Cell reselection method and user equipment

The cell reselection method and user equipment prioritize frequencies based on network slice groups and handle equal priorities to ensure efficient cell selection for desired network slices, addressing inefficiencies in existing systems and optimizing network resource utilization.

JP7762262B2Active Publication Date: 2025-10-29KYOCERA CORP
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Patent Information

Application Number
JP2024099089
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-10-20
Filing Date
2024-06-19
Publication Date
2025-10-29
Estimated Expiration
2042-10-18

AI Technical Summary

Technical Problem

Existing mobile communication systems lack a specific method for slice-specific cell reselection, which is crucial for network slicing, leading to inefficiencies in selecting cells that support desired network slices.

Method used

A cell reselection method and user equipment that prioritize frequencies based on network slice groups and assign slice-specific frequency priorities, handling cases where multiple slices have the same priority by using representative values or ensuring unique priorities, and considering pending PDU sessions.

Benefits of technology

Enhances the efficiency of cell reselection to ensure that user equipment preferentially camps on cells supporting intended network slices, optimizing network resource utilization and service quality.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a method for, in user equipment in a mobile communication system, determining the order of priority of a corresponding frequency based on frequency priority indicated by slice frequency information, and re-selecting a candidate cell satisfying a predetermined quality standard within a selected frequency selected according to the order of priority.SOLUTION: User equipment (UE 100) receives, from a network 50, slice frequency information indicating the correspondence relationship between a network slice group, a frequency, and frequency priority, determines, for a selected network slice group selected by the UE 100 according to slice group priority, the order of priority of a corresponding frequency based on the frequency priority indicated by the slice frequency information, and re-selects a candidate cell satisfying a predetermined quality standard within a selected frequency selected by the user equipment.SELECTED DRAWING: Figure 9
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Description

[Technical Field]

[0001] The present disclosure relates to a cell reselection method and a user equipment for use in a mobile communication system. [Background technology]

[0002] Network slicing is defined in the specifications of 3GPP (Third Generation Partnership Project) (registered trademark; the same applies hereinafter), a standardization project for mobile communication systems (see, for example, Non-Patent Document 1). Network slicing is a technology that configures network slices, which are virtual networks, by logically dividing a physical network constructed by a telecommunications carrier. [Prior art documents] [Non-patent literature]

[0003] [Non-Patent Document 1] 3GPP TS 38.300 V16.6.0 (2021-06) Summary of the Invention

[0004] A cell reselection method according to a first aspect is a method executed by a user equipment in a mobile communication system. The cell reselection method includes receiving slice frequency information from a network indicating a correspondence relationship between network slice groups, frequencies, and frequency priorities, determining a priority of a corresponding frequency for a selected network slice group selected by the user equipment according to the slice group priority based on the frequency priority indicated by the slice frequency information, and reselecting a candidate cell that satisfies a predetermined quality criterion within the selected frequency selected by the user equipment according to the determined priority. When multiple network slice groups have the same slice group priority, determining the priority of the corresponding frequency for each of the multiple network slice groups includes determining the priority of the corresponding frequency based on the maximum value of the frequency priorities of the multiple network slice groups.

[0005] A user equipment according to a second aspect includes a processor. The processor executes the following processes: receiving slice frequency information indicating a correspondence relationship between network slice groups, frequencies, and frequency priorities from a network; determining a priority of a corresponding frequency for a selected network slice group selected by the user equipment according to slice group priority based on the frequency priority indicated by the slice frequency information; and reselecting a candidate cell that satisfies a predetermined quality criterion within the selected frequency selected by the user equipment according to the determined priority. When multiple network slice groups have the same slice group priority, the process of determining the priority includes, for each frequency, determining a priority of a corresponding frequency based on the maximum value of the frequency priorities of each of the multiple network slice groups.

[0006] A cell reselection method according to a third aspect is a method executed by a user equipment in a mobile communication system. The cell reselection method includes the steps of: assigning a slice priority to each of one or more network slices in a non-access stratum (NAS); and notifying an access stratum (AS) of slice information including the assigned slice priorities from the NAS. The assigning step includes assigning different slice priorities to the two or more network slices so that the same slice priority is not assigned to two or more network slices.

[0007] A cell reselection method according to a fourth aspect is a method executed by a user equipment in a mobile communication system. The cell reselection method includes the steps of: assigning a slice priority to each of one or more network slices in a non-access stratum (NAS); and notifying an access stratum (AS) of slice information including the assigned slice priority from the NAS. The assigning step includes identifying a network slice having a pending protocol data unit (PDU) session. The notifying step includes notifying the AS of information based on the identified network slice. [Brief explanation of the drawings]

[0008] [Figure 1] 1 is a diagram illustrating a configuration of a mobile communication system according to an embodiment. [Figure 2] 1 is a diagram illustrating a configuration of a UE (user equipment) according to an embodiment. [Figure 3] A diagram showing the configuration of a gNB (base station) according to an embodiment. [Figure 4] FIG. 10 is a diagram showing the configuration of a protocol stack of a radio interface of a user plane that handles data. [Figure 5] FIG. 1 is a diagram showing the configuration of a protocol stack of a radio interface of a control plane that handles signaling (control signals). [Figure 6]FIG. 10 is a diagram for explaining an overview of a cell reselection procedure. [Figure 7] FIG. 1 illustrates a general flow diagram of a general cell reselection procedure. [Figure 8] FIG. 1 illustrates an example of network slicing. [Figure 9] FIG. 10 shows an overview of a slice-specific cell reselection procedure. [Figure 10] FIG. 10 is a diagram showing an example of slice frequency information. [Figure 11]

