit large amounts of data, it can proactively send an ultra-high-speed service inquiry message to the UE. This ultra-high-speed service inquiry message is used to inquire whether the UE requests ultra-high-speed service. The specific value of the target PCO message carried in the ultra-high-speed service inquiry message is 6, indicating that the network is inquiring whether the UE requests ultra-high-speed service.

[0060] After receiving the ultra-high-speed service request information from the network-side device, the user equipment (UE) can choose to enable or disable the ultra-high-speed service. When the UE chooses to enable the ultra-high-speed service, it can send an ultra-high-speed service reception message to the network-side device and automatically turn on the ultra-high-speed data switch, thus using the ultra-high-speed service. The specific value of the target PCO message carried in the ultra-high-speed service reception message is 7, indicating that the UE is responding to the network request for ultra-high-speed service. After receiving the ultra-high-speed service reception message, the network-side device can query whether the UE has the authorization and capability to use the ultra-high-speed service request information. If it determines that the UE can use the ultra-high-speed service, it performs reconfiguration, activates the CA cell set configured for the UE after reconfiguration, and allocates the resource blocks corresponding to the CA cell set to the UE to provide ultra-high-speed service.

[0061] When a user equipment (UE) chooses not to enable ultra-high-speed service, it can send an ultra-high-speed service rejection message to the network-side device and continue using normal network services. The ultra-high-speed service rejection message carries a specific value of 8 for the target PCO message, indicating that the UE is replying to the network that it does not request ultra-high-speed service. After receiving the ultra-high-speed service rejection message, the network-side device can maintain the default configuration and continue to provide normal network services to the UE.

[0062] Optionally, the network-side device can start a timeout timer after sending the ultra-high-speed service inquiry message. If the network-side device does not receive a reply from the user equipment regarding ultra-high-speed service acceptance or rejection after a preset time (such as the duration of multiple timeout timers) after sending the ultra-high-speed service inquiry message, it can maintain the status quo.

[0063] In one embodiment, under an NSA network environment, the network-side device can send a Specific value = 6 (the network inquires whether the UE requests ultra-high-speed service) to the user equipment via a message (Modify EPSbearer context request Direction: network to UE), and initiate Timer T3486. If no response is received from the UE after 5 T3486 attempts, the status quo is maintained. Specifically, the user equipment and the network-side device can exchange ultra-high-speed service inquiry information and ultra-high-speed service acceptance / rejection information by sending the following messages: Modify EPS bearer context request (Direction: network to UE); → 27 Protocol configuration options Protocol configuration options 9.9.4.11 O TLV 3-253; Modify EPS bearer context accept (Direction: UE to network); → 27 Protocol configuration options Protocol configuration options 9.9.4.11 O TLV 3-253.

[0064] In one embodiment, in an SA network environment, the network-side device can send a Specific value = 6 (network inquiry to UE regarding whether to request ultra-high-speed service) to the user equipment via a message (PDU session modification command) and initiate Timer T3591. If no response is received from the UE after 5 T3591 calls, the status quo is maintained. Specifically, the user equipment and the network-side device can exchange ultra-high-speed service inquiry information and ultra-high-speed service acceptance / rejection information by sending the following messages: PDU session modification command (Direction: network to UE); → 7B Extended protocol configuration options Extended protocol configuration options 9.11.4.6 O TLV-E 4-65538; PDU session modification complete (Direction: UE to network); → 7B Extended protocol configuration options Extended protocol configuration options 9.11.4.6 O TLV-E 4-65538.

[0065] Using the technical solution of this application embodiment, the network-side device can actively detect whether the user device has a demand for ultra-high-speed service, and then send ultra-high-speed service consultation information so that the user device can activate ultra-high-speed service as needed. This allows the network speed to be dynamically adjusted according to the actual scenario, ensuring smoothness for users when watching 4K ultra-high-definition videos and downloading large game installation packages, while using basic bandwidth for daily web browsing and WeChat chatting, saving resources and reducing device power consumption.

[0066] Based on the above technical solution, as an embodiment, if a user equipment needs to disable the ultra-high-speed service after using it, the ultra-high-speed service can be disabled by turning off the ultra-high-speed data switch. Specifically, when the user equipment disables the ultra-high-speed data switch while using the ultra-high-speed service, it sends a normal network service request to the network-side device and obtains the normal network service provided by the network-side device; wherein, the normal network service request carries a target PCO message; the fixed bytes of the target PCO message carried in the normal network service request indicate that the user equipment actively requests the normal network service from the network.

[0067] In an NSA network environment, the user equipment (UE) disables both the data switch and the ultra-high-speed data switch, then re-enables the data switch alone, thereby disabling ultra-high-speed services. At this time, the UE sends a normal network service request (NBS) to the network-side device to obtain NBS services. The NBS request carries a target PCO message with a Specific value of 4, instructing the UE to actively request NBS services from the network. Upon receiving the NBS request, the network-side device begins releasing the maximum CA and performs default reconfiguration, thus providing NBS services to the UE.

