Method and device for controlling data transmission to save network energy in wireless communication system

By employing a data transmission control method in wireless communication systems that considers network energy state and manages PDU sessions based on energy class information, the method addresses the challenge of reducing network energy consumption while maintaining service quality.

WO2025095644A1PCT designated stage expired Publication Date: 2025-05-08SAMSUNG ELECTRONICS CO LTD
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Patent Information

Application Number
PCT/KR2024/016956
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-11-01
Filing Date
2024-10-31
Publication Date
2025-05-08

AI Technical Summary

Technical Problem

The increasing complexity and energy consumption of wireless communication systems, particularly in 5G and future 6G networks, pose challenges in efficiently managing data transmission while minimizing network energy usage.

Method used

The implementation of a data transmission control method that considers the energy state of the network, where the Session Management Function (SMF) entity in the mobile communication system requests information about the energy class for a service from the Policy Control Function (PCF) and uses this information to manage PDU sessions, adjust energy consumption, and delay paging requests when necessary.

Benefits of technology

This approach effectively reduces network energy consumption by optimizing data transmission processes, selecting appropriate energy classes for PDU sessions, and strategically managing paging requests based on network energy state, thereby enhancing energy efficiency without compromising user service quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present disclosure relates to a 5G or 6G communication system for supporting higher data transmission rates. A method performed by a session management function (SMF) entity in a mobile communication system comprises the steps of: receiving, from an access and mobility management function (AMF) entity, a request for a protocol data unit (PDU) session for a service associated with a user equipment (UE); transmitting, to a policy control function (PCF) entity on the basis of the request, a first message for requesting information about an energy class for the service; receiving, from the PCF entity, a second message including the information about the energy class in response to the first message; and identifying whether a paging signal for the UE is to be delayed and transmitted on the basis of the information about the energy class and information about a network energy state associated with the PDU session.
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Description

Method and device for controlling data transmission for network energy saving in a wireless communication system

[0001] The present disclosure relates to a wireless communication system, and more particularly, to a data transmission method and device that take into account energy efficiency and power reduction of a network in a wireless communication system.

[0002] 5G mobile communication technology defines a wide frequency band to enable fast transmission speeds and new services, and can be implemented not only in the sub-6GHz frequency band such as 3.5 gigahertz (3.5GHz), but also in the ultra-high frequency band called millimeter wave (mmWave) such as 28GHz and 39GHz ('Above 6GHz'). In addition, for 6G mobile communication technology, which is called the system after 5G communication (Beyond 5G), implementation in the terahertz band (for example, the 3 terahertz (3THz) band at 95GHz) is being considered to achieve a transmission speed that is 50 times faster than 5G mobile communication technology and an ultra-low latency time that is reduced to one-tenth.

[0003] In the early stages of 5G mobile communication technology, the goal is to support services and satisfy performance requirements for enhanced Mobile Broadband (eMBB), Ultra-Reliable Low-Latency Communications (URLLC), and massive Machine-Type Communications (mMTC). These include beamforming and massive MIMO to mitigate path loss of radio waves in ultra-high frequency bands and increase the transmission distance of radio waves, support for various numerologies (such as operation of multiple subcarrier intervals) and dynamic operation of slot formats for efficient use of ultra-high frequency resources, initial access technology to support multi-beam transmission and wideband, definition and operation of BWP (Bidth Part), new channel coding methods such as LDPC (Low Density Parity Check) codes for large-capacity data transmission and Polar Code for reliable transmission of control information, and L2 pre-processing (L2). Standardization has been made for network slicing, which provides dedicated networks specialized for specific services, and pre-processing.

[0004] Currently, discussions are underway to improve and enhance the initial 5G mobile communication technology in consideration of the services that 5G mobile communication technology was intended to support, and physical layer standardization is in progress for technologies such as V2X (Vehicle-to-Everything) to help autonomous vehicles make driving decisions and increase user convenience based on their own location and status information transmitted by vehicles, NR-U (New Radio Unlicensed) for the purpose of system operation that complies with various regulatory requirements in unlicensed bands, NR terminal low power consumption technology (UE Power Saving), Non-Terrestrial Network (NTN), which is direct terminal-satellite communication to secure coverage in areas where communication with terrestrial networks is impossible, and Positioning.

[0005] In addition, standardization of wireless interface architecture / protocols is in progress for technologies such as intelligent factories (Industrial Internet of Things, IIoT) to support new services through linkage and convergence with other industries, Integrated Access and Backhaul (IAB) that provides nodes for expanding network service areas by integrating wireless backhaul links and access links, Mobility Enhancement technology including Conditional Handover and Dual Active Protocol Stack (DAPS) handover, and 2-step random access (2-step RACH for NR) that simplifies random access procedures. Standardization is also in progress for system architecture / services such as 5G baseline architecture (e.g., Service-based Architecture, Service-based Interface) for grafting Network Functions Virtualization (NFV) and Software-Defined Networking (SDN) technologies, and Mobile Edge Computing (MEC) that provides services based on the location of the terminal.

[0006] Once these 5G mobile communication systems are commercialized, an explosive increase in connected devices will be connected to the communication network, necessitating enhanced functionality and performance of 5G mobile communication systems and integrated operation of these connected devices. To this end, new research will be conducted on improving 5G performance and reducing complexity, supporting AI services, supporting metaverse services, and drone communications by utilizing eXtended Reality (XR), Artificial Intelligence (AI), and Machine Learning (ML) to efficiently support Augmented Reality (AR), Virtual Reality (VR), and Mixed Reality (MR).

[0007] In addition, the development of these 5G mobile communication systems includes new waveforms to ensure coverage in the terahertz band of 6G mobile communication technology, multi-antenna transmission technologies such as Full Dimensional MIMO (FD-MIMO), Array Antenna, and Large Scale Antenna, metamaterial-based lenses and antennas to improve the coverage of terahertz band signals, high-dimensional spatial multiplexing technology using Orbital Angular Momentum (OAM), Reconfigurable Intelligent Surface (RIS) technology, as well as full duplex technology to improve the frequency efficiency and system network of 6G mobile communication technology, satellite, AI (Artificial Intelligence) from the design stage and AI-based communication technology that realizes system optimization by internalizing end-to-end AI support functions, and ultra-high-performance communication and computing resources to provide services with complexity that exceeds the limits of terminal computing capabilities. It can serve as a basis for the development of next-generation distributed computing technologies that can be realized by utilizing them.

[0008] According to one embodiment of the present disclosure, a device and method for effectively providing a service in a mobile communication system are provided.

[0009] According to one embodiment of the present disclosure, a method performed by a session management function (SMF) entity in a mobile communication system may include the steps of: receiving, from an access and mobility management function (AMF) entity, a request for a protocol data unit (PDU) session for a service associated with a user equipment (UE); transmitting, based on the request, a first message to a policy control function (PCF) entity, the first message requesting information on an energy class for the service; receiving, from the PCF entity, a second message including the information on the energy class in response to the first message; and identifying, based on the information on the energy class and information on a network energy state associated with the PDU session, whether a paging signal for the UE is to be transmitted with a delay.

