Communication device, base station, and communication method
The system allows multiple gap patterns with identification for PRS measurements, addressing inappropriate measurements in 3GPP specifications by ensuring accurate and efficient use of gap patterns for positioning reference signals.
Patent Information
- Application Number
- JP2023554751
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-10-21
- Filing Date
- 2022-10-21
- Publication Date
- 2025-10-16
- Estimated Expiration
- 2042-10-21
AI Technical Summary
Existing 3GPP technical specifications allow only one gap pattern configuration in a communication device, which may lead to inappropriate measurements when multiple measurement targets are present, particularly for positioning reference signals (PRS).
A communication device and base station system that supports multiple gap patterns, with identification information in RRC messages indicating which gap pattern is for PRS measurements, allowing the device to determine the appropriate gap pattern for each measurement target.
Enables accurate and efficient measurements on positioning reference signals even when multiple gap patterns are configured, ensuring appropriate use of each gap pattern for optimal measurement performance.
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Abstract
Description
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is based on and claims the benefit of priority to Patent Application No. 2021-172745, filed October 21, 2021, the entire contents of which are incorporated herein by reference. [Technical Field]
[0002] The present disclosure relates to a communication device, a base station, and a communication method used in a mobile communication system. [Background technology]
[0003] In 3GPP (registered trademark, the same applies hereinafter) (3rd Generation Partnership Project), a standardization project for mobile communication systems, multiple measurement gap configurations are configured in a communication device to set gap patterns consisting of measurement gaps that can interrupt communication with a base station (see Non-Patent Document 1). This enables the communication device to perform measurements on measurement targets in cells other than the serving cell during measurement gaps configured based on the measurement configurations while maintaining connection with the base station (serving cell).
[0004] In recent years, a method has been discussed for setting multiple gap patterns in a communication device so that even when there are multiple measurement targets that the communication device needs to measure, measurements can be performed using the optimal gap pattern for each measurement target (see Non-Patent Document 2). [Prior art documents] [Non-patent literature]
[0005] [Non-Patent Document 1] 3GPP Technical Specification: TS38.331 V16.6.0 [Non-patent document 2] 3GPP contribution: RP-211591 Summary of the Invention
[0006] A communication device according to a first aspect includes a communication unit that receives a radio resource control (RRC) message from a network, the RRC message including multiple measurement gap configurations, and a control unit that performs measurements on positioning reference signals during each measurement gap configured based on the multiple measurement gap configurations. The RRC message includes identification information associated with each of the multiple measurement gap configurations. The identification information indicates that the associated measurement gap configuration is for measurements on the positioning reference signals.
[0007] A base station according to a second aspect includes a communication unit configured to transmit a radio resource control (RRC) message including a plurality of measurement gap configurations to a communication device, the RRC message including identification information associated with each of the plurality of measurement gap configurations, the identification information indicating that the associated measurement gap configuration is for measurement of the positioning reference signal.
[0008] A communication method according to a third aspect includes the steps of receiving a radio resource control (RRC) message from a network, the RRC message including a plurality of measurement gap configurations, and performing measurements on positioning reference signals during each measurement gap configured based on the plurality of measurement gap configurations. The RRC message includes identification information associated with each of the plurality of measurement gap configurations. The identification information indicates that the associated measurement gap configuration is for measurements on the positioning reference signals. [Brief explanation of the drawings]
[0009] The objects, features, advantages, and other features of the present disclosure will become more apparent from the following detailed description taken in conjunction with the accompanying drawings. [Figure 1] FIG. 1 is a diagram showing a configuration of a mobile communication system according to an embodiment. [Figure 2] FIG. 2 is a diagram illustrating an example of the configuration of a protocol stack in the mobile communication system according to the embodiment. [Figure 3]FIG. 3 is a sequence diagram showing an example of the operation of a UE for which a gap pattern is set. [Figure 4] FIG. 4 is a diagram illustrating information elements in an RRC message. [Figure 5] FIG. 5 is a diagram illustrating a configuration of a UE according to the embodiment. [Figure 6] FIG. 6 is a diagram illustrating a configuration of a base station according to the embodiment. [Figure 7] FIG. 7 is a sequence diagram illustrating an example of operation according to the embodiment. [Figure 8] FIG. 8 is a diagram (part 1) for explaining information elements in an RRC message according to the first operation example. [Figure 9] FIG. 9 is a diagram (part 2) for explaining information elements in an RRC message according to the first operation example. [Figure 10] FIG. 10 is a diagram illustrating information elements in an RRC message according to a first modification of the first operation example. [Figure 11] FIG. 11 is a diagram illustrating information elements in an RRC message according to a second modified example of the first operation example. [Figure 12] FIG. 12 is a diagram illustrating information elements in an RRC message according to a third modified example of the first operation example. [Figure 13] FIG. 13 is a diagram illustrating information elements in an RRC message according to a fourth modification of the first operation example. [Figure 14] FIG. 14 is a diagram (part 1) for explaining information elements in an RRC message according to the second operation example. [Figure 15] FIG. 15 is a diagram (part 2) for explaining information elements in an RRC message according to the second operation example. [Figure 16] FIG. 16 is a diagram (part 3) for explaining information elements in an RRC message according to the second operation example. [Figure 17] FIG. 17 is a diagram illustrating information elements in an RRC message according to a modification of the second operation example. [Figure 18]FIG. 18 is a diagram (part 1) for explaining information elements in an RRC message according to the third operation example. [Figure 19] FIG. 19 is a diagram (part 2) for explaining information elements in an RRC message according to the third operation example. [Figure 20] FIG. 20 is a diagram (part 1) for explaining information elements in an RRC message according to the fourth operation example. [Figure 21] FIG. 21 is a diagram (part 2) for explaining information elements in an RRC message according to the fourth operation example. [Figure 22] FIG. 22 is a diagram illustrating information elements in an RRC message according to the fifth operation example. DETAILED DESCRIPTION OF THE INVENTION
[0010] 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.
[0011] In the current 3GPP technical specifications, multiple measurement targets can be configured in a communication device, but only one gap pattern can be configured in the communication device. Therefore, there is a concern that appropriate measurements may not be performed when multiple gap patterns are configured in the communication device. Therefore, one object of the present disclosure is to provide a communication device, a base station, and a communication method that enable appropriate measurements when multiple gap patterns are configured.
[0012] (Configuration of a mobile communication system) The configuration of a mobile communication system 1 according to an embodiment will be described with reference to Fig. 1. The mobile communication system 1 is, for example, a system that complies with the 3GPP Technical Specification (TS). In the following, the mobile communication system 1 will be described using as an example a 5th Generation System (5GS) of the 3GPP standard, that is, a mobile communication system based on NR (New Radio).
[0013] The mobile communication system 1 includes a network 10 and user equipment (UE) 100 that communicates with the network 10. The network 10 includes a next generation radio access network (NG-RAN) 20 that is a 5G radio access network, and a 5G core network (5GC) 30 that is a 5G core network.
[0014] The UE 100 is an example of a communication device. The UE 100 may be a mobile wireless communication device. The UE 100 may be a communication device that communicates via the base station 200. The UE 100 may be a device used by a user. The UE 100 may be user equipment defined in the 3GPP technical specifications. The UE 100 may be a mobile device, such as a mobile phone terminal such as a smartphone, a tablet terminal, a laptop PC, a communication module, or a communication card. The UE 100 may be a vehicle (e.g., a car, a train, etc.) or a device provided therein. The UE 100 may be a transport vehicle other than a vehicle (e.g., a ship, an airplane, etc.) or a device provided therein. The UE 100 may be a sensor or a device provided therein. The UE 100 may be called by other names such as a mobile station, a mobile terminal, a mobile device, a mobile unit, a subscriber station, a subscriber terminal, a subscriber device, a subscriber unit, a wireless station, a wireless terminal, a wireless device, a wireless unit, a remote station, a remote terminal, a remote device, or a remote unit.