[0068] In an NSA network environment, user equipment and network-side equipment can send the following messages to achieve information exchange to disable ultra-high-speed services: PDN connectivity request (Direction: UE to network); →27 Protocol configuration options Protocol configuration options9.9.4.11 O TLV 3-253; Activate default EPS bearer context request (Direction: network to UE); →27 Protocol configuration options Protocol configuration options9.9.4.11 O TLV 3-253; Activate default EPS bearer context accept (Direction: UE to network); →27 Protocol configuration options Protocol configuration options9.9.4.11 O TLV 3-253.

[0069] In an SA network environment, the user equipment (UE) only needs to disable the ultra-high-speed data switch while keeping the data switch on to disable the ultra-high-speed service. At this time, the UE will send a normal network service request message to the network-side device to obtain normal network services provided by the network-side device. The normal network service request message carries a target PCO message with a Specific value of 4, instructing the UE to actively request normal network services from the network. Upon receiving the normal network service request message, the network-side device begins releasing the maximum CA and performs default reconfiguration, thereby providing normal network services to the UE.

[0070] In an SA network environment, user equipment and network-side equipment can exchange information to disable ultra-high-speed services by sending the following messages: PDU session modification request (Direction: UE to network); →7B Extended protocol configuration options Extended protocol configuration options 9.11.4.6 O TLV-E 4-65538; PDU session modification command (Direction: network to UE); →7B Extended protocol configuration options Extended protocol configuration options 9.11.4.6 O TLV-E 4-65538; PDU session modification complete (Direction: UE to network); →7B Extended protocol configuration options Extended protocol configuration options 9.11.4.6 O TLV-E 4-65538.

[0071] The technical solution adopted in this application embodiment can provide user equipment with the function of disabling ultra-high-speed service, thereby giving the user control over the rate, avoiding waste while ensuring flexible adjustment, preventing resource idleness, and improving daily network stability. In weak signal scenarios, ultra-high-speed service may cause signal fluctuations and increased latency due to frequent carrier switching. Disabling ultra-high-speed service allows the user equipment to focus on basic carrier transmission, resulting in a more stable signal and a more reliable connection.

[0072] Based on the above technical solution, as an embodiment, referring to Figures 2 and 3, a method for a user equipment to obtain ultra-high-speed services provided by a network-side device may include: obtaining 5G carrier aggregation (CA) capability query information sent by the network-side device; responding to the 5G CA capability query information, feeding back the maximum 5G CA capability parameters supported by the user equipment to the network-side device; obtaining a CA reconfiguration instruction sent by the network-side device according to the maximum 5G CA capability parameters; the CA reconfiguration instruction instructing the user equipment to complete its own configuration; completing the CA configuration according to the CA reconfiguration instruction and sending a reconfiguration completion message to the network-side device; the reconfiguration completion message instructing the network-side device to activate the CA cell set configured by the user equipment and allocate resource blocks (RBs) corresponding to the CA cell set to the user equipment; and performing ultra-high-speed data transmission based on the activated CA cell set and the allocated RBs.

[0073] When network-side equipment needs to provide ultra-high-speed services to user equipment, it can send 5G carrier aggregation (CA) capability query information to the user equipment. This 5G CA capability query information is used to query the maximum 5G CA capability parameters supported by the user equipment, thereby accurately obtaining the maximum CA capability parameters supported by the user equipment at the hardware level. The maximum 5G CA capability parameters may include, but are not limited to: the maximum number of downlink / uplink aggregated carriers, supported frequency band combinations, upper limit of modulation and coding schemes, and / or peak rate carrying capacity. The maximum 5G CA capability parameters directly determine the upper limit of CA schemes that the network-side equipment can subsequently configure.

[0074] After receiving the 5G CA capability query information, the user equipment (UE) checks its own capabilities and can retrieve preset hardware specifications and software configuration information to compile a complete set of maximum 5G CA capability parameters. The UE can then feed this set of capability parameters back to the network-side equipment, thereby providing feedback on the maximum 5G CA capability parameters supported by the UE. This ensures that the network-side equipment can fully grasp the UE's CA carrying potential, providing accurate basis for subsequent configuration and avoiding configuration failures or resource waste due to capability mismatches.

[0075] Once the network-side equipment obtains and parses the maximum CA capability parameters of the user equipment, it can formulate the optimal CA configuration scheme based on the carrier resources within the current base station coverage area, the user's service demand level, and the network congestion status, and generate a corresponding CA reconfiguration command to be sent to the user equipment. This reconfiguration command may include details such as specific aggregated carrier combinations, cell identifiers, frequency band configurations, uplink and downlink parameters, clearly indicating the self-configuration adjustment requirements that the user equipment needs to complete.