[0010] According to one embodiment of the present disclosure, a device and method for effectively providing a service in a wireless communication system can be provided.

[0011] The effects that can be obtained from the present disclosure are not limited to the effects mentioned above, and other effects that are not mentioned can be clearly understood by a person having ordinary skill in the art to which the present disclosure belongs from the description below.

[0012] FIG. 1 is a diagram illustrating a wireless communication system that applies a data transmission control method that takes into account the energy state of a network according to an embodiment of the present disclosure.

[0013] FIG. 2 is a diagram illustrating a general operation of a data transmission control method considering the energy state of a network in a wireless communication system according to an embodiment of the present disclosure.

[0014] FIG. 3a is a diagram illustrating a series of signal procedures for controlling connection and data transmission of a terminal by applying the proposed method in a wireless communication system according to an embodiment of the present disclosure.

[0015] FIG. 3b is a diagram illustrating a series of signal procedures for controlling connection and data transmission of a terminal by applying the proposed method in a wireless communication system according to an embodiment of the present disclosure.

[0016] FIG. 4 illustrates an example of a functional structure of a base station according to an embodiment of the present disclosure.

[0017] FIG. 5 illustrates an example of a functional structure of a terminal according to an embodiment of the present disclosure.

[0018] FIG. 6 illustrates an example of a functional structure of a core network object according to one embodiment of the present disclosure.

[0019] Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the attached drawings. It should be noted that, where possible, identical components are represented by identical reference numerals in the attached drawings. Furthermore, detailed descriptions of well-known functions and configurations that may obscure the gist of the present disclosure will be omitted.

[0020] In describing the embodiments of this disclosure, descriptions of technical details that are well known in the technical field to which the present invention pertains and are not directly related to the present invention will be omitted. This is to avoid obscuring the gist of the present invention by omitting unnecessary explanations and to convey the gist more clearly.

[0021] For the same reason, some components in the attached drawings may be exaggerated, omitted, or schematically depicted. Furthermore, the dimensions of each component do not entirely reflect its actual size. Identical or corresponding components in each drawing are assigned the same reference numbers.

[0022] The advantages and features of the present disclosure, and methods for achieving them, will become clearer with reference to the embodiments described below in detail with the accompanying drawings. However, the present disclosure is not limited to the embodiments disclosed below and may be implemented in various different forms. However, the embodiments are provided to ensure that the description of the present disclosure is complete and to fully inform those skilled in the art of the scope of the invention. The claimed scope of the present disclosure is defined solely by the scope of the claims.

[0023] At this time, it can be understood that each block of the drawings showing the processing flowchart and the combination of the processing flowchart drawings can be performed by computer program instructions. The computer program instructions can be installed in a processor of a general-purpose computer, a special-purpose computer, or other programmable data processing equipment, so that the instructions executed through the processor of the computer or other programmable data processing equipment create a means for performing the functions described in the flowchart block(s). The computer program instructions can also be stored in a computer-available or computer-readable memory that can direct a computer or other programmable data processing equipment to implement a function in a specific manner, so that the instructions stored in the computer-available or computer-readable memory can produce a manufactured item including an instruction means for performing the functions described in the flowchart block(s). Computer program instructions may also be installed on a computer or other programmable data processing device, so that a series of operational steps may be performed on the computer or other programmable data processing device, and instructions that generate a computer-executable process and cause the computer or other programmable data processing device to perform may provide steps for performing the functions described in the flowchart block(s).

[0024] Additionally, each block may represent a module, segment, or portion of code that contains one or more executable instructions for performing a specific logical function(s). It should also be noted that in some alternative implementation examples, the functions described in the blocks may occur out of order. For example, two blocks depicted in succession may actually be executed substantially concurrently, or the blocks may sometimes be executed in reverse order, depending on their respective functions.

[0025] The term 'unit or part' used in this disclosure means a software or hardware component such as a field-programmable gate array (FPGA) or an application specific integrated circuit (ASIC), and the 'unit' may be configured to perform specific roles. However, the 'unit' is not limited to software or hardware. The 'unit' may be configured to reside in an addressable storage medium and may be configured to execute one or more processors. Thus, as an example, the 'unit' may include components such as software components, object-oriented software components, class components, and task components, processes, functions, attributes, procedures, subroutines, segments of program code, drivers, firmware, microcode, circuitry, data, databases, data structures, tables, arrays, and / or variables. The functionality provided within the components and 'units' may be combined into a smaller number of components and 'units' or further separated into additional components and 'units'. Additionally, the components and '~parts' may be implemented to play one or more central processing units (CPUs) within the device or secure multimedia card. In one embodiment, the '~parts' may include one or more processors and / or devices.

[0026] For convenience of explanation below, some terms and names defined in communication standards based on 3GPP (3rd Generation Partnership Project Long Term Evolution) (e.g., standards for 5G (fifth-generation), NR (new radio), LTE (long term evolution), or similar systems) may be used. However, the present disclosure is not limited by the terms and names, and may be equally applied to systems conforming to other standards.

[0027] The terms used in the following description to identify connection nodes, terms referring to network entities, terms referring to messages, terms referring to interfaces between network objects, or terms referring to various identification information are provided for convenience of explanation. Therefore, the present disclosure is not limited to the terms described below, and other terms referring to objects with equivalent technical meanings may be used.

[0028] In specifically describing the embodiments of the present disclosure, the New RAN (NR), which is a wireless access network, and the Packet Core (5G System, or 5G Core Network, or NG Core: Next Generation Core), which is a core network, based on the 5G mobile communication standard specified by 3GPP, a mobile communication standard standardization organization, will be mainly described. However, the main gist of the present disclosure can also be applied to other communication systems having a similar technical background. For example, the main gist of the present disclosure can be applied with slight modifications within a range that does not significantly deviate from the scope of the present disclosure, and this will be possible at the discretion of a person skilled in the art of the present disclosure.

[0029] In 5G systems, a Network Data Collection and Analysis Function (NWDAF) can be defined to support network automation. This network function analyzes and provides data collected from the 5G network. NWDAF can collect, store, and analyze information from the 5G network and provide the results to at least one Network Function (NF), with each NF independently utilizing the analysis results.

[0030] In a 5G mobile communication system, NFs may be supported to utilize the results of collection and analysis of network-related data (hereinafter referred to as “network data”) through NWDAF. This may be to centralize the collection and analysis of network data necessary for each NF to effectively provide the functions it provides. NWDAF may perform the collection and analysis of network data using a network slice as the basic unit. However, the scope of the present disclosure is not limited to the network slice unit, and NWDAF may additionally analyze various information (e.g., service quality) obtained from a user equipment (UE), a protocol data unit (PDU) session, an NF status, and / or an external service server.

[0031] The results analyzed through NWDAF are delivered to each NF that requested the analysis results, and the delivered analysis results can be used to optimize network management functions such as quality of service (QoS) assurance / improvement, traffic control, and / or mobility management, and load distribution.