[0033] Figure 1 illustrates the basic flow of a slice-specific cell reselection procedure. [Figure 12] FIG. 10 is a diagram illustrating a first modification of a slice-specific cell reselection procedure. [Figure 13] A figure showing the flow of a first modified example of a slice-specific cell reselection procedure. [Figure 14] A figure showing the flow of a second variant of the slice-specific cell reselection procedure. [Figure 15] A figure showing the flow of a third modified example of a slice-specific cell reselection procedure. [Figure 16] FIG. 10 is a diagram illustrating a fourth modification of the slice-specific cell reselection procedure. [Figure 17] A figure showing the flow of a fourth modified example of a slice-specific cell reselection procedure. DETAILED DESCRIPTION OF THE INVENTION

[0009] A user equipment in a radio resource control (RRC) idle state or an RRC inactive state performs a cell reselection procedure. 3GPP is considering a slice-specific cell reselection, which is a cell reselection procedure that depends on the network slice.

[0010] In such slice-specific cell reselection, it is assumed that the user equipment preferentially reselects (i.e., camps on) a cell belonging to a frequency with a high frequency priority associated with the network slice (intended slice) that the user equipment desires to use. However, the specific method of slice-specific cell reselection has not yet been determined.

[0011] The present disclosure relates to a cell reselection method that facilitates slice-specific cell reselection.

[0012] A mobile communication system according to an embodiment will be described with reference to the drawings. In the description of the drawings, the same or similar parts are denoted by the same or similar reference numerals.

[0013] (Configuration of a mobile communication system) 1 is a diagram showing the configuration of a mobile communication system according to an embodiment. The mobile communication system 1 conforms to the 3GPP standard 5th Generation System (5GS). In the following description, 5GS is used as an example, but the mobile communication system may be at least partially applied to an LTE (Long Term Evolution) system or at least partially applied to a 6th Generation (6G) system.

[0014] The mobile communication system 1 includes a user equipment (UE) 100, a 5G radio access network (NG-RAN) 10, and a 5G core network (5GC) 20. Hereinafter, the NG-RAN 10 may be simply referred to as the RAN 10. The 5GC 20 may be simply referred to as the core network (CN) 20.

[0015] The UE 100 is a mobile wireless communication device. The UE 100 may be any device that is used by a user, and may be, for example, a mobile phone terminal (including a smartphone), a tablet terminal, a notebook PC, a communication module (including a communication card or a chipset), a sensor or a device provided in a sensor, a vehicle or a device provided in a vehicle (Vehicle UE), or an aircraft or a device provided in an aircraft (Aerial UE).

[0016] The NG-RAN 10 includes a base station (called "gNB" in the 5G system) 200. The gNBs 200 are connected to each other via an Xn interface, which is an interface between base stations. The gNB 200 manages one or more cells. The gNB 200 performs wireless communication with a UE 100 that has established a connection with its own cell. The gNB 200 has a radio resource management (RRM) function, a routing function for user data (hereinafter simply referred to as "data"), a measurement control function for mobility control and scheduling, etc. The term "cell" is used to indicate the smallest unit of a wireless communication area. The term "cell" is also used to indicate a function or resource that performs wireless communication with a UE 100. One cell belongs to one carrier frequency (hereinafter simply referred to as "frequency").

[0017] In addition, gNBs can also connect to the Evolved Packet Core (EPC), which is the LTE core network. LTE base stations can also connect to 5GC. LTE base stations and gNBs can also be connected via a base station-to-base station interface.

[0018] The 5GC20 includes an Access and Mobility Management Function (AMF) and a User Plane Function (UPF) 300. The AMF performs various mobility controls for the UE 100. The AMF manages the mobility of the UE 100 by communicating with the UE 100 using NAS (Non-Access Stratum) signaling. The UPF controls data forwarding. The AMF and UPF are connected to the gNB 200 via an NG interface, which is an interface between a base station and a core network.

[0019] 2 is a diagram showing the configuration of a UE 100 (user equipment) according to the embodiment. The UE 100 includes a receiving unit 110, a transmitting unit 120, and a control unit 130. The receiving unit 110 and the transmitting unit 120 constitute a wireless communication unit that performs wireless communication with the gNB 200.

[0020] The receiving unit 110 performs various types of reception under the control of the control unit 130. The receiving unit 110 includes an antenna and a receiver. The receiver converts a radio signal received by the antenna into a baseband signal (received signal) and outputs the baseband signal to the control unit 130.

[0021] The transmitting unit 120 performs various transmissions under the control of the control unit 130. The transmitting unit 120 includes an antenna and a transmitter. The transmitter converts a baseband signal (transmission signal) output by the control unit 130 into a radio signal and transmits it from the antenna.

[0022] The control unit 130 performs various controls and processes in the UE 100. Such processes include processes of each layer, which will be described later. The control unit 130 includes at least one processor and at least one memory. The memory stores programs executed by the processor and information used in the processes by the processor. The processor may include a baseband processor and a CPU (Central Processing Unit). The baseband processor performs modulation / demodulation and encoding / decoding of baseband signals. The CPU executes programs stored in the memory to perform various processes.

[0023] 3 is a diagram showing the configuration of a gNB 200 (base station) according to an embodiment. The gNB 200 includes a transmitter 210, a receiver 220, a controller 230, and a backhaul communication unit 240. The transmitter 210 and the receiver 220 constitute a wireless communication unit that performs wireless communication with the UE 100. The backhaul communication unit 240 constitutes a network communication unit that performs communication with the CN 20.