[0015] The NG-RAN 20 includes multiple base stations 200. Each base station 200 manages at least one cell. A cell constitutes the smallest unit of a communication area. For example, one cell belongs to one frequency (carrier frequency) and is composed of one component carrier. The term "cell" may refer to wireless communication resources or to a communication target of the UE 100. Each base station 200 can perform wireless communication with the UE 100 located in its own cell. The base station 200 communicates with the UE 100 using a RAN protocol stack. The base station 200 provides NR user plane and control plane protocol termination for the UE 100 and is connected to the 5GC 30 via an NG interface. Such an NR base station 200 is sometimes referred to as a gNodeB (gNB).
[0016] The 5GC 30 includes a core network device 300. The core network device 300 includes, for example, an Access and Mobility Management Function (AMF) and / or a User Plane Function (UPF). The AMF performs mobility management for the UE 100. The UPF provides functions specialized for user plane processing. The AMF and the UPF are connected to the base station 200 via an NG interface.
[0017] The 5GC 30 includes a location management device 400. The location management device 400 may manage support for location services for the UE (target UE) 100. The location management device 400 may manage overall coordination and scheduling of resources required for the location of the UE 100. The location management device 400 may be referred to as a Location Management Function (LMF). The LMF is connected to the AMF via an NL1 interface. The NL1 interface is used only as a transport link for the Long Term Evolution (LTE) Positioning Protocol (LPP) and the NR Positioning Protocol A (NRPPa).
[0018] An example of the configuration of a protocol stack in the mobile communication system 1 according to the embodiment will be described with reference to FIG.
[0019] The protocol for the wireless section between UE100 and base station 200 includes a physical (PHY) layer, a medium access control (MAC) layer, a radio link control (RLC) layer, a packet data convergence protocol (PDCP) layer, a radio resource control (RRC) layer, and an LTE positioning protocol (LPP) layer.
[0020] 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 the UE 100 and the PHY layer of the base station 200 via a physical channel.
[0021] A physical channel consists of multiple Orthogonal Frequency Division Multiplexing (OFDM) symbols in the time domain and multiple subcarriers in the frequency domain. One subframe consists of multiple OFDM symbols in the time domain. A resource block is a resource allocation unit and consists of multiple OFDM symbols and multiple subcarriers. A frame can be configured for 10 ms and can include 10 subframes, each of which is 1 ms long. A subframe can include a number of slots depending on the subcarrier spacing.
[0022] Among the physical channels, the Physical Downlink Control Channel (PDCCH) plays a central role for purposes such as downlink scheduling assignment, uplink scheduling grant, and transmit power control.
[0023] In NR, the UE 100 can use a bandwidth narrower than the system bandwidth (i.e., the cell bandwidth). The base station 200 configures the UE 100 with a bandwidth portion (BWP) consisting of consecutive PRBs. The UE 100 transmits and receives data and control signals in the active BWP. For example, up to four BWPs can be configured for the UE 100. Each BWP may have a different subcarrier spacing or may overlap in frequency. When multiple BWPs are configured for the UE 100, the base station 200 can specify which BWP to activate by controlling the downlink. This allows the base station 200 to dynamically adjust the UE bandwidth according to the amount of data traffic of the UE 100, etc., and can reduce UE power consumption.
[0024] For example, base station 200 can configure up to three control resource sets (CORESETs) for each of up to four BWPs on the serving cell. A CORESET is a radio resource for control information to be received by UE 100. Up to 12 CORESETs can be configured for UE 100 on the serving cell. Each CORESET has an index of 0 to 11. For example, a CORESET consists of six resource blocks (PRBs) and one, two, or three consecutive OFDM symbols in the time domain.
[0025] The MAC layer performs data priority control, retransmission processing using Hybrid Automatic Repeat reQuest (HARQ), random access procedures, etc. Data and control information are transmitted between the MAC layer of UE 100 and the MAC layer of base station 200 via a transport channel. The MAC layer of base station 200 includes a scheduler. The scheduler determines the uplink and downlink transport format (transport block size, modulation and coding scheme (MCS)) and the resources to be allocated to UE 100.
[0026] 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 base station 200 via logical channels.
[0027] The PDCP layer performs header compression / decompression and encryption / decryption.
[0028] An SDAP (Service Data Adaptation Protocol) layer may be provided above the PDCP layer, which maps IP flows, which are units for Quality of Service (QoS) control by the core network, to radio bearers, which are units for QoS control by the AS (Access Stratum).
[0029] The RRC layer controls logical channels, transport channels, and physical channels according to the establishment, re-establishment, and release of radio bearers. RRC signaling for various settings is transmitted between the RRC layer of the UE 100 and the RRC layer of the base station 200. When there is an RRC connection between the RRC of the UE 100 and the RRC of the base station 200, the UE 100 is in an RRC connected state. When there is no RRC connection between the RRC of the UE 100 and the RRC of the base station 200, the UE 100 is in an RRC idle state. When the RRC connection between the RRC of the UE 100 and the RRC of the base station 200 is suspended, the UE 100 is in an RRC inactive state.
[0030] The NAS layer located above the RRC layer performs session management and mobility management for the UE 100. NAS signaling is transmitted between the NAS layer of the UE 100 and the NAS layer of the core network device 300 (AMF).
[0031] The LPP layer, which is located above the RRC layer, exchanges positioning capabilities, transmits assistance data, transmits location information (positioning measurement and / or location estimation), handles errors, aborts, etc. LPP signaling (LPP messages) is transmitted between the LPP layer of the UE 100 and the LPP layer of the location management device 400 (LPP).
[0032] The UE 100 has an application layer and the like in addition to the radio interface protocol.
[0033] (Assumed scenario) An assumed scenario in the mobile communication system 1 according to the embodiment will be described with reference to Fig. 3 and Fig. 4. Fig. 3 shows a sequence of an example of operation in an existing 3GPP mobile communication system, i.e., a mobile communication system conforming to technical specifications prior to Release 16. Note that the UE 100 is in an RRC connected state. The UE 100 communicates with the base station 200 in a serving cell managed by the base station 200.
[0034] As shown in Fig. 3, in step S11, base station 200 generates a radio resource control (RRC) message. The RRC message is, for example, an RRC reconfiguration message, an RRC resume message, etc. The following description will be given taking the RRC reconfiguration message as an example. The RRC reconfiguration message is a command for changing the RRC connection.
[0035] 4, an RRC message (e.g., RRCReconfiguration) includes a measurement configuration (e.g., MeasConfig) that specifies measurements to be performed by the UE 100. The measurement configuration includes a list of measurement objects to be added and / or modified (e.g., MeasObjectToAddModList), a list of measurement report configurations to be added and / or modified (e.g., ReportConfigToAddModList), a list of measurement identifiers to be added and / or modified (e.g., MeasIdToAddModList), and a measurement gap configuration (e.g., MeasGapConfig). The measurement configuration may also include a list of measurement objects to be removed (e.g., MeasObjectToRemoveList), a list of measurement report configurations to be removed (e.g., ReportConfigToRemoveList), and a list of measurement identifiers to be removed (e.g., MeasIdToRemoveList).
[0036] A list of measurement objects (e.g., MeasObjectToAddModList) may include multiple measurement object configurations (e.g., MeasObjectToAddMod) that specify measurement objects. The measurement object configuration includes a set of a measurement object identifier (MeasObjectId) and measurement object information (e.g., measObject). The measurement object identifier is used to identify the measurement object configuration. The measurement object information may be information that specifies, for example, a frequency, a reference signal, etc. The reference signal may be at least one of a synchronization signal and a physical broadcast channel block (SSB) that are composed of a primary synchronization signal (hereinafter, PSS) and a secondary synchronization signal (hereinafter, SSS), a physical broadcast channel (PBCH), a channel state information reference signal (CSI-RS), and a positioning reference signal (PRS). The measurement objects include, for example, a measurement object (e.g., MeasObjectNR) that specifies information applicable to SS / PBCH block intra-frequency / inter-frequency measurements and / or CSI-RS intra-frequency / inter-frequency measurements.