[0032] A unit node that performs each function provided by a 5G network system can be defined as an NF (or NF entity or NF node). For example, each NF may include at least one of an access and mobility management function (AMF) that manages access and mobility of a user equipment (UE) to an access network (AN), a session management function (SMF) that performs session-related management, a user plane function (UPF) that manages a user data plane, or a network slice selection function (NSSF) that selects a network slice instance available to the UE.

[0033] As mobile communication systems have developed as described above, wireless communication systems have become more complex and capable of providing a variety of services. On the other hand, as the number of wireless communication system devices used has increased, the need for a function to efficiently utilize the energy consumed by many wireless communication system devices without compromising the quality of service for users has arisen.

[0034] The present disclosure defines a method and device for controlling data transmission in a wireless communication system, taking into account energy efficiency of the network and reduction of energy consumption.

[0035] The technical problems to be achieved in the embodiments of the present disclosure are not limited to the technical problems mentioned above, and other technical problems not mentioned will be clearly understood by a person having ordinary skill in the technical field to which the present invention pertains from the description below.

[0036] FIG. 1 is a diagram illustrating a wireless communication network including a network data collection and analysis function (NWDAF) according to one embodiment of the present disclosure.

[0037] Referring to FIG. 1, an NWDAF (105) according to an embodiment can collect network data from at least one source NF in various ways. For example, at least one source NF that is a data collection target of the NWDAF (105) may include NFs within a 5G core network such as an AMF (110), an SMF (115), an UPF (130, 135), an I-UPF (125), an AF (Application Function) for efficient service provision, a network exposure function (NEF), and / or an OAM (Operation, Administration, and Maintenance).

[0038] According to one embodiment, the AMF (110) is connected (or, connected) to a terminal (100) and a radio access network (RAN) (120), and the UPF (130, 135) and / or the I-UPF (125) can connect user traffic of the terminal (100) via the RAN (120) to at least one data network (DN) (140).

[0039] In addition, the NWDAF (105) can provide analysis of network data collected from the network or externally to at least one demand NF. The NWDAF (105) can collect and analyze the load level of a network slice instance and provide it to the NSSF so that a specific UE can use it for selection. A service-based interface defined in a 5G network can be used to request analysis information or transmit analysis information including analysis results between the NFs (110, 115) and the NWDAF (105). For example, a hypertext transfer protocol (HTTP) and / or a JavaScript object notation (JSON) document can be used as a method of transmitting analysis information, but the method of transmitting analysis information of the present disclosure is not limited thereto.

[0040] For example, the collected data of NWDAF (105) may include at least one of an application identifier (Application ID) from a Point Coordination Function (PCF), internet protocol (IP) filter information, media / application bandwidth, a terminal identifier from an AMF (110), location information, a destination data network name (DNN) from an SMF (115), a terminal IP, a QoS flow bit rate, a Qos Flow ID (QFI), a QoS flow error rate, a QoS flow delay, or a traffic usage report from a UPF.

[0041] According to one embodiment, the NWDAF (105) may additionally collect information from an OAM, which is an entity (e.g., a network entity) that may affect the connection between a terminal and a service server, in addition to the NFs constituting the core network, and utilize the information for analysis. For example, the information additionally collected and utilized for analysis may include at least one of NF resource status, NF throughput, SLA (Service Level Agreement) information, UE status from the terminal, UE application information, UE Usage Pattern, application identifier of a service provided from AF, service experience, or traffic pattern.

[0042] FIG. 2 is a diagram illustrating a general operation of a data transmission control method considering the energy state of a network in a wireless communication system according to an embodiment of the present disclosure.

[0043] According to one embodiment, in step 201, the wireless communication system (200) may receive information on energy consumption requirements (standards) for each service provided by the service provider or for subscriber terminal(s) using the service from an Application Service Provider (ASP) (231) or an Application Function (AF) supporting the service provider to a UDM (232) or a PCF (233). For example, the UDM (232) may receive information on energy requirements for terminals from the ASP (231). For example, the PFC (233) may receive information on energy requirements for terminals from the ASP (231).

[0044] For example, information on energy consumption requirements (standards) for each service or subscriber terminal(s) may include parameters (e.g., parameters indicating preset levels) that specify whether energy is allowed to be consumed to the maximum (Max), medium (Med), or minimum (Min) levels to provide a specified service. For example, information on energy consumption requirements may indicate whether a specified service can be provided using up to the maximum energy. For example, information on energy requirements may indicate whether a specified service can be provided using up to the minimum energy. For example, information on energy requirements may indicate whether a specified service can be provided using up to the medium energy. For example, energy consumption amounts corresponding to these maximum / medium / minimum standards may be mapped to preset values ​​between the operator and the ASP. For example, information on energy consumption requirements may include parameters that indicate the amount of energy that can be consumed when providing a specified service.

[0045] For example, a parameter specifying the amount of energy allowed to provide a given service may specify the amount of energy allowed in numerical form, such as a specific hourly consumption, and / or total consumption.

[0046] According to one embodiment, the UDM (232) or PCF (233) may store requirement information received from the ASP (231) or AF to control data transmission of the terminal(s).

[0047] According to one embodiment, in step 202, the terminal (100) may perform a registration process with a wireless communication network. For example, the terminal (100) may perform a registration process with the wireless communication network through the NG-RAN (220). During the registration process, the terminal (100) may receive URSP (UE route selection policy) information (or separate parameter information defining the energy usage criteria) including energy usage criteria for each service (or for all services used by the terminal if the energy usage criteria are set for each terminal). As another example, the terminal (100) may receive URSP information including energy usage criteria for all services of the terminal (100) if the energy usage criteria are for each terminal. As another example, the terminal (100) may receive URSP information including energy usage criteria for each service and / or URSP information including energy usage criteria for all services through a separate UCU (UE Configuration Update) process or a separate control message. The terminal (100) can perform a process of selecting / setting a PDU session for transmitting data for each service by applying the received energy usage standard information. (Registration)

[0048] According to one embodiment, in step 203, the terminal (100) can apply energy usage criteria information included in the URSP (or a separate parameter therefor) to check whether there is a suitable PDU (protocol data unit) session that satisfies the energy usage criteria for transmitting data belonging to a specific service of the terminal. The terminal (100) can transmit data using a suitable PDU session that satisfies the energy usage criteria, and if there is no suitable PDU session that satisfies the energy usage criteria, the terminal (100) can determine or identify whether to perform a process of establishing a new PDU session that applies the energy usage criteria. For example, a suitable PDU session that satisfies the energy usage criteria may be referred to as a case where the amount of energy consumed when transmitting data by establishing a PDU session when the amount of energy allowed when providing a service is a first amount of energy is a second amount of energy that is less than or equal to the first amount of energy. However, this is merely an example and the present disclosure is not limited thereto. That is, if the energy consumption of the PDU session is less than the allowed energy consumption of the service, the PDU session may correspond to a suitable PDU session. (URSP or app. traffic)