[0024] The transmission unit 210 performs various transmissions under the control of the control unit 230. The transmission unit 210 includes an antenna and a transmitter. The transmitter converts a baseband signal (transmission signal) output by the control unit 230 into a radio signal and transmits it from the antenna.

[0025] The receiving unit 220 performs various types of reception under the control of the control unit 230. The receiving unit 220 includes an antenna and a receiver. The receiver converts a radio signal received by the antenna into a baseband signal (received signal) and outputs the baseband signal to the control unit 230.

[0026] The control unit 230 performs various controls and processes in the gNB 200. Such processes include processes for each layer, which will be described later. The control unit 230 includes at least one processor and at least one memory. The memory stores programs executed by the processor and information used in the processes by the processor. The processor may include a baseband processor and a CPU. The baseband processor performs modulation / demodulation and encoding / decoding of baseband signals. The CPU executes programs stored in the memory to perform various processes.

[0027] The backhaul communication unit 240 is connected to neighboring base stations via an Xn interface, which is an interface between base stations. The backhaul communication unit 240 is connected to the AMF / UPF 300 via an NG interface, which is an interface between a base station and a core network. Note that the gNB 200 may be configured (i.e., functionally divided) with a CU (Central Unit) and a DU (Distributed Unit), and both units may be connected via an F1 interface, which is a fronthaul interface.

[0028] FIG. 4 is a diagram showing the configuration of a protocol stack of a radio interface of a user plane that handles data.

[0029] The user plane radio interface protocol includes a physical (PHY) layer, a medium access control (MAC) layer, a radio link control (RLC) layer, a packet data convergence protocol (PDCP) layer, and a service data adaptation protocol (SDAP) layer.

[0030] The PHY layer performs encoding / decoding, modulation / demodulation, antenna mapping / demapping, and resource mapping / demapping. Data and control information are transmitted between the PHY layer of UE100 and the PHY layer of gNB200 via a physical channel. The PHY layer of UE100 receives downlink control information (DCI) transmitted from gNB200 on a physical downlink control channel (PDCCH). Specifically, UE100 performs blind decoding of the PDCCH using a radio network temporary identifier (RNTI) and acquires successfully decoded DCI as DCI addressed to the UE. The DCI transmitted from gNB200 has CRC parity bits scrambled by the RNTI added.

[0031] The MAC layer performs data priority control, retransmission processing using Hybrid ARQ (HARQ), random access procedures, etc. Data and control information are transmitted between the MAC layer of UE 100 and the MAC layer of gNB 200 via a transport channel. The MAC layer of gNB 200 includes a scheduler. The scheduler determines the uplink and downlink transport format (transport block size, modulation and coding scheme (MCS)) and the resource blocks to be allocated to UE 100.

[0032] The RLC layer transmits data to the RLC layer on the receiving side using the functions of the MAC layer and PHY layer. Data and control information are transmitted between the RLC layer of the UE 100 and the RLC layer of the gNB 200 via logical channels.

[0033] The PDCP layer performs header compression / decompression, encryption / decryption, etc.

[0034] The SDAP layer maps IP flows, which are the units for QoS control by the core network, to radio bearers, which are the units for QoS control by the AS (Access Stratum). Note that if the RAN is connected to the EPC, SDAP is not necessary.

[0035] FIG. 5 is a diagram showing the configuration of a protocol stack of a radio interface of a control plane that handles signaling (control signals).

[0036] The protocol stack of the radio interface of the control plane has a Radio Resource Control (RRC) layer and a Non-Access Stratum (NAS) instead of the SDAP layer shown in FIG.

[0037] RRC signaling for various settings is transmitted between the RRC layer of UE100 and the RRC layer of gNB200. The RRC layer controls logical channels, transport channels, and physical channels according to the establishment, re-establishment, and release of radio bearers. When there is a connection (RRC connection) between the RRC of UE100 and the RRC of gNB200, UE100 is in an RRC connected state. When there is no connection (RRC connection) between the RRC of UE100 and the RRC of gNB200, UE100 is in an RRC idle state. When the connection between the RRC of UE100 and the RRC of gNB200 is suspended, UE100 is in an RRC inactive state.

[0038] The NAS, which is located above the RRC layer, performs session management, mobility management, etc. NAS signaling is transmitted between the NAS of the UE 100 and the NAS of the AMF 300A. Note that the UE 100 has an application layer and the like in addition to the radio interface protocol. The layer below the NAS is called an AS (Access Stratum).

[0039] (Overview of cell reselection procedure) FIG. 6 is a diagram for explaining an outline of the cell reselection procedure.

[0040] When UE 100 is in an RRC idle state or an RRC inactive state, it performs a cell reselection procedure to transition from a current serving cell (cell #1) to a neighboring cell (any of cells #2 to #4) as it moves. Specifically, UE 100 identifies a neighboring cell on which it should camp by the cell reselection procedure, and reselects the identified neighboring cell. When the current serving cell and the neighboring cell have the same frequency (carrier frequency), this is called intra-frequency, and when the current serving cell and the neighboring cell have different frequencies (carrier frequencies), this is called inter-frequency. The current serving cell and the neighboring cell may be managed by the same gNB 200, or may be managed by different gNBs 200.

[0041] FIG. 7 is a diagram showing a general flow of a general cell reselection procedure.