[0037] A list of measurement reporting configurations (e.g., ReportConfigToAddModList) may include multiple measurement reporting configurations (e.g., ReportConfigToAddMod). A measurement reporting configuration includes a set of a reporting configuration identifier (e.g., ReportConfigId) and a measurement reporting configuration (e.g., reportConfig). The reporting configuration identifier is used to identify the measurement reporting configuration. The measurement reporting configuration may specify criteria that trigger reporting of measurement results.
[0038] A list of measurement identifiers (e.g., MeasIdToAddModList) includes a set (e.g., MeasIdToAddMod) of a measurement identifier, a measurement object identifier, and a reporting configuration identifier. Thus, a measurement identifier is associated with a combination of a measurement object configuration and a measurement reporting configuration via the measurement object identifier and the reporting configuration identifier.
[0039] The measurement gap configuration (e.g., MeasGapConfig) is used to set up and release gap patterns (e.g., measurement gaps). A gap pattern consists of measurement gaps where communication can be interrupted. The measurement gap configuration may include gapOffset, mgl, mgrp, and mgta. mgl is the measurement gap length of the measurement gap. mgrp is the measurement gap repetition period (MGRP) of the measurement gap. mgta is the measurement gap timing advance. gapOffset is the gap offset of the gap pattern with MGRP.
[0040] In step S12, the base station 200 transmits the generated RRC message to the UE 100. The UE 100 receives the RRC message. The UE 100 performs configuration based on the measurement configuration included in the RRC message.
[0041] In step S13, the location management device 400 generates an LPP message. The LPP message may include settings related to a positioning reference signal (PRS) for positioning (hereinafter referred to as PRS settings). The PRS settings may include, for example, settings related to a downlink reference signal (DL-PRS) for positioning, or settings related to a sidelink reference signal (SL-PRS) for positioning. The PRS settings may include, for example, information indicating time-frequency resources used to measure the PRS. The SL-PRS is a reference signal transmitted and received between communication devices (user devices).
[0042] In step S14, the location management device 400 transmits an LPP message including the PRS configuration to the UE 100. The UE 100 receives the LPP message from the location management device 400. Note that the LPP message may be transmitted from the location management device 400 to the UE 100 based on a request from the UE 100.
[0043] Note that UE100 and location management device 400 communicate (transmit and / or receive) via base station 200 (cell) and AMF, but in the following, explanations that the communication between UE100 and location management device 400 is communication via base station 200 (cell) and AMF may be omitted.
[0044] In step S14, UE 100 performs measurement on the measurement object. Specifically, UE 100 performs measurement on the measurement object set based on the measurement object setting during the measurement gap set based on the measurement gap setting. Also, UE 100 performs measurement on the PRS based on the PRS setting during the measurement gap set based on the measurement gap setting.
[0045] In step S15, the location of UE 100 is estimated based on the measurement results for the PRS. For example, in a multi-round trip time (RTT) positioning method, the location of UE 100 is estimated based on the Rx-Tx time difference between the DL-PRS measured by UE 100 and the UL-SRS (Sounding Reference Signal) measured at multiple transmission and reception points (base stations 200). In a downlink angle-of-departure (DL-AoD) positioning method, the location of UE 100 is estimated based on measurements of the received power (specifically, RSRP (Reference Signal Received Power)) of DL-PRS from multiple transmission and reception points (base stations 200), spatial information of the DL-PRS (downlink radio signal), and knowledge of the geographic coordinates of multiple transmission and reception points.
[0046] Note that UE 100 may transmit the measurement report to base station 200. Base station 200 may receive the measurement report from UE 100. UE 100 may transmit the measurement report to base station 200 when a measurement report is triggered based on the measurement report configuration.
[0047] In recent years, a method of setting a plurality of gap patterns in UE 100 has been discussed so that even when there are a plurality of measurement targets that UE 100 should measure, measurements can be performed with the optimal gap pattern for each measurement target.
[0048] However, in the current 3GPP technical specifications, while multiple measurement targets can be configured in the UE 100, only one gap pattern can be configured in the UE 100. Therefore, there is a concern that appropriate measurement may not be performed when multiple gap patterns are configured in the UE 100. Furthermore, the gap pattern configured based on the measurement gap configuration included in the RRC message is used for measurement of the PRS. However, when multiple gap patterns are configured in the UE 100, the UE 100 does not know which gap pattern should be used to perform measurement of the PRS, and there is a concern that appropriate measurement may not be performed. In an embodiment described later, an operation for enabling appropriate measurement when multiple gap patterns are configured will be described.
[0049] (Configuration of user device) The configuration of the UE 100 according to the embodiment will be described with reference to Fig. 5. The UE 100 includes a communication unit 110 and a control unit 120.
[0050] The communication unit 110 performs wireless communication with the base station 200 by transmitting and receiving radio signals to and from the base station 200. The communication unit 110 has at least one transmission unit 111 and at least one reception unit 112. The transmission unit 111 and the reception unit 112 may be configured to include multiple antennas and RF circuits. The antenna converts a signal into radio waves and radiates the radio waves into space. The antenna also receives radio waves in space and converts the radio waves into a signal. The RF circuit performs analog processing of the signal transmitted and received via the antenna. The RF circuit may include a high-frequency filter, an amplifier, a modulator, a low-pass filter, etc.
[0051] The control unit 120 performs various controls in the UE 100. The control unit 120 controls communication with the base station 200 via the communication unit 110. The operations of the UE 100 described above and below may be controlled by the control unit 120. The control unit 120 may include at least one processor capable of executing a program and a memory that stores the program. The processor may execute the program to perform the operations of the control unit 120. The control unit 120 may include a digital signal processor that performs digital processing of signals transmitted and received via the antenna and the RF circuit. The digital processing includes processing of a RAN protocol stack. The memory stores programs executed by the processor, parameters related to the programs, and data related to the programs. The memory may include at least one of a read-only memory (ROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), a random access memory (RAM), and a flash memory. All or a part of the memory may be included in the processor.
[0052] The UE 100 configured as described above communicates with the base station 200. In the UE 100, the communication unit 110 receives from the base station 200 a radio resource control (RRC) message including multiple measurement gap configurations for configuring multiple gap patterns each including a measurement gap in which communication can be interrupted. The control unit 120 performs measurement of a positioning reference signal during the measurement gap configured based on the multiple measurement gap configurations. The RRC message includes identification information indicating whether each of the multiple measurement gap configurations is for measurement of a PRS. This allows the UE 100 (control unit 120) to determine whether each of the multiple measurement gap configurations is for measurement of a PRS based on the identification information. Therefore, even if multiple gap patterns are configured, the UE 100 (control unit 120) can determine which gap pattern should be used to perform measurement of a PRS. Furthermore, the base station 200 (control unit 230) can appropriately control the gap pattern that the UE 100 should use for measurement. As a result, appropriate measurement is possible when multiple gap patterns are configured.
[0053] (Base station configuration) The configuration of the base station 200 according to the embodiment will be described with reference to Fig. 6. The base station 200 includes a communication unit 210, a network interface 220, and a control unit 230.
[0054] The communication unit 210 receives a radio signal from the UE 100 and transmits the radio signal to the UE 100, for example. The communication unit 210 has at least one transmission unit 211 and at least one reception unit 212. The transmission unit 211 and the reception unit 212 may be configured to include an RF circuit. The RF circuit performs analog processing of a signal transmitted and received via an antenna. The RF circuit may include a high-frequency filter, an amplifier, a modulator, a low-pass filter, etc.
[0055] The network interface 220 transmits and receives signals to and from the network. For example, the network interface 220 receives signals from adjacent base stations connected via an Xn interface, which is an interface between base stations, and transmits signals to the adjacent base stations. The network interface 220 also receives signals from the core network device 300 connected via an NG interface, and transmits signals to the core network device 300.