[0049] In step 204, the terminal (100) may perform a procedure for changing or setting up a PDU session with the wireless communication network based on the determination in step 203. At this time, the session change request or session setup request message of the terminal (100) may include, in addition to information such as S-NSSAI (Single-Network Slice Selection Assistance Information) and / or DNN (data network name), an energy usage reference parameter (e.g., energy class) that is requested to be applied to the PDU session. In addition, the session change response or session setup response message of the terminal may include, in addition to information such as S-NSSAI and / or DNN determined by the network, an energy usage reference parameter (e.g., energy class) that is determined to be applied to the PDU session. (PDU Session Est / Mod for app. Traffic)(+energy class)

[0050] According to one embodiment, in step 205, the SMF (115) that received the request message from the terminal (100) may transmit the S-NSSAI information, DNN information, and / or energy class information received from the terminal to the PCF (233). As another example of UDM, the terminal (100) may receive policy information to be applied to the terminal or session from the PCF (233). (Policy association (+energy class))

[0051] For example, the policy information may include energy class information to be applied to the terminal (100) or PDU session. For example, the energy class information may be determined (or mapped) by the UDM (232) or the PCF (233) based on service-specific or terminal-specific energy consumption allowance requirement information and / or operator policy received and stored from the ASP (231) or the AF in step 201. For example, the energy class information may be specified in the form of a value that specifies a relative priority between each stage (e.g., class 1 > class 2 > class3 > ...) or may be expressed in the form of specifying the maximum (or minimum) allowable energy usage (e.g., class 1: max. X KWh) or the maximum energy usage rate (e.g., class 1: Y KW / sec).

[0052] For example, if energy class information is specified in order of relative priority, such as class 1, class 2, and class 3, class 1 may have a relatively higher priority than class 2 in energy usage. Class 2 may have a relatively higher priority than class 3. However, this is only an example, and class 1, class 2, and class 3 may be set to have relatively lower priorities in that order.

[0053] According to one embodiment, in step 206, the SMF (115) may include energy class, buffering required, max. (or min.) buffer size, max. (or min.) buffering time information that designates energy usage criteria in the data processing criteria information (e.g., forwarding rule, detection rule, ...) to be applied to the PDU session to be changed or established requested by the terminal (100) based on the policy information received from the PCF (233). For example, buffering required may be a parameter for designating whether to lower the transmission speed or allow (or request) delayed transmission when it is determined that the energy consumption of the transmitted data or received data from the terminal (100) to the server exceeds the energy consumption criteria in the network. For example, buffering required may indicate whether delayed transmission of data is allowed based on the energy consumption criteria. (Forwarding Rule (+energy class, buffering max.buffer / time)

[0054] For example, the max. (or min.) buffer size may be used as a value indicating the maximum (buffer) size of data allowed to be slowed down or delayed in order to limit the energy consumed during transmission of data by a terminal or service over the network when energy consumption is determined to exceed the standard based on the energy status of the wireless communication network and / or a specified energy consumption standard (e.g., a certain percentage of renewable energy consumption requirement, energy class, etc.), or indicating the minimum (buffer) size for setting the minimum delay (buffering) required before transmitting data for the purpose of slowing down or delaying the transmission. For example, the max buffer size may indicate the maximum amount of data allowed to be slowed down or delayed in order to limit the energy consumed for transmission based on the network energy status and / or a specified energy consumption standard (e.g., the maximum amount of data to be buffered). For example, the min buffer size may be a value that indicates the minimum buffer size to require each network device to buffer a minimum specified amount of data before transmitting data of the corresponding service (or terminal) in order to lower or delay the transmission speed in order to limit the energy consumed for transmission based on the network energy status and / or specified energy consumption criteria.

[0055] For example, the max. (or min.) buffer time can be used as a value to indicate the maximum (buffer) time allowed for delay (buffering) in the process of transmitting data for each terminal or service through the network by applying the network energy status and / or the specified energy consumption standard, or to indicate the minimum (buffer) time to set the minimum delay required until transmission. For example, the max buffer time can indicate the maximum buffer time allowed for delay (buffering) based on the network energy status and / or the specified energy consumption standard. For example, the min buffer time can indicate the minimum buffer time for minimum delay based on the network energy status and / or the specified energy consumption standard.

[0056] According to one embodiment, in step 207, the AMF (110) or the PCF (233) may transmit the changed energy consumption state information of the network to the SMF (115). The SMF (115) that has received the energy consumption state information may transmit new energy reference information (i.e., energy class, buffering required, max. (or min.) buffer size, and / or max. (or min.) buffering time parameters transmitted in step 206, etc.) to be applied to sessions used for each terminal or each service, and / or the changed energy consumption state information received from the AMF (110) to the UPF (130). (energy state info,)

[0057] According to one embodiment, in step 208, when requesting paging for data transmission to an idle mode terminal, the SMF (115) may perform an operation of delaying the paging request to the terminal for a certain period of time based on energy usage criteria information (e.g., energy class, buffering required, max. (or min.) buffer size, max. (or min.) buffering time, etc.) of the terminal or the corresponding service and operator setting information. For example, when the energy consumption of the network is above a certain level, the SMF (115) may delay for a certain period of time based on a time set by the operator and energy usage criteria information (e.g., energy class, buffering required, max. (or min.) buffer size, max. (or min.) buffering time, etc.) and transmit a paging request message to the AMF (110) to request waking up a terminal operating in idle mode for data transmission of a session related to a terminal or service with a low energy class of the energy usage criteria information. As another example, in order to control energy consumption per terminal for an operation of delaying a paging request for a certain period of time, the AMF (110) instead of the SMF (115) may perform an operation of delaying paging transmission to the terminal (100) based on energy usage standard information and operator setting information applied to the terminal (100).

[0058] According to one embodiment, in step 209, the terminal (100) may delay transmission of a Service Request message requesting activation of a session for requesting uplink data transmission based on energy usage criteria information (e.g., energy class, etc.) indicated from the network through step 204 or a separate process for a specific service or the entire data traffic of the terminal.

[0059] For example, instead of a terminal (100) or a terminal (100) with a low energy class being set to immediately transmit a Service Request message to request the network to activate a session that can be transmitted in order to transmit data related to a service, the terminal (100) may transmit the Service Request message by delaying a certain amount of time set by the operator for each energy class with reference to the network energy status, etc. For example, a first terminal having a first energy class may transmit a Service Request message after a first delay time corresponding to the first energy class has elapsed in order to transmit data related to a service. A second terminal having a second energy class may transmit a Service Request message after a second delay time corresponding to the second energy class has elapsed in order to transmit data related to a service. In this case, the first delay time and the second delay time may be different.

[0060] That is, by differentiating the time required to activate a session for transmitting data according to the energy class set for each terminal or PDU session, the energy consumption of the network used by the terminal or session to transmit data can be controlled.

[0061] FIG. 3a is a diagram illustrating a series of signal procedures for controlling connection and data transmission of a terminal by applying the proposed method in a wireless communication system according to an embodiment of the present disclosure.

[0062] FIG. 3b is a diagram illustrating a series of signal procedures for controlling connection and data transmission of a terminal by applying the proposed method in a wireless communication system according to an embodiment of the present disclosure.