[0042] In step S10, the UE 100 performs a frequency prioritization process based on the priority (also referred to as "absolute priority") for each frequency specified by the gNB 200, for example, by a system information block or an RRC release message. Specifically, the UE 100 manages the frequency priority specified by the gNB 200 for each frequency.

[0043] In step S20, UE 100 performs a measurement process to measure radio quality for each of the serving cell and the neighboring cell. UE 100 measures the received power and received quality of reference signals transmitted by each of the serving cell and the neighboring cell, specifically, CD-SSB (Cell Defining-Synchronization Signal and PBCH block). For example, UE 100 always measures radio quality for frequencies having a higher priority than the frequency priority of the current serving cell, and for frequencies having a priority equal to or lower than the frequency priority of the current serving cell, UE 100 measures the radio quality of the frequency having the same priority or lower priority when the radio quality of the current serving cell falls below a predetermined quality.

[0044] In step S30, UE 100 performs a cell reselection process to reselect a cell on which UE 100 will camp based on the measurement result in step S20. For example, if the frequency priority of a neighboring cell is higher than the priority of a current serving cell and the neighboring cell satisfies a predetermined quality standard (i.e., a minimum required quality standard) for a predetermined period, UE 100 may perform cell reselection to the neighboring cell. If the frequency priority of the neighboring cell is the same as the priority of the current serving cell, UE 100 may rank the radio qualities of the neighboring cells and perform cell reselection to the neighboring cell having a higher rank than the rank of the current serving cell for a predetermined period. If the frequency priority of the neighboring cell is lower than the priority of the current serving cell and the radio quality of the current serving cell is lower than a certain threshold and the radio quality of the neighboring cell is higher than another threshold, UE 100 may perform cell reselection to the neighboring cell.

[0045] (Network Slicing Overview) Network slicing is a technology that creates multiple virtual networks by virtually dividing a physical network constructed by a carrier (for example, a network consisting of NG-RAN10 and 5GC20). Each virtual network is called a network slice. In the following, a network slice may be simply referred to as a "slice."

[0046] Network slicing allows telecommunications operators to create slices that meet the service requirements of different service types, such as eMBB (Enhanced Mobile Broadband), URLLC (Ultra-Reliable and Low Latency Communications), and mMTC (massive Machine Type Communications), thereby optimizing network resources.

[0047] FIG. 8 is a diagram illustrating an example of network slicing.

[0048] Three slices (slice #1 to slice #3) are configured on a network 50 configured with an NG-RAN 10 and a 5GC 20. Slice #1 is associated with a service type called eMBB, slice #2 is associated with a service type called URLLC, and slice #3 is associated with a service type called mMTC. Note that three or more slices may be configured on the network 50. One service type may be associated with multiple slices.

[0049] Each slice is provided with a slice identifier that identifies the slice. An example of a slice identifier is S-NSSAI (Single Network Slicing Selection Assistance Information). S-NSSAI includes an 8-bit SST (slice / service type). S-NSSAI may further include a 24-bit SD (slice differentiator). SST is information indicating the service type to which the slice is associated. SD is information for differentiating multiple slices associated with the same service type. Information including multiple S-NSSAIs is called NSSAI (Network Slice Selection Assistance Information).

[0050] Furthermore, one or more slices may be grouped to form a slice group. A slice group is a group including one or more slices, and a slice group identifier is assigned to the slice group. The slice group may be configured by a core network (e.g., AMF 300) or a radio access network (e.g., gNB 200). The configured slice group may be notified to UE 100.

[0051] In the following, the term "network slice (slice)" may refer to an S-NSSAI, which is an identifier of a single slice, or an NSSA, which is a collection of S-NSSAIs, or a slice group, which is a group of one or more S-NSSAIs or NSSAIs.

[0052] Furthermore, the UE 100 determines a desired network slice that the UE 100 wishes to use. Such a desired slice may be called an intended slice. In an embodiment, the UE 100 determines a slice priority for each network slice (desired network slice). For example, the NAS of the UE 100 determines the slice priority based on the operation status of an application in the UE 100 and / or a user operation / setting, and notifies the AS of the determined slice priority.

[0053] (Overview of slice-specific cell reselection procedure) FIG. 9 shows an overview of a slice-specific cell reselection procedure.

[0054] In the slice-specific cell reselection procedure, the UE 100 performs a cell reselection process based on slice frequency information provided by the network 50. The slice frequency information may be provided to the UE 100 from the gNB 200 by broadcast signaling (e.g., a system information block) or dedicated signaling (e.g., an RRC release message).

[0055] The slice frequency information indicates the correspondence between network slices, frequencies, and frequency priorities. For example, the slice frequency information indicates, for each slice (or slice group), the frequency (one or more frequencies) that supports the slice and the frequency priority assigned to each frequency. An example of the slice frequency information is shown in FIG. 10.

[0056] In the example shown in Fig. 10, three frequencies F1, F2, and F4 are associated with slice #1 as frequencies supporting slice #1. Of these three frequencies, F1 has a frequency priority of "6," F2 has a frequency priority of "4," and F4 has a frequency priority of "2." In the example of Fig. 10, the larger the frequency priority number, the higher the priority; however, it may also be the case that the smaller the number, the higher the priority.

[0057] Furthermore, three frequencies F1, F2, and F3 are associated with slice #2 as frequencies supporting slice #2. Of these three frequencies, F1 has a frequency priority of "0," F2 has a frequency priority of "5," and F3 has a frequency priority of "7."

[0058] Furthermore, three frequencies F1, F3, and F4 are associated with slice #3 as frequencies supporting slice #3. Of these three frequencies, F1 has a frequency priority of "3," F3 has a frequency priority of "7," and F4 has a frequency priority of "2."