[0076] After receiving the CA reconfiguration command, the user equipment can initiate an internal configuration adjustment process according to the parameters required in the command. This process includes frequency band switching, carrier synchronization, and link parameter calibration to ensure that its hardware modules are fully compatible with the network-side configuration scheme. Upon completion of the reconfiguration, the user equipment will send a reconfiguration completion message to the network-side device. This message may also include configured link status detection data for the network-side device to verify the validity of the configuration.

[0077] After receiving the reconfiguration completion message, the network-side equipment can perform a final verification of the user equipment's configuration status. Once confirmed to be correct, it activates the CA cell set configured for the user equipment and allocates corresponding resource blocks according to service requirements. The resource blocks will be distributed across multiple aggregated carriers to maximize spectrum utilization.

[0078] User equipment (UE) initiates a multi-carrier collaborative transmission mechanism based on the activated CA cell set and allocated resources. By simultaneously transmitting and receiving uplink and downlink data on multiple carriers, it fully leverages the bandwidth aggregation advantages of CA technology to achieve ultra-high-speed data transmission and meet the high-speed service requirements of 4K / 8K video, cloud gaming, industrial internet, and other applications.

[0079] The technical solution adopted in this application realizes precise capability interaction and dynamic adaptation configuration between the device and the network through 5G CA configuration technology, thereby maximizing the release of the potential of the device and the network, achieving ultra-high-speed transmission; improving spectrum resource utilization and alleviating network congestion; ensuring stable and compatible transmission and optimizing user experience; supporting high-speed and low-latency services in multiple industries, while reducing the operation and maintenance costs for operators and users, and facilitating the implementation of 5G applications.

[0080] Based on the above technical solution, as an embodiment, the user equipment can also request ordinary network services. When the user equipment turns on the data switch but turns off the ultra-high-speed data switch, it sends ordinary network service request information to the network-side device and obtains ordinary network services provided by the network-side device; wherein, the ordinary network service request information carries a target PCO message; the fixed bytes of the target PCO message carried in the ordinary network service request information indicate that the user equipment actively requests ordinary network services from the network.

[0081] A user equipment (UE) can trigger a UE to proactively send a normal network service request message to the network side by simply turning on the data switch. The Specific value of the target PCO message carried in the normal network service request message is 4, instructing the UE to proactively request normal network services from the network.

[0082] When the network-side device receives a request for ordinary network services, it establishes an ordinary data connection for the user equipment, thereby providing ordinary network services to the user equipment so that the user equipment can use ordinary network services.

[0083] By employing the technical solution of this application embodiment, user equipment can apply for either ordinary network services or ultra-high-speed services, thereby avoiding waste while ensuring flexible adjustments, preventing resource idleness, and improving daily network stability. Applying for ordinary network services can meet daily transmission needs while saving resources and reducing device power consumption.

[0084] In one embodiment, as shown in FIG4, a service control method is provided. Although the logical order is shown in the step diagram, in some cases, the steps shown or described may be performed in a different order than that shown in the figures. Specifically, this service control method can be applied to network-side devices.

[0085] The following sections provide detailed descriptions of each example. It should be noted that the order in which the embodiments are described is not intended to limit the priority of the embodiments.

[0086] According to the service control method shown in Figure 4, the method includes at least steps S410 to S450, which are described in detail below: In step S410, when a user equipment requests ultra-high-speed service based on a target PCO message, 5G CA capability query information is sent to the user equipment. The fixed bytes of the target PCO message are used to indicate the processing status of the ultra-high-speed service; the 5G CA capability query information is used to query the maximum 5G CA capability parameters supported by the user equipment.

[0087] In step S420, the maximum 5G CA capability parameters supported by the user equipment are obtained in response to the 5G CA capability query information.

[0088] In step S430, a CA reconfiguration command is sent to the user equipment according to the 5G CA maximum capability parameter; the CA reconfiguration command is used to instruct the user equipment to complete its own configuration.

[0089] In step S440, a reconfiguration completion message sent by the user equipment after completing CA configuration is received.

[0090] In step S450, in response to the reconfiguration completion message, the CA cell set configured by the user equipment is activated, and the RB corresponding to the CA cell set is allocated to the user equipment, so that the user equipment can perform ultra-high-speed data transmission based on the activated CA cell set and the allocated RB.

[0091] When a user equipment (UE) actively or dynamically requests ultra-high-speed services, the network-side equipment can send 5G carrier aggregation (CA) capability query information to the UE. This 5G CA capability query information is used to query the maximum 5G CA capability parameters supported by the UE, thereby accurately obtaining the maximum CA capability parameters supported by the UE at the hardware level. The maximum 5G CA capability parameters may include, but are not limited to: the maximum number of downlink / uplink aggregated carriers, supported frequency band combinations, upper limit of modulation and coding schemes, and / or peak rate carrying capacity. The maximum 5G CA capability parameters directly determine the upper limit of CA schemes that the network-side equipment can subsequently configure.