[0063] Referring to FIGS. 3A and 3B, in step 301 according to an embodiment, the ASP (231) (or AF) may transmit request information including energy requirements to be applied to the terminal (100) or a specific service of the terminal (100) to the wireless communication network. For example, the ASP (231) may request information on energy requirements from the UDM / UDR (332). The UDM / UDR (332) may correspond to the UDM (232) of FIG. 2. (UDM Update (UE ID, App ID, Traffic Filter, QoS (quality of service), Energy Requirement))

[0064] For example, the request message can be transmitted to the UDM (or UDR) (332) that manages subscriber information of the wireless communication network. For example, the request message can be transmitted to the UDM (or UDR) (332) directly or through a network exposure function (NEF) depending on the trust relationship (or setting information) established between the ASP (231) (or AF) and the wireless communication carrier. For example, the request message can include information such as an identifier of the terminal, an identifier of the application transmitting the request message, a traffic filter for distinguishing data traffic transmitted through the terminal (100) or a specific service, quality of service (QoS) required for data transmission, and / or energy requirements that can be consumed by the network (or the entire system) to support transmission of data of the terminal (100) and the service. For example, the wireless communication network that received the request message can, in response thereto, include information on quality of service and energy consumption that can be accepted by the wireless communication system in the response message and transmit the response message.

[0065] According to one embodiment, in step 302, the UDM (or UDR) (332) may store information such as an identifier of the terminal between the ASP (231) (or AF) and the wireless communication system through step 301, an identifier of the application transmitting the request message, a quality of service (QoS) required for data transmission to be applied to data traffic specified by a Traffic Filter for distinguishing data traffic transmitted through the terminal (100) or a specific service, and / or an amount of energy required to be consumed by the network (or the entire system) to support transmission of data of the terminal (100) and the service, together with the identifier of the terminal, the identifier of the application transmitting the request message, and Traffic Filter information for distinguishing data traffic transmitted through the terminal (101) or a specific service. (Store the information)

[0066] For example, the storage information may include QoS and Energy Class information to be applied to data traffic in a wireless communication system in addition to the energy requirements that can be consumed by the network (or the entire system) to support transmission of data of the terminal (100) and the service, and the service quality (QoS) agreed upon between the UDM (or UDR) (332) and the ASP (231) (or AF) for data traffic transmitted through the terminal (100) or a specific service.

[0067] For example, the value for specifying the Energy Class can be specified in the form of a value that specifies the relative priority between each Energy Class (e.g., class 1 > class 2 > class3 > ...) according to the operator's policy or setting. For example, the value for specifying the Energy Class can be expressed in the form of specifying the maximum (or minimum) allowable energy usage (e.g., class 1: max. X KWh) or the maximum energy consumption rate (e.g., class 1: Y KW / sec). As another example, when determining the value for specifying the Energy Class, a standardized value can be used, or various other formats can be used. As another example, the Energy Class can be specified in various units. For example, the Energy Class can be specified in different values ​​based on the operator's policy, such as per terminal, per network slice used by the terminal or a specific application (or service) of the terminal, per specific PDU session determined by a combination of slices and DNNs, and / or per QoS Flow.

[0068] According to one embodiment, in step 303, the ASP (231) may transmit request information including energy requirements to be applied to the terminal (100) or a specific service of the terminal (100) to the wireless communication network. For example, the request message may be transmitted to the PCF (233) that manages the policy information of the terminal in the wireless communication network. For example, the request message may be transmitted to the PCF (233) directly or through the NEF according to the trust relationship (or setting information) established between the ASP (231) (or AF) and the wireless communication service provider. (AF session creation (UE ID, App ID, Traffic Filter, QoS, Energy Requirement)

[0069] For example, the request message may include information such as an identifier of the terminal, an identifier of the application transmitting the request message, a traffic filter for distinguishing data traffic transmitted through the terminal (100) or a specific service, quality of service (QoS) required when transmitting data, and / or energy requirements that may be consumed by the network (or the entire system) to support transmission of data of the terminal (100) and the service. For example, the PCF (233) of the wireless communication network that has received the request message may, in response to the request message, include information on quality of service and energy consumption that can be accepted by the wireless communication system in the response message and transmit the response message.

[0070] According to one embodiment, in step 304, the PCF (233) may store information such as an identifier of the terminal (100), an identifier of the application transmitting the request message, a quality of service (QoS) required for data transmission to be applied to data traffic specified by a Traffic Filter for distinguishing data traffic transmitted through the terminal (100) or a specific service, and / or an amount of energy required to be consumed by the network (or the entire system) to support transmission of data of the terminal (100) and the service, together with the identifier of the terminal, the identifier of the application transmitting the request message, and Traffic Filter information for distinguishing data traffic transmitted through the terminal (100) or a specific service, through step 302. (store the information)

[0071] For example, the storage information may include QoS and Energy Class information to be applied to data traffic in a wireless communication system in addition to the energy requirements that can be consumed by the network (or the entire system) to support transmission of data of the terminal (100) and the service, and the quality of service (QoS) agreed upon between the PCF (233) and the ASP (231) (or AF) for data traffic transmitted through the terminal (10) or a specific service.

[0072] For example, the value for specifying the Energy Class can be specified in the form of a value that specifies the relative priority between each Energy Class (e.g., class 1 > class 2 > class3 > ...) by the business operator policy or setting. For example, the value for specifying the Energy Class can be expressed in the form of specifying the maximum (or minimum) allowable energy usage (e.g., class 1: max. X KWh) or the maximum energy consumption rate (class 1: Y KW / sec). In another example, the value for specifying the Energy Class can be used as a standard value, or various other formats can be used.

[0073] Additionally, Energy Class can be assigned different values ​​based on the operator's policy, such as per terminal unit, per network slice unit used by terminal or specific application (or service) of terminal, per specific PDU session unit determined by combination of slice and DNN, or per QoS Flow unit.

[0074] According to one embodiment, in step 305, the terminal (100) may transmit a registration request message to the AMF (110) of the wireless communication system, and the registration request message may include an identifier of the terminal. (Registration Request (UE ID))

[0075] According to one embodiment, in step 306, the AMF (110) that has received the registration request message of the terminal may perform a process of requesting and acquiring the subscription information of the terminal (100) from the UDM (332), extract the Energy Class information included in the subscription information, and include it in a registration response message and transmit it to the terminal (100). (Registration Response (Energy class))

[0076] For example, Energy Class information may be included as a parameter in a registration response message or as part of a URSP. As another example, Energy Class information may be transmitted to the terminal (100) through a separate control message after completing the registration process. For example, when Energy Class information is included in a URSP, the Energy Class information may be used together with other parameters (e.g., S-NSSAI and DNN, Access Type, RAT Type, etc.) that configure the URSP used in the process of selecting a PDU session used to transmit traffic generated from the terminal (100) or a specific service (or in the process of determining whether a PDU session should be created if it has not yet been created). Energy Class information may be used together with other parameters to control the terminal (100) to select or create a PDU session that matches a specified Energy Class for a specified traffic.