[0059] Hereinafter, the frequency priority indicated in the slice frequency information may be referred to as a "slice-specific frequency priority" to distinguish it from the absolute priority in the conventional cell reselection procedure.

[0060] The UE 100 may perform a cell reselection process further based on cell information provided by the network 50. The cell information may be information indicating a correspondence between a cell (e.g., a serving cell and each neighboring cell) and a network slice that the cell does not provide or provides. For example, a cell may temporarily not provide some or all network slices due to congestion or other reasons. That is, even if a slice support frequency has the capability to provide a certain network slice, some cells within the frequency may not provide the network slice. The UE 100 can determine the network slices that each cell does not provide based on the cell information. Such cell information may be provided to the UE 100 by broadcast signaling (e.g., a system information block) or dedicated signaling (e.g., an RRC release message) from the gNB 200.

[0061] 11 is a diagram showing the basic flow of a slice-specific cell reselection procedure. Before starting the slice-specific cell reselection procedure, the UE 100 is assumed to be in an RRC idle state or an RRC inactive state and to have received and stored the slice frequency information described above.

[0062] In step S0, the NAS of UE 100 determines slice identifiers of desired slices of UE 100 and slice priorities of each desired slice, and notifies the AS of UE 100 of slice information including the determined slice priorities. A "desired slice" includes a slice that is likely to be used, a candidate slice, a desired slice, a slice to be communicated, a requested slice, an allowed slice, or an intended slice. For example, the slice priority of slice #1 is determined to be "3," the slice priority of slice #2 is determined to be "2," and the slice priority of slice #3 is determined to be "1." A larger number for the slice priority indicates a higher priority, but a smaller number may also indicate a higher priority.

[0063] In step S1, the AS of the UE 100 sorts the slices (slice identifiers) notified from the NAS in step S0 in descending order of slice priority. The list of slices sorted in this way is called a "slice list."

[0064] In step S2, the AS of the UE 100 selects one network slice in descending order of slice priority. The network slice selected in this manner is called a "selected network slice."

[0065] In step S3, the AS of UE100 assigns frequency priorities to each frequency associated with the selected network slice. Specifically, the AS of UE100 identifies a frequency associated with the slice based on slice frequency information, and assigns frequency priorities to the identified frequencies. For example, if the selected network slice selected in step S2 is slice #1, the AS of UE100 assigns frequency priority "6" to frequency F1, frequency priority "4" to frequency F2, and frequency priority "2" to frequency F4 based on slice frequency information (e.g., information in FIG. 10). The AS of UE100 calls the list of frequencies arranged in descending order of frequency priority a "frequency list."

[0066] In step S4, the AS of UE 100 selects one frequency in descending order of frequency priority for the selected network slice selected in step S2, and performs measurement processing on the selected frequency. The frequency selected in this manner is called a "selected frequency." The AS of UE 100 may rank the cells measured within the selected frequency in descending order of wireless quality. Among the cells measured within the selected frequency, a cell that satisfies a predetermined quality standard (i.e., a required minimum quality standard) is called a "candidate cell."

[0067] In step S5, the AS of UE100 identifies the highest-ranked cell based on the result of the measurement process in step S4, and determines whether the cell provides the selected network slice based on the cell information. If it is determined that the highest-ranked cell provides the selected network slice (step S5: YES), in step S5a, the AS of UE100 reselects the highest-ranked cell and camps on the cell.

[0068] On the other hand, if it is determined that the highest-ranked cell does not provide the selected network slice (step S5: NO), in step S6, the AS of UE 100 determines whether or not there is an unmeasured frequency in the frequency list created in step S3. If it is determined that there is an unmeasured frequency (step S6: YES), the AS of UE 100 resumes processing on the frequency with the next highest frequency priority and performs measurement processing with that frequency as the selected frequency (returning to step S4).

[0069] If it is determined that there are no unmeasured frequencies in the frequency list created in step S3 (step S6: NO), in step S7, the AS of UE 100 may determine whether or not there are any unselected slices in the slice list created in step S1. If it is determined that there are any unselected slices (step S7: YES), the AS of UE 100 resumes processing on the network slice with the next highest slice priority and selects that network slice as the selected network slice (returns processing to step S2). Note that in the basic flow shown in FIG. 11, the processing of step S7 may be omitted.

[0070] If it is determined that there is no unselected slice (step S7: NO), in step S8, the AS of UE 100 performs a conventional cell reselection process. The conventional cell reselection process may mean the entire general cell reselection procedure shown in Fig. 7, or may mean only the cell reselection process (step S30) shown in Fig. 7. In the latter case, UE 100 may use the measurement result in step S4 without measuring the radio quality of the cell again.

[0071] (First modification of slice-specific cell reselection procedure) A first variation of the slice-specific cell reselection procedure will now be described.

[0072] As described above, in step S0, slice information including slice priorities is provided from the NAS to the AS. Here, if different slice priorities are assigned to each slice, the subsequent steps (e.g., steps S1 to S7) can be performed without any particular problems.

[0073] On the other hand, problems can arise when multiple slices have the same slice priority. In particular, if different frequency priorities are assigned to these slices, it may become unclear which frequency has a higher priority. For example, in the configuration shown in FIG. 12, slice #1 and slice #2 have the same slice priority of "6." In such a case, it becomes unclear to which of slice #1 and slice #2 with the highest slice priority should the corresponding frequency priority be applied.