[0092] After receiving the 5G CA capability query information, the user equipment (UE) checks its own capabilities and can retrieve preset hardware specifications and software configuration information to compile a complete set of maximum 5G CA capability parameters. The UE can then feed this set of capability parameters back to the network-side equipment, thereby providing feedback on the maximum 5G CA capability parameters supported by the UE. This ensures that the network-side equipment can fully grasp the UE's CA carrying potential, providing accurate basis for subsequent configuration and avoiding configuration failures or resource waste due to capability mismatches.

[0093] Once the network-side equipment obtains and parses the maximum CA capability parameters of the user equipment, it can formulate the optimal CA configuration scheme based on the carrier resources within the current base station coverage area, the user's service demand level, and the network congestion status, and generate a corresponding CA reconfiguration command to be sent to the user equipment. This reconfiguration command may include details such as specific aggregated carrier combinations, cell identifiers, frequency band configurations, uplink and downlink parameters, clearly indicating the self-configuration adjustment requirements that the user equipment needs to complete.

[0094] After receiving the CA reconfiguration command, the user equipment can initiate an internal configuration adjustment process according to the parameters required in the command. This process includes frequency band switching, carrier synchronization, and link parameter calibration to ensure that its hardware modules are fully compatible with the network-side configuration scheme. Upon completion of the reconfiguration, the user equipment will send a reconfiguration completion message to the network-side device. This message may also include configured link status detection data for the network-side device to verify the validity of the configuration.

[0095] After receiving the reconfiguration completion message, the network-side equipment can perform a final verification of the user equipment's configuration status. Once confirmed to be correct, it activates the CA cell set configured for the user equipment and allocates corresponding resource blocks according to service requirements. The resource blocks will be distributed across multiple aggregated carriers to maximize spectrum utilization.

[0096] User equipment (UE) initiates a multi-carrier collaborative transmission mechanism based on the activated CA cell set and allocated resources. By simultaneously transmitting and receiving uplink and downlink data on multiple carriers, it fully leverages the bandwidth aggregation advantages of CA technology to achieve ultra-high-speed data transmission and meet the high-speed service requirements of 4K / 8K video, cloud gaming, industrial internet, and other applications.

[0097] Using the technical solution of this application embodiment, when a user equipment (UE) requests ultra-high-speed service based on a target PCO message, the network-side device can query the maximum 5G CA capability parameters supported by the UE by sending 5G CA capability query information, so as to allocate corresponding resources to the UE according to the maximum 5G CA capability parameters supported by the UE. In order to allocate corresponding resources to the UE, a CA reconfiguration command can be sent to the UE to enable the UE to complete the reconfiguration of the maximum 5G CA capability. After the UE completes the reconfiguration, the network-side device can activate the CA cell set configured by the UE and allocate RBs corresponding to the CA cell set to the UE. The CA cell set is the set of CA cells corresponding to the maximum 5G CA capability parameters supported by the UE. In this way, the UE can perform ultra-high-speed data transmission based on the activated CA cell set and the allocated RBs, thereby fully utilizing the network's ultra-high-speed capability to meet the user's actual needs for high-speed data transmission and reception.

[0098] The network-side device can receive the ultra-high-speed service request information sent by the user equipment when it turns on the data switch and the ultra-high-speed data switch; reply with ultra-high-speed service consent information to the user equipment; and provide ultra-high-speed service to the user equipment.

[0099] The network-side device can receive the ultra-high-speed service request information sent by the user equipment when the data switch and the ultra-high-speed data switch are turned on; reply to the user equipment with no permission information; and provide the user equipment with normal network services.

[0100] When the network-side device detects that the user equipment has a target data transmission requirement, it can send an ultra-high-speed service consultation message to the user equipment; receive an ultra-high-speed service reception message sent by the user equipment based on the ultra-high-speed service consultation message; and provide ultra-high-speed service to the user equipment after the user equipment automatically turns on the ultra-high-speed data switch.

[0101] The network-side device can receive the ultra-high-speed service rejection information sent by the user equipment based on the ultra-high-speed service consultation information, and provide the user equipment with ordinary network services.

[0102] During the process of providing ultra-high-speed services to the user equipment, the network-side device can receive ordinary network service request information sent by the user equipment, send information that the ultra-high-speed service has been stopped to the user equipment, and then provide ordinary network services to the user equipment.

[0103] The network-side device can receive ordinary network service request information sent by the user equipment and provide ordinary network services to the user equipment when it does not provide ultra-high-speed services to the user equipment.