[0077] According to one embodiment, in step 307, the terminal (100) may transmit a PDU session creation or modification request message to the SMF (115) through the AMF (110) of the wireless communication system. For example, the request message may include S-NSSAI, DNN, and / or Energy Class information in addition to the PDU session identifier. For example, the Energy Class included in the request message may be an Energy Class value transmitted to the terminal (100) through the process of step 306. For example, the Energy Class included in the request message may be a value designated to be used per terminal, per network slice, per PDU session, or per QoS Flow according to the operator's policy and settings, etc., and may be referenced as the Energy Class requested by the terminal to be applied to the currently requested PDU session. (PDU Session Est, / Mod Request (PDU Session ID, . . ., energy class)

[0078] According to one embodiment, in step 308, the SMF (115) may transmit a message (or, a policy provision request message) requesting the PCF (233) to provide policy information to be applied to the PDU session. For example, the request message may include an Energy Class value requested by the terminal in addition to the PDU session identifier. (Policy Association Request (PDU session ID, . . ., energy class)

[0079] According to one embodiment, in step 309, the PCF (233) may transmit a response message including policy information to be applied to the PDU session to the SMF (115). For example, the response message may include an Energy Class value that the PCF (233) has determined to be applied to the PDU session in addition to the PDU session identifier. For example, the PCF (233) may determine or identify an Energy Class to be applied to the PDU session based on energy consumption requirement information to be applied to the traffic of the terminal (100) or service received and stored from the ASP (231) (or AF) in step 304, energy consumption standard information generated by reflecting the operator policy, and / or the operator policy. (Policy Association Response)

[0080] According to one embodiment, in step 310, the SMF (115) may determine or identify detailed parameters for controlling data traffic transmitted and / or received through the PDU session based on policy information to be applied to the PDU session received from the PCF (233), and may transmit the detailed parameters to the UPF (130). For example, the message may include energy consumption criteria information in addition to the PDU session identifier. For example, the energy consumption criteria information may include one or more parameters of Energy Class, buffering required, max (or min) buffering size, or max (or min) buffering time. (N4 Session Est. / Mod (PDU session ID, . . ., energy class, max, buffering size, max. buffering time)

[0081] For example, buffering required may be a parameter that specifies whether delayed transmission of data transmitted from a terminal (or received from a server to a terminal) is permitted (or required) based on energy consumption criteria in the network. For example, buffering required may indicate whether delayed transmission of data is permitted based on energy consumption criteria.

[0082] For example, the max. (or min.) buffer size can be used as a value to specify the maximum (buffer) size that is allowed to delay (buffer) data transmitted through the network for each terminal or service by applying the network energy status and / or the specified energy consumption criteria, or to specify the minimum (buffer) size to set the minimum delay required until transmission. For example, the max buffer size can indicate the maximum buffer size that is allowed to delay based on the network energy status and / or the specified energy consumption criteria. For example, the min buffer size can indicate the minimum buffer size for the minimum delay based on the network energy status and / or the specified energy consumption criteria.

[0083] For example, the max. (or min.) buffer time can be used as a value to specify the maximum (buffer) time allowed for delay (buffering) in the process of transmitting data for each terminal or service through the network by applying the network energy status and / or the specified energy consumption standard, or to specify the minimum (buffer) time to set the minimum delay required until transmission. For example, the max buffer time can indicate the maximum buffer time allowed for delay (buffering) based on the network energy status and / or the specified energy consumption standard. For example, the min buffer time can indicate the minimum buffer time for the minimum delay based on the network energy status and / or the specified energy consumption standard.

[0084] According to one embodiment, in step 311, the SMF (115) may perform a process of subscribing to an energy state reporting service of the AMF (110) in order to receive reports on energy state changes of network functions (or resources) related to the PDU session of the terminal. For example, in the process of subscribing to the energy state reporting service, a subscription request message transmitted from the SMF (115) to the AMF (110) may include information such as a terminal identifier, a PDU session identifier, and / or S-NSSAI. (Energy state subscription (UE ID, PDU Session ID, S-NSSAI, . . . )

[0085] According to one embodiment, in step 312, the AMF (110) may transmit information that the network energy state has changed to the SMF (115). For example, a message reporting the changed state (or a message indicating that the energy state has changed) may include network energy state parameters for specifying the changed network energy state in addition to information such as the terminal identifier, PDU session identifier, and / or S-NSSAI. (Energy state subscription (UE ID, PDU Session ID, S-NSSAI, . . . )

[0086] According to one embodiment, in step 313, the SMF (115) may generate new energy consumption criteria information based on network energy status information received from the AMF (110) and / or Energy Class information, operator policy, etc. included in policy information specified by the PCF (233) for the PDU session, and transmit the new energy consumption criteria information to the UPF (130). The UPF (130) that has received the new energy consumption criteria information may control transmission and / or reception of data by applying the newly received energy consumption criteria information to the PDU session (or QoS Flow) of the terminal. (N4 Session Mod. (PDU Session ID, . . ., energy class, max. buffering size, max. buffering time)

[0087] According to one embodiment, in step 314, the UPF (130) may receive downlink data traffic to be transmitted to a terminal (100) or PDU session operating in active or idle mode from an application server, etc. (DL (downlink) data traffic).

[0088] According to one embodiment, in step 315, the UPF (130) may apply an energy consumption criterion designated to be applied to the PDU session from the SMF (115) through step 313, etc., in order to transmit the received downlink data traffic to the terminal. For example, instead of directly transmitting the data transmitted from the application to the terminal (100), the UPF (130) may transmit the data to the terminal (100) after delaying for a certain period of time (or waiting until the buffer is full by a certain amount) by applying the max. buffering time (or max. buffering size) parameter set by the SMF (115). For example, the UPF (130) may perform a process of delaying data transmission until the network energy status value improves to be equal to or greater than the Energy Class value by applying the Energy Class set by the SMF (115) and the network energy status information transmitted by the SMF (115). For example, the network energy status value improving beyond the energy class value can be practically referred to as the case where the energy consumed by the network becomes less than or equal to the energy value allowed by the network. (Buffer data until max. buffer size / time)

[0089] According to one embodiment, in step 316, the UPF (130) may perform a process of delaying the reception of downlink data traffic for the idle mode terminal (or a specific PDU session of the terminal) to the SMF (115) after delaying the reception of traffic for a predetermined period of time or until the network energy status improves to a reference value or higher through the process of step 315 for the traffic received by the idle mode terminal. For example, the improvement of the network energy status to a reference value or higher may be referred to as a case where the energy value consumed in the network is substantially less than or equal to the energy value allowed to the network. (Report data arrival)

[0090] According to one embodiment, in step 317, the SMF (115) may determine whether to request paging for an idle mode terminal based on network energy state information, the Energy Class of the terminal (or PDU session), and / or operator policy. For example, if the network energy state is a state in which energy is being consumed excessively and the Energy Class of the terminal (or PDU session) is a low value, the SMF (115) may suspend paging for the idle terminal. For example, in the case of a low energy class (e.g., Class 2), it may have a relatively lower priority in terms of energy consumption compared to a case of a high energy class (e.g., Class 1), and the SMF (115) may suspend paging for the idle terminal by considering the energy state of the network, etc. (Decide paging request based on energy state and energy class)