[0056] The control unit 230 performs various controls in the base station 200. The control unit 230 controls, for example, communication with the UE 100 via the communication unit 210. The control unit 230 also controls, for example, communication with a node (e.g., a neighboring base station, the core network device 300) via the network interface 220. The operations of the base station 200 described above and below may be operations controlled by the control unit 230. The control unit 230 may include at least one processor capable of executing a program and a memory that stores the program. The processor may execute the program to perform the operations of the control unit 230. The control unit 230 may include a digital signal processor that performs digital processing of signals transmitted and received via the antenna and the RF circuit. The digital processing includes processing of a protocol stack of the RAN. The memory stores the program executed by the processor, parameters related to the program, and data related to the program. All or a part of the memory may be included in the processor.
[0057] The base station 200 configured as described above communicates with the UE 100. In the base station 200, the control unit 230 generates a radio resource control (RRC) message including multiple measurement gap configurations for configuring multiple gap patterns each including a measurement gap in which communication can be interrupted. The communication unit 210 transmits the RRC message to the UE 100. The RRC message includes identification information indicating whether each of the multiple measurement gap configurations is for measurement of a PRS. This allows the UE 100 (control unit 120) to determine whether each of the multiple measurement gap configurations is for measurement of a PRS based on the identification information. Therefore, even if multiple gap patterns are configured, the UE 100 (control unit 120) can determine which gap pattern should be used to perform measurement for a PRS. Furthermore, the base station 200 (control unit 230) can appropriately control the gap pattern that the UE 100 should use for measurement. As a result, appropriate measurement is possible when multiple gap patterns are configured.
[0058] (Mobile communication system operation) (1-1) First operation example A first operation example of the mobile communication system 1 will be described with reference to Figures 7 to 9. Differences from the above description will be mainly described.
[0059] 7, in step S101, base station 200 (control unit 230) generates an RRC message. The RRC message includes multiple measurement gap configurations. In the RRC message, each of the multiple measurement gap configurations is associated with at least one measurement identifier that is associated with a combination of a measurement target configuration and a measurement report configuration.
[0060] In this operation example, the RRC message includes a plurality of measurement configurations. Each of the plurality of measurement configurations includes one measurement gap configuration and at least one measurement identifier associated with the measurement gap configuration. As shown in Figures 8 and 9, each of the plurality of measurement configurations includes a set of one measurement gap configuration and a list of measurement identifiers. Thus, one measurement gap configuration is associated with each measurement identifier in the list of measurement identifiers associated with the measurement gap configuration.
[0061] As shown in FIG. 9, the RRC message may include an existing measurement configuration (MeasConfig) in addition to a list of measurement configurations (measConfigList). The existing measurement configuration may be treated as one of multiple measurement configurations. A measurement configuration in the list of measurement configurations may be treated as the second or subsequent measurement configuration. Alternatively, the existing measurement configuration may not be usable when the RRC message includes a list of measurement configurations. Furthermore, the existing measurement configuration may be usable only when the UE 100 does not support the configuration of multiple gap patterns. When the UE 100 supports the configuration of multiple gap patterns, the existing measurement configuration may not be usable.
[0062] As shown in FIG. 9, the RRC message includes identification information (forPrs) indicating whether each of multiple measurement gap configurations is for measurement for PRS. In this operation example, each measurement gap configuration (MeasGapConfig) includes identification information. As a result, in the RRC message, each of multiple measurement gap configurations is associated with identification information. The identification information indicates whether the associated measurement gap configuration is for measurement for PRS. The identification information may be, for example, a Boolean flag. Note that the identification information may be written in a form other than "forPrs".
[0063] In step S102, the base station 200 (control unit 230) transmits an RRC message to the UE 100. The UE 100 (receiving unit 112) receives the RRC message from the base station 200. The UE 100 (communication unit 110) performs configuration based on a plurality of measurement configurations.
[0064] Steps S103 and S104 are similar to steps S13 and S14.
[0065] In step S105, UE100 (control unit 120) performs measurement on a measurement object. Specifically, UE100 (control unit 120) performs measurement on a measurement object set based on a measurement object setting during a measurement gap set based on a plurality of measurement gap settings. A plurality of gap patterns are set for UE100 (control unit 120) based on a plurality of measurement gap settings. Specifically, when UE100 (control unit 120) performs measurement on a predetermined measurement object, UE100 (control unit 120) performs measurement in a gap pattern based on a measurement gap setting associated with a measurement identifier associated with the predetermined measurement object. In other words, when UE100 (control unit 120) performs measurement on a measurement object based on a measurement object setting included in one of a plurality of measurement settings, UE100 (control unit 120) performs measurement in a measurement gap according to a gap pattern based on one measurement gap setting in the measurement setting.
[0066] Furthermore, UE 100 (control unit 120) determines whether each of a plurality of measurement gap configurations is for measurement for a PRS. When identification information indicates that the measurement gap configuration is for measurement for a PRS, UE 100 (control unit 120) determines that the measurement gap configuration corresponding to the identification information is for measurement for a PRS. When UE 100 (control unit 120) determines that the measurement gap configuration is for measurement for a PRS, it performs measurement for the PRS based on the PRS configuration during the measurement gap of the gap pattern set based on the measurement gap configuration.
[0067] Step S106 is similar to step S16.
[0068] As described above, in the RRC message, each of the multiple measurement gap configurations is associated with at least one measurement identifier. This allows the UE 100 (control unit 120) to perform measurements based on the measurement target configuration associated with at least one measurement identifier in measurement gaps that constitute a gap pattern based on the measurement gap configuration associated with the measurement identifier. Therefore, even if multiple gap patterns are configured, the UE 100 (control unit 120) can determine which measurement should be performed in which gap pattern. Furthermore, the base station 200 (control unit 230) can appropriately control the gap pattern that the UE 100 should use for measurement. As a result, appropriate measurements are possible when multiple gap patterns are configured.
[0069] Furthermore, the RRC message includes multiple measurement configurations. Each of the multiple measurement configurations includes one measurement gap configuration and at least one measurement identifier associated with the measurement gap configuration. As a result, within each measurement configuration, the measurement gap configuration is associated with the measurement target via the measurement identifier, so the information structure within the measurement configuration is the same as that of the existing measurement configuration. Therefore, since the change only requires listing the measurement configurations, the impact on the technical specifications can be reduced compared to changing the information structure within the measurement configuration.
[0070] Furthermore, the base station (control unit 230) generates an RRC message including multiple measurement gap configurations. The base station (communication unit 210) transmits the RRC message to the UE 100. The UE 100 (communication unit 110) receives the RRC message from the base station 200. The UE 100 (control unit 120) performs measurements for the PRS during measurement gaps configured based on the multiple measurement gap configurations. The RRC message includes identification information indicating whether each of the multiple measurement gap configurations is for measurement for the PRS. This allows the UE 100 (control unit 120) to determine whether each of the multiple measurement gap configurations is for measurement for the PRS based on the identification information. Therefore, even if multiple gap patterns are configured, the UE 100 (control unit 120) can determine which gap pattern to use for measurement for the PRS. Furthermore, the base station 200 (control unit 230) can appropriately control the gap pattern that the UE 100 should use for measurement. As a result, appropriate measurements are possible when multiple gap patterns are configured.
[0071] Furthermore, in the RRC message, each of the plurality of measurement gap configurations may be associated with identification information, which allows the UE 100 (controller 120) to determine, based on each piece of identification information, whether the associated measurement gap configuration is for measurement of a PRS.
[0072] (1-2) First modified example of the first operation example With reference to FIG. 10, a first modification of the first operation example will be described, focusing mainly on the differences from the above-described operation example.
[0073] The RRC message includes a set of a measurement identifier and identification information. Specifically, as shown in Fig. 10, a measurement identifier list (MeasIdToAddModList) included in the RRC message includes a set of a measurement identifier (MeasId) and identification information (forPrs).