[0104] To facilitate better implementation of the service control method of this application, this application also provides a service control device based on the above-described service control method. The meanings of the terms used are the same as in the service control method described above, and specific implementation details can be found in the descriptions of the method embodiments.

[0105] Please refer to Figure 5, which is a schematic diagram of the service control device provided in this embodiment of the application. The service control device is applied to a user equipment (UE), which includes a data switch and an ultra-high-speed data switch. The device includes: an ultra-high-speed application module 501, used to send ultra-high-speed service application information to a network-side device when the UE turns on the data switch and the ultra-high-speed data switch; and an ultra-high-speed acquisition module 502, used to receive ultra-high-speed service consent information from the network-side device and acquire the ultra-high-speed service provided by the network-side device. The ultra-high-speed service application information carries a target protocol configuration option (PCO) message; a fixed byte in the target PCO message indicates the processing status of the ultra-high-speed service; the fixed byte in the target PCO message carried by the ultra-high-speed service application information indicates that the UE actively applies for ultra-high-speed service from the network; the ultra-high-speed service consent information carries a target PCO message; and the fixed byte in the target PCO message carried by the ultra-high-speed service consent information indicates that the network has replied to the UE that it has acquired the ultra-high-speed service.

[0106] In one embodiment, the apparatus further includes: a consultation information receiving module, configured to receive ultra-high-speed service consultation information sent by the network-side device; the ultra-high-speed service resource information is sent by the network side when it detects that the user equipment has a target data transmission requirement; a receiving information sending module, configured to send ultra-high-speed service receiving information to the network-side device according to the ultra-high-speed service consultation information; and a switch opening module, configured to automatically open the ultra-high-speed data switch and obtain the ultra-high-speed service provided by the network-side device; wherein the ultra-high-speed service consultation information carries a target PCO message; the fixed bytes of the target PCO message carried by the ultra-high-speed service consultation information indicate whether the network consults the user equipment to request ultra-high-speed service; the ultra-high-speed service receiving information carries a target PCO message; the fixed bytes of the target PCO message carried by the ultra-high-speed service receiving information indicate that the user equipment replies to the network requesting ultra-high-speed service.

[0107] In one embodiment, the apparatus further includes: a rejection information sending module, configured to send an ultra-high-speed service rejection message to the network-side device based on the ultra-high-speed service inquiry information, and obtain ordinary network services provided by the network-side device; wherein the ultra-high-speed service rejection message carries a target PCO message; the fixed bytes of the target PCO message carried by the ultra-high-speed service rejection message indicate that the user equipment replies to the network that it does not request ultra-high-speed service.

[0108] In one embodiment, the apparatus further includes: an ultra-high-speed shutdown module, configured to send ordinary network service request information to the network-side device and obtain ordinary network services provided by the network-side device when the user equipment shuts down the ultra-high-speed data switch while using the ultra-high-speed service; wherein the ordinary network service request information carries a target PCO message; the fixed bytes of the target PCO message carried by the ordinary network service request information indicate that the user equipment actively requests ordinary network services from the network.

[0109] In one embodiment, the apparatus further includes: a normal network application module, configured to send normal network service application information to the network-side device and obtain normal network services provided by the network-side device when the user equipment turns on the data switch but turns off the ultra-high-speed data switch; wherein the normal network service application information carries a target PCO message; the fixed bytes of the target PCO message carried by the normal network service application information indicate that the user equipment actively applies to the network for normal network services.

[0110] In one embodiment, the apparatus further includes: an unauthorized information receiving module, configured to receive unauthorized information from the network-side device and obtain ordinary network services provided by the network-side device; wherein the unauthorized information carries a target PCO message; the fixed bytes of the target PCO message carried by the unauthorized information indicate that the network replies to the user device that it has no permission to obtain ultra-high-speed services.

[0111] In one embodiment, the ultra-high-speed acquisition module 502 is specifically configured to perform the following: acquiring 5G carrier aggregation (CA) capability query information sent by the network-side device; the 5G CA capability query information is used to query the maximum 5G CA capability parameters supported by the user equipment; in response to the 5G CA capability query information, feeding back the maximum 5G CA capability parameters supported by the user equipment to the network-side device; acquiring a CA reconfiguration instruction sent by the network-side device according to the maximum 5G CA capability parameters; the CA reconfiguration instruction is used to instruct the user equipment to complete its own configuration; completing the CA configuration according to the CA reconfiguration instruction, and sending a reconfiguration completion message to the network-side device; the reconfiguration completion message is used to instruct the network-side device to activate the CA cell set configured by the user equipment, and allocate resource blocks (RBs) corresponding to the CA cell set to the user equipment; and performing ultra-high-speed data transmission based on the activated CA cell set and the allocated RBs.