[0091] According to one embodiment, in step 318, the SMF (115) may transmit a message to the AMF (110) requesting paging for a terminal (100) operating in idle mode. For example, the request message may include Energy Class information in addition to the terminal identifier and / or PDU session identifier. (Paging request (UE ID, PDU Session ID, energy class))

[0092] According to one embodiment, in step 319, the AMF (110) that receives a paging request for the terminal (100) from the SMF (115) may determine or identify whether to immediately start or delay paging for the idle mode terminal based on network energy status information, the Energy Class of the terminal (100) (or PDU session), and / or operator policy. The AMF (110) may delay a predetermined period of time according to the determination and then start a paging process for the terminal and request the NG-RAN (220) to transmit a paging signal for the terminal (100). For example, the paging request message may include Energy Class information in addition to the terminal identifier and / or the PDU session identifier. (Paging request (UE ID, PDU Session ID, energy class))

[0093] According to one embodiment, in step 320, the NG-RAN (220) that receives a paging request for the terminal (100) from the AMF (110) may determine whether to immediately start or delay paging for the idle mode terminal, or to set a long or short paging cycle, based on network energy status information, the Energy Class of the terminal (100) (or PDU session), and / or operator policy, and may apply the determination to the paging signal transmission. (Send paging when threshold meets)

[0094] FIG. 4 illustrates an example of a functional structure of a base station according to an embodiment of the present disclosure.

[0095] Referring to FIG. 4, the configuration illustrated in FIG. 4 according to one embodiment can be understood as the configuration of the RAN (120) of FIG. 1. Terms such as “… unit”, “… unit”, etc. used hereinafter mean a unit that processes at least one function or operation, which can be implemented by hardware, software, or a combination of hardware and software.

[0096] According to one embodiment, the base station includes a communication unit (405), a storage unit (410), and / or a control unit (415).

[0097] The communication unit (405) performs functions for transmitting and receiving signals via a wireless channel. For example, the communication unit (405) performs a conversion function between a baseband signal and a bit stream according to the physical layer specifications of the system. For example, when transmitting data, the communication unit (405) generates complex symbols by encoding and modulating a transmission bit stream. In addition, when receiving data, the communication unit (405) restores a reception bit stream by demodulating and decoding the baseband signal. In addition, the communication unit (405) upconverts a baseband signal into an RF band signal and then transmits it through an antenna, and downconverts an RF band signal received through the antenna into a baseband signal. For example, the communication unit (405) may include a transmission filter, a reception filter, an amplifier, a mixer, an oscillator, a digital-to-analog converter (DAC), an analog-to-digital converter (ADC), etc.

[0098] In addition, the communication unit (405) may include a plurality of transmit / receive paths. Furthermore, the communication unit (405) may include at least one antenna array composed of a plurality of antenna elements. In terms of hardware, the communication unit (405) may be composed of digital circuits and analog circuits (e.g., radio frequency integrated circuits (RFIC)). Here, the digital circuits and analog circuits may be implemented in a single package. In addition, the communication unit (405) may include a plurality of RF chains. Furthermore, the communication unit (405) may perform beamforming.

[0099] The communication unit (405) transmits and receives signals as described above. Accordingly, all or part of the communication unit (405) may be referred to as a "transmitter," a "receiver," or a "transmitting and receiving unit." Furthermore, in the following description, transmission and reception performed via a wireless channel are used to mean that the communication unit (405) performs the processing described above.

[0100] The storage unit (410) stores data such as basic programs, application programs, and setting information for the operation of the base station. The storage unit (410) may be composed of volatile memory, non-volatile memory, or a combination of volatile and non-volatile memory. In addition, the storage unit (410) provides stored data upon request from the control unit (415).

[0101] The control unit (415) controls the overall operations of the base station. For example, the control unit (415) transmits and receives signals through the communication unit (405). In addition, the control unit (415) records and reads data in the storage unit (410). In addition, the control unit (415) can perform the functions of the protocol stack required by the communication standard. To this end, the control unit (415) may include at least one processor or microprocessor, or may be a part of a processor. In addition, a part of the communication unit (405) and the control unit (415) may be referred to as a CP (communication processor). According to various embodiments, the control unit (415) may control to perform synchronization using a wireless communication network. For example, the control unit (415) may control the base station to perform operations according to the various embodiments described above.

[0102] FIG. 5 illustrates an example of the functional structure of a terminal according to an embodiment of the present disclosure. The configuration illustrated in FIG. 5 may be understood as the configuration of the terminal (201) of FIG. 2 or the UE (100) of FIG. 1. Terms such as "unit" and "unit" used hereinafter refer to a unit that processes at least one function or operation, which may be implemented by hardware, software, or a combination of hardware and software.

[0103] Referring to FIG. 5, the terminal includes a communication unit (505), a storage unit (510), and / or a control unit (515).

[0104] The communication unit (505) performs functions for transmitting and receiving signals via a wireless channel. For example, the communication unit (505) performs a conversion function between a baseband signal and a bit stream according to the physical layer specifications of the system. For example, when transmitting data, the communication unit (505) generates complex symbols by encoding and modulating a transmission bit stream. In addition, when receiving data, the communication unit (505) restores a reception bit stream by demodulating and decoding the baseband signal. In addition, the communication unit (505) upconverts a baseband signal into an RF band signal and then transmits it through an antenna, and downconverts an RF band signal received through the antenna into a baseband signal. For example, the communication unit (505) may include a transmission filter, a reception filter, an amplifier, a mixer, an oscillator, a digital analog converter (DAC), an analog-to-digital converter (ADC), etc.

[0105] In addition, the communication unit (505) may include a plurality of transmit / receive paths. Furthermore, the communication unit (505) may include at least one antenna array composed of a plurality of antenna elements. In terms of hardware, the communication unit (505) may be composed of digital circuits and analog circuits (e.g., a radio frequency integrated circuit (RFIC)). Here, the digital circuits and analog circuits may be implemented in a single package. In addition, the communication unit (505) may include a plurality of RF chains. Furthermore, the communication unit (505) may perform beamforming.

[0106] The communication unit (505) transmits and receives signals as described above. Accordingly, all or part of the communication unit (505) may be referred to as a "transmitter," a "receiver," or a "transmitting and receiving unit." Furthermore, in the following description, transmission and reception performed via a wireless channel are used to mean that the communication unit (505) performs the processing described above.

[0107] The storage unit (510) stores data such as basic programs, application programs, and setting information for the operation of the terminal. The storage unit (510) may be composed of volatile memory, non-volatile memory, or a combination of volatile and non-volatile memory. In addition, the storage unit (510) provides stored data upon request from the control unit (515).

[0108] The control unit (515) controls the overall operations of the terminal. For example, the control unit (515) transmits and receives signals through the communication unit (505). In addition, the control unit (515) records and reads data in the storage unit (510). In addition, the control unit (515) can perform the functions of the protocol stack required by the communication standard. To this end, the control unit (515) may include at least one processor or microprocessor, or may be a part of a processor. In addition, a part of the communication unit (505) and the control unit (515) may be referred to as a CP (communication processor). According to various embodiments, the control unit (515) may control to perform synchronization using a wireless communication network. For example, the control unit (515) may control the terminal to perform operations according to various embodiments described below.