[0074] Since measurement identifiers in the list of measurement identifiers included in the same measurement configuration are associated with measurement gap configurations, each measurement gap configuration is associated with identification information via the measurement identifier. Also, measurement gap configurations included in the same measurement configuration are associated with identification information. UE 100 (control unit 120) can determine whether the associated measurement gap configuration is for measurement of a PRS based on each piece of identification information. Therefore, even if multiple gap patterns are configured, UE 100 (control unit 120) can determine which gap pattern should be used to perform measurement on a PRS.
[0075] When the identification information indicates that the corresponding measurement gap configuration is for measurement for a PRS, the UE 100 (control unit 120) may ignore fields other than the measurement gap configuration (for example, the measurement object identifier field and the reporting configuration identifier field). When the identification information indicates that the corresponding measurement gap configuration is for measurement for a PRS, dummy values may be input into the measurement object identifier and reporting configuration identifier fields in the same set as the identification information. This allows the UE 100 (control unit 120) to avoid performing measurement and reporting for measurement objects other than the PRS in the gap pattern for measurement for the PRS.
[0076] (1-3) Second modified example of the first operation example With reference to FIG. 11, a second modification of the first operation example will be described, focusing mainly on the differences from the above-described operation example.
[0077] As shown in FIG. 11 , the measurement object configuration (MeasObjectNR) includes identification information (forPrs). As described above, in the RRC message, each of the multiple measurement gap configurations is associated with a measurement object configuration. Specifically, the measurement gap configuration and the measurement object configuration included in the same measurement configuration are associated with each other. Furthermore, the measurement gap configuration and the identification information included in the same measurement configuration are associated with each other. The UE 100 (control unit 120) can determine whether the associated measurement gap configuration is for measurement of the PRS based on each piece of identification information. Therefore, even if multiple gap patterns are configured, the UE 100 (control unit 120) can determine which gap pattern should be used to measure the PRS.
[0078] In addition, when the identification information indicates that the corresponding measurement gap configuration is for measurement for a PRS, UE 100 (control unit 120) may ignore fields other than the measurement gap configuration (for example, fields of measurement object information (ssbFrequency, ssbSubcarrierSpacing, smtc1, smtc2, refFreqCSI-RS, referenceSignalConfig, etc.)). In addition, when the identification information indicates that the corresponding measurement gap configuration is for measurement for a PRS, dummy values may be input into fields of mandatory information elements in the measurement object configuration (MeasObjectNR) including the identification information. Fields of non-mandatory (optional) information elements in the measurement object configuration (MeasObjectNR) may be omitted. This allows UE 100 (control unit 120) to avoid performing measurements and reporting on measurement objects other than the PRS in the gap pattern for measurement for the PRS.
[0079] (1-4) Third modified example of the first operation example With reference to FIG. 12, a third modification of the first operation example will be described, focusing mainly on the differences from the above-described operation examples.
[0080] As shown in FIG. 12 , the measurement report configuration (ReportConfigNR) includes identification information (prs). As described above, in an RRC message, each of multiple measurement gap configurations is associated with a measurement report configuration. Specifically, measurement gap configurations and measurement report configurations included in the same measurement configuration are associated with each other. Furthermore, measurement gap configurations included in the same measurement configuration are associated with identification information. In this operation example, a type called "prs" may be defined as one type of report type (reportType) indicating the type of measurement report configuration. When the identification information (prs) in the report type (reportType) indicates that the measurement gap configuration is for measurement for a PRS, the UE 100 (control unit 120) determines that the measurement gap configuration associated with the measurement report configuration including this report type is for measurement for a PRS. The UE 100 (control unit 120) can determine whether the associated measurement gap configuration is for measurement for a PRS based on each identification information. Therefore, even if a plurality of gap patterns are set, UE 100 (control unit 120) can determine which gap pattern to use to measure the PRS.
[0081] Note that the measurement report configuration (ReportConfigNR) may not include the identification information (prs) in the report type, but may include the identification information (forPrs) outside the report type.
[0082] (1-5) Fourth modified example of the first operation example With reference to FIG. 13, a fourth modification of the first operation example will be described, focusing mainly on the differences from the above-described operation examples.
[0083] As shown in Fig. 13, the identification information (NR-RS-Type-r17xy) may be an enumeration (ENUM) type flag. The identification information may indicate, for example, a reference signal that is a target of measurement reporting. The identification information may indicate, for example, any of SSB, CSI-RS, and PRS. This makes it easy to extend the technical specifications even if a reference signal that is a target of measurement reporting is added using the identification information.
[0084] When the identification information indicates a PRS, the UE 100 (control unit 120) can determine that the associated measurement gap configuration is for measurement of the PRS. When the identification information indicates a reference signal other than a PRS (SSB or CSI-RS), the UE 100 (control unit 120) can determine that the associated measurement gap configuration is not for measurement of the PRS.
[0085] (2-1) Second operation example This operation example will be described, focusing on differences from the above-described operation examples, with reference to Figures 7 and 14 to 16. In this operation example, each of multiple measurement gap configurations in an RRC message is associated with a measurement gap identifier.
[0086] In step S101, the base station 200 (control unit 230) generates an RRC message in the same manner as in the above-described operation example. As shown in Fig. 15, the measurement configuration (MeasConfig) included in the RRC message includes a list of measurement gap configurations to be added and / or modified (MeasGapToAddModList). Note that the measurement configuration may include a list of measurement gap identifiers to be deleted (MeasGapToRemoveList).
[0087] The measurement gap configuration list (MeasGapToAddModList) includes a measurement gap identifier (MeasGapId) and a set (MeasGapToAddMod) of multiple measurement gap configurations (MeasGapConfig). The measurement gap identifier is used to identify the measurement gap configuration. In this way, each of the multiple measurement gap configurations is associated with a measurement gap identifier.
[0088] The RRC message includes a set of a measurement identifier and a measurement gap identifier. As shown in Figures 14 and 16, in this operation example, the list of measurement identifiers (MeasIdToAddMod) includes a set (MeasIdToAddMod) of a measurement identifier (MeasId) and a measurement gap identifier (MeasGapId). The set further includes a measurement object identifier (MeasObjectId) and a reporting configuration identifier (reportConfigId). This associates the measurement gap identifier with the measurement identifier. As a result, each of the multiple measurement configurations is associated with the measurement identifier via the measurement gap identifier.
[0089] As shown in FIG. 15 , the measurement configuration may include an existing measurement gap configuration (MeasGapConfig) in addition to the list of measurement gap configurations. The existing measurement gap configuration may be treated as one of multiple measurement gap configurations. A measurement gap configuration in the list of measurement gap configurations may be treated as the second or subsequent measurement gap configuration. Alternatively, the existing measurement gap configuration may not be usable when the RRC message includes the list of measurement gap configurations. Furthermore, the existing measurement gap configuration may be usable only when the UE 100 does not support the configuration of multiple gap patterns. When the UE 100 supports the configuration of multiple gap patterns, the existing measurement gap configuration may not be usable.
[0090] Base station 200 associates measurement gap configurations with measurement identifiers so that each frequency layer is associated with only one gap pattern. Note that even if the same frequency layer is used, if the reference signals to be measured (e.g., SSB, CSI-RS, PRS) are different, the frequency layers may be treated as different frequency layers.
[0091] 15, the RRC message may include a set (MeasGapToAddMod) of each of multiple measurement gap configurations (measGapConfig) and identification information (forPrs). Specifically, the set (MeasGapToAddMod) includes a measurement gap identifier (MeasGapId), the measurement gap configuration (MeasGapConfig), and the identification information. Thus, each of the multiple measurement gap configurations is associated with the identification information.
[0092] Steps S102 to S104 are the same as in the above-described operation example.
[0093] Step S105 is the same as the above-described operation example. The UE 100 (control unit 120) performs measurement on a measurement object based on a measurement object configuration associated with a measurement identifier in one set (MeasIdToAddMod) via a measurement object identifier in a measurement gap constituting a gap pattern based on a measurement gap configuration associated with the same measurement identifier via a measurement object identifier.