[0112] The user equipment (UE) using the technical solution of this application includes a data switch and an ultra-high-speed data switch. When the UE turns on the data switch and the ultra-high-speed data switch, it can automatically send an ultra-high-speed service request to the network-side device. The fixed bytes of the target PCO message carried in the ultra-high-speed service request information indicate that the UE actively requests ultra-high-speed service from the network. After receiving the ultra-high-speed service request information, the network-side device can parse the target PCO message carried in the ultra-high-speed service request information to obtain the fixed bytes, thereby knowing that the UE has requested ultra-high-speed service. When the network-side device provides ultra-high-speed service to the UE, the network-side device can reply with ultra-high-speed service consent information to the UE. The fixed bytes of the target PCO message carried in the service consent information indicate that the network has replied to the user equipment that it has obtained the ultra-high-speed service. After receiving the ultra-high-speed service consent information, the user equipment can parse the target PCO message carried in the ultra-high-speed service consent information to obtain the fixed bytes, thereby knowing that the network-side device has provided the ultra-high-speed service, and therefore the user equipment can use the ultra-high-speed service. In this way, by pre-defining the different meanings represented by the fixed bytes of the target PCO message, the user equipment and the network-side device can realize the control operations such as requesting and agreeing to the ultra-high-speed service by transmitting different target PCO messages, thereby giving full play to the ultra-high-speed capability of the network and meeting the actual needs of users for high-speed data transmission and reception.

[0113] To facilitate better implementation of the service control method of this application, this application also provides a service control device based on the above-described service control method. The meanings of the terms used are the same as in the service control method described above, and specific implementation details can be found in the descriptions of the method embodiments.

[0114] Please refer to Figure 6, which is a schematic diagram of the service control device provided in an embodiment of this application. The service control device is applied to a network-side device and includes: a query sending module 601, used to send 5G CA capability query information to a user equipment (UE) when the UE requests ultra-high-speed service based on a target PCO message; the fixed bytes of the target PCO message are used to indicate the processing status of the ultra-high-speed service; the 5G CA capability query information is used to query the maximum 5G CA capability parameters supported by the UE; a response acquisition module 602, used to acquire the maximum 5G CA capability parameters supported by the UE in response to the 5G CA capability query information; and an instruction sending module 603, used to send instructions according to the 5G... The CA maximum capacity parameter is used to send a CA reconfiguration command to the user equipment; the CA reconfiguration command is used to instruct the user equipment to complete its own configuration; the message receiving module 604 is used to receive a reconfiguration completion message sent by the user equipment after completing the CA configuration; the activation module 605 is used to activate the CA cell set configured by the user equipment in response to the reconfiguration completion message, and allocate RBs corresponding to the CA cell set to the user equipment, so that the user equipment can perform ultra-high-speed data transmission based on the activated CA cell set and the allocated RBs.

[0115] Using the technical solution of this application embodiment, when a user equipment (UE) requests ultra-high-speed service based on a target PCO message, the network-side device can query the maximum 5G CA capability parameters supported by the UE by sending 5G CA capability query information, so as to allocate corresponding resources to the UE according to the maximum 5G CA capability parameters supported by the UE. In order to allocate corresponding resources to the UE, a CA reconfiguration command can be sent to the UE to enable the UE to complete the reconfiguration of the maximum 5G CA capability. After the UE completes the reconfiguration, the network-side device can activate the CA cell set configured by the UE and allocate RBs corresponding to the CA cell set to the UE. The CA cell set is the set of CA cells corresponding to the maximum 5G CA capability parameters supported by the UE. In this way, the UE can perform ultra-high-speed data transmission based on the activated CA cell set and the allocated RBs, thereby fully utilizing the network's ultra-high-speed capability to meet the user's actual needs for high-speed data transmission and reception.

[0116] For specific limitations regarding the service control device, please refer to the limitations on the service control method above, which will not be repeated here. Each module in the aforementioned service control device can be implemented entirely or partially through software, hardware, or a combination thereof. These modules can be embedded in or independent of the processor in the computer device in hardware form, or stored in the memory of the computer device in software form, so that the processor can call and execute the operations corresponding to each module.

[0117] Furthermore, this application also provides an electronic device, as shown in FIG7, which illustrates the structural schematic diagram of the electronic device involved in this application. Specifically, the electronic device may include components such as a processor 701 with one or more processing cores and a memory 702 with one or more computer-readable storage media. Those skilled in the art will understand that the electronic device structure shown in FIG7 does not constitute a limitation on the electronic device, and may include more or fewer components than shown, or combine certain components, or have different component arrangements. The processor 701 is the control center of the electronic device, connecting various parts of the entire electronic device through various interfaces and lines. By running or executing software programs and / or modules stored in the memory 702, and calling data stored in the memory 702, it performs various functions of the electronic device and processes data, thereby performing overall monitoring of the electronic device. Optionally, the processor 701 may include one or more processing cores; preferably, the processor 701 may integrate an application processor and a modem processor, wherein the application processor mainly handles the operating system, user interface, and application programs, and the modem processor mainly handles wireless communication. It is understood that the aforementioned modem processor may also not be integrated into the processor 701.