[0074] In this modified example, UE100 receives slice frequency information indicating the correspondence between network slices, frequencies, and frequency priorities from network 50 (e.g., gNB200), and assigns the frequency priorities indicated by the slice frequency information to the corresponding frequencies for the selected network slice selected according to the slice priorities (step S3). UE100 reselects a candidate cell that satisfies a predetermined quality standard within the selected frequency selected according to the assigned frequency priorities (steps S4, S5, S5a).

[0075] Here, in step S3, when multiple network slices (specifically, multiple desired network slices) have the same slice priority, UE100 derives a representative value based on the frequency priority of each of the multiple network slices for each frequency. Then, UE100 assigns the derived representative value to the corresponding frequency as a frequency priority. This makes it possible to appropriately assign the frequency priority of each frequency in consideration of the frequency priority of each network slice having the same slice priority.

[0076] When deriving the representative value, UE100 may derive, for each frequency, the sum, average value, product, or maximum value of the frequency priorities of each network slice having the same slice priority as the representative value.

[0077] In the example shown in FIG. 12, when deriving the "sum" of the frequency priorities of network slices #1 and #2 having the same slice priority as a representative value, UE 100: Frequency F1: 6 Frequency F2: 9 Frequency F3: 7 Frequency priorities (representative values) are assigned, such as frequency F4: 2. Therefore, the highest frequency priority "9" is assigned to frequency F2, which has the highest average frequency priority in slices #1 and #2. As a result, UE 100 reselects a candidate cell belonging to frequency F2 with the highest priority, making it easy to use both slices #1 and #2 in the camped-on frequency F2.

[0078] Here, frequency F3 may not have a frequency priority set for slice #1 and may not support slice #1. Furthermore, frequency F4 may not have a frequency priority set for slice #2 and may not support slice #2. If UE100 reselects such frequencies F3 and F4, it will be difficult for UE100 to use both slices #1 and #2. Therefore, if there is a frequency (frequencies F3 and F4) to which no frequency priority is assigned in any of multiple network slices having the same slice priority, UE100 may exclude the frequency (frequencies F3 and F4) from cell reselection candidates. For example, in the example shown in Figure 12, when deriving the sum of the frequency priorities of network slices #1 and #2 having the same slice priority as a representative value, UE100 may Frequency F1: 6 Frequency F2: 9 Frequency F3: -(N / A) A frequency priority (representative value) may be assigned, such as frequency F4: -(N / A).

[0079] On the other hand, in the example shown in FIG. 12, when deriving the “average value” of the frequency priorities of network slices #1 and #2 having the same slice priority as a representative value, UE 100: Frequency F1: 3 Frequency F2: 4.5 Frequency F3: 3.5 Frequency priorities (representative values) are assigned, such as frequency F4: 1. Therefore, the highest frequency priority "4.5" is assigned to frequency F2, which has the highest average frequency priority in slices #1 and #2. If there is a frequency (frequencies F3, F4) to which no frequency priority is assigned in any of multiple network slices having the same slice priority, UE100 may exclude the frequency (frequencies F3, F4) from cell reselection candidates. For example, UE100 may Frequency F1: 3 Frequency F2: 4.5 Frequency F3:-(N / A) A frequency priority (representative value) may be assigned, such as frequency F4:-(N / A).

[0080] Although the representative values ​​are described here as "sum" and "average" as an example, the representative values ​​may be "product", "maximum value", or other statistical values.

[0081] 13 is a diagram showing the flow of a slice-specific cell reselection procedure according to this modification. Here, differences from the basic flow of the slice-specific cell reselection procedure described above (FIG. 11) will be described.

[0082] In step S2A, the AS of the UE 100 may check whether multiple slices have the same slice priority, that is, the AS of the UE 100 may check whether the same slice priority is assigned to multiple slices by the NAS.

[0083] In step S3A, the AS of UE 100 assigns a representative value (for example, sum, average, product, or maximum value) of each value as a frequency priority for each frequency priority assigned to multiple slices with the same slice priority. Here, UE 100 may determine that if a frequency priority is not assigned to any slice, no priority is applied to the frequency. For example, when there are multiple slices with the same slice priority, UE 100 assigns a frequency priority only if all of these slices have frequency priorities. In other words, when there are multiple slices with the same slice priority, UE 100 does not assign a frequency priority to a frequency that does not have a frequency priority for one or more slices.

[0084] (Second Modification of Slice-Specific Cell Reselection Procedure) A second variation of the slice-specific cell reselection procedure will now be described.

[0085] For multiple slices to which the same slice priority is assigned by the NAS, there is no indication of which slice to prioritize, and either slice can be considered acceptable. Therefore, in this modification, for multiple slices to which the same slice priority is assigned, the frequency with the highest frequency priority is the measurement target, and the best cell is reselected by ranking.

[0086] In this modified example, UE100 receives slice frequency information from a network indicating a correspondence relationship between network slices, frequencies, and frequency priorities, and assigns the frequency priorities indicated by the slice frequency information to the corresponding frequencies for a selected network slice selected according to the slice priorities. When multiple network slices have the same slice priorities, UE100 identifies the highest priority frequency having the highest frequency priority for each of the multiple network slices, and reselects a candidate cell that satisfies a predetermined quality criterion within each of the highest priority frequencies for the multiple network slices.