[0094] When the identification information indicates that the corresponding measurement gap configuration is for measurement for the PRS, the UE 100 (control unit 120) determines that the measurement gap configuration in the same set as the identification information is for measurement for the PRS. In this case, the UE 100 (control unit 120) performs measurement for the PRS based on the PRS configuration during the measurement gap of the gap pattern set based on the measurement gap configuration.
[0095] Step S106 is the same as the above-described example of operation.
[0096] As described above, in the RRC message, each of the multiple measurement gap configurations may be associated with a measurement gap identifier. The measurement gap identifier may be associated with a measurement identifier. This eliminates the need to include multiple measurement configurations in the RRC message. Therefore, it is no longer necessary to include multiple redundant parameters in the measurement configuration, and it is possible to suppress a decrease in signaling efficiency.
[0097] Furthermore, the RRC message may include a set of a measurement identifier and a measurement gap identifier. As a result, the UE 100 (control unit 120) associates each of the multiple measurement gap configurations with the measurement identifier via the measurement gap identifier. Therefore, even if multiple gap patterns are configured, the UE 100 can determine which gap pattern to perform which measurement in. Furthermore, the base station 200 can appropriately control the gap pattern that the UE 100 should use for measurement. As a result, appropriate measurement is possible when multiple gap patterns are configured.
[0098] (2-2) Modification of the second operation example With reference to FIG. 17, a modification of the second operation example will be described, focusing mainly on the differences from the above-described operation example.
[0099] As shown in FIG. 17, the RRC message may include a set of measurement identifiers and identification information. Specifically, the list of measurement identifiers (MeasIdToAddModList) included in the RRC message includes the measurement identifier ( M The set (MeasIdToAddMod) includes a measurement object identifier (measObjectId), a reporting configuration identifier (reportConfigId), and a measurement gap identifier (measGapId).
[0100] Since the measurement identifiers and the identification information in the same set are associated with each other, each measurement gap configuration is associated with the identification information via the measurement identifier. Also, since the measurement gap identifiers and the identification information in the same set are associated with each other, each measurement gap configuration is associated with the identification information via the measurement gap identifier. UE 100 (control unit 120) can determine whether the associated measurement gap configuration is for measurement of a PRS based on each piece of identification information. Therefore, even if multiple gap patterns are configured, UE 100 (control unit 120) can determine which gap pattern to use for measurement of a PRS.
[0101] (3) Third operation example The third operation example will be described, mainly focusing on differences from the above operation examples, with reference to Figures 7, 18 and 19. In the third operation example, each of a plurality of measurement report configurations includes a measurement gap identifier.
[0102] In step S101, base station 200 (control unit 230) generates an RRC message, similar to the above-described operation example. The RRC message includes a plurality of measurement report configurations configured by measurement report configurations. Specifically, the measurement configuration (MeasConfig) in the RRC message includes a measurement report configuration list (ReportConfigToAddModList). Also, similar to the second operation example, the RRC message includes a measurement gap configuration list (MeasGapToAddModList).
[0103] 18 and 19, each of the multiple measurement report configurations includes a measurement gap identifier. Specifically, the measurement report configuration includes a set of a report type (reportType) indicating the type of the measurement report configuration and a measurement gap identifier (MeasGapId). As a result, the measurement gap identifier is associated with the measurement identifier via the measurement report identifier associated with the measurement report configuration including the measurement gap identifier. As a result, each of the multiple measurement configurations is associated with the measurement identifier via the measurement gap identifier.
[0104] The identification information may be included in the RRC message as in any of the above-described operation examples. The identification information may be associated with the measurement gap configuration by being included in the same set as the measurement gap configuration, or may be associated with the measurement gap configuration via at least one of a measurement identifier, a measurement target identifier, a reporting configuration identifier, and a measurement gap identifier.
[0105] Steps S102 to S104 are the same as in the above-described operation example.
[0106] Step S105 is the same as the above-described operation example. UE100 (control unit 120) performs measurement on a measurement object based on a measurement object configuration associated with the same measurement identifier via a measurement object identifier, in a measurement gap constituting a gap pattern based on a measurement gap configuration associated with the same measurement identifier via a reporting configuration identifier and a measurement gap identifier. Also, as described above, when UE100 (control unit 120) determines that a measurement gap configuration in the same set as the identification information is for measurement on a PRS, it performs measurement on the PRS based on the PRS configuration during a measurement gap of a gap pattern set based on the measurement gap configuration.
[0107] Step S106 is the same as the above-described example of operation.
[0108] As described above, the RRC message may include multiple measurement report configurations configured by the measurement report configuration. Each of the multiple measurement report configurations may include a measurement gap identifier. Each of the multiple measurement gap configurations is associated with a measurement identifier via the reporting configuration identifier and the measurement gap identifier. Therefore, even if multiple gap patterns are configured, the UE 100 can determine which measurement should be performed in which gap pattern. Furthermore, the base station 200 can appropriately control the gap pattern that the UE 100 should use for measurement. As a result, appropriate measurement is possible when multiple gap patterns are configured.
[0109] (4) Fourth operation example The fourth operation example will be described, mainly focusing on differences from the above-described operation examples, with reference to Figures 7, 20 and 21. In the fourth operation example, each of a plurality of measurement target settings includes a measurement gap identifier.
[0110] In step S101, base station 200 (control unit 230) generates an RRC message, similar to the above-described operation example. The RRC message includes a plurality of measurement object configurations configured by measurement object configurations. Specifically, the measurement configuration (MeasConfig) in the RRC message includes a list of measurement objects (MeasObjectToAddModList). Furthermore, similar to the second operation example, the RRC message includes a list of measurement gap configurations (MeasGapToAddModList).
[0111] 20 and 21, each of the multiple measurement object configurations includes a measurement gap identifier. Specifically, the measurement object configuration (MeasObjectNR) includes a set of measurement object information (e.g., ssbFrequency, ssbSubcarrierSpacing, smtc1, smtc2, refFreqCSI-RS, referenceSignalConfig, etc.) and a measurement gap identifier. As a result, the measurement gap identifier is associated with the measurement identifier via the measurement object identifier associated with the measurement object configuration including the measurement gap identifier. As a result, each of the multiple measurement configurations is associated with the measurement identifier via the measurement gap identifier.
[0112] The identification information may be included in the RRC message as in any of the above-described operation examples. The identification information may be associated with the measurement gap configuration by being included in the same set as the measurement gap configuration, or may be associated with the measurement gap configuration via at least one of a measurement identifier, a measurement target identifier, a reporting configuration identifier, and a measurement gap identifier.
[0113] Steps S102 to S104 are the same as in the above-described operation example.
[0114] Step S105 is the same as the above-described operation example. UE100 (control unit 120) performs measurement on a measurement object based on a measurement object configuration associated with a measurement object identifier included in the measurement object configuration, in a measurement gap constituting a gap pattern based on the measurement gap configuration associated with the measurement gap identifier included in the same measurement object configuration. Furthermore, similar to the above, when UE100 (control unit 120) determines that a measurement gap configuration in the same set as the identification information is for measurement on a PRS, it performs measurement on the PRS based on the PRS configuration during a measurement gap of a gap pattern set based on the measurement gap configuration.
[0115] Step S106 is the same as the above-described example of operation.
[0116] As described above, the RRC message may include multiple measurement target configurations configured by measurement target configurations. Each of the multiple measurement target configurations may include a measurement gap identifier. Each of the multiple measurement gap configurations is associated with a measurement identifier via the measurement target identifier and the measurement gap identifier. Furthermore, each of the multiple measurement gap configurations is associated with a measurement target configuration within the same measurement target configuration via the measurement gap identifier. Therefore, even if multiple gap patterns are configured, the UE 100 can determine which measurement should be performed in which gap pattern. Furthermore, the base station 200 can appropriately control the gap pattern that the UE 100 should use for measurement. As a result, appropriate measurement is possible when multiple gap patterns are configured.