[0118] The memory 702 can be used to store software programs and modules. The processor 701 executes various functional applications and data processing by running the software programs and modules stored in the memory 702. The memory 702 may mainly include a program storage area and a data storage area. The program storage area may store the operating system, application programs required for at least one function (such as sound playback function, image playback function, etc.), etc.; the data storage area may store data created according to the use of the electronic device, etc. In addition, the memory 702 may include high-speed random access memory, and may also include non-volatile memory, such as at least one disk storage device, flash memory device, or other volatile solid-state storage device. Accordingly, the memory 702 may also include a memory controller to provide the processor 701 with access to the memory 702.

[0119] In one embodiment, the electronic device further includes a power supply 703 that supplies power to the various components. Preferably, the power supply 703 can be logically connected to the processor 701 through a power management system, thereby enabling functions such as charging, discharging, and power consumption management through the power management system. The power supply 703 may also include one or more DC or AC power supplies, recharging systems, power equipment debugging circuits, power converters or inverters, power status indicators, and other arbitrary components.

[0120] In one embodiment, the electronic device may further include an input unit 704, which can be used to receive input digital or character information and generate keyboard, mouse, joystick, optical or trackball signal inputs related to user settings and function control.

[0121] Although not shown, the electronic device may also include a display unit, etc., which will not be described in detail here. Specifically, in this embodiment, the processor 701 in the electronic device loads the executable files corresponding to the processes of one or more applications into the memory 702 according to the following instructions, and the processor 701 runs the applications stored in the memory 702, thereby implementing the steps in any of the service control methods provided in the embodiments of this application.

[0122] Those skilled in the art will understand that the structure shown in Figure 7 is merely a block diagram of a portion of the structure related to the present application and does not constitute a limitation on the electronic device to which the present application is applied. The specific electronic device may include more or fewer components than shown in the figure, or combine certain components, or have different component arrangements.

[0123] In one embodiment, an electronic device is provided, including a memory and a processor, wherein the memory stores a computer program, and the processor executes the computer program to implement the methods described in any embodiment of this application.

[0124] In one embodiment, a computer-readable storage medium is provided having a computer program stored thereon, which, when executed by a processor, implements the method described in any embodiment of this application.

[0125] In some embodiments, a computer program product is also provided, including a computer program or instructions that, when executed by a processor, implement the methods described in any embodiment of this application.

[0126] For details on the implementation of each of the above operations, please refer to the previous examples, which will not be repeated here.

[0127] Those skilled in the art will understand that all or part of the steps in the various methods of the above embodiments can be performed by instructions, or by instructions controlling related hardware. These instructions can be stored in a computer-readable storage medium and loaded and executed by a processor.

[0128] To this end, this application provides a computer-readable storage medium storing a computer program that can be loaded by a processor to execute the steps of any of the service control methods provided in this application.

[0129] For details on the implementation of each of the above operations, please refer to the previous examples, which will not be repeated here.

[0130] The computer-readable storage medium may include: read-only memory (ROM), random access memory (RAM), disk or optical disk, etc.

[0131] Since the instructions stored in the computer-readable storage medium can execute the steps of any of the service control methods provided in this application, the beneficial effects that any of the service control methods provided in this application can achieve can be realized, as detailed in the preceding embodiments, and will not be repeated here.

[0132] The above provides a detailed description of a service control method, electronic device, and computer-readable storage medium provided in this application. Specific examples have been used to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of the present invention. At the same time, those skilled in the art will recognize that there will be changes in the specific implementation methods and application scope based on the ideas of the present invention. Therefore, the content of this specification should not be construed as a limitation of the present invention.

Claims

1. A service control method, characterized in that, The method is applied to a user equipment, which includes a data switch and an ultra-high-speed data switch. The method includes: when the user equipment turns on the data switch and the ultra-high-speed data switch, sending an ultra-high-speed service request to a network-side device; receiving an ultra-high-speed service consent message from the network-side device, and obtaining the ultra-high-speed service provided by the network-side device; wherein the ultra-high-speed service request carries a target protocol configuration option (PCO) message; a fixed byte of the target PCO message is used to indicate the processing status of the ultra-high-speed service; the fixed byte of the target PCO message carried in the ultra-high-speed service request indicates that the user equipment actively requests the ultra-high-speed service from the network; the ultra-high-speed service consent message carries a target PCO message; the fixed byte of the target PCO message carried in the ultra-high-speed service consent information indicates that the network has replied to the user equipment that it has obtained the ultra-high-speed service.