[0087] Taking FIG. 12 as an example, UE100 identifies the highest priority frequency having the highest frequency priority for each of network slices #1 and #2 having the same slice priority "6." The highest priority frequency for network slice #1 is frequency F1, which is assigned the highest frequency priority "6" among frequencies F1 to F4. The highest priority frequency for network slice #2 is frequency F3, which is assigned the highest frequency priority "7" among frequencies F1 to F4. Therefore, UE100 identifies frequencies F1 and F3, and controls reselection of the highest-ranked cell (highest-ranked cell) from among the cells belonging to frequency F1 and the cells belonging to frequency F3. Here, UE100 may measure frequencies F1 and F3 at different times. If UE100 has multiple RF circuits (multiple receivers), UE100 may measure frequencies F1 and F3 simultaneously.

[0088] 14 is a diagram showing the flow of a slice-specific cell reselection procedure according to this modification. Here, differences from the basic flow of the slice-specific cell reselection procedure described above (FIG. 11) will be described.

[0089] In step S2B, the AS of the UE 100 may check whether multiple slices have the same slice priority, i.e., the AS of the UE 100 may check whether the same slice priority is assigned to multiple slices by the NAS.

[0090] In step S3B, the AS of the UE 100 identifies the highest priority frequency of each of the slices having the same slice priority.

[0091] In step S4B, the AS of the UE 100 measures each cell on each highest priority frequency identified in step S3B. The AS of the UE 100 ranks the measured cells (cells on multiple frequencies) and identifies the highest ranked candidate cell.

[0092] (Third Modification of Slice-Specific Cell Reselection Procedure) A third variation of the slice-specific cell reselection procedure will now be described.

[0093] The problems of the first and second modified examples can be solved by specifying that the NAS must assign a different slice priority to each slice. This modified example assumes that such a restriction is set in the technical specifications of the NAS.

[0094] In this modification, the NAS of the UE 100 assigns a slice priority to each of one or more network slices (specifically, one or more desired network slices) and notifies the AS of slice information including the assigned slice priorities. Here, the NAS assigns different slice priorities to two or more network slices so that the same slice priority is not assigned to two or more network slices.

[0095] 15 is a diagram showing the flow of a slice-specific cell reselection procedure according to this modification. Here, differences from the basic flow of the slice-specific cell reselection procedure described above (FIG. 11) will be described.

[0096] In step S0C, the NAS of the UE 100 determines to provide slice information to the AS and determines a slice priority for each desired network slice. For example, the NAS may determine the slice priority based on a request from an application layer or may be set from an AMF.

[0097] Here, the NAS assigns a different slice priority to each slice. For example, if slice priorities are the same between slices in a request from the application layer or in settings from the AMF, the NAS assigns different slice priorities to each slice depending on, for example, the frequency and duration of application use. The NAS then provides slice information including the assigned slice priorities to the AS.

[0098] (Fourth Modification of Slice-Specific Cell Reselection Procedure) A fourth variation of the slice-specific cell reselection procedure will now be described.

[0099] The cell reselection procedure is performed in the RRC idle state or the RRC inactive state of the UE 100. Here, when the UE 100 is in the RRC inactive state, the UE 100 has a pending protocol data unit (PDU) session. Since such a pending PDU session is expected to be resumed by resuming the RRC connection, it is considered preferable to increase the slice priority of a slice having a pending PDU session.

[0100] For example, in the state shown in Figure 16, if the slice priority of slices #1 and #2 not used in the pending PDU session is higher than the slice priority of slice #3 used in the pending PDU session, it is undesirable for slice #3 for which a PDU session is pending to be postponed. Therefore, in this modified example, the NAS of UE 100 treats slices for which a PDU session is pending as having a slice priority equal to or higher than the highest slice priority of each slice of the desired network slice.

[0101] In this modified example, the NAS of UE100 assigns a slice priority to each of one or more network slices (one or more desired network slices) and notifies the AS of slice information including the assigned slice priority. The NAS identifies a network slice (slice #3 in the example of Figure 16) that has a pending PDU session and notifies the AS of information based on the identified network slice.

[0102] The NAS may assign the highest slice priority to a network slice that has a pending PDU session.

[0103] Here, the highest slice priority may be the same as the highest slice priority of a network slice other than the network slice having a pending PDU session. In the example of Figure 16, the NAS of UE100 may assign to slice #3 the highest slice priority "6" of the slices (#1 and #2) other than slice #3 having a pending PDU session. In this example, the slice priority of slice #3 is the same as the slice priority of slice #1, so the operations of the first and second modified examples described above can be applied.

[0104] Alternatively, the highest slice priority may be a slice priority that is higher than the highest slice priority of any network slice other than the network slice having the pending PDU session. In the example of Figure 16, the NAS of UE 100 may assign slice priority "7" to slice #3, which is higher than the highest slice priority "6" of any slice (#1 and #2) other than slice #3 having the pending PDU session.

[0105] The NAS of UE100 may identify a network slice having a pending PDU session in the following manner. Specifically, the NAS of UE100 may identify a network slice having a pending PDU session in response to being notified from the AS that UE100 has transitioned to an RRC inactive state. For example, when the AS of UE100 receives an RRC Release message including Suspend config. from gNB200, it performs processing to transition to an RRC inactive state and notifies the NAS that it has transitioned to the RRC inactive state. The NAS of UE100 identifies a currently established (suspended) PDU session and a slice associated with the PDU session. When the NAS of UE100 identifies one or more slices (Intended Slices), it may notify the AS of the slices (identifiers) as desired network slices. The desired network slices may be notified to the AS as part of the Intended Slice. That is, after transitioning to the RRC inactive state, the AS receives notification of the Intended Slice (as an updated Intended Slice) from the NAS.