[0117] In addition, since one measurement gap setting is associated with one measurement target setting, each frequency layer can be associated with only one gap pattern.
[0118] (5) Fifth operation example 7 and 22, the fifth operation example will be described, focusing on differences from the above-mentioned operation examples. In the fifth operation example, measurement gap identifiers are set independently for the measurement target configuration for the first reference signal and the measurement target configuration for the second reference signal.
[0119] In step S101, base station 200 (control unit 230) generates an RRC message, similar to the above-described operation example. Similar to the fourth operation example, the RRC message includes a list of measurement objects (MeasObjectToAddModList) and a list of measurement gap settings (MeasGapToAddModList).
[0120] As shown in FIG. 22, each of the plurality of measurement target configurations may include measurement target configurations (i.e., measurement target information) for a plurality of reference signals. For example, each of the plurality of measurement target configurations may include measurement target configurations (e.g., ssbFrequency, ssbSubcarrierSpacing, smtc1, smtc2, etc.) for a first reference signal (e.g., SSB) and 2 Includes measurement target settings (e.g., refFreqCSI-RS, etc.) for reference signals (e.g., CSI-RS).
[0121] Furthermore, each of the multiple measurement target configurations includes a measurement gap identifier. The measurement gap identifier is set independently for each of the multiple reference signals. Specifically, the measurement gap identifier is set independently for the measurement target configuration for the first reference signal and the measurement target configuration for the second reference signal. As shown in FIG. 22, for example, a measurement gap identifier for SSB (measGapIdSsb) is set for the measurement target configuration for SSB, and a measurement gap identifier for CSI-RS (measGapIdCSI-RS) is set for the measurement target configuration for CSI-RS.
[0122] The identification information may be included in the RRC message as in any of the above-described operation examples. The identification information may be associated with the measurement gap configuration by being included in the same set as the measurement gap configuration, or may be associated with the measurement gap configuration via at least one of a measurement identifier, a measurement target identifier, a reporting configuration identifier, and a measurement gap identifier.
[0123] Steps S102 to S104 are the same as in the above-described operation example.
[0124] Step S105 is the same as the above-described operation example. UE 100 (control unit 120) performs measurement on a measurement object based on a measurement object configuration for a first reference signal associated with a measurement object identifier included in the same measurement object configuration, in a measurement gap constituting a gap pattern based on a measurement gap configuration associated with a measurement gap identifier for a first reference signal. UE 100 (control unit 120) similarly performs measurement on a measurement object based on a measurement object configuration for a second reference signal associated with a measurement object identifier included in the same measurement object configuration, in a measurement gap constituting a gap pattern based on a measurement gap configuration associated with a measurement gap identifier for a second reference signal.
[0125] Furthermore, as described above, when UE100 (control unit 120) determines that the measurement gap setting in the same set as the identification information is for measurement of the PRS, it performs measurement of the PRS based on the PRS setting during the measurement gap of the gap pattern set based on the measurement gap setting.
[0126] Step S106 is the same as the above-described example of operation.
[0127] As described above, each of the multiple measurement target configurations may further include a measurement target configuration for the first reference signal and a measurement target configuration for the second reference signal. Measurement gap identifiers may be set independently for the measurement target configuration for the first reference signal and the measurement target configuration for the second reference signal. This allows a different measurement gap configuration to be applied to each reference signal to be measured, while associating one measurement gap configuration with one measurement target configuration.
[0128] (Other embodiments) In each of the above-described operation examples, an example is shown in which the RRC message includes identification information. Therefore, in each operation example, the identification information may be associated with the measurement gap configuration by being included in the same set as the measurement gap configuration, or may be associated with the measurement gap configuration via at least one of a measurement identifier, a measurement target identifier, a reporting configuration identifier, and a measurement gap identifier.
[0129] In each operation example, the identification information may be an enumeration flag instead of a Boolean flag, similar to the fourth modification of the first operation example.
[0130] In the second to fifth operation examples of the above-described embodiment, the measurement gap identifier is associated with the measurement identifier, but this is not limiting. Instead of the measurement gap identifier, the measurement gap configuration itself may be associated with the measurement identifier. Therefore, the measurement gap identifier may be replaced with the measurement gap configuration. In this case, the measurement configuration may be configured not to include a list of measurement gap configurations to be added and / or modified (MeasGapToAddModList). Furthermore, the measurement configuration may include a list of measurement gap configurations to be deleted instead of a list of measurement gap identifiers to be deleted (MeasGapToRemoveList).
[0131] Furthermore, in the third operation example, each of the multiple measurement report configurations (ReportConfigNR) includes a measurement gap identifier (MeasGapId), but this is not limited to this. For example, in the measurement report configuration list (ReportConfigToAddModList), each measurement report configuration (ReportConfigToAddMod), which is an information element higher than the measurement report configuration (ReportConfigNR), may be associated with a measurement gap identifier (MeasGapId) or a measurement gap configuration (MeasGapConfig). For example, the measurement report configuration list may include a set of a measurement report configuration (ReportConfigToAddMod) and a measurement gap identifier (MeasGapId) or a measurement gap configuration (MeasGapConfig). The measurement report configuration (ReportConfigToAddMod) may include a measurement gap identifier (MeasGapId) or a measurement gap configuration (MeasGapConfig) outside the measurement report configuration (ReportConfigNR).
[0132] Also, although each of the multiple measurement report configurations (ReportConfigNR) includes the identification information (forPrs, prs), this is not limited to this. For example, the list of measurement report configurations may include a set of a measurement report configuration (ReportConfigToAddMod) and the identification information (forPrs, prs). The measurement report configuration (ReportConfigToAddMod) may include the identification information (forPrs, prs) outside the measurement report configuration (ReportConfigNR).
[0133] In the fourth and fifth operation examples, each of the multiple measurement object settings (MeasObjectNR) includes a measurement gap identifier (MeasGapId), but this is not limited to this. For example, in the list of measurement object settings (MeasObjectToAddModList), each measurement object setting (MeasObjectToAddMod), which is an information element higher than the measurement object setting (MeasObjectNR), may be associated with a measurement gap identifier (MeasGapId) or a measurement gap setting (MeasGapConfig). For example, the list of measurement object settings may include a set of the measurement object setting (MeasObjectToAddMod) and the measurement gap identifier (MeasGapId) or the measurement gap setting (MeasGapConfig). The measurement object setting (MeasObjectToAddMod) may include a measurement gap identifier (MeasGapId) or a measurement gap setting (MeasGapConfig) outside the measurement object setting (MeasObjectNR).
[0134] Furthermore, although each of the multiple measurement object settings (MeasObjectNR) includes identification information (forPrs), this is not limiting. For example, the list of measurement object settings may include a set of a measurement object setting (MeasObjectToAddMod) and identification information (forPrs). The measurement object setting (MeasObjectToAddMod) may include identification information (forPrs) outside the measurement object setting (MeasObjectNR).
[0135] The operational sequences (and operational flows) in the above-described embodiments do not necessarily have to be executed in chronological order according to the order depicted in the flow diagrams or sequence diagrams. For example, the steps in the operations may be executed in an order different from that depicted in the flow diagrams or sequence diagrams, or may be executed in parallel. Some of the steps in the operations may be deleted, or additional steps may be added to the processing. The operational sequences (and operational flows) in the above-described embodiments may be executed independently, or two or more operational sequences (and operational flows) may be executed in combination. For example, some steps in one operational flow may be added to another operational flow, or some steps in one operational flow may be replaced with some steps in another operational flow.
[0136] In the above-described embodiment, an NR-based mobile communication system has been described as an example of the mobile communication system 1. However, the mobile communication system 1 is not limited to this example. The mobile communication system 1 may be a system compliant with a TS of either LTE or another generation system (e.g., 6th generation) of the 3GPP standard. The base station 200 may be an eNB that provides E-UTRA user plane and control plane protocol termination for the UE 100 in LTE. The mobile communication system 1 may be a system compliant with a TS of a standard other than the 3GPP standard. The base station 200 may be an IAB (Integrated Access and Backhaul) donor or an IAB node.