2. The method according to claim 1, characterized in that, The method further includes: receiving ultra-high-speed service inquiry information sent by the network-side device; the ultra-high-speed service resource information is sent by the network side when it detects that the user equipment has a target data transmission requirement; sending ultra-high-speed service reception information to the network-side device according to the ultra-high-speed service inquiry information; automatically turning on the ultra-high-speed data switch and obtaining the ultra-high-speed service provided by the network-side device; wherein, the ultra-high-speed service inquiry information carries a target PCO message; the fixed bytes of the target PCO message carried by the ultra-high-speed service inquiry information indicate whether the network inquires whether the user equipment requests ultra-high-speed service; the ultra-high-speed service reception information carries a target PCO message; the fixed bytes of the target PCO message carried by the ultra-high-speed service reception information indicate that the user equipment replies to the network requesting ultra-high-speed service.

3. The method according to claim 2, characterized in that, After receiving the ultra-high-speed service inquiry information sent by the network-side device, the method further includes: sending an ultra-high-speed service rejection message to the network-side device based on the ultra-high-speed service inquiry information, and obtaining the normal network service provided by the network-side device; wherein the ultra-high-speed service rejection message carries a target PCO message; the fixed bytes of the target PCO message carried by the ultra-high-speed service rejection message indicate that the user equipment replies to the network that it does not request ultra-high-speed service.

4. The method according to claim 1 or 2, characterized in that, The method further includes: when the user equipment turns off the ultra-high-speed data switch while using ultra-high-speed service, sending ordinary network service request information to the network-side device and obtaining ordinary network services provided by the network-side device; wherein, the ordinary network service request information carries a target PCO message; the fixed bytes of the target PCO message carried by the ordinary network service request information indicate that the user equipment actively requests ordinary network services from the network.

5. The method according to claim 1, characterized in that, The method further includes: when the user equipment turns on the data switch but turns off the ultra-high-speed data switch, sending a normal network service request information to the network-side device and obtaining the normal network service provided by the network-side device; wherein the normal network service request information carries a target PCO message; the fixed bytes of the target PCO message carried by the normal network service request information indicate that the user equipment actively requests a normal network service from the network.

6. The method according to claim 1, characterized in that, After sending the ultra-high-speed service request information to the network-side device, the method further includes: receiving a no-authority message from the network-side device and obtaining the ordinary network service provided by the network-side device; wherein the no-authority message carries a target PCO message; the fixed bytes of the target PCO message carried by the no-authority message indicate that the network replies to the user equipment that it has no authorization to obtain the ultra-high-speed service.

7. The method according to claim 1, characterized in that, The step of obtaining the ultra-high-speed service provided by the network-side device includes: obtaining 5G carrier aggregation (CA) capability query information sent by the network-side device; the 5G CA capability query information is used to query the maximum 5G CA capability parameters supported by the user equipment; in response to the 5G CA capability query information, feeding back the maximum 5G CA capability parameters supported by the user equipment to the network-side device; obtaining a CA reconfiguration instruction sent by the network-side device according to the maximum 5G CA capability parameters; the CA reconfiguration instruction is used to instruct the user equipment to complete its own configuration; completing the CA configuration according to the CA reconfiguration instruction, and sending a reconfiguration completion message to the network-side device; the reconfiguration completion message is used to instruct the network-side device to activate the CA cell set configured by the user equipment, and allocate resource blocks (RBs) corresponding to the CA cell set to the user equipment; and performing ultra-high-speed data transmission based on the activated CA cell set and the allocated RBs.

8. A service control method, characterized in that, The method, applied to network-side equipment, includes: when a user equipment (UE) requests ultra-high-speed service based on a target PCO message, sending 5G CA capability query information to the UE; fixed bytes in the target PCO message are used to indicate the processing status of the ultra-high-speed service; the 5G CA capability query information is used to query the maximum 5G CA capability parameters supported by the UE; obtaining the maximum 5G CA capability parameters supported by the UE as feedback from the UE in response to the 5G CA capability query information; sending a CA reconfiguration instruction to the UE according to the maximum 5G CA capability parameters; the CA reconfiguration instruction instructing the UE to complete its own configuration; receiving a reconfiguration completion message sent by the UE after completing the CA configuration; and, in response to the reconfiguration completion message, activating the CA cell set configured by the UE and allocating RBs corresponding to the CA cell set to the UE, so that the UE can perform ultra-high-speed data transmission based on the activated CA cell set and the allocated RBs.

9. An electronic device, characterized in that, It includes a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor executes the computer program to implement the steps of the service control method as described in any one of claims 1 to 8.

10. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program that, when executed by a processor, implements the steps of the service control method as described in any one of claims 1 to 8.