[0109] FIG. 6 illustrates an example of a functional structure of a core network object according to an embodiment of the present disclosure. It illustrates the configuration of a core network object in a wireless communication system according to various embodiments of the present disclosure. The configuration illustrated in FIG. 6 can be understood as a configuration of a device having the function of at least one of the network entities including the SMF (115), the AMF (110), and the UPF (130) of FIG. 1. Terms such as “… unit” and “… device” used hereinafter mean a unit that processes at least one function or operation, and this can be implemented by hardware, software, or a combination of hardware and software.

[0110] Referring to FIG. 6, the core network object may include a communication unit (640), a storage unit (645), and / or a control unit (650).

[0111] The communication unit (640) may provide an interface for performing communication with other devices within the network. That is, the communication unit (640) converts a bit string transmitted from the core network object to another device into a physical signal, and converts a physical signal received from another device into a bit string. That is, the communication unit (640) may transmit and receive signals. Accordingly, the communication unit (640) may be referred to as a modem, a transmitter, a receiver, or a transceiver. In this case, the communication unit (640) enables the core network object to communicate with other devices or systems via a backhaul connection (e.g., a wired backhaul or a wireless backhaul) or via a network.

[0112] The storage unit (645) stores data such as basic programs, application programs, and configuration information for the operation of the core network object. The storage unit (645) may be composed of volatile memory, non-volatile memory, or a combination of volatile and non-volatile memory. In addition, the storage unit (645) provides the stored data upon request from the control unit (650).

[0113] The control unit (650) controls the overall operations of the core network object. For example, the control unit (650) transmits and receives signals through the communication unit (640). In addition, the control unit (650) can record and read data in the storage unit (645). For this purpose, the control unit (650) may include at least one processor. According to various embodiments of the present disclosure, the control unit (650) may control synchronization using a wireless communication network. For example, the control unit (650) may control the core network object to perform operations according to various embodiments described below.

[0114] In the specific embodiments of the present disclosure described above, components included in the present disclosure are expressed singularly or plurally, depending on the specific embodiment presented. However, the singular or plural expressions are selected to suit the presented situation for convenience of explanation, and the present disclosure is not limited to singular or plural components. Components expressed in plural may be composed of singular elements, or components expressed in singular may be composed of plural elements.

[0115] Meanwhile, the embodiments of the present disclosure disclosed in this specification and drawings are merely specific examples to easily explain the technical contents of the present disclosure and to help understand the present disclosure, and are not intended to limit the scope of the present disclosure. In other words, it will be apparent to those skilled in the art that other modifications based on the technical idea of ​​the present disclosure are possible. In addition, the respective embodiments may be combined and operated with each other as needed. For example, parts of one embodiment of the present disclosure and another embodiment may be combined with each other to operate a base station and a terminal. In addition, the embodiments of the present disclosure are applicable to other communication systems, and other modifications based on the technical idea of ​​the embodiments may also be implemented.

Claims

1. A method performed by an SMF (session management function) entity in a mobile communication system, Steps for receiving a request for a PDU (protocol data unit) session for a service associated with a UE (user equipment) from an AMF (access and mobility management function) entity: A step of transmitting a first message requesting information on an energy class for the service to a PCF (policy control function) entity based on the above request; receiving, from the PCF entity, a second message including information about the energy class in response to the first message; and A method comprising the step of identifying whether a paging signal to the UE is to be transmitted based on the information about the energy class and the information about the network energy status associated with the PDU session.

2. In claim 1, The information about the above network energy status includes information about the energy value consumed in the network including the SMF entity, The information about the energy class includes information about the priority of energy consumption for the PDU session, A method wherein the information about the energy class is based on the UE or the PDU session.

3. In claim 2, A method in which the transmission of the paging signal to the UE is delayed for a specified time if the energy value consumed in the network is greater than a threshold allowed to the network or the priority is lower than a specified priority.

4. In claim 3, A method wherein the specified time is based on at least one of the information about the network energy status or the information about the energy class.

5. In a method performed by a PCF (policy control function) entity in a mobile communication system, A step of receiving a first message requesting information on an energy class for a service associated with a UE (user equipment) from a session management function (SMF) entity; and comprising the step of transmitting, to the SMF entity, a second message including the information about the energy class in response to the first message; A method wherein whether a paging signal for the UE is transmitted with a delay is based on the information about the energy class and the information about the network energy status associated with a protocol data unit (PDU) session for the service.

6. In claim 5, The information about the above network energy status includes information about the energy value consumed in the network including the SMF entity, The information about the energy class includes information about the priority of energy consumption for the PDU session, A method wherein the information about the energy class is based on the UE or the PDU session.

7. In claim 6, A method in which the transmission of the paging signal to the UE is delayed for a specified time if the energy value consumed in the network is greater than a threshold allowed to the network or the priority is lower than a specified priority.

8. In claim 7, A method wherein the specified time is based on at least one of the information about the network energy status or the information about the energy class.

9. In the SMF (session management function) entity in the mobile communication system, transceiver; and A controller coupled with the above transceiver, The above controller: Receives a request for a PDU (protocol data unit) session for a service associated with a UE (user equipment) from an AMF (access and mobility management function) entity, Based on the above request, a first message is sent to the PCF (policy control function) entity requesting information on an energy class for the service, From the PCF entity, a second message is received including information about the energy class in response to the first message, An SMF entity configured to identify whether a paging signal to the UE is to be transmitted based on the information about the energy class and the network energy status associated with the PDU session.

10. In claim 9, The information about the above network energy status includes information about the energy value consumed in the network including the SMF entity, The information about the energy class includes information about the priority of energy consumption for the PDU session, The information about the above energy class is provided to the SMF entity based on the UE or the PDU session.

11. In claim 10, An SMF entity, wherein the transmission of the paging signal to the UE is delayed by a specified time if the energy value consumed in the network is greater than a threshold allowed to the network or the priority is lower than a specified priority.

12. In claim 11, The SMF entity wherein the above specified time is based on at least one of the information about the network energy status or the information about the energy class.

13. In a PCF (policy control function) entity in a mobile communication system, transceiver; and A controller coupled with the above transceiver, The above controller: Receive a first message from a session management function (SMF) entity requesting information about an energy class for a service associated with a user equipment (UE), is configured to transmit to the SMF entity a second message including the information about the energy class in response to the first message; A PCF entity that determines whether a paging signal for the UE is to be transmitted with a delay based on the information about the energy class and the information about the network energy status associated with the PDU (protocol data unit) session for the service.

14. In claim 13, The information about the above network energy status includes information about the energy value consumed in the network including the SMF entity, The information about the energy class includes information about the priority of energy consumption for the PDU session, The information about the above energy class is provided to the PCF entity based on the UE or the PDU session.

15. In claim 14, A PCF entity, wherein if the energy value consumed in the network is greater than a threshold allowed for the network or the priority is lower than a specified priority, transmission of the paging signal to the UE is delayed by a specified time.

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