[0137] A program may be provided that causes a computer to execute each process performed by UE 100 or base station 200. The program may be recorded in a computer-readable medium. Using the computer-readable medium, the program can be installed in 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 (Compact Disk Read Only Memory) or a DVD-ROM (Digital Versatile Disk Read Only Memory). Furthermore, circuits that execute each process performed by UE 100 or base station 200 may be integrated, and at least a part of UE 100 or base station 200 may be configured as a semiconductor integrated circuit (chip set, SoC (System On Chip)).
[0138] In the above embodiments, "transmit" may mean processing at least one layer in a protocol stack used for transmission, or may mean physically transmitting a signal wirelessly or via a wired connection. Alternatively, "transmit" may mean a combination of processing at least one layer and physically transmitting a signal wirelessly or via a wired connection. Similarly, "receive" may mean processing at least one layer in a protocol stack used for reception, or may mean physically receiving a signal wirelessly or via a wired connection. Alternatively, "receive" may mean a combination of processing at least one layer and physically receiving a signal wirelessly or via a wired connection. Similarly, "obtain / acquire" may mean obtaining information from stored information, obtaining information from information received from another node, or obtaining information by generating information. Similarly, the terms "based on" and "depending on / in response to" do not mean "based only on" or "depending only on," unless otherwise specified. The phrase "based on" means both "based only on" and "based at least in part on." Similarly, the phrase "depending on" means both "depending only on" and "depending at least in part on." Similarly, "include" and "comprise" do not mean including only the listed items, but may mean including only the listed items or may include additional items in addition to the listed items. Similarly, in this disclosure, "or" does not mean an exclusive or, but does mean a logical 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 in this disclosure as a convenient method of distinguishing between two or more elements.Thus, a reference to a first and a second element does not imply that only two elements may be employed therein or that the first element must precede the second element in some way. 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.
[0139] Although the present disclosure has been described with reference to the embodiments, it is understood that the present disclosure is not limited to the embodiments or structures. The present disclosure also encompasses various modifications and equivalent modifications. In addition, various combinations and forms, including only one element, more than one element, or less than one element, are also within the scope and spirit of the present disclosure.
[0140] (Addendum) The following additional notes are about the features of the above-described embodiment.
[0141] (Appendix 1) a communication unit configured to receive a radio resource control (RRC) message from a network, the radio resource control (RRC) message including a plurality of measurement gap configurations; a control unit that performs measurement of a positioning reference signal during each measurement gap set based on the plurality of measurement gap settings; the RRC message includes identification information associated with each of the plurality of measurement gap configurations; The identification information indicates that the associated measurement gap configuration is for measurement of the positioning reference signal. Communication equipment.
[0142] (Appendix 2) The RRC message includes a set of each of the plurality of measurement gap configurations and identification information associated with each of the plurality of measurement gap configurations. 2. The communication device of claim 1.
[0143] (Appendix 3) The control unit performs measurement on the positioning reference signal based on a measurement gap setting associated with the identification information. 3. The communication device according to claim 1 or 2.
[0144] (Appendix 4) a communication unit configured to transmit a radio resource control (RRC) message to a communication device, the RRC message including a plurality of measurement gap configurations; the RRC message includes identification information associated with each of the plurality of measurement gap configurations; The identification information indicates that the associated measurement gap configuration is for measurement of the positioning reference signal. Base station.
[0145] (Appendix 5) 1. A communication method performed in a communication device, comprising: receiving a radio resource control (RRC) message from a network, the radio resource control (RRC) message including a plurality of measurement gap configurations; performing measurements on a positioning reference signal during each measurement gap set based on the plurality of measurement gap settings; the RRC message includes identification information associated with each of the plurality of measurement gap configurations; The identification information indicates that the associated measurement gap configuration is for measurement of the positioning reference signal. Communication method.
Claims
1. a receiving unit (112) that receives, from a base station (200) using a radio resource control (RRC) message, a measurement configuration including first information for setting one measurement object included in a list of measurement objects to be added and second information for setting one gap pattern included in a plurality of gap patterns; a control unit (120) that executes measurements based on the measurement settings, the second information includes information indicating a repetition period of a measurement gap and information indicating an offset of a gap pattern associated with the repetition period of the measurement gap; The control unit If the first information includes information indicating a synchronization signal and a physical broadcast channel block (SSB), performing the measurement based on the SSB in the measurement gap of the one gap pattern among the plurality of gap patterns; When the second information includes information indicating that the one gap pattern set using the second information is for measurement based on a positioning reference signal (PRS), the measurement based on the PRS is performed in the measurement gap of the one gap pattern set using the second information. A communication device (100).
2. The information indicating the SSB includes information indicating the frequency of the SSB. The communication device according to claim 1 .
3. The control unit identifies the measurement gap of the one gap pattern in which the SSB-based measurement is performed based on a measurement gap identifier included in the first information.
3. The communication device according to claim 1 or 2.
4. The receiving unit receives information indicating a frequency resource of the PRS from a position management device using a positioning protocol message.
3. The communication device according to claim 1 or 2.
5. a transmitter (211) that transmits, to a communication device (100), a measurement configuration including first information for setting one measurement object included in a list of measurement objects to be added and second information for setting one gap pattern included in a plurality of gap patterns, using a radio resource control (RRC) message; a receiving unit (212) that receives a measurement report based on the measurement configuration from the communication device; the second information includes information indicating a repetition period of a measurement gap and information indicating an offset of a gap pattern associated with the repetition period of the measurement gap; The receiving unit If the first information includes information indicating a synchronization signal and a physical broadcast channel block (SSB), receiving from the communication device the measurement report of the SSB measured in the measurement gap of the one gap pattern among the plurality of gap patterns; When the second information includes information indicating that the one gap pattern set using the second information is for measurement based on a positioning reference signal (PRS), the measurement report of the PRS measured in the measurement gap of the one gap pattern set using the second information is received from the communication device. Base station (200).
6. The information indicating the SSB includes information indicating the frequency of the SSB. The base station of claim 5.
7. The receiving unit receives the measurement report of the SSB measured in the measurement gap of the one gap pattern identified based on the measurement gap identifier included in the first information.
7. The base station according to claim 5 or 6.
8. The information indicating the frequency resource of the PRS is transmitted from the position management device to the communication device using a positioning protocol message.
7. The base station according to claim 5 or 6.
9. A communication method executed in a communication device (100), comprising: receiving, from a base station (200) using a radio resource control (RRC) message, a measurement configuration including first information for configuring one measurement object included in a list of measurement objects to be added and second information for configuring one gap pattern included in a plurality of gap patterns; performing a measurement based on the measurement configuration; the second information includes information indicating a repetition period of a measurement gap and information indicating an offset of a gap pattern associated with the repetition period of the measurement gap; The step of performing the measurements includes: If the first information includes information indicating a synchronization signal and a physical broadcast channel block (SSB), performing the measurement based on the SSB in the measurement gap of the one gap pattern among the plurality of gap patterns; When the second information includes information indicating that the one gap pattern set using the second information is for measurement based on a positioning reference signal (PRS), performing the measurement based on the PRS in the measurement gap of the one gap pattern set using the second information. Communication method.
10. The information indicating the SSB includes information indicating the frequency of the SSB. The communication method according to claim 9.
11. The communication method according to claim 9 or 10, further comprising the step of identifying the measurement gap of the one gap pattern in which the SSB-based measurements are performed based on a measurement gap identifier included in the first information.
12. The method further includes receiving information indicating a frequency resource of the PRS from a position management device using a positioning protocol message. The communication method according to claim 9 or 10.
Citation Information
Patent Citations
Methods for controlling measurements that are mutually-exclusive with other measurements
WO2019193194A1