[0106] 17 is a diagram showing the flow of a slice-specific cell reselection procedure according to this modification. Here, differences from the basic flow of the slice-specific cell reselection procedure described above (FIG. 11) will be described.

[0107] In step S0D, if a PDU session is pending, the NAS of UE 100 treats the corresponding slice (identifier) ​​as the highest slice priority of the Intended Slice. In the example of FIG. 16, the NAS of UE 100 may consider the slice priority of slice #3 to be "6" or a slice priority greater than "6". Alternatively, the AS may perform the process of the slice-specific cell reselection procedure (step S1 and subsequent steps) in accordance with the (updated) Intended Slice.

[0108] (Other embodiments) The above-mentioned operational flows are not limited to being implemented independently, but can also be implemented by combining two or more operational flows. For example, some steps of one operational flow may be added to another operational flow, or some steps of one operational flow may be replaced with some steps of another operational flow.

[0109] In the above-described embodiment and example, an example in which the base station is an NR base station (gNB) has been described, but the base station may be an LTE base station (eNB) or a 6G base station. The base station may also be a relay node such as an IAB (Integrated Access and Backhaul) node. The base station may also be a DU of the IAB node. The user equipment may also be an MT (Mobile Termination) of the IAB node.

[0110] A program may be provided that causes a computer to execute each process performed by UE100 or gNB200. The program may be recorded on a computer-readable medium. Using the computer-readable medium, the program can be installed on a computer. Here, the computer-readable medium on which the program is recorded may be a non-transitory recording medium. The non-transitory recording medium is not particularly limited, and may be, for example, a recording medium such as a CD-ROM or DVD-ROM. Furthermore, circuits that execute each process performed by UE100 or gNB200 may be integrated, and at least a part of UE100 or gNB200 may be configured as a semiconductor integrated circuit (chipset, SoC).

[0111] The above describes the embodiments in detail with reference to the drawings, but the specific configuration is not limited to that described above, and various design changes can be made within the scope that does not deviate from the gist of the invention.

[0112] As used in this disclosure, the terms "based on" and "depending on" do not mean "based only on" or "depending only on," unless expressly stated otherwise. The term "based on" means both "based only on" and "based at least in part on." Similarly, the term "depending on" means both "based only on" and "at least in part on." Furthermore, "obtain" may mean obtaining information from stored information, obtaining information from information received from another node, or obtaining information by generating the information. The terms "include," "comprise," and variations thereof do not mean including only the listed items, but may also mean including only the listed items or including additional items in addition to the listed items. Furthermore, as used in this disclosure, the term "or" is not intended to mean an exclusive or. Furthermore, any reference to elements using designations such as "first," "second," etc., as used in this disclosure does not generally limit the quantity or order of those elements. These designations may be used herein as a convenient method of distinguishing between two or more elements. Thus, reference to first and second elements does not imply that only two elements may be employed therein or that the first element must precede the second element in some manner. In this disclosure, where articles are added by translation, such as a, an, and the in English, these articles shall include the plural unless the context clearly indicates otherwise.

[0113] This application claims priority to Japanese Patent Application No. 2021-171987 (filed October 20, 2021), the entire contents of which are incorporated herein by reference.

Claims

1. A cell reselection method performed by a user equipment in a mobile communication system, comprising: Determining a priority of a corresponding frequency for at least one network slice based on a correspondence relationship between a network slice group, a frequency, and a frequency priority; and performing cell reselection based on the determined priority; When a plurality of network slice groups have the same slice group priority, determining the priority of the corresponding frequency based on the maximum value of the frequency priority of each of the plurality of network slice groups for each frequency. Cell reselection method.

2. The method further includes receiving slice frequency information from a network, the slice frequency information indicating a correspondence relationship between the network slice group, the frequency, and the frequency priority. The cell reselection method according to claim 1 .

3. A user device, A process of determining a priority of a corresponding frequency for at least one network slice based on a correspondence relationship between a network slice group, a frequency, and a frequency priority; and performing cell reselection based on the determined priority; The process of determining the priority includes, when a plurality of network slice groups have the same slice group priority, determining the priority of the corresponding frequency based on the maximum value of the frequency priority of each of the plurality of network slice groups for each frequency. User equipment.

4. A chipset for a user device, comprising: A process of determining a priority of a corresponding frequency for at least one network slice based on a correspondence relationship between a network slice group, a frequency, and a frequency priority; and performing a cell reselection process based on the determined priority order; The process of determining the priority includes, when a plurality of network slice groups have the same slice group priority, determining the priority of the corresponding frequency based on the maximum value of the frequency priority of each of the plurality of network slice groups for each frequency. Chipset.

5. To the user device, A process of determining a priority of a corresponding frequency for at least one network slice based on a correspondence relationship between a network slice group, a frequency, and a frequency priority; and performing a process of performing cell reselection based on the determined priority order; The process of determining the priority includes, when a plurality of network slice groups have the same slice group priority, determining the priority of the corresponding frequency based on the maximum value of the frequency priority of each of the plurality of network slice groups for each frequency. program.

6. A mobile communication system comprising a user equipment, The user device A process of determining a priority of a corresponding frequency for at least one network slice based on a correspondence relationship between a network slice group, a frequency, and a frequency priority; and performing a cell reselection process based on the determined priority order; The process of determining the priority includes, when a plurality of network slice groups have the same slice group priority, determining the priority of the corresponding frequency based on the maximum value of the frequency priority of each of the plurality of network slice groups for each frequency. Mobile communication system.

Citation Information

Patent Citations

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    JP2020